Annotation of gcc/config/rs6000/rs6000.h, revision 1.1.1.4

1.1       root        1: /* Definitions of target machine for GNU compiler, for IBM RS/6000.
1.1.1.4 ! root        2:    Copyright (C) 1992, 1993, 1994, 1995 Free Software Foundation, Inc.
1.1.1.3   root        3:    Contributed by Richard Kenner ([email protected])
1.1       root        4: 
                      5: This file is part of GNU CC.
                      6: 
                      7: GNU CC is free software; you can redistribute it and/or modify
                      8: it under the terms of the GNU General Public License as published by
                      9: the Free Software Foundation; either version 2, or (at your option)
                     10: any later version.
                     11: 
                     12: GNU CC is distributed in the hope that it will be useful,
                     13: but WITHOUT ANY WARRANTY; without even the implied warranty of
                     14: MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
                     15: GNU General Public License for more details.
                     16: 
                     17: You should have received a copy of the GNU General Public License
                     18: along with GNU CC; see the file COPYING.  If not, write to
1.1.1.4 ! root       19: the Free Software Foundation, 59 Temple Place - Suite 330,
        !            20: Boston, MA 02111-1307, USA.  */
1.1       root       21: 
                     22: 
                     23: /* Note that some other tm.h files include this one and then override
                     24:    many of the definitions that relate to assembler syntax.  */
                     25: 
                     26: 
                     27: /* Names to predefine in the preprocessor for this target machine.  */
                     28: 
1.1.1.3   root       29: #define CPP_PREDEFINES "-D_IBMR2 -D_POWER -D_AIX -D_AIX32 \
                     30: -Asystem(unix) -Asystem(aix) -Acpu(rs6000) -Amachine(rs6000)"
1.1       root       31: 
                     32: /* Print subsidiary information on the compiler version in use.  */
                     33: #define TARGET_VERSION ;
                     34: 
                     35: /* Tell the assembler to assume that all undefined names are external.
                     36: 
                     37:    Don't do this until the fixed IBM assembler is more generally available.
                     38:    When this becomes permanently defined, the ASM_OUTPUT_EXTERNAL,
                     39:    ASM_OUTPUT_EXTERNAL_LIBCALL, and RS6000_OUTPUT_BASENAME macros will no
                     40:    longer be needed.  Also, the extern declaration of mcount in ASM_FILE_START
                     41:    will no longer be needed.  */
                     42: 
                     43: /* #define ASM_SPEC "-u" */
                     44: 
1.1.1.3   root       45: /* Define appropriate architecture macros for preprocessor depending on
                     46:    target switches.  */
                     47: 
                     48: #define CPP_SPEC "\
1.1.1.4 ! root       49: %{posix: -D_POSIX_SOURCE} \
1.1.1.3   root       50: %{!mcpu*: \
                     51:   %{mpower: %{!mpower2: -D_ARCH_PWR}} \
                     52:   %{mpower2: -D_ARCH_PWR2} \
                     53:   %{mpowerpc*: -D_ARCH_PPC} \
                     54:   %{mno-power: %{!mpowerpc*: -D_ARCH_COM}} \
                     55:   %{!mno-power: %{!mpower2: -D_ARCH_PWR}}} \
                     56: %{mcpu=common: -D_ARCH_COM} \
                     57: %{mcpu=power: -D_ARCH_PWR} \
                     58: %{mcpu=powerpc: -D_ARCH_PPC} \
                     59: %{mcpu=rios: -D_ARCH_PWR} \
                     60: %{mcpu=rios1: -D_ARCH_PWR} \
                     61: %{mcpu=rios2: -D_ARCH_PWR2} \
                     62: %{mcpu=rsc: -D_ARCH_PWR} \
                     63: %{mcpu=rsc1: -D_ARCH_PWR} \
1.1.1.4 ! root       64: %{mcpu=403: -D_ARCH_PPC} \
1.1.1.3   root       65: %{mcpu=601: -D_ARCH_PPC -D_ARCH_PWR} \
                     66: %{mcpu=603: -D_ARCH_PPC} \
1.1.1.4 ! root       67: %{mcpu=604: -D_ARCH_PPC}"
1.1.1.3   root       68: 
1.1       root       69: /* Define the options for the binder: Start text at 512, align all segments
                     70:    to 512 bytes, and warn if there is text relocation.
                     71: 
                     72:    The -bhalt:4 option supposedly changes the level at which ld will abort,
                     73:    but it also suppresses warnings about multiply defined symbols and is
                     74:    used by the AIX cc command.  So we use it here.
                     75: 
                     76:    -bnodelcsect undoes a poor choice of default relating to multiply-defined
1.1.1.4 ! root       77:    csects.  See AIX documentation for more information about this.
        !            78: 
        !            79:    -bM:SRE tells the linker that the output file is Shared REusable.  Note
        !            80:    that to actually build a shared library you will also need to specify an
        !            81:    export list with the -Wl,-bE option.  */
1.1       root       82: 
1.1.1.2   root       83: #define LINK_SPEC "-T512 -H512 %{!r:-btextro} -bhalt:4 -bnodelcsect\
1.1.1.4 ! root       84:    %{static:-bnso -bI:/lib/syscalls.exp} \
        !            85:    %{!shared:%{g*:-bexport:/usr/lib/libg.exp}} %{shared:-bM:SRE}"
1.1       root       86: 
                     87: /* Profiled library versions are used by linking with special directories.  */
                     88: #define LIB_SPEC "%{pg:-L/lib/profiled -L/usr/lib/profiled}\
1.1.1.4 ! root       89:    %{p:-L/lib/profiled -L/usr/lib/profiled} %{!shared:%{g*:-lg}} -lc"
1.1       root       90: 
                     91: /* gcc must do the search itself to find libgcc.a, not use -l.  */
1.1.1.4 ! root       92: #define LIBGCC_SPEC "libgcc.a%s"
1.1       root       93: 
                     94: /* Don't turn -B into -L if the argument specifies a relative file name.  */
                     95: #define RELATIVE_PREFIX_NOT_LINKDIR
                     96: 
1.1.1.2   root       97: /* Architecture type.  */
1.1       root       98: 
1.1.1.2   root       99: extern int target_flags;
1.1       root      100: 
1.1.1.2   root      101: /* Use POWER architecture instructions and MQ register.  */
                    102: #define MASK_POWER             0x01
1.1       root      103: 
1.1.1.2   root      104: /* Use POWER2 extensions to POWER architecture.  */
                    105: #define MASK_POWER2            0x02
                    106: 
                    107: /* Use PowerPC architecture instructions.  */
                    108: #define MASK_POWERPC           0x04
                    109: 
1.1.1.3   root      110: /* Use PowerPC General Purpose group optional instructions, e.g. fsqrt.  */
                    111: #define MASK_PPC_GPOPT         0x08
                    112: 
                    113: /* Use PowerPC Graphics group optional instructions, e.g. fsel.  */
                    114: #define MASK_PPC_GFXOPT                0x10
1.1.1.2   root      115: 
                    116: /* Use PowerPC-64 architecture instructions.  */
1.1.1.3   root      117: #define MASK_POWERPC64         0x20
1.1.1.2   root      118: 
                    119: /* Use revised mnemonic names defined for PowerPC architecture.  */
1.1.1.3   root      120: #define MASK_NEW_MNEMONICS     0x40
1.1.1.2   root      121: 
                    122: /* Disable placing fp constants in the TOC; can be turned on when the
                    123:    TOC overflows.  */
1.1.1.3   root      124: #define MASK_NO_FP_IN_TOC      0x80
                    125: 
                    126: /* Disable placing symbol+offset constants in the TOC; can be turned on when
                    127:    the TOC overflows.  */
                    128: #define MASK_NO_SUM_IN_TOC     0x100
1.1.1.2   root      129: 
                    130: /* Output only one TOC entry per module.  Normally linking fails if
                    131:    there are more than 16K unique variables/constants in an executable.  With
                    132:    this option, linking fails only if there are more than 16K modules, or
                    133:    if there are more than 16K unique variables/constant in a single module.
1.1       root      134: 
1.1.1.2   root      135:    This is at the cost of having 2 extra loads and one extra store per
                    136:    function, and one less allocatable register.  */
1.1.1.3   root      137: #define MASK_MINIMAL_TOC       0x200
1.1.1.2   root      138: 
1.1.1.4 ! root      139: /* Nonzero for the 64bit model: ints, longs, and pointers are 64 bits.  */
        !           140: #define MASK_64BIT             0x400
        !           141: 
        !           142: /* Disable use of FPRs.  */
        !           143: #define MASK_SOFT_FLOAT                0x800
        !           144: 
        !           145: /* Enable load/store multiple, even on powerpc */
        !           146: #define        MASK_MULTIPLE           0x1000
        !           147: #define        MASK_MULTIPLE_SET       0x2000
        !           148: 
        !           149: /* Use string instructions for block moves */
        !           150: #define MASK_STRING            0x4000
        !           151: #define MASK_STRING_SET                0x8000
        !           152: 
        !           153: /* Temporary debug switches */
        !           154: #define MASK_DEBUG_STACK       0x10000
        !           155: #define MASK_DEBUG_ARG         0x20000
        !           156: 
        !           157: #define TARGET_POWER           (target_flags & MASK_POWER)
        !           158: #define TARGET_POWER2          (target_flags & MASK_POWER2)
        !           159: #define TARGET_POWERPC         (target_flags & MASK_POWERPC)
        !           160: #define TARGET_PPC_GPOPT       (target_flags & MASK_PPC_GPOPT)
        !           161: #define TARGET_PPC_GFXOPT      (target_flags & MASK_PPC_GFXOPT)
        !           162: #define TARGET_POWERPC64       (target_flags & MASK_POWERPC64)
        !           163: #define TARGET_NEW_MNEMONICS   (target_flags & MASK_NEW_MNEMONICS)
        !           164: #define TARGET_NO_FP_IN_TOC    (target_flags & MASK_NO_FP_IN_TOC)
        !           165: #define TARGET_NO_SUM_IN_TOC   (target_flags & MASK_NO_SUM_IN_TOC)
        !           166: #define TARGET_MINIMAL_TOC     (target_flags & MASK_MINIMAL_TOC)
        !           167: #define TARGET_64BIT           (target_flags & MASK_64BIT)
        !           168: #define TARGET_SOFT_FLOAT      (target_flags & MASK_SOFT_FLOAT)
        !           169: #define        TARGET_MULTIPLE         (target_flags & MASK_MULTIPLE)
        !           170: #define        TARGET_MULTIPLE_SET     (target_flags & MASK_MULTIPLE_SET)
        !           171: #define TARGET_STRING          (target_flags & MASK_STRING)
        !           172: #define TARGET_STRING_SET      (target_flags & MASK_STRING_SET)
        !           173: #define        TARGET_DEBUG_STACK      (target_flags & MASK_DEBUG_STACK)
        !           174: #define        TARGET_DEBUG_ARG        (target_flags & MASK_DEBUG_ARG)
        !           175: 
        !           176: #define TARGET_HARD_FLOAT      (! TARGET_SOFT_FLOAT)
        !           177: 
        !           178: /* Pseudo target to indicate whether the object format is ELF
        !           179:    (to get around not having conditional compilation in the md file)  */
        !           180: #ifndef        TARGET_ELF
        !           181: #define        TARGET_ELF              0
        !           182: #endif
        !           183: 
        !           184: /* If this isn't V.4, don't support -mno-toc.  */
        !           185: #ifndef TARGET_NO_TOC
        !           186: #define TARGET_NO_TOC          0
        !           187: #define        TARGET_TOC              1
        !           188: #endif
1.1.1.2   root      189: 
                    190: /* Run-time compilation parameters selecting different hardware subsets.
                    191: 
                    192:    Macro to define tables used to set the flags.
1.1       root      193:    This is a list in braces of pairs in braces,
                    194:    each pair being { "NAME", VALUE }
                    195:    where VALUE is the bits to set or minus the bits to clear.
                    196:    An empty string NAME is used to identify the default VALUE.  */
                    197: 
1.1.1.4 ! root      198: /* This is meant to be redefined in the host dependent files */
        !           199: #ifndef SUBTARGET_SWITCHES
        !           200: #define SUBTARGET_SWITCHES
        !           201: #endif
        !           202: 
        !           203: #define TARGET_SWITCHES                                                        \
        !           204:  {{"power",            MASK_POWER  | MASK_MULTIPLE | MASK_STRING},     \
        !           205:   {"power2",           (MASK_POWER | MASK_MULTIPLE | MASK_STRING       \
        !           206:                         | MASK_POWER2)},                               \
        !           207:   {"no-power2",                - MASK_POWER2},                                 \
        !           208:   {"no-power",         - (MASK_POWER | MASK_POWER2 | MASK_MULTIPLE     \
        !           209:                           | MASK_STRING)},                             \
        !           210:   {"powerpc",          MASK_POWERPC},                                  \
        !           211:   {"no-powerpc",       - (MASK_POWERPC | MASK_PPC_GPOPT                \
        !           212:                           | MASK_PPC_GFXOPT | MASK_POWERPC64)},        \
        !           213:   {"powerpc-gpopt",    MASK_POWERPC | MASK_PPC_GPOPT},                 \
        !           214:   {"no-powerpc-gpopt", - MASK_PPC_GPOPT},                              \
        !           215:   {"powerpc-gfxopt",   MASK_POWERPC | MASK_PPC_GFXOPT},                \
        !           216:   {"no-powerpc-gfxopt",        - MASK_PPC_GFXOPT},                             \
        !           217:   {"new-mnemonics",    MASK_NEW_MNEMONICS},                            \
        !           218:   {"old-mnemonics",    -MASK_NEW_MNEMONICS},                           \
        !           219:   {"full-toc",         - (MASK_NO_FP_IN_TOC | MASK_NO_SUM_IN_TOC       \
        !           220:                           | MASK_MINIMAL_TOC)},                        \
        !           221:   {"fp-in-toc",                - MASK_NO_FP_IN_TOC},                           \
        !           222:   {"no-fp-in-toc",     MASK_NO_FP_IN_TOC},                             \
        !           223:   {"sum-in-toc",       - MASK_NO_SUM_IN_TOC},                          \
        !           224:   {"no-sum-in-toc",    MASK_NO_SUM_IN_TOC},                            \
        !           225:   {"minimal-toc",      MASK_MINIMAL_TOC},                              \
        !           226:   {"minimal-toc",      - (MASK_NO_FP_IN_TOC | MASK_NO_SUM_IN_TOC)},    \
        !           227:   {"no-minimal-toc",   - MASK_MINIMAL_TOC},                            \
        !           228:   {"hard-float",       - MASK_SOFT_FLOAT},                             \
        !           229:   {"soft-float",       MASK_SOFT_FLOAT},                               \
        !           230:   {"multiple",         MASK_MULTIPLE | MASK_MULTIPLE_SET},             \
        !           231:   {"no-multiple",      - MASK_MULTIPLE},                               \
        !           232:   {"no-multiple",      MASK_MULTIPLE_SET},                             \
        !           233:   {"string",           MASK_STRING | MASK_STRING_SET},                 \
        !           234:   {"no-string",                - MASK_STRING},                                 \
        !           235:   {"no-string",                MASK_STRING_SET},                               \
        !           236:   {"debug-stack",      MASK_DEBUG_STACK},                              \
        !           237:   {"debug-arg",                MASK_DEBUG_ARG},                                \
        !           238:   SUBTARGET_SWITCHES                                                   \
1.1.1.2   root      239:   {"",                 TARGET_DEFAULT}}
                    240: 
1.1.1.4 ! root      241: #define TARGET_DEFAULT (MASK_POWER | MASK_MULTIPLE | MASK_STRING)
1.1.1.2   root      242: 
                    243: /* Processor type.  */
                    244: enum processor_type
                    245:  {PROCESSOR_RIOS1,
                    246:   PROCESSOR_RIOS2,
1.1.1.4 ! root      247:   PROCESSOR_PPC403,
1.1.1.2   root      248:   PROCESSOR_PPC601,
                    249:   PROCESSOR_PPC603,
                    250:   PROCESSOR_PPC604,
                    251:   PROCESSOR_PPC620};
                    252: 
                    253: extern enum processor_type rs6000_cpu;
                    254: 
                    255: /* Recast the processor type to the cpu attribute.  */
                    256: #define rs6000_cpu_attr ((enum attr_cpu)rs6000_cpu)
                    257: 
1.1.1.3   root      258: /* Define generic processor types based upon current deployment.  */
                    259: #define PROCESSOR_COMMON  PROCESSOR_PPC601
                    260: #define PROCESSOR_POWER   PROCESSOR_RIOS1
                    261: #define PROCESSOR_POWERPC PROCESSOR_PPC601
                    262: 
1.1.1.2   root      263: /* Define the default processor.  This is overridden by other tm.h files.  */
                    264: #define PROCESSOR_DEFAULT PROCESSOR_RIOS1
                    265: 
                    266: /* Specify the dialect of assembler to use.  New mnemonics is dialect one
                    267:    and the old mnemonics are dialect zero.  */
                    268: #define ASSEMBLER_DIALECT TARGET_NEW_MNEMONICS ? 1 : 0
                    269: 
                    270: /* This macro is similar to `TARGET_SWITCHES' but defines names of
                    271:    command options that have values.  Its definition is an
                    272:    initializer with a subgrouping for each command option.
                    273: 
                    274:    Each subgrouping contains a string constant, that defines the
                    275:    fixed part of the option name, and the address of a variable.
                    276:    The variable, type `char *', is set to the variable part of the
                    277:    given option if the fixed part matches.  The actual option name
                    278:    is made by appending `-m' to the specified name.
                    279: 
                    280:    Here is an example which defines `-mshort-data-NUMBER'.  If the
                    281:    given option is `-mshort-data-512', the variable `m88k_short_data'
                    282:    will be set to the string `"512"'.
                    283: 
                    284:        extern char *m88k_short_data;
                    285:        #define TARGET_OPTIONS { { "short-data-", &m88k_short_data } }  */
                    286: 
                    287: #define TARGET_OPTIONS         \
                    288: { {"cpu=", &rs6000_cpu_string}}
                    289: 
                    290: extern char *rs6000_cpu_string;
                    291: 
                    292: /* Sometimes certain combinations of command options do not make sense
                    293:    on a particular target machine.  You can define a macro
                    294:    `OVERRIDE_OPTIONS' to take account of this.  This macro, if
                    295:    defined, is executed once just after all the command options have
                    296:    been parsed.
