--- gcc/gcc.info-14 2018/04/24 18:06:45 1.1.1.5 +++ gcc/gcc.info-14 2018/04/24 18:24:08 1.1.1.8 @@ -1,12 +1,13 @@ -This is Info file gcc.info, produced by Makeinfo-1.54 from the input +This is Info file gcc.info, produced by Makeinfo-1.55 from the input file gcc.texi. This file documents the use and the internals of the GNU compiler. - Published by the Free Software Foundation 675 Massachusetts Avenue -Cambridge, MA 02139 USA + Published by the Free Software Foundation 59 Temple Place - Suite 330 +Boston, MA 02111-1307 USA - Copyright (C) 1988, 1989, 1992, 1993 Free Software Foundation, Inc. + Copyright (C) 1988, 1989, 1992, 1993, 1994, 1995 Free Software +Foundation, Inc. Permission is granted to make and distribute verbatim copies of this manual provided the copyright notice and this permission notice are @@ -14,1078 +15,956 @@ preserved on all copies. Permission is granted to copy and distribute modified versions of this manual under the conditions for verbatim copying, provided also -that the sections entitled "GNU General Public License" and "Protect -Your Freedom--Fight `Look And Feel'" are included exactly as in the -original, and provided that the entire resulting derived work is -distributed under the terms of a permission notice identical to this -one. +that the sections entitled "GNU General Public License," "Funding for +Free Software," and "Protect Your Freedom--Fight `Look And Feel'" are +included exactly as in the original, and provided that the entire +resulting derived work is distributed under the terms of a permission +notice identical to this one. Permission is granted to copy and distribute translations of this manual into another language, under the above conditions for modified versions, except that the sections entitled "GNU General Public -License" and "Protect Your Freedom--Fight `Look And Feel'", and this -permission notice, may be included in translations approved by the Free -Software Foundation instead of in the original English. +License," "Funding for Free Software," and "Protect Your Freedom--Fight +`Look And Feel'", and this permission notice, may be included in +translations approved by the Free Software Foundation instead of in the +original English.  -File: gcc.info, Node: Standard Names, Next: Pattern Ordering, Prev: Constraints, Up: Machine Desc +File: gcc.info, Node: Machine Modes, Next: Constants, Prev: Flags, Up: RTL -Standard Pattern Names For Generation -===================================== +Machine Modes +============= - Here is a table of the instruction names that are meaningful in the -RTL generation pass of the compiler. Giving one of these names to an -instruction pattern tells the RTL generation pass that it can use the -pattern in to accomplish a certain task. - -`movM' - Here M stands for a two-letter machine mode name, in lower case. - This instruction pattern moves data with that machine mode from - operand 1 to operand 0. For example, `movsi' moves full-word data. - - If operand 0 is a `subreg' with mode M of a register whose own - mode is wider than M, the effect of this instruction is to store - the specified value in the part of the register that corresponds - to mode M. The effect on the rest of the register is undefined. - - This class of patterns is special in several ways. First of all, - each of these names *must* be defined, because there is no other - way to copy a datum from one place to another. - - Second, these patterns are not used solely in the RTL generation - pass. Even the reload pass can generate move insns to copy values - from stack slots into temporary registers. When it does so, one - of the operands is a hard register and the other is an operand - that can need to be reloaded into a register. - - Therefore, when given such a pair of operands, the pattern must - generate RTL which needs no reloading and needs no temporary - registers--no registers other than the operands. For example, if - you support the pattern with a `define_expand', then in such a - case the `define_expand' mustn't call `force_reg' or any other such - function which might generate new pseudo registers. - - This requirement exists even for subword modes on a RISC machine - where fetching those modes from memory normally requires several - insns and some temporary registers. Look in `spur.md' to see how - the requirement can be satisfied. - - During reload a memory reference with an invalid address may be - passed as an operand. Such an address will be replaced with a - valid address later in the reload pass. In this case, nothing may - be done with the address except to use it as it stands. If it is - copied, it will not be replaced with a valid address. No attempt - should be made to make such an address into a valid address and no - routine (such as `change_address') that will do so may be called. - Note that `general_operand' will fail when applied to such an - address. - - The global variable `reload_in_progress' (which must be explicitly - declared if required) can be used to determine whether such special - handling is required. - - The variety of operands that have reloads depends on the rest of - the machine description, but typically on a RISC machine these can - only be pseudo registers that did not get hard registers, while on - other machines explicit memory references will get optional - reloads. - - If a scratch register is required to move an object to or from - memory, it can be allocated using `gen_reg_rtx' prior to reload. - But this is impossible during and after reload. If there are - cases needing scratch registers after reload, you must define - `SECONDARY_INPUT_RELOAD_CLASS' and perhaps also - `SECONDARY_OUTPUT_RELOAD_CLASS' to detect them, and provide - patterns `reload_inM' or `reload_outM' to handle them. *Note - Register Classes::. - - The constraints on a `moveM' must permit moving any hard register - to any other hard register provided that `HARD_REGNO_MODE_OK' - permits mode M in both registers and `REGISTER_MOVE_COST' applied - to their classes returns a value of 2. - - It is obligatory to support floating point `moveM' instructions - into and out of any registers that can hold fixed point values, - because unions and structures (which have modes `SImode' or - `DImode') can be in those registers and they may have floating - point members. - - There may also be a need to support fixed point `moveM' - instructions in and out of floating point registers. - Unfortunately, I have forgotten why this was so, and I don't know - whether it is still true. If `HARD_REGNO_MODE_OK' rejects fixed - point values in floating point registers, then the constraints of - the fixed point `moveM' instructions must be designed to avoid - ever trying to reload into a floating point register. - -`reload_inM' -`reload_outM' - Like `movM', but used when a scratch register is required to move - between operand 0 and operand 1. Operand 2 describes the scratch - register. See the discussion of the `SECONDARY_RELOAD_CLASS' - macro in *note Register Classes::.. - -`movstrictM' - Like `movM' except that if operand 0 is a `subreg' with mode M of - a register whose natural mode is wider, the `movstrictM' - instruction