Annotation of gcc/internals.texinfo, revision 1.1.1.1

1.1       root        1: \input texinfo  @c -*-texinfo-*-
                      2: 
                      3: @settitle Internals of GNU CC
                      4: @setfilename internals
                      5: 
                      6: @ifinfo
                      7: This file documents the internals of the GNU compiler.
                      8: 
                      9: Copyright (C) 1987 Richard M. Stallman.
                     10: 
                     11: Permission is granted to make and distribute verbatim copies of
                     12: this manual provided the copyright notice and this permission notice
                     13: are preserved on all copies.
                     14: 
                     15: @ignore
                     16: Permission is granted to process this file through Tex and print the
                     17: results, provided the printed document carries copying permission
                     18: notice identical to this one except for the removal of this paragraph
                     19: (this paragraph not being relevant to the printed manual).
                     20: 
                     21: @end ignore
                     22: Permission is granted to copy and distribute modified versions of this
                     23: manual under the conditions for verbatim copying, provided also that the
                     24: section entitled ``GNU CC General Public License'' is included exactly as
                     25: in the original, and provided that the entire resulting derived work is
                     26: distributed under the terms of a permission notice identical to this one.
                     27: 
                     28: Permission is granted to copy and distribute translations of this manual
                     29: into another language, under the above conditions for modified versions,
                     30: except that the section entitled ``GNU CC General Public License'' may be
                     31: included in a translation approved by the author instead of in the original
                     32: English.
                     33: @end ifinfo
                     34: 
                     35: @setchapternewpage odd
                     36: 
                     37: @titlepage
                     38: @center @titlefont{Internals of GNU CC}
                     39: @sp 2
                     40: @center Richard M. Stallman
                     41: @page
                     42: @vskip 0pt plus 1filll
                     43: Copyright @copyright{} 1987 Richard M. Stallman.
                     44: 
                     45: Permission is granted to make and distribute verbatim copies of
                     46: this manual provided the copyright notice and this permission notice
                     47: are preserved on all copies.
                     48: 
                     49: Permission is granted to copy and distribute modified versions of this
                     50: manual under the conditions for verbatim copying, provided also that the
                     51: section entitled ``GNU CC General Public License'' is included exactly as
                     52: in the original, and provided that the entire resulting derived work is
                     53: distributed under the terms of a permission notice identical to this one.
                     54: 
                     55: Permission is granted to copy and distribute translations of this manual
                     56: into another language, under the above conditions for modified versions,
                     57: except that the section entitled ``GNU CC General Public License'' may be
                     58: included in a translation approved by the author instead of in the original
                     59: English.
                     60: @end titlepage
                     61: @page
                     62: 
                     63: @ifinfo
                     64: @node Top, Switches, , (DIR)
                     65: 
                     66: Introduction
                     67: ************
                     68: 
                     69: This manual documents how to install and port the GNU C compiler.
                     70: 
                     71: @end ifinfo
                     72: @menu
                     73: * Copying::         GNU CC General Public License says
                     74:                      how you can copy and share GNU CC.
                     75: * Switches::        Command switches supported by @samp{gcc}.
                     76: * Installation::    How to configure, compile and install GNU CC.
                     77: * Portability::     Goals of GNU CC's portability features.
                     78: * Passes::          Order of passes, what they do, and what each file is for.
                     79: * RTL::             The intermediate representation that most passes work on.
                     80: * Machine Desc::    How to write machine description instruction patterns.
                     81: * Machine Macros::  How to write the machine description C macros.
                     82: @end menu
                     83: 
                     84: @node Copying, Switches, Top, Top
                     85: @unnumbered GNU CC GENERAL PUBLIC LICENSE
                     86: 
                     87:   The license agreements of most software companies keep you at the
                     88: mercy of those companies.  By contrast, our general public license is
                     89: intended to give everyone the right to share GNU CC.  To make sure that
                     90: you get the rights we want you to have, we need to make restrictions
                     91: that forbid anyone to deny you these rights or to ask you to surrender
                     92: the rights.  Hence this license agreement.
                     93: 
                     94:   Specifically, we want to make sure that you have the right to give
                     95: away copies of GNU CC, that you receive source code or else can get it
                     96: if you want it, that you can change GNU CC or use pieces of it in new
                     97: free programs, and that you know you can do these things.
                     98: 
                     99:   To make sure that everyone has such rights, we have to forbid you to
                    100: deprive anyone else of these rights.  For example, if you distribute
                    101: copies of GNU CC, you must give the recipients all the rights that you
                    102: have.  You must make sure that they, too, receive or can get the
                    103: source code.  And you must tell them their rights.
                    104: 
                    105:   Also, for our own protection, we must make certain that everyone
                    106: finds out that there is no warranty for GNU CC.  If GNU CC is modified by
                    107: someone else and passed on, we want its recipients to know that what
                    108: they have is not what we distributed, so that any problems introduced
                    109: by others will not reflect on our reputation.
                    110: 
                    111:   Therefore we (Richard Stallman and the Free Software Fundation,
                    112: Inc.) make the following terms which say what you must do to be
                    113: allowed to distribute or change GNU CC.
                    114: 
                    115: @unnumberedsec COPYING POLICIES
                    116: 
                    117: @enumerate
                    118: @item
                    119: You may copy and distribute verbatim copies of GNU CC source code as
                    120: you receive it, in any medium, provided that you conspicuously and
                    121: appropriately publish on each copy a valid copyright notice
                    122: ``Copyright @copyright{} 1987 Free Software Foundation, Inc.''  (or
                    123: with the year updated if that is appropriate); keep intact the notices
                    124: on all files that refer to this License Agreement and to the absence
                    125: of any warranty; and give any other recipients of the GNU CC program a
                    126: copy of this License Agreement along with the program.  You may charge
                    127: a distribution fee for the physical act of transferring a copy.
                    128: 
                    129: @item
                    130: You may modify your copy or copies of GNU CC or any portion of it,
                    131: and copy and distribute such modifications under the terms of
                    132: Paragraph 1 above, provided that you also do the following:
                    133: 
                    134: @itemize @bullet
                    135: @item
                    136: cause the modified files to carry prominent notices stating
                    137: that you changed the files and the date of any change; and
                    138: 
                    139: @item
                    140: cause the whole of any work that you distribute or publish,
                    141: that in whole or in part contains or is a derivative of GNU CC or
                    142: any part thereof, to be licensed at no charge to all third
                    143: parties on terms identical to those contained in this License
                    144: Agreement (except that you may choose to grant more extensive
                    145: warranty protection to some or all third parties, at your
                    146: option).
                    147: 
                    148: @item
                    149: You may charge a distribution fee for the physical act of
                    150: transferring a copy, and you may at your option offer warranty
                    151: protection in exchange for a fee.
                    152: @end itemize
                    153: 
                    154: @item
                    155: You may copy and distribute GNU CC or any portion of it in
                    156: compiled, executable or object code form under the terms of Paragraphs
                    157: 1 and 2 above provided that you do the following:
                    158: 
                    159: @itemize @bullet
                    160: @item
                    161: cause each such copy to be accompanied by the
                    162: corresponding machine-readable source code, which must
                    163: be distributed under the terms of Paragraphs 1 and 2 above; or,
                    164: 
                    165: @item
                    166: cause each such copy to be accompanied by a
                    167: written offer, with no time limit, to give any third party
                    168: free (except for a nominal shipping charge) a machine readable
                    169: copy of the corresponding source code, to be distributed
                    170: under the terms of Paragraphs 1 and 2 above; or,
                    171: 
                    172: @item
                    173: in the case of a recipient of GNU CC in compiled, executable
                    174: or object code form (without the corresponding source code) you
                    175: shall cause copies you distribute to be accompanied by a copy
                    176: of the written offer of source code which you received along
                    177: with the copy you received.
                    178: @end itemize
                    179: 
                    180: @item
                    181: You may not copy, sublicense, distribute or transfer GNU CC
                    182: except as expressly provided under this License Agreement.  Any attempt
                    183: otherwise to copy, sublicense, distribute or transfer GNU CC is void and
                    184: your rights to use the program under this License agreement shall be
                    185: automatically terminated.  However, parties who have received computer
                    186: software programs from you with this License Agreement will not have
                    187: their licenses terminated so long as such parties remain in full compliance.
                    188: 
                    189: @item
                    190: If you wish to incorporate parts of GNU CC into other free programs
                    191: whose distribution conditions are different, write to the Free Software
                    192: Foundation at 1000 Mass Ave, Cambridge, MA 02138.  We have not yet worked
                    193: out a simple rule that can be stated here, but we will often permit this.
                    194: We will be guided by the two goals of preserving the free status of all
                    195: derivatives our free software and of promoting the sharing and reuse of
                    196: software.
                    197: @end enumerate
                    198: 
                    199: Your comments and suggestions about our licensing policies and our
                    200: software are welcome!  Please contact the Free Software Foundation, Inc.,
                    201: 1000 Mass Ave, Cambridge, MA 02138, or call (617) 876-3296.
                    202: 
                    203: @unnumberedsec NO WARRANTY
                    204: 
                    205:   BECAUSE GNU CC IS LICENSED FREE OF CHARGE, WE PROVIDE ABSOLUTELY NO
                    206: WARRANTY, TO THE EXTENT PERMITTED BY APPLICABLE STATE LAW.  EXCEPT
                    207: WHEN OTHERWISE STATED IN WRITING, FREE SOFTWARE FOUNDATION, INC,
                    208: RICHARD M. STALLMAN AND/OR OTHER PARTIES PROVIDE GNU CC "AS IS" WITHOUT
                    209: WARRANTY OF ANY KIND, EITHER EXPRESSED OR IMPLIED, INCLUDING, BUT NOT
                    210: LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
                    211: A PARTICULAR PURPOSE.  THE ENTIRE RISK AS TO THE QUALITY AND
                    212: PERFORMANCE OF GNU CC IS WITH YOU.  SHOULD GNU CC PROVE DEFECTIVE, YOU
                    213: ASSUME THE COST OF ALL NECESSARY SERVICING, REPAIR OR CORRECTION.
                    214: 
                    215:  IN NO EVENT UNLESS REQUIRED BY APPLICABLE LAW WILL RICHARD M.
                    216: STALLMAN, THE FREE SOFTWARE FOUNDATION, INC., AND/OR ANY OTHER PARTY
                    217: WHO MAY MODIFY AND REDISTRIBUTE GNU CC AS PERMITTED ABOVE, BE LIABLE TO
                    218: YOU FOR DAMAGES, INCLUDING ANY LOST PROFITS, LOST MONIES, OR OTHER
                    219: SPECIAL, INCIDENTAL OR CONSEQUENTIAL DAMAGES ARISING OUT OF THE USE OR
                    220: INABILITY TO USE (INCLUDING BUT NOT LIMITED TO LOSS OF DATA OR DATA
                    221: BEING RENDERED INACCURATE OR LOSSES SUSTAINED BY THIRD PARTIES OR A
                    222: FAILURE OF THE PROGRAM TO OPERATE WITH ANY OTHER PROGRAMS) GNU CC, EVEN
                    223: IF YOU HAVE BEEN ADVISED OF THE POSSIBILITY OF SUCH DAMAGES, OR FOR
                    224: ANY CLAIM BY ANY OTHER PARTY.
                    225: 
                    226: @node Switches, Installation, Copying, Top
                    227: @chapter GNU CC Switches
                    228: 
                    229: @table @samp
                    230: @item -O
                    231: Do optimize.
                    232: 
                    233: @item -g
                    234: Produce debugging information in DBX format.
                    235: 
                    236: @item -c
                    237: Compile but do not link the object files.
                    238: 
                    239: @item -o @var{file}
                    240: Place linker output in file @var{file}.
                    241: 
                    242: @item -S
                    243: Compile into assembler code but do not assemble.
                    244: 
                    245: @item -m@var{machinespec}
                    246: Machine-dependent switch specifying something about the type
                    247: of target machine.  For example, using the 68000 machine description,
                    248: @samp{-m68000} specifies do not use the 68020 instructions,
                    249: and @samp{-msoft-float} specifies do not use the 68881 floating point
                    250: instructions.
                    251: 
                    252: @item -d@var{letters}
                    253: Says to make debugging dumps at times specified by @var{letters}.
                    254: Here are the possible letters:
                    255: 
                    256: @table @samp
                    257: @item t
                    258: Dump syntax-tree.
                    259: @item r
                    260: Dump after RTL generation.
                    261: @item j
                    262: Dump after first jump optimization.
                    263: @item s
                    264: Dump after CSE.
                    265: @item L
                    266: Dump after loop optimization.
                    267: @item f
                    268: Dump after flow analysis.
                    269: @item c
                    270: Dump after instruction combination.
                    271: @item l
                    272: Dump after local register allocation.
                    273: @item g
                    274: Dump after global register allocation.
                    275: @end table
                    276: 
                    277: @item -pedantic
                    278: Attempt to support strict ANSI standard C.  Valid ANSI standard C
                    279: programs should compile properly with or without this switch.
                    280: However, without this switch, certain useful or traditional constructs
                    281: banned by the standard are supported.  With this switch, they are
                    282: rejected.  There is no reason to use this switch; it exists only
                    283: to satisfy pedants.
                    284: 
                    285: @item E
                    286: Preprocess the input files and output the results to standard output.
                    287: 
                    288: @item C
                    289: Tell the preprocessor not to discard comments.  Used with the @samp{-E}
                    290: switch.
                    291: 
                    292: @item I@var{dir}
                    293: Search directory @var{dir} for include files.
                    294: 
                    295: @item D@var{macro}
                    296: Define macro @var{macro} with the empty string as its definition.
                    297: 
                    298: @item D@var{macro}=@var{defn}
                    299: Define macro @var{macro} as @var{defn}.
                    300: 
                    301: @item U@var{macro}
                    302: Undefine macro @var{macro}.
                    303: 
                    304: @item w
                    305: Inhibit warning messages.
                    306: 
                    307: @item v
                    308: Compiler driver program prints the commands it executes as it runs
                    309: the preprocessor, compiler proper, assembler and linker.
                    310: 
                    311: @item B@var{prefix}
                    312: Compiler driver program tries @var{prefix} as a prefix for each program
                    313: it tries to run.  These programs are @file{cpp}, @file{cc1},
                    314: @file{as} and @file{ld}.
                    315: 
                    316: For each subprogram to be run, the compiler driver first tries the
                    317: @samp{-B} prefix, if any.  If that name is not found, or if @samp{-B}
                    318: was not specified, the driver tries two standard prefixes, which are
                    319: @file{/usr/lib/gcc-} and @file{/usr/local/lib/gcc-}.  If neither of
                    320: those results in a file name that is found, the unmodified program
                    321: name is searched for using the @samp{PATH} environment variable.
                    322: @end table
                    323: 
                    324: @node Installation, Portability, Switches, Top
                    325: @chapter Installing GNU CC
                    326: 
                    327: @enumerate
                    328: @item
                    329: Choose configuration files.
                    330: 
                    331: @itemize @bullet
                    332: @item
                    333: Make a symbolic link from file @file{config.h} to the top-level
                    334: config file for the machine you are using.  Its name should be
                    335: @file{config-@var{machine}.h}.  This file is responsible for
                    336: defining information about the host machine.  It includes
                    337: @file{tm.h}.
                    338: 
                    339: @item
                    340: Make a symbolic link from @file{tm.h} to the machine-description
                    341: macro file for your machine (its name should be
                    342: @file{tm-@var{machine}.h}).
                    343: 
                    344: @item
                    345: Make a symbolic link from @file{md} to the
                    346: machine description pattern file (its name should be
                    347: @file{@var{machine}.md}).
                    348: 
                    349: @item
                    350: Make a symbolic link from
                    351: @file{aux-output.c} to the output-subroutine file for your machine
                    352: (its name should be @file{@var{machine}-output.c}).
                    353: @end itemize
                    354: 
                    355: @item
                    356: Make sure the Bison parser generator is installed.
                    357: 
                    358: @item
                    359: Build the compiler.  Just type @samp{make} in the compiler directory.
                    360: 
                    361: @item
                    362: Delete @file{*.o} in the compiler directory.  The executables from
                    363: the previous step remain for the next step.
                    364: 
                    365: @item
                    366: Remake the compiler with
                    367: 
                    368: @example
                    369: make CC=./gcc CFLAGS="-g -O -I."
                    370: @end example
                    371: 
                    372: @item
                    373: Install the compiler's passes.  Copy the file @file{cc1} made by the
                    374: compiler to the name @file{/usr/local/lib/gcc-cc1}.
                    375: 
                    376: Make the file @file{/usr/local/lib/gcc-cpp} either a link to @file{/lib/cpp}
                    377: or a copy of the file @file{cpp} generated by @samp{make}.
                    378: 
                    379: @strong{Warning: the GNU CPP may not work for @file{ioctl.h}.} This
                    380: cannot be fixed in the GNU CPP because the bug is in @file{ioctl.h}:
                    381: at least on some machines, it relies on behavior that is incompatible
                    382: with ANSI C.  This behavior consists of substituting for macro
                    383: argument names when they appear inside of character constants.
                    384: 
                    385: @item
                    386: Install the compiler driver.  This is the file @file{gcc} generated
                    387: by @samp{make}.
                    388: @end enumerate
                    389: 
                    390: @node Portability, Passes, Installation, Top
                    391: @chapter GNU CC and Portability
                    392: 
                    393: The main goal of GNU CC was to make a good, fast compiler for machines in
                    394: the class that the GNU system aims to run on: 32-bit machines that address
                    395: 8-bit bytes and have several general registers.  Elegance, theoretical
                    396: power and simplicity are only secondary.
                    397: 
                    398: GNU CC gets most of the information about the target machine from a machine
                    399: description which gives an algebraic formula for each of the machine's
                    400: instructions.  This is a very clean way to describe the target.  But when
                    401: the compiler needs information that is difficult to express in this
                    402: fashion, I have not hesitated to define an ad-hoc parameter to the machine
                    403: description.  The purpose of portability is to reduce the total work needed
                    404: on the compiler; it was not of interest for its own sake.
                    405: 
                    406: GNU CC does not contain machine dependent code, but it does contain code
                    407: that depends on machine parameters such as endianness (whether the most
                    408: significant byte has the highest or lowest address of the bytes in a word)
                    409: and the availability of autoincrement addressing.  In the RTL-generation
                    410: pass, it is often necessary to have multiple strategies for generating code
                    411: for a particular kind of syntax tree, strategies that are usable for different
                    412: combinations of parameters.  Often I have not tried to address all possible
                    413: cases, but only the common ones or only the ones that I have encountered.
                    414: As a result, a new target may require additional strategies.  You will know
                    415: if this happens because the compiler will call @code{abort}.  Fortunately,
                    416: the new strategies can be added to all versions of the compiler, and will
                    417: be relevant only for target machines that need them.
                    418: 
                    419: @node Passes, RTL, Portability, Top
                    420: @chapter Passes and Files of the Compiler
                    421: 
                    422: The overall control structure of the compiler is in @file{toplev.c}.  This
                    423: file is responsible for initialization, decoding arguments, opening and
                    424: closing files, and sequencing the passes.
                    425: 
                    426: The parsing pass is invoked only once, to parse the entire input.  Each
                    427: time a complete function definition or top-level data definition is read,
                    428: the parsing pass calls the function @code{rest_of_compilation} in
                    429: @file{toplev.c}, which is responsible for all further processing necessary,
                    430: ending with output of the assembler language.  All other compiler passes
                    431: run, in sequence, within @code{rest_of_compilation}.  After
                    432: @code{rest_of_compilation} returns from compiling a function definition,
                    433: the storage used for its compilation is entirely freed.
                    434: 
                    435: Here is a list of all the passes of the compiler and their source files.
                    436: Also included is a description of where debugging dumps can be requested
                    437: with @samp{-d} switches.
                    438: 
                    439: @itemize @bullet
                    440: @item
                    441: Parsing.  This pass reads the entire text of a function definition,
                    442: constructing a syntax tree.  The tree representation does not entirely
                    443: follow C syntax, because it is intended to support other languages as well.
                    444: 
                    445: C data type analysis is also done in this pass, and every tree node that
                    446: represents an expression has a data type attached.  Variables are represented
                    447: as declaration nodes.
                    448: 
                    449: Constant folding and associative-law simplifications are also done during
                    450: this pass.
                    451: 
                    452: The source files of the parsing pass are @file{parse.y}, @file{decl.c},
                    453: @file{typecheck.c}, @file{stor-layout.c}, @file{fold-const.c}, and
                    454: @file{tree.c}.  The last three are intended to be language-independent.
                    455: There are also header files @file{parse.h}, @file{c-tree.h},
                    456: @file{tree.h} and @file{tree.def}.  The last two define the format of
                    457: the tree representation.
                    458: 
                    459: @item
                    460: RTL generation.  This pass converts the tree structure for one
                    461: function into RTL code.  