1.1       root      297: 
1.1.1.2   root      298:    On the RS/6000 this is used to define the target cpu type.  */
1.1       root      299: 
1.1.1.2   root      300: #define OVERRIDE_OPTIONS rs6000_override_options ()
1.1       root      301: 
1.1.1.3   root      302: /* Show we can debug even without a frame pointer.  */
                    303: #define CAN_DEBUG_WITHOUT_FP
1.1       root      304: 
                    305: /* target machine storage layout */
                    306: 
1.1.1.4 ! root      307: /* Define to support cross compilation to an RS6000 target.  */
        !           308: #define REAL_ARITHMETIC
        !           309: 
1.1       root      310: /* Define this macro if it is advisable to hold scalars in registers
                    311:    in a wider mode than that declared by the program.  In such cases, 
                    312:    the value is constrained to be within the bounds of the declared
                    313:    type, but kept valid in the wider mode.  The signedness of the
                    314:    extension may differ from that of the type.  */
                    315: 
                    316: #define PROMOTE_MODE(MODE,UNSIGNEDP,TYPE)  \
                    317:   if (GET_MODE_CLASS (MODE) == MODE_INT        \
                    318:       && GET_MODE_SIZE (MODE) < 4)     \
                    319:     (MODE) = SImode;
                    320: 
                    321: /* Define this if most significant bit is lowest numbered
                    322:    in instructions that operate on numbered bit-fields. */
                    323: /* That is true on RS/6000. */
                    324: #define BITS_BIG_ENDIAN 1
                    325: 
                    326: /* Define this if most significant byte of a word is the lowest numbered.  */
                    327: /* That is true on RS/6000.  */
                    328: #define BYTES_BIG_ENDIAN 1
                    329: 
                    330: /* Define this if most significant word of a multiword number is lowest
                    331:    numbered. 
                    332: 
                    333:    For RS/6000 we can decide arbitrarily since there are no machine
                    334:    instructions for them.  Might as well be consistent with bits and bytes. */
                    335: #define WORDS_BIG_ENDIAN 1
                    336: 
                    337: /* number of bits in an addressable storage unit */
                    338: #define BITS_PER_UNIT 8
                    339: 
                    340: /* Width in bits of a "word", which is the contents of a machine register.
                    341:    Note that this is not necessarily the width of data type `int';
                    342:    if using 16-bit ints on a 68000, this would still be 32.
                    343:    But on a machine with 16-bit registers, this would be 16.  */
1.1.1.4 ! root      344: #define BITS_PER_WORD (TARGET_POWERPC64 ? 64 : 32)
        !           345: #define MAX_BITS_PER_WORD 64
1.1       root      346: 
                    347: /* Width of a word, in units (bytes).  */
1.1.1.4 ! root      348: #define UNITS_PER_WORD (TARGET_POWERPC64 ? 8 : 4)
        !           349: #define MIN_UNITS_PER_WORD 4
        !           350: #define UNITS_PER_FP_WORD 8
1.1       root      351: 
                    352: /* Type used for ptrdiff_t, as a string used in a declaration.  */
                    353: #define PTRDIFF_TYPE "int"
                    354: 
                    355: /* Type used for wchar_t, as a string used in a declaration.  */
                    356: #define WCHAR_TYPE "short unsigned int"
                    357: 
                    358: /* Width of wchar_t in bits.  */
                    359: #define WCHAR_TYPE_SIZE 16
                    360: 
1.1.1.4 ! root      361: /* A C expression for the size in bits of the type `short' on the
        !           362:    target machine.  If you don't define this, the default is half a
        !           363:    word.  (If this would be less than one storage unit, it is
        !           364:    rounded up to one unit.)  */
        !           365: #define SHORT_TYPE_SIZE 16
        !           366: 
        !           367: /* A C expression for the size in bits of the type `int' on the
        !           368:    target machine.  If you don't define this, the default is one
        !           369:    word.  */
        !           370: #define INT_TYPE_SIZE (TARGET_64BIT ? 64 : 32)
        !           371: #define MAX_INT_TYPE_SIZE 64
        !           372: 
        !           373: /* A C expression for the size in bits of the type `long' on the
        !           374:    target machine.  If you don't define this, the default is one
        !           375:    word.  */
        !           376: #define LONG_TYPE_SIZE (TARGET_64BIT ? 64 : 32)
        !           377: #define MAX_LONG_TYPE_SIZE 64
        !           378: 
        !           379: /* A C expression for the size in bits of the type `long long' on the
        !           380:    target machine.  If you don't define this, the default is two
        !           381:    words.  */
        !           382: #define LONG_LONG_TYPE_SIZE 64
        !           383: 
        !           384: /* A C expression for the size in bits of the type `char' on the
        !           385:    target machine.  If you don't define this, the default is one
        !           386:    quarter of a word.  (If this would be less than one storage unit,
        !           387:    it is rounded up to one unit.)  */
        !           388: #define CHAR_TYPE_SIZE BITS_PER_UNIT
        !           389: 
        !           390: /* A C expression for the size in bits of the type `float' on the
        !           391:    target machine.  If you don't define this, the default is one
        !           392:    word.  */
        !           393: #define FLOAT_TYPE_SIZE 32
        !           394: 
        !           395: /* A C expression for the size in bits of the type `double' on the
        !           396:    target machine.  If you don't define this, the default is two
        !           397:    words.  */
        !           398: #define DOUBLE_TYPE_SIZE 64
        !           399: 
        !           400: /* A C expression for the size in bits of the type `long double' on
        !           401:    the target machine.  If you don't define this, the default is two
        !           402:    words.  */
        !           403: #define LONG_DOUBLE_TYPE_SIZE 64
        !           404: 
1.1       root      405: /* Width in bits of a pointer.
                    406:    See also the macro `Pmode' defined below.  */
1.1.1.4 ! root      407: #define POINTER_SIZE (TARGET_64BIT ? 64 : 32)
1.1       root      408: 
                    409: /* Allocation boundary (in *bits*) for storing arguments in argument list.  */
1.1.1.4 ! root      410: #define PARM_BOUNDARY (TARGET_64BIT ? 64 : 32)
1.1       root      411: 
                    412: /* Boundary (in *bits*) on which stack pointer should be aligned.  */
                    413: #define STACK_BOUNDARY 64
                    414: 
                    415: /* Allocation boundary (in *bits*) for the code of a function.  */
                    416: #define FUNCTION_BOUNDARY 32
                    417: 
                    418: /* No data type wants to be aligned rounder than this.  */
1.1.1.4 ! root      419: #define BIGGEST_ALIGNMENT (TARGET_64BIT ? 64 : 32)
1.1       root      420: 
                    421: /* Alignment of field after `int : 0' in a structure.  */
                    422: #define EMPTY_FIELD_BOUNDARY 32
                    423: 
                    424: /* Every structure's size must be a multiple of this.  */
                    425: #define STRUCTURE_SIZE_BOUNDARY 8
                    426: 
                    427: /* A bitfield declared as `int' forces `int' alignment for the struct.  */
                    428: #define PCC_BITFIELD_TYPE_MATTERS 1
                    429: 
                    430: /* Make strings word-aligned so strcpy from constants will be faster.  */
                    431: #define CONSTANT_ALIGNMENT(EXP, ALIGN)  \
                    432:   (TREE_CODE (EXP) == STRING_CST       \
                    433:    && (ALIGN) < BITS_PER_WORD ? BITS_PER_WORD : (ALIGN))
                    434: 
                    435: /* Make arrays of chars word-aligned for the same reasons.  */
                    436: #define DATA_ALIGNMENT(TYPE, ALIGN)            \
                    437:   (TREE_CODE (TYPE) == ARRAY_TYPE              \
                    438:    && TYPE_MODE (TREE_TYPE (TYPE)) == QImode   \
                    439:    && (ALIGN) < BITS_PER_WORD ? BITS_PER_WORD : (ALIGN))
                    440: 
                    441: /* Non-zero if move instructions will actually fail to work
                    442:    when given unaligned data.  */
                    443: #define STRICT_ALIGNMENT 0
                    444: 
                    445: /* Standard register usage.  */
                    446: 
                    447: /* Number of actual hardware registers.
                    448:    The hardware registers are assigned numbers for the compiler
                    449:    from 0 to just below FIRST_PSEUDO_REGISTER.
                    450:    All registers that the compiler knows about must be given numbers,
                    451:    even those that are not normally considered general registers.
                    452: 
                    453:    RS/6000 has 32 fixed-point registers, 32 floating-point registers,
                    454:    an MQ register, a count register, a link register, and 8 condition
                    455:    register fields, which we view here as separate registers.
                    456: 
                    457:    In addition, the difference between the frame and argument pointers is
                    458:    a function of the number of registers saved, so we need to have a
                    459:    register for AP that will later be eliminated in favor of SP or FP.
                    460:    This is a normal register, but it is fixed.  */
                    461: 
                    462: #define FIRST_PSEUDO_REGISTER 76
                    463: 
                    464: /* 1 for registers that have pervasive standard uses
                    465:    and are not available for the register allocator.
                    466: 
                    467:    On RS/6000, r1 is used for the stack and r2 is used as the TOC pointer.  
                    468: 
1.1.1.4 ! root      469:    cr5 is not supposed to be used.
        !           470: 
        !           471:    On System V implementations, r13 is fixed and not available for use.  */
        !           472: 
        !           473: #ifndef FIXED_R13
        !           474: #define FIXED_R13 0
        !           475: #endif
1.1       root      476: 
                    477: #define FIXED_REGISTERS  \
1.1.1.4 ! root      478:   {0, 1, 1, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, FIXED_R13, 0, 0, \
1.1       root      479:    0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, \
                    480:    0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, \
                    481:    0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, \
                    482:    0, 0, 0, 1, 0, 0, 0, 0, 0, 1, 0, 0}
                    483: 
                    484: /* 1 for registers not available across function calls.
                    485:    These must include the FIXED_REGISTERS and also any
                    486:    registers that can be used without being saved.
                    487:    The latter must include the registers where values are returned
                    488:    and the register where structure-value addresses are passed.
                    489:    Aside from that, you can include as many other registers as you like.  */
                    490: 
                    491: #define CALL_USED_REGISTERS  \
1.1.1.4 ! root      492:   {1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, FIXED_R13, 0, 0, \
1.1       root      493:    0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, \
                    494:    1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 0, \
                    495:    0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, \
                    496:    1, 1, 1, 1, 1, 1, 0, 0, 0, 1, 1, 1}
                    497: 
                    498: /* List the order in which to allocate registers.  Each register must be
                    499:    listed once, even those in FIXED_REGISTERS.
                    500: 
                    501:    We allocate in the following order:
                    502:        fp0             (not saved or used for anything)
                    503:        fp13 - fp2      (not saved; incoming fp arg registers)
                    504:        fp1             (not saved; return value)
                    505:        fp31 - fp14     (saved; order given to save least number)
                    506:        cr1, cr6, cr7   (not saved or special)
                    507:        cr0             (not saved, but used for arithmetic operations)
                    508:        cr2, cr3, cr4   (saved)
                    509:         r0             (not saved; cannot be base reg)
                    510:        r9              (not saved; best for TImode)
                    511:        r11, r10, r8-r4 (not saved; highest used first to make less conflict)
                    512:        r3              (not saved; return value register)
                    513:        r31 - r13       (saved; order given to save least number)
                    514:        r12             (not saved; if used for DImode or DFmode would use r13)
                    515:        mq              (not saved; best to use it if we can)
                    516:        ctr             (not saved; when we have the choice ctr is better)
                    517:        lr              (saved)
                    518:         cr5, r1, r2, ap        (fixed)  */
                    519: 
                    520: #define REG_ALLOC_ORDER                                        \
                    521:   {32,                                                         \
                    522:    45, 44, 43, 42, 41, 40, 39, 38, 37, 36, 35, 34,     \
                    523:    33,                                                 \
                    524:    63, 62, 61, 60, 59, 58, 57, 56, 55, 54, 53, 52, 51, \
                    525:    50, 49, 48, 47, 46,                                         \
                    526:    69, 74, 75, 68, 70, 71, 72,                         \
                    527:    0,                                                  \
                    528:    9, 11, 10, 8, 7, 6, 5, 4,                           \
                    529:    3,                                                  \
                    530:    31, 30, 29, 28, 27, 26, 25, 24, 23, 22, 21, 20, 19, \
                    531:    18, 17, 16, 15, 14, 13, 12,                         \
                    532:    64, 66, 65,                                                 \
                    533:    73, 1, 2, 67}
                    534: 
                    535: /* True if register is floating-point.  */
                    536: #define FP_REGNO_P(N) ((N) >= 32 && (N) <= 63)
                    537: 
                    538: /* True if register is a condition register.  */
                    539: #define CR_REGNO_P(N) ((N) >= 68 && (N) <= 75)
                    540: 
                    541: /* True if register is an integer register.  */
                    542: #define INT_REGNO_P(N) ((N) <= 31 || (N) == 67)
                    543: 
                    544: /* Return number of consecutive hard regs needed starting at reg REGNO
                    545:    to hold something of mode MODE.
                    546:    This is ordinarily the length in words of a value of mode MODE
                    547:    but can be less for certain modes in special long registers.
                    548: 
                    549:    On RS/6000, ordinary registers hold 32 bits worth;
                    550:    a single floating point register holds 64 bits worth.  */
                    551: 
                    552: #define HARD_REGNO_NREGS(REGNO, MODE)   \
                    553:   (FP_REGNO_P (REGNO)                  \
1.1.1.4 ! root      554:    ? ((GET_MODE_SIZE (MODE) + UNITS_PER_FP_WORD - 1) / UNITS_PER_FP_WORD) \
1.1       root      555:    : ((GET_MODE_SIZE (MODE) + UNITS_PER_WORD - 1) / UNITS_PER_WORD))
                    556: 
                    557: /* Value is 1 if hard register REGNO can hold a value of machine-mode MODE.
1.1.1.3   root      558:    For POWER and PowerPC, the GPRs can hold any mode, but the float
                    559:    registers only can hold floating modes and DImode, and CR register only
                    560:    can hold CC modes.  We cannot put TImode anywhere except general
                    561:    register and it must be able to fit within the register set. */
1.1       root      562: 
                    563: #define HARD_REGNO_MODE_OK(REGNO, MODE) \
1.1.1.3   root      564:   (FP_REGNO_P (REGNO) ?                                                \
                    565:    (GET_MODE_CLASS (MODE) == MODE_FLOAT                                \
                    566:     || (GET_MODE_CLASS (MODE) == MODE_INT                      \
1.1.1.4 ! root      567:        && GET_MODE_SIZE (MODE) == UNITS_PER_FP_WORD))          \
1.1       root      568:    : CR_REGNO_P (REGNO) ? GET_MODE_CLASS (MODE) == MODE_CC     \
1.1.1.3   root      569:    : ! INT_REGNO_P (REGNO) ? (GET_MODE_CLASS (MODE) == MODE_INT        \
                    570:                              && GET_MODE_SIZE (MODE) <= UNITS_PER_WORD) \
1.1       root      571:    : 1)
                    572: 
                    573: /* Value is 1 if it is a good idea to tie two pseudo registers
                    574:    when one has mode MODE1 and one has mode MODE2.
                    575:    If HARD_REGNO_MODE_OK could produce different values for MODE1 and MODE2,
                    576:    for any hard reg, then this must be 0 for correct output.  */
                    577: #define MODES_TIEABLE_P(MODE1, MODE2) \
                    578:   (GET_MODE_CLASS (MODE1) == MODE_FLOAT                \
                    579:    ? GET_MODE_CLASS (MODE2) == MODE_FLOAT      \
                    580:    : GET_MODE_CLASS (MODE2) == MODE_FLOAT      \
                    581:    ? GET_MODE_CLASS (MODE1) == MODE_FLOAT      \
                    582:    : GET_MODE_CLASS (MODE1) == MODE_CC         \
                    583:    ? GET_MODE_CLASS (MODE2) == MODE_CC         \
                    584:    : GET_MODE_CLASS (MODE2) == MODE_CC         \
                    585:    ? GET_MODE_CLASS (MODE1) == MODE_CC         \
                    586:    : 1)
                    587: 
                    588: /* A C expression returning the cost of moving data from a register of class
                    589:    CLASS1 to one of CLASS2.
                    590: 
                    591:    On the RS/6000, copying between floating-point and fixed-point
                    592:    registers is expensive.  */
                    593: 
                    594: #define REGISTER_MOVE_COST(CLASS1, CLASS2)                     \
                    595:   ((CLASS1) == FLOAT_REGS && (CLASS2) == FLOAT_REGS ? 2                \
                    596:    : (CLASS1) == FLOAT_REGS && (CLASS2) != FLOAT_REGS ? 10     \
                    597:    : (CLASS1) != FLOAT_REGS && (CLASS2) == FLOAT_REGS ? 10     \
1.1.1.3   root      598:    : (((CLASS1) == SPECIAL_REGS || (CLASS1) == MQ_REGS         \
1.1.1.4 ! root      599:        || (CLASS1) == LINK_REGS || (CLASS1) == CTR_REGS                \
        !           600:        || (CLASS1) == LINK_OR_CTR_REGS)                                \
1.1.1.3   root      601:       && ((CLASS2) == SPECIAL_REGS || (CLASS2) == MQ_REGS      \
1.1.1.4 ! root      602:          || (CLASS2) == LINK_REGS || (CLASS2) == CTR_REGS      \
        !           603:          || (CLASS2) == LINK_OR_CTR_REGS)) ? 10 \
1.1       root      604:    : 2)
                    605: 
                    606: /* A C expressions returning the cost of moving data of MODE from a register to
                    607:    or from memory.
                    608: 
                    609:    On the RS/6000, bump this up a bit.  */
                    610: 
1.1.1.3   root      611: #define MEMORY_MOVE_COST(MODE)         \
                    612:   ((GET_MODE_CLASS (MODE) == MODE_FLOAT        \
                    613:     && (rs6000_cpu == PROCESSOR_RIOS1 || rs6000_cpu == PROCESSOR_PPC601) \
                    614:     ? 3 : 2) \
                    615:    + 4)
1.1       root      616: 
                    617: /* Specify the cost of a branch insn; roughly the number of extra insns that
                    618:    should be added to avoid a branch.
                    619: 
                    620:    Set this to 3 on the RS/6000 since that is roughly the average cost of an
                    621:    unscheduled conditional branch.  */
                    622: 
                    623: #define BRANCH_COST 3
                    624: 
                    625: /* A C statement (sans semicolon) to update the integer variable COST
                    626:    based on the relationship between INSN that is dependent on
                    627:    DEP_INSN through the dependence LINK.  The default is to make no
                    628:    adjustment to COST.  On the RS/6000, ignore the cost of anti- and
                    629:    output-dependencies.  In fact, output dependencies on the CR do have
                    630:    a cost, but it is probably not worthwhile to track it.  */
                    631: 
                    632: #define ADJUST_COST(INSN,LINK,DEP_INSN,COST)                           \
1.1.1.3   root      633:   (COST) = rs6000_adjust_cost (INSN,LINK,DEP_INSN,COST)
1.1       root      634: 
1.1.1.2   root      635: /* Define this macro to change register usage conditional on target flags.