is guaranteed not to alter any of the register except - the part which belongs to mode M. - -`load_multiple' - Load several consecutive memory locations into consecutive - registers. Operand 0 is the first of the consecutive registers, - operand 1 is the first memory location, and operand 2 is a - constant: the number of consecutive registers. - - Define this only if the target machine really has such an - instruction; do not define this if the most efficient way of - loading consecutive registers from memory is to do them one at a - time. - - On some machines, there are restrictions as to which consecutive - registers can be stored into memory, such as particular starting or - ending register numbers or only a range of valid counts. For those - machines, use a `define_expand' (*note Expander Definitions::.) - and make the pattern fail if the restrictions are not met. - - Write the generated insn as a `parallel' with elements being a - `set' of one register from the appropriate memory location (you may - also need `use' or `clobber' elements). Use a `match_parallel' - (*note RTL Template::.) to recognize the insn. See `a29k.md' and - `rs6000.md' for examples of the use of this insn pattern. - -`store_multiple' - Similar to `load_multiple', but store several consecutive registers - into consecutive memory locations. Operand 0 is the first of the - consecutive memory locations, operand 1 is the first register, and - operand 2 is a constant: the number of consecutive registers. - -`addM3' - Add operand 2 and operand 1, storing the result in operand 0. All - operands must have mode M. This can be used even on two-address - machines, by means of constraints requiring operands 1 and 0 to be - the same location. - -`subM3', `mulM3' -`divM3', `udivM3', `modM3', `umodM3' -`sminM3', `smaxM3', `uminM3', `umaxM3' -`andM3', `iorM3', `xorM3' - Similar, for other arithmetic operations. - -`mulhisi3' - Multiply operands 1 and 2, which have mode `HImode', and store a - `SImode' product in operand 0. - -`mulqihi3', `mulsidi3' - Similar widening-multiplication instructions of other widths. - -`umulqihi3', `umulhisi3', `umulsidi3' - Similar widening-multiplication instructions that do unsigned - multiplication. - -`divmodM4' - Signed division that produces both a quotient and a remainder. - Operand 1 is divided by operand 2 to produce a quotient stored in - operand 0 and a remainder stored in operand 3. - - For machines with an instruction that produces both a quotient and - a remainder, provide a pattern for `divmodM4' but do not provide - patterns for `divM3' and `modM3'. This allows optimization in the - relatively common case when both the quotient and remainder are - computed. - - If an instruction that just produces a quotient or just a remainder - exists and is more efficient than the instruction that produces - both, write the output routine of `divmodM4' to call - `find_reg_note' and look for a `REG_UNUSED' note on the quotient - or remainder and generate the appropriate instruction. - -`udivmodM4' - Similar, but does unsigned division. - -`ashlM3' - Arithmetic-shift operand 1 left by a number of bits specified by - operand 2, and store the result in operand 0. Here M is the mode - of operand 0 and operand 1; operand 2's mode is specified by the - instruction pattern, and the compiler will convert the operand to - that mode before generating the instruction. - -`ashrM3', `lshlM3', `lshrM3', `rotlM3', `rotrM3' - Other shift and rotate instructions, analogous to the `ashlM3' - instructions. - - Logical and arithmetic left shift are the same. Machines that do - not allow negative shift counts often have only one instruction for - shifting left. On such machines, you should define a pattern named - `ashlM3' and leave `lshlM3' undefined. - -`negM2' - Negate operand 1 and store the result in operand 0. - -`absM2' - Store the absolute value of operand 1 into operand 0. - -`sqrtM2' - Store the square root of operand 1 into operand 0. - - The `sqrt' built-in function of C always uses the mode which - corresponds to the C data type `double'. - -`ffsM2' - Store into operand 0 one plus the index of the least significant - 1-bit of operand 1. If operand 1 is zero, store zero. M is the - mode of operand 0; operand 1's mode is specified by the instruction - pattern, and the compiler will convert the operand to that mode - before generating the instruction. - - The `ffs' built-in function of C always uses the mode which - corresponds to the C data type `int'. - -`one_cmplM2' - Store the bitwise-complement of operand 1 into operand 0. - -`cmpM' - Compare operand 0 and operand 1, and set the condition codes. The - RTL pattern should look like this: - - (set (cc0) (compare (match_operand:M 0 ...) - (match_operand:M 1 ...))) - -`tstM' - Compare operand 0 against zero, and set the condition codes. The - RTL pattern should look like this: - - (set (cc0) (match_operand:M 0 ...)) - - `tstM' patterns should not be defined for machines that do not use - `(cc0)'. Doing so would confuse the optimizer since it would no - longer be clear which `set' operations were comparisons. The - `cmpM' patterns should be used instead. - -`movstrM' - Block move instruction. The addresses of the destination and - source strings are the first two operands, and both are in mode - `Pmode'. The number of bytes to move is the third operand, in - mode M. - - The fourth operand is the known shared alignment of the source and - destination, in the form of a `const_int' rtx. Thus, if the - compiler knows that both source and destination are word-aligned, - it may provide the value 4 for this operand. - - These patterns need not give special consideration to the - possibility that the source and destination strings might overlap. - -`cmpstrM' - Block compare instruction, with five operands. Operand 0 is the - output; it has mode M. The remaining four operands are like the - operands of `movstrM'. The two memory blocks specified are - compared byte by byte in lexicographic order. The effect of the - instruction is to store a value in operand 0 whose sign indicates - the result of the comparison. - - Compute the length of a string, with three operands. Operand 0 is - the result (of mode M), operand 1 is a `mem' referring to the - first character of the string, operand 2 is the character to - search for (normally zero), and operand 3 is a constant describing - the known alignment of the beginning of the string. - -`floatMN2' - Convert signed integer operand 1 (valid for fixed point mode M) to - floating point mode N and store in operand 0 (which has mode N). - -`floatunsMN2' - Convert unsigned integer operand 1 (valid for fixed point mode M) - to floating point mode N and store in operand 0 (which has mode N). - -`fixMN2' - Convert operand 1 (valid for floating point mode M) to fixed point - mode N as a signed number and store in operand 0 (which has mode - N). This instruction's result is defined only when the value of - operand 1 is an integer. - -`fixunsMN2' - Convert operand 1 (valid for floating point mode M) to fixed point - mode N as an unsigned number and store in operand 0 (which has - mode N). This instruction's