                    462: 
                    463: This is where the bulk of target-parameter-dependent code is found,
                    464: since often it is necessary for strategies to apply only when certain
                    465: standard kinds of instructions are available.  The purpose of named
                    466: instruction patterns is to provide this information to the RTL
                    467: generation pass.
                    468: 
                    469: Optimization is done in this pass for @code{if}-conditions that are
                    470: comparisons, boolean operations or conditional expressions.  Tail
                    471: recursion is detected at this time also.  Decisions are made about how
                    472: best to arrange loops and how to output @code{switch} statements.
                    473: 
                    474: The files of the RTL generation pass are @file{stmt.c}, @file{expr.c},
                    475: @file{explow.c}, @file{expmed.c}, @file{optabs.c} and @file{emit-rtl.c}.
                    476: Also, the file @file{insn-emit.c}, generated from the machine description
                    477: by the program @code{genemit}, is used in this pass.  The header files
                    478: @file{expr.h} is used for communication within this pass.
                    479: 
                    480: The header files @file{insn-flags.h} and @file{insn-codes.h}, generated from
                    481: the machine description by the programs @code{genflags} and @code{gencodes},
                    482: tell this pass which standard names are available for use and which patterns
                    483: correspond to them.
                    484: 
                    485: Aside from debugging information output, none of the following passes
                    486: refers to the tree structure representation of the function.
                    487: 
                    488: The switch @samp{-dr} causes a debugging dump of the RTL code after this
                    489: pass.  This dump file's name is made by appending @samp{.rtl} to the
                    490: input file name.
                    491: 
                    492: @item
                    493: Jump optimization.  This pass simplifies jumps to the following instruction,
                    494: jumps across jumps, and jumps to jumps.  It deletes unreferenced labels
                    495: and unreachable code, except that unreachable code that contains a loop
                    496: is not recognized as unreachable in this pass.  (Such loops are deleted
                    497: later in the basic block analysis.)
                    498: 
                    499: Jump optimization is performed two or three times.  The first time is
                    500: immediately following RTL generation.
                    501: 
                    502: The source file of this pass is @file{jump.c}.
                    503: 
                    504: The switch @samp{-dj} causes a debugging dump of the RTL code after this
                    505: pass is run for the first time.  This dump file's name is made by appending
                    506: @samp{.jump} to the input file name.
                    507: 
                    508: @item
                    509: Register scan.  This pass finds the first and last use of each
                    510: register, as a guide for common subexpression elimination.  Its source
                    511: is in @file{regclass.c}.
                    512: 
                    513: @item
                    514: Common subexpression elimination.  This pass also does constant
                    515: propagation.  Its source file is @file{cse.c}.  If constant
                    516: propagation causes conditional jumps to become unconditional or to
                    517: become no-ops, jump optimization is run again when cse is finished.
                    518: 
                    519: The switch @samp{-ds} causes a debugging dump of the RTL code after
                    520: this pass.  This dump file's name is made by appending @samp{.cse} to
                    521: the input file name.
                    522: 
                    523: @item
                    524: Loop optimization.  This pass moves constant expressions out of loops.
                    525: Its source file is @file{loop.c}.
                    526: 
                    527: The switch @samp{-dL} causes a debugging dump of the RTL code after
                    528: this pass.  This dump file's name is made by appending @samp{.loop} to
                    529: the input file name.
                    530: 
                    531: @item
                    532: Stupid register allocation is performed at this point in a
                    533: nonoptimizing compilation.  It does a little data flow analysis as
                    534: well.  When stupid register allocation is in use, the next pass
                    535: executed is the reloading pass; the others in between are skipped.
                    536: The source file is @file{stupid.c}, with header file @file{stupid.h}
                    537: used for communication with the RTL generation pass.
                    538: 
                    539: @item
                    540: Data flow analysis (@file{flow.c}).  This pass divides the program
                    541: into basic blocks (and in the process deletes unreachable loops); then
                    542: it computes which pseudo-registers are live at each point in the
                    543: program, and makes the first instruction that uses a value point at
                    544: the instruction that computed the value.
                    545: 
                    546: This pass also deletes computations whose results are never used, and
                    547: combines memory references with add or subtract instructions to make
                    548: autoincrement or autodecrement addressing.
                    549: 
                    550: The switch @samp{-df} causes a debugging dump of the RTL code after
                    551: this pass.  This dump file's name is made by appending @samp{.flow} to
                    552: the input file name.  If stupid register allocation is in use, this
                    553: dump file reflects the full results of such allocation.
                    554: 
                    555: @item
                    556: Instruction combination (@file{combine.c}).  This pass attempts to
                    557: combine groups of two or three instructions that are related by data
                    558: flow into single instructions.  It combines the RTL expressions for
                    559: the instructions by substitution, simplifies the result using algebra,
                    560: and then attempts to match the result against the machine description.
                    561: 
                    562: The switch @samp{-dc} causes a debugging dump of the RTL code after
                    563: this pass.  This dump file's name is made by appending @samp{.combine}
                    564: to the input file name.
                    565: 
                    566: @item
                    567: Register class preferencing.  The RTL code is scanned to find out
                    568: which register class is best for each pseudo register.  The source file
                    569: is @file{regclass.c}.
                    570: 
                    571: @item
                    572: Local register allocation (@file{local-alloc.c}).  This pass allocates
                    573: hard registers to pseudo registers that are used only within one basic
                    574: block.  Because the basic block is linear, it can use fast and powerful
                    575: techniques to do a very good job.
                    576: 
                    577: The switch @samp{-dl} causes a debugging dump of the RTL code after
                    578: this pass.  This dump file's name is made by appending @samp{.lreg} to
                    579: the input file name.
                    580: 
                    581: @item
                    582: Global register allocation (@file{global-alloc.c}).  This pass
                    583: allocates hard registers for the remaining pseudo registers (those
                    584: whose life spans are not contained in one basic block).
                    585: 
                    586: @item
                    587: Reloading.  This pass finds instructions that are invalid because a
                    588: value has failed to end up in a register, or has ended up in a
                    589: register of the wrong kind.  It fixes up these instructions by
                    590: reloading the problematical values into registers temporarily.
                    591: Additional instructions are generated to do the copying.
                    592: 
                    593: Source files are @file{reload.c} and @file{reload1.c}, plus the header
                    594: @file{reload.h} used for communication between them.
                    595: 
                    596: The switch @samp{-dg} causes a debugging dump of the RTL code after
                    597: this pass.  This dump file's name is made by appending @samp{.greg} to
                    598: the input file name.
                    599: 
                    600: @item
                    601: Jump optimization is repeated, this time including cross-jumping.
                    602: 
                    603: @item
                    604: Final.  This pass outputs the assembler code for the function.  It is
                    605: also responsible for identifying no-op move instructions and spurious
                    606: test and compare instructions.  The function entry and exit sequences
                    607: are generated directly as assembler code in this pass; they never
                    608: exist as RTL.  Pseudo registers that did not get hard registers are
                    609: given stack slots in this pass.
                    610: 
                    611: The source files are @file{final.c} plus @file{insn-output.c}; the
                    612: latter is generated automatically from the machine description by the
                    613: tool @file{genoutput}.  The header file @file{conditions.h} is used
                    614: for communication between these files.
                    615: 
                    616: @item
                    617: Debugging information output.  This is run after final because it must
                    618: output the stack slot offsets for pseudo registers that did not get
                    619: hard registers.  Source files are @file{dbxout.c} for DBX symbol table
                    620: format and @file{symout.c} for GDB's own symbol table format.
                    621: @end itemize
                    622: 
                    623: Some additional files are used by all or many passes:
                    624: 
                    625: @itemize @bullet
                    626: @item
                    627: Every pass uses @file{machmode.def}, which defines the machine modes.
                    628: 
                    629: @item
                    630: All the passes that work with RTL use the header files @file{rtl.h}
                    631: and @file{rtl.def}, and subroutines in file @file{rtl.c}.  The
                    632: tools @code{gen*} also use these files to read and work with the
                    633: machine description RTL.
                    634: 
                    635: @item
                    636: Several passes refer to the header file @file{insn-config.h} which
                    637: contains a few parameters (C macro definitions) generated
                    638: automatically from the machine description RTL by the tool
                    639: @code{genconfig}.
                    640: 
                    641: @item
                    642: Several passes use the instruction recognizer, which consists of
                    643: @file{recog.c} and @file{recog.h}, plus the files @file{insn-recog.c}
                    644: and @file{insn-extract.c} that are generated automatically from the
                    645: machine description by the tools @file{genrecog} and @file{genextract}.
                    646: 
                    647: @item
                    648: Several passes use the header file @file{regs.h} which defines the
                    649: information recorded about pseudo register usage, @file{basic-block.h}
                    650: which defines the information recorded about basic blocks.
                    651: 
                    652: @item
                    653: @file{hard-reg-set.h} defines the type @code{HARD_REG_SET}, a bit-vector
                    654: with a bit for each hard register, and some macros to manipulate it.
                    655: This type is just @code{int} if the machine has few enough hard registers;
                    656: otherwise it is an array of @code{int} and some of the macros expand
                    657: into loops.
                    658: @end itemize
                    659: 
                    660: @node RTL, Machine Desc, Passes, Top
                    661: @chapter RTL Representation
                    662: 
                    663: Most of the work of the compiler is done on an intermediate representation
                    664: called register tranfer language.  In this language, the instructions to be
                    665: output are described, pretty much one by one, in an algebraic form that
                    666: describes what the instruction does.
                    667: 
                    668: RTL is inspired by Lisp lists.  It has both an internal form, made up of
                    669: structures that point at other structures, and a textual form that is used
                    670: in the machine description and in printed debugging dumps.  The textual
                    671: form uses nested parentheses to indicate the pointers in the internal form.
                    672: 
                    673: @menu
                    674: * RTL Objects::       Expressions vs vectors vs strings vs integers.
                    675: * Accessors::         Macros to access expression operands or vector elts.
                    676: * Machine Modes::     Describing the size and format of a datum.
                    677: * Constants::         Expressions with constant values.
                    678: * Regs and Memory::   Expressions representing register contents or memory.
                    679: * Arithmetic::        Expressions representing arithmetic on other expressions.
                    680: * Comparisons::       Expressions representing comparison of expressions.
                    681: * Bit Fields::        Expressions representing bit-fields in memory or reg.
                    682: * Conversions::       Extending, truncating, floating or fixing.
                    683: * RTL Declarations::  Declaring volatility, constancy, etc.
                    684: * Side Effects::      Expressions for storing in registers, etc.
                    685: * Incdec::            Embedded side-effects for autoincrement addressing.
                    686: * Insns::             Expression types for entire insns.
                    687: * Sharing::           Some expressions are unique; others *must* be copied.
                    688: @end menu
                    689: 
                    690: @node RTL Objects, Accessors, RTL, RTL
                    691: @section RTL Object Types
                    692: 
                    693: RTL uses four kinds of objects: expressions, integers, strings and vectors.
                    694: Expressions are the most important ones.  An RTL expression is a C
                    695: structure, but it is usually referred to with a pointer; a type that is
                    696: given the typedef name @code{rtx}.
                    697: 
                    698: An integer is simply an @code{int}, and a string is a @code{char *}.
                    699: Within rtl code, strings appear only inside @samp{symbol_ref} expressions,
                    700: but they appear in other contexts in the rtl expressions that make up
                    701: machine descriptions.  Their written form uses decimal digits.
                    702: 
                    703: A string is a sequence of characters.  In core it is represented as a
                    704: @code{char *} in usual C fashion, and they are written in C syntax as well.
                    705: However, strings in RTL may never be null.  If you write an empty string in
                    706: a machine description, it is represented in core as a null pointer rather
                    707: than as a pointer to a null character.  In certain contexts, these null
                    708: pointers instead of strings are valid.
                    709: 
                    710: A vector contains an arbitrary, specified number of pointers to
                    711: expressions.  The number of elements in the vector is explicitly present in
                    712: the vector.  The written form of a vector consists of square brackets
                    713: (@samp{[@dots{}]}) surrounding the elements, in sequence and with
                    714: whitespace separating them.  Vectors of length zero are not created; null
                    715: pointers are used instead.
                    716: 
                    717: Expressions are classified by @dfn{expression code}.  The expression code
                    718: is a name defined in @file{rtl.def}, which is also (in upper case) a C
                    719: enumeration constant.  The possible expression codes and their meanings are
                    720: machine-independent.  The code of an rtx can be extracted with the macro
                    721: @code{GET_CODE (@var{x})} and altered with @code{PUT_CODE (@var{x},
                    722: @var{newcode})}.
                    723: 
                    724: The expression code determines how many operands the expression contains,
                    725: and what kinds of objects they are.  In RTL, unlike Lisp, you cannot tell
                    726: by looking at an operand what kind of object it is.  Instead, you must know
                    727: from its context---from the expression code of the containing expression.
                    728: For example, in an expression of code @code{subreg}, the first operand is
                    729: to be regarded as an expression and the second operand as an integer.  In
                    730: an expression of code @code{plus}, there are two operands, both of which
                    731: are to be regarded as expressions.  In a @code{symbol_ref} expression,
                    732: there is one operand, which is to be regarded as a string.
                    733: 
                    734: Expressions are written as parentheses containing the name of the
                    735: expression type, its flags and machine mode if any, and then the operands
                    736: of the expression (separated by spaces).
                    737: 
                    738: In a few contexts a null pointer is valid where an expression is normally
                    739: wanted.  The written form of this is @samp{(nil)}.
                    740: 
                    741: @node Accessors, Machine Modes, RTL Objects, RTL
                    742: @section Access to Operands
                    743: 
                    744: For each expression type @file{rtl.def} specifies the number of contained
                    745: objects and their kinds, with four possibilities: @samp{e} for expression
                    746: (actually a pointer to an expression), @samp{i} for integer, @samp{s} for
                    747: string, and @samp{E} for vector of expressions.  The sequence of letters
                    748: for an expression code is called its @dfn{format}.  Thus, the format of
                    749: @code{subreg} is @samp{ei}.
                    750: 
                    751: Two other format characters are used occasionally: @samp{u} and @samp{0}.
                    752: @samp{u} is equivalent to @samp{e} except that it is printed differently in
                    753: debugging dumps, and @samp{0} means a slot whose contents do not fit any
                    754: normal category.  @samp{0} slots are not printed at all in dumps, and are
                    755: often used in special ways by small parts of the compiler.
                    756: 
                    757: There are macros to get the number of operands and the format of an
                    758: expression code:
                    759: 
                    760: @table @code
                    761: @item GET_RTX_LENGTH (@var{code})
                    762: Number of operands of an rtx of code @var{code}.
                    763: 
                    764: @item GET_RTX_FORMAT (@var{code})
                    765: The format of an rtx of code @var{code}, as a C string.
                    766: @end table
                    767: 
                    768: Operands of expressions are accessed using the macros @code{XEXP},
                    769: @code{XINT} and @code{XSTR}.  Each of these macros takes two arguments: an
                    770: expression-pointer (rtx) and an operand number (counting from zero).  Thus,
                    771: 
                    772: @example
                    773: XEXP (x, 2)
                    774: @end example
                    775: 
                    776: @noindent
                    777: accesses operand 2 of expression @var{x}, as an expression.
                    778: 
                    779: @example
                    780: XINT (x, 2)
                    781: @end example
                    782: 
                    783: @noindent
                    784: accesses the same operand as an integer.  @code{XSTR}, used in the same
                    785: fashion, would access it as a string.
                    786: 
                    787: Any operand can be accessed as an integer, as an expression or as a string.
                    788: You must choose the correct method of access for the kind of value actually
                    789: stored in the operand.  You would do this based on the expression code of
                    790: the containing expression.  That is also how you would know how many
                    791: operands there are.
                    792: 
                    793: For example, if @var{x} is a @samp{subreg} expression, you know that it has
                    794: two operands which can be correctly accessed as @code{XEXP (x, 0)} and
                    795: @code{XINT (x, 1)}.  If you did @code{XINT (x, 0)}, you would get the
                    796: address of the expression operand but cast as an integer; that might
                    797: occasionally be useful, but it would be cleaner to write @code{(int) XEXP
                    798: (x, 0)}.  @code{XEXP (x, 1)} would also compile without error, and would
                    799: return the second, integer operand cast as an expression pointer, which
                    800: would probably result in a crash when accessed.  Nothing stops you from
                    801: writing @code{XEXP (x, 28)} either, but this will access memory past the
                    802: end of the expression with unpredictable results.
                    803: 
                    804: Access to operands which are vectors is more complicated.  You can use the
                    805: macro @code{XVEC} to get the vector-pointer itself, or the macros
                    806: @code{XVECEXP} and @code{XVECLEN} to access the elements and length of a
                    807: vector.
                    808: 
                    809: @table @code
                    810: @item XVEC (@var{exp}, @var{idx})
                    811: Access the vector-pointer which is operand number @var{idx} in @var{exp}.
                    812: 
                    813: @item XVECLEN (@var{exp}, @var{idx})
                    814: Access the length (number of elements) in the vector which is
                    815: in operand number @var{idx} in @var{exp}.  This value is an @code{int}.
                    816: 
                    817: @item XVECLEN (@var{exp}, @var{idx}, @var{eltnum})
                    818: Access element number @var{eltnum} in the vector which is
                    819: in operand number @var{idx} in @var{exp}.  This value is an @code{rtx}.
                    820: 
                    821: It is up to you to make sure that @var{eltnum} is not negative
                    822: and is less than @code{XVECLEN (@var{exp}, @var{idx})}.
                    823: @end table
                    824: 
                    825: All the macros defined in this section expand into lvalues and therefore
                    826: can be used to assign the operands, lengths and vector elements as well as
                    827: to access them.
                    828: 
                    829: @node Machine Modes, Constants, Accessors, RTL
                    830: @section Machine Modes
                    831: 
                    832: A machine mode describes a size of data object and the representation used
                    833: for it.  In the C code, machine modes are represented by an enumeration
                    834: type, @code{enum machine_mode}.  Each rtl expression has room for a machine
                    835: mode and so do certain kinds of tree expressions (declarations and types,
                    836: to be precise).
                    837: 
                    838: In debugging dumps and machine descriptions, the machine mode of an RTL
                    839: expression is written after the expression code with a colon to separate
                    840: them.  The letters @samp{mode} which appear at the end of each machine mode
                    841: name are omitted.  For example, @code{(reg:SI 38)} is a @samp{reg}
                    842: expression with machine mode @code{SImode}.  If the mode is
                    843: @code{VOIDmode}, it is not written at all.
                    844: 
                    845: Here is a table of machine modes.
                    846: 
                    847: @table @code
                    848: @item QImode
                    849: ``Quarter-Integer'' mode represents a single byte treated as an integer.
                    850: 
                    851: @item HImode
                    852: ``Half-Integer'' mode represents a two-byte integer.
                    853: 
                    854: @item SImode
                    855: ``Single Integer'' mode represents a four-byte integer.
                    856: 
                    857: @item DImode
                    858: ``Double Integer'' mode represents an eight-byte integer.
                    859: 
                    860: @item TImode
                    861: ``Tetra Integer'' (?) mode represents a sixteen-byte integer.
                    862: 
                    863: @item SFmode
                    864: ``Single Floating'' mode represents a single-precision (four byte) floating
                    865: point number.
                    866: 
                    867: @item DFmode
                    868: ``Double Floating'' mode represents a double-precision (eight byte) floating
                    869: point number.
                    870: 
                    871: @item TFmode
                    872: ``Tetra Floating'' mode represents a quadruple-precision (sixteen byte)
                    873: floating point number.
                    874: 
                    875: @item BLKmode
                    876: ``Block'' mode represents values that are aggregates to which none of
                    877: the other modes apply.  In rtl, only memory references can have this mode,
                    878: and only if they appear in string-move or vector instructions.  On machines
                    879: which have no such instructions, @code{BLKmode} will not appear in RTL.
                    880: 
                    881: @item VOIDmode
                    882: Void mode means the absence of a mode or an unspecified mode.
                    883: For example, RTL expresslons of code @samp{const_int} have mode
                    884: @code{VOIDmode} because they can be taken to have whatever mode the context
                    885: requires.  In debugging dumps of RTL, @code{VOIDmode} is expressed by
                    886: the absence of any mode.
                    887: 
                    888: @item EPmode
                    889: ``Entry Pointer'' mode is intended to be used for function variables in
                    890: Pascal and other block structured languages.  Such values contain
                    891: both a function address and a static chain pointer for access to
                    892: automatic variables of outer levels.  This mode is only partially
                    893: implemented since C does not use it.
                    894: 
                    895: @item CSImode@r{, @dots{}}
                    896: ``Complex Single Integer'' mode stands for a complex number represented
                    897: as a pair of @code{SImode} integers.  Any of the integer and floating modes
                    898: may have @samp{C} prefixed to its name to obtain a complex number mode.