                    636:    Set MQ register fixed (already call_used) if not POWER architecture
1.1.1.4 ! root      637:    (RIOS1, RIOS2, RSC, and PPC601) so that it will not be allocated.
        !           638:    Conditionally disable FPRs.  */
1.1.1.2   root      639: 
1.1.1.4 ! root      640: #define CONDITIONAL_REGISTER_USAGE     \
        !           641: {                                      \
        !           642:   if (! TARGET_POWER)                  \
        !           643:     fixed_regs[64] = 1;                        \
        !           644:   if (TARGET_SOFT_FLOAT)               \
        !           645:     for (i = 32; i < 64; i++)          \
        !           646:       fixed_regs[i] = call_used_regs[i] = 1; \
        !           647: }
1.1.1.2   root      648: 
1.1       root      649: /* Specify the registers used for certain standard purposes.
                    650:    The values of these macros are register numbers.  */
                    651: 
                    652: /* RS/6000 pc isn't overloaded on a register that the compiler knows about.  */
                    653: /* #define PC_REGNUM  */
                    654: 
                    655: /* Register to use for pushing function arguments.  */
                    656: #define STACK_POINTER_REGNUM 1
                    657: 
                    658: /* Base register for access to local variables of the function.  */
                    659: #define FRAME_POINTER_REGNUM 31
                    660: 
                    661: /* Value should be nonzero if functions must have frame pointers.
                    662:    Zero means the frame pointer need not be set up (and parms
                    663:    may be accessed via the stack pointer) in functions that seem suitable.
                    664:    This is computed in `reload', in reload1.c.  */
                    665: #define FRAME_POINTER_REQUIRED 0
                    666: 
                    667: /* Base register for access to arguments of the function.  */
                    668: #define ARG_POINTER_REGNUM 67
                    669: 
                    670: /* Place to put static chain when calling a function that requires it.  */
                    671: #define STATIC_CHAIN_REGNUM 11
                    672: 
                    673: /* Place that structure value return address is placed.
                    674: 
                    675:    On the RS/6000, it is passed as an extra parameter.  */
                    676: #define STRUCT_VALUE   0
                    677: 
                    678: /* Define the classes of registers for register constraints in the
                    679:    machine description.  Also define ranges of constants.
                    680: 
                    681:    One of the classes must always be named ALL_REGS and include all hard regs.
                    682:    If there is more than one class, another class must be named NO_REGS
                    683:    and contain no registers.
                    684: 
                    685:    The name GENERAL_REGS must be the name of a class (or an alias for
                    686:    another name such as ALL_REGS).  This is the class of registers
                    687:    that is allowed by "g" or "r" in a register constraint.
                    688:    Also, registers outside this class are allocated only when
                    689:    instructions express preferences for them.
                    690: 
                    691:    The classes must be numbered in nondecreasing order; that is,
                    692:    a larger-numbered class must never be contained completely
                    693:    in a smaller-numbered class.
                    694: 
                    695:    For any two classes, it is very desirable that there be another
                    696:    class that represents their union.  */
                    697:    
                    698: /* The RS/6000 has three types of registers, fixed-point, floating-point,
                    699:    and condition registers, plus three special registers, MQ, CTR, and the
                    700:    link register.
                    701: 
                    702:    However, r0 is special in that it cannot be used as a base register.
                    703:    So make a class for registers valid as base registers.
                    704: 
                    705:    Also, cr0 is the only condition code register that can be used in
                    706:    arithmetic insns, so make a separate class for it. */
                    707: 
                    708: enum reg_class { NO_REGS, BASE_REGS, GENERAL_REGS, FLOAT_REGS,
                    709:   NON_SPECIAL_REGS, MQ_REGS, LINK_REGS, CTR_REGS, LINK_OR_CTR_REGS,
                    710:   SPECIAL_REGS, SPEC_OR_GEN_REGS, CR0_REGS, CR_REGS, NON_FLOAT_REGS,
                    711:   ALL_REGS, LIM_REG_CLASSES };
                    712: 
                    713: #define N_REG_CLASSES (int) LIM_REG_CLASSES
                    714: 
                    715: /* Give names of register classes as strings for dump file.   */
                    716: 
                    717: #define REG_CLASS_NAMES                                                \
                    718:   { "NO_REGS", "BASE_REGS", "GENERAL_REGS", "FLOAT_REGS",      \
                    719:     "NON_SPECIAL_REGS", "MQ_REGS", "LINK_REGS", "CTR_REGS",    \
                    720:     "LINK_OR_CTR_REGS", "SPECIAL_REGS", "SPEC_OR_GEN_REGS",    \
                    721:     "CR0_REGS", "CR_REGS", "NON_FLOAT_REGS", "ALL_REGS" }
                    722: 
                    723: /* Define which registers fit in which classes.
                    724:    This is an initializer for a vector of HARD_REG_SET
                    725:    of length N_REG_CLASSES.  */
                    726: 
                    727: #define REG_CLASS_CONTENTS                             \
                    728:   { {0, 0, 0}, {0xfffffffe, 0, 8}, {~0, 0, 8},         \
                    729:     {0, ~0, 0}, {~0, ~0, 8}, {0, 0, 1}, {0, 0, 2},     \
                    730:     {0, 0, 4}, {0, 0, 6}, {0, 0, 7}, {~0, 0, 15},      \
                    731:     {0, 0, 16}, {0, 0, 0xff0}, {~0, 0, 0xffff},                \
                    732:     {~0, ~0, 0xffff} }
                    733: 
                    734: /* The same information, inverted:
                    735:    Return the class number of the smallest class containing
                    736:    reg number REGNO.  This could be a conditional expression
                    737:    or could index an array.  */
                    738: 
                    739: #define REGNO_REG_CLASS(REGNO) \
                    740:  ((REGNO) == 0 ? GENERAL_REGS  \
                    741:   : (REGNO) < 32 ? BASE_REGS   \
                    742:   : FP_REGNO_P (REGNO) ? FLOAT_REGS \
                    743:   : (REGNO) == 68 ? CR0_REGS   \
                    744:   : CR_REGNO_P (REGNO) ? CR_REGS \
                    745:   : (REGNO) == 64 ? MQ_REGS    \
                    746:   : (REGNO) == 65 ? LINK_REGS  \
                    747:   : (REGNO) == 66 ? CTR_REGS   \
                    748:   : (REGNO) == 67 ? BASE_REGS  \
                    749:   : NO_REGS)
                    750: 
                    751: /* The class value for index registers, and the one for base regs.  */
                    752: #define INDEX_REG_CLASS GENERAL_REGS
                    753: #define BASE_REG_CLASS BASE_REGS
                    754: 
                    755: /* Get reg_class from a letter such as appears in the machine description.  */
                    756: 
                    757: #define REG_CLASS_FROM_LETTER(C) \
                    758:   ((C) == 'f' ? FLOAT_REGS     \
                    759:    : (C) == 'b' ? BASE_REGS    \
                    760:    : (C) == 'h' ? SPECIAL_REGS \
                    761:    : (C) == 'q' ? MQ_REGS      \
                    762:    : (C) == 'c' ? CTR_REGS     \
                    763:    : (C) == 'l' ? LINK_REGS    \
                    764:    : (C) == 'x' ? CR0_REGS     \
                    765:    : (C) == 'y' ? CR_REGS      \
                    766:    : NO_REGS)
                    767: 
                    768: /* The letters I, J, K, L, M, N, and P in a register constraint string
                    769:    can be used to stand for particular ranges of immediate operands.
                    770:    This macro defines what the ranges are.
                    771:    C is the letter, and VALUE is a constant value.
                    772:    Return 1 if VALUE is in the range specified by C.
                    773: 
                    774:    `I' is signed 16-bit constants 
                    775:    `J' is a constant with only the high-order 16 bits non-zero
                    776:    `K' is a constant with only the low-order 16 bits non-zero
                    777:    `L' is a constant that can be placed into a mask operand
                    778:    `M' is a constant that is greater than 31
                    779:    `N' is a constant that is an exact power of two
                    780:    `O' is the constant zero
                    781:    `P' is a constant whose negation is a signed 16-bit constant */
                    782: 
                    783: #define CONST_OK_FOR_LETTER_P(VALUE, C)                                \
                    784:    ( (C) == 'I' ? (unsigned) ((VALUE) + 0x8000) < 0x10000      \
                    785:    : (C) == 'J' ? ((VALUE) & 0xffff) == 0                      \
                    786:    : (C) == 'K' ? ((VALUE) & 0xffff0000) == 0                  \
                    787:    : (C) == 'L' ? mask_constant (VALUE)                                \
                    788:    : (C) == 'M' ? (VALUE) > 31                                 \
                    789:    : (C) == 'N' ? exact_log2 (VALUE) >= 0                      \
                    790:    : (C) == 'O' ? (VALUE) == 0                                 \
                    791:    : (C) == 'P' ? (unsigned) ((- (VALUE)) + 0x8000) < 0x1000   \
                    792:    : 0)
                    793: 
                    794: /* Similar, but for floating constants, and defining letters G and H.
                    795:    Here VALUE is the CONST_DOUBLE rtx itself.
                    796: 
                    797:    We flag for special constants when we can copy the constant into
                    798:    a general register in two insns for DF and one insn for SF.  */
                    799: 
                    800: #define CONST_DOUBLE_OK_FOR_LETTER_P(VALUE, C)  \
                    801:   ((C) == 'G' ? easy_fp_constant (VALUE, GET_MODE (VALUE)) : 0)
                    802: 
                    803: /* Optional extra constraints for this machine.
                    804: 
                    805:    For the RS/6000, `Q' means that this is a memory operand that is just
                    806:    an offset from a register.  */
                    807: 
                    808: #define EXTRA_CONSTRAINT(OP, C)                                                \
                    809:   ((C) == 'Q' ? GET_CODE (OP) == MEM && GET_CODE (XEXP (OP, 0)) == REG \
1.1.1.4 ! root      810:    : (C) == 'R' ? LEGITIMATE_CONSTANT_POOL_ADDRESS_P (OP)              \
1.1       root      811:    : 0)
                    812: 
                    813: /* Given an rtx X being reloaded into a reg required to be
                    814:    in class CLASS, return the class of reg to actually use.
                    815:    In general this is just CLASS; but on some machines
                    816:    in some cases it is preferable to use a more restrictive class. 
                    817: 
                    818:    On the RS/6000, we have to return NO_REGS when we want to reload a
                    819:    floating-point CONST_DOUBLE to force it to be copied to memory.  */
                    820: 
                    821: #define PREFERRED_RELOAD_CLASS(X,CLASS)        \
                    822:   ((GET_CODE (X) == CONST_DOUBLE                       \
                    823:     && GET_MODE_CLASS (GET_MODE (X)) == MODE_FLOAT)    \
                    824:    ? NO_REGS : (CLASS))
                    825:    
                    826: /* Return the register class of a scratch register needed to copy IN into
                    827:    or out of a register in CLASS in MODE.  If it can be done directly,
                    828:    NO_REGS is returned.  */
                    829: 
                    830: #define SECONDARY_RELOAD_CLASS(CLASS,MODE,IN) \
                    831:   secondary_reload_class (CLASS, MODE, IN)
                    832: 
1.1.1.2   root      833: /* If we are copying between FP registers and anything else, we need a memory
                    834:    location.  */
                    835: 
                    836: #define SECONDARY_MEMORY_NEEDED(CLASS1,CLASS2,MODE) \
                    837:  ((CLASS1) != (CLASS2) && ((CLASS1) == FLOAT_REGS || (CLASS2) == FLOAT_REGS))
                    838: 
1.1       root      839: /* Return the maximum number of consecutive registers
                    840:    needed to represent mode MODE in a register of class CLASS.
                    841: 
                    842:    On RS/6000, this is the size of MODE in words,
                    843:    except in the FP regs, where a single reg is enough for two words.  */
                    844: #define CLASS_MAX_NREGS(CLASS, MODE)   \
                    845:  ((CLASS) == FLOAT_REGS                        \
1.1.1.4 ! root      846:   ? ((GET_MODE_SIZE (MODE) + UNITS_PER_FP_WORD - 1) / UNITS_PER_FP_WORD) \
1.1       root      847:   : ((GET_MODE_SIZE (MODE) + UNITS_PER_WORD - 1) / UNITS_PER_WORD))
1.1.1.3   root      848: 
                    849: /* If defined, gives a class of registers that cannot be used as the
                    850:    operand of a SUBREG that changes the size of the object.  */
                    851: 
                    852: #define CLASS_CANNOT_CHANGE_SIZE       FLOAT_REGS
1.1       root      853: 
                    854: /* Stack layout; function entry, exit and calling.  */
                    855: 
1.1.1.4 ! root      856: /* Enumeration to give which calling sequence to use.  */
        !           857: enum rs6000_abi {
        !           858:   ABI_NONE,
        !           859:   ABI_AIX,                     /* IBM's AIX */
        !           860:   ABI_V4                       /* System V.4/eabi */
        !           861: };
        !           862: 
        !           863: /* Structure used to define the rs6000 stack */
        !           864: typedef struct rs6000_stack {
        !           865:   int first_gp_reg_save;       /* first callee saved GP register used */
        !           866:   int first_fp_reg_save;       /* first callee saved FP register used */
        !           867:   int lr_save_p;               /* true if the link reg needs to be saved */
        !           868:   int cr_save_p;               /* true if the CR reg needs to be saved */
        !           869:   int push_p;                  /* true if we need to allocate stack space */
        !           870:   int calls_p;                 /* true if the function makes any calls */
        !           871:   enum rs6000_abi abi;         /* which ABI to use */
        !           872:   int gp_save_offset;          /* offset to save GP regs from initial SP */
        !           873:   int fp_save_offset;          /* offset to save FP regs from initial SP */
        !           874:   int lr_save_offset;          /* offset to save LR from initial SP */
        !           875:   int cr_save_offset;          /* offset to save CR from initial SP */
        !           876:   int varargs_save_offset;     /* offset to save the varargs registers */
        !           877:   int reg_size;                        /* register size (4 or 8) */
        !           878:   int varargs_size;            /* size to hold V.4 args passed in regs */
        !           879:   int vars_size;               /* variable save area size */
        !           880:   int parm_size;               /* outgoing parameter size */
        !           881:   int save_size;               /* save area size */
        !           882:   int fixed_size;              /* fixed size of stack frame */
        !           883:   int gp_size;                 /* size of saved GP registers */
        !           884:   int fp_size;                 /* size of saved FP registers */
        !           885:   int cr_size;                 /* size to hold CR if not in save_size */
        !           886:   int total_size;              /* total bytes allocated for stack */
        !           887: } rs6000_stack_t;
        !           888: 
1.1       root      889: /* Define this if pushing a word on the stack
                    890:    makes the stack pointer a smaller address.  */
                    891: #define STACK_GROWS_DOWNWARD
                    892: 
                    893: /* Define this if the nominal address of the stack frame
                    894:    is at the high-address end of the local variables;
                    895:    that is, each additional local variable allocated
                    896:    goes at a more negative offset in the frame.
                    897: 
                    898:    On the RS/6000, we grow upwards, from the area after the outgoing
                    899:    arguments.  */
                    900: /* #define FRAME_GROWS_DOWNWARD */
                    901: 
1.1.1.4 ! root      902: /* Size of the outgoing register save area */
        !           903: #define RS6000_REG_SAVE (TARGET_64BIT ? 64 : 32)
        !           904: 
        !           905: /* Size of the fixed area on the stack */
        !           906: #define RS6000_SAVE_AREA (TARGET_64BIT ? 48 : 24)
        !           907: 
        !           908: /* Size of the V.4 varargs area if needed */
        !           909: #define RS6000_VARARGS_AREA 0
        !           910: 
        !           911: /* Whether a V.4 varargs area is needed */
        !           912: extern int rs6000_sysv_varargs_p;
        !           913: 
        !           914: /* Align an address */
        !           915: #define ALIGN(n,a) (((n) + (a) - 1) & ~((a) - 1))
        !           916: 
        !           917: /* Size of V.4 varargs area in bytes */
        !           918: #define RS6000_VARARGS_SIZE \
        !           919:   ((GP_ARG_NUM_REG * (TARGET_64BIT ? 8 : 4)) + (FP_ARG_NUM_REG * 8) + 8)
        !           920: 
        !           921: /* Offset of V.4 varargs area */
        !           922: #define RS6000_VARARGS_OFFSET \
        !           923:   (ALIGN (current_function_outgoing_args_size, 8) + RS6000_SAVE_AREA)
        !           924: 
1.1       root      925: /* Offset within stack frame to start allocating local variables at.
                    926:    If FRAME_GROWS_DOWNWARD, this is the offset to the END of the
                    927:    first local allocated.  Otherwise, it is the offset to the BEGINNING
                    928:    of the first local allocated. 
                    929: 
                    930:    On the RS/6000, the frame pointer is the same as the stack pointer,
                    931:    except for dynamic allocations.  So we start after the fixed area and
                    932:    outgoing parameter area.  */
                    933: 
1.1.1.4 ! root      934: #define STARTING_FRAME_OFFSET (ALIGN (current_function_outgoing_args_size, 8) \
        !           935:                               + RS6000_VARARGS_AREA \
        !           936:                               + RS6000_SAVE_AREA)
1.1       root      937: 
                    938: /* If we generate an insn to push BYTES bytes,
                    939:    this says how many the stack pointer really advances by.
                    940:    On RS/6000, don't define this because there are no push insns.  */
                    941: /*  #define PUSH_ROUNDING(BYTES) */
                    942: 
                    943: /* Offset of first parameter from the argument pointer register value.
                    944:    On the RS/6000, we define the argument pointer to the start of the fixed
                    945:    area.  */
1.1.1.4 ! root      946: #define FIRST_PARM_OFFSET(FNDECL) RS6000_SAVE_AREA
1.1       root      947: 
                    948: /* Define this if stack space is still allocated for a parameter passed
                    949:    in a register.  The value is the number of bytes allocated to this
                    950:    area.  */
1.1.1.4 ! root      951: #define REG_PARM_STACK_SPACE(FNDECL)   RS6000_REG_SAVE
1.1       root      952: 
                    953: /* Define this if the above stack space is to be considered part of the
                    954:    space allocated by the caller.  */
                    955: #define OUTGOING_REG_PARM_STACK_SPACE
                    956: 
                    957: /* This is the difference between the logical top of stack and the actual sp.
                    958: 
                    959:    For the RS/6000, sp points past the fixed area. */
1.1.1.4 ! root      960: #define STACK_POINTER_OFFSET RS6000_SAVE_AREA
1.1       root      961: 
                    962: /* Define this if the maximum size of all the outgoing args is to be
                    963:    accumulated and pushed during the prologue.  The amount can be
                    964:    found in the variable current_function_outgoing_args_size.  */
                    965: #define ACCUMULATE_OUTGOING_ARGS
                    966: 
                    967: /* Value is the number of bytes of arguments automatically
                    968:    popped when returning from a subroutine call.