result is defined only when the value - of operand 1 is an integer. - -`ftruncM2' - Convert operand 1 (valid for floating point mode M) to an integer - value, still represented in floating point mode M, and store it in - operand 0 (valid for floating point mode M). - -`fix_truncMN2' - Like `fixMN2' but works for any floating point value of mode M by - converting the value to an integer. - -`fixuns_truncMN2' - Like `fixunsMN2' but works for any floating point value of mode M - by converting the value to an integer. - -`truncMN' - Truncate operand 1 (valid for mode M) to mode N and store in - operand 0 (which has mode N). Both modes must be fixed point or - both floating point. - -`extendMN' - Sign-extend operand 1 (valid for mode M) to mode N and store in - operand 0 (which has mode N). Both modes must be fixed point or - both floating point. - -`zero_extendMN' - Zero-extend operand 1 (valid for mode M) to mode N and store in - operand 0 (which has mode N). Both modes must be fixed point. - -`extv' - Extract a bit field from operand 1 (a register or memory operand), - where operand 2 specifies the width in bits and operand 3 the - starting bit, and store it in operand 0. Operand 0 must have mode - `word_mode'. Operand 1 may have mode `byte_mode' or `word_mode'; - often `word_mode' is allowed only for registers. Operands 2 and 3 - must be valid for `word_mode'. - - The RTL generation pass generates this instruction only with - constants for operands 2 and 3. - - The bit-field value is sign-extended to a full word integer before - it is stored in operand 0. - -`extzv' - Like `extv' except that the bit-field value is zero-extended. - -`insv' - Store operand 3 (which must be valid for `word_mode') into a bit - field in operand 0, where operand 1 specifies the width in bits and - operand 2 the starting bit. Operand 0 may have mode `byte_mode' or - `word_mode'; often `word_mode' is allowed only for registers. - Operands 1 and 2 must be valid for `word_mode'. - - The RTL generation pass generates this instruction only with - constants for operands 1 and 2. - -`sCOND' - Store zero or nonzero in the operand according to the condition - codes. Value stored is nonzero iff the condition COND is true. - cOND is the name of a comparison operation expression code, such - as `eq', `lt' or `leu'. - - You specify the mode that the operand must have when you write the - `match_operand' expression. The compiler automatically sees which - mode you have used and supplies an operand of that mode. - - The value stored for a true condition must have 1 as its low bit, - or else must be negative. Otherwise the instruction is not - suitable and you should omit it from the machine description. You - describe to the compiler exactly which value is stored by defining - the macro `STORE_FLAG_VALUE' (*note Misc::.). If a description - cannot be found that can be used for all the `sCOND' patterns, you - should omit those operations from the machine description. - - These operations may fail, but should do so only in relatively - uncommon cases; if they would fail for common cases involving - integer comparisons, it is best to omit these patterns. - - If these operations are omitted, the compiler will usually - generate code that copies the constant one to the target and - branches around an assignment of zero to the target. If this code - is more efficient than the potential instructions used for the - `sCOND' pattern followed by those required to convert the result - into a 1 or a zero in `SImode', you should omit the `sCOND' - operations from the machine description. - -`bCOND' - Conditional branch instruction. Operand 0 is a `label_ref' that - refers to the label to jump to. Jump if the condition codes meet - condition COND. - - Some machines do not follow the model assumed here where a - comparison instruction is followed by a conditional branch - instruction. In that case, the `cmpM' (and `tstM') patterns should - simply store the operands away and generate all the required insns - in a `define_expand' (*note Expander Definitions::.) for the - conditional branch operations. All calls to expand `bCOND' - patterns are immediately preceded by calls to expand either a - `cmpM' pattern or a `tstM' pattern. - - Machines that use a pseudo register for the condition code value, - or where the mode used for the comparison depends on the condition - being tested, should also use the above mechanism. *Note Jump - Patterns:: - - The above discussion also applies to `sCOND' patterns. - -`call' - Subroutine call instruction returning no value. Operand 0 is the - function to call; operand 1 is the number of bytes of arguments - pushed (in mode `SImode', except it is normally a `const_int'); - operand 2 is the number of registers used as operands. - - On most machines, operand 2 is not actually stored into the RTL - pattern. It is supplied for the sake of some RISC machines which - need to put this information into the assembler code; they can put - it in the RTL instead of operand 1. - - Operand 0 should be a `mem' RTX whose address is the address of the - function. Note, however, that this address can be a `symbol_ref' - expression even if it would not be a legitimate memory address on - the target machine. If it is also not a valid argument for a call - instruction, the pattern for this operation should be a - `define_expand' (*note Expander Definitions::.) that places the - address into a register and uses that register in the call - instruction. - -`call_value' - Subroutine call instruction returning a value. Operand 0 is the - hard register in which the value is returned. There are three more - operands, the same as the three operands of the `call' instruction - (but with numbers increased by one). - - Subroutines that return `BLKmode' objects use the `call' insn. - -`call_pop', `call_value_pop' - Similar to `call' and `call_value', except used if defined and if - `RETURN_POPS_ARGS' is non-zero. They should emit a `parallel' - that contains both the function call and a `set' to indicate the - adjustment made to the frame pointer. - - For machines where `RETURN_POPS_ARGS' can be non-zero, the use of - these patterns increases the number of functions for which the - frame pointer can be eliminated, if desired. - -`untyped_call' - Subroutine call instruction returning a value of any type. - Operand 0 is the function to call; operand 1 is a memory location - where the result of calling the function is to be stored; operand - 2 is a `parallel' expression where each element is a `set' - expression that indicates the saving of a function return value - into the result block. - - This instruction pattern should be defined to support - `__builtin_apply' on machines where special instructions are needed - to call a subroutine with arbitrary arguments or to save the value - returned. This instruction pattern is required on machines that - have multiple registers that can hold a return value (i.e. - `FUNCTION_VALUE_REGNO_P' is true for more than one register). - -`return' - Subroutine return instruction. This instruction pattern name - should be defined only if a single instruction can do all the work - of returning from a function. - - Like the `movM' patterns, this pattern is also used after the RTL - generation phase. In this case it is to support machines where - multiple instructions are usually needed to return from a - function, but some class of functions only requires one - instruction to implement a return. Normally, the applicable - functions are those which do not need to save any registers or - allocate stack space. - - For such machines, the condition specified in this pattern should - only be true when `reload_completed' is non-zero and the function's - epilogue would only be a single instruction. For machines with - register windows, the routine `leaf_function_p' may be used to - determine if a register window push is required. - - Machines that have conditional return instructions should define - patterns such as - - (define_insn "" - [(set (pc) - (if_then_else (match_operator - 0 "comparison_operator" - [(cc0) (const_int 0)]) - (return) - (pc)))] - "CONDITION" - "...") - - where CONDITION would normally be the same condition specified on - the named `return' pattern. - -`untyped_return' - Untyped subroutine return instruction. This instruction pattern - should be defined to support `__builtin_return' on machines where - special instructions are needed to return a value of any type. - - Operand 0 is a memory location where the result of calling a - function with `__builtin_apply' is stored; operand 1 is a - `parallel' expression where each element is a `set' expression - that indicates the restoring of a function return value from the - result block. - -`nop' - No-op instruction. This instruction pattern name should always be - defined to output a no-op in assembler code. `(const_int 0)' will - do as an RTL pattern. - -`indirect_jump' - An instruction to jump to an address which is operand zero. This - pattern name is mandatory on all machines. - -`casesi' - Instruction to jump through a dispatch table, including bounds - checking. This instruction takes five operands: - - 1. The index to dispatch on, which has mode `SImode'. - - 2. The lower bound for indices in the table, an integer constant. - - 3. The total range of indices in the table--the largest index - minus the smallest one (both inclusive). - - 4. A label that precedes the table itself. - - 5. A label to jump to if the index has a value outside the - bounds. (If the machine-description macro - `CASE_DROPS_THROUGH' is defined, then an out-of-bounds index - drops through to the code following the jump table instead of - jumping to this label. In that case, this label is not - actually used by the `casesi' instruction, but it is always - provided as an operand.) - - The table is a `addr_vec' or `addr_diff_vec' inside of a - `jump_insn'. The number of elements in the table is one plus the - difference between the upper bound and the lower bound. - -`tablejump' - Instruction to jump to a variable address. This is a low-level - capability which can be used to implement a dispatch table when - there is no `casesi' pattern. - - This pattern requires two operands: the address or offset, and a - label which should immediately precede the jump table. If the - macro `CASE_VECTOR_PC_RELATIVE' is defined then the first operand - is an offset which counts from the address of the table; - otherwise, it is an absolute address to jump to. In either case, - the first operand has mode `Pmode'. - - The `tablejump' insn is always the last insn before the jump table - it uses. Its assembler code normally has no need to use the - second operand, but you should incorporate it in the RTL pattern so - that the jump optimizer will not delete the table as unreachable - code. - -`save_stack_block' -`save_stack_function' -`save_stack_nonlocal' -`restore_stack_block' -`restore_stack_function' -`restore_stack_nonlocal' - Most machines save and restore the stack pointer by copying it to - or from an object of mode `Pmode'. Do not define these patterns on - such machines. - - Some machines require special handling for stack pointer saves and - restores. On those machines, define the patterns corresponding to - the non-standard cases by using a `define_expand' (*note Expander - Definitions::.) that produces the required insns. The three types - of saves and restores are: - - 1. `save_stack_block' saves the stack pointer at the start of a - block that allocates a variable-sized object, and - `restore_stack_block' restores the stack pointer when the - block is exited. - - 2. `save_stack_function' and `restore_stack_function' do a - similar job for the outermost block of a function and are - used when the function allocates variable-sized objects or - calls `alloca'. Only the epilogue uses the restored stack - pointer, allowing a simpler save or restore sequence on some - machines. - - 3. `save_stack_nonlocal' is used in functions that contain labels - branched to by nested functions. It saves the stack pointer - in such a way that the inner function can use - `restore_stack_nonlocal' to restore the stack pointer. The - compiler generates code to restore the frame and argument - pointer registers, but some machines require saving and - restoring additional data such as register window information - or stack backchains. Place insns in these patterns to save - and restore any such required data. - - When saving the stack pointer, operand 0 is the save area and - operand 1 is the stack pointer. The mode used to allocate the - save area is the mode of operand 0. You must specify an integral - mode, or `VOIDmode' if no save area is needed for a particular - type of save (either because no save is needed or because a - machine-specific save area can be used). Operand 0 is the stack - pointer and operand 1 is the save area for restore operations. If - `save_stack_block' is defined, operand 0 must not be `VOIDmode' - since these saves can be arbitrarily nested. - - A save area is a `mem' that is at a constant offset from - `virtual_stack_vars_rtx' when the stack pointer is saved for use by - nonlocal gotos and a `reg' in the other two cases. - -`allocate_stack' - Subtract operand 0 from the stack pointer to create space for for - dynamically allocated data. - - Do not define this pattern if all that must be done is the - subtraction. On some machines require other operations such as - stack probes or maintaining the back chain. Define this pattern - to emit those operations in addition to updating the stack pointer. + A machine mode describes a size of data object and the +representation used for it. In the C code, machine modes are +represented by an enumeration type, `enum machine_mode', defined in +`machmode.def'. Each RTL expression has room for a machine mode and so +do certain kinds of tree expressions (declarations and types, to be +precise). + + In debugging dumps and machine descriptions, the machine mode of an +RTL expression is written after the expression code with a colon to +separate them. The letters `mode' which appear at the end of each +machine mode name are omitted. For example, `(reg:SI 38)' is a `reg' +expression with machine mode `SImode'. If the mode is `VOIDmode', it +is not written at all. + + Here