                    899: For example, there are @code{CQImode}, @code{CSFmode}, and @code{CDFmode}.
                    900: Since C does not support complex numbers, these machine modes are only
                    901: partially implemented.
                    902: 
                    903: @item BImode
                    904: This is the machine mode of a bit-field in a structure.  It is used
                    905: only in the syntax tree, never in RTL, and in the syntax tree it appears
                    906: only in declaration nodes.  In C, it appears only in @code{FIELD_DECL}
                    907: nodes for structure fields defined with a bit size.
                    908: @end table
                    909: 
                    910: The machine description defines @code{Pmode} as a C macro which expands
                    911: into the machine mode used for addresses.  Normally this is @code{SImode}.
                    912: 
                    913: The only modes which a machine description @i{must} support are
                    914: @code{QImode}, @code{SImode}, @code{SFmode} and @code{DFmode}.  The
                    915: compiler will attempt to use @code{DImode} for two-word structures and
                    916: unions, but it would not be hard to program it to avoid this.  Likewise,
                    917: you can arrange for the C type @code{short int} to avoid using
                    918: @code{HImode}.  In the long term it would be desirable to make the set of
                    919: available machine modes machine-dependent and eliminate all assumptions
                    920: about specific machine modes or their uses from the machine-independent
                    921: code of the compiler.
                    922: 
                    923: Here are some C macros that relate to machine modes:
                    924: 
                    925: @table @code
                    926: @item GET_MODE (@var{x})
                    927: Returns the machine mode of the rtx @var{x}.
                    928: 
                    929: @item PUT_MODE (@var{x}, @var{newmode})
                    930: Alters the machine mode of the rtx @var{x} to be @var{newmode}.
                    931: 
                    932: @item GET_MODE_SIZE (@var{m})
                    933: Returns the size in bytes of a datum of mode @var{m}.
                    934: 
                    935: @item GET_MODE_BITSIZE (@var{m})
                    936: Returns the size in bits of a datum of mode @var{m}.
                    937: 
                    938: @item GET_MODE_UNIT_SIZE (@var{m})
                    939: Returns the size in bits of the subunits of a datum of mode @var{m}.
                    940: This is the same as @code{GET_MODE_SIZE} except in the case of
                    941: complex modes and @code{EPmode}.  For them, the unit size ithe
                    942: size of the real or imaginary part, or the size of the function
                    943: pointer or the context pointer.
                    944: @end table
                    945: 
                    946: @node Constants, Regs and Memory, Machine Modes, RTL
                    947: @section Constant Expression Types
                    948: 
                    949: The simplest RTL expressions are those that represent constant values.
                    950: 
                    951: @table @code
                    952: @item (const_int @var{i})
                    953: This type of expression represents the integer value @var{i}.  @var{i}
                    954: is customarily accessed with the macro @code{INTVAL} as in
                    955: @code{INTVAL (exp)}, which is equivalent to @code{XINT (exp, 0)}.
                    956: 
                    957: There is only one expression object for the integer value zero;
                    958: it is the value of the variable @code{const0_rtx}.  Likewise, the
                    959: only expression for integer value one is found in @code{const1_rtx}.
                    960: Any attempt to create an expression of code @code{const_int} and
                    961: value zero or one will return @code{const0_rtx} or @code{const1_rtx}
                    962: as appropriate.
                    963: 
                    964: @item (const_double:@var{m} @var{i0} @var{i1})
                    965: Represents a floating point constant value of mode @var{m}.  The two
                    966: integers @var{i0} and @var{i1} together contain the bits of a
                    967: @code{double} value.  To convert them to a @code{double}, do
                    968: 
                    969: @example
                    970: union { double d; int i[2];} u;
                    971: u.i[0] = XINT (x, 0);
                    972: u.i[1] = XINT (x, 1);
                    973: @end example
                    974: 
                    975: @noindent
                    976: and then refer to @code{u.d}.  The value of the constant is
                    977: represented as a double in this fashion even if the value represented
                    978: is single-precision.
                    979: 
                    980: @code{dconst0_rtx} and @code{fconst0_rtx} are @samp{CONST_DOUBLE}
                    981: expressions with value 0 and modes @code{DFmode} and @code{SFmode}.
                    982: 
                    983: @item (symbol_ref @var{symbol})
                    984: Represents the value of an assembler label for data.  @var{symbol} is
                    985: a string that describes the name of the assembler label.  If it starts
                    986: with a @samp{*}, the label is the rest of @var{symbol} not including
                    987: the @samp{*}.  Otherwise, the label is @var{symbol}, prefixed with
                    988: @samp{_}.
                    989: 
                    990: @item (label_ref @var{label})
                    991: Represents the value of an assembler label for code.  It contains one
                    992: operand, an expression, which must be a @code{code_label} that appears
                    993: in the instruction sequence to identify the place where the label
                    994: should go.
                    995: 
                    996: The reason for using a distinct expression type for code label
                    997: references is so that jump optimization can distinguish them.
                    998: 
                    999: @item (const @var{exp})
                   1000: Represents a constant that is the result of an assembly-time
                   1001: arithmetic computation.  The operand, @var{exp}, is an expression that
                   1002: contains only constants (@samp{const_int}, @samp{symbol_ref} and
                   1003: @samp{label_ref} expressions) combined with @samp{plus} and
                   1004: @samp{minus}.  However, not all combinations are valid, since the
                   1005: assembler cannot do arbitrary arithmetic on relocatable symbols.
                   1006: @end table
                   1007: 
                   1008: @node Regs and Memory, Arithmetic, Constants, RTL
                   1009: @section Registers and Memory
                   1010: 
                   1011: Here are the RTL expression types for describing access to machine
                   1012: registers and to main memory.
                   1013: 
                   1014: @table @code
                   1015: @item (reg:@var{m} @var{n})
                   1016: For small values of the integer @var{n} (less than
                   1017: @code{FIRST_PSEUDO_REGISTER}), this stands for a reference to machine
                   1018: register number @var{n}: a @dfn{hard register}.  For larger values of
                   1019: @var{n}, it stands for a temporary value or @dfn{pseudo register}.
                   1020: The compiler's strategy is to generate code assuming an unlimited
                   1021: number of such pseudo registers, and later convert them into hard
                   1022: registers or into memory references.
                   1023: 
                   1024: The symbol @code{FIRST_PSEUDO_REGISTER} is defined by the machine
                   1025: description, since the number of hard registers on the machine is an
                   1026: invariant characteristic of the machine.  Note, however, that not
                   1027: all of the machine registers must be general registers.  All the
                   1028: machine registers that can be used for storage of data are given
                   1029: hard register numbers, even those that can be used only in certain
                   1030: instructions or can hold only certain types of data.
                   1031: 
                   1032: Each pseudo register number used in a function's rtl code is
                   1033: represented by a unique @samp{reg} expression.
                   1034: 
                   1035: @var{m} is the machine mode of the reference.  It is necessary because
                   1036: machines can generally refer to each register in more than one mode.
                   1037: For example, a register may contain a full word but there may be
                   1038: instructions to refer to it as a half word or as a single byte, as
                   1039: well as instructions to refer to it as a floating point number of
                   1040: various precisions.
                   1041: 
                   1042: Even for a register that the machine can access in only one mode,
                   1043: the mode must always be specified.
                   1044: 
                   1045: A hard register may be accessed in various modes throughout one
                   1046: function, but each pseudo register is given a natural mode
                   1047: and is accessed only in that mode.  When it is necessary to describe
                   1048: an access to a pseudo register using a nonnatural mode, a @samp{subreg}
                   1049: expression is used.
                   1050: 
                   1051: A @samp{reg} expression with a machine mode that specifies more than
                   1052: one word of data may actually stand for several consecutive registers.
                   1053: If in addition the register number specifies a hardware register, then
                   1054: it actually represents several consecutive hardware registers starting
                   1055: with the specified one.
                   1056: 
                   1057: Such multi-word hardware register @samp{reg} expressions may not be live
                   1058: across the boundary of a basic block.  The lifetime analysis pass does not
                   1059: know how to record properly that several consecutive registers are
                   1060: actually live there, and therefore register allocation would be confused.
                   1061: The CSE pass must go out of its way to make sure the situation does
                   1062: not arise.
                   1063: 
                   1064: @item (subreg:@var{m} @var{reg} @var{wordnum})
                   1065: @samp{subreg} expressions are used to refer to a register in a machine
                   1066: mode other than its natural one, or to refer to one register of
                   1067: a multi-word @samp{reg} that actually refers to several registers.
                   1068: 
                   1069: Each pseudo-register has a natural mode.  If it is necessary to
                   1070: operate on it in a different mode---for example, to perform a fullword
                   1071: move instruction on a pseudo-register that contains a single byte---
                   1072: the pseudo-register must be enclosed in a @samp{subreg}.  In such
                   1073: a case, @var{wordnum} is zero.
                   1074: 
                   1075: The other use of @samp{subreg} is to extract the individual registers
                   1076: of a multi-register value.  Machine modes such as @code{DImode} and
                   1077: @code{EPmode} indicate values longer than a word, values which usually
                   1078: require two consecutive registers.  To access one of the registers,
                   1079: use a @samp{subreg} with mode @code{SImode} and a @var{wordnum} that
                   1080: says which register.
                   1081: 
                   1082: The compilation parameter @code{WORDS_BIG_ENDIAN}, if defined, says
                   1083: that word number zero is the most significant part; otherwise, it is
                   1084: the least significant part.
                   1085: 
                   1086: Note that it is not valid to access a @code{DFmode} value in @code{SFmode}
                   1087: using a @samp{subreg}.  On some machines the most significant part of a
                   1088: @code{DFmode} value does not have the same format as a single-precision
                   1089: floating value.
                   1090: 
                   1091: @item (cc0)
                   1092: This refers to the machine's condition code register.  It has no
                   1093: operands and may not have a machine mode.  It may be validly used in
                   1094: only two contexts: as the destination of an assignment (in test and
                   1095: compare instructions) and in comparison operators comparing against
                   1096: zero (@code{const_int} with value zero; that is to say,
                   1097: @code{const0_rtx}.
                   1098: 
                   1099: There is only one expression object of code @code{cc0}; it is the
                   1100: value of the variable @code{cc0_rtx}.  Any attempt to create an
                   1101: expression of code @code{cc0} will return @code{cc0_rtx}.
                   1102: 
                   1103: One special thing about the condition code register is that instructions
                   1104: can set it implicitly.  On many machines, nearly all instructions set
                   1105: the condition code based on the value that they compute or store.
                   1106: It is not necessary to record these actions explicitly in the RTL
                   1107: because the machine description includes a prescription for recognizing
                   1108: the instructions that do so (by means of the macro @code{NOTICE_UPDATE_CC}).
                   1109: Only instructions whose sole purpose is to set the condition code,
                   1110: and instructions that use the condition code, need mention @code{(cc0)}.
                   1111: 
                   1112: @item (pc)
                   1113: This represents the machine's program counter.  It has no operands and
                   1114: may not have a machine mode.  @code{(pc)} may be validly used only in
                   1115: certain specific contexts in jump instructions.
                   1116: 
                   1117: There is only one expression object of code @code{pc}; it is the value of
                   1118: the variable @code{pc_rtx}.  Any attempt to create an expression of code
                   1119: @code{pc} will return @code{pc_rtx}.
                   1120: 
                   1121: All instructions that do not jump alter the program counter implicitly,
                   1122: but there is no need to mention this in the RTL.
                   1123: 
                   1124: @item (mem:@var{m} @var{addr})
                   1125: This rtx represents a reference to main memory at an address
                   1126: represented by the expression @var{addr}.  @var{m} specifies how
                   1127: large a unit of memory is accessed.
                   1128: @end table
                   1129: 
                   1130: @node Arithmetic, Comparisons, Regs and Memory, RTL
                   1131: @section RTL Expressions for Arithmetic
                   1132: 
                   1133: @table @code
                   1134: @item (plus:@var{m} @var{x} @var{y})
                   1135: Represents the sum of the values represented by @var{x} and @var{y}
                   1136: carried out in machine mode @var{m}.  This is valid only if
                   1137: @var{x} and @var{y} both are valid for mode @var{m}.
                   1138: 
                   1139: @item (minus:@var{m} @var{x} @var{y})
                   1140: Like @samp{plus} but represents subtraction.
                   1141: 
                   1142: @item (minus @var{x} @var{y})
                   1143: Represents the result of subtracting @var{y} from @var{x}
                   1144: for purposes of comparison.  The absence of a machine mode
                   1145: in the @samp{minus} expression indicates that the result is
                   1146: computed without overflow, as if with infinite precision.
                   1147: 
                   1148: Of course, machines can't really subtract with infinite precision.
                   1149: However, they can pretend to do so when only the sign of the
                   1150: result will be used, which is the case when the result is stored
                   1151: in @code{(cc0)}.  And that is the only was this kind of expression
                   1152: may validly be used: as a value to be stored in the condition codes.
                   1153: 
                   1154: @item (neg:@var{m} @var{x})
                   1155: Represents the negation (subtraction from zero) of the value
                   1156: represented by @var{x}, carried out in mode @var{m}.  @var{x} must be
                   1157: valid for mode @var{m}.
                   1158: 
                   1159: @item (mult:@var{m} @var{x} @var{y})
                   1160: Represents the signed product of the values represented by @var{x} and
                   1161: @var{y} carried out in machine mode @var{m}.  If
                   1162: @var{x} and @var{y} are both valid for mode @var{m}, this is ordinary
                   1163: size-preserving multiplication.  Alteratively, both @var{x} and @var{y}
                   1164: may be valid for a different, narrower mode.  This represents the
                   1165: kind of multiplication that generates a product wider than the operands.
                   1166: Widening multiplication and same-size multiplication are completely
                   1167: distinct and supported by different machine instructions; machines may
                   1168: support one but not the other.
                   1169: 
                   1170: @samp{mult} may be used for floating point division as well.
                   1171: Then @var{m} is a floating point machine mode.
                   1172: 
                   1173: @item (umult:@var{m} @var{x} @var{y})
                   1174: Like @samp{mult} but represents unsigned multiplication.  It may be
                   1175: used in both same-size and widening forms, like @samp{mult}.
                   1176: @samp{umult} is used only for fixed-point division.
                   1177: 
                   1178: @item (div:@var{m} @var{x} @var{y})
                   1179: Represents the quotient in signed division of @var{x} by @var{y},
                   1180: carried out in machine mode @var{m}.  If @var{m} is a floating-point
                   1181: mode, it represents the exact quotient; otherwise, the integerized
                   1182: quotient.  If @var{x} and @var{y} are both valid for mode @var{m},
                   1183: this is ordinary size-preserving division.  Some machines have
                   1184: division instructions in which the operands and quotient widths are
                   1185: not all the same; such instructions are represented by @samp{div}
                   1186: expressions in which the machine modes are not all the same.
                   1187: 
                   1188: @item (udiv:@var{m} @var{x} @var{y})
                   1189: Like @samp{div} but represents unsigned division.
                   1190: 
                   1191: @item (mod:@var{m} @var{x} @var{y})
                   1192: @itemx (umod:@var{m} @var{x} @var{y})
                   1193: Like @samp{div} and @samp{udiv} but represent the remainder instead of
                   1194: the quotient.
                   1195: 
                   1196: @item (not:@var{m} @var{x})
                   1197: Represents the bitwise complement of the value represented by @var{x},
                   1198: carried out in mode @var{m}, which must be a fixed-point machine mode.
                   1199: @var{x} must be valid for mode @var{m}, which must be a fixed-point mode.
                   1200: 
                   1201: @item (and:@var{m} @var{x} @var{y})
                   1202: Represents the bitwise logical-and of the values represented by
                   1203: @var{x} and @var{y}, carried out in machine mode @var{m}.  This is
                   1204: valid only if @var{x} and @var{y} both are valid for mode @var{m},
                   1205: which must be a fixed-point mode.
                   1206: 
                   1207: @item (ior:@var{m} @var{x} @var{y})
                   1208: Represents the bitwise inclusive-or of the values represented by
                   1209: @var{x} and @var{y}, carried out in machine mode @var{m}.  This is
                   1210: valid only if @var{x} and @var{y} both are valid for mode @var{m},
                   1211: which must be a fixed-point mode.
                   1212: 
                   1213: @item (xor:@var{m} @var{x} @var{y})
                   1214: Represents the bitwise exclusive-or of the values represented by
                   1215: @var{x} and @var{y}, carried out in machine mode @var{m}.  This is
                   1216: valid only if @var{x} and @var{y} both are valid for mode @var{m},
                   1217: which must be a fixed-point mode.
                   1218: 
                   1219: @item (lshift:@var{m} @var{x} @var{c})
                   1220: Represents the result of logically shifting @var{x} left by @var{c}
                   1221: places.  @var{x} must be valid for the mode @var{m}, a fixed-point
                   1222: machine mode.  @var{c} must be valid for a fixed-point mode;
                   1223: which mode is determined by the mode called for in the machine
                   1224: description entry for the left-shift instruction.  For example,
                   1225: on the Vax, the mode of @var{c} is @code{QImode} regardless of @var{m}.
                   1226: 
                   1227: On some machines, negative values of @var{c} may be meaningful; this
                   1228: is why logical left shift an arithmetic left shift are distinguished.
                   1229: For example, Vaxes have no right-shift instructions, and right shifts
                   1230: are represented as left-shift instructions whose counts happen
                   1231: to be negative constants or else computed (in a previous instruction)
                   1232: by negation.
                   1233: 
                   1234: @item (ashift:@var{m} @var{x} @var{c})
                   1235: Like @samp{lshift} but for arithmetic left shift.
                   1236: 
                   1237: @item (lshiftrt:@var{m} @var{x} @var{c})
                   1238: @itemx (ashiftrt:@var{m} @var{x} @var{c})
                   1239: Like @samp{lshift} and @samp{ashift} but for right shift.
                   1240: 
                   1241: @item (rotate:@var{m} @var{x} @var{c})
                   1242: @itemx (rotatert:@var{m} @var{x} @var{c})
                   1243: Similar but represent left and right rotate.
                   1244: 
                   1245: @item (abs:@var{m} @var{x})
                   1246: Represents the absolute value of @var{x}, computed in mode @var{m}.
                   1247: @var{x} must be valid for @var{m}.
                   1248: 
                   1249: @item (sqrt:@var{m} @var{x})
                   1250: Represents the square root of @var{x}, computed in mode @var{m}.
                   1251: @var{x} must be valid for @var{m}.  Most often @var{m} will be
                   1252: a floating point mode.
                   1253: @end table
                   1254: 
                   1255: @node Comparisons, Bit Fields, Arithmetic, RTL
                   1256: @section Comparison Operations
                   1257: 
                   1258: Comparison operators test a relation on two operands and are considered to
                   1259: represent the value 1 if the relation holds, or zero if it does not.  The
                   1260: mode of the comparison is determined by the operands; they must both be
                   1261: valid for a common machine mode.  A comparison with both operands constant
                   1262: would be invalid as the machine mode could not be deduced from it, but such
                   1263: a comparison should never exist in rtl due to constant folding.
                   1264: 
                   1265: Inequality comparisons come in two flavors, signed and unsigned.  Thus,
                   1266: there are distinct expression codes @samp{GT} and @samp{GTU} for signed and
                   1267: unsigned greater-than.  These can produce different results for the same
                   1268: pair of integer values: for example, 1 is signed greater-than -1 but not
                   1269: unsigned greater-than, because -1 when regarded as unsigned is actually
                   1270: 0xffffffff which is greater than 1.
                   1271: 
                   1272: The signed comparisons are also used for floating point values.  Floating
                   1273: point comparisons are distinguished by the machine modes of the operands.
                   1274: 
                   1275: The comparison operators may be used to compare the condition codes
                   1276: @code{(cc0)} against zero, as in @code{(eq (cc0) (const_int 0))}.
                   1277: Such a construct actually refers to the result of the preceding
                   1278: instruction in which the condition codes were set.  The above
                   1279: example stands for 1 if the condition codes were set to say
                   1280: ``zero'' or ``equal'', 0 otherwise.  Although the same comparison
                   1281: operators are used for this as may be used in other contexts
                   1282: on actual data, no confusion can result since the machine description
                   1283: would never allow both kinds of uses in the same context.
                   1284: 
                   1285: @table @code
                   1286: @item (eq @var{x} @var{y})
                   1287: 1 if the values represented by @var{x} and @var{y} are equal,
                   1288: otherwise 0.
                   1289: 
                   1290: @item (ne @var{x} @var{y})
                   1291: 1 if the values represented by @var{x} and @var{y} are not equal,
                   1292: otherwise 0.
                   1293: 
                   1294: @item (gt @var{x} @var{y})
                   1295: 1 if the @var{x} is greater than @var{y}.  If they are fixed-point,
                   1296: the comparison is done in a signed sense.
