--- gcc/gcc.info-13 2018/04/24 18:07:11 1.1.1.5 +++ gcc/gcc.info-13 2018/04/24 18:24:27 1.1.1.8 @@ -1,12 +1,13 @@ -This is Info file gcc.info, produced by Makeinfo-1.54 from the input +This is Info file gcc.info, produced by Makeinfo-1.55 from the input file gcc.texi. This file documents the use and the internals of the GNU compiler. - Published by the Free Software Foundation 675 Massachusetts Avenue -Cambridge, MA 02139 USA + Published by the Free Software Foundation 59 Temple Place - Suite 330 +Boston, MA 02111-1307 USA - Copyright (C) 1988, 1989, 1992, 1993 Free Software Foundation, Inc. + Copyright (C) 1988, 1989, 1992, 1993, 1994, 1995 Free Software +Foundation, Inc. Permission is granted to make and distribute verbatim copies of this manual provided the copyright notice and this permission notice are @@ -14,1258 +15,1043 @@ preserved on all copies. Permission is granted to copy and distribute modified versions of this manual under the conditions for verbatim copying, provided also -that the sections entitled "GNU General Public License" and "Protect -Your Freedom--Fight `Look And Feel'" are included exactly as in the -original, and provided that the entire resulting derived work is -distributed under the terms of a permission notice identical to this -one. +that the sections entitled "GNU General Public License," "Funding for +Free Software," and "Protect Your Freedom--Fight `Look And Feel'" are +included exactly as in the original, and provided that the entire +resulting derived work is distributed under the terms of a permission +notice identical to this one. Permission is granted to copy and distribute translations of this manual into another language, under the above conditions for modified versions, except that the sections entitled "GNU General Public -License" and "Protect Your Freedom--Fight `Look And Feel'", and this -permission notice, may be included in translations approved by the Free -Software Foundation instead of in the original English. +License," "Funding for Free Software," and "Protect Your Freedom--Fight +`Look And Feel'", and this permission notice, may be included in +translations approved by the Free Software Foundation instead of in the +original English.  -File: gcc.info, Node: RTL Template, Next: Output Template, Prev: Example, Up: Machine Desc +File: gcc.info, Node: VMS Misc, Prev: Global Declarations, Up: VMS -RTL Template -============ +Other VMS Issues +================ - The RTL template is used to define which insns match the particular -pattern and how to find their operands. For named patterns, the RTL -template also says how to construct an insn from specified operands. - - Construction involves substituting specified operands into a copy of -the template. Matching involves determining the values that serve as -the operands in the insn being matched. Both of these activities are -controlled by special expression types that direct matching and -substitution of the operands. - -`(match_operand:M N PREDICATE CONSTRAINT)' - This expression is a placeholder for operand number N of the insn. - When constructing an insn, operand number N will be substituted - at this point. When matching an insn, whatever appears at this - position in the insn will be taken as operand number N; but it - must satisfy PREDICATE or this instruction pattern will not match - at all. - - Operand numbers must be chosen consecutively counting from zero in - each instruction pattern. There may be only one `match_operand' - expression in the pattern for each operand number. Usually - operands are numbered in the order of appearance in `match_operand' - expressions. - - PREDICATE is a string that is the name of a C function that - accepts two arguments, an expression and a machine mode. During - matching, the function will be called with the putative operand as - the expression and M as the mode argument (if M is not specified, - `VOIDmode' will be used, which normally causes PREDICATE to accept - any mode). If it returns zero, this instruction pattern fails to - match. PREDICATE may be an empty string; then it means no test is - to be done on the operand, so anything which occurs in this - position is valid. - - Most of the time, PREDICATE will reject modes other than M--but - not always. For example, the predicate `address_operand' uses M - as the mode of memory ref that the address should be valid for. - Many predicates accept `const_int' nodes even though their mode is - `VOIDmode'. - - CONSTRAINT controls reloading and the choice of the best register - class to use for a value, as explained later (*note - Constraints::.). - - People are often unclear on the difference between the constraint - and the predicate. The predicate helps decide whether a given - insn matches the pattern. The constraint plays no role in this - decision; instead, it controls various decisions in the case of an - insn which does match. - - On CISC machines, the most common PREDICATE is - `"general_operand"'. This function checks that the putative - operand is either a constant, a register or a memory reference, - and that it is valid for mode M. - - For an operand that must be a register, PREDICATE should be - `"register_operand"'. Using `"general_operand"' would be valid, - since the reload pass would copy any non-register operands through - registers, but this would make GNU CC do extra work, it would - prevent invariant operands (such as constant) from being removed - from loops, and it would prevent the register allocator from doing - the best possible job. On RISC machines, it is usually most - efficient to allow PREDICATE to accept only objects that the - constraints allow. - - For an operand that must be a constant, you must be sure to either - use `"immediate_operand"' for PREDICATE, or make the instruction - pattern's extra condition require a constant, or both. You cannot - expect the constraints to do this work! If the constraints allow - only constants, but the predicate allows something else, the - compiler will crash when that case arises. - -`(match_scratch:M N CONSTRAINT)' - This expression is also a placeholder for operand number N and - indicates that operand must be a `scratch' or `reg' expression. - - When matching patterns, this is completely equivalent to - - (match_operand:M N "scratch_operand" PRED) - - but, when generating RTL, it produces a (`scratch':M) expression. - - If the last few expressions in a `parallel' are `clobber' - expressions whose operands are either a hard register or - `match_scratch', the combiner can add them when necessary. *Note - Side Effects::. - -`(match_dup N)' - This expression is also a placeholder for operand number N. It is - used when the operand needs to appear more than once in the insn. - - In construction, `match_dup' acts just like `match_operand': the - operand is substituted into the insn being constructed. But in - matching, `match_dup' behaves differently. It assumes that operand - number N has already been determined by a `match_operand' - appearing earlier in the recognition template, and it matches only - an identical-looking expression. - -`(match_operator:M N PREDICATE [OPERANDS...])' - This pattern is a kind of placeholder for a variable RTL expression - code. - - When constructing an insn, it stands for an RTL expression whose - expression code is taken from that of operand N, and whose - operands are constructed from the patterns OPERANDS. - - When matching an expression, it matches an expression if the - function PREDICATE returns nonzero on that expression *and* the - patterns OPERANDS match the operands of the expression. - - Suppose that the function `commutative_operator' is defined as - follows, to match any expression whose operator is one of the - commutative arithmetic operators of RTL and whose mode is MODE: - - int - commutative_operator (x, mode) - rtx x; - enum machine_mode mode; - { - enum rtx_code code = GET_CODE (x); - if (GET_MODE (x) != mode) - return 0; - return (GET_RTX_CLASS (code) == 'c' - || code == EQ || code == NE); - } - - Then the following pattern will match any RTL expression consisting - of a commutative operator applied to two general operands: - - (match_operator:SI 3 "commutative_operator" - [(match_operand:SI 1 "general_operand" "g") - (match_operand:SI 2 "general_operand" "g")]) - - Here the vector `[OPERANDS...]' contains two patterns because the - expressions to be matched all contain two operands. - - When this pattern does match, the two operands of the commutative - operator are recorded as operands 1 and 2 of the insn. (This is - done by the two instances of `match_operand'.) Operand 3 of the - insn will be the entire commutative expression: use `GET_CODE - (operands[3])' to see which commutative operator was used. - - The machine mode M of `match_operator' works like that of - `match_operand': it is passed as the second argument to the - predicate function, and that function is solely responsible for - deciding whether the expression to be matched "has" that mode. - - When constructing an insn, argument 3 of the gen-function will - specify the operation (i.e. the expression code) for the - expression to be made. It should be an RTL expression, whose - expression code is copied into a new expression whose operands are - arguments 1 and 2 of the gen-function. The subexpressions of - argument 3 are not used; only its expression code matters. - - When `match_operator' is used in a pattern for matching an insn, - it usually best if the operand number of the `match_operator' is - higher than that of the actual operands of the insn. This improves - register allocation because the register allocator often looks at - operands 1 and 2 of insns to see if it can do register tying. - - There is no way to specify constraints in `match_operator'. The - operand of the insn which corresponds to the `match_operator' - never has any constraints because it is never reloaded as a whole. - However, if parts of its OPERANDS are matched by `match_operand' - patterns, those parts may have constraints of their own. - -`(match_op_dup:M N[OPERANDS...])' - Like `match_dup', except that it applies to operators instead of - operands. When constructing an insn, operand number N will be - substituted at this point. But in matching, `match_op_dup' behaves - differently. It assumes that operand number N has already been - determined by a `match_operator' appearing earlier in the - recognition template, and it matches only an identical-looking - expression. - -`(match_parallel N PREDICATE [SUBPAT...])' - This pattern is a placeholder for an insn that consists of a - `parallel' expression with a variable number of elements. This - expression should only appear at the top level of an insn pattern. - - When constructing an insn, operand number N will be substituted at - this point. When matching an insn, it matches if the body of the - insn is a `parallel' expression with at least as many elements as - the vector of SUBPAT expressions in the `match_parallel', if each - SUBPAT matches the corresponding element of the `parallel', *and* - the function PREDICATE returns nonzero on the `parallel' that is - the body of the insn. It is the responsibility of the predicate - to validate elements of the `parallel' beyond those listed in the - `match_parallel'. - - A typical use of `match_parallel' is to match load and store - multiple expressions, which can contains a variable number of - elements in a `parallel'. For example, - - (define_insn "" - [(match_parallel 0 "load_multiple_operation" - [(set (match_operand:SI 1 "gpc_reg_operand" "=r") - (match_operand:SI 2 "memory_operand" "m")) - (use (reg:SI 179)) - (clobber (reg:SI 179))])] - "" - "loadm 0,0,%1,%2") - - This example comes from `a29k.md'. The function - `load_multiple_operations' is defined in `a29k.c' and checks that - subsequent elements in the `parallel' are the same as the `set' in - the pattern, except that they are referencing subsequent registers - and memory locations. - - An insn that matches this pattern might look like: - - (parallel - [(set (reg:SI 20) (mem:SI (reg:SI 100))) - (use (reg:SI 179)) - (clobber (reg:SI 179)) - (set (reg:SI 21) - (mem:SI (plus:SI (reg:SI 100) - (const_int 4)))) - (set (reg:SI 22) - (mem:SI (plus:SI (reg:SI 100) - (const_int 8))))]) - -`(match_par_dup N [SUBPAT...])' - Like `match_op_dup', but for `match_parallel' instead of - `match_operator'. - -`(address (match_operand:M N "address_operand" ""))' - This complex of expressions is a placeholder for an operand number - N in a "load address" instruction: an operand which specifies a - memory location in the usual way, but for which the actual operand - value used is the address of the location, not the contents of the - location. - - `address' expressions never appear in RTL code, only in machine - descriptions. And they are used only in machine descriptions that - do not use the operand constraint feature. When operand - constraints are in use, the letter `p' in the constraint serves - this purpose. - - M is the machine mode of the *memory location being addressed*, - not the machine mode of the address itself. That mode is always - the same on a given target machine (it is `Pmode', which normally - is `SImode'), so there is no point in mentioning it; thus, no - machine mode is written in the `address' expression. If some day - support is added for machines in which addresses of different - kinds of objects appear differently or are used differently (such - as the PDP-10), different formats would perhaps need different - machine modes and these modes might be written in the `address' - expression. + GNU CC automatically arranges for `main' to return 1 by default if +you fail to specify an explicit return value. This will be interpreted +by VMS as a status code indicating a normal successful completion. +Version 1 of GNU CC did not provide this default. + + GNU CC on VMS works only with the GNU assembler, GAS. You need +version 1.37 or later of GAS in order to produce value debugging +information for the VMS debugger. Use the ordinary VMS linker with the +object files produced by GAS. + + Under previous versions of GNU CC, the generated code would +occasionally give strange results when linked to the sharable `VAXCRTL' +library. Now this should work. + + A caveat for use of `const' global variables: the `const' modifier +must be specified in every external declaration of the variable in all +of the source files that use that variable. Otherwise the linker will +issue warnings about conflicting attributes for the variable. Your +program will still work despite the warnings, but the variable will be +placed in writable storage. + + Although the VMS linker does distinguish between upper and lower case +letters in global symbols, most VMS compilers convert all such symbols +into upper case and most run-time library routines also have upper case +names. To be able to reliably call such routines, GNU CC (by means of +the assembler GAS) converts global symbols into upper case like other +VMS compilers. However, since the usual practice in C is to distinguish +case, GNU CC (via GAS) tries to preserve usual C behavior by augmenting +each name that is not all lower case. This means truncating the name +to at most 23 characters and then adding more characters at the end +which encode the case pattern of those 23. Names which contain at +least one dollar sign are an exception; they are converted directly into +upper case without augmentation. + + Name augmentation yields bad results for programs that use +precompiled libraries (such as Xlib) which were generated by another +compiler. You can use the compiler option `/NOCASE_HACK' to inhibit +augmentation; it makes external C functions and variables +case-independent as is usual on VMS. Alternatively, you could write +all references to the functions and variables in such libraries using +lower case; this will work on VMS, but is not portable to other +systems. The compiler option `/NAMES' also provides control over +global name handling. + + Function and variable names are handled somewhat differently with GNU +C++. The GNU C++ compiler performs "name mangling" on function names, +which means that it adds information to the function name to describe +the data types of the arguments that the function takes. One result of +this is that the name of a function can become very long. Since the +VMS linker only recognizes the first 31 characters in a name, special +action is taken to ensure that each function and variable has a unique +name that can be represented in 31 characters. + + If the name (plus a name augmentation, if required) is less than 32 +characters in length, then no special action is performed. If the name +is longer than 31 characters, the assembler (GAS) will generate a hash +string based upon the function name, truncate the function name to 23 +characters, and append the hash string to the truncated name. If the +`/VERBOSE' compiler option is used, the assembler will print both the +full and truncated names of each symbol that is truncated. + + The `/NOCASE_HACK' compiler option should not be used when you are +compiling programs that use libg++. libg++ has several instances of +objects (i.e. `Filebuf' and `filebuf') which become indistinguishable +in a case-insensitive environment. This leads to cases where you need +to inhibit augmentation selectively (if you were using libg++ and Xlib +in the same program, for example). There is no special feature for +doing this, but you can get the result by defining a macro for each +mixed case symbol for which you wish to inhibit augmentation. The +macro should expand into the lower case equivalent of itself. For +example: - -File: gcc.info, Node: Output Template, Next: Output Statement, Prev: RTL Template, Up: Machine Desc - -Output Templates and Operand Substitution -========================================= + #define StuDlyCapS studlycaps - The "output template" is a string which specifies how to output the -assembler code for an instruction pattern. Most of the template is a -fixed string which is output literally. The character `%' is used to -specify where to substitute an operand; it can also be used to identify -places where different variants of the assembler require different -syntax. - - In the simplest case, a `%' followed by a digit N says to output -operand N at that point in the string. - - `%' followed by a letter and a digit says to output an operand in an -alternate fashion. Four letters have standard, built-in meanings -described below. The machine description macro `PRINT_OPERAND' can -define additional letters with nonstandard meanings. - - `%cDIGIT' can be used to substitute an operand that is a constant -value without the syntax that normally indicates an immediate operand. - - `%nDIGIT' is like `%cDIGIT' except that the value of the constant is -negated before printing. - - `%aDIGIT' can be used to substitute an operand as if it were a -memory reference, with the actual operand treated as the address. This -may be useful when outputting a "load address" instruction, because -often the assembler syntax for such an instruction requires you to -write the operand as if it were a memory reference. - - `%lDIGIT' is used to substitute a `label_ref' into a jump -instruction. - - `%=' outputs a number which is unique to each instruction in the -entire compilation. This is useful for making local labels to be -referred to more than once in a single template that generates multiple -assembler instructions. - - `%' followed by a punctuation character specifies a substitution that -does not use an operand. Only one case is standard: `%%' outputs a `%' -into the assembler code. Other nonstandard cases can be defined in the -`PRINT_OPERAND' macro. You must also define which punctuation -characters are valid with the `PRINT_OPERAND_PUNCT_VALID_P' macro. - - The template may generate multiple assembler instructions. Write -the text for the instructions, with `\;' between them. - - When the RTL contains two operands which are required by constraint -to match each other, the output template must refer only to the -lower-numbered operand. Matching operands are not always identical, -and the rest of the compiler arranges to put the proper RTL expression -for printing into the lower-numbered operand. - - One use of nonstandard letters or punctuation following `%' is to -distinguish between different assembler languages for the same machine; -for example, Motorola syntax versus MIT syntax for the 68000. Motorola -syntax requires periods in most opcode names, while MIT syntax does -not. For example, the opcode `movel' in MIT syntax is `move.l' in -Motorola syntax. The same file of patterns is used for both kinds of -output syntax, but the character sequence `%.' is used in each place -where Motorola syntax wants a period. The `PRINT_OPERAND' macro for -Motorola syntax defines the sequence to output a period; the macro for -MIT syntax defines it to do nothing. - - As a special case, a template consisting of the single character `#' -instructs the compiler to first split the insn, and then output the -resulting instructions separately. This helps eliminate redundancy in -the output templates. If you have a `define_insn' that needs to emit -multiple assembler instructions, and there is an matching `define_split' -already defined, then you can simply use `#' as the output template -instead of writing an output template that emits the multiple assembler -instructions. + These macro definitions can be placed in a header file to minimize +the number of changes to your source code.  -File: gcc.info, Node: Output Statement, Next: Constraints, Prev: Output Template, Up: Machine Desc - -C Statements for Assembler Output -================================= - - Often a single fixed template string cannot produce correct and -efficient assembler code for all the cases that are recognized by a -single instruction pattern. For example, the opcodes may depend on the -kinds of operands; or some unfortunate combinations of operands may -require extra machine instructions. - - If the output control string starts with a `@', then it is actually -a series of templates, each on a separate line. (Blank lines and -leading spaces and tabs are ignored.) The templates correspond to the -pattern's constraint alternatives (*note Multi-Alternative::.). For -example, if a target machine has a two-address add instruction `addr' -to add into a register and another `addm' to add a register to memory, -you might write this pattern: - - (define_insn "addsi3" - [(set (match_operand:SI 0 "general_operand" "=r,m") - (plus:SI (match_operand:SI 1 "general_operand" "0,0") - (match_operand:SI 2 "general_operand" "g,r")))] - "" - "@ - addr %2,%0 - addm %2,%0") - - If the output control string starts with a `*', then it is not an -output template but rather a piece of C program that should compute a -template. It should execute a `return' statement to return the -template-string you want. Most such templates use C string literals, -which require doublequote characters to delimit them. To include these -doublequote characters in the string, prefix each one with `\'. - - The operands may be found in the array `operands', whose C data type -is `rtx []'. - - It is very common to select different ways of generating assembler -code based on whether an immediate operand is within a certain range. -Be careful when doing this, because the result of `INTVAL' is an -integer on the host machine. If the host machine has more bits in an -`int' than the target machine has in the mode in which the constant -will be used, then some of the bits you get from `INTVAL' will be -superfluous. For proper results, you must carefully disregard the -values of those bits. - - It is possible to output an assembler instruction and then go on to -output or compute more of them, using the subroutine `output_asm_insn'. -This receives two arguments: a template-string and a vector of -operands. The vector may be `operands', or it may be another array of -`rtx' that you declare locally and initialize yourself. - - When an insn pattern has multiple alternatives in its constraints, -often the appearance of the assembler code is determined mostly by -which alternative was matched. When this is so, the C code can test -the variable `which_alternative', which is the ordinal number of the -alternative that was actually satisfied (0 for the first, 1 for the -second alternative, etc.). - - For example, suppose there are two opcodes for storing zero, `clrreg' -for registers and `clrmem' for memory locations. Here is how a pattern -could use `which_alternative' to choose between them: - - (define_insn "" - [(set (match_operand:SI 0 "general_operand" "=r,m") - (const_int 0))] - "" - "* - return (which_alternative == 0 - ? \"clrreg %0\" : \"clrmem %0\"); - ") - - The example above, where the assembler code to generate was *solely* -determined by the alternative, could also have been specified as -follows, having the output control string start with a `@': - - (define_insn "" - [(set (match_operand:SI 0 "general_operand" "=r,m") - (const_int 0))] - "" - "@ - clrreg %0 - clrmem %0") - - -File: gcc.info, Node: Constraints, Next: Standard Names, Prev: Output Statement, Up: Machine Desc - -Operand Constraints -=================== +File: gcc.info, Node: Portability, Next: Interface, Prev: VMS, Up: Top - Each `match_operand' in an instruction pattern can specify a -constraint for the type of operands allowed. Constraints can say -whether an operand may be in a register, and which kinds of register; -whether the operand can be a memory reference, and which kinds of -address; whether the operand may be an immediate constant, and which -possible values it may have. Constraints can also require two operands -to match. +GNU CC and Portability +********************** -* Menu: - -* Simple Constraints:: Basic use of constraints. -* Multi-Alternative:: When an insn has two alternative constraint-patterns. -* Class Preferences:: Constraints guide which hard register to put things in. -* Modifiers:: More precise control over effects of constraints. -* Machine Constraints:: Existing constraints for some particular machines. -* No Constraints:: Describing a clean machine without constraints. + The main goal of GNU CC was to make a good, fast compiler for +machines in the class that the GNU system aims to run on: 32-bit +machines that address 8-bit bytes and have several general registers. +Elegance, theoretical power and simplicity are only secondary. + + GNU CC gets most of the information about the target machine from a +machine description which gives an algebraic formula for each of the +machine's instructions. This is a very clean way to describe the +target. But when the compiler needs information that is difficult to +express in this fashion, I have not hesitated to define an ad-hoc +parameter to the machine description. The purpose of portability is to +reduce the total work needed on the compiler; it was not of interest +for its own sake. + + GNU CC does not contain machine dependent code, but it does contain +code that depends on machine parameters such as endianness (whether the +most significant byte has the highest or lowest address of the bytes in +a word) and the availability of autoincrement addressing. In the +RTL-generation pass, it is often necessary to have multiple strategies +for generating code for a particular kind of syntax tree, strategies +that are usable for different combinations of parameters. Often I have +not tried to address all possible cases, but only the common ones or +only the ones that I have encountered. As a result, a new target may +require additional strategies. You will know if this happens because +the compiler will call `abort'. Fortunately, the new strategies can be +added in a machine-independent fashion, and will affect only the target +machines that need them.  -File: gcc.info, Node: Simple Constraints, Next: Multi-Alternative, Up: Constraints +File: gcc.info, Node: Interface, Next: Passes, Prev: Portability, Up: Top -Simple Constraints ------------------- +Interfacing to GNU CC Output +**************************** - The simplest kind of constraint is a string full of letters, each of -which describes one kind of operand that is permitted. Here are the -letters that are allowed: - -`m' - A memory operand is allowed, with any kind of address that the - machine supports in general. - -`o' - A memory operand is allowed, but only if the address is - "offsettable". This means that adding a small integer (actually, - the width in bytes of the operand, as determined by its machine - mode) may be added to the address and the result is also a valid - memory address. - - For example, an address which is constant is offsettable; so is an - address that is the sum of a register and a constant (as long as a - slightly larger constant is also within the range of - address-offsets supported by the machine); but an autoincrement or - autodecrement address is not offsettable. More complicated - indirect/indexed addresses may or may not be offsettable depending - on the other addressing modes that the machine supports. - - Note that in an output operand which can be matched by another - operand, the constraint letter `o' is valid only when accompanied - by both `<' (if the target machine has predecrement addressing) - and `>' (if the target machine has preincrement addressing). - -`V' - A memory operand that is not offsettable. In other words, - anything that would fit the `m' constraint but not the `o' - constraint. - -`<' - A memory operand with autodecrement addressing (either - predecrement or postdecrement) is allowed. - -`>' - A memory operand with autoincrement addressing (either - preincrement or postincrement) is allowed. - -`r' - A register operand is allowed provided that it is in a general - register. - -`d', `a', `f', ... - Other letters can be defined in machine-dependent fashion to stand - for particular classes of registers. `d', `a' and `f' are defined - on the 68000/68020 to stand for data, address and floating point - registers. - -`i' - An immediate integer operand (one with constant value) is allowed. - This includes symbolic constants whose values will be known only at - assembly time. - -`n' - An immediate integer operand with a known numeric value is allowed. - Many systems cannot support assembly-time constants for operands - less than a word wide. Constraints for these operands should use - `n' rather than `i'. - -`I', `J', `K', ... `P' - Other letters in the range `I' through `P' may be defined in a - machine-dependent fashion to permit immediate integer operands with - explicit integer values in specified ranges. For example, on the - 68000, `I' is defined to stand for the range of values 1 to 8. - This is the range permitted as a shift count in the shift - instructions. - -`E' - An immediate floating operand (expression code `const_double') is - allowed, but only if the target floating point format is the same - as that of the host machine (on which the compiler is running). - -`F' - An immediate floating operand (expression code `const_double') is - allowed. - -`G', `H' - `G' and `H' may be defined in a machine-dependent fashion to - permit immediate floating operands in particular ranges of values. - -`s' - An immediate integer operand whose value is not an explicit - integer is allowed. - - This might appear strange; if an insn allows a constant operand - with a value not known at compile time, it certainly must allow - any known value. So why use `s' instead of `i'? Sometimes it - allows better code to be generated. - - For example, on the 68000 in a fullword instruction it is possible - to use an immediate operand; but if the immediate value is between - -128 and 127, better code results from loading the value into a - register and using the register. This is because the load into - the register can be done with a `moveq' instruction. We arrange - for this to happen by defining the letter `K' to mean "any integer - outside the range -128 to 127", and then specifying `Ks' in the - operand constraints. - -`g' - Any register, memory or immediate integer operand is allowed, - except for registers that are not general registers. - -`X' - Any operand whatsoever is allowed, even if it does not satisfy - `general_operand'. This is normally used in the constraint of a - `match_scratch' when certain alternatives will not actually - require a scratch register. - -`0', `1', `2', ... `9' - An operand that matches the specified operand number is allowed. - If a digit is used together with letters within the same - alternative, the digit should come last. - - This is called a "matching constraint" and what it really means is - that the assembler has only a single operand that fills two roles - considered separate in the RTL insn. For example, an add insn has - two input operands and one output operand in the RTL, but on most - CISC machines an add instruction really has only two operands, one - of them an input-output operand: - - addl #35,r12 - - Matching constraints are used in these circumstances. More - precisely, the two operands that match must include one input-only - operand and one output-only operand. Moreover, the digit must be a - smaller number than the number of the operand that uses it in the - constraint. - - For operands to match in a particular case usually means that they - are identical-looking RTL expressions. But in a few special cases - specific kinds of dissimilarity are allowed. For example, `*x' as - an input operand will match `*x++' as an output operand. For - proper results in such cases, the output template should always - use the output-operand's number when printing the operand. - -`p' - An operand that is a valid memory address is allowed. This is for - "load address" and "push address" instructions. - - `p' in the constraint must be accompanied by `address_operand' as - the predicate in the `match_operand'. This predicate interprets - the mode specified in the `match_operand' as the mode of the memory - reference for which the address would be valid. - -`Q', `R', `S', ... `U' - Letters in the range `Q' through `U' may be defined in a - machine-dependent fashion to stand for arbitrary operand types. - The machine description macro `EXTRA_CONSTRAINT' is passed the - operand as its first argument and the constraint letter as its - second operand. - - A typical use for this would be to distinguish certain types of - memory references that affect other insn operands. - - Do not define these constraint letters to accept register - references (`reg'); the reload pass does not expect this and would - not handle