is a table of machine modes. The term "byte" below refers to an +object of `BITS_PER_UNIT' bits (*note Storage Layout::.). + +`QImode' + "Quarter-Integer" mode represents a single byte treated as an + integer. + +`HImode' + "Half-Integer" mode represents a two-byte integer. + +`PSImode' + "Partial Single Integer" mode represents an integer which occupies + four bytes but which doesn't really use all four. On some + machines, this is the right mode to use for pointers. + +`SImode' + "Single Integer" mode represents a four-byte integer. + +`PDImode' + "Partial Double Integer" mode represents an integer which occupies + eight bytes but which doesn't really use all eight. On some + machines, this is the right mode to use for certain pointers. + +`DImode' + "Double Integer" mode represents an eight-byte integer. + +`TImode' + "Tetra Integer" (?) mode represents a sixteen-byte integer. + +`SFmode' + "Single Floating" mode represents a single-precision (four byte) + floating point number. + +`DFmode' + "Double Floating" mode represents a double-precision (eight byte) + floating point number. + +`XFmode' + "Extended Floating" mode represents a triple-precision (twelve + byte) floating point number. This mode is used for IEEE extended + floating point. On some systems not all bits within these bytes + will actually be used. + +`TFmode' + "Tetra Floating" mode represents a quadruple-precision (sixteen + byte) floating point number. + +`CCmode' + "Condition Code" mode represents the value of a condition code, + which is a machine-specific set of bits used to represent the + result of a comparison operation. Other machine-specific modes + may also be used for the condition code. These modes are not used + on machines that use `cc0' (see *note Condition Code::.). + +`BLKmode' + "Block" mode represents values that are aggregates to which none of + the other modes apply. In RTL, only memory references can have + this mode, and only if they appear in string-move or vector + instructions. On machines which have no such instructions, + `BLKmode' will not appear in RTL. + +`VOIDmode' + Void mode means the absence of a mode or an unspecified mode. For + example, RTL expressions of code `const_int' have mode `VOIDmode' + because they can be taken to have whatever mode the context + requires. In debugging dumps of RTL, `VOIDmode' is expressed by + the absence of any mode. + +`SCmode, DCmode, XCmode, TCmode' + These modes stand for a complex number represented as a pair of + floating point values. The floating point values are in `SFmode', + `DFmode', `XFmode', and `TFmode', respectively. + +`CQImode, CHImode, CSImode, CDImode, CTImode, COImode' + These modes stand for a complex number represented as a pair of + integer values. The integer values are in `QImode', `HImode', + `SImode', `DImode', `TImode', and `OImode', respectively. + + The machine description defines `Pmode' as a C macro which expands +into the machine mode used for addresses. Normally this is the mode +whose size is `BITS_PER_WORD', `SImode' on 32-bit machines. + + The only modes which a machine description must support are +`QImode', and the modes corresponding to `BITS_PER_WORD', +`FLOAT_TYPE_SIZE' and `DOUBLE_TYPE_SIZE'. The compiler will attempt to +use `DImode' for 8-byte structures and unions, but this can be +prevented by overriding the definition of `MAX_FIXED_MODE_SIZE'. +Alternatively, you can have the compiler use `TImode' for 16-byte +structures and unions. Likewise, you can arrange for the C type `short +int' to avoid using `HImode'. + + Very few explicit references to machine modes remain in the compiler +and these few references will soon be removed. Instead, the machine +modes are divided into mode classes. These are represented by the +enumeration type `enum mode_class' defined in `machmode.h'. The +possible mode classes are: + +`MODE_INT' + Integer modes. By default these are `QImode', `HImode', `SImode', + `DImode', and `TImode'. + +`MODE_PARTIAL_INT' + The "partial integer" modes, `PSImode' and `PDImode'. + +`MODE_FLOAT' + floating point modes. By default these are `SFmode', `DFmode', + `XFmode' and `TFmode'. + +`MODE_COMPLEX_INT' + Complex integer modes. (These are not currently implemented). + +`MODE_COMPLEX_FLOAT' + Complex floating point modes. By default these are `SCmode', + `DCmode', `XCmode', and `TCmode'. + +`MODE_FUNCTION' + Algol or Pascal function variables including a static chain. + (These are not currently implemented). + +`MODE_CC' + Modes representing condition code values. These are `CCmode' plus + any modes listed in the `EXTRA_CC_MODES' macro. *Note Jump + Patterns::, also see *Note Condition Code::. + +`MODE_RANDOM' + This is a catchall mode class for modes which don't fit into the + above classes. Currently `VOIDmode' and `BLKmode' are in + `MODE_RANDOM'. + + Here are some C macros that relate to machine modes: + +`GET_MODE (X)' + Returns the machine mode of the RTX X. + +`PUT_MODE (X, NEWMODE)' + Alters the machine mode of the RTX X to be NEWMODE. + +`NUM_MACHINE_MODES' + Stands for the number of machine modes available on the target + machine. This is one greater than the largest numeric value of any + machine mode. + +`GET_MODE_NAME (M)' + Returns the name of mode M as a string. + +`GET_MODE_CLASS (M)' + Returns the mode class of mode M. + +`GET_MODE_WIDER_MODE (M)' + Returns the next wider natural mode. For example, the expression + `GET_MODE_WIDER_MODE (QImode)' returns `HImode'. + +`GET_MODE_SIZE (M)' + Returns the size in bytes of a datum of mode M. + +`GET_MODE_BITSIZE (M)' + Returns the size in bits of a datum of mode M. + +`GET_MODE_MASK (M)' + Returns a bitmask containing 1 for all bits in a word that fit + within mode M. This macro can only be used for modes whose + bitsize is less than or equal to `HOST_BITS_PER_INT'. + +`GET_MODE_ALIGNMENT (M))' + Return the required alignment, in bits, for an object of mode M. + +`GET_MODE_UNIT_SIZE (M)' + Returns the size in bytes of the subunits of a datum of mode M. + This is the same as `GET_MODE_SIZE' except in the case of complex + modes. For them, the unit size is the size of the real or + imaginary part. + +`GET_MODE_NUNITS (M)' + Returns the number of units contained in a mode, i.e., + `GET_MODE_SIZE' divided by `GET_MODE_UNIT_SIZE'. + +`GET_CLASS_NARROWEST_MODE (C)' + Returns the narrowest mode in mode class C. + + The global variables `byte_mode' and `word_mode' contain modes whose +classes are `MODE_INT' and whose bitsizes are either `BITS_PER_UNIT' or +`BITS_PER_WORD', respectively. On 32-bit machines, these are `QImode' +and `SImode', respectively.  -File: gcc.info, Node: Pattern Ordering, Next: Dependent Patterns, Prev: Standard Names, Up: Machine Desc +File: gcc.info, Node: Constants, Next: Regs and Memory, Prev: Machine Modes, Up: RTL -When the Order of Patterns Matters -================================== +Constant Expression Types +========================= - Sometimes an insn can match more than one instruction pattern. Then -the pattern that appears first in the machine description is the one -used. Therefore, more specific patterns (patterns that will match -fewer things) and faster instructions (those that will produce better -code when they do match) should usually go first in the description. - - In some cases the effect of ordering the patterns can be used to hide -a pattern when it is not valid. For example, the 68000 has an -instruction for converting a fullword to floating point and another for -converting a byte to floating point. An instruction converting an -integer to floating point could match either one. We put the pattern -to convert the fullword first to make sure that one will be used rather -than the other. (Otherwise a large integer might be generated as a -single-byte immediate quantity, which would not work.) Instead of using -this pattern ordering it would be possible to make the pattern for -convert-a-byte smart enough to deal properly with any constant value. + The simplest RTL expressions are those that represent constant +values. + +`(const_int I)' + This type of expression represents the integer value I. I is + customarily accessed with the macro `INTVAL' as in `INTVAL (EXP)', + which is equivalent to `XWINT (EXP, 0)'. + + There is only one expression object for the integer value zero; it + is the value of the variable `const0_rtx'. Likewise, the only + expression for integer value one is found in `const1_rtx', the only + expression for integer value two is found in `const2_rtx', and the + only expression for integer value negative one is found in + `constm1_rtx'. Any attempt to create an expression of code + `const_int' and value zero, one, two or negative one will return + `const0_rtx', `const1_rtx', `const2_rtx' or `constm1_rtx' as + appropriate. + + Similarly, there is only one object for the integer whose value is + `STORE_FLAG_VALUE'. It is found in `const_true_rtx'. If + `STORE_FLAG_VALUE' is one, `const_true_rtx' and `const1_rtx' will + point to the same object. If `STORE_FLAG_VALUE' is -1, + `const_true_rtx' and `constm1_rtx' will point to the same object. + +`(const_double:M ADDR I0 I1 ...)' + Represents either a floating-point constant of mode M or an + integer constant too large to fit into `HOST_BITS_PER_WIDE_INT' + bits but small enough to fit within twice that number of bits (GNU + CC does not provide a mechanism to represent even larger + constants). In the latter case, M will be `VOIDmode'. + + ADDR is used to contain the `mem' expression that corresponds to + the location in memory that at which the constant can be found. If + it has not been allocated a memory location, but is on the chain + of all `const_double' expressions in this compilation (maintained + using an undisplayed field), ADDR contains `const0_rtx'. If it is + not on the chain, ADDR contains `cc0_rtx'. ADDR is customarily + accessed with the macro `CONST_DOUBLE_MEM' and the chain field via + `CONST_DOUBLE_CHAIN'. + + If M is `VOIDmode', the bits of the value are stored in I0 and I1. + I0 is customarily accessed with the macro `CONST_DOUBLE_LOW' and + I1 with `CONST_DOUBLE_HIGH'. + + If the constant is floating point (regardless of its precision), + then the number of integers used to store the value depends on the + size of `REAL_VALUE_TYPE' (*note Cross-compilation::.). The + integers represent a floating point number, but not precisely in + the target machine's or host machine's floating point format. To + convert them to the precise bit pattern used by the target + machine, use the macro `REAL_VALUE_TO_TARGET_DOUBLE' and friends + (*note Data Output::.). + + The macro `CONST0_RTX (MODE)' refers to an expression with value 0 + in mode MODE. If mode MODE is of mode class `MODE_INT', it + returns `const0_rtx'. Otherwise, it returns a `CONST_DOUBLE' + expression in mode MODE. Similarly, the macro `CONST1_RTX (MODE)' + refers to an expression with value 1 in mode MODE and similarly + for `CONST2_RTX'. + +`(const_string STR)' + Represents a constant string with value STR. Currently this is + used only for insn attributes (*note Insn Attributes::.) since + constant strings in C are placed in memory. + +`(symbol_ref:MODE SYMBOL)' + Represents the value of an assembler label for data. SYMBOL is a + string that describes the name of the assembler label. If it + starts with a `*', the label is the rest of SYMBOL not including + the `*'. Otherwise, the label is SYMBOL, usually prefixed with + `_'. + + The `symbol_ref' contains a mode, which is usually `Pmode'. + Usually that is the only mode for which a symbol is directly valid. + +`(label_ref LABEL)' + Represents the value of an assembler label for code. It contains + one operand, an expression, which must be a `code_label' that + appears in the instruction sequence to identify the place where + the label should go. + + The reason for using a distinct expression type for code label + references is so that jump optimization can distinguish them. + +`(const:M EXP)' + Represents a constant that is the result of an assembly-time + arithmetic computation. The operand, EXP, is an expression that + contains only constants (`const_int', `symbol_ref' and `label_ref' + expressions) combined with `plus' and `minus'. However, not all + combinations are valid, since the assembler cannot do arbitrary + arithmetic on relocatable symbols. + + M should be `Pmode'. + +`(high:M EXP)' + Represents the high-order bits of EXP, usually a `symbol_ref'. + The number of bits is machine-dependent and is normally the number + of bits specified in an instruction that initializes the high + order bits of a register. It is used with `lo_sum' to represent + the typical two-instruction sequence used in RISC machines to + reference a global memory location. + + M should be `Pmode'.  -File: gcc.info, Node: Dependent Patterns, Next: Jump Patterns, Prev: Pattern Ordering, Up: Machine Desc +File: gcc.info, Node: Regs and Memory, Next: Arithmetic, Prev: Constants, Up: RTL + +Registers and Memory +==================== -Interdependence of Patterns -=========================== + Here are the RTL expression types for describing access to machine +registers and to main memory. - Every machine description must have a named pattern for each of the -conditional branch names `bCOND'. The recognition template must always -have the form - - (set (pc) - (if_then_else (COND (cc0) (const_int 0)) - (label_ref (match_operand 0 "" "")) - (pc))) - -In addition, every machine description must have an anonymous pattern -for each of the possible reverse-conditional branches. Their templates -look like - - (set (pc) - (if_then_else (COND (cc0) (const_int 0)) - (pc) - (label_ref (match_operand 0 "" "")))) - -They are necessary because jump optimization can turn direct-conditional -branches into reverse-conditional branches. - - It is often convenient to use the `match_operator' construct to -reduce the number of patterns that must be specified for branches. For -example, - - (define_insn "" - [(set (pc) - (if_then_else (match_operator 0 "comparison_operator" - [(cc0) (const_int 0)]) - (pc) - (label_ref (match_operand 1 "" ""))))] - "CONDITION" - "...") - - In some cases machines support instructions identical except for the -machine mode of one or more operands. For example, there may be -"sign-extend halfword" and "sign-extend byte" instructions whose -patterns