                   1297: 
                   1298: @item (gtu @var{x} @var{y})
                   1299: Like @samp{gt} but does unsigned comparison, on fixed-point numbers only.
                   1300: 
                   1301: @item (lt @var{x} @var{y})
                   1302: @item (ltu @var{x} @var{y})
                   1303: Like @samp{gt} and @samp{gtu} but test for ``less than''.
                   1304: 
                   1305: @item (ge @var{x} @var{y})
                   1306: @item (geu @var{x} @var{y})
                   1307: Like @samp{gt} and @samp{gtu} but test for ``greater than or equal''.
                   1308: 
                   1309: @item (le @var{x} @var{y})
                   1310: @item (leu @var{x} @var{y})
                   1311: Like @samp{gt} and @samp{gtu} but test for ``less than or equal''.
                   1312: 
                   1313: @item (if_then_else @var{cond} @var{then} @var{else})
                   1314: This is not a comparison operation but is listed here because it is
                   1315: always used in conjunction with a comparison operation.  To be
                   1316: precise, @var{cond} is a comparison expression.  This expression
                   1317: represents a choice, according to @var{cond}, between the value
                   1318: represented by @var{then} and the one represented by @var{else}.
                   1319: 
                   1320: On most machines, @samp{if_then_else} expressions are valid only
                   1321: to express conditional jumps.
                   1322: @end table
                   1323: 
                   1324: @node Bit Fields, Conversions, Comparisons, RTL
                   1325: @section Bit-fields
                   1326: 
                   1327: Special expression codes exist to represent bit-field instructions.
                   1328: These types of expressions are lvalues in rtl; they may appear
                   1329: on the left side of a assignment, indicating insertion of a value
                   1330: into the specified bit field.
                   1331: 
                   1332: @table @code
                   1333: @item (sign_extract:SI @var{loc} @var{size} @var{pos})
                   1334: This represents a reference to a sign-extended bit-field contained or
                   1335: starting in @var{loc} (a memory or register reference).  The bit field
                   1336: is @var{size} bits wide and starts at bit @var{pos}.  The compilation
                   1337: switch @code{BITS_BIG_ENDIAN} says which end of the memory unit
                   1338: @var{pos} counts from.
                   1339: 
                   1340: Which machine modes are valid for @var{loc} depends on the machine,
                   1341: but typically @var{loc} should be a single byte when in memory
                   1342: or a full word in a register.
                   1343: 
                   1344: @item (zero_extract:SI @var{loc} @var{pos} @var{size})
                   1345: Like @samp{sign_extract} but refers to an unsigned or zero-extended
                   1346: bit field.  The same sequence of bits are extracted, but they
                   1347: are filled to an entire word with zeros instead of by sign-extension.
                   1348: @end table
                   1349: 
                   1350: @node Conversions, RTL Declarations, Bit Fields, RTL
                   1351: @section Conversions
                   1352: 
                   1353: All conversions between machine modes must be represented by
                   1354: explicit conversion operations.  For example, an expression
                   1355: which the sum of a byte and a full word cannot be written as
                   1356: @code{(plus:SI (reg:QI 34) (reg:SI 80))} because the @samp{plus}
                   1357: operation requires two operands of the same machine mode.
                   1358: Therefore, the byte-sized operand is enclosed in a conversion
                   1359: operation, as in
                   1360: 
                   1361: @example
                   1362: (plus:SI (sign_extend:SI (reg:QI 34)) (reg:SI 80))
                   1363: @end example
                   1364: 
                   1365: The conversion operation is not a mere placeholder, because there
                   1366: may be more than one way of converting from a given starting mode
                   1367: to the desired final mode.  The conversion operation code says how
                   1368: to do it.
                   1369: 
                   1370: @table @code
                   1371: @item (sign_extend:@var{m} @var{x})
                   1372: Represents the result of sign-extending the value @var{x}
                   1373: to machine mode @var{m}.  @var{m} must be a fixed-point mode
                   1374: and @var{x} a fixed-point value of a mode narrower than @var{m}.
                   1375: 
                   1376: @item (zero_extend:@var{m} @var{x})
                   1377: Represents the result of zero-extending the value @var{x}
                   1378: to machine mode @var{m}.  @var{m} must be a fixed-point mode
                   1379: and @var{x} a fixed-point value of a mode narrower than @var{m}.
                   1380: 
                   1381: @item (float_extend:@var{m} @var{x})
                   1382: Represents the result of extending the value @var{x}
                   1383: to machine mode @var{m}.  @var{m} must be a floating point mode
                   1384: and @var{x} a floating point value of a mode narrower than @var{m}.
                   1385: 
                   1386: @item (truncate:@var{m} @var{x})
                   1387: Represents the result of truncating the value @var{x}
                   1388: to machine mode @var{m}.  @var{m} must be a fixed-point mode
                   1389: and @var{x} a fixed-point value of a mode wider than @var{m}.
                   1390: 
                   1391: @item (float_truncate:@var{m} @var{x})
                   1392: Represents the result of truncating the value @var{x}
                   1393: to machine mode @var{m}.  @var{m} must be a floating point mode
                   1394: and @var{x} a floating point value of a mode wider than @var{m}.
                   1395: 
                   1396: @item (float:@var{m} @var{x})
                   1397: Represents the result of converting fixed point value @var{x}
                   1398: to floating point mode @var{m}.
                   1399: 
                   1400: @item (fix:@var{m} @var{x})
                   1401: Represents the result of converting floating point value @var{x}
                   1402: to fixed point mode @var{m}.  How rounding is done is not specified.
                   1403: 
                   1404: @end table
                   1405: 
                   1406: @node RTL Declarations, Side Effects, Conversions, RTL
                   1407: @section Declarations
                   1408: 
                   1409: Declaration expression codes do not represent arithmetic operations
                   1410: but rather state assertions about their operands.
                   1411: 
                   1412: @table @code
                   1413: @item (volatile:@var{m} @var{x})
                   1414: Represents the same value @var{x} does, but makes the assertion
                   1415: that it should be treated as a volatile value.  This forbids
                   1416: coalescing multiple accesses or deleting them even if it would
                   1417: appear to have no effect on the program.  @var{x} must be a @samp{mem}
                   1418: expression with mode @var{m}.
                   1419: 
                   1420: The first thing the reload pass does to an insn is to remove all
                   1421: @samp{volatile} expressions from it; each one is replaced by its
                   1422: operand.
                   1423: 
                   1424: Recognizers will never recognize anything with @samp{volatile} in it.
                   1425: This automatically prevents some optimizations on such things
                   1426: (such as instruction combination).  After the reload pass removes
                   1427: all volatility information, the insns can be recognized.
                   1428: 
                   1429: Cse removes @samp{volatile} from destinations of @samp{set}'s, because
                   1430: no optimizations reorder such @samp{set}s.  This is not required for
                   1431: correct code and is done to permit some optimization on the value to
                   1432: be stored.
                   1433: 
                   1434: @item (unchanging:@var{m} @var{x})
                   1435: Represents the same value @var{x} does, but makes the assertion
                   1436: that its value is effectively constant during the execution
                   1437: of the current function.  This permits references to @var{x}
                   1438: to be moved freely within the function.  @var{x} must be a @samp{reg}
                   1439: expression with mode @var{m}.
                   1440: 
                   1441: @item (strict_low_part (subreg:@var{m} (reg:@var{n} @var{r}) 0))
                   1442: This expression code is used in only one context: operand 0 of a
                   1443: @samp{set} expression.  In addition, the operand of this expression
                   1444: must be a @samp{subreg} expression.
                   1445: 
                   1446: The presence of @samp{strict_low_part} says that the part of the
                   1447: register which is meaningful in mode @var{n} but is not part of
                   1448: mode @var{m} is not to be altered.  Normally, an assignment to such
                   1449: a subreg is allowed to have undefined effects on the rest of the
                   1450: register when @var{m} is less than a word.
                   1451: @end table
                   1452: 
                   1453: @node Side Effects, Incdec, RTL Declarations, RTL
                   1454: @section Side Effect Expressions
                   1455: 
                   1456: The expression codes described so far represent values, not actions.
                   1457: But machine instructions never produce values; they are meaningful
                   1458: only for their side effects on the state of the machine.  Special
                   1459: expression codes are used to represent side effects.
                   1460: 
                   1461: The body of an instruction is always one of these side effect codes;
                   1462: the codes described above, which represent values, appear only as
                   1463: the operands of these.
                   1464: 
                   1465: @table @code
                   1466: @item (set @var{lval} @var{x})
                   1467: Represents the action of storing the value of @var{x} into the place
                   1468: represented by @var{lval}.  @var{lval} must be an expression
                   1469: representing a place that can be stored in: @samp{reg} (or
                   1470: @samp{subreg} or @samp{strict_low_part}), @samp{mem}, @samp{pc} or
                   1471: @samp{cc0}.
                   1472: 
                   1473: If @var{lval} is a @samp{reg}, @samp{subreg} or @samp{mem}, it has a
                   1474: machine mode; then @var{x} must be valid for that mode.
                   1475: 
                   1476: If @var{lval} is a @samp{reg} whose machine mode is less than the full
                   1477: width of the register, then it means that the part of the register
                   1478: specified by the machine mode is given the specified value and the
                   1479: rest of the register receives an undefined value.  Likewise, if
                   1480: @var{lval} is a @samp{subreg} whose machine mode is narrower than
                   1481: @code{SImode}, the rest of the register can be changed in an undefined way.
                   1482: 
                   1483: If @var{lval} is a @samp{strict_low_part} of a @samp{subreg}, then the
                   1484: part of the register specified by the machine mode of the
                   1485: @samp{subreg} is given the value @var{x} and the rest of the register
                   1486: is not changed.
                   1487: 
                   1488: If @var{lval} is @code{(cc0)}, it has no machine mode, and @var{x} may
                   1489: have any mode.  This represents a ``test'' or ``compare'' instruction.
                   1490: 
                   1491: If @var{lval} is @code{(pc)}, we have a jump instruction, and the
                   1492: possibilities for @var{x} are very limited.  It may be a
                   1493: @samp{label_ref} expression (unconditional jump).  It may be an
                   1494: @samp{if_then_else} (conditional jump), in which case either the
                   1495: second or the third operand must be @code{(pc)} (for the case which
                   1496: does not jump) and the other of the two must be a @samp{label_ref}
                   1497: (for the case which does jump).  @var{x} may also be a @samp{mem} or
                   1498: @code{(plus:SI (pc) @var{y})}, where @var{y} may be a @samp{reg} or a
                   1499: @samp{mem}; these unusual patterns are used to represent jumps through
                   1500: branch tables.
                   1501: 
                   1502: @item (return)
                   1503: Represents a return from the current function, on machines where
                   1504: this can be done with one instruction, such as Vaxen.  On machines
                   1505: where a multi-instruction ``epilogue'' must be executed in order
                   1506: to return from the function, returning is done by jumping to a
                   1507: label which precedes the epilogue, and the @samp{return} expression
                   1508: code is never used.
                   1509: 
                   1510: @item (call @var{function} @var{nargs})
                   1511: Represents a function call.  @var{function} is a @samp{mem} expression
                   1512: whose address is the address of the function to be called.  @var{nargs}
                   1513: is an expression representing the number of words of argument.
                   1514: 
                   1515: Each machine has a standard machine mode which @var{function} must
                   1516: have.  The machine descripion defines macro @code{FUNCTION_MODE} to
                   1517: expand into the requisite mode name.  The purpose of this mode is to
                   1518: specify what kind of addressing is allowed, on machines where the
                   1519: allowed kinds of addressing depend on the machine mode being
                   1520: addressed.
                   1521: 
                   1522: @item (clobber @var{x})
                   1523: Represents the storing or possible storing of an unpredictable,
                   1524: undescribed value into @var{x}, which must be a @samp{reg} or
                   1525: @samp{mem} expression.
                   1526: 
                   1527: One place this is used is in string instructions that store standard
                   1528: values into particular hard registers.  It may not be worth the
                   1529: trouble to describe the values that are stored, but it is essential
                   1530: to inform the compiler that the registers will be altered, lest it
                   1531: attempt to keep data in them across the string instruction.
                   1532: 
                   1533: @var{x} may also be null---a null C pointer, no expression at all.
                   1534: Such a @code{(clobber (null))} expression means that all memory
                   1535: locations must be presumed clobbered.
                   1536: 
                   1537: Note that the machine description classifies certain hard registers as
                   1538: ``call-clobbered''.  All function call instructions are assumed by
                   1539: default to clobber these registers, so there is no need to use
                   1540: @samp{clobber} expressions to indicate this fact.  Also, each function
                   1541: call is assumed to have the potential to alter any memory location.
                   1542: 
                   1543: @item (use @var{x})
                   1544: Represents the use of the value of @var{x}.  It indicates that
                   1545: the value in @var{x} at this point in the program is needed,
                   1546: even though it may not be apparent whythis is so.  Therefore, the
                   1547: compiler will not attempt to delete instructions whose only
                   1548: effect is to store a value in @var{x}.  @var{x} must be a @samp{reg}
                   1549: expression.
                   1550: 
                   1551: @item (parallel [@var{x0} @var{x1} @dots{}])
                   1552: Represents several side effects performed in parallel.  The square
                   1553: brackets stand for a vector; the operand of @samp{parallel} is a
                   1554: vector of expressions.  @var{x0}, @var{x1} and so on are individual
                   1555: side effects---expressions of code @samp{set}, @samp{call},
                   1556: @samp{return}, @samp{clobber} or @samp{use}.
                   1557: 
                   1558: ``In parallel'' means that first all the values used in
                   1559: the individual side-effects are computed, and second all the actual
                   1560: side-effects are performed.  For example,
                   1561: 
                   1562: @example
                   1563: (parallel [(set (reg:SI 1) (mem:SI (reg:SI 1)))
                   1564:            (set (mem:SI (reg:SI 1)) (reg:SI 1))])
                   1565: @end example
                   1566: 
                   1567: @noindent
                   1568: says unambiguously that the values of hard register 1 and the memory
                   1569: location addressed by it are interchanged.  In both places where
                   1570: @code{(reg:SI 1)} appears as a memory address it refers to the value
                   1571: in register 1 @i{before} the execution of the instruction.
                   1572: @end table
                   1573: 
                   1574: Three expression codes appear in place of a side effect, as the body
                   1575: of an insn, though strictly speaking they do not describe side effects
                   1576: as such:
                   1577: 
                   1578: @table @code
                   1579: @item (asm_input @var{s})
                   1580: Represents literal assembler code as described by the string @var{s}.
                   1581: 
                   1582: @item (addr_vec:@var{m} [@var{lr0} @var{lr1} @dots{}])
                   1583: Represents a table of jump addresses.  @var{lr0} etc. are
                   1584: @samp{label_ref} expressions.  The mode @var{m} specifies how much
                   1585: space is given to each address; normally @var{m} would be
                   1586: @code{Pmode}.
                   1587: 
                   1588: @item (addr_diff_vec:@var{m} @var{base} [@var{lr0} @var{lr1} @dots{}])
                   1589: Represents a table of jump addresses expressed as offsets from
                   1590: @var{base}.  @var{lr0} etc. are @samp{label_ref} expressions and so is
                   1591: @var{base}.  The mode @var{m} specifies how much space is given to
                   1592: each address-difference.
                   1593: @end table
                   1594: 
                   1595: @node Incdec, Insns, Side Effects, RTL
                   1596: @section Embedded Side-Effects on Addresses
                   1597: 
                   1598: Four special side-effect expression codes appear as memory addresses.
                   1599: 
                   1600: @table @code
                   1601: @item (pre_dec:@var{m} @var{x})
                   1602: Represents the side effect of decrementing @var{x} by a standard
                   1603: amount and represents also the value that @var{x} has after being
                   1604: decremented.  @var{x} must be a @samp{reg} or @samp{mem}, but most
                   1605: machines allow only a @samp{reg}.  @var{m} must be the machine mode
                   1606: for pointers on the machine in use.  The amount @var{x} is decrement
                   1607: by is the length in bytes of the machine mode of the containing memory
                   1608: reference of which this expression serves as the address.  Here is an
                   1609: example of its use:
                   1610: 
                   1611: @example
                   1612: (mem:DF (pre_dec:SI (reg:SI 39)))
                   1613: @end example
                   1614: 
                   1615: @noindent
                   1616: This says to decrement pseudo register 39 by the length of a @code{DFmode}
                   1617: value and use the result to address a @code{DFmode} value.
                   1618: 
                   1619: @item (pre_inc:@var{m} @var{x})
                   1620: Similar, but specifies incrementing @var{x} instead of decrementing it.
                   1621: 
                   1622: @item (post_dec:@var{m} @var{x})
                   1623: Represents the same side effect as @samp{pre_decrement} but a different
                   1624: value.  The value represented here is the value @var{x} has @i{before}
                   1625: being decremented.
                   1626: 
                   1627: @item (post_inc:@var{m} @var{x})
                   1628: Similar, but specifies incrementing @var{x} instead of decrementing it.
                   1629: @end table
                   1630: 
                   1631: These embedded side effect expressions must be used with care.  Instruction
                   1632: patterns may not use them.  Until the @samp{flow} pass of the compiler,
                   1633: they may occur only to represent pushes onto the stack.  The @samp{flow}
                   1634: pass finds cases where registers are incremented or decremented in one
                   1635: instruction and used as an address shortly before or after; these cases are
                   1636: then transformed to use pre- or post-increment or -decrement.
                   1637: 
                   1638: Explicit popping of the stack could be represented with these embedded
                   1639: side effect operators, but that would not be safe; the instruction
                   1640: combination pass could move the popping past pushes, thus changing
                   1641: the meaning of the code.
                   1642: 
                   1643: An instruction that can be represented with an embedded side effect
                   1644: could also be represented using @samp{parallel} containing an additional
                   1645: @samp{set} to describe how the address register is altered.  This is not
                   1646: done because machines that allow these operations at all typically
                   1647: allow them wherever a memory address is called for.  Describing them as
                   1648: additional parallel stores would require doubling the number of entries
                   1649: in the machine description.
                   1650: 
                   1651: @node Insns, Sharing, Incdec, RTL
                   1652: @section Insns
                   1653: 
                   1654: The RTL representation of the code for a function is a doubly-linked
                   1655: chain of objects called @dfn{insns}.  Insns are expressions with
                   1656: special codes that are used for no other purpose.  Some insns are
                   1657: actual instructions; others represent dispatch tables for @code{switch}
                   1658: statements; others represent labels to jump to or various sorts of
                   1659: declaratory information.
                   1660: 
                   1661: In addition to its own specific data, each insn must have a unique id number
                   1662: that distinguishes it from all other insns in the current function, and
                   1663: chain pointers to the preceding and following insns.  These three fields
                   1664: occupy the same position in every insn, independent of the expression code
                   1665: of the insn.  They could be accessed with @code{XEXP} and @code{XINT},
                   1666: but instead three special macros are always used:
                   1667: 
                   1668: @table @code
                   1669: @item INSN_UID (@var{i})
                   1670: Accesses the unique id of insn @var{i}.
                   1671: 
                   1672: @item PREV_INSN (@var{i})
                   1673: Accesses the chain pointer to the insn preceding @var{i}.
                   1674: If @var{i} is the first insn, this is a null pointer.
                   1675: 
                   1676: @item NEXT_INSN (@var{i})
                   1677: Accesses the chain pointer to the insn following @var{i}.
                   1678: If @var{i} is the last insn, this is a null pointer.
                   1679: @end table
                   1680: 
                   1681: The @code{NEXT_INSN} and @code{PREV_INSN} pointers must always
                   1682: correspond: if @var{i} is not the first insn,
                   1683: 
                   1684: @example
                   1685: NEXT_INSN (PREV_INSN (@var{insn})) == @var{insn}
                   1686: @end example
                   1687: 
                   1688: @noindent
                   1689: is always true.
                   1690: 
                   1691: Every insn has one of the following six expression codes:
                   1692: 
                   1693: @table @code
                   1694: @item insn
                   1695: The expression code @samp{insn} is used for instructions that do not jump
                   1696: and do not do function calls.  Insns with code @samp{insn} have four
                   1697: additional fields beyond the three mandatory ones listed above.
                   1698: These four are described in a table below.
                   1699: 
                   1700: @item jump_insn
                   1701: The expression code @samp{jump_insn} is used for instructions that may jump
                   1702: (or, more generally, may contain @samp{label_ref} expressions).
                   1703: @samp{jump_insn} insns have the same extra fields as @samp{insn} insns,
                   1704: accessed in the same way.
                   1705: 
                   1706: @item call_insn
                   1707: The expression code @samp{call_insn} is used for instructions that may do
                   1708: function calls.  It is important to distinguish these instructions because
                   1709: they imply that certain registers and memory locations may be altered
                   1710: unpredictably.