1.1.1.4 ! root      969:    FUNDECL is the declaration node of the function (as a tree),
1.1       root      970:    FUNTYPE is the data type of the function (as a tree),
                    971:    or for a library call it is an identifier node for the subroutine name.
                    972:    SIZE is the number of bytes of arguments passed on the stack.  */
                    973: 
1.1.1.4 ! root      974: #define RETURN_POPS_ARGS(FUNDECL,FUNTYPE,SIZE) 0
1.1       root      975: 
                    976: /* Define how to find the value returned by a function.
                    977:    VALTYPE is the data type of the value (as a tree).
                    978:    If the precise function being called is known, FUNC is its FUNCTION_DECL;
                    979:    otherwise, FUNC is 0.
                    980: 
                    981:    On RS/6000 an integer value is in r3 and a floating-point value is in 
1.1.1.4 ! root      982:    fp1, unless -msoft-float.  */
1.1       root      983: 
                    984: #define FUNCTION_VALUE(VALTYPE, FUNC)  \
                    985:   gen_rtx (REG, TYPE_MODE (VALTYPE),   \
1.1.1.4 ! root      986:           TREE_CODE (VALTYPE) == REAL_TYPE && TARGET_HARD_FLOAT ? 33 : 3)
1.1       root      987: 
                    988: /* Define how to find the value returned by a library function
                    989:    assuming the value has mode MODE.  */
                    990: 
                    991: #define LIBCALL_VALUE(MODE)            \
1.1.1.4 ! root      992:   gen_rtx (REG, MODE, GET_MODE_CLASS (MODE) == MODE_FLOAT && TARGET_HARD_FLOAT ? 33 : 3)
1.1       root      993: 
                    994: /* The definition of this macro implies that there are cases where
                    995:    a scalar value cannot be returned in registers.
                    996: 
                    997:    For the RS/6000, any structure or union type is returned in memory.  */
                    998: 
                    999: #define RETURN_IN_MEMORY(TYPE) \
                   1000:   (TYPE_MODE (TYPE) == BLKmode)
                   1001: 
1.1.1.4 ! root     1002: /* Minimum and maximum general purpose registers used to hold arguments.  */
        !          1003: #define GP_ARG_MIN_REG 3
        !          1004: #define GP_ARG_MAX_REG 10
        !          1005: #define GP_ARG_NUM_REG (GP_ARG_MAX_REG - GP_ARG_MIN_REG + 1)
        !          1006: 
        !          1007: /* Minimum and maximum floating point registers used to hold arguments.  */
        !          1008: #define FP_ARG_MIN_REG 33
        !          1009: #define FP_ARG_MAX_REG 45
        !          1010: #define FP_ARG_NUM_REG (FP_ARG_MAX_REG - FP_ARG_MIN_REG + 1)
        !          1011: 
        !          1012: /* Return registers */
        !          1013: #define GP_ARG_RETURN GP_ARG_MIN_REG
        !          1014: #define FP_ARG_RETURN FP_ARG_MIN_REG
        !          1015: 
        !          1016: /* Define cutoff for using external functions to save floating point */
        !          1017: #define FP_SAVE_INLINE(FIRST_REG) ((FIRST_REG) == 62 || (FIRST_REG) == 63)
        !          1018: 
1.1       root     1019: /* 1 if N is a possible register number for a function value
                   1020:    as seen by the caller.
                   1021: 
                   1022:    On RS/6000, this is r3 and fp1.  */
1.1.1.4 ! root     1023: #define FUNCTION_VALUE_REGNO_P(N)  ((N) == GP_ARG_RETURN || ((N) == FP_ARG_RETURN))
1.1       root     1024: 
                   1025: /* 1 if N is a possible register number for function argument passing.
                   1026:    On RS/6000, these are r3-r10 and fp1-fp13.  */
1.1.1.4 ! root     1027: #define FUNCTION_ARG_REGNO_P(N)                                                \
        !          1028:   (((unsigned)((N) - GP_ARG_MIN_REG) < (unsigned)(GP_ARG_NUM_REG))     \
        !          1029:    || ((unsigned)((N) - FP_ARG_MIN_REG) < (unsigned)(FP_ARG_NUM_REG)))
1.1       root     1030: 
                   1031: 
                   1032: /* Define a data type for recording info about an argument list
                   1033:    during the scan of that argument list.  This data type should
                   1034:    hold all necessary information about the function itself
                   1035:    and about the args processed so far, enough to enable macros
                   1036:    such as FUNCTION_ARG to determine where the next arg should go.
                   1037: 
                   1038:    On the RS/6000, this is a structure.  The first element is the number of
                   1039:    total argument words, the second is used to store the next
                   1040:    floating-point register number, and the third says how many more args we
1.1.1.4 ! root     1041:    have prototype types for.
1.1       root     1042: 
1.1.1.4 ! root     1043:    The System V.4 varargs/stdarg support requires that this structure's size
        !          1044:    be a multiple of sizeof(int), and that WORDS, FREGNO, NARGS_PROTOTYPE,
        !          1045:    ORIG_NARGS, and VARARGS_OFFSET be the first five ints.  */
        !          1046: 
        !          1047: typedef struct rs6000_args
        !          1048: {
        !          1049:   int words;                   /* # words uses for passing GP registers */
        !          1050:   int fregno;                  /* next available FP register */
        !          1051:   int nargs_prototype;         /* # args left in the current prototype */
        !          1052:   int orig_nargs;              /* Original value of nargs_prototype */
        !          1053:   int varargs_offset;          /* offset of the varargs save area */
        !          1054:   int prototype;               /* Whether a prototype was defined */
        !          1055: } CUMULATIVE_ARGS;
1.1       root     1056: 
                   1057: /* Define intermediate macro to compute the size (in registers) of an argument
                   1058:    for the RS/6000.  */
                   1059: 
                   1060: #define RS6000_ARG_SIZE(MODE, TYPE, NAMED)                             \
                   1061: (! (NAMED) ? 0                                                         \
                   1062:  : (MODE) != BLKmode                                                   \
                   1063:  ? (GET_MODE_SIZE (MODE) + (UNITS_PER_WORD - 1)) / UNITS_PER_WORD      \
                   1064:  : (int_size_in_bytes (TYPE) + (UNITS_PER_WORD - 1)) / UNITS_PER_WORD)
                   1065: 
                   1066: /* Initialize a variable CUM of type CUMULATIVE_ARGS
                   1067:    for a call to a function whose data type is FNTYPE.
                   1068:    For a library call, FNTYPE is 0.  */
                   1069: 
1.1.1.4 ! root     1070: #define INIT_CUMULATIVE_ARGS(CUM,FNTYPE,LIBNAME) \
        !          1071:   init_cumulative_args (&CUM, FNTYPE, LIBNAME, FALSE)
1.1       root     1072: 
                   1073: /* Similar, but when scanning the definition of a procedure.  We always
                   1074:    set NARGS_PROTOTYPE large so we never return an EXPR_LIST.  */
                   1075: 
1.1.1.4 ! root     1076: #define INIT_CUMULATIVE_INCOMING_ARGS(CUM,FNTYPE,LIBNAME) \
        !          1077:   init_cumulative_args (&CUM, FNTYPE, LIBNAME, TRUE)
1.1       root     1078: 
                   1079: /* Update the data in CUM to advance over an argument
                   1080:    of mode MODE and data type TYPE.
                   1081:    (TYPE is null for libcalls where that information may not be available.)  */
                   1082: 
                   1083: #define FUNCTION_ARG_ADVANCE(CUM, MODE, TYPE, NAMED)   \
1.1.1.4 ! root     1084:   function_arg_advance (&CUM, MODE, TYPE, NAMED)
1.1       root     1085: 
                   1086: /* Non-zero if we can use a floating-point register to pass this arg.  */
1.1.1.4 ! root     1087: #define USE_FP_FOR_ARG_P(CUM,MODE,TYPE) \
        !          1088:   (GET_MODE_CLASS (MODE) == MODE_FLOAT  \
        !          1089:    && (CUM).fregno <= FP_ARG_MAX_REG    \
        !          1090:    && TARGET_HARD_FLOAT)
1.1       root     1091: 
                   1092: /* Determine where to put an argument to a function.
                   1093:    Value is zero to push the argument on the stack,
                   1094:    or a hard register in which to store the argument.
                   1095: 
                   1096:    MODE is the argument's machine mode.
                   1097:    TYPE is the data type of the argument (as a tree).
                   1098:     This is null for libcalls where that information may
                   1099:     not be available.
                   1100:    CUM is a variable of type CUMULATIVE_ARGS which gives info about
                   1101:     the preceding args and about the function being called.
                   1102:    NAMED is nonzero if this argument is a named parameter
                   1103:     (otherwise it is an extra parameter matching an ellipsis).
                   1104: 
                   1105:    On RS/6000 the first eight words of non-FP are normally in registers
                   1106:    and the rest are pushed.  The first 13 FP args are in registers.
                   1107: 
                   1108:    If this is floating-point and no prototype is specified, we use
                   1109:    both an FP and integer register (or possibly FP reg and stack).  Library
                   1110:    functions (when TYPE is zero) always have the proper types for args,
                   1111:    so we can pass the FP value just in one register.  emit_library_function
                   1112:    doesn't support EXPR_LIST anyway.  */
                   1113: 
1.1.1.4 ! root     1114: #define FUNCTION_ARG(CUM, MODE, TYPE, NAMED) \
        !          1115:   function_arg (&CUM, MODE, TYPE, NAMED)
1.1       root     1116: 
                   1117: /* For an arg passed partly in registers and partly in memory,
                   1118:    this is the number of registers used.
                   1119:    For args passed entirely in registers or entirely in memory, zero.  */
                   1120: 
1.1.1.4 ! root     1121: #define FUNCTION_ARG_PARTIAL_NREGS(CUM, MODE, TYPE, NAMED) \
        !          1122:   function_arg_partial_nregs (&CUM, MODE, TYPE, NAMED)
        !          1123: 
        !          1124: /* A C expression that indicates when an argument must be passed by
        !          1125:    reference.  If nonzero for an argument, a copy of that argument is
        !          1126:    made in memory and a pointer to the argument is passed instead of
        !          1127:    the argument itself.  The pointer is passed in whatever way is
        !          1128:    appropriate for passing a pointer to that type. */
        !          1129: 
        !          1130: #define FUNCTION_ARG_PASS_BY_REFERENCE(CUM, MODE, TYPE, NAMED) \
        !          1131:   function_arg_pass_by_reference(&CUM, MODE, TYPE, NAMED)
1.1       root     1132: 
                   1133: /* Perform any needed actions needed for a function that is receiving a
                   1134:    variable number of arguments. 
                   1135: 
                   1136:    CUM is as above.
                   1137: 
                   1138:    MODE and TYPE are the mode and type of the current parameter.
                   1139: 
                   1140:    PRETEND_SIZE is a variable that should be set to the amount of stack
                   1141:    that must be pushed by the prolog to pretend that our caller pushed
                   1142:    it.
                   1143: 
                   1144:    Normally, this macro will push all remaining incoming registers on the
                   1145:    stack and set PRETEND_SIZE to the length of the registers pushed.  */
                   1146: 
1.1.1.4 ! root     1147: #define SETUP_INCOMING_VARARGS(CUM,MODE,TYPE,PRETEND_SIZE,NO_RTL) \
        !          1148:   setup_incoming_varargs (&CUM, MODE, TYPE, &PRETEND_SIZE, NO_RTL)
        !          1149: 
        !          1150: /* If defined, is a C expression that produces the machine-specific
        !          1151:    code for a call to `__builtin_saveregs'.  This code will be moved
        !          1152:    to the very beginning of the function, before any parameter access
        !          1153:    are made.  The return value of this function should be an RTX that
        !          1154:    contains the value to use as the return of `__builtin_saveregs'.
        !          1155: 
        !          1156:    The argument ARGS is a `tree_list' containing the arguments that
        !          1157:    were passed to `__builtin_saveregs'.
        !          1158: 
        !          1159:    If this macro is not defined, the compiler will output an ordinary
        !          1160:    call to the library function `__builtin_saveregs'.  */
        !          1161: 
        !          1162: #define EXPAND_BUILTIN_SAVEREGS(ARGS) \
        !          1163:   expand_builtin_saveregs (ARGS)
1.1       root     1164: 
                   1165: /* This macro generates the assembly code for function entry.
                   1166:    FILE is a stdio stream to output the code to.
                   1167:    SIZE is an int: how many units of temporary storage to allocate.
                   1168:    Refer to the array `regs_ever_live' to determine which registers
                   1169:    to save; `regs_ever_live[I]' is nonzero if register number I
                   1170:    is ever used in the function.  This macro is responsible for
                   1171:    knowing which registers should not be saved even if used.  */
                   1172: 
                   1173: #define FUNCTION_PROLOGUE(FILE, SIZE) output_prolog (FILE, SIZE)
                   1174: 
                   1175: /* Output assembler code to FILE to increment profiler label # LABELNO
                   1176:    for profiling a function entry.  */
                   1177: 
                   1178: #define FUNCTION_PROFILER(FILE, LABELNO)       \
                   1179:   output_function_profiler ((FILE), (LABELNO));
                   1180: 
                   1181: /* EXIT_IGNORE_STACK should be nonzero if, when returning from a function,
                   1182:    the stack pointer does not matter. No definition is equivalent to
                   1183:    always zero.
                   1184: 
                   1185:    On the RS/6000, this is non-zero because we can restore the stack from
                   1186:    its backpointer, which we maintain.  */
                   1187: #define EXIT_IGNORE_STACK      1
                   1188: 
                   1189: /* This macro generates the assembly code for function exit,
                   1190:    on machines that need it.  If FUNCTION_EPILOGUE is not defined
                   1191:    then individual return instructions are generated for each
                   1192:    return statement.  Args are same as for FUNCTION_PROLOGUE.
                   1193: 
                   1194:    The function epilogue should not depend on the current stack pointer!
                   1195:    It should use the frame pointer only.  This is mandatory because
                   1196:    of alloca; we also take advantage of it to omit stack adjustments
                   1197:    before returning.  */
                   1198: 
                   1199: #define FUNCTION_EPILOGUE(FILE, SIZE) output_epilog (FILE, SIZE)
                   1200: 
                   1201: /* Output assembler code for a block containing the constant parts
                   1202:    of a trampoline, leaving space for the variable parts.
                   1203: 
                   1204:    The trampoline should set the static chain pointer to value placed
                   1205:    into the trampoline and should branch to the specified routine.
                   1206: 
                   1207:    On the RS/6000, this is not code at all, but merely a data area,
                   1208:    since that is the way all functions are called.  The first word is
                   1209:    the address of the function, the second word is the TOC pointer (r2),
                   1210:    and the third word is the static chain value.  */
                   1211: 
                   1212: #define TRAMPOLINE_TEMPLATE(FILE) { fprintf (FILE, "\t.long 0, 0, 0\n"); }
                   1213: 
                   1214: /* Length in units of the trampoline for entering a nested function.  */
                   1215: 
                   1216: #define TRAMPOLINE_SIZE    12
                   1217: 
                   1218: /* Emit RTL insns to initialize the variable parts of a trampoline.
                   1219:    FNADDR is an RTX for the address of the function's pure code.
                   1220:    CXT is an RTX for the static chain value for the function.  */
                   1221: 
                   1222: #define INITIALIZE_TRAMPOLINE(ADDR, FNADDR, CXT)               \
                   1223: {                                                              \
                   1224:   emit_move_insn (gen_rtx (MEM, SImode,                                \
                   1225:                           memory_address (SImode, (ADDR))),    \
                   1226:                  gen_rtx (MEM, SImode,                         \
                   1227:                           memory_address (SImode, (FNADDR)))); \
                   1228:   emit_move_insn (gen_rtx (MEM, SImode,                                \
                   1229:                           memory_address (SImode,              \
                   1230:                                           plus_constant ((ADDR), 4))), \
                   1231:                  gen_rtx (MEM, SImode,                         \
                   1232:                           memory_address (SImode,              \
                   1233:                                           plus_constant ((FNADDR), 4)))); \
                   1234:   emit_move_insn (gen_rtx (MEM, SImode,                                \
                   1235:                           memory_address (SImode,              \
                   1236:                                           plus_constant ((ADDR), 8))), \
                   1237:                  force_reg (SImode, (CXT)));                   \
                   1238: }
                   1239: 
1.1.1.4 ! root     1240: /* Definitions for __builtin_return_address and __builtin_frame_address.
        !          1241:    __builtin_return_address (0) should give link register (65), enable
        !          1242:    this. */
        !          1243: /* This should be uncommented, so that the link register is used, but
        !          1244:    currently this would result in unmatched insns and spilling fixed
        !          1245:    registers so we'll leave it for another day.  When these problems are
        !          1246:    taken care of one additional fetch will be necessary in RETURN_ADDR_RTX.
        !          1247:    (mrs) */
        !          1248: /* #define RETURN_ADDR_IN_PREVIOUS_FRAME */
        !          1249: 
        !          1250: /* Number of bytes into the frame return addresses can be found.  */
        !          1251: #ifndef TARGET_V4_CALLS
        !          1252: #define RETURN_ADDRESS_OFFSET 8
        !          1253: #else
        !          1254: #define RETURN_ADDRESS_OFFSET \
        !          1255:  ((TARGET_V4_CALLS) ?  (TARGET_64BIT ? 8 : 4) : 8)
        !          1256: #endif
        !          1257: 
        !          1258: /* The current return address is in link register (65).  The return address
        !          1259:    of anything farther back is accessed normally at an offset of 8 from the
        !          1260:    frame pointer.  */
        !          1261: #define RETURN_ADDR_RTX(count, frame)                  \
        !          1262:   ((count == -1)                                       \
        !          1263:    ? gen_rtx (REG, Pmode, 65)                          \
        !          1264:    : gen_rtx (MEM, Pmode,                              \
        !          1265:              memory_address (Pmode,                    \
        !          1266:                              plus_constant (copy_to_reg (gen_rtx (MEM, Pmode, \
        !          1267:                                                                   memory_address (Pmode, frame))), \
        !          1268:                                             RETURN_ADDRESS_OFFSET))))
        !          1269: 
1.1       root     1270: /* Definitions for register eliminations.
                   1271: 
                   1272:    We have two registers that can be eliminated on the RS/6000.  First, the
                   1273:    frame pointer register can often be eliminated in favor of the stack
                   1274:    pointer register.  Secondly, the argument pointer register can always be
1.1.1.2   root     1275:    eliminated; it is replaced with either the stack or frame pointer.