it properly. - - In order to have valid assembler code, each operand must satisfy its -constraint. But a failure to do so does not prevent the pattern from -applying to an insn. Instead, it directs the compiler to modify the -code so that the constraint will be satisfied. Usually this is done by -copying an operand into a register. - - Contrast, therefore, the two instruction patterns that follow: - - (define_insn "" - [(set (match_operand:SI 0 "general_operand" "=r") - (plus:SI (match_dup 0) - (match_operand:SI 1 "general_operand" "r")))] - "" - "...") - -which has two operands, one of which must appear in two places, and - - (define_insn "" - [(set (match_operand:SI 0 "general_operand" "=r") - (plus:SI (match_operand:SI 1 "general_operand" "0") - (match_operand:SI 2 "general_operand" "r")))] - "" - "...") - -which has three operands, two of which are required by a constraint to -be identical. If we are considering an insn of the form - - (insn N PREV NEXT - (set (reg:SI 3) - (plus:SI (reg:SI 6) (reg:SI 109))) - ...) - -the first pattern would not apply at all, because this insn does not -contain two identical subexpressions in the right place. The pattern -would say, "That does not look like an add instruction; try other -patterns." The second pattern would say, "Yes, that's an add -instruction, but there is something wrong with it." It would direct -the reload pass of the compiler to generate additional insns to make -the constraint true. The results might look like this: - - (insn N2 PREV N - (set (reg:SI 3) (reg:SI 6)) - ...) - - (insn N N2 NEXT - (set (reg:SI 3) - (plus:SI (reg:SI 3) (reg:SI 109))) - ...) - - It is up to you to make sure that each operand, in each pattern, has -constraints that can handle any RTL expression that could be present for -that operand. (When multiple alternatives are in use, each pattern -must, for each possible combination of operand expressions, have at -least one alternative which can handle that combination of operands.) -The constraints don't need to *allow* any possible operand--when this is -the case, they do not constrain--but they must at least point the way to -reloading any possible operand so that it will fit. - - * If the constraint accepts whatever operands the predicate permits, - there is no problem: reloading is never necessary for this operand. - - For example, an operand whose constraints permit everything except - registers is safe provided its predicate rejects registers. - - An operand whose predicate accepts only constant values is safe - provided its constraints include the letter `i'. If any possible - constant value is accepted, then nothing less than `i' will do; if - the predicate is more selective, then the constraints may also be - more selective. - - * Any operand expression can be reloaded by copying it into a - register. So if an operand's constraints allow some kind of - register, it is certain to be safe. It need not permit all - classes of registers; the compiler knows how to copy a register - into another register of the proper class in order to make an - instruction valid. - - * A nonoffsettable memory reference can be reloaded by copying the - address into a register. So if the constraint uses the letter - `o', all memory references are taken care of. - - * A constant operand can be reloaded by allocating space in memory to - hold it as preinitialized data. Then the memory reference can be - used in place of the constant. So if the constraint uses the - letters `o' or `m', constant operands are not a problem. - - * If the constraint permits a constant and a pseudo register used in - an insn was not allocated to a hard register and is equivalent to - a constant, the register will be replaced with the constant. If - the predicate does not permit a constant and the insn is - re-recognized for some reason, the compiler will crash. Thus the - predicate must always recognize any objects allowed by the - constraint. - - If the operand's predicate can recognize registers, but the -constraint does not permit them, it can make the compiler crash. When -this operand happens to be a register, the reload pass will be stymied, -because it does not know how to copy a register temporarily into memory. + GNU CC is normally configured to use the same function calling +convention normally in use on the target system. This is done with the +machine-description macros described (*note Target Macros::.). + + However, returning of structure and union values is done differently +on some target machines. As a result, functions compiled with PCC +returning such types cannot be called from code compiled with GNU CC, +and vice versa. This does not cause trouble often because few Unix +library routines return structures or unions. + + GNU CC code returns structures and unions that are 1, 2, 4 or 8 bytes +long in the same registers used for `int' or `double' return values. +(GNU CC typically allocates variables of such types in registers also.) +Structures and unions of other sizes are returned by storing them into +an address passed by the caller (usually in a register). The +machine-description macros `STRUCT_VALUE' and `STRUCT_INCOMING_VALUE' +tell GNU CC where to pass this address. + + By contrast, PCC on most target machines returns structures and +unions of any size by copying the data into an area of static storage, +and then returning the address of that storage as if it were a pointer +value. The caller must copy the data from that memory area to the +place where the value is wanted. This is slower than the method used +by GNU CC, and fails to be reentrant. + + On some target machines, such as RISC machines and the 80386, the +standard system convention is to pass to the subroutine the address of +where to return the value. On these machines, GNU CC has been +configured to be compatible with the standard compiler, when this method +is used. It may not be compatible for structures of 1, 2, 4 or 8 bytes. + + GNU CC uses the system's standard convention for passing arguments. +On some machines, the first few arguments are passed in registers; in +others, all are passed on the stack. It would be possible to use +registers for argument passing on any machine, and this would probably +result in a significant speedup. But the result would be complete +incompatibility with code that follows the standard convention. So this +change is practical only if you are switching to GNU CC as the sole C +compiler for the system. We may implement register argument passing on +certain machines once we have a complete GNU system so that we can +compile the libraries with GNU CC. + + On some machines (particularly the Sparc), certain types of arguments +are passed "by invisible reference". This means that the value is +stored in memory, and the address of the memory location is passed to +the subroutine. + + If you use `longjmp', beware of automatic variables. ANSI C says +that automatic variables that are not declared `volatile' have undefined +values after a `longjmp'. And this is all GNU CC promises to do, +because it is very difficult to restore register variables correctly, +and one of GNU CC's features is that it can put variables in registers +without your asking it to. + + If you want a variable to be unaltered by `longjmp', and you don't +want to write `volatile' because old C compilers don't accept it, just +take the address of the variable. If a variable's address is ever +taken, even if just to compute it and ignore it, then the variable +cannot go in a register: + + { + int careful; + &careful; + ... + } + + Code compiled with GNU CC may call certain library routines. Most of +them handle arithmetic for which there are no instructions. This +includes multiply and divide on some machines, and floating point +operations on any machine for which floating point support is disabled +with `-msoft-float'. Some standard parts of the C library, such as +`bcopy' or `memcpy', are also called automatically. The usual function +call interface is used for calling the library routines. + + These library routines should be defined in the library `libgcc.a', +which GNU CC automatically searches whenever it links a program. On +machines that have multiply and divide instructions, if hardware +floating point is in use, normally `libgcc.a' is not needed, but it is +searched just in case. + + Each arithmetic function is defined in `libgcc1.c' to use the +corresponding C arithmetic operator. As long as the file is compiled +with another C compiler, which supports all the C arithmetic operators, +this file will work portably. However, `libgcc1.c' does not work if +compiled with GNU CC, because each arithmetic function would compile +into a call to itself!  -File: gcc.info, Node: Multi-Alternative, Next: Class Preferences, Prev: Simple Constraints, Up: Constraints +File: gcc.info, Node: Passes, Next: RTL, Prev: Interface, Up: Top -Multiple Alternative Constraints --------------------------------- +Passes and Files of the Compiler +******************************** - Sometimes a single instruction has multiple alternative sets of -possible operands. For example, on the 68000, a logical-or instruction -can combine register or an immediate value into memory, or it can -combine any kind of operand into a register; but it cannot combine one -memory location into another. - - These constraints are represented as multiple alternatives. An -alternative can be described by a series of letters for each operand. -The overall constraint for an operand is made from the letters for this -operand from the first alternative, a comma, the letters for this -operand from the second alternative, a comma, and so on until the last -alternative. Here is how it is done for fullword logical-or on the -68000: - - (define_insn "iorsi3" - [(set (match_operand:SI 0 "general_operand" "=m,d") - (ior:SI (match_operand:SI 1 "general_operand" "%0,0") - (match_operand:SI 2 "general_operand" "dKs,dmKs")))] - ...) - - The first alternative has `m' (memory) for operand 0, `0' for -operand 1 (meaning it must match operand 0), and `dKs' for operand 2. -The second alternative has `d' (data register) for operand 0, `0' for -operand 1, and `dmKs' for operand 2. The `=' and `%' in the -constraints apply to all the alternatives; their meaning is explained -in the next section (*note Class Preferences::.). - - If all the operands fit any one alternative, the instruction is -valid. Otherwise, for each alternative, the compiler counts how many -instructions must be added to copy the operands so that that -alternative applies. The alternative requiring the least copying is -chosen. If two alternatives need the same amount of copying, the one -that comes first is chosen. These choices can be altered with the `?' -and `!' characters: - -`?' - Disparage slightly the alternative that the `?' appears in, as a - choice when no alternative applies exactly. The compiler regards - this alternative as one unit more costly for each `?' that appears - in it. - -`!' - Disparage severely the alternative that the `!' appears in. This - alternative can still be used if it fits without reloading, but if - reloading is needed, some other alternative will be used. - - When an insn pattern has multiple alternatives in its constraints, -often the appearance of the assembler code is determined mostly by which -alternative was matched. When this is so, the C code for writing the -assembler code can use the variable `which_alternative', which is the -ordinal number of the alternative that was actually satisfied (0 for -the first, 1 for the