                   1711: 
                   1712: @samp{call_insn} insns have the same extra fields as @samp{insn} insns,
                   1713: accessed in the same way.
                   1714: 
                   1715: @item code_label
                   1716: A @samp{code_label} insn represents a label that a jump insn can jump to.
                   1717: It contains one special field of data in addition to the three standard ones.
                   1718: It is used to hold the @dfn{label number}, a number that identifies this
                   1719: label uniquely among all the labels in the compilation (not just in the
                   1720: current function).  Ultimately, the label is represented in the assembler
                   1721: output as an assembler label @samp{L@var{n}} where @var{n} is the label number.
                   1722: 
                   1723: @item barrier
                   1724: Barriers are placed in the instruction stream after unconditional
                   1725: jump instructions to indicate that the jumps are unconditional.
                   1726: They contain no information beyond the three standard fields.
                   1727: 
                   1728: @item note
                   1729: @samp{note} insns are used to represent additional debugging and
                   1730: declaratory information.  They contain two nonstandard fields, an
                   1731: integer which is accessed with the macro @code{NOTE_LINE_NUMBER} and a
                   1732: string accessed with @code{NOTE_SOURCE_FILE}.
                   1733: 
                   1734: If @code{NOTE_LINE_NUMBER} is positive, the note represents the
                   1735: position of a source line and @code{NOTE_SOURCE_FILE} is the source file name
                   1736: that the line came from.  These notes control generation of line
                   1737: number data in the assembler output.
                   1738: 
                   1739: Otherwise, @code{NOTE_LINE_NUMBER} is not really a line number but a
                   1740: code with one of the following values (and @code{NOTE_SOURCE_FILE}
                   1741: must contain a null pointer):
                   1742: 
                   1743: @table @code
                   1744: @item NOTE_INSN_DELETED
                   1745: Such a note is completely ignorable.  Some passes of the compiler
                   1746: delete insns by altering them into notes of this kind.
                   1747: 
                   1748: @item NOTE_INSN_BLOCK_BEG
                   1749: @itemx NOTE_INSN_BLOCK_END
                   1750: These types of notes indicate the position of the beginning and end
                   1751: of a level of scoping of variable names.  They control the output
                   1752: of debugging information.
                   1753: 
                   1754: @item NOTE_INSN_LOOP_BEG
                   1755: @itemx NOTE_INSN_LOOP_END
                   1756: These types of notes indicate the position of the beginning and end
                   1757: of a @code{while} or @code{for} loop.  They enable the loop optimizer
                   1758: to find loops quickly.
                   1759: @end table
                   1760: @end table
                   1761: 
                   1762: Here is a table of the extra fields of @samp{insn}, @samp{jump_insn}
                   1763: and @samp{call_insn} insns:
                   1764: 
                   1765: @table @code
                   1766: @item PATTERN (@var{i})
                   1767: An expression for the side effect performed by this insn.
                   1768: 
                   1769: @item REG_NOTES (@var{i})
                   1770: A list (chain of @samp{expr_list} expressions) giving information
                   1771: about the usage of registers in this insn.  This list is set up by the
                   1772: @code{flow} pass; it is a null pointer until then.
                   1773: 
                   1774: @item LOG_LINKS (@var{i})
                   1775: A list (chain of @samp{insn_list} expressions) of previous ``related''
                   1776: insns: insns which store into registers values that are used for the
                   1777: first time in this insn.  (An additional constraint is that neither a
                   1778: jump nor a label may come between the related insns).  This list is
                   1779: set up by the @code{flow} pass; it is a null pointer until then.
                   1780: 
                   1781: @item INSN_CODE (@var{i})
                   1782: An integer that says which pattern in the machine description matches
                   1783: this insn, or -1 if the matching has not yet been attempted.
                   1784: 
                   1785: Such matching is never attempted and this field is not used on an insn
                   1786: whose pattern consists of a single @samp{use}, @samp{clobber},
                   1787: @samp{asm}, @samp{addr_vec} or @samp{addr_diff_vec} expression.
                   1788: @end table
                   1789: 
                   1790: The @code{LOG_LINKS} field of an insn is a chain of @samp{insn_list}
                   1791: expressions.  Each of these has two operands: the first is an insn,
                   1792: and the second is another @samp{insn_list} expression (the next one in
                   1793: the chain).  The last @samp{insn_list} in the chain has a null pointer
                   1794: as second operand.  The significant thing about the chain is which
                   1795: insns apepar in it (as first operands of @samp{insn_list}
                   1796: expressions).  Their order is not significant.
                   1797: 
                   1798: The @code{REG_NOTES} field of an insn is a similar chain but of
                   1799: @samp{expr_list} expressions instead of @samp{insn_list}.  The first
                   1800: operand is a @samp{reg} rtx.  Its presence in the list can have three
                   1801: possible meanings, distinguished by a value that is stored in the
                   1802: machine-mode field of the @samp{expr_list} because that is a
                   1803: conveniently available space, but that is not really a machine mode.
                   1804: These values belong to the C type @code{enum reg_note} and there are
                   1805: three of them:
                   1806: 
                   1807: @table @code
                   1808: @item REG_DEAD
                   1809: The @samp{reg} listed dies in this insn; that is to say, altering
                   1810: the value immediately after this insn would not affect the future
                   1811: behavior of the program.
                   1812: 
                   1813: @item REG_INC
                   1814: The @samp{reg} listed is incremented (or decremented; at this level
                   1815: there is no distinction) by an embedded side effect inside this insn.
                   1816: 
                   1817: @item REG_CONST
                   1818: The @samp{reg} listed has a value that could safely be replaced
                   1819: everywhere by the value that this insn copies into it.  (``Safety''
                   1820: here refers to the data flow of the program; such replacement may
                   1821: require reloading into registers for some of the insns in which
                   1822: the @samp{reg} is replaced.)
                   1823: 
                   1824: @item REG_WAS_0
                   1825: The @samp{reg} listed contained zero before this insn.  You can rely
                   1826: on this note if it is present; its absence implies nothing.
                   1827: @end table
                   1828: 
                   1829: (The only difference between the expression codes @samp{insn_list} and
                   1830: @samp{expr_list} is that the first operand of an @samp{insn_list} is
                   1831: assumed to be an insn and is printed in debugging dumps as the insn's
                   1832: unique id; the first operand of an @samp{expr_list} is printed in the
                   1833: ordinary way as an expression.)
                   1834: 
                   1835: @node Sharing,, Insns, RTL
                   1836: @section Structure Sharing Assumptions
                   1837: 
                   1838: The compiler assumes that certain kinds of RTL expressions are unique;
                   1839: there do not exist two distinct objects representing the same value.
                   1840: In other cases, it makes an opposite assumption: that no RTL expression
                   1841: object of a certain kind appears in more than one place in the
                   1842: containing structure.
                   1843: 
                   1844: These assumptions refer to a single function; except for the RTL
                   1845: objects that describe global variables and external functions,
                   1846: no RTL objects are common to two functions.
                   1847: 
                   1848: @itemize @bullet
                   1849: @item
                   1850: Each pseudo-register has only a single @samp{reg} object to represent it,
                   1851: and therefore only a single machine mode.
                   1852: 
                   1853: @item
                   1854: For any symbolic label, there is only one @samp{symbol_ref} object
                   1855: referring to it.
                   1856: 
                   1857: @item
                   1858: There is only one @samp{const_int} expression with value zero,
                   1859: and only one with value one.
                   1860: 
                   1861: @item
                   1862: There is only one @samp{pc} expression.
                   1863: 
                   1864: @item
                   1865: There is only one @samp{cc0} expression.
                   1866: 
                   1867: @item
                   1868: There is only one @samp{const_double} expression with mode
                   1869: @code{SFmode} and value zero, and only one with mode @code{DFmode} and
                   1870: value zero.
                   1871: 
                   1872: @item
                   1873: No @samp{label_ref} appears in more than one place in the RTL structure;
                   1874: in other words, it is safe to do a tree-walk of all the insns in the function
                   1875: and assume that each time a @samp{label_ref} is seen it is distinct from all
                   1876: other @samp{label_refs} seen.
                   1877: 
                   1878: @item
                   1879: Aside from the cases listed above, the only kind of expression
                   1880: object that may appear in more than one place is the @samp{mem}
                   1881: object that describes a stack slot or a static variable.
                   1882: @end itemize
                   1883: 
                   1884: @node Machine Desc, Machine Macros, RTL, Top
                   1885: @chapter Machine Descriptions
                   1886: 
                   1887: A machine description has two parts: a file of instruction patterns
                   1888: (@file{.md} file) and a C header file of macro definitions.
                   1889: 
                   1890: The @file{.md} file for a target machine contains a pattern for each
                   1891: instruction that the target machine supports (or at least each instruction
                   1892: that is worth telling the compiler about).  It may also contain comments.
                   1893: A semicolon causes the rest of the line to be a comment, unless the semicolon
                   1894: is inside a quoted string.
                   1895: 
                   1896: See the next chapter for information on the C header file.
                   1897: 
                   1898: @menu
                   1899: * Patterns::            How to write instruction patterns.
                   1900: * Example::             Example of an instruction pattern.
                   1901: * Constraints::         When not all operands are general operands.
                   1902: * Standard Names::      Names mark patterns to use for code generation.
                   1903: * Dependent Patterns::  Having one pattern may make you need another.
                   1904: @end menu
                   1905: 
                   1906: @node Patterns, Example, Machine Desc, Machine Desc
                   1907: @section Instruction Patterns
                   1908: 
                   1909: Each instruction pattern contains an incomplete RTL expression, with pieces
                   1910: to be filled in later, operand constraints that restrict how the pieces can
                   1911: be filled in, and an output pattern or C code to generate the assembler
                   1912: output, all wrapped up in a @samp{define_insn} expression.
                   1913: 
                   1914: Sometimes an insn can match more than one instruction pattern.  Then the
                   1915: pattern that appears first in the machine description is the one used.
                   1916: Therefore, more specific patterns should usually go first in the
                   1917: description.
                   1918: 
                   1919: The @samp{define_insn} expression contains four operands:
                   1920: 
                   1921: @enumerate
                   1922: @item
                   1923: An optional name.  The presence of a name indicate that this instruction
                   1924: pattern can perform a certain standard job for the RTL-generation
                   1925: pass of the compiler.  This pass knows certain names and will use
                   1926: the instruction patterns with those names, if the names are defined
                   1927: in the machine description.
                   1928: 
                   1929: The absence of a name is indicated by writing an empty string
                   1930: where the name should go.  Nameless instruction patterns are never
                   1931: used for generating RTL code, but they may permit several simpler insns
                   1932: to be combined later on.
                   1933: 
                   1934: Names that are not thus known and used in RTL-generation have no
                   1935: effect; they are equivalent to no name at all.
                   1936: 
                   1937: @item
                   1938: The recognition template.  This is a vector of incomplete RTL
                   1939: expressions which show what the instruction should look like.  It is
                   1940: incomplete because it may contain @samp{match_operand} and
                   1941: @samp{match_dup} expressions that stand for operands of the
                   1942: instruction.
                   1943: 
                   1944: If the vector has only one element, that element is what the
                   1945: instruction should look like.  If the vector has multiple elements,
                   1946: then the instruction looks like a @samp{parallel} expression
                   1947: containing that many elements as described.
                   1948: 
                   1949: @item
                   1950: A condition.  This is a string which contains a C expression that is
                   1951: the final test to decide whether an insn body matches this pattern.
                   1952: 
                   1953: For a named pattern, the condition (if present) may not depend on
                   1954: the data in the insn being matched, but only the target-machine-type
                   1955: flags.  The compiler needs to test these conditions during
                   1956: initialization in order to learn exactly which named instructions are
                   1957: available in a particular run.
                   1958: 
                   1959: For nameless patterns, the condition is applied only when matching an
                   1960: individual insn, and only after the insn has matched the pattern's
                   1961: recognition template.  The insn's operands may be found in the vector
                   1962: @code{operands}.
                   1963: 
                   1964: @item
                   1965: A string that says how to output matching insns as assembler code.  In
                   1966: the simpler case, the string is an output template, much like a
                   1967: @code{printf} control string.  @samp{%} in the string specifies where
                   1968: to insert the operands of the instruction; the @samp{%} is followed by
                   1969: a single-digit operand number.
                   1970: 
                   1971: @samp{%c@var{digit}} can be used to subtitute an operand that is a
                   1972: constant value without the syntax that normally indicates an immediate
                   1973: operand.
                   1974: 
                   1975: @samp{%a@var{digit}} can be used to substitute an operand as if it
                   1976: were a memory reference, with the actual operand treated as the address.
                   1977: This may be useful when outputting a ``load address'' instruction,
                   1978: because often the assembler syntax for such an instruction requires
                   1979: you to write the operand as if it were a memory reference.
                   1980: 
                   1981: The template may generate multiple assembler instructions.
                   1982: Write the text for the instructions, with @samp{\;} between them.
                   1983: 
                   1984: If the output control string starts with a @samp{*}, then it is not an
                   1985: output template but rather a piece of C program that should compute a
                   1986: template.  It should execute a @code{return} statement to return the
                   1987: template-string you want.  Most such templates use C string literals,
                   1988: which require doublequote characters to delimit them.  To include
                   1989: these doublequote characters in the string, prefix each one with
                   1990: @samp{\}.
                   1991: 
                   1992: The operands may be found in the array @code{operands}, whose C
                   1993: data type is @code{rtx []}.
                   1994: 
                   1995: It is possible to output an assembler instruction and then go on to
                   1996: output or compute more of them, using the subroutine
                   1997: @code{output_asm_insn}.  This receives two arguments: a
                   1998: template-string and a vector of operands.  The vector may be
                   1999: @code{operands}, or it may be another array of @code{rtx} that you
                   2000: declare locally and initialize yourself.
                   2001: @end enumerate
                   2002: 
                   2003: The recognition template is used also, for named patterns, for
                   2004: constructing insns.  Construction involves substituting specified
                   2005: operands into a copy of the template.  Matching involves determining
                   2006: the values that serve as the operands in the insn being matched.  Both
                   2007: of these activities are controlled by two special expression types
                   2008: that direct matching and substitution of the operands.
                   2009: 
                   2010: @table @code
                   2011: @item (match_operand:@var{m} @var{n} @var{testfn} @var{constraint})
                   2012: This expression is a placeholder for operand number @var{n} of
                   2013: the insn.  When constructing an insn, operand number @var{n}
                   2014: will be substituted at this point.  When matching an insn, whatever
                   2015: appears at this position in the insn will be taken as operand
                   2016: number @var{n}; but it must satisfy @var{testfn} or this instruction
                   2017: pattern will not match at all.
                   2018: 
                   2019: Operand numbers must be chosen consecutively counting from zero in
                   2020: each instruction pattern.  There may be only one @samp{match_operand}
                   2021: expression in the pattern for each expression number, and they must
                   2022: appear in order of increasing expression number.
                   2023: 
                   2024: @var{testfn} is a string that is the name of a C function that accepts
                   2025: two arguments, a machine mode and an expression.  During matching,
                   2026: the function will be called with @var{m} as the mode argument
                   2027: and the putative operand as the other argument.  If it returns zero,
                   2028: this instruction pattern fails to match.  @var{testfn} may be
                   2029: an empty string; then it means no test is to be done on the operand.
                   2030: 
                   2031: Most often, @var{testfn} is @code{"general_operand"}.  It checks
                   2032: that the putative operand is either a constant, a register or a
                   2033: memory reference, and that it is valid for mode @var{m}.
                   2034: 
                   2035: @var{constraint} is explained later.
                   2036: 
                   2037: @item (match_dup @var{n})
                   2038: This expression is also a placeholder for operand number @var{n}.
                   2039: It is used when the operand needs to appear more than once in the
                   2040: insn.
                   2041: 
                   2042: In construction, @samp{match_dup} behaves exactly like
                   2043: @var{match_operand}: the operand is substituted into the insn being
                   2044: constructed.  But in matching, @samp{match_dup} behaves differently.
                   2045: It assumes that operand number @var{n} has already been determined by
                   2046: a @samp{match_operand} apparing earlier in the recognition template,
                   2047: and it matches only an identical-looking expression.
                   2048: 
                   2049: @item (address (match_operand:@var{m} @var{n} "address_operand" ""))
                   2050: This complex of expressions is a placeholder for an operand number
                   2051: @var{n} in a ``load address'' instruction: an operand which specifies
                   2052: a memory location in the usual way, but for which the actual operand
                   2053: value used is the address of the location, not the contents of the
                   2054: location.
                   2055: 
                   2056: @samp{address} expressions never appear in RTL code, only in machine
                   2057: descriptions.  And they are used only in machine descriptions that do
                   2058: not use the operand constraint feature.  When operand constraints are
                   2059: in use, the letter @samp{p} in the constraint serves this purpose.
                   2060: 
                   2061: @var{m} is the machine mode of the @emph{memory location being
                   2062: addressed}, not the machine mode of the address itself.  That mode is
                   2063: always the same on a given target machine (it is @code{Pmode}, which
                   2064: normally is @code{SImode}), so there is no point in mentioning it;
                   2065: thus, no machine mode is written in the @samp{address} expression.  If
                   2066: some day support is added for machines in which addresses of different
                   2067: kinds of objects appear differently or are used differently (such as
                   2068: the PDP-10), different formats would perhaps need different machine
                   2069: modes and these modes might be written in the @samp{address}
                   2070: expression.
                   2071: @end table
                   2072: 
                   2073: @node Example, Constraints, Patterns, Machine Desc
                   2074: @section Example of @samp{define_insn}
                   2075: 
                   2076: Here is an actual example of an instruction pattern, for the 68000/68020.
                   2077: 
                   2078: @example
                   2079: (define_insn "tstsi"
                   2080:   [(set (cc0)
                   2081:        (match_operand:SI 0 "general_operand" "rm"))]
                   2082:   ""
                   2083:   "*
                   2084: @{ if (TARGET_68020 || ! ADDRESS_REG_P (operands[0]))
                   2085:     return \"tstl %0\";
                   2086:   return \"cmpl #0,%0\"; @}")
                   2087: @end example
                   2088: 
                   2089: This is an instruction that sets the condition codes based on the value of
                   2090: a general operand.  It has no condition, so any insn whose RTL description
                   2091: has the form shown may be handled according to this pattern.  The name
                   2092: @samp{tstsi} means ``test a @code{SImode} value'' and tells the RTL generation
                   2093: pass that, when it is necessary to test such a value, an insn to do so
                   2094: can be constructed using this pattern.
                   2095: 
                   2096: The output control string is a piece of C code which chooses which
                   2097: output template to return based on the kind of operand and the specific
                   2098: type of CPU for which code is being generated.
                   2099: 
                   2100: @samp{"rm"} is an operand constraint.  Its meaning is explained below.
                   2101: 
                   2102: @node Constraints, Standard Names, Example, Machine Desc
                   2103: @section Operand Constraints
                   2104: 
                   2105: Each @samp{match_operand} in an instruction pattern can specify a
                   2106: constraint for the type of operands allowed.  Constraints can say whether
                   2107: an operand may be in a register, and which kinds of register; whether the
                   2108: operand can be a memory reference, and which kinds of address; whether the
                   2109: operand may be an immediate constant, and which possible values it may
                   2110: have.  Constraints can also require two operands to match.
                   2111: 
                   2112: @menu
                   2113: * Simple Constraints::  Basic use of constraints.
                   2114: * Multi-alternative::   When an insn has two alternative constraint-patterns.
                   2115: * Class Preferences::   Constraints guide which hard register to put things in.
                   2116: * Modifiers::           More precise control over effects of constraints.
                   2117: * No Constraints::      Describing a clean machine without constraints.
                   2118: @end menu
                   2119: 
                   2120: @node Simple Constraints, Multi-Alternative, Constraints, Constraints
                   2121: @subsection Simple Constraints
                   2122: 
                   2123: The simplest kind of constraint is a string full of letters, each of
                   2124: which describes one kind of operand that is permitted.  Here are
                   2125: the letters that are allowed:
                   2126: 
                   2127: @table @samp
                   2128: @item m
                   2129: A memory operand is allowed, with any kind of address that the machine
                   2130: supports in general.
                   2131: 
                   2132: @item o
                   2133: A memory operand is allowed, but only if the address is @dfn{offsetable}.
                   2134: This means that adding a small integer (actually, the width in bytes of the
                   2135: operand, as determined by its machine mode) may be added to the address
                   2136: and the result is also a valid memory address.  For example, an address
                   2137: which is constant is offsetable; so is an address that is the sum of
                   2138: a register and a constant (as long as a slightly larger constant is also
                   2139: within the range of address-offsets supported by the machine); but an
                   2140: autoincrement or autodecrement address is not offsetable.  More complicated
                   2141: indirect/indexed addresses may or may not be offsetable depending on the
                   2142: other addressing modes that the machine supports.