                   1276: 
                   1277:    In addition, we use the elimination mechanism to see if r30 is needed
                   1278:    Initially we assume that it isn't.  If it is, we spill it.  This is done
                   1279:    by making it an eliminable register.  We replace it with itself so that
                   1280:    if it isn't needed, then existing uses won't be modified.  */
1.1       root     1281: 
                   1282: /* This is an array of structures.  Each structure initializes one pair
                   1283:    of eliminable registers.  The "from" register number is given first,
                   1284:    followed by "to".  Eliminations of the same "from" register are listed
                   1285:    in order of preference.  */
                   1286: #define ELIMINABLE_REGS                                \
                   1287: {{ FRAME_POINTER_REGNUM, STACK_POINTER_REGNUM},        \
                   1288:  { ARG_POINTER_REGNUM, STACK_POINTER_REGNUM},  \
1.1.1.2   root     1289:  { ARG_POINTER_REGNUM, FRAME_POINTER_REGNUM},  \
                   1290:  { 30, 30} }
1.1       root     1291: 
                   1292: /* Given FROM and TO register numbers, say whether this elimination is allowed.
                   1293:    Frame pointer elimination is automatically handled.
                   1294: 
                   1295:    For the RS/6000, if frame pointer elimination is being done, we would like
1.1.1.2   root     1296:    to convert ap into fp, not sp.
                   1297: 
1.1.1.4 ! root     1298:    We need r30 if -mminimal-toc was specified, and there are constant pool
1.1.1.2   root     1299:    references.  */
1.1       root     1300: 
                   1301: #define CAN_ELIMINATE(FROM, TO)                                        \
                   1302:  ((FROM) == ARG_POINTER_REGNUM && (TO) == STACK_POINTER_REGNUM \
                   1303:   ? ! frame_pointer_needed                                     \
1.1.1.4 ! root     1304:   : (FROM) == 30 ? ! TARGET_MINIMAL_TOC || TARGET_NO_TOC || get_pool_size () == 0 \
1.1       root     1305:   : 1)
                   1306: 
                   1307: /* Define the offset between two registers, one to be eliminated, and the other
                   1308:    its replacement, at the start of a routine.  */
                   1309: #define INITIAL_ELIMINATION_OFFSET(FROM, TO, OFFSET)                   \
                   1310: {                                                                      \
1.1.1.4 ! root     1311:   rs6000_stack_t *info = rs6000_stack_info ();                         \
1.1       root     1312:                                                                        \
                   1313:  if ((FROM) == FRAME_POINTER_REGNUM && (TO) == STACK_POINTER_REGNUM)   \
1.1.1.4 ! root     1314:    (OFFSET) = (info->push_p) ? 0 : - info->total_size;                 \
        !          1315:  else if ((FROM) == ARG_POINTER_REGNUM && (TO) == FRAME_POINTER_REGNUM)        \
        !          1316:    (OFFSET) = info->total_size;                                                \
        !          1317:  else if ((FROM) == ARG_POINTER_REGNUM && (TO) == STACK_POINTER_REGNUM)        \
        !          1318:    (OFFSET) = (info->push_p) ? info->total_size : 0;                   \
1.1.1.2   root     1319:   else if ((FROM) == 30)                                               \
                   1320:     (OFFSET) = 0;                                                      \
1.1       root     1321:   else                                                                 \
                   1322:     abort ();                                                          \
                   1323: }
                   1324: 
                   1325: /* Addressing modes, and classification of registers for them.  */
                   1326: 
                   1327: /* #define HAVE_POST_INCREMENT */
                   1328: /* #define HAVE_POST_DECREMENT */
                   1329: 
                   1330: #define HAVE_PRE_DECREMENT
                   1331: #define HAVE_PRE_INCREMENT
                   1332: 
                   1333: /* Macros to check register numbers against specific register classes.  */
                   1334: 
                   1335: /* These assume that REGNO is a hard or pseudo reg number.
                   1336:    They give nonzero only if REGNO is a hard reg of the suitable class
                   1337:    or a pseudo reg currently allocated to a suitable hard reg.
                   1338:    Since they use reg_renumber, they are safe only once reg_renumber
                   1339:    has been allocated, which happens in local-alloc.c.  */
                   1340: 
                   1341: #define REGNO_OK_FOR_INDEX_P(REGNO)                            \
                   1342: ((REGNO) < FIRST_PSEUDO_REGISTER                               \
                   1343:  ? (REGNO) <= 31 || (REGNO) == 67                              \
                   1344:  : (reg_renumber[REGNO] >= 0                                   \
                   1345:     && (reg_renumber[REGNO] <= 31 || reg_renumber[REGNO] == 67)))
                   1346: 
                   1347: #define REGNO_OK_FOR_BASE_P(REGNO)                             \
                   1348: ((REGNO) < FIRST_PSEUDO_REGISTER                               \
                   1349:  ? ((REGNO) > 0 && (REGNO) <= 31) || (REGNO) == 67             \
                   1350:  : (reg_renumber[REGNO] > 0                                    \
                   1351:     && (reg_renumber[REGNO] <= 31 || reg_renumber[REGNO] == 67)))
                   1352: 
                   1353: /* Maximum number of registers that can appear in a valid memory address.  */
                   1354: 
                   1355: #define MAX_REGS_PER_ADDRESS 2
                   1356: 
                   1357: /* Recognize any constant value that is a valid address.  */
                   1358: 
                   1359: #define CONSTANT_ADDRESS_P(X)   \
                   1360:   (GET_CODE (X) == LABEL_REF || GET_CODE (X) == SYMBOL_REF             \
                   1361:    || GET_CODE (X) == CONST_INT || GET_CODE (X) == CONST               \
                   1362:    || GET_CODE (X) == HIGH)
                   1363: 
                   1364: /* Nonzero if the constant value X is a legitimate general operand.
                   1365:    It is given that X satisfies CONSTANT_P or is a CONST_DOUBLE.
                   1366: 
                   1367:    On the RS/6000, all integer constants are acceptable, most won't be valid
                   1368:    for particular insns, though.  Only easy FP constants are
                   1369:    acceptable.  */
                   1370: 
                   1371: #define LEGITIMATE_CONSTANT_P(X)                               \
                   1372:   (GET_CODE (X) != CONST_DOUBLE || GET_MODE (X) == VOIDmode    \
                   1373:    || easy_fp_constant (X, GET_MODE (X)))
                   1374: 
                   1375: /* The macros REG_OK_FOR..._P assume that the arg is a REG rtx
                   1376:    and check its validity for a certain class.
                   1377:    We have two alternate definitions for each of them.
                   1378:    The usual definition accepts all pseudo regs; the other rejects
                   1379:    them unless they have been allocated suitable hard regs.
                   1380:    The symbol REG_OK_STRICT causes the latter definition to be used.
                   1381: 
                   1382:    Most source files want to accept pseudo regs in the hope that
                   1383:    they will get allocated to the class that the insn wants them to be in.
                   1384:    Source files for reload pass need to be strict.
                   1385:    After reload, it makes no difference, since pseudo regs have
                   1386:    been eliminated by then.  */
                   1387: 
                   1388: #ifndef REG_OK_STRICT
                   1389: 
                   1390: /* Nonzero if X is a hard reg that can be used as an index
                   1391:    or if it is a pseudo reg.  */
                   1392: #define REG_OK_FOR_INDEX_P(X)                  \
                   1393:   (REGNO (X) <= 31 || REGNO (X) == 67 || REGNO (X) >= FIRST_PSEUDO_REGISTER)
                   1394: 
                   1395: /* Nonzero if X is a hard reg that can be used as a base reg
                   1396:    or if it is a pseudo reg.  */
                   1397: #define REG_OK_FOR_BASE_P(X)                                    \
                   1398:   (REGNO (X) > 0 && REG_OK_FOR_INDEX_P (X))
                   1399: 
                   1400: #else
                   1401: 
                   1402: /* Nonzero if X is a hard reg that can be used as an index.  */
                   1403: #define REG_OK_FOR_INDEX_P(X) REGNO_OK_FOR_INDEX_P (REGNO (X))
                   1404: /* Nonzero if X is a hard reg that can be used as a base reg.  */
                   1405: #define REG_OK_FOR_BASE_P(X) REGNO_OK_FOR_BASE_P (REGNO (X))
                   1406: 
                   1407: #endif
                   1408: 
                   1409: /* GO_IF_LEGITIMATE_ADDRESS recognizes an RTL expression
                   1410:    that is a valid memory address for an instruction.
                   1411:    The MODE argument is the machine mode for the MEM expression
                   1412:    that wants to use this address.
                   1413: 
                   1414:    On the RS/6000, there are four valid address: a SYMBOL_REF that
                   1415:    refers to a constant pool entry of an address (or the sum of it
                   1416:    plus a constant), a short (16-bit signed) constant plus a register,
                   1417:    the sum of two registers, or a register indirect, possibly with an
                   1418:    auto-increment.  For DFmode and DImode with an constant plus register,
                   1419:    we must ensure that both words are addressable.  */
                   1420: 
                   1421: #define LEGITIMATE_CONSTANT_POOL_BASE_P(X)                             \
1.1.1.4 ! root     1422:   (TARGET_TOC && GET_CODE (X) == SYMBOL_REF                            \
        !          1423:    && CONSTANT_POOL_ADDRESS_P (X)                                      \
1.1       root     1424:    && ASM_OUTPUT_SPECIAL_POOL_ENTRY_P (get_pool_constant (X)))
                   1425: 
                   1426: #define LEGITIMATE_CONSTANT_POOL_ADDRESS_P(X)                          \
                   1427:   (LEGITIMATE_CONSTANT_POOL_BASE_P (X)                                 \
1.1.1.4 ! root     1428:    || (TARGET_TOC                                                      \
        !          1429:        && GET_CODE (X) == CONST && GET_CODE (XEXP (X, 0)) == PLUS      \
1.1       root     1430:        && GET_CODE (XEXP (XEXP (X, 0), 1)) == CONST_INT                        \
                   1431:        && LEGITIMATE_CONSTANT_POOL_BASE_P (XEXP (XEXP (X, 0), 0))))
                   1432: 
                   1433: #define LEGITIMATE_ADDRESS_INTEGER_P(X,OFFSET)                         \
                   1434:  (GET_CODE (X) == CONST_INT                                            \
                   1435:   && (unsigned) (INTVAL (X) + (OFFSET) + 0x8000) < 0x10000)
                   1436: 
                   1437: #define LEGITIMATE_OFFSET_ADDRESS_P(MODE,X)            \
                   1438:  (GET_CODE (X) == PLUS                                 \
                   1439:   && GET_CODE (XEXP (X, 0)) == REG                     \
                   1440:   && REG_OK_FOR_BASE_P (XEXP (X, 0))                   \
                   1441:   && LEGITIMATE_ADDRESS_INTEGER_P (XEXP (X, 1), 0)     \
                   1442:   && (((MODE) != DFmode && (MODE) != DImode)           \
                   1443:       || LEGITIMATE_ADDRESS_INTEGER_P (XEXP (X, 1), 4)))
                   1444: 
                   1445: #define LEGITIMATE_INDEXED_ADDRESS_P(X)                \
                   1446:  (GET_CODE (X) == PLUS                         \
                   1447:   && GET_CODE (XEXP (X, 0)) == REG             \
                   1448:   && GET_CODE (XEXP (X, 1)) == REG             \
                   1449:   && ((REG_OK_FOR_BASE_P (XEXP (X, 0))         \
                   1450:        && REG_OK_FOR_INDEX_P (XEXP (X, 1)))    \
                   1451:       || (REG_OK_FOR_BASE_P (XEXP (X, 1))      \
                   1452:          && REG_OK_FOR_INDEX_P (XEXP (X, 0)))))
                   1453: 
                   1454: #define LEGITIMATE_INDIRECT_ADDRESS_P(X)       \
                   1455:   (GET_CODE (X) == REG && REG_OK_FOR_BASE_P (X))
                   1456: 
1.1.1.4 ! root     1457: #define LEGITIMATE_LO_SUM_ADDRESS_P(MODE, X)           \
        !          1458:   (TARGET_ELF                                          \
        !          1459:    && (MODE) != DImode                                 \
        !          1460:    && (MODE) != TImode                                 \
        !          1461:    && (TARGET_HARD_FLOAT || (MODE) != DFmode)          \
        !          1462:    && GET_CODE (X) == LO_SUM                           \
        !          1463:    && GET_CODE (XEXP (X, 0)) == REG                    \
        !          1464:    && REG_OK_FOR_BASE_P (XEXP (X, 0))                  \
        !          1465:    && CONSTANT_P (XEXP (X, 1)))
        !          1466: 
1.1       root     1467: #define GO_IF_LEGITIMATE_ADDRESS(MODE, X, ADDR)                \
                   1468: { if (LEGITIMATE_INDIRECT_ADDRESS_P (X))               \
                   1469:     goto ADDR;                                         \
                   1470:   if (GET_CODE (X) == PRE_INC                          \
                   1471:       && LEGITIMATE_INDIRECT_ADDRESS_P (XEXP (X, 0)))  \
                   1472:     goto ADDR;                                         \
                   1473:   if (GET_CODE (X) == PRE_DEC                          \
                   1474:       && LEGITIMATE_INDIRECT_ADDRESS_P (XEXP (X, 0)))  \
                   1475:     goto ADDR;                                         \
                   1476:   if (LEGITIMATE_CONSTANT_POOL_ADDRESS_P (X))          \
                   1477:     goto ADDR;                                         \
                   1478:   if (LEGITIMATE_OFFSET_ADDRESS_P (MODE, X))           \
                   1479:     goto ADDR;                                         \
                   1480:   if ((MODE) != DImode && (MODE) != TImode             \
1.1.1.4 ! root     1481:       && (TARGET_HARD_FLOAT || (MODE) != DFmode)       \
1.1       root     1482:       && LEGITIMATE_INDEXED_ADDRESS_P (X))             \
                   1483:     goto ADDR;                                         \
1.1.1.4 ! root     1484:   if (LEGITIMATE_LO_SUM_ADDRESS_P (MODE, X))           \
        !          1485:     goto ADDR;                                         \
1.1       root     1486: }
                   1487: 
                   1488: /* Try machine-dependent ways of modifying an illegitimate address
                   1489:    to be legitimate.  If we find one, return the new, valid address.
                   1490:    This macro is used in only one place: `memory_address' in explow.c.
                   1491: 
                   1492:    OLDX is the address as it was before break_out_memory_refs was called.
                   1493:    In some cases it is useful to look at this to decide what needs to be done.
                   1494: 
                   1495:    MODE and WIN are passed so that this macro can use
                   1496:    GO_IF_LEGITIMATE_ADDRESS.
                   1497: 
                   1498:    It is always safe for this macro to do nothing.  It exists to recognize
                   1499:    opportunities to optimize the output.
                   1500: 
                   1501:    On RS/6000, first check for the sum of a register with a constant
                   1502:    integer that is out of range.  If so, generate code to add the
                   1503:    constant with the low-order 16 bits masked to the register and force
                   1504:    this result into another register (this can be done with `cau').
                   1505:    Then generate an address of REG+(CONST&0xffff), allowing for the 
                   1506:    possibility of bit 16 being a one.
                   1507: 
                   1508:    Then check for the sum of a register and something not constant, try to
                   1509:    load the other things into a register and return the sum.  */
                   1510: 
1.1.1.4 ! root     1511: #define LEGITIMIZE_ADDRESS(X,OLDX,MODE,WIN)                            \
        !          1512: { if (GET_CODE (X) == PLUS && GET_CODE (XEXP (X, 0)) == REG            \
        !          1513:     && GET_CODE (XEXP (X, 1)) == CONST_INT                             \
        !          1514:     && (unsigned) (INTVAL (XEXP (X, 1)) + 0x8000) >= 0x10000)          \
        !          1515:     { int high_int, low_int;                                           \
        !          1516:       high_int = INTVAL (XEXP (X, 1)) >> 16;                           \
        !          1517:       low_int = INTVAL (XEXP (X, 1)) & 0xffff;                         \
        !          1518:       if (low_int & 0x8000)                                            \
        !          1519:        high_int += 1, low_int |= 0xffff0000;                           \
        !          1520:       (X) = gen_rtx (PLUS, SImode,                                     \
        !          1521:                     force_operand                                      \
        !          1522:                        (gen_rtx (PLUS, SImode, XEXP (X, 0),            \
        !          1523:                                  gen_rtx (CONST_INT, VOIDmode,         \
        !          1524:                                                      high_int << 16)), 0), \
        !          1525:                     gen_rtx (CONST_INT, VOIDmode, low_int));           \
        !          1526:       goto WIN;                                                                \
        !          1527:     }                                                                  \
        !          1528:   else if (GET_CODE (X) == PLUS && GET_CODE (XEXP (X, 0)) == REG       \
        !          1529:           && GET_CODE (XEXP (X, 1)) != CONST_INT                       \
        !          1530:           && (TARGET_HARD_FLOAT || (MODE) != DFmode)                   \
        !          1531:           && (MODE) != DImode && (MODE) != TImode)                     \
        !          1532:     {                                                                  \
        !          1533:       (X) = gen_rtx (PLUS, SImode, XEXP (X, 0),                                \
1.1       root     1534:                     force_reg (SImode, force_operand (XEXP (X, 1), 0))); \
1.1.1.4 ! root     1535:       goto WIN;                                                                \
        !          1536:     }                                                                  \
        !          1537:   else if (TARGET_ELF && !TARGET_64BIT && TARGET_NO_TOC                        \
        !          1538:           && GET_CODE (X) != CONST_INT                                 \
        !          1539:           && GET_CODE (X) != CONST_DOUBLE && CONSTANT_P (X)            \
        !          1540:           && (TARGET_HARD_FLOAT || (MODE) != DFmode)                   \
        !          1541:           && (MODE) != DImode && (MODE) != TImode)                     \
        !          1542:     {                                                                  \
        !          1543:       rtx reg = gen_reg_rtx (Pmode);                                   \
        !          1544:       emit_insn (gen_elf_high (reg, (X)));                             \
        !          1545:       (X) = gen_rtx (LO_SUM, Pmode, reg, (X));                         \
        !          1546:     }                                                                  \
1.1       root     1547: }
                   1548: 
                   1549: /* Go to LABEL if ADDR (a legitimate address expression)
                   1550:    has an effect that depends on the machine mode it is used for.