second alternative, etc.). *Note Output -Statement::. + The overall control structure of the compiler is in `toplev.c'. This +file is responsible for initialization, decoding arguments, opening and +closing files, and sequencing the passes. + + The parsing pass is invoked only once, to parse the entire input. +The RTL intermediate code for a function is generated as the function +is parsed, a statement at a time. Each statement is read in as a +syntax tree and then converted to RTL; then the storage for the tree +for the statement is reclaimed. Storage for types (and the expressions +for their sizes), declarations, and a representation of the binding +contours and how they nest, remain until the function is finished being +compiled; these are all needed to output the debugging information. + + Each time the parsing pass reads a complete function definition or +top-level declaration, it calls either the function +`rest_of_compilation', or the function `rest_of_decl_compilation' in +`toplev.c', which are responsible for all further processing necessary, +ending with output of the assembler language. All other compiler +passes run, in sequence, within `rest_of_compilation'. When that +function returns from compiling a function definition, the storage used +for that function definition's compilation is entirely freed, unless it +is an inline function (*note An Inline Function is As Fast As a Macro: +Inline.). + + Here is a list of all the passes of the compiler and their source +files. Also included is a description of where debugging dumps can be +requested with `-d' options. + + * Parsing. This pass reads the entire text of a function definition, + constructing partial syntax trees. This and RTL generation are no + longer truly separate passes (formerly they were), but it is + easier to think of them as separate. + + The tree representation does not entirely follow C syntax, because + it is intended to support other languages as well. + + Language-specific data type analysis is also done in this pass, + and every tree node that represents an expression has a data type + attached. Variables are represented as declaration nodes. + + Constant folding and some arithmetic simplifications are also done + during this pass. + + The language-independent source files for parsing are + `stor-layout.c', `fold-const.c', and `tree.c'. There are also + header files `tree.h' and `tree.def' which define the format of + the tree representation. + + The source files to parse C are `c-parse.in', `c-decl.c', + `c-typeck.c', `c-aux-info.c', `c-convert.c', and `c-lang.c' along + with header files `c-lex.h', and `c-tree.h'. + + The source files for parsing C++ are `cp-parse.y', `cp-class.c', + `cp-cvt.c', `cp-decl.c', `cp-decl2.c', `cp-dem.c', `cp-except.c', + `cp-expr.c', `cp-init.c', `cp-lex.c', `cp-method.c', `cp-ptree.c', + `cp-search.c', `cp-tree.c', `cp-type2.c', and `cp-typeck.c', along + with header files `cp-tree.def', `cp-tree.h', and `cp-decl.h'. + + The special source files for parsing Objective C are + `objc-parse.y', `objc-actions.c', `objc-tree.def', and + `objc-actions.h'. Certain C-specific files are used for this as + well. + + The file `c-common.c' is also used for all of the above languages. + + * RTL generation. This is the conversion of syntax tree into RTL + code. It is actually done statement-by-statement during parsing, + but for most purposes it can be thought of as a separate pass. + + This is where the bulk of target-parameter-dependent code is found, + since often it is necessary for strategies to apply only when + certain standard kinds of instructions are available. The purpose + of named instruction patterns is to provide this information to + the RTL generation pass. + + Optimization is done in this pass for `if'-conditions that are + comparisons, boolean operations or conditional expressions. Tail + recursion is detected at this time also. Decisions are made about + how best to arrange loops and how to output `switch' statements. + + The source files for RTL generation include `stmt.c', `calls.c', + `expr.c', `explow.c', `expmed.c', `function.c', `optabs.c' and + `emit-rtl.c'. Also, the file `insn-emit.c', generated from the + machine description by the program `genemit', is used in this + pass. The header file `expr.h' is used for communication within + this pass. + + The header files `insn-flags.h' and `insn-codes.h', generated from + the machine description by the programs `genflags' and `gencodes', + tell this pass which standard names are available for use and + which patterns correspond to them. + + Aside from debugging information output, none of the following + passes refers to the tree structure representation of the function + (only part of which is saved). + + The decision of whether the function can and should be expanded + inline in its subsequent callers is made at the end of rtl + generation. The function must meet certain criteria, currently + related to the size of the function and the types and number of + parameters it has. Note that this function may contain loops, + recursive calls to itself (tail-recursive functions can be + inlined!), gotos, in short, all constructs supported by GNU CC. + The file `integrate.c' contains the code to save a function's rtl + for later inlining and to inline that rtl when the function is + called. The header file `integrate.h' is also used for this + purpose. + + The option `-dr' causes a debugging dump of the RTL code after + this pass. This dump file's name is made by appending `.rtl' to + the input file name. + + * Jump optimization. This pass simplifies jumps to the following + instruction, jumps across jumps, and jumps to jumps. It deletes + unreferenced labels and unreachable code, except that unreachable + code that contains a loop is not recognized as unreachable in this + pass. (Such loops are deleted later in the basic block analysis.) + It also converts some code originally written with jumps into + sequences of instructions that directly set values from the + results of comparisons, if the machine has such instructions. + + Jump optimization is performed two or three times. The first time + is immediately following RTL generation. The second time is after + CSE, but only if CSE says repeated jump optimization is needed. + The last time is right before the final pass. That time, + cross-jumping and deletion of no-op move instructions are done + together with the optimizations described above. + + The source file of this pass is `jump.c'. + + The option `-dj' causes a debugging dump of the RTL code after + this pass is run for the first time. This dump file's name is + made by appending `.jump' to the input file name. + + * Register scan. This pass finds the first and last use of each + register, as a guide for common subexpression elimination. Its + source is in `regclass.c'. + + * Jump threading. This pass detects a condition jump that branches + to an identical or inverse test. Such jumps can be `threaded' + through the second conditional test. The source code for this + pass is in `jump.c'. This optimization is only performed if + `-fthread-jumps' is enabled. + + * Common subexpression elimination. This pass also does constant + propagation. Its source file is `cse.c'. If constant propagation + causes conditional jumps to become unconditional or to become + no-ops, jump optimization is run again when CSE is finished. + + The option `-ds' causes a debugging dump of the RTL code after + this pass. This dump file's name is made by appending `.cse' to + the input file name. + + * Loop optimization. This pass moves constant expressions out of + loops, and optionally does strength-reduction and loop unrolling + as well. Its source files are `loop.c' and `unroll.c', plus the + header `loop.h' used for communication between them. Loop + unrolling uses some functions in `integrate.c' and the header + `integrate.h'. + + The option `-dL' causes a debugging dump of the RTL code after + this pass. This dump file's name is made by appending `.loop' to + the input file name. + + * If `-frerun-cse-after-loop' was enabled, a second common + subexpression elimination pass is performed after the loop + optimization pass. Jump threading is also done again at this time + if it was specified. + + The option `-dt' causes a debugging dump of the RTL code after + this pass. This dump file's name is made by appending `.cse2' to + the input file name. + + * Stupid register allocation is performed at this point in a + nonoptimizing compilation. It does a little data flow analysis as + well. When stupid register allocation is in use, the next pass + executed is the reloading pass; the others in between are skipped. + The source file is `stupid.c'. + + * Data flow analysis (`flow.c'). This pass divides the program into + basic blocks (and in the process deletes unreachable loops); then + it computes which pseudo-registers are live at each point in the + program, and makes the first instruction that uses a value point at + the instruction that computed the value. + + This pass also deletes computations whose results are never used, + and combines memory references with add or subtract instructions + to make autoincrement or autodecrement addressing. + + The option `-df' causes a debugging dump of the RTL code after + this pass. This dump file's name is made by appending `.flow' to + the input file name. If stupid register allocation is in use, this + dump file reflects the full results of such allocation. + + * Instruction combination (`combine.c'). This pass attempts to + combine groups of two or three instructions that are related by + data flow into single instructions. It combines the RTL + expressions for the instructions by substitution, simplifies the + result using algebra, and then attempts to match the result + against the machine description. + + The option `-dc' causes a debugging dump of the RTL code after + this pass. This dump file's name is made by appending `.combine' + to the input file name. + + * Instruction scheduling (`sched.c'). This pass looks for + instructions whose output will not be available by the time that + it is used in subsequent instructions. (Memory loads and floating + point instructions often have this behavior on RISC machines). It + re-orders instructions within a basic block to try to separate the + definition and use of items that otherwise would cause pipeline + stalls. + + Instruction scheduling is performed twice. The first time is + immediately after instruction combination and the second is + immediately after reload. + + The option `-dS' causes a debugging dump of the RTL code after this + pass is run for the first time. The dump file's name is made by + appending `.sched' to the input file name. + + * Register class preferencing. The RTL code is scanned to find out + which register class is best for each pseudo register. The source + file is `regclass.c'. + + * Local register allocation (`local-alloc.c'). This pass allocates + hard registers to pseudo registers that are used only within one + basic block. Because the basic block is linear, it can use fast + and powerful techniques to do a very good job. + + The option `-dl' causes a debugging dump of the RTL code after + this pass. This dump file's name is made by appending `.lreg' to + the input file name. + + * Global register allocation (`global.c'). This pass allocates hard + registers for the remaining pseudo registers (those whose life + spans are not contained in one basic block). + + * Reloading. This pass renumbers pseudo registers with the