                   2143: 
                   2144: @item <
                   2145: A memory operand with autodecrement addressing (either predecrement or
                   2146: postdecrement) is allowed.
                   2147: 
                   2148: @item >
                   2149: A memory operand with autoincrement addressing (either preincrement or
                   2150: postincrement) is allowed.
                   2151: 
                   2152: @item r
                   2153: A register operand is allowed provided that it is in a general register.
                   2154: 
                   2155: @item d
                   2156: @itemx a
                   2157: @itemx f
                   2158: @itemx @dots{}
                   2159: Other letters can be defined in machine-dependent fashion to stand for
                   2160: particular classes of registers.  @samp{d}, @samp{a} and @samp{f} are
                   2161: defined on the 68000/68020 to stand for data, address and floating point
                   2162: registers.
                   2163: 
                   2164: @item i
                   2165: An immediate integer operand (one with constant value) is allowed.
                   2166: 
                   2167: @item I
                   2168: @item J
                   2169: @item K
                   2170: @itemx @dots{}
                   2171: Other letters in the range @samp{I} through @samp{M} may be defined in a
                   2172: machine-dependent fashion to permit immediate integer operands with
                   2173: explicit integer values in specified ranges.  For example, on the 68000,
                   2174: @samp{I} is defined to stand for the range of values 1 to 8.  This is the
                   2175: range permitted as a shift count in the shift instructions.
                   2176: 
                   2177: @item F
                   2178: An immediate floating operand (expression code @samp{const_double}) is
                   2179: allowed.
                   2180: 
                   2181: @item G
                   2182: @itemx H
                   2183: @samp{G} and @samp{H} may be defined in a machine-dependent fashion to
                   2184: permit immediate floating operands in particular ranges of values.
                   2185: 
                   2186: @item s
                   2187: An immediate integer operand whose value is not an explicit integer is
                   2188: allowed.  This might appear strange; if an insn allows a constant operand
                   2189: with a value not known at compile time, it certainly must allow any known
                   2190: value.  So why use @samp{s} instead of @samp{i}?  Sometimes it allows
                   2191: better code to be generated.  For example, on the 68000 in a fullword
                   2192: instruction it is possible to use an immediate operand; but if the
                   2193: immediate value is between -32 and 31, better code results from loading the
                   2194: value into a register and using the register.  This is because the load
                   2195: into the register can be done with a @samp{moveq} instruction.  We arrange
                   2196: for this to happen by defining the letter @samp{K} to mean ``any integer
                   2197: outside the range -32 to 31'', and then specifying @samp{Ks} in the operand
                   2198: constraints.
                   2199: 
                   2200: @item g
                   2201: Any register, memory or immediate integer operand is allowed, except for
                   2202: registers that are not general registers.
                   2203: 
                   2204: @item @r{@var{n}, a digit}
                   2205: An operand identical to operand number @var{n} is allowed.
                   2206: If a digit is used together with letters, the digit should come last.
                   2207: 
                   2208: @item p
                   2209: An operand that is a valid memory address is allowed.  This is
                   2210: for ``load address'' and ``push address'' instructions.
                   2211: 
                   2212: If @samp{p} is used in the constraint, the test-function in the
                   2213: @samp{match_operand} must be @code{address_operand}.
                   2214: @end table
                   2215: 
                   2216: In order to have valid assembler code, each operand must satisfy
                   2217: its constraint.  But a failure to do so does not prevent the pattern
                   2218: from applying to an insn.  Instead, it directs the compiler to modify
                   2219: the code such that the constraint will be satisfied.  Usually this is
                   2220: done by copying an operand into a register.
                   2221: 
                   2222: Contrast, therefore, the two instruction patterns that follow:
                   2223: 
                   2224: @example
                   2225: (define_insn ""
                   2226:   [(set (match_operand:SI 0 "general_operand" "r")
                   2227:         (plus:SI (match_dup 0)
                   2228:                  (match_operand:SI 1 "general_operand" "r")))]
                   2229:   ""
                   2230:   "@dots{}")
                   2231: @end example
                   2232: 
                   2233: @noindent
                   2234: which has two operands, one of which must appear in two places, and
                   2235: 
                   2236: @example
                   2237: (define_insn ""
                   2238:   [(set (match_operand:SI 0 "general_operand" "r")
                   2239:         (plus:SI (match_operand:SI 1 "general_operand" "0")
                   2240:                  (match_operand:SI 2 "general_operand" "r")))]
                   2241:   ""
                   2242:   "@dots{}")
                   2243: @end example
                   2244: 
                   2245: @noindent
                   2246: which has three operands, two of which are required by a constraint to be
                   2247: identical.  If we are considering an insn of the form
                   2248: 
                   2249: @example
                   2250: (insn @var{n} @var{prev} @var{next}
                   2251:   (set (reg:SI 3)
                   2252:        (plus:SI (reg:SI 6) (reg:SI 109)))
                   2253:   @dots{})
                   2254: @end example
                   2255: 
                   2256: @noindent
                   2257: the first pattern would not apply at all, because this insn does not
                   2258: contain two identical subexpressions in the right place.  The pattern would
                   2259: say, ``That does not look like an add instruction; try other patterns.''
                   2260: The second pattern would say, ``Yes, that's an add instruction, but there
                   2261: is something wrong with it.''  It would direct the reload pass of the
                   2262: compiler to generate additional insns to make the constraint true.  The
                   2263: results might look like this:
                   2264: 
                   2265: @example
                   2266: (insn @var{n2} @var{prev} @var{n}
                   2267:   (set (reg:SI 3) (reg:SI 6))
                   2268:   @dots{})
                   2269: 
                   2270: (insn @var{n} @var{n2} @var{next}
                   2271:   (set (reg:SI 3)
                   2272:        (plus:SI (reg:SI 3) (reg:SI 109)))
                   2273:   @dots{})
                   2274: @end example
                   2275: 
                   2276: Because insns that don't fit the constraints are fixed up by loading
                   2277: operands into registers, every instruction pattern's constraints must
                   2278: permit the case where all the operands are in registers.  It need not
                   2279: permit all classes of registers; the compiler knows how to copy registers
                   2280: into other registers of the proper class in order to make an instruction
                   2281: valid.  But if no registers are permitted, the compiler will be stymied: it
                   2282: does not know how to save a register in memory in order to make an
                   2283: instruction valid.  Instruction patterns that reject registers can be
                   2284: made valid by attaching a condition-expression that refuses to match
                   2285: an insn at all if the crucial operand is a register.
                   2286: 
                   2287: @node Multi-Alternative, Class Preferences, Simple Constraints, Constraints
                   2288: @subsection Multiple Alternative Constraints
                   2289: 
                   2290: Sometimes a single instruction has multiple alternative sets of possible
                   2291: operands.  For example, on the 68000, a logical-or instruction can combine
                   2292: register or an immediate value into memory, or it can combine any kind of
                   2293: operand into a register; but it cannot combine one memory location into
                   2294: another.
                   2295: 
                   2296: These constraints are represented as multiple alternatives.  An alternative
                   2297: can be described by a series of letters for each operand.  The overall
                   2298: constraint for an operand is made from the letters for this operand
                   2299: from the first alternative, a comma, the letters for this operand from
                   2300: the second alternative, a comma, and so on until the last alternative.
                   2301: Here is how it is done for fullword logical-or on the 68000:
                   2302: 
                   2303: @example
                   2304: (define_insn "iorsi3"
                   2305:   [(set (match_operand:SI 0 "general_operand" "=%m,d")
                   2306:        (ior:SI (match_operand:SI 1 "general_operand" "0,0")
                   2307:                (match_operand:SI 2 "general_operand" "dKs,dmKs")))]
                   2308:   @dots{})
                   2309: @end example
                   2310: 
                   2311: The first alternative has @samp{m} (memory) for operand 0, @samp{0} for
                   2312: operand 1 (meaning it must match operand 0), and @samp{dKs} for operand 2.
                   2313: The second alternative has @samp{d} (data register) for operand 0, @samp{0}
                   2314: for operand 1, and @samp{dmKs} for operand 2.  The @samp{=} and @samp{%} in
                   2315: the constraint for operand 0 are not part of any alternative; their meaning
                   2316: is explained in the next section.
                   2317: 
                   2318: If all the operands fit any one alternative, the instruction is valid.
                   2319: Otherwise, for each alternative, the compiler counts how many instructions
                   2320: must be added to copy the operands so that that alternative applies.
                   2321: The alternative requiring the least copying is chosen.  If two alternatives
                   2322: need the same amount of copying, the one that comes first is chosen.
                   2323: These choices can be altered with the @samp{?} and @samp{!} characters:
                   2324: 
                   2325: @table @samp
                   2326: @item ?
                   2327: Disparage slightly the alternative that the @samp{?} appears in,
                   2328: as a choice when no alternative applies exactly.  The compiler regards
                   2329: this alternative as one unit more costly for each @samp{?} that appears
                   2330: in it.
                   2331: 
                   2332: @item !
                   2333: Disparage severely the alternative that the @samp{!} appears in.
                   2334: When operands must be copied into registers, the compiler will
                   2335: never choose this alternative as the one to strive for.
                   2336: @end table
                   2337: 
                   2338: @node Class Preferences, Modifiers, Multi-Alternative, Constraints
                   2339: @subsection Register Class Preferences
                   2340: 
                   2341: The operand constraints have another function: they enable the compiler
                   2342: to decide which kind of hardware register a pseudo register is best
                   2343: allocated to.  The compiler examines the constraints that apply to the
                   2344: insns that use the pseudo register, looking for the machine-dependent
                   2345: letters such as @samp{d} and @samp{a} that specify classes of registers.
                   2346: The pseudo register is put in whichever class gets the most ``votes''.
                   2347: The constraint letters @samp{g} and @samp{r} also vote: they vote in
                   2348: favor of a general register.  The machine description says which registers
                   2349: are considered general.
                   2350: 
                   2351: Of course, on some machines all registers are equivalent, and no register
                   2352: classes are defined.  Then none of this complexity is relevant.
                   2353: 
                   2354: @node Modifiers, No Constraints, Class Preferences, Constraints
                   2355: @subsection Constraint Modifier Characters
                   2356: 
                   2357: @table @samp
                   2358: @item =
                   2359: Means that this operand is written by the instruction, but its previous
                   2360: value is not used.
                   2361: 
                   2362: @item +
                   2363: Means that this operand is both read and written by the instruction.
                   2364: 
                   2365: When the compiler fixes up the operands to satisfy the constraints,
                   2366: it needs to know which operands are inputs to the instruction and
                   2367: which are outputs from it.  @samp{=} identifies an output; @samp{+}
                   2368: identifies an operand that is both input and output; all other operands
                   2369: are assumed to be input only.
                   2370: 
                   2371: @item %
                   2372: Declares the instruction to be commutative for operands 1 and 2.
                   2373: This means that the compiler may interchange operands 1 and 2
                   2374: if that will make the operands fit their constraints.
                   2375: 
                   2376: @item #
                   2377: Says that all following characters, up to the next comma, are to be ignored
                   2378: as a constraint.  They are significant only for choosing register preferences.
                   2379: 
                   2380: @item *
                   2381: Says that the following character should be ignored when choosing
                   2382: register preferences.  @samp{*} has no effect on the meaning of
                   2383: the constraint as a constraint.
                   2384: @end table
                   2385: 
                   2386: @node No Constraints,, Modifiers, Constraints
                   2387: @subsection Not Using Constraints
                   2388: 
                   2389: Some machines are so clean that operand constraints are not required.  For
                   2390: example, on the Vax, an operand valid in one context is valid in any other
                   2391: context.  On such a machine, every operand constraint would be @samp{"g"},
                   2392: excepting only operands of ``load address'' instructions which are
                   2393: written as if they referred to a memory location's contents but actual
                   2394: refer to its address.  They would have constraint @samp{"p"}.
                   2395: 
                   2396: For such machines, instead of writing @samp{"g"} and @samp{"p"} for all
                   2397: the constraints, you can choose to write a description with empty constraints.
                   2398: Then you write @samp{""} for the constraint in every @samp{match_operand}.
                   2399: Address operands are identified by writing an @samp{address} expression
                   2400: around the @samp{match_operand}, not by their constraints.
                   2401: 
                   2402: When the machine description has just empty constraints, certain parts
                   2403: of compilation are skipped, making the compiler faster.
                   2404: 
                   2405: @node Standard Names, Dependent Patterns, Constraints, Machine Desc
                   2406: @section Standard Insn Names
                   2407: 
                   2408: Here is a table of the instruction names that are meaningful in the RTL
                   2409: generation pass of the compiler.  Giving one of these names to an
                   2410: instruction pattern tells the RTL generation pass that it can use the
                   2411: pattern in to accomplish a certain task.
                   2412: 
                   2413: @table @samp
                   2414: @item mov@var{m}
                   2415: Here @var{m} is a two-letter machine mode name, in lower case.  This
                   2416: instruction pattern moves data with that machine mode from operand 1 to
                   2417: operand 0.  For example, @samp{movsi} moves full-word data.
                   2418: 
                   2419: If operand 0 is a @samp{subreg} with mode @var{m} of a register whose
                   2420: natural mode is wider than @var{m}, the effect of this instruction is
                   2421: to store the specified value in the part of the register that corresponds
                   2422: to mode @var{m}.  The effect on the rest of the register is undefined.
                   2423: 
                   2424: @item movstrict@var{m}
                   2425: Like @samp{mov@var{m}} except that if operand 0 is a @samp{subreg}
                   2426: with mode @var{m} of a register whose natural mode is wider,
                   2427: the @samp{movstrict@var{m}} instruction is guaranteed not to alter
                   2428: any of the register except the part which belongs to mode @var{m}.
                   2429: 
                   2430: @item add@var{m}3
                   2431: Add operand 2 and operand 1, storing the result in operand 0.  All operands
                   2432: must have mode @var{m}.  This can be used even on two-address machines, by
                   2433: means of constraints requiring operands 1 and 0 to be the same location.
                   2434: 
                   2435: @item sub@var{m}3
                   2436: @itemx mul@var{m}3
                   2437: @itemx umul@var{m}3
                   2438: @itemx div@var{m}3
                   2439: @itemx udiv@var{m}3
                   2440: @itemx mod@var{m}3
                   2441: @itemx umod@var{m}3
                   2442: @itemx and@var{m}3
                   2443: @itemx ior@var{m}3
                   2444: @itemx xor@var{m}3
                   2445: Similar, for other arithmetic operations.
                   2446: 
                   2447: @item andcb@var{m}3
                   2448: Bitwise logical-and operand 1 with the complement of operand 2
                   2449: and store the result in operand 0.
                   2450: 
                   2451: @item mulhisi3
                   2452: Multiply operands 1 and 2, which have mode @code{HImode}, and store
                   2453: a @code{SImode} product in operand 0.
                   2454: 
                   2455: @item mulqihi3
                   2456: @itemx mulsidi3
                   2457: Similar widening-multiplication instructions of other widths.
                   2458: 
                   2459: @item umulqihi3
                   2460: @item umulhisi3
                   2461: @item umulsidi3
                   2462: Similar widening-multiplication instructions that do unsigned
                   2463: multiplication.
                   2464: 
                   2465: @item divmod@var{m}4
                   2466: Signed division that produces both a quotient and a remainder.
                   2467: Operand 1 is divided by operand 2 to produce a quotient stored
                   2468: in operand 0 and a remainder stored in operand 3.
                   2469: 
                   2470: @item udivmod@var{m}4
                   2471: Similar, but does unsigned division.
                   2472: 
                   2473: @item divmod@var{m}@var{n}4
                   2474: Like @samp{divmod@var{m}4} except that only the dividend has mode
                   2475: @var{m}; the divisor, quotient and remainder have mode @var{n}.
                   2476: For example, the Vax has a @samp{divmoddisi4} instruction
                   2477: (but it is omitted from the machine description, because it
                   2478: is so slow that it is faster to compute remainders by the
                   2479: circumlocution that the compiler will use if this instruction is
                   2480: not available).
                   2481: 
                   2482: @item ashl@var{m}3
                   2483: Arithmetic-shift operand 1 left by a number of bits specified by
                   2484: operand 2, and store the result in operand 0.  Operand 2 has
                   2485: mode @code{SImode}, not mode @var{m}.
                   2486: 
                   2487: @item ashr@var{m}3
                   2488: @itemx lshl@var{m}3
                   2489: @itemx lshr@var{m}3
                   2490: @itemx rotl@var{m}3
                   2491: @itemx rotr@var{m}3
                   2492: Other shift and rotate instructions.
                   2493: 
                   2494: @item neg@var{m}2
                   2495: Negate operand 1 and store the result in operand 0.
                   2496: 
                   2497: @item abs@var{m}2
                   2498: Store the absolute value of operand 1 into operand 0.
                   2499: 
                   2500: @item sqrt@var{m}2
                   2501: Store the square root of operand 1 into operand 0.
                   2502: 
                   2503: @item one_cmpl@var{m}2
                   2504: Store the bitwise-complement of operand 1 into operand 0.
                   2505: 
                   2506: @item cmp@var{m}
                   2507: Compare operand 0 and operand 1, and set the condition codes.
                   2508: 
                   2509: @item tst@var{m}
                   2510: Compare operand 0 against zero, and set the condition codes.
                   2511: 
                   2512: @item movstr@var{m}
                   2513: Block move instruction.  The addresses of the destination and source
                   2514: strings are the first two operands, and both are in mode @code{Pmode}.
                   2515: The number of bytes to move is the third operand, in mode @var{m}.
                   2516: 
                   2517: @item cmpstr@var{m}
                   2518: Block compare instruction, with operands like @samp{movstr@var{m}}
                   2519: except that the two memory blocks are compared byte by byte
                   2520: in lexicographic order.  The effect of the instruction is to set
                   2521: the condition codes.
                   2522: 
                   2523: @item float@var{m}@var{n}2
                   2524: Convert operand 1 (valid for floating point mode @var{m}) to fixed
                   2525: point mode @var{n} and store in operand 0 (which has mode @var{n}).
                   2526: 
                   2527: @item fix@var{m}@var{n}2
                   2528: Convert operand 1 (valid for fixed point mode @var{m}) to floating
                   2529: point mode @var{n} and store in operand 0 (which has mode @var{n}).
                   2530: 
                   2531: @item trunc@var{m}@var{n}
                   2532: Truncate operand 1 (valid for mode @var{m}) to mode @var{n} and
                   2533: store in operand 0 (which has mode @var{n}).  Both modes must be fixed
                   2534: point or both floating point.
                   2535: 
                   2536: @item extend@var{m}@var{n}
                   2537: Sign-extend operand 1 (valid for mode @var{m}) to mode @var{n} and
                   2538: store in operand 0 (which has mode @var{n}).  Both modes must be fixed
                   2539: point or both floating point.
                   2540: 
                   2541: @item zero_extend@var{m}@var{n}
                   2542: Zero-extend operand 1 (valid for mode @var{m}) to mode @var{n} and
                   2543: store in operand 0 (which has mode @var{n}).  Both modes must be fixed
                   2544: point.
                   2545: 
                   2546: @item extv
                   2547: Extract a bit-field from operand 1 (a register or memory operand),
                   2548: where operand 2 specifies the width in bits and operand 3 the starting
                   2549: bit, and store it in operand 0.  Operand 0 must have @code{Simode}.
                   2550: Operand 1 may have mode @code{QImode} or @code{SImode}; often
                   2551: @code{SImode} is allowed only for registers.  Operands 2 and 3 must be
                   2552: valid for @code{SImode}.
                   2553: 
                   2554: The RTL generation pass generates this instruction only with constants
                   2555: for operands 2 and 3.
                   2556: 
                   2557: The bit-field value is sign-extended to a full word integer
                   2558: before it is stored in operand 0.
                   2559: 
                   2560: @item extzv
                   2561: Like @samp{extv} except that the bit-field value is zero-extended.
                   2562: 
                   2563: @item insv
                   2564: Store operand 3 (which must be valid for @code{SImode}) into a
                   2565: bit-field in operand 0, where operand 1 specifies the width in bits
                   2566: and operand 2 the starting bit.  Operand 0 may have mode @code{QImode}
                   2567: or @code{SImode}; often @code{SImode} is allowed only for registers.
                   2568: Operands 1 and 2 must be valid for @code{SImode}.
                   2569: 
                   2570: The RTL generation pass generates this instruction only with constants
                   2571: for operands 1 and 2.
                   2572: 
                   2573: @item s@var{cond}@var{m}
                   2574: Store zero or -1 in the operand (with mode @var{m}) according to the
                   2575: condition codes.  Value stored is -1 iff the condition @var{cond} is
                   2576: true.  @var{cond} is the name of a comparison operation rtx code, such
                   2577: as @samp{eq}, @samp{lt} or @samp{leu}.