are - - (set (match_operand:SI 0 ...) - (extend:SI (match_operand:HI 1 ...))) - - (set (match_operand:SI 0 ...) - (extend:SI (match_operand:QI 1 ...))) - -Constant integers do not specify a machine mode, so an instruction to -extend a constant value could match either pattern. The pattern it -actually will match is the one that appears first in the file. For -correct results, this must be the one for the widest possible mode -(`HImode', here). If the pattern matches the `QImode' instruction, the -results will be incorrect if the constant value does not actually fit -that mode. - - Such instructions to extend constants are rarely generated because -they are optimized away, but they do occasionally happen in nonoptimized -compilations. - - If a constraint in a pattern allows a constant, the reload pass may -replace a register with a constant permitted by the constraint in some -cases. Similarly for memory references. You must ensure that the -predicate permits all objects allowed by the constraints to prevent the -compiler from crashing. - - Because of this substitution, you should not provide separate -patterns for increment and decrement instructions. Instead, they -should be generated from the same pattern that supports -register-register add insns by examining the operands and generating -the appropriate machine instruction. +`(reg:M N)' + For small values of the integer N (those that are less than + `FIRST_PSEUDO_REGISTER'), this stands for a reference to machine + register number N: a "hard register". For larger values of N, it + stands for a temporary value or "pseudo register". The compiler's + strategy is to generate code assuming an unlimited number of such + pseudo registers, and later convert them into hard registers or + into memory references. + + M is the machine mode of the reference. It is necessary because + machines can generally refer to each register in more than one + mode. For example, a register may contain a full word but there + may be instructions to refer to it as a half word or as a single + byte, as well as instructions to refer to it as a floating point + number of various precisions. + + Even for a register that the machine can access in only one mode, + the mode must always be specified. + + The symbol `FIRST_PSEUDO_REGISTER' is defined by the machine + description, since the number of hard registers on the machine is + an invariant characteristic of the machine. Note, however, that + not all of the machine registers must be general registers. All + the machine registers that can be used for storage of data are + given hard register numbers, even those that can be used only in + certain instructions or can hold only certain types of data. + + A hard register may be accessed in various modes throughout one + function, but each pseudo register is given a natural mode and is + accessed only in that mode. When it is necessary to describe an + access to a pseudo register using a nonnatural mode, a `subreg' + expression is used. + + A `reg' expression with a machine mode that specifies more than + one word of data may actually stand for several consecutive + registers. If in addition the register number specifies a + hardware register, then it actually represents several consecutive + hardware registers starting with the specified one. + + Each pseudo register number used in a function's RTL code is + represented by a unique `reg' expression. + + Some pseudo register numbers, those within the range of + `FIRST_VIRTUAL_REGISTER' to `LAST_VIRTUAL_REGISTER' only appear + during the RTL generation phase and are eliminated before the + optimization phases. These represent locations in the stack frame + that cannot be determined until RTL generation for the function + has been completed. The following virtual register numbers are + defined: + + `VIRTUAL_INCOMING_ARGS_REGNUM' + This points to the first word of the incoming arguments + passed on the stack. Normally these arguments are placed + there by the caller, but the callee may have pushed some + arguments that were previously passed in registers. + + When RTL generation is complete, this virtual register is + replaced by the sum of the register given by + `ARG_POINTER_REGNUM' and the value of `FIRST_PARM_OFFSET'. + + `VIRTUAL_STACK_VARS_REGNUM' + If `FRAME_GROWS_DOWNWARD' is defined, this points to + immediately above the first variable on the stack. + Otherwise, it points to the first variable on the stack. + + `VIRTUAL_STACK_VARS_REGNUM' is replaced with the sum of the + register given by `FRAME_POINTER_REGNUM' and the value + `STARTING_FRAME_OFFSET'. + + `VIRTUAL_STACK_DYNAMIC_REGNUM' + This points to the location of dynamically allocated memory + on the stack immediately after the stack pointer has been + adjusted by the amount of memory desired. + + This virtual register is replaced by the sum of the register + given by `STACK_POINTER_REGNUM' and the value + `STACK_DYNAMIC_OFFSET'. + + `VIRTUAL_OUTGOING_ARGS_REGNUM' + This points to the location in the stack at which outgoing + arguments should be written when the stack is pre-pushed + (arguments pushed using push insns should always use + `STACK_POINTER_REGNUM'). + + This virtual register is replaced by the sum of the register + given by `STACK_POINTER_REGNUM' and the value + `STACK_POINTER_OFFSET'. + +`(subreg:M REG WORDNUM)' + `subreg' expressions are used to refer to a register in a machine + mode other than its natural one, or to refer to one register of a + multi-word `reg' that actually refers to several registers. + + Each pseudo-register has a natural mode. If it is necessary to + operate on it in a different mode--for example, to perform a + fullword move instruction on a pseudo-register that contains a + single byte--the pseudo-register must be enclosed in a `subreg'. + In such a case, WORDNUM is zero. + + Usually M is at least as narrow as the mode of REG, in which case + it is restricting consideration to only the bits of REG that are + in M. + + Sometimes M is wider than the mode of REG. These `subreg' + expressions are often called "paradoxical". They are used in + cases where we want to refer to an object in a wider mode but do + not care what value the additional bits have. The reload pass + ensures that paradoxical references are only made to hard + registers. + + The other use of `subreg' is to extract the individual registers of + a multi-register value. Machine modes such as `DImode' and + `TImode' can indicate values longer than a word, values which + usually require two or more consecutive registers. To access one + of the registers, use a `subreg' with mode `SImode' and a WORDNUM + that says which register. + + Storing in a non-paradoxical `subreg' has undefined results for + bits belonging to the same word as the `subreg'. This laxity makes + it easier to generate efficient code for such instructions. To + represent an instruction that preserves all the bits outside of + those in the `subreg', use `strict_low_part' around the `subreg'. + + The compilation parameter `WORDS_BIG_ENDIAN', if set to 1, says + that word number zero is the most significant part; otherwise, it + is the least significant