hardware + registers numbers they were allocated. Pseudo registers that did + not get hard registers are replaced with stack slots. Then it + finds instructions that are invalid because a value has failed to + end up in a register, or has ended up in a register of the wrong + kind. It fixes up these instructions by reloading the + problematical values temporarily into registers. Additional + instructions are generated to do the copying. + + The reload pass also optionally eliminates the frame pointer and + inserts instructions to save and restore call-clobbered registers + around calls. + + Source files are `reload.c' and `reload1.c', plus the header + `reload.h' used for communication between them. + + The option `-dg' causes a debugging dump of the RTL code after + this pass. This dump file's name is made by appending `.greg' to + the input file name. + + * Instruction scheduling is repeated here to try to avoid pipeline + stalls due to memory loads generated for spilled pseudo registers. + + The option `-dR' causes a debugging dump of the RTL code after + this pass. This dump file's name is made by appending `.sched2' + to the input file name. + + * Jump optimization is repeated, this time including cross-jumping + and deletion of no-op move instructions. + + The option `-dJ' causes a debugging dump of the RTL code after + this pass. This dump file's name is made by appending `.jump2' to + the input file name. + + * Delayed branch scheduling. This optional pass attempts to find + instructions that can go into the delay slots of other + instructions, usually jumps and calls. The source file name is + `reorg.c'. + + The option `-dd' causes a debugging dump of the RTL code after + this pass. This dump file's name is made by appending `.dbr' to + the input file name. + + * Conversion from usage of some hard registers to usage of a register + stack may be done at this point. Currently, this is supported only + for the floating-point registers of the Intel 80387 coprocessor. + The source file name is `reg-stack.c'. + + The options `-dk' causes a debugging dump of the RTL code after + this pass. This dump file's name is made by appending `.stack' to + the input file name. + + * Final. This pass outputs the assembler code for the function. It + is also responsible for identifying spurious test and compare + instructions. Machine-specific peephole optimizations are + performed at the same time. The function entry and exit sequences + are generated directly as assembler code in this pass; they never + exist as RTL. + + The source files are `final.c' plus `insn-output.c'; the latter is + generated automatically from the machine description by the tool + `genoutput'. The header file `conditions.h' is used for + communication between these files. + + * Debugging information output. This is run after final because it + must output the stack slot offsets for pseudo registers that did + not get hard registers. Source files are `dbxout.c' for DBX + symbol table format, `sdbout.c' for SDB symbol table format, and + `dwarfout.c' for DWARF symbol table format. + + Some additional files are used by all or many passes: + + * Every pass uses `machmode.def' and `machmode.h' which define the + machine modes. + + * Several passes use `real.h', which defines the default + representation of floating point constants and how to operate on + them. + + * All the passes that work with RTL use the header files `rtl.h' and + `rtl.def', and subroutines in file `rtl.c'. The tools `gen*' also + use these files to read and work with the machine description RTL. + + * Several passes refer to the header file `insn-config.h' which + contains a few parameters (C macro definitions) generated + automatically from the machine description RTL by the tool + `genconfig'. + + * Several passes use the instruction recognizer, which consists of + `recog.c' and `recog.h', plus the files `insn-recog.c' and + `insn-extract.c' that are generated automatically from the machine + description by the tools `genrecog' and `genextract'. + + * Several passes use the header files `regs.h' which defines the + information recorded about pseudo register usage, and + `basic-block.h' which defines the information recorded about basic + blocks. + + * `hard-reg-set.h' defines the type `HARD_REG_SET', a bit-vector + with a bit for each hard register, and some macros to manipulate + it. This type is just `int' if the machine has few enough hard + registers; otherwise it is an array of `int' and some of the + macros expand into loops. + + * Several passes use instruction attributes. A definition of the + attributes defined for a particular machine is in file + `insn-attr.h', which is generated from the machine description by + the program `genattr'. The file `insn-attrtab.c' contains + subroutines to obtain the attribute values for insns. It is + generated from the machine description by the program `genattrtab'.  -File: gcc.info, Node: Class Preferences, Next: Modifiers, Prev: Multi-Alternative, Up: Constraints - -Register Class Preferences --------------------------- +File: gcc.info, Node: RTL, Next: Machine Desc, Prev: Passes, Up: Top - The operand constraints have another function: they enable the -compiler to decide which kind of hardware register a pseudo register is -best allocated to. The compiler examines the constraints that apply to -the insns that use the pseudo register, looking for the -machine-dependent letters such as `d' and `a' that specify classes of -registers. The pseudo register is put in whichever class gets the most -"votes". The constraint letters `g' and `r' also vote: they vote in -favor of a general register. The machine description says which -registers are considered general. +RTL Representation +****************** - Of course, on some machines all registers are equivalent, and no -register classes are defined. Then none of this complexity is relevant. + Most of the work of the compiler is done on an intermediate +representation called register transfer language. In this language, +the instructions to be output are described, pretty much one by one, in +an algebraic form that describes what the instruction does. + + RTL is inspired by Lisp lists. It has both an internal form, made +up of structures that point at other structures, and a textual form +that is used in the machine description and in printed debugging dumps. +The textual form uses nested parentheses to indicate the pointers in +the internal form. - -File: gcc.info, Node: Modifiers, Next: Machine Constraints, Prev: Class Preferences, Up: Constraints - -Constraint Modifier Characters ------------------------------- +* Menu: -`=' - Means that this operand is write-only for this instruction: the - previous value is discarded and replaced by output data. - -`+' - Means that this operand is both read and written by the - instruction. - - When the compiler fixes up the operands to satisfy the constraints, - it needs to know which operands are inputs to the instruction and - which are outputs from it. `=' identifies an output; `+' - identifies an operand that is both input and output; all other - operands are assumed to be input only. - -`&' - Means (in a particular alternative) that this operand is written - before the instruction is finished using the input operands. - Therefore, this operand may not lie in a register that is used as - an input operand or as part of any memory address. - - `&' applies only to the alternative in which it is written. In - constraints with multiple alternatives, sometimes one alternative - requires `&' while others do not. See, for example, the `movdf' - insn of the 68000. - - `&' does not obviate the need to write `='. - -`%' - Declares the instruction to be commutative for this operand and the - following operand. This means that the compiler may interchange - the two operands if that is the cheapest way to make all operands - fit the constraints. This is often used in patterns for addition - instructions that really have only two operands: the result must - go in one of the arguments. Here for example, is how the 68000 - halfword-add instruction is defined: - - (define_insn "addhi3" - [(set (match_operand:HI 0 "general_operand" "=m,r") - (plus:HI (match_operand:HI 1 "general_operand" "%0,0") - (match_operand:HI 2 "general_operand" "di,g")))] - ...) - -`#' - Says that all following characters, up to the next comma, are to be - ignored as a constraint. They are significant only for choosing - register preferences. - -`*' - Says that the following character should be ignored when choosing - register preferences. `*' has no effect on the meaning of the - constraint as a constraint, and no effect on reloading. - - Here is an example: the 68000 has an instruction to sign-extend a - halfword in a data register, and can also sign-extend a value by - copying it into an address register. While either kind of - register is acceptable, the constraints on an address-register - destination are less strict, so it is best if register allocation - makes an address register its goal. Therefore, `*' is used so - that the `d' constraint letter (for data register) is ignored when - computing register preferences. - - (define_insn "extendhisi2" - [(set (match_operand:SI 0 "general_operand" "=*d,a") - (sign_extend:SI - (match_operand:HI 1 "general_operand" "0,g")))] - ...) +* RTL Objects:: Expressions vs vectors vs strings vs integers. +* Accessors:: Macros to access expression operands or vector elts. +* Flags:: Other flags in an RTL expression. +* Machine Modes:: Describing the size and format of a datum. +* Constants:: Expressions with constant values. +* Regs and Memory:: Expressions representing register contents or memory. +* Arithmetic:: Expressions representing arithmetic on other expressions. +* Comparisons:: Expressions representing comparison of expressions. +* Bit Fields:: Expressions representing bitfields in memory or reg. +* Conversions:: Extending, truncating, floating or fixing. +* RTL Declarations:: Declaring volatility, constancy, etc. +* Side Effects:: Expressions for storing in registers, etc. +* Incdec:: Embedded side-effects for autoincrement addressing. +* Assembler:: Representing `asm' with operands. +* Insns:: Expression types for entire insns. +* Calls:: RTL representation of function call insns. +* Sharing:: Some expressions are unique; others *must* be copied. +* Reading RTL:: Reading textual RTL from a file.  -File: gcc.info, Node: Machine Constraints, Next: No Constraints, Prev: Modifiers, Up: Constraints - -Constraints for Particular Machines ------------------------------------ - - Whenever possible, you should use the general-purpose constraint -letters in `asm' arguments, since they will convey meaning more readily -to people reading your code. Failing that, use the constraint letters -that usually have very similar meanings across architectures. The most -commonly used constraints are `m' and `r' (for memory and -general-purpose registers respectively; *note Simple Constraints::.), -and `I', usually the letter indicating the most common -immediate-constant format. - - For each machine architecture, the `config/MACHINE.h' file defines -additional constraints. These constraints are used by the compiler -itself for instruction generation, as well as for `asm' statements; -therefore, some of the constraints are not particularly interesting for -`asm'. The constraints are defined through these macros: - -`REG_CLASS_FROM_LETTER' - Register class constraints (usually lower case). - -`CONST_OK_FOR_LETTER_P' - Immediate constant constraints, for non-floating point constants of - word size or smaller precision (usually upper case). - -`CONST_DOUBLE_OK_FOR_LETTER_P' - Immediate constant constraints, for all floating point constants - and for constants of greater than word size precision (usually - upper case). - -`EXTRA_CONSTRAINT' - Special cases of registers or memory. This macro is not required, - and is only defined for some machines. - - Inspecting these macro definitions in the compiler source for your -machine is the best way to be certain you have the right constraints. -However, here is a summary of the machine-dependent constraints -available on some particular machines. - -*AMD 29000 family--`a29k.h'* - `l' - Local register 0 - - `b' - Byte Pointer (`BP') register - - `q' - `Q' register - - `h' - Special purpose register - - `A' - First accumulator register - - `a' - Other accumulator register - - `f' - Floating point register - - `I' - Constant greater than 0, less than 0x100 - - `J' - Constant greater than 0, less than 0x10000 +File: gcc.info, Node: RTL Objects, Next: Accessors, Prev: RTL, Up: RTL - `K' - Constant whose high 24 bits are on (1) +RTL Object Types +================ - `L' - 16 bit constant whose high 8 bits are on (1) + RTL uses five kinds of objects: expressions, integers, wide integers, +strings and vectors. Expressions are the most important ones. An RTL +expression ("RTX", for short) is a C structure, but it is usually +referred to with a pointer; a type that is given the typedef name `rtx'. + + An integer is simply an `int'; their written form uses decimal +digits. A wide integer is an integral object whose type is +`HOST_WIDE_INT' (*note Config::.); their written form uses decimal +digits. + + A string is a sequence of characters. In core it is represented as a +`char *' in usual C fashion, and it is written in C syntax as well. +However, strings in RTL may never be null. If you write an empty +string in a machine description, it is represented in core as a null +pointer rather than as a pointer to a null character. In certain +contexts, these null pointers instead of strings are valid. Within RTL +code, strings are most commonly found inside `symbol_ref' expressions, +but they appear in other contexts in the RTL expressions that make up +machine descriptions. + + A vector contains an arbitrary number of pointers to expressions. +The number of elements in the vector is explicitly present in the +vector. The written form of a vector consists of square brackets +(`[...]') surrounding the elements, in sequence and with whitespace +separating them. Vectors of length zero are not created; null pointers +are used instead. + + Expressions are classified by "expression codes" (also called RTX +codes). The expression code is a name defined in `rtl.def', which is +also (in upper case) a C enumeration constant. The possible expression +codes and their meanings are machine-independent. The code of an RTX +can be extracted with the macro `GET_CODE (X)' and altered with +`PUT_CODE (X, NEWCODE)'. + + The expression code determines how many operands the expression +contains, and what kinds of objects they are. In RTL, unlike Lisp, you +cannot tell by looking at an operand what kind of object it is. +Instead, you must know from its context--from the expression code of +the containing expression. For example, in an expression of code +`subreg', the first operand is to be regarded as an expression and the +second operand as an integer. In an expression of code `plus', there +are two operands, both of which are to be regarded as expressions. In +a `symbol_ref' expression, there is one operand, which is to be +regarded as a string. + + Expressions are written as parentheses containing the name of the +expression type, its flags and machine mode if any, and then the +operands of the expression (separated by spaces). + + Expression code names in the `md' file are written in lower case, +but when they appear in C code they are written in upper case. In this +manual, they are shown as follows: `const_int'. - `M' - 32 bit constant whose high 16 bits are on (1) + In a few contexts a null pointer is valid where an expression is +normally wanted. The written form of this is `(nil)'. - `N' - 32 bit negative constant that fits in 8 bits - - `O' - The constant 0x80000000 or, on the 29050, any 32 bit constant - whose low 16 bits are 0. - - `P' - 16 bit negative constant that fits in 8 bits + +File: gcc.info, Node: Accessors, Next: Flags, Prev: RTL Objects, Up: RTL - `G' - `H' - A floating point constant (in `asm' statements, use the - machine independent `E' or `F' instead) +Access to Operands +================== -*IBM RS6000--`rs6000.h'* - `b' - Address base register + For each expression type `rtl.def' specifies the number of contained +objects and their kinds, with four possibilities: `e' for expression +(actually a pointer to an expression), `i' for integer, `w' for wide +integer, `s' for string, and `E' for vector of expressions. The +sequence of letters for an expression code is called its "format". +Thus, the format of `subreg' is `ei'. + + A few other format characters are used occasionally: + +`u' + `u' is equivalent to `e' except that it is printed differently in + debugging dumps. It is used for pointers to insns. - `f' - Floating point register +`n' + `n' is equivalent to `i' except that it is printed differently in + debugging dumps. It is used for the line number or code number of + a `note' insn. + +`S' + `S' indicates a string which is optional. In the RTL objects in + core, `S' is equivalent to `s', but when the object is read, from + an `md' file, the string value of this operand may be omitted. An + omitted string is taken to be the null string. - `h' - `MQ', `CTR', or `LINK' register +`V' + `V' indicates a vector which is optional. In the RTL objects in + core, `V' is equivalent to `E', but when the object is read from + an `md' file, the vector value of this operand may be omitted. An + omitted vector is effectively the same as a vector of no elements. + +`0' + `0' means a slot whose contents do not fit any normal category. + `0' slots are not printed at all in dumps, and are often used in + special ways by small parts of the compiler. + + There are macros to get the number of operands, the format, and the +class of an expression code: + +`GET_RTX_LENGTH (CODE)' + Number of operands of an RTX of code CODE. + +`GET_RTX_FORMAT (CODE)' + The format of an RTX of code CODE, as a C string. + +`GET_RTX_CLASS (CODE)' + A single character representing the type of RTX operation that code + CODE performs. + + The following classes are defined: + + `o' + An RTX code that represents an actual object, such as `reg' or + `mem'. `subreg' is not in this class. + + `<' + An RTX code for a comparison. The codes in this class are + `NE', `EQ', `LE', `LT', `GE', `GT', `LEU', `LTU', `GEU', + `GTU'. - `q' - `MQ' register + `1' + An RTX code for a unary arithmetic operation, such as `neg'. `c' - `CTR' register - - `l' - `LINK' register - - `x' - `CR' register (condition register) number 0 - - `y' - `CR' register (condition register) - - `I' - Signed 16 bit constant - - `J' - Constant whose low 16 bits are 0 - - `K' - Constant whose high 16 bits are 0 - - `L' - Constant suitable as a mask operand + An RTX code for a commutative binary operation, other than + `NE' and `EQ' (which have class `<'). - `M' - Constant larger than 31 - - `N' - Exact power of 2 - - `O' - Zero - - `P' - Constant whose negation is a signed 16 bit constant - - `G' - Floating point constant that can be loaded into a register - with one instruction per word - - `Q' - Memory operand that is an offset from a register (`m' is - preferable for `asm' statements) - -*Intel 386--`i386.h'* - `q' - `a', `b', `c', or `d' register - - `f' - Floating point register - - `t' - First (top of stack) floating point register - - `u' - Second floating point register - - `a' - `a' register + `2' + An RTX code for a noncommutative binary operation, such as + `MINUS'. `b' - `b' register - - `c' - `c' register - - `d' - `d' register - - `D' - `di' register + An RTX code for a bitfield operation, either `ZERO_EXTRACT' or + `SIGN_EXTRACT'. - `S' - `si' register - - `I' - Constant in range 0 to 31 (for 32 bit shifts) - - `J' - Constant in range 0 to 63 (for 64 bit shifts) - - `K' - `0xff' - - `L' - `0xffff' - - `M' - 0, 1, 2, or 3 (shifts for `lea' instruction) - - `G' - Standard 80387 floating point constant - -*Intel 960--`i960.h'* - `f' - Floating point register (`fp0' to `fp3') - - `l' - Local register (`r0' to `r15') - - `b' - Global register (`g0' to `g15') - - `d' - Any local or global register - - `I' - Integers from 0 to 31 - - `J' - 0 - - `K' - Integers from -31 to 0 - - `G' - Floating point 0 - - `H' - Floating point 1 - -*MIPS--`mips.h'* - `d' - General-purpose integer register - - `f' - Floating-point register (if available) - - `h' - `Hi' register - - `l' - `Lo' register + `3' + An RTX code for other three input operations, such as + `IF_THEN_ELSE'. + + `i' + An RTX code for a machine insn (`INSN', `JUMP_INSN', and + `CALL_INSN'). + + `m' + An RTX code for something that matches in insns, such as + `MATCH_DUP'. `x' - `Hi' or `Lo' register - - `y' - General-purpose integer register - - `z' - Floating-point status register - - `I' - Signed 16 bit constant (for arithmetic instructions) - - `J' - Zero - - `K' - Zero-extended 16-bit constant (for logic instructions) - - `L' - Constant with low 16 bits zero (can be loaded with `lui') - - `M' - 32 bit constant which requires two instructions to load (a - constant which is not `I', `K', or `L') - - `N' - Negative 16 bit constant - - `O' - Exact power of two - - `P' - Positive 16 bit constant - - `G' - Floating point zero - - `Q' - Memory reference that can be loaded with more than one - instruction (`m' is preferable for `asm' statements) - - `R' - Memory reference that can be loaded with one instruction (`m' - is preferable for `asm' statements) - - `S' - Memory reference in external OSF/rose PIC format (`m' is - preferable for `asm' statements) - -*Motorola 680x0--`m68k.h'* - `a' - Address register - - `d' - Data register - - `f' - 68881 floating-point register, if available - - `x' - Sun FPA (floating-point) register, if available - - `y' - First 16 Sun FPA registers, if available - - `I' - Integer in the range 1 to 8 - - `J' - 16 bit signed number - - `K' - Signed number whose magnitude is greater than 0x80 - - `L' - Integer in the range -8 to -1 - - `G' - Floating point constant that is not a 68881 constant - - `H' - Floating point constant that can be used by Sun FPA - -*SPARC--`sparc.h'* - `f' - Floating-point register - - `I' - Signed 13 bit constant - - `J' - Zero - - `K' - 32 bit constant with the low 12 bits clear (a constant that - can be loaded with the `sethi' instruction) - - `G' - Floating-point zero - - `H' - Signed 13 bit constant, sign-extended to 32 or 64 bits - - `Q' - Memory reference that can be loaded with one instruction - (`m' is more appropriate for `asm' statements) - - `S' - Constant, or memory address - - `T' - Memory address aligned to an 8-byte boundary + All other RTX codes. - `U' - Even register + Operands of expressions are accessed using the macros `XEXP', +`XINT', `XWINT' and `XSTR'. Each of these macros takes two arguments: +an expression-pointer (RTX) and an operand number (counting from zero). +Thus, + + XEXP (X, 2) + +accesses operand 2 of expression X, as an expression. + + XINT (X, 2) + +accesses the same operand as an integer. `XSTR', used in the same +fashion, would access it as a