                   1551: 
                   1552:    On the RS/6000 this is true if the address is valid with a zero offset
                   1553:    but not with an offset of four (this means it cannot be used as an
                   1554:    address for DImode or DFmode) or is a pre-increment or decrement.  Since
                   1555:    we know it is valid, we just check for an address that is not valid with
                   1556:    an offset of four.  */
                   1557: 
                   1558: #define GO_IF_MODE_DEPENDENT_ADDRESS(ADDR,LABEL)               \
                   1559: { if (GET_CODE (ADDR) == PLUS                                  \
                   1560:       && LEGITIMATE_ADDRESS_INTEGER_P (XEXP (ADDR, 1), 0)      \
                   1561:       && ! LEGITIMATE_ADDRESS_INTEGER_P (XEXP (ADDR, 1), 4))   \
                   1562:     goto LABEL;                                                        \
                   1563:   if (GET_CODE (ADDR) == PRE_INC)                              \
                   1564:     goto LABEL;                                                        \
                   1565:   if (GET_CODE (ADDR) == PRE_DEC)                              \
                   1566:     goto LABEL;                                                        \
1.1.1.4 ! root     1567:   if (GET_CODE (ADDR) == LO_SUM)                               \
        !          1568:     goto LABEL;                                                        \
1.1       root     1569: }
                   1570: 
                   1571: /* Define this if some processing needs to be done immediately before
1.1.1.3   root     1572:    emitting code for an insn.  */
1.1       root     1573: 
                   1574: /* #define FINAL_PRESCAN_INSN(INSN,OPERANDS,NOPERANDS) */
                   1575: 
                   1576: /* Specify the machine mode that this machine uses
                   1577:    for the index in the tablejump instruction.  */
                   1578: #define CASE_VECTOR_MODE SImode
                   1579: 
                   1580: /* Define this if the tablejump instruction expects the table
                   1581:    to contain offsets from the address of the table.
                   1582:    Do not define this if the table should contain absolute addresses.  */
                   1583: #define CASE_VECTOR_PC_RELATIVE
                   1584: 
                   1585: /* Specify the tree operation to be used to convert reals to integers.  */
                   1586: #define IMPLICIT_FIX_EXPR FIX_ROUND_EXPR
                   1587: 
                   1588: /* This is the kind of divide that is easiest to do in the general case.  */
                   1589: #define EASY_DIV_EXPR TRUNC_DIV_EXPR
                   1590: 
                   1591: /* Define this as 1 if `char' should by default be signed; else as 0.  */
                   1592: #define DEFAULT_SIGNED_CHAR 0
                   1593: 
                   1594: /* This flag, if defined, says the same insns that convert to a signed fixnum
                   1595:    also convert validly to an unsigned one.  */
                   1596: 
                   1597: /* #define FIXUNS_TRUNC_LIKE_FIX_TRUNC */
                   1598: 
                   1599: /* Max number of bytes we can move from memory to memory
                   1600:    in one reasonably fast instruction.  */
1.1.1.4 ! root     1601: #define MOVE_MAX (TARGET_POWERPC64 ? 8 : 4)
        !          1602: #define MAX_MOVE_MAX 8
1.1       root     1603: 
                   1604: /* Nonzero if access to memory by bytes is no faster than for words.
                   1605:    Also non-zero if doing byte operations (specifically shifts) in registers
                   1606:    is undesirable.  */
                   1607: #define SLOW_BYTE_ACCESS 1
                   1608: 
1.1.1.2   root     1609: /* Define if operations between registers always perform the operation
                   1610:    on the full register even if a narrower mode is specified.  */
                   1611: #define WORD_REGISTER_OPERATIONS
                   1612: 
                   1613: /* Define if loading in MODE, an integral mode narrower than BITS_PER_WORD
                   1614:    will either zero-extend or sign-extend.  The value of this macro should
                   1615:    be the code that says which one of the two operations is implicitly
                   1616:    done, NIL if none.  */
                   1617: #define LOAD_EXTEND_OP(MODE) ZERO_EXTEND
1.1       root     1618: 
                   1619: /* Define if loading short immediate values into registers sign extends.  */
                   1620: #define SHORT_IMMEDIATES_SIGN_EXTEND
                   1621: 
                   1622: /* The RS/6000 uses the XCOFF format.  */
                   1623: 
                   1624: #define XCOFF_DEBUGGING_INFO
                   1625: 
                   1626: /* Define if the object format being used is COFF or a superset.  */
                   1627: #define OBJECT_FORMAT_COFF
                   1628: 
                   1629: /* Define the magic numbers that we recognize as COFF.  */
                   1630: 
                   1631: #define MY_ISCOFF(magic) \
                   1632:   ((magic) == U802WRMAGIC || (magic) == U802ROMAGIC || (magic) == U802TOCMAGIC)
                   1633: 
                   1634: /* This is the only version of nm that collect2 can work with.  */
                   1635: #define REAL_NM_FILE_NAME "/usr/ucb/nm"
                   1636: 
                   1637: /* We don't have GAS for the RS/6000 yet, so don't write out special
                   1638:    .stabs in cc1plus.  */
                   1639:    
                   1640: #define FASCIST_ASSEMBLER
1.1.1.4 ! root     1641: #define ASM_OUTPUT_CONSTRUCTOR(file, name)
        !          1642: #define ASM_OUTPUT_DESTRUCTOR(file, name)
1.1       root     1643: 
                   1644: /* Value is 1 if truncating an integer of INPREC bits to OUTPREC bits
                   1645:    is done just by pretending it is already truncated.  */
                   1646: #define TRULY_NOOP_TRUNCATION(OUTPREC, INPREC) 1
                   1647: 
                   1648: /* Specify the machine mode that pointers have.
                   1649:    After generation of rtl, the compiler makes no further distinction
                   1650:    between pointers and any other objects of this machine mode.  */
1.1.1.4 ! root     1651: #define Pmode (TARGET_64BIT ? DImode : SImode)
1.1       root     1652: 
                   1653: /* Mode of a function address in a call instruction (for indexing purposes).
                   1654: 
                   1655:    Doesn't matter on RS/6000.  */
1.1.1.4 ! root     1656: #define FUNCTION_MODE (TARGET_64BIT ? DImode : SImode)
1.1       root     1657: 
                   1658: /* Define this if addresses of constant functions
                   1659:    shouldn't be put through pseudo regs where they can be cse'd.
                   1660:    Desirable on machines where ordinary constants are expensive
                   1661:    but a CALL with constant address is cheap.  */
                   1662: #define NO_FUNCTION_CSE
                   1663: 
1.1.1.2   root     1664: /* Define this to be nonzero if shift instructions ignore all but the low-order
                   1665:    few bits.
                   1666: 
                   1667:    The sle and sre instructions which allow SHIFT_COUNT_TRUNCATED
                   1668:    have been dropped from the PowerPC architecture.  */
                   1669: 
1.1.1.4 ! root     1670: #define SHIFT_COUNT_TRUNCATED (TARGET_POWER ? 1 : 0)
1.1       root     1671: 
                   1672: /* Use atexit for static constructors/destructors, instead of defining
                   1673:    our own exit function.  */
                   1674: #define HAVE_ATEXIT
                   1675: 
                   1676: /* Compute the cost of computing a constant rtl expression RTX
                   1677:    whose rtx-code is CODE.  The body of this macro is a portion
                   1678:    of a switch statement.  If the code is computed here,
                   1679:    return it with a return statement.  Otherwise, break from the switch.
                   1680: 
1.1.1.4 ! root     1681:    On the RS/6000, if it is valid in the insn, it is free.  So this
1.1       root     1682:    always returns 0.  */
                   1683: 
1.1.1.4 ! root     1684: #define CONST_COSTS(RTX,CODE,OUTER_CODE)                       \
1.1       root     1685:   case CONST_INT:                                              \
                   1686:   case CONST:                                                  \
                   1687:   case LABEL_REF:                                              \
                   1688:   case SYMBOL_REF:                                             \
                   1689:   case CONST_DOUBLE:                                           \
1.1.1.4 ! root     1690:   case HIGH:                                                   \
1.1       root     1691:     return 0;
                   1692: 
                   1693: /* Provide the costs of a rtl expression.  This is in the body of a
                   1694:    switch on CODE.  */
                   1695: 
                   1696: #define RTX_COSTS(X,CODE,OUTER_CODE)                   \
                   1697:   case MULT:                                           \
1.1.1.3   root     1698:   switch (rs6000_cpu)                                  \
                   1699:     {                                                  \
                   1700:     case PROCESSOR_RIOS1:                              \
                   1701:       return (GET_CODE (XEXP (X, 1)) != CONST_INT      \
                   1702:              ? COSTS_N_INSNS (5)                       \
                   1703:              : INTVAL (XEXP (X, 1)) >= -256 && INTVAL (XEXP (X, 1)) <= 255 \
                   1704:              ? COSTS_N_INSNS (3) : COSTS_N_INSNS (4)); \
                   1705:     case PROCESSOR_RIOS2:                              \
                   1706:       return COSTS_N_INSNS (2);                                \
                   1707:     case PROCESSOR_PPC601:                             \
                   1708:     case PROCESSOR_PPC603:                             \
                   1709:       return COSTS_N_INSNS (5);                                \
1.1.1.4 ! root     1710:     case PROCESSOR_PPC403:                             \
1.1.1.3   root     1711:     case PROCESSOR_PPC604:                             \
                   1712:     case PROCESSOR_PPC620:                             \
                   1713:       return COSTS_N_INSNS (4);                                \
                   1714:     }                                                  \
1.1       root     1715:   case DIV:                                            \
                   1716:   case MOD:                                            \
                   1717:     if (GET_CODE (XEXP (X, 1)) == CONST_INT            \
                   1718:        && exact_log2 (INTVAL (XEXP (X, 1))) >= 0)      \
                   1719:       return COSTS_N_INSNS (2);                                \
                   1720:     /* otherwise fall through to normal divide.  */    \
                   1721:   case UDIV:                                           \
                   1722:   case UMOD:                                           \
1.1.1.3   root     1723:   switch (rs6000_cpu)                                  \
                   1724:     {                                                  \
                   1725:     case PROCESSOR_RIOS1:                              \
                   1726:       return COSTS_N_INSNS (19);                       \
                   1727:     case PROCESSOR_RIOS2:                              \
                   1728:       return COSTS_N_INSNS (13);                       \
1.1.1.4 ! root     1729:     case PROCESSOR_PPC403:                             \
        !          1730:       return COSTS_N_INSNS (33);                       \
1.1.1.3   root     1731:     case PROCESSOR_PPC601:                             \
                   1732:       return COSTS_N_INSNS (36);                       \
                   1733:     case PROCESSOR_PPC603:                             \
                   1734:       return COSTS_N_INSNS (37);                       \
                   1735:     case PROCESSOR_PPC604:                             \
                   1736:     case PROCESSOR_PPC620:                             \
                   1737:       return COSTS_N_INSNS (20);                       \
                   1738:     }                                                  \
1.1.1.4 ! root     1739:   case FFS:                                            \
        !          1740:     return COSTS_N_INSNS (4);                          \
1.1       root     1741:   case MEM:                                            \
                   1742:     /* MEM should be slightly more expensive than (plus (reg) (const)) */ \
                   1743:     return 5;
                   1744: 
                   1745: /* Compute the cost of an address.  This is meant to approximate the size
                   1746:    and/or execution delay of an insn using that address.  If the cost is
                   1747:    approximated by the RTL complexity, including CONST_COSTS above, as
                   1748:    is usually the case for CISC machines, this macro should not be defined.
                   1749:    For aggressively RISCy machines, only one insn format is allowed, so
                   1750:    this macro should be a constant.  The value of this macro only matters
                   1751:    for valid addresses.
                   1752: 
                   1753:    For the RS/6000, everything is cost 0.  */
                   1754: 
                   1755: #define ADDRESS_COST(RTX) 0
                   1756: 
                   1757: /* Adjust the length of an INSN.  LENGTH is the currently-computed length and
                   1758:    should be adjusted to reflect any required changes.  This macro is used when
                   1759:    there is some systematic length adjustment required that would be difficult
                   1760:    to express in the length attribute.  */
                   1761: 
                   1762: /* #define ADJUST_INSN_LENGTH(X,LENGTH) */
                   1763: 
                   1764: /* Add any extra modes needed to represent the condition code.
                   1765: 
                   1766:    For the RS/6000, we need separate modes when unsigned (logical) comparisons
                   1767:    are being done and we need a separate mode for floating-point.  We also
                   1768:    use a mode for the case when we are comparing the results of two
                   1769:    comparisons.  */
                   1770: 
                   1771: #define EXTRA_CC_MODES CCUNSmode, CCFPmode, CCEQmode
                   1772: 
                   1773: /* Define the names for the modes specified above.  */
                   1774: #define EXTRA_CC_NAMES "CCUNS", "CCFP", "CCEQ"
                   1775: 
                   1776: /* Given a comparison code (EQ, NE, etc.) and the first operand of a COMPARE,
                   1777:    return the mode to be used for the comparison.  For floating-point, CCFPmode
                   1778:    should be used.  CCUNSmode should be used for unsigned comparisons.
                   1779:    CCEQmode should be used when we are doing an inequality comparison on
                   1780:    the result of a comparison. CCmode should be used in all other cases.  */
                   1781: 
                   1782: #define SELECT_CC_MODE(OP,X,Y) \
                   1783:   (GET_MODE_CLASS (GET_MODE (X)) == MODE_FLOAT ? CCFPmode      \
                   1784:    : (OP) == GTU || (OP) == LTU || (OP) == GEU || (OP) == LEU ? CCUNSmode \
                   1785:    : (((OP) == EQ || (OP) == NE) && GET_RTX_CLASS (GET_CODE (X)) == '<'   \
                   1786:       ? CCEQmode : CCmode))
                   1787: 
                   1788: /* Define the information needed to generate branch and scc insns.  This is
                   1789:    stored from the compare operation.  Note that we can't use "rtx" here
                   1790:    since it hasn't been defined!  */
                   1791: 
                   1792: extern struct rtx_def *rs6000_compare_op0, *rs6000_compare_op1;
                   1793: extern int rs6000_compare_fp_p;
                   1794: 
                   1795: /* Set to non-zero by "fix" operation to indicate that itrunc and
                   1796:    uitrunc must be defined.  */
                   1797: 
                   1798: extern int rs6000_trunc_used;
1.1.1.3   root     1799: 
                   1800: /* Function names to call to do floating point truncation.  */
                   1801: 
                   1802: #define RS6000_ITRUNC "itrunc"
                   1803: #define RS6000_UITRUNC "uitrunc"
1.1.1.4 ! root     1804: 
        !          1805: /* Prefix and suffix to use to saving floating point */
        !          1806: #ifndef SAVE_FP_PREFIX
        !          1807: #define        SAVE_FP_PREFIX "._savef"
        !          1808: #define SAVE_FP_SUFFIX ""
        !          1809: #endif
        !          1810: 
        !          1811: /* Prefix and suffix to use to restoring floating point */
        !          1812: #ifndef RESTORE_FP_PREFIX
        !          1813: #define        RESTORE_FP_PREFIX "._restf"
        !          1814: #define RESTORE_FP_SUFFIX ""
        !          1815: #endif
        !          1816: 
1.1       root     1817: 
                   1818: /* Control the assembler format that we output.  */
                   1819: 
1.1.1.4 ! root     1820: /* Common macro to output the options used to the asm file.  */
        !          1821: #define ASM_OUTPUT_OPTIONS(FILE)                                        \
        !          1822:   output_options (FILE,                                                         \
        !          1823:                  f_options, sizeof (f_options) / sizeof (f_options[0]), \
        !          1824:                  W_options, sizeof (W_options) / sizeof (W_options[0])) \
        !          1825: 
1.1       root     1826: /* Output at beginning of assembler file.
                   1827: 
                   1828:    Initialize the section names for the RS/6000 at this point.
                   1829: 
1.1.1.2   root     1830:    Specify filename to assembler.
                   1831: 
1.1       root     1832:    We want to go into the TOC section so at least one .toc will be emitted.
                   1833:    Also, in order to output proper .bs/.es pairs, we need at least one static
                   1834:    [RW] section emitted.
                   1835: 
                   1836:    We then switch back to text to force the gcc2_compiled. label and the space
                   1837:    allocated after it (when profiling) into the text section.  
                   1838: 
                   1839:    Finally, declare mcount when profiling to make the assembler happy.  */
                   1840: 
                   1841: #define ASM_FILE_START(FILE)                                   \
                   1842: {                                                              \
1.1.1.4 ! root     1843:   ASM_OUTPUT_OPTIONS (FILE);                                   \
1.1       root     1844:   rs6000_gen_section_name (&xcoff_bss_section_name,            \
                   1845:                           main_input_filename, ".bss_");       \
                   1846:   rs6000_gen_section_name (&xcoff_private_data_section_name,   \
                   1847:                           main_input_filename, ".rw_");        \
                   1848:   rs6000_gen_section_name (&xcoff_read_only_section_name,      \
                   1849:                           main_input_filename, ".ro_");        \
                   1850:                                                                \
1.1.1.2   root     1851:   output_file_directive (FILE, main_input_filename);           \
1.1       root     1852:   toc_section ();                                              \
                   1853:   if (write_symbols != NO_DEBUG)                               \
                   1854:     private_data_section ();                                   \
                   1855:   text_section ();                                             \
                   1856:   if (profile_flag)                                            \
                   1857:     fprintf (FILE, "\t.extern .mcount\n");                     \
                   1858: }
                   1859: 
                   1860: /* Output at end of assembler file.
                   1861: 
                   1862:    On the RS/6000, referencing data should automatically pull in text.  */
                   1863: 
                   1864: #define ASM_FILE_END(FILE)                                     \
                   1865: {                                                              \
                   1866:   text_section ();                                             \
                   1867:   fprintf (FILE, "_section_.text:\n");                         \
                   1868:   data_section ();                                             \
                   1869:   fprintf (FILE, "\t.long _section_.text\n");                  \
                   1870: }
                   1871: 
                   1872: /* We define this to prevent the name mangler from putting dollar signs into
                   1873:    function names.  */
                   1874: 
                   1875: #define NO_DOLLAR_IN_LABEL
                   1876: 
                   1877: /* We define this to 0 so that gcc will never accept a dollar sign in a
                   1878:    variable name.  This is needed because the AIX assembler will not accept
                   1879:    dollar signs.  */
                   1880: 
                   1881: #define DOLLARS_IN_IDENTIFIERS 0
                   1882: 
                   1883: /* Implicit library calls should use memcpy, not bcopy, etc.  */
                   1884: 
                   1885: #define TARGET_MEM_FUNCTIONS
                   1886: 
                   1887: /* Define the extra sections we need.  We define three: one is the read-only
                   1888:    data section which is used for constants.  This is a csect whose name is
                   1889:    derived from the name of the input file.  The second is for initialized
                   1890:    global variables.  This is a csect whose name is that of the variable.