                   2578: 
                   2579: @item b@var{cond}
                   2580: Conditional branch instruction.  Operand 0 is a @samp{label_ref}
                   2581: that refers to the label to jump to.  Jump if the condition codes
                   2582: meet condition @var{cond}.
                   2583: 
                   2584: @item call
                   2585: Subroutine call instruction.  Operand 1 is the number of arguments
                   2586: and operand 0 is the function to call.  Operand 1 should be a @samp{mem}
                   2587: rtx whose address is the address of the function.
                   2588: 
                   2589: @item return
                   2590: Subroutine return instruction.  This instruction pattern name should be
                   2591: defined only if a single instruction can do all the work of returning
                   2592: from a function.
                   2593: 
                   2594: @item tablejump
                   2595: @item case@var{m}
                   2596: @end table
                   2597: 
                   2598: @node Dependent Patterns,, Standard Names, Machine Desc
                   2599: @section Patterns Require Other Patterns
                   2600: 
                   2601: Every machine description must have a named pattern for each of the
                   2602: conditional branch names @samp{b@var{cond}}.  The recognition template
                   2603: must always have the form
                   2604: 
                   2605: @example
                   2606: (set (pc)
                   2607:      (if_then_else (@var{cond} (cc0) (const_int 0))
                   2608:                    (label_ref (match_operand 0 "" ""))
                   2609:                    (pc)))
                   2610: @end example
                   2611: 
                   2612: @noindent
                   2613: In addition, every machine description must have an anonymous pattern
                   2614: for each of the possible reverse-conditional branches.  These patterns
                   2615: look like
                   2616: 
                   2617: @example
                   2618: (set (pc)
                   2619:      (if_then_else (@var{cond} (cc0) (const_int 0))
                   2620:                    (pc)
                   2621:                    (label_ref (match_operand 0 "" ""))))
                   2622: @end example
                   2623: 
                   2624: @noindent
                   2625: They are necessary because jump optimization can turn direct-conditional
                   2626: branches into reverse-conditional branches.
                   2627: 
                   2628: The compiler does more with RTL than just create it from patterns
                   2629: and recognize the patterns: it can perform arithmetic expression codes
                   2630: when constant values for their operands can be determined.  As a result,
                   2631: sometimes having one pattern can require other patterns.  For example, the
                   2632: Vax has no `and' instruction, but it has `and not' instructions.  Here
                   2633: is the definition of one of them:
                   2634: 
                   2635: @example
                   2636: (define_insn "andcbsi2"
                   2637:   [(set (match_operand:SI 0 "general_operand" "")
                   2638:         (and:SI (match_dup 0)
                   2639:                 (not:SI (match_operand:SI
                   2640:                           1 "general_operand" ""))))]
                   2641:   ""
                   2642:   "bicl2 %1,%0")
                   2643: @end example
                   2644: 
                   2645: @noindent
                   2646: If operand 1 is an explicit integer constant, an instruction constructed
                   2647: using that pattern can end up looking like
                   2648: 
                   2649: @example
                   2650: (set (reg:SI 41)
                   2651:      (and:SI (reg:SI 41)
                   2652:              (const_int 0xffff7fff)))
                   2653: @end example
                   2654: 
                   2655: @noindent
                   2656: (where the integer constant is the one's complement of what
                   2657: appeared in the original instruction).
                   2658: 
                   2659: To avoid a fatal error, the compiler must have a pattern that recognizes
                   2660: such an instruction.  Here is what is used:
                   2661: 
                   2662: @example
                   2663: (define_insn ""
                   2664:   [(set (match_operand:SI 0 "general_operand" "")
                   2665:         (and:SI (match_dup 0)
                   2666:                 (match_operand:SI 1 "general_operand" "")))]
                   2667:   "GET_CODE (operands[1]) == CONST_INT"
                   2668:   "*
                   2669: { operands[1]
                   2670:     = gen_rtx (CONST_INT, VOIDmode, ~INTVAL (operands[1]));
                   2671:   return \"bicl2 %1,%0\";
                   2672: }")
                   2673: @end example
                   2674: 
                   2675: @noindent
                   2676: Whereas a pattern to match a general `and' instruction is impossible to
                   2677: support on the Vax, this pattern is possible because it matches only a
                   2678: constant second argument: a special case that can be output as an `and not'
                   2679: instruction.
                   2680: 
                   2681: @node Machine Macros,, Machine Desc, Top
                   2682: @chapter Machine Description Macros
                   2683: 
                   2684: The other half of the machine description is a C header file conventionally
                   2685: given the name @file{tm-@var{machine}.h}.  The file @file{tm.h} should be a
                   2686: link to it.  The header file @file{config.h} includes @file{tm.h} and most
                   2687: compiler source files include @file{config.h}.
                   2688: 
                   2689: @menu
                   2690: * Run-time Target::     Defining -m switches like -m68000 and -m68020.
                   2691: * Storage Layout::      Defining sizes and alignments of data types.
                   2692: * Registers::           Naming and describing the hardware registers.
                   2693: * Register Classes::    Defining the classes of hardware registers.
                   2694: * Stack Layout::        Defining which way the stack grows and by how much.
                   2695: * Addressing Modes::    Defining addressing modes valid for memory operands.
                   2696: * Condition Code::      Defining how insns update the condition code.
                   2697: * Assembler Format::    Defining how to write insns and pseudo-ops to output.
                   2698: * Misc::                Everything else.
                   2699: @end menu
                   2700: 
                   2701: @node Run-time Target, Storage Layout, Machine Macros, Machine Macros
                   2702: @section Run-time Target Specification
                   2703: 
                   2704: @table @code
                   2705: @item CPP_PREDEFINES
                   2706: Define this to be a string constant containing @samp{-D} switches
                   2707: to define the predefined macros that identify this machine and system.
                   2708: 
                   2709: For example, on the Sun, one can use the value
                   2710: 
                   2711: @example
                   2712: "-Dmc68000 -Dsun"
                   2713: @end example
                   2714: 
                   2715: @item extern int target_flags;
                   2716: This declaration should be present.
                   2717: 
                   2718: @item TARGET_@dots{}
                   2719: This series of macros is to allow compiler command arguments to
                   2720: enable or disable the use of optional features of the target machine.
                   2721: For example, one machine description serves both the 68000 and
                   2722: the 68020; a command argument tells the compiler whether it should
                   2723: use 68020-only instructions or not.  This command argument works
                   2724: by means of a macro @code{TARGET_68020} that tests a bit in
                   2725: @code{target_flags}.
                   2726: 
                   2727: Define a macro @code{TARGET_@var{featurename}} for each such option.
                   2728: Its definition should test a bit in @code{target_flags}; for example:
                   2729: 
                   2730: @example
                   2731: #define TARGET_68020 (target_flags & 1)
                   2732: @end example
                   2733: 
                   2734: One place where these macros are used is in the condition-expressions
                   2735: of instruction patterns.  Note how @code{TARGET_68020} appears
                   2736: frequently in the 68000 machine description file, @file{m68000.md}.
                   2737: Another place they are used is in the definitions of the other
                   2738: macros in the @file{tm-@var{machine}.h} file.
                   2739: 
                   2740: @item TARGET_SWITCHES
                   2741: This macro defines names of command switches to set and clear
                   2742: bits in @code{target_flags}.  Its definition is an initializer
                   2743: with a subgrouping for each command switches.
                   2744: 
                   2745: Each subgrouping contains a string constant, that defines the switch
                   2746: name, and a number, which contains the bits to set in
                   2747: @code{target_flags}.  A negative number says to clear bits instead;
                   2748: the negative of the number is which bits to clear.  The actual switch
                   2749: name is made by appending @samp{-m} to the specified name.
                   2750: 
                   2751: One of the subgroupings should have a null string.  The number in
                   2752: this grouping is the default value for @code{target_flags}.  Any
                   2753: target switches act starting with that value.
                   2754: 
                   2755: Here is an example which defines @samp{-m68000} and @samp{-m68020}
                   2756: with opposite meanings, and picks the latter as the default:
                   2757: 
                   2758: @example
                   2759: #define TARGET_SWITCHES \
                   2760:   @{ @{ "68020", 1@},      \
                   2761:     @{ "68000", -1@},     \
                   2762:     @{ "", 1@}@}
                   2763: @end example
                   2764: @end table
                   2765: 
                   2766: @node Storage Layout, Registers, Run-time Target, Machine Macros
                   2767: @section Storage Layout
                   2768: 
                   2769: @table @code
                   2770: @item BITS_BIG_ENDIAN
                   2771: Define this macro if the most significant bit in a byte has the lowest
                   2772: number.  This means that bit-field instructions count from the most
                   2773: significant bit.  If the machine has no bit-field instructions, this
                   2774: macro is irrelevant.
                   2775: 
                   2776: @item BYTES_BIG_ENDIAN
                   2777: Define this macro if the most significant byte in a word has the
                   2778: lowest number.
                   2779: 
                   2780: @item WORDS_BIG_ENDIAN
                   2781: Define this macro if, in a multiword object, the most signficant
                   2782: word has the lowest number.
                   2783: 
                   2784: @item BITS_PER_UNIT
                   2785: Number of bits in an addressable storage unit (byte); normally 8.
                   2786: 
                   2787: @item BITS_PER_WORD
                   2788: Number of bits in a word; normally 32.
                   2789: 
                   2790: @item UNITS_PER_WORD
                   2791: Number of storage units in a word; normally 4.
                   2792: 
                   2793: @item POINTER_SIZE
                   2794: Width of a pointer, in bits.
                   2795: 
                   2796: @item PARM_BOUNDARY
                   2797: Alignment required for pointers, in bits.
                   2798: 
                   2799: @item FUNCTION_BOUNDARY
                   2800: Alignment required for a function entry point, in bits.
                   2801: 
                   2802: @item BIGGEST_ALIGNMENT
                   2803: Biggest alignment that anything can require on this machine, in bits.
                   2804: 
                   2805: @item STRICT_ALIGNMENT
                   2806: Define this if instructions will fail to work if given data not
                   2807: on the nominal alignment.  If instructions will merely go slower
                   2808: in that case, do not define this macro.
                   2809: @end table
                   2810: 
                   2811: @node Registers, Register Classes, Storage Layout, Machine Macros
                   2812: @section Register Usage
                   2813: 
                   2814: @table @code
                   2815: @item FIRST_PSEUDO_REGISTER
                   2816: Number of hardware registers known to the compiler.  They receive
                   2817: numbers 0 through @code{FIRST_PSEUDO_REGISTER-1}; thus, the first
                   2818: pseudo register's number really is assigned the number7
                   2819: @code{FIRST_PSEUDO_REGISTER}.
                   2820: 
                   2821: @item FIXED_REGISTERS
                   2822: An initializer that says which registers are used for fixed purposes
                   2823: all throughout the compiled code and are therefore not available for
                   2824: general allocation.  These would inclue the stack pointer, the frame
                   2825: pointer, the program counter on machines where that is considered one
                   2826: of the addressable registers, and any other numbered register with a
                   2827: standard use.
                   2828: 
                   2829: This information is expressed as a sequence of numbers, separated by
                   2830: commas and surrounded by braces.  The @var{n}th number is 1 if
                   2831: register @var{n} is fixed, 0 otherwise
                   2832: 
                   2833: @item CALL_USED_REGISTERS
                   2834: Like @code{FIXED_REGISTERS} but has 1 for each register that is
                   2835: clobbered (in general) by function calls as well as for fixed
                   2836: registers.  This macro therefore identifies the registers that are not
                   2837: available for general allocation of values that must live across
                   2838: function calls.
                   2839: 
                   2840: If a registers has 0 in @code{CALL_USED_REGISTERS}, the compiler
                   2841: automatically saves it on function entry and restores it on function
                   2842: exit, if the register is used within the function.
                   2843: 
                   2844: @item HARD_REGNO_REGS (@var{regno}, @var{mode})
                   2845: A C expression for the number of consecutive hard registers, starting
                   2846: at register number @var{regno}, required to hold a value of mode
                   2847: @var{mode}.
                   2848: 
                   2849: On a machine where all registers are exactly one word, a suitable
                   2850: definition of this macro is
                   2851: 
                   2852: @example
                   2853: #define HARD_REGNO_NREGS(REGNO, MODE)            \
                   2854:    ((GET_MODE_SIZE (MODE) + UNITS_PER_WORD - 1)  \
                   2855:     / UNITS_PER_WORD))
                   2856: @end example
                   2857: 
                   2858: @item HARD_REGNO_MODE_OK (@var{regno}, @var{mode})
                   2859: A C expression that is nonzero if it is permissible to store a value
                   2860: of mode @var{mode} in hard register number @var{regno} (or in several
                   2861: registers starting with that one).  For a machine where all registers
                   2862: are equivalent, a suitable definition is
                   2863: 
                   2864: @example
                   2865: #define HARD_REGNO_MODE_OK(REGNO, MODE) 1
                   2866: @end example
                   2867: 
                   2868: It is not necessary for this macro to check for fixed register numbers
                   2869: because the allocation mechanism considers them to be always occupied.
                   2870: 
                   2871: @item MODES_TIEABLE_P (@var{mode1}, @var{mode2})
                   2872: A C expression that is nonzero if it is desirable to choose register
                   2873: allocation so as to avoid move instructions between a value of mode
                   2874: @var{mode1} and a value of mode @var{mode2}.
                   2875: 
                   2876: If @code{HARD_REGNO_MODE_OK (@var{r}, @var{mode1})} and
                   2877: @code{HARD_REGNO_MODE_OK (@var{r}, @var{mode2})} are ever different
                   2878: for any @var{r}, then @code{MODES_TIEABLE_P (@var{mode1},
                   2879: @var{mode2})} must be zero.
                   2880: 
                   2881: @item PC_REGNUM
                   2882: If the program counter has a register number, define this as that
                   2883: register number.  Otherwise, do not define it.
                   2884: 
                   2885: @item STACK_POINTER_REGNUM
                   2886: The register number of the stack pointer register, which must also be
                   2887: a fixed register according to @code{FIXED_REGISTERS}.  On many
                   2888: machines, the hardware determines which register this is.
                   2889: 
                   2890: @item FRAME_POINTER_REGNUM
                   2891: The register number of the frame pointer register, which is used to
                   2892: access automatic variables in the stack frame.  It must also described
                   2893: in @code{FIXED_REGISTERS} as a fixed register.  On some machines, the
                   2894: hardware determines which register this is.  On other machines, you
                   2895: can choose any register you wish for this purpose.
                   2896: 
                   2897: @item ARG_POINTER_REGNUM
                   2898: The register number of the arg pointer register, which is used to
                   2899: access the function's argument list.  On some machines, this is the
                   2900: same as the frame pointer register.  On some machines, the hardware
                   2901: determines which register this is.  On other machines, you can choose
                   2902: any register you wish for this purpose.  It must in any case be a
                   2903: fixed register according to @code{FIXED_REGISTERS}.
                   2904: 
                   2905: @item STATIC_CHAIN_REGNUM
                   2906: The register number used for passing a function's static chain
                   2907: pointer.  This is needed for languages such as Pascal and Algol where
                   2908: functions defined within other functions can access the local
                   2909: variables of the outer functions; it is not currently used because C
                   2910: does not provide this feature.
                   2911: 
                   2912: The static chain register need not be a fixed register.
                   2913: 
                   2914: @item FUNCTION_VALUE_REGNUM
                   2915: The register number used for returning values from a function.  This
                   2916: must be one of the call-used registers (since function calls alter
                   2917: it!) but should not be a fixed register.  When the value being
                   2918: returned has a multi-word machine mode, multiple consecutive registers
                   2919: starting with the specified one are used.
                   2920: 
                   2921: @item STRUCT_VALUE_REGNUM
                   2922: When a function's value's mode is @code{BLKmode}, the value is not returned
                   2923: in the register @code{FUNCTION_VALUE_REGNUM}.  Instead, the caller passes
                   2924: the address of a block of memory in which the value should be stored.
                   2925: @code{STRUCT_VALUE_REGNUM} is the register in which this address is passed.
                   2926: @end table
                   2927: 
                   2928: @node Register Classes, Stack Layout, Registers, Machine Macros
                   2929: @section Register Classes
                   2930: 
                   2931: On many machines, the numbered registers are not all equivalent.
                   2932: For example, certain registers may not be allowed for indexed addressing;
                   2933: certain registers may not be allowed in some instructions.  These machine
                   2934: restrictions are described to the compiler using @dfn{register classes}.
                   2935: 
                   2936: You define a number of register classes, giving each one a name and saying
                   2937: which of the registers belong to it.  Then you can specify register classes
                   2938: that are allowed as operands to particular instruction patterns.
                   2939: 
                   2940: In general, each register will belong to several classes.  In fact, one
                   2941: class must be named @code{ALL_REGS} and contain all the registers.  Another
                   2942: class must be named @code{NO_REGS} and contain no registers.  Often the
                   2943: union of two classes will be another class; however, this is not required.
                   2944: 
                   2945: One of the classes must be named @code{GENERAL_REGS}.  There is nothing
                   2946: terribly special about the name, but the operand constraint letters
                   2947: @samp{r} and @samp{g} specify this class.  If @code{GENERAL_REGS} is
                   2948: the same as @code{ALL_REGS}, just define it as a macro which expands
                   2949: to @code{ALL_REGS}.
                   2950: 
                   2951: The way classes other than @code{GENERAL_REGS} are specified in operand
                   2952: constraints is through machine-dependent operand constraint letters.
                   2953: You can define such letters to correspond to various classes, then use
                   2954: them in operand constraints.
                   2955: 
                   2956: You must also specify certain redundant information about the register
                   2957: classes: for each class, which classes contain it and which ones are
                   2958: contained in it; for each pair of classes, the largest class contained
                   2959: in their union.
                   2960: 
                   2961: @table @code
                   2962: @item enum reg_class
                   2963: An enumeral type that must be defined with all the register class names
                   2964: as enumeral values.  @code{NO_REGS} must be first.  @code{ALL_REGS}
                   2965: must be the last register class, followed by one more enumeral value,
                   2966: @code{LIM_REG_CLASSES}, which is not a register class but rather
                   2967: tells how many classes there are.
                   2968: 
                   2969: Each register class has a number, which is the value of casting
                   2970: the class name to type @code{int}.  The number serves as an index
                   2971: in many of the tables described below.
                   2972: 
                   2973: @item REG_CLASS_NAMES
                   2974: An initializer containing the names of the register classes as C string
                   2975: constants.  These names are used in writing some of the debugging dumps.
                   2976: 
                   2977: @item REG_CLASS_CONTENTS
                   2978: An initializer containing the contents of the register classes, as integers
                   2979: which are bit masks.  The @var{n}th integer specifies the contents of class
                   2980: @var{n}.  The way the integer @var{mask} is interpreted is that
                   2981: register @var{r} is in the class if @code{@var{mask} & (1 << @var{r})} is 1.
                   2982: 
                   2983: When the machine has more than 32 registers, an integer does not suffice.
                   2984: Then the integers are replaced by sub-initializers, braced groupings containing
                   2985: several integers.  Each sub-initializer must be suitable as an initializer
                   2986: for the type @code{HARD_REG_SET} which is defined in @file{hard-reg-set.h}.
                   2987: 
                   2988: @item REGNO_REG_CLASS (@var{regno})
                   2989: A C expression whose value is a register class containing hard register
                   2990: @var{regno}.  In general there is more that one such class; choose a class
                   2991: which is @dfn{minimal}, meaning that no smaller class also contains the
                   2992: register.
                   2993: 
                   2994: @item REG_CLASS_SUPERCLASSES
                   2995: A two-level initializer that says, for each class, which classes contain
                   2996: it.  The @var{n}th element of the initializer is a sub-initializer for
                   2997: class @var{n}; it contains the names of the othe classes that contain class
                   2998: @var{n} (but not the name of class @var{n} itself), followed by
                   2999: @code{LIM_REG_CLASSES} to mark the end of the element.
                   3000: 
                   3001: @item REG_CLASS_SUBCLASSES
                   3002: Similar to @code{REG_CLASS_SUPERCLASSES}, except that element @var{n} lists
                   3003: the classes @emph{contained in} class @var{n}, followed once again by
                   3004: @code{LIM_REG_CLASSES} to mark the end of the element.
                   3005: 
                   3006: @item REG_CLASS_SUBUNION
                   3007: An two-level initializer for a two-dimensional array.  The element
                   3008: (@var{m}, @var{n}) of this array must be a class that is ``close to''
                   3009: being the union of classes @var{m} and @var{n}.  If there is a class
                   3010: that is exactly that union, use it; otherwise, choose some smaller
                   3011: class, preferably as large as possible but certainly not containing
                   3012: any register that is neither in class @var{m} nor in class @var{n}.
                   3013: 
                   3014: @item INDEX_REG_CLASS
                   3015: A macro whose definition is the name of the class to which a valid index
                   3016: register must belong.