string. + + Any operand can be accessed as an integer, as an expression or as a +string. You must choose the correct method of access for the kind of +value actually stored in the operand. You would do this based on the +expression code of the containing expression. That is also how you +would know how many operands there are. + + For example, if X is a `subreg' expression, you know that it has two +operands which can be correctly accessed as `XEXP (X, 0)' and `XINT (X, +1)'. If you did `XINT (X, 0)', you would get the address of the +expression operand but cast as an integer; that might occasionally be +useful, but it would be cleaner to write `(int) XEXP (X, 0)'. `XEXP +(X, 1)' would also compile without error, and would return the second, +integer operand cast as an expression pointer, which would probably +result in a crash when accessed. Nothing stops you from writing `XEXP +(X, 28)' either, but this will access memory past the end of the +expression with unpredictable results. + + Access to operands which are vectors is more complicated. You can +use the macro `XVEC' to get the vector-pointer itself, or the macros +`XVECEXP' and `XVECLEN' to access the elements and length of a vector. + +`XVEC (EXP, IDX)' + Access the vector-pointer which is operand number IDX in EXP. + +`XVECLEN (EXP, IDX)' + Access the length (number of elements) in the vector which is in + operand number IDX in EXP. This value is an `int'. + +`XVECEXP (EXP, IDX, ELTNUM)' + Access element number ELTNUM in the vector which is in operand + number IDX in EXP. This value is an RTX. + + It is up to you to make sure that ELTNUM is not negative and is + less than `XVECLEN (EXP, IDX)'. + + All the macros defined in this section expand into lvalues and +therefore can be used to assign the operands, lengths and vector +elements as well as to access them.  -File: gcc.info, Node: No Constraints, Prev: Machine Constraints, Up: Constraints +File: gcc.info, Node: Flags, Next: Machine Modes, Prev: Accessors, Up: RTL -Not Using Constraints ---------------------- +Flags in an RTL Expression +========================== - Some machines are so clean that operand constraints are not -required. For example, on the Vax, an operand valid in one context is -valid in any other context. On such a machine, every operand -constraint would be `g', excepting only operands of "load address" -instructions which are written as if they referred to a memory -location's contents but actual refer to its address. They would have -constraint `p'. - - For such machines, instead of writing `g' and `p' for all the -constraints, you can choose to write a description with empty -constraints. Then you write `""' for the constraint in every -`match_operand'. Address operands are identified by writing an -`address' expression around the `match_operand', not by their -constraints. - - When the machine description has just empty constraints, certain -parts of compilation are skipped, making the compiler faster. However, -few machines actually do not need constraints; all machine descriptions -now in existence use constraints. + RTL expressions contain several flags (one-bit bitfields) that are +used in certain types of expression. Most often they are accessed with +the following macros: + +`MEM_VOLATILE_P (X)' + In `mem' expressions, nonzero for volatile memory references. + Stored in the `volatil' field and printed as `/v'. + +`MEM_IN_STRUCT_P (X)' + In `mem' expressions, nonzero for reference to an entire + structure, union or array, or to a component of one. Zero for + references to a scalar variable or through a pointer to a scalar. + Stored in the `in_struct' field and printed as `/s'. + +`REG_LOOP_TEST_P' + In `reg' expressions, nonzero if this register's entire life is + contained in the exit test code for some loop. Stored in the + `in_struct' field and printed as `/s'. + +`REG_USERVAR_P (X)' + In a `reg', nonzero if it corresponds to a variable present in the + user's source code. Zero for temporaries generated internally by + the compiler. Stored in the `volatil' field and printed as `/v'. + +`REG_FUNCTION_VALUE_P (X)' + Nonzero in a `reg' if it is the place in which this function's + value is going to be returned. (This happens only in a hard + register.) Stored in the `integrated' field and printed as `/i'. + + The same hard register may be used also for collecting the values + of functions called by this one, but `REG_FUNCTION_VALUE_P' is zero + in this kind of use. + +`SUBREG_PROMOTED_VAR_P' + Nonzero in a `subreg' if it was made when accessing an object that + was promoted to a wider mode in accord with the `PROMOTED_MODE' + machine description macro (*note Storage Layout::.). In this + case, the mode of the `subreg' is the declared mode of the object + and the mode of `SUBREG_REG' is the mode of the register that + holds the object. Promoted variables are always either sign- or + zero-extended to the wider mode on every assignment. Stored in + the `in_struct' field and printed as `/s'. + +`SUBREG_PROMOTED_UNSIGNED_P' + Nonzero in a `subreg' that has `SUBREG_PROMOTED_VAR_P' nonzero if + the object being referenced is kept zero-extended and zero if it + is kept sign-extended. Stored in the `unchanging' field and + printed as `/u'. + +`RTX_UNCHANGING_P (X)' + Nonzero in a `reg' or `mem' if the value is not changed. (This + flag is not set for memory references via pointers to constants. + Such pointers only guarantee that the object will not be changed + explicitly by the current function. The object might be changed by + other functions or by aliasing.) Stored in the `unchanging' field + and printed as `/u'. + +`RTX_INTEGRATED_P (INSN)' + Nonzero in an insn if it resulted from an in-line function call. + Stored in the `integrated' field and printed as `/i'. This may be + deleted; nothing currently depends on it. + +`SYMBOL_REF_USED (X)' + In a `symbol_ref', indicates that X has been used. This is + normally only used to ensure that X is only declared external + once. Stored in the `used' field. + +`SYMBOL_REF_FLAG (X)' + In a `symbol_ref', this is used as a flag for machine-specific + purposes. Stored in the `volatil' field and printed as `/v'. + +`LABEL_OUTSIDE_LOOP_P' + In `label_ref' expressions, nonzero if this is a reference to a + label that is outside the innermost loop containing the reference + to the label. Stored in the `in_struct' field and printed as `/s'. + +`INSN_DELETED_P (INSN)' + In an insn, nonzero if the insn has been deleted. Stored in the + `volatil' field and printed as `/v'. + +`INSN_ANNULLED_BRANCH_P (INSN)' + In an `insn' in the delay slot of a branch insn, indicates that an + annulling branch should be used. See the discussion under + `sequence' below. Stored in the `unchanging' field and printed as + `/u'. + +`INSN_FROM_TARGET_P (INSN)' + In an `insn' in a delay slot of a branch, indicates that the insn + is from the target of the branch. If the branch insn has + `INSN_ANNULLED_BRANCH_P' set, this insn should only be executed if + the branch is taken. For annulled branches with this bit clear, + the insn should be executed only if the branch is not taken. + Stored in the `in_struct' field and printed as `/s'. + +`CONSTANT_POOL_ADDRESS_P (X)' + Nonzero in a `symbol_ref' if it refers to part of the current + function's "constants pool". These are addresses close to the + beginning of the function, and GNU CC assumes they can be addressed + directly (perhaps with the help of base registers). Stored in the + `unchanging' field and printed as `/u'. + +`CONST_CALL_P (X)' + In a `call_insn', indicates that the insn represents a call to a + const function. Stored in the `unchanging' field and printed as + `/u'. + +`LABEL_PRESERVE_P (X)' + In a `code_label', indicates that the label can never be deleted. + Labels referenced by a non-local goto will have this bit set. + Stored in the `in_struct' field and printed as `/s'. + +`SCHED_GROUP_P (INSN)' + During instruction scheduling, in an insn, indicates that the + previous insn must be scheduled together with this insn. This is + used to ensure that certain groups of instructions will not be + split up by the instruction scheduling pass, for example, `use' + insns before a `call_insn' may not be separated from the + `call_insn'. Stored in the `in_struct' field and printed as `/s'. + + These are the fields which the above macros refer to: + +`used' + Normally, this flag is used only momentarily, at the end of RTL + generation for a function, to count the number of times an + expression appears in insns. Expressions that appear more than + once are copied, according to the rules for shared structure + (*note Sharing::.). + + In a `symbol_ref', it indicates that an external declaration for + the symbol has already been written. + + In a `reg', it is used by the leaf register renumbering code to + ensure that each register is only renumbered once. + +`volatil' + This flag is used in `mem', `symbol_ref' and `reg' expressions and + in insns. In RTL dump files, it is printed as `/v'. + + In a `mem' expression, it is 1 if the memory reference is volatile. + Volatile memory references may not be deleted, reordered or + combined. + + In a `symbol_ref' expression, it is used for machine-specific + purposes. + + In a `reg' expression, it is 1 if the value is a user-level + variable. 0 indicates an internal compiler temporary. + + In an insn, 1 means the insn has been deleted. + +`in_struct' + In `mem' expressions, it is 1 if the memory datum referred to is + all or part of a structure or array; 0 if it is (or might be) a + scalar variable. A reference through a C pointer has 0 because + the pointer might point to a scalar variable. This information + allows the compiler to determine something about possible cases of + aliasing. + + In an insn in the delay slot of a branch, 1 means that this insn + is from the target of the branch. + + During instruction scheduling, in an insn, 1 means that this insn + must be scheduled as part of a group together with the previous + insn. + + In `reg' expressions, it is 1 if the register has its entire life + contained within the test expression of some loop. + + In `subreg' expressions, 1 means that the `subreg' is accessing an + object that has had its mode promoted from a wider mode. + + In `label_ref' expressions, 1 means that the referenced label is + outside the innermost loop containing the insn in which the + `label_ref' was found. + + In `code_label' expressions, it is 1 if the label may never be + deleted. This is used for labels which are the target of + non-local gotos. + + In an RTL dump, this flag is represented as `/s'. + +`unchanging' + In `reg' and `mem' expressions, 1 means that the value of the + expression never changes. + + In `subreg' expressions, it is 1 if the `subreg' references an + unsigned object whose mode has been promoted to a wider mode. + + In an insn, 1 means that this is an annulling branch. + + In a `symbol_ref' expression, 1 means that this symbol addresses + something in the per-function constants pool. + + In a `call_insn', 1 means that this instruction is a call to a + const function. + + In an RTL dump, this flag is represented as `/u'. + +`integrated' + In some kinds of expressions, including insns, this flag means the + rtl was produced by procedure integration. + + In a `reg' expression, this flag indicates the register containing + the value to be returned by the current function. On machines + that pass parameters in registers, the same register number may be + used for parameters as well, but this flag is not set on such uses.