                   1891:    The third is the TOC.  */
                   1892: 
                   1893: #define EXTRA_SECTIONS \
                   1894:    read_only_data, private_data, read_only_private_data, toc, bss
                   1895: 
                   1896: /* Define the name of our readonly data section.  */
                   1897: 
                   1898: #define READONLY_DATA_SECTION read_only_data_section
                   1899: 
1.1.1.2   root     1900: /* If we are referencing a function that is static or is known to be
                   1901:    in this file, make the SYMBOL_REF special.  We can use this to indicate
                   1902:    that we can branch to this function without emitting a no-op after the
                   1903:    call.  */
                   1904: 
                   1905: #define ENCODE_SECTION_INFO(DECL)  \
                   1906:   if (TREE_CODE (DECL) == FUNCTION_DECL                        \
                   1907:       && (TREE_ASM_WRITTEN (DECL) || ! TREE_PUBLIC (DECL))) \
                   1908:     SYMBOL_REF_FLAG (XEXP (DECL_RTL (DECL), 0)) = 1;
                   1909: 
1.1       root     1910: /* Indicate that jump tables go in the text section.  */
                   1911: 
                   1912: #define JUMP_TABLES_IN_TEXT_SECTION
                   1913: 
                   1914: /* Define the routines to implement these extra sections.  */
                   1915: 
                   1916: #define EXTRA_SECTION_FUNCTIONS                                \
                   1917:                                                        \
                   1918: void                                                   \
                   1919: read_only_data_section ()                              \
                   1920: {                                                      \
                   1921:   if (in_section != read_only_data)                    \
                   1922:     {                                                  \
                   1923:       fprintf (asm_out_file, ".csect %s[RO]\n",                \
                   1924:               xcoff_read_only_section_name);           \
                   1925:       in_section = read_only_data;                     \
                   1926:     }                                                  \
                   1927: }                                                      \
                   1928:                                                        \
                   1929: void                                                   \
                   1930: private_data_section ()                                        \
                   1931: {                                                      \
                   1932:   if (in_section != private_data)                      \
                   1933:     {                                                  \
                   1934:       fprintf (asm_out_file, ".csect %s[RW]\n",                \
                   1935:               xcoff_private_data_section_name);        \
                   1936:                                                        \
                   1937:       in_section = private_data;                       \
                   1938:     }                                                  \
                   1939: }                                                      \
                   1940:                                                        \
                   1941: void                                                   \
                   1942: read_only_private_data_section ()                      \
                   1943: {                                                      \
                   1944:   if (in_section != read_only_private_data)            \
                   1945:     {                                                  \
                   1946:       fprintf (asm_out_file, ".csect %s[RO]\n",                \
                   1947:               xcoff_private_data_section_name);        \
                   1948:       in_section = read_only_private_data;             \
                   1949:     }                                                  \
                   1950: }                                                      \
                   1951:                                                        \
                   1952: void                                                   \
                   1953: toc_section ()                                         \
                   1954: {                                                      \
1.1.1.2   root     1955:   if (TARGET_MINIMAL_TOC)                              \
                   1956:     {                                                  \
                   1957:       static int toc_initialized = 0;                  \
                   1958:                                                        \
                   1959:       /* toc_section is always called at least once from ASM_FILE_START, \
                   1960:         so this is guaranteed to always be defined once and only once   \
                   1961:         in each file.  */                                               \
                   1962:       if (! toc_initialized)                           \
                   1963:        {                                               \
                   1964:          fprintf (asm_out_file, ".toc\nLCTOC..0:\n");  \
                   1965:          fprintf (asm_out_file, "\t.tc toc_table[TC],toc_table[RW]\n"); \
                   1966:          toc_initialized = 1;                          \
                   1967:        }                                               \
1.1       root     1968:                                                        \
1.1.1.2   root     1969:       if (in_section != toc)                           \
                   1970:        fprintf (asm_out_file, ".csect toc_table[RW]\n"); \
                   1971:     }                                                  \
                   1972:   else                                                 \
                   1973:     {                                                  \
                   1974:       if (in_section != toc)                           \
                   1975:         fprintf (asm_out_file, ".toc\n");              \
                   1976:     }                                                  \
1.1       root     1977:   in_section = toc;                                    \
                   1978: }
                   1979: 
                   1980: /* This macro produces the initial definition of a function name.
                   1981:    On the RS/6000, we need to place an extra '.' in the function name and
                   1982:    output the function descriptor.  
                   1983: 
                   1984:    The csect for the function will have already been created by the
                   1985:    `text_section' call previously done.  We do have to go back to that
                   1986:    csect, however.  */
                   1987: 
                   1988: /* ??? What do the 16 and 044 in the .function line really mean?  */
                   1989: 
                   1990: #define ASM_DECLARE_FUNCTION_NAME(FILE,NAME,DECL)              \
                   1991: { if (TREE_PUBLIC (DECL))                                      \
                   1992:     {                                                          \
                   1993:       fprintf (FILE, "\t.globl .");                            \
                   1994:       RS6000_OUTPUT_BASENAME (FILE, NAME);                     \
                   1995:       fprintf (FILE, "\n");                                    \
                   1996:     }                                                          \
1.1.1.3   root     1997:   else                                                         \
1.1       root     1998:     {                                                          \
                   1999:       fprintf (FILE, "\t.lglobl .");                           \
                   2000:       RS6000_OUTPUT_BASENAME (FILE, NAME);                     \
                   2001:       fprintf (FILE, "\n");                                    \
                   2002:     }                                                          \
                   2003:   fprintf (FILE, ".csect ");                                   \
                   2004:   RS6000_OUTPUT_BASENAME (FILE, NAME);                         \
                   2005:   fprintf (FILE, "[DS]\n");                                    \
                   2006:   RS6000_OUTPUT_BASENAME (FILE, NAME);                         \
                   2007:   fprintf (FILE, ":\n");                                       \
                   2008:   fprintf (FILE, "\t.long .");                                 \
                   2009:   RS6000_OUTPUT_BASENAME (FILE, NAME);                         \
                   2010:   fprintf (FILE, ", TOC[tc0], 0\n");                           \
1.1.1.4 ! root     2011:   fprintf (FILE, ".csect .text[PR]\n.");                       \
1.1       root     2012:   RS6000_OUTPUT_BASENAME (FILE, NAME);                         \
                   2013:   fprintf (FILE, ":\n");                                       \
                   2014:   if (write_symbols == XCOFF_DEBUG)                            \
                   2015:     xcoffout_declare_function (FILE, DECL, NAME);              \
                   2016: }
                   2017: 
                   2018: /* Return non-zero if this entry is to be written into the constant pool
                   2019:    in a special way.  We do so if this is a SYMBOL_REF, LABEL_REF or a CONST
                   2020:    containing one of them.  If -mfp-in-toc (the default), we also do
                   2021:    this for floating-point constants.  We actually can only do this
                   2022:    if the FP formats of the target and host machines are the same, but
                   2023:    we can't check that since not every file that uses
                   2024:    GO_IF_LEGITIMATE_ADDRESS_P includes real.h.  */
                   2025: 
1.1.1.4 ! root     2026: #define ASM_OUTPUT_SPECIAL_POOL_ENTRY_P(X)                             \
        !          2027:   (TARGET_TOC                                                          \
        !          2028:    && (GET_CODE (X) == SYMBOL_REF                                      \
        !          2029:        || (GET_CODE (X) == CONST && GET_CODE (XEXP (X, 0)) == PLUS     \
        !          2030:           && GET_CODE (XEXP (XEXP (X, 0), 0)) == SYMBOL_REF)           \
        !          2031:        || GET_CODE (X) == LABEL_REF                                    \
        !          2032:        || (! (TARGET_NO_FP_IN_TOC && ! TARGET_MINIMAL_TOC)             \
        !          2033:           && GET_CODE (X) == CONST_DOUBLE                              \
        !          2034:           && GET_MODE_CLASS (GET_MODE (X)) == MODE_FLOAT               \
        !          2035:           && BITS_PER_WORD == HOST_BITS_PER_INT)))
1.1       root     2036: 
                   2037: /* Select section for constant in constant pool.
                   2038: 
                   2039:    On RS/6000, all constants are in the private read-only data area.
                   2040:    However, if this is being placed in the TOC it must be output as a
                   2041:    toc entry.  */
                   2042: 
                   2043: #define SELECT_RTX_SECTION(MODE, X)            \
                   2044: { if (ASM_OUTPUT_SPECIAL_POOL_ENTRY_P (X))     \
                   2045:     toc_section ();                            \
                   2046:   else                                         \
                   2047:     read_only_private_data_section ();         \
                   2048: }
                   2049: 
                   2050: /* Macro to output a special constant pool entry.  Go to WIN if we output
                   2051:    it.  Otherwise, it is written the usual way.
                   2052: 
                   2053:    On the RS/6000, toc entries are handled this way.  */
                   2054: 
                   2055: #define ASM_OUTPUT_SPECIAL_POOL_ENTRY(FILE, X, MODE, ALIGN, LABELNO, WIN)  \
                   2056: { if (ASM_OUTPUT_SPECIAL_POOL_ENTRY_P (X))     \
                   2057:     {                                          \
                   2058:       output_toc (FILE, X, LABELNO);           \
                   2059:       goto WIN;                                        \
                   2060:     }                                          \
                   2061: }
                   2062: 
                   2063: /* Select the section for an initialized data object.
                   2064: 
                   2065:    On the RS/6000, we have a special section for all variables except those
                   2066:    that are static.  */
                   2067: 
                   2068: #define SELECT_SECTION(EXP,RELOC)                      \
                   2069: {                                                      \
1.1.1.3   root     2070:   if ((TREE_CODE (EXP) == STRING_CST                   \
                   2071:        && !flag_writable_strings)                      \
1.1.1.4 ! root     2072:       || (TREE_CODE_CLASS (TREE_CODE (EXP)) == 'd'     \
        !          2073:          && TREE_READONLY (EXP) && ! TREE_THIS_VOLATILE (EXP) \
1.1.1.3   root     2074:          && DECL_INITIAL (EXP)                         \
                   2075:          && (DECL_INITIAL (EXP) == error_mark_node     \
                   2076:              || TREE_CONSTANT (DECL_INITIAL (EXP)))    \
                   2077:          && ! (RELOC)))                                \
1.1       root     2078:     {                                                  \
                   2079:       if (TREE_PUBLIC (EXP))                           \
                   2080:         read_only_data_section ();                     \
                   2081:       else                                             \
                   2082:         read_only_private_data_section ();             \
                   2083:     }                                                  \
                   2084:   else                                                 \
                   2085:     {                                                  \
                   2086:       if (TREE_PUBLIC (EXP))                           \
                   2087:         data_section ();                               \
                   2088:       else                                             \
                   2089:         private_data_section ();                       \
                   2090:     }                                                  \
                   2091: }
                   2092: 
                   2093: /* This outputs NAME to FILE up to the first null or '['.  */
                   2094: 
                   2095: #define RS6000_OUTPUT_BASENAME(FILE, NAME)     \
1.1.1.4 ! root     2096:   {                                            \
        !          2097:     char *_p;                                  \
1.1.1.3   root     2098:                                                \
1.1.1.4 ! root     2099:     STRIP_NAME_ENCODING (_p, (NAME));          \
        !          2100:     assemble_name ((FILE), _p);                        \
        !          2101:   }
        !          2102: 
        !          2103: /* Remove any trailing [DS] or the like from the symbol name.  */
        !          2104: 
        !          2105: #define STRIP_NAME_ENCODING(VAR,NAME)                                  \
        !          2106:   do                                                                   \
        !          2107:     {                                                                  \
        !          2108:       char *_name = (NAME);                                            \
        !          2109:       if (_name[0] == '*')                                             \
        !          2110:        (VAR) = _name+1;                                                \
        !          2111:       else                                                             \
        !          2112:        {                                                               \
        !          2113:          int _len = strlen (_name);                                    \
        !          2114:          if (_name[_len - 1] != ']')                                   \
        !          2115:            (VAR) = _name;                                              \
        !          2116:          else                                                          \
        !          2117:            {                                                           \
        !          2118:              (VAR) = (char *) alloca (_len + 1);                       \
        !          2119:              strcpy ((VAR), _name);                                    \
        !          2120:              (VAR)[_len - 4] = '\0';                                   \
        !          2121:            }                                                           \
        !          2122:        }                                                               \
        !          2123:     }                                                                  \
        !          2124:   while (0)
1.1       root     2125: 
                   2126: /* Output something to declare an external symbol to the assembler.  Most
                   2127:    assemblers don't need this.  
                   2128: 
                   2129:    If we haven't already, add "[RW]" (or "[DS]" for a function) to the
                   2130:    name.  Normally we write this out along with the name.  In the few cases
                   2131:    where we can't, it gets stripped off.  */
                   2132: 
                   2133: #define ASM_OUTPUT_EXTERNAL(FILE, DECL, NAME)  \
                   2134: { rtx _symref = XEXP (DECL_RTL (DECL), 0);     \
                   2135:   if ((TREE_CODE (DECL) == VAR_DECL            \
                   2136:        || TREE_CODE (DECL) == FUNCTION_DECL)   \
                   2137:       && (NAME)[0] != '*'                      \
                   2138:       && (NAME)[strlen (NAME) - 1] != ']')     \
                   2139:     {                                          \
                   2140:       char *_name = (char *) permalloc (strlen (XSTR (_symref, 0)) + 5); \
                   2141:       strcpy (_name, XSTR (_symref, 0));       \
                   2142:       strcat (_name, TREE_CODE (DECL) == FUNCTION_DECL ? "[DS]" : "[RW]"); \
                   2143:       XSTR (_symref, 0) = _name;               \
                   2144:     }                                          \
                   2145:   fprintf (FILE, "\t.extern ");                        \
                   2146:   assemble_name (FILE, XSTR (_symref, 0));     \
                   2147:   if (TREE_CODE (DECL) == FUNCTION_DECL)       \
                   2148:     {                                          \
                   2149:       fprintf (FILE, "\n\t.extern .");         \
                   2150:       RS6000_OUTPUT_BASENAME (FILE, XSTR (_symref, 0));        \
                   2151:     }                                          \
                   2152:   fprintf (FILE, "\n");                                \
                   2153: }
                   2154: 
                   2155: /* Similar, but for libcall.  We only have to worry about the function name,
                   2156:    not that of the descriptor. */
                   2157: 
                   2158: #define ASM_OUTPUT_EXTERNAL_LIBCALL(FILE, FUN) \
                   2159: { fprintf (FILE, "\t.extern .");               \
                   2160:   assemble_name (FILE, XSTR (FUN, 0));         \
                   2161:   fprintf (FILE, "\n");                                \
                   2162: }
                   2163: 
                   2164: /* Output to assembler file text saying following lines
                   2165:    may contain character constants, extra white space, comments, etc.  */
                   2166: 
                   2167: #define ASM_APP_ON ""
                   2168: 
                   2169: /* Output to assembler file text saying following lines
                   2170:    no longer contain unusual constructs.  */
                   2171: 
                   2172: #define ASM_APP_OFF ""
                   2173: 
                   2174: /* Output before instructions.  */
                   2175: 
1.1.1.2   root     2176: #define TEXT_SECTION_ASM_OP ".csect .text[PR]"
1.1       root     2177: 
                   2178: /* Output before writable data.  */
                   2179: 
                   2180: #define DATA_SECTION_ASM_OP ".csect .data[RW]"
                   2181: 
                   2182: /* How to refer to registers in assembler output.
                   2183:    This sequence is indexed by compiler's hard-register-number (see above).  */
                   2184: 
                   2185: #define REGISTER_NAMES \
                   2186:  {"0", "1", "2", "3", "4", "5", "6", "7",              \
                   2187:   "8", "9", "10", "11", "12", "13", "14", "15",                \
                   2188:   "16", "17", "18", "19", "20", "21", "22", "23",      \
                   2189:   "24", "25", "26", "27", "28", "29", "30", "31",      \
                   2190:   "0", "1", "2", "3", "4", "5", "6", "7",              \
                   2191:   "8", "9", "10", "11", "12", "13", "14", "15",                \
                   2192:   "16", "17", "18", "19", "20", "21", "22", "23",      \
                   2193:   "24", "25", "26", "27", "28", "29", "30", "31",      \
                   2194:   "mq", "lr", "ctr", "ap",                             \
                   2195:   "0", "1", "2", "3", "4", "5", "6", "7" }
                   2196: 
                   2197: /* Table of additional register names to use in user input.  */
                   2198: 
                   2199: #define ADDITIONAL_REGISTER_NAMES \
                   2200:  {"r0",    0, "r1",    1, "r2",    2, "r3",    3,      \
                   2201:   "r4",    4, "r5",    5, "r6",    6, "r7",    7,      \
                   2202:   "r8",    8, "r9",    9, "r10",  10, "r11",  11,      \
                   2203:   "r12",  12, "r13",  13, "r14",  14, "r15",  15,      \
                   2204:   "r16",  16, "r17",  17, "r18",  18, "r19",  19,      \
                   2205:   "r20",  20, "r21",  21, "r22",  22, "r23",  23,      \
                   2206:   "r24",  24, "r25",  25, "r26",  26, "r27",  27,      \
                   2207:   "r28",  28, "r29",  29, "r30",  30, "r31",  31,      \
                   2208:   "fr0",  32, "fr1",  33, "fr2",  34, "fr3",  35,      \
                   2209:   "fr4",  36, "fr5",  37, "fr6",  38, "fr7",  39,      \
                   2210:   "fr8",  40, "fr9",  41, "fr10", 42, "fr11", 43,      \
                   2211:   "fr12", 44, "fr13", 45, "fr14", 46, "fr15", 47,      \
                   2212:   "fr16", 48, "fr17", 49, "fr18", 50, "fr19", 51,      \
                   2213:   "fr20", 52, "fr21", 53, "fr22", 54, "fr23", 55,      \
                   2214:   "fr24", 56, "fr25", 57, "fr26", 58, "fr27", 59,      \
                   2215:   "fr28", 60, "fr29", 61, "fr30", 62, "fr31", 63,      \
                   2216:   /* no additional names for: mq, lr, ctr, ap */       \
                   2217:   "cr0",  68, "cr1",  69, "cr2",  70, "cr3",  71,      \
                   2218:   "cr4",  72, "cr5",  73, "cr6",  74, "cr7",  75,      \
                   2219:   "cc",   68 }
                   2220: 
                   2221: /* How to renumber registers for dbx and gdb.  */
                   2222: 
                   2223: #define DBX_REGISTER_NUMBER(REGNO) (REGNO)
                   2224: 
1.1.1.2   root     2225: /* Text to write out after a CALL that may be replaced by glue code by
                   2226:    the loader.  This depends on the AIX version.  */
                   2227: #define RS6000_CALL_GLUE "cror 31,31,31"
                   2228: 
1.1       root     2229: /* This is how to output the definition of a user-level label named NAME,
                   2230:    such as the label on a static function or variable NAME.  */
                   2231: 
                   2232: #define ASM_OUTPUT_LABEL(FILE,NAME)    \
                   2233:   do { RS6000_OUTPUT_BASENAME (FILE, NAME); fputs (":\n", FILE); } while (0)
                   2234: 
                   2235: /* This is how to output a command to make the user-level label named NAME
                   2236:    defined for reference from other files.  */
                   2237: 
                   2238: #define ASM_GLOBALIZE_LABEL(FILE,NAME) \
                   2239:   do { fputs ("\t.globl ", FILE);      \
                   2240:        RS6000_OUTPUT_BASENAME (FILE, NAME); fputs ("\n", FILE);} while (0)
                   2241: 
                   2242: /* This is how to output a reference to a user-level label named NAME.