                   3017: 
                   3018: @item REG_CLASS_FROM_LETTER (@var{char})
                   3019: A C expression which defines the machine-dependent operand constraint
                   3020: letters for register classes.  If @var{char} is such a letter, the value
                   3021: should be the register class corresponding to it.  Otherwise, the value
                   3022: should be @code{NO_REGS}.
                   3023: 
                   3024: @item REGNO_OK_FOR_CLASS_P (@var{regno}, @var{class})
                   3025: A C expression which is nonzero if register number @var{regno} is a hard
                   3026: register belonging to class @var{class}.  The expression is always zero if
                   3027: @var{regno} is a pseudo register.
                   3028: 
                   3029: @item REG_OK_FOR_CLASS_P (@var{reg}, @var{class})
                   3030: A C expression which is nonzero if @var{reg} (an rtx assumed to have
                   3031: code @samp{reg}) belongs to class @var{class}.
                   3032: 
                   3033: What about pseudo registers?  There are two alternatives, and the machine
                   3034: description header file must be able to do either one on command.  If the
                   3035: macro @code{REG_OK_STRICT} is defined, this macro should be defined to
                   3036: reject all pseudo registers (return 0 for them).  Otherwise, this macro
                   3037: should be defined to accept all pseudo registers (return 1 for them).
                   3038: 
                   3039: Some source files of the compiler define @code{REG_OK_STRICT} before
                   3040: including the machine description header file, while others do not,
                   3041: according to the needs of that part of the compiler.
                   3042: 
                   3043: @item PREFERRED_RELOAD_CLASS (@var{x}, @var{class})
                   3044: A C expression that places additional restrictions on the register class
                   3045: to use when it is necessary to copy value @var{x} into a register in class
                   3046: @var{class}.  The value is a register class; perhaps @var{class}, or perhaps
                   3047: another, smaller class.  @var{class} is always safe as a value.  In fact,
                   3048: the definition
                   3049: 
                   3050: @example
                   3051: #define PREFERRED_RELOAD_CLASS(X,CLASS) CLASS
                   3052: @end example
                   3053: 
                   3054: @noindent
                   3055: is always safe.  However, sometimes returning a more restrictive class
                   3056: makes better code.  For example, on the 68000, when @var{x} is an
                   3057: integer constant that is in range for a @samp{moveq} instruction,
                   3058: the value of this macro is always @code{DATA_REGS} as long as
                   3059: @var{class} includes the data registers.  Requiring a data register
                   3060: guarantees that a @samp{moveq} will be used.
                   3061: @end table
                   3062: 
                   3063: Two other special macros
                   3064: 
                   3065: @table @code
                   3066: @item CONST_OK_FOR_LETTER_P (@var{value}, @var{c})
                   3067: A C expression that defines the machine-dependent operand constraint letters
                   3068: that specify particular ranges of integer values.  If @var{c} is one
                   3069: of those letters, the expression should check that @var{value}, an integer,
                   3070: is in the appropriate range and return 1 if so, 0 otherwise.  If @var{c} is
                   3071: not one of those letters, the value should be 0 regardless of @var{value}.
                   3072: 
                   3073: @item CONST_DOUBLE_OK_FOR_LETTER_P (@var{value}, @var{c})
                   3074: A C expression that defines the machine-dependent operand constraint
                   3075: letters that specify particular ranges of floating values.  If @var{c} is
                   3076: one of those letters, the expression should check that @var{value}, an rtx
                   3077: of code @samp{const_double}, is in the appropriate range and return 1 if
                   3078: so, 0 otherwise.  If @var{c} is not one of those letters, the value should
                   3079: be 0 regardless of @var{value}.
                   3080: @end table
                   3081: 
                   3082: @node Stack Layout, Addressing Modes, Register Classes, Machine Macros
                   3083: @section Describing Stack Layout
                   3084: 
                   3085: @table @code
                   3086: @item STACK_GROWS_DOWNWARD
                   3087: Define this macro if pushing a word onto the stack moves the stack
                   3088: pointer to a smaller address.  The definition is irrelevant because the
                   3089: compiler checks this macro with @code{#ifdef}.
                   3090: 
                   3091: @item FRAME_GROWS_DOWNWARD
                   3092: Define this macro if the addresses of local variable slots are at negative
                   3093: offsets from the frame pointer.
                   3094: 
                   3095: @item STARTING_FRAME_OFFSET
                   3096: Offset from the frame pointer to the first local variable slot to be allocated.
                   3097: 
                   3098: If @code{FRAME_GROWS_DOWNWARD}, the next slot's offset is found by
                   3099: subtracting the length of the first slot from @code{STARTING_FRAME_OFFSET}.
                   3100: Otherwise, it is found by adding the length of the first slot to
                   3101: the value @code{STARTING_FRAME_OFFSET}.
                   3102: 
                   3103: @item PUSH_ROUNDING (@var{npushed})
                   3104: A C expression that is the number of bytes actually pushed onto the
                   3105: stack when an instruction attempts to push @var{npushed} bytes.
                   3106: 
                   3107: On some machines, the definition
                   3108: 
                   3109: @example
                   3110: #define PUSH_ROUNDING(BYTES) (BYTES)
                   3111: @end example
                   3112: 
                   3113: @noindent
                   3114: will suffice.  But on other machines, instructions that appear
                   3115: to push one byte actually push two bytes in an attempt to maintain
                   3116: alignment.  Then the definition should be
                   3117: 
                   3118: @example
                   3119: #define PUSH_ROUNDING(BYTES) (((BYTES) + 1) & ~1)
                   3120: @end example
                   3121: 
                   3122: @item FIRST_PARM_OFFSET
                   3123: Offset from the argument pointer register to the first argument's address.
                   3124: 
                   3125: @item RETURN_POPS_ARGS
                   3126: Define this macro if returning from a function automatically pops the
                   3127: function's arguments.  Do not define it if the caller must pop them.
                   3128: 
                   3129: @item FUNCTION_PROLOGUE (@var{file}, @var{size})
                   3130: A C compound statement that outputs the assembler code for entry to a
                   3131: function.  The prologue is responsible for setting up the stack frame,
                   3132: initializing the frame pointer register, saving registers that must be
                   3133: saved, and allocating @var{size} additional bytes of storage for the local
                   3134: variables.  @var{size} is an integer.  @var{file} is a stdio stream to
                   3135: which the assembler code should be output.
                   3136: 
                   3137: The label for the beginning of the function need not be output by this
                   3138: macro.  That has already been done when the macro is run.
                   3139: 
                   3140: To determine which registers to save, the macro can refer to the array
                   3141: @code{regs_ever_live}: element @var{r} is nonzero if hard register @var{r}
                   3142: is used anywhere within the function.  This implies the function prologue
                   3143: should save register @var{r}, but not if it is one of the call-used
                   3144: registers.
                   3145: 
                   3146: @item FUNCTION_EPILOGUE (@var{file}, @var{size})
                   3147: A C compound statement that outputs the assembler code for exit from a
                   3148: function.  The epilogue is responsible for restoring the saved
                   3149: registers and stack pointer to their values when the function was
                   3150: called, and returning control to the caller.  This macro takes the
                   3151: same arguments as the macro @code{FUNCTION_PROLOGUE}, and the
                   3152: registers to restore are determined from @code{regs_ever_live} and
                   3153: @code{CALL_USED_REGISTERS} in the same way.
                   3154: 
                   3155: On some machines, there is a single instruction that does all the work of
                   3156: returning from the function.  On these machines, give that instruction the
                   3157: name @samp{return} and do not define the macro @code{FUNCTION_EPILOGUE} at
                   3158: all.
                   3159: @end table
                   3160: 
                   3161: @node Addressing Modes, Misc, Stack Layout, Machine Macros
                   3162: @section Addressing Modes
                   3163: 
                   3164: @table @code
                   3165: @item HAVE_POST_INCREMENT
                   3166: Define this macro if the machine supports post-increment addressing.
                   3167: 
                   3168: @item HAVE_PRE_INCREMENT
                   3169: @itemx HAVE_POST_DECREMENT
                   3170: @itemx HAVE_PRE_DECREMENT
                   3171: Similar for other kinds of addressing.
                   3172: 
                   3173: @item CONSTANT_ADDRESS_P (@var{x})
                   3174: A C expression that is 1 if the rtx @var{x} is a constant whose value
                   3175: is an integer.  This includes integers whose values are not explicitly
                   3176: known, such as @samp{symbol_ref} and @samp{label_ref} expressions
                   3177: and @samp{const} arithmetic expressions.
                   3178: 
                   3179: @item MAX_REGS_PER_ADDRESS
                   3180: A number, the maximum number of registers that can appear in a valid
                   3181: memory address.
                   3182: 
                   3183: @item GO_IF_LEGITIMATE_ADDRESS (@var{mode}, @var{x}, @var{label})
                   3184: A C compound statement with a conditional @code{goto @var{label};}
                   3185: executed if @var{x} (an rtx) is a legitimate memory address on
                   3186: the target machine for a memory operand of mode @var{mode}.
                   3187: 
                   3188: It usually pays to define several simpler macros to serve as
                   3189: subroutines for this one.  Otherwise it may be too complicated
                   3190: to understand.
                   3191: 
                   3192: @item LEGITIMIZE_ADDRESS (@var{x}, @var{oldx}, @var{mode}, @var{win})
                   3193: A C compound statement that attempts to replace @var{x} with a valid
                   3194: memory address for an operand of mode @var{mode}.  @var{win} will be
                   3195: a C statement label elsewhere in the code; the macro definition
                   3196: may use
                   3197: 
                   3198: @example
                   3199: GO_IF_LEGITIMATE_ADDRESS (@var{mode}, @var{x}, @var{win});
                   3200: @end example
                   3201: 
                   3202: @noindent
                   3203: to avoid further processing if the address has become legitimate.
                   3204: 
                   3205: @var{x} will always be the result of a call to @code{break_out_memory_refs},
                   3206: and @var{oldx} will be the operand that was given to that function to produce
                   3207: @var{x}.
                   3208: 
                   3209: The code generated by this macro should not alter the substructure of @var{x}.
                   3210: If it transforms @var{x} into a more legitimate form, it should assign @var{x}
                   3211: (which will always be a C variable) a new value.
                   3212: 
                   3213: It is not necessary for this macro to come up with a legitimate address.
                   3214: The compiler has standard ways of doing so in all cases.  In fact, it is
                   3215: safe for this macro to do nothing.  But often a machine-dependent strategy
                   3216: can generate better code.
                   3217: @end table
                   3218: 
                   3219: @node Misc, Condition Code, Addressing Modes, Machine Macros
                   3220: @section Miscellaneous Parameters
                   3221: 
                   3222: @table @code
                   3223: @item CASE_VECTOR_MODE
                   3224: An alias for a machine mode name.  This is the machine mode that elements
                   3225: of a jump-table should have.
                   3226: 
                   3227: @item CASE_VECTOR_PC_RELATIVE
                   3228: Define this macro if jump-tables should contain relative addresses.
                   3229: 
                   3230: @item IMPLICIT_FIX_EXPR
                   3231: An alias for a tree code that should be used by default for conversion
                   3232: of floating point values to fixed point.  Normally, @code{FIX_ROUND_EXPR}
                   3233: is used.
                   3234: 
                   3235: @item EASY_DIV_EXPR
                   3236: An alias for a tree code that is the easiest kind of division to compile
                   3237: code for in the general case.  It may be @code{TRUNC_DIV_EXPR},
                   3238: @code{FLOOR_DIV_EXPR}, @code{CEIL_DIV_EXPR} or @code{ROUND_DIV_EXPR}.
                   3239: These differ in how they round the result to an integer.
                   3240: @code{EASY_DIV_EXPR} is used when it is permissible to use any of those
                   3241: kinds of division and the choice should be made on the basis of efficiency.
                   3242: 
                   3243: @item MOVE_MAX
                   3244: The maximum number of bytes that a single instruction can move quickly
                   3245: from memory to memory.
                   3246: 
                   3247: @item SLOW_ZERO_EXTEND
                   3248: Define this macro if zero-extension (of chars or shorts to integers)
                   3249: can be done faster if the destination is a register that is known to be zero.
                   3250: 
                   3251: @item SHIFT_COUNT_TRUNCATED
                   3252: Define this macro if shift instructions ignore all but the lowest few
                   3253: bits of the shift count.  It implies that a sign-extend or zero-extend
                   3254: instruction for the shift count can be omitted.
                   3255: 
                   3256: @item TRULY_NOOP_TRUNCATON (@var{outprec}, @var{inprec})
                   3257: A C expression which is nonzero if on this machine it is safe to
                   3258: ``convert'' an integer of @var{inprec} bits to one of @var{outprec} bits
                   3259: (where @var{outprec} is smaller than @var{inprec}) by merely operating
                   3260: on it as if it had only @var{inprec} bits.
                   3261: 
                   3262: On many machines, this expression can be 1.
                   3263: 
                   3264: @item Pmode
                   3265: An alias for the machine mode for pointers.  Normally the definition can be
                   3266: 
                   3267: @example
                   3268: #define Pmode SImode
                   3269: @end example
                   3270: 
                   3271: @item FUNCTION_MODE
                   3272: An alias for the machine mode used for memory references to functions being
                   3273: called, in @samp{call} RTL expressions.  On most machines this should be
                   3274: @code{QImode}.
                   3275: 
                   3276: @item CONST_COST (@var{x}, @var{code})
                   3277: A part of a C @code{switch} statement that describes the relative costs of
                   3278: constant RTL expressions.  It must contain @code{case} labels for
                   3279: expression codes @samp{const_int}, @samp{const}, @samp{symbol_ref},
                   3280: @samp{label_ref} and @code{const_double}.  Each case must ultimately reach
                   3281: a @code{return} statement to return the relative cost of the use of that
                   3282: kind of constant value in an expression.  The cost may depend on the
                   3283: precise value of the constant, which is available for examination in
                   3284: @var{x}.
                   3285: 
                   3286: @var{code} is the expression code---redundant, since it can be obtained with
                   3287: @code{GET_CODE (@var{x})}.
                   3288: @end table
                   3289: 
                   3290: @node Condition Code, Assembler Format, Misc, Machine Macros
                   3291: @section Condition Code Information
                   3292: 
                   3293: The file @file{conditions.h} defines a variable @code{cc_status} to
                   3294: describe how the condition code was computed (in case the interpretation of
                   3295: the condition code depends on the instruction that it was set by).  This
                   3296: variable contains the RTL expressions on which the condition code is
                   3297: currently based, and several standard flags.
                   3298: 
                   3299: Sometimes additional machine-specific flags must be defined in the machine
                   3300: description header file.  It can also add additional machine-specific
                   3301: information by defining @code{CC_STATUS_MDEP}.
                   3302: 
                   3303: @table @code
                   3304: @item CC_STATUS_MDEP
                   3305: A type, with which the @code{mdep} component of @code{cc_status} should
                   3306: be declared.  It defaults to @code{int}.
                   3307: 
                   3308: @item CC_STATUS_MDEP_INIT
                   3309: A C expression for the initial value of the @code{mdep} field.
                   3310: It defaults to 0.
                   3311: 
                   3312: @item NOTICE_UPDATE_CC (@var{exp})
                   3313: A C compound statement to set the components of @code{cc_status}
                   3314: appropriately for an insn whose body is @var{exp}.  It is this
                   3315: macro's responsibility to recognize insns that set the condition code
                   3316: as a byproduct of other activity as well as those that explicitly
                   3317: set @code{(cc0)}.
                   3318: 
                   3319: If there are insn that do not set the condition code but do alter other
                   3320: machine registers, this macro must check to see whether they invalidate the
                   3321: expressions that the condition code is recorded as reflecting.  For
                   3322: example, on the 68000, insns that store in address registers do not set the
                   3323: condition code, which means that usually @code{NOTICE_UPDATE_CC} can leave
                   3324: @code{cc_status} unaltered for such insns.  But suppose that the previous
                   3325: insn set the condition code based on location @code{a4@@(102)} and the
                   3326: current insn stores a new value in @code{a4}.  Although the condition code
                   3327: is not changed by this, it will no longer be true that it reflects the
                   3328: contents of @code{a4@@(102)}.  Therefore, @code{NOTICE_UPDATE_CC} must alter
                   3329: @code{cc_status} in this case to say that nothing is known about the
                   3330: condition code value.
                   3331: @end table
                   3332: 
                   3333: @node Assembler Format,, Condition Code, Machine Macros
                   3334: @section Output of Assembler Code
                   3335: 
                   3336: @table @code
                   3337: @item TEXT_SECTION_ASM_OP
                   3338: A C string constant for the assembler operation that should precede
                   3339: instructions and read-only data.  Normally @code{".text"} is right.
                   3340: 
                   3341: @item DATA_SECTION_ASM_OP
                   3342: A C string constant for the assembler operation to identify the following
                   3343: data as writable initialized data.  Normally @code{".data"} is right.
                   3344: 
                   3345: @item REGISTER_NAMES
                   3346: A C initializer containing the assembler's names for the machine registers,
                   3347: each one as a C string constant.  This is what translates register numbers
                   3348: in the compiler into assembler language.
                   3349: 
                   3350: @item DBX_REGISTER_NUMBER (@var{regno})
                   3351: A C expression that returns the DBX register number for the compiler register
                   3352: number @var{regno}.  In simple cases, the value of this expression may be
                   3353: @var{regno} itself.  But sometimes there are some registers that the compiler
                   3354: knows about and DBX does not, or vice versa.  In such cases, some register
                   3355: may need to have one number in the compiler and another for DBX.
                   3356: 
                   3357: @item ASM_OUTPUT_DOUBLE (@var{file}, @var{value})
                   3358: A C statement to output to the stdio stream @var{file} an assembler
                   3359: instruction to assemble a @code{double} constant whose value is
                   3360: @var{value}.  @var{value} will be a C expression of type @code{double}.
                   3361: 
                   3362: @item ASM_OUTPUT_FLOAT (@var{file}, @var{value})
                   3363: A C statement to output to the stdio stream @var{file} an assembler
                   3364: instruction to assemble a @code{float} constant whose value is @var{value}.
                   3365: @var{value} will be a C expression of type @code{float}.
                   3366: 
                   3367: @item ASM_OUTPUT_SKIP (@var{file}, @var{nbytes})
                   3368: A C statement to output to the stdio stream @var{file} an assembler
                   3369: instruction to advance the location counter by @var{nbytes} bytes.
                   3370: @var{nbytes} will be a C expression of type @code{int}.
                   3371: 
                   3372: @item ASM_OUTPUT_ALIGN (@var{file}, @var{power})
                   3373: A C statement to output to the stdio stream @var{file} an assembler
                   3374: instruction to advance the location counter to a multiple of 2 to the
                   3375: @var{power} bytes.  @var{power} will be a C expression of type @code{int}.
                   3376: 
                   3377: @item ASM_INT_OP
                   3378: A C string constant for the assembler operation that assembles constants of
                   3379: C type @code{int}.  A space must follow the operation name.  Normally
                   3380: @code{".long@ "}.
                   3381: 
                   3382: @item ASM_SHORT_OP
                   3383: @itemx ASM_CHAR_OP
                   3384: Likewise, for C types @code{short} and @code{char}.  Normally @code{".word@ "}
                   3385: and @code{".byte@ "}.
                   3386: 
                   3387: @item TARGET_BELL
                   3388: A C constant expression for the integer value for escape sequence @samp{\a}.
                   3389: 
                   3390: @item TARGET_BS
                   3391: @itemx TARGET_TAB
                   3392: @itemx TARGET_NEWLINE
                   3393: C constant expressions for the integer values for escape sequences
                   3394: @samp{\b}, @samp{\t} and @samp{\n}.
                   3395: 
                   3396: @item TARGET_VT
                   3397: @itemx TARGET_FF
                   3398: @itemx TARGET_CR
                   3399: C constant expressions for the integer values for escape sequences
                   3400: @samp{\v}, @samp{\f} and @samp{\r}.
                   3401: 
                   3402: @item PRINT_OPERAND (@var{file}, @var{x})
                   3403: A C compound statement to output to stdio stream @var{file}
                   3404: the assembler syntax for an instruction operand @var{x}.
                   3405: @var{x} is an RTL expression.
                   3406: 
                   3407: If @var{x} is a register, this macro should print the register's name.  The
                   3408: names can be found in an array @code{reg_names} whose type is @code{char
                   3409: *[]}.  @code{reg_names} is initialized from @code{REGISTER_NAMES}.
                   3410: 
                   3411: @item PRINT_OPERAND_ADDRESS (@var{file}, @var{x})
                   3412: A C compound statement to output to stdio stream @var{file} the assembler
                   3413: syntax for an instruction operand that is a memory reference whose address
                   3414: is @var{x}.  @var{x} is an RTL expression.
                   3415: @end table
                   3416: 
                   3417: @contents
                   3418: @bye

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