                   2243:    `assemble_name' uses this.  */
                   2244: 
                   2245: #define ASM_OUTPUT_LABELREF(FILE,NAME) \
                   2246:   fprintf (FILE, NAME)
                   2247: 
                   2248: /* This is how to output an internal numbered label where
                   2249:    PREFIX is the class of label and NUM is the number within the class.  */
                   2250: 
                   2251: #define ASM_OUTPUT_INTERNAL_LABEL(FILE,PREFIX,NUM)     \
                   2252:   fprintf (FILE, "%s..%d:\n", PREFIX, NUM)
                   2253: 
1.1.1.3   root     2254: /* This is how to output an internal label prefix.  rs6000.c uses this
                   2255:    when generating traceback tables.  */
                   2256: 
                   2257: #define ASM_OUTPUT_INTERNAL_LABEL_PREFIX(FILE,PREFIX)  \
                   2258:   fprintf (FILE, "%s..", PREFIX)
                   2259: 
1.1       root     2260: /* This is how to output a label for a jump table.  Arguments are the same as
                   2261:    for ASM_OUTPUT_INTERNAL_LABEL, except the insn for the jump table is
                   2262:    passed. */
                   2263: 
                   2264: #define ASM_OUTPUT_CASE_LABEL(FILE,PREFIX,NUM,TABLEINSN)       \
                   2265: { ASM_OUTPUT_ALIGN (FILE, 2); ASM_OUTPUT_INTERNAL_LABEL (FILE, PREFIX, NUM); }
                   2266: 
                   2267: /* This is how to store into the string LABEL
                   2268:    the symbol_ref name of an internal numbered label where
                   2269:    PREFIX is the class of label and NUM is the number within the class.
                   2270:    This is suitable for output with `assemble_name'.  */
                   2271: 
                   2272: #define ASM_GENERATE_INTERNAL_LABEL(LABEL,PREFIX,NUM)  \
                   2273:   sprintf (LABEL, "%s..%d", PREFIX, NUM)
                   2274: 
                   2275: /* This is how to output an assembler line defining a `double' constant.  */
                   2276: 
1.1.1.2   root     2277: #define ASM_OUTPUT_DOUBLE(FILE, VALUE)                                 \
                   2278:   {                                                                    \
                   2279:     if (REAL_VALUE_ISINF (VALUE)                                       \
                   2280:         || REAL_VALUE_ISNAN (VALUE)                                    \
                   2281:        || REAL_VALUE_MINUS_ZERO (VALUE))                               \
                   2282:       {                                                                        \
                   2283:        long t[2];                                                      \
                   2284:        REAL_VALUE_TO_TARGET_DOUBLE ((VALUE), t);                       \
                   2285:        fprintf (FILE, "\t.long 0x%lx\n\t.long 0x%lx\n",                \
                   2286:                t[0] & 0xffffffff, t[1] & 0xffffffff);                  \
                   2287:       }                                                                        \
                   2288:     else                                                               \
                   2289:       {                                                                        \
                   2290:        char str[30];                                                   \
                   2291:        REAL_VALUE_TO_DECIMAL (VALUE, "%.20e", str);                    \
                   2292:        fprintf (FILE, "\t.double 0d%s\n", str);                        \
                   2293:       }                                                                        \
                   2294:   }
1.1       root     2295: 
                   2296: /* This is how to output an assembler line defining a `float' constant.  */
                   2297: 
1.1.1.2   root     2298: #define ASM_OUTPUT_FLOAT(FILE, VALUE)                                  \
                   2299:   {                                                                    \
                   2300:     if (REAL_VALUE_ISINF (VALUE)                                       \
                   2301:         || REAL_VALUE_ISNAN (VALUE)                                    \
                   2302:        || REAL_VALUE_MINUS_ZERO (VALUE))                               \
                   2303:       {                                                                        \
                   2304:        long t;                                                         \
                   2305:        REAL_VALUE_TO_TARGET_SINGLE ((VALUE), t);                       \
                   2306:        fprintf (FILE, "\t.long 0x%lx\n", t & 0xffffffff);              \
                   2307:       }                                                                        \
                   2308:     else                                                               \
                   2309:       {                                                                        \
                   2310:        char str[30];                                                   \
                   2311:        REAL_VALUE_TO_DECIMAL ((VALUE), "%.20e", str);                  \
                   2312:        fprintf (FILE, "\t.float 0d%s\n", str);                         \
                   2313:       }                                                                        \
                   2314:   }
1.1       root     2315: 
                   2316: /* This is how to output an assembler line defining an `int' constant.  */
                   2317: 
                   2318: #define ASM_OUTPUT_INT(FILE,VALUE)  \
                   2319: ( fprintf (FILE, "\t.long "),                  \
                   2320:   output_addr_const (FILE, (VALUE)),           \
                   2321:   fprintf (FILE, "\n"))
                   2322: 
                   2323: /* Likewise for `char' and `short' constants.  */
                   2324: 
                   2325: #define ASM_OUTPUT_SHORT(FILE,VALUE)  \
                   2326: ( fprintf (FILE, "\t.short "),                 \
                   2327:   output_addr_const (FILE, (VALUE)),           \
                   2328:   fprintf (FILE, "\n"))
                   2329: 
                   2330: #define ASM_OUTPUT_CHAR(FILE,VALUE)  \
                   2331: ( fprintf (FILE, "\t.byte "),                  \
                   2332:   output_addr_const (FILE, (VALUE)),           \
                   2333:   fprintf (FILE, "\n"))
                   2334: 
                   2335: /* This is how to output an assembler line for a numeric constant byte.  */
                   2336: 
                   2337: #define ASM_OUTPUT_BYTE(FILE,VALUE)  \
                   2338:   fprintf (FILE, "\t.byte 0x%x\n", (VALUE))
                   2339: 
                   2340: /* This is how to output an assembler line to define N characters starting
                   2341:    at P to FILE.  */
                   2342: 
                   2343: #define ASM_OUTPUT_ASCII(FILE, P, N)  output_ascii ((FILE), (P), (N))
                   2344: 
                   2345: /* This is how to output code to push a register on the stack.
                   2346:    It need not be very fast code.  */
                   2347: 
1.1.1.4 ! root     2348: #define ASM_OUTPUT_REG_PUSH(FILE,REGNO)                                        \
        !          2349: do {                                                                   \
        !          2350:   extern char *reg_names[];                                            \
        !          2351:   asm_fprintf (FILE, "\{tstu|stwu} %s,-4(%s)\n", reg_names[REGNO],     \
        !          2352:               reg_names[1]);                                           \
        !          2353: } while (0)
1.1       root     2354: 
                   2355: /* This is how to output an insn to pop a register from the stack.
                   2356:    It need not be very fast code.  */
                   2357: 
1.1.1.4 ! root     2358: #define ASM_OUTPUT_REG_POP(FILE,REGNO)                                 \
        !          2359: do {                                                                   \
        !          2360:   extern char *reg_names[];                                            \
        !          2361:   asm_fprintf (FILE, "\t{l|lwz} %s,0(%s)\n\t{ai|addic} %s,%s,4\n",     \
        !          2362:               reg_names[REGNO], reg_names[1], reg_names[1],            \
        !          2363:               reg_names[1]);                                           \
        !          2364: } while (0)
1.1       root     2365: 
                   2366: /* This is how to output an element of a case-vector that is absolute. 
                   2367:    (RS/6000 does not use such vectors, but we must define this macro
                   2368:    anyway.)   */
                   2369: 
1.1.1.3   root     2370: #define ASM_OUTPUT_ADDR_VEC_ELT(FILE, VALUE)           \
                   2371:   do { char buf[100];                                  \
                   2372:        fprintf (FILE, "\t.long ");                     \
                   2373:        ASM_GENERATE_INTERNAL_LABEL (buf, "L", VALUE);  \
                   2374:        assemble_name (FILE, buf);                      \
                   2375:        fprintf (FILE, "\n");                           \
                   2376:      } while (0)
1.1       root     2377: 
                   2378: /* This is how to output an element of a case-vector that is relative.  */
                   2379: 
                   2380: #define ASM_OUTPUT_ADDR_DIFF_ELT(FILE, VALUE, REL)     \
1.1.1.3   root     2381:   do { char buf[100];                                  \
                   2382:        fprintf (FILE, "\t.long ");                     \
                   2383:        ASM_GENERATE_INTERNAL_LABEL (buf, "L", VALUE);  \
                   2384:        assemble_name (FILE, buf);                      \
                   2385:        fprintf (FILE, "-");                            \
                   2386:        ASM_GENERATE_INTERNAL_LABEL (buf, "L", REL);    \
                   2387:        assemble_name (FILE, buf);                      \
                   2388:        fprintf (FILE, "\n");                           \
                   2389:      } while (0)
1.1       root     2390: 
                   2391: /* This is how to output an assembler line
                   2392:    that says to advance the location counter
                   2393:    to a multiple of 2**LOG bytes.  */
                   2394: 
                   2395: #define ASM_OUTPUT_ALIGN(FILE,LOG)     \
                   2396:   if ((LOG) != 0)                      \
                   2397:     fprintf (FILE, "\t.align %d\n", (LOG))
                   2398: 
                   2399: #define ASM_OUTPUT_SKIP(FILE,SIZE)  \
                   2400:   fprintf (FILE, "\t.space %d\n", (SIZE))
                   2401: 
                   2402: /* This says how to output an assembler line
                   2403:    to define a global common symbol.  */
                   2404: 
                   2405: #define ASM_OUTPUT_COMMON(FILE, NAME, SIZE, ROUNDED)   \
                   2406:   do { fputs (".comm ", (FILE));                       \
                   2407:        RS6000_OUTPUT_BASENAME ((FILE), (NAME));                \
                   2408:        fprintf ((FILE), ",%d\n", (SIZE)); } while (0)
                   2409: 
                   2410: /* This says how to output an assembler line
                   2411:    to define a local common symbol.  */
                   2412: 
                   2413: #define ASM_OUTPUT_LOCAL(FILE, NAME, SIZE,ROUNDED)     \
                   2414:   do { fputs (".lcomm ", (FILE));                      \
                   2415:        RS6000_OUTPUT_BASENAME ((FILE), (NAME));                \
                   2416:        fprintf ((FILE), ",%d,%s\n", (SIZE), xcoff_bss_section_name); \
                   2417:      } while (0)
                   2418: 
                   2419: /* Store in OUTPUT a string (made with alloca) containing
                   2420:    an assembler-name for a local static variable named NAME.
                   2421:    LABELNO is an integer which is different for each call.  */
                   2422: 
                   2423: #define ASM_FORMAT_PRIVATE_NAME(OUTPUT, NAME, LABELNO) \
                   2424: ( (OUTPUT) = (char *) alloca (strlen ((NAME)) + 10),   \
                   2425:   sprintf ((OUTPUT), "%s.%d", (NAME), (LABELNO)))
                   2426: 
                   2427: /* Define the parentheses used to group arithmetic operations
                   2428:    in assembler code.  */
                   2429: 
                   2430: #define ASM_OPEN_PAREN "("
                   2431: #define ASM_CLOSE_PAREN ")"
                   2432: 
                   2433: /* Define results of standard character escape sequences.  */
                   2434: #define TARGET_BELL 007
                   2435: #define TARGET_BS 010
                   2436: #define TARGET_TAB 011
                   2437: #define TARGET_NEWLINE 012
                   2438: #define TARGET_VT 013
                   2439: #define TARGET_FF 014
                   2440: #define TARGET_CR 015
                   2441: 
                   2442: /* Print operand X (an rtx) in assembler syntax to file FILE.
                   2443:    CODE is a letter or dot (`z' in `%z0') or 0 if no letter was specified.
                   2444:    For `%' followed by punctuation, CODE is the punctuation and X is null.  */
                   2445: 
                   2446: #define PRINT_OPERAND(FILE, X, CODE)  print_operand (FILE, X, CODE)
                   2447: 
                   2448: /* Define which CODE values are valid.  */
                   2449: 
1.1.1.3   root     2450: #define PRINT_OPERAND_PUNCT_VALID_P(CODE)  ((CODE) == '.' || (CODE) == '*')
1.1       root     2451: 
                   2452: /* Print a memory address as an operand to reference that memory location.  */
                   2453: 
                   2454: #define PRINT_OPERAND_ADDRESS(FILE, ADDR) print_operand_address (FILE, ADDR)
                   2455: 
                   2456: /* Define the codes that are matched by predicates in rs6000.c.  */
                   2457: 
                   2458: #define PREDICATE_CODES \
                   2459:   {"short_cint_operand", {CONST_INT}},                         \
                   2460:   {"u_short_cint_operand", {CONST_INT}},                       \
                   2461:   {"non_short_cint_operand", {CONST_INT}},                     \
                   2462:   {"gpc_reg_operand", {SUBREG, REG}},                          \
                   2463:   {"cc_reg_operand", {SUBREG, REG}},                           \
                   2464:   {"reg_or_short_operand", {SUBREG, REG, CONST_INT}},          \
                   2465:   {"reg_or_neg_short_operand", {SUBREG, REG, CONST_INT}},      \
                   2466:   {"reg_or_u_short_operand", {SUBREG, REG, CONST_INT}},                \
                   2467:   {"reg_or_cint_operand", {SUBREG, REG, CONST_INT}},           \
                   2468:   {"easy_fp_constant", {CONST_DOUBLE}},                                \
                   2469:   {"reg_or_mem_operand", {SUBREG, MEM, REG}},                  \
1.1.1.4 ! root     2470:   {"lwa_operand", {SUBREG, MEM, REG}},                         \
        !          2471:   {"offsettable_addr_operand", {REG, SUBREG, PLUS}},           \
1.1       root     2472:   {"fp_reg_or_mem_operand", {SUBREG, MEM, REG}},               \
                   2473:   {"mem_or_easy_const_operand", {SUBREG, MEM, CONST_DOUBLE}},  \
                   2474:   {"add_operand", {SUBREG, REG, CONST_INT}},                   \
                   2475:   {"non_add_cint_operand", {CONST_INT}},                       \
                   2476:   {"and_operand", {SUBREG, REG, CONST_INT}},                   \
                   2477:   {"non_and_cint_operand", {CONST_INT}},                       \
                   2478:   {"logical_operand", {SUBREG, REG, CONST_INT}},               \
                   2479:   {"non_logical_cint_operand", {CONST_INT}},                   \
                   2480:   {"mask_operand", {CONST_INT}},                               \
                   2481:   {"call_operand", {SYMBOL_REF, REG}},                         \
1.1.1.2   root     2482:   {"current_file_function_operand", {SYMBOL_REF}},             \
1.1.1.3   root     2483:   {"input_operand", {SUBREG, MEM, REG, CONST_INT, SYMBOL_REF}},        \
1.1.1.2   root     2484:   {"load_multiple_operation", {PARALLEL}},                     \
                   2485:   {"store_multiple_operation", {PARALLEL}},                    \
                   2486:   {"branch_comparison_operator", {EQ, NE, LE, LT, GE,          \
                   2487:                                  GT, LEU, LTU, GEU, GTU}},     \
                   2488:   {"scc_comparison_operator", {EQ, NE, LE, LT, GE,             \
                   2489:                               GT, LEU, LTU, GEU, GTU}},
1.1.1.4 ! root     2490: 
        !          2491: /* Declare functions in rs6000.c */
        !          2492: extern void output_options ();
        !          2493: extern void rs6000_override_options ();
        !          2494: extern struct rtx_def *rs6000_float_const ();
        !          2495: extern struct rtx_def *rs6000_immed_double_const ();
        !          2496: extern int direct_return ();
        !          2497: extern int any_operand ();
        !          2498: extern int short_cint_operand ();
        !          2499: extern int u_short_cint_operand ();
        !          2500: extern int non_short_cint_operand ();
        !          2501: extern int gpc_reg_operand ();
        !          2502: extern int cc_reg_operand ();
        !          2503: extern int reg_or_short_operand ();
        !          2504: extern int reg_or_neg_short_operand ();
        !          2505: extern int reg_or_u_short_operand ();
        !          2506: extern int reg_or_cint_operand ();
        !          2507: extern int easy_fp_constant ();
        !          2508: extern int volatile_mem_operand ();
        !          2509: extern int offsettable_addr_operand ();
        !          2510: extern int fp_reg_or_mem_operand ();
        !          2511: extern int mem_or_easy_const_operand ();
        !          2512: extern int add_operand ();
        !          2513: extern int non_add_cint_operand ();
        !          2514: extern int logical_operand ();
        !          2515: extern int non_logical_operand ();
        !          2516: extern int mask_constant ();
        !          2517: extern int mask_operand ();
        !          2518: extern int and_operand ();
        !          2519: extern int non_and_cint_operand ();
        !          2520: extern int reg_or_mem_operand ();
        !          2521: extern int lwa_operand ();
        !          2522: extern int call_operand ();
        !          2523: extern int current_file_function_operand ();
        !          2524: extern int input_operand ();
        !          2525: extern void init_cumulative_args ();
        !          2526: extern void function_arg_advance ();
        !          2527: extern struct rtx_def *function_arg ();
        !          2528: extern int function_arg_partial_nregs ();
        !          2529: extern int function_arg_pass_by_reference ();
        !          2530: extern void setup_incoming_varargs ();
        !          2531: extern struct rtx_def *expand_builtin_saveregs ();
        !          2532: extern struct rtx_def *rs6000_stack_temp ();
        !          2533: extern int expand_block_move ();
        !          2534: extern int load_multiple_operation ();
        !          2535: extern int store_multiple_operation ();
        !          2536: extern int branch_comparison_operator ();
        !          2537: extern int scc_comparison_operator ();
        !          2538: extern int includes_lshift_p ();
        !          2539: extern int includes_rshift_p ();
        !          2540: extern int registers_ok_for_quad_peep ();
        !          2541: extern int addrs_ok_for_quad_peep ();
        !          2542: extern enum reg_class secondary_reload_class ();
        !          2543: extern int ccr_bit ();
        !          2544: extern void print_operand ();
        !          2545: extern void print_operand_address ();
        !          2546: extern int first_reg_to_save ();
        !          2547: extern int first_fp_reg_to_save ();
        !          2548: extern int rs6000_makes_calls ();
        !          2549: extern rs6000_stack_t *rs6000_stack_info ();
        !          2550: extern void svr4_traceback ();
        !          2551: extern void output_prolog ();
        !          2552: extern void output_epilog ();
        !          2553: extern void output_toc ();
        !          2554: extern void output_ascii ();
        !          2555: extern void rs6000_gen_section_name ();
        !          2556: extern void output_function_profiler ();
        !          2557: extern int rs6000_adjust_cost ();

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