part. + + Between the combiner pass and the reload pass, it is possible to + have a paradoxical `subreg' which contains a `mem' instead of a + `reg' as its first operand. After the reload pass, it is also + possible to have a non-paradoxical `subreg' which contains a + `mem'; this usually occurs when the `mem' is a stack slot which + replaced a pseudo register. + + Note that it is not valid to access a `DFmode' value in `SFmode' + using a `subreg'. On some machines the most significant part of a + `DFmode' value does not have the same format as a single-precision + floating value. + + It is also not valid to access a single word of a multi-word value + in a hard register when less registers can hold the value than + would be expected from its size. For example, some 32-bit + machines have floating-point registers that can hold an entire + `DFmode' value. If register 10 were such a register `(subreg:SI + (reg:DF 10) 1)' would be invalid because there is no way to + convert that reference to a single machine register. The reload + pass prevents `subreg' expressions such as these from being formed. + + The first operand of a `subreg' expression is customarily accessed + with the `SUBREG_REG' macro and the second operand is customarily + accessed with the `SUBREG_WORD' macro. + +`(scratch:M)' + This represents a scratch register that will be required for the + execution of a single instruction and not used subsequently. It is + converted into a `reg' by either the local register allocator or + the reload pass. + + `scratch' is usually present inside a `clobber' operation (*note + Side Effects::.). + +`(cc0)' + This refers to the machine's condition code register. It has no + operands and may not have a machine mode. There are two ways to + use it: + + * To stand for a complete set of condition code flags. This is + best on most machines, where each comparison sets the entire + series of flags. + + With this technique, `(cc0)' may be validly used in only two + contexts: as the destination of an assignment (in test and + compare instructions) and in comparison operators comparing + against zero (`const_int' with value zero; that is to say, + `const0_rtx'). + + * To stand for a single flag that is the result of a single + condition. This is useful on machines that have only a + single flag bit, and in which comparison instructions must + specify the condition to test. + + With this technique, `(cc0)' may be validly used in only two + contexts: as the destination of an assignment (in test and + compare instructions) where the source is a comparison + operator, and as the first operand of `if_then_else' (in a + conditional branch). + + There is only one expression object of code `cc0'; it is the value + of the variable `cc0_rtx'. Any attempt to create an expression of + code `cc0' will return `cc0_rtx'. + + Instructions can set the condition code implicitly. On many + machines, nearly all instructions set the condition code based on + the value that they compute or store. It is not necessary to + record these actions explicitly in the RTL because the machine + description includes a prescription for recognizing the + instructions that do so (by means of the macro + `NOTICE_UPDATE_CC'). *Note Condition Code::. Only instructions + whose sole purpose is to set the condition code, and instructions + that use the condition code, need mention `(cc0)'. + + On some machines, the condition code register is given a register + number and a `reg' is used instead of `(cc0)'. This is usually the + preferable approach if only a small subset of instructions modify + the condition code. Other machines store condition codes in + general registers; in such cases a pseudo register should be used. + + Some machines, such as the Sparc and RS/6000, have two sets of + arithmetic instructions, one that sets and one that does not set + the condition code. This is best handled by normally generating + the instruction that does not set the condition code, and making a + pattern that both performs the arithmetic and sets the condition + code register (which would not be `(cc0)' in this case). For + examples, search for `addcc' and `andcc' in `sparc.md'. + +`(pc)' + This represents the machine's program counter. It has no operands + and may not have a machine mode. `(pc)' may be validly used only + in certain specific contexts in jump instructions. + + There is only one expression object of code `pc'; it is the value + of the variable `pc_rtx'. Any attempt to create an expression of + code `pc' will return `pc_rtx'. + + All instructions that do not jump alter the program counter + implicitly by incrementing it, but there is no need to mention + this in the RTL. + +`(mem:M ADDR)' + This RTX represents a reference to main memory at an address + represented by the expression ADDR. M specifies how large a unit + of memory is accessed.  -File: gcc.info, Node: Jump Patterns, Next: Insn Canonicalizations, Prev: Dependent Patterns, Up: Machine Desc +File: gcc.info, Node: Arithmetic, Next: Comparisons, Prev: Regs and Memory, Up: RTL -Defining Jump Instruction Patterns -================================== +RTL Expressions for Arithmetic +============================== + + Unless otherwise specified, all the operands of arithmetic +expressions must be valid for mode M. An operand is valid for mode M +if it has mode M, or if it is a `const_int' or `const_double' and M is +a mode of class `MODE_INT'. + + For commutative binary operations, constants should be placed in the +second operand. + +`(plus:M X Y)' + Represents the sum of the values represented by X and Y carried + out in machine mode M. + +`(lo_sum:M X Y)' + Like `plus', except that it represents that sum of X and the + low-order bits of Y. The number of low order bits is + machine-dependent but is normally the number of bits in a `Pmode' + item minus the number of bits set by the `high' code (*note + Constants::.). + + M should be `Pmode'. + +`(minus:M X Y)' + Like `plus' but represents subtraction. + +`(compare:M X Y)' + Represents the result of subtracting Y from X for purposes of + comparison. The result is computed without overflow, as if with + infinite precision. + + Of course, machines can't really subtract with infinite precision. + However, they can pretend to do so when only the sign of the + result will be used, which is the case when the result is stored + in the condition code. And that is the only way this kind of + expression may validly be used: as a value to be stored in the + condition codes. + + The mode M is not related to the modes of X and Y, but instead is + the mode of the condition code value. If `(cc0)' is used, it is + `VOIDmode'. Otherwise it is some mode in class `MODE_CC', often + `CCmode'. *Note Condition Code::. + + Normally, X and Y must have the same mode. Otherwise, `compare' + is valid only if the mode of X is in class `MODE_INT' and Y is a + `const_int' or `const_double' with mode `VOIDmode'. The mode of X + determines what mode the comparison is to be done in; thus it must + not be `VOIDmode'. + + If one of the operands is a constant, it should be placed in the + second operand and the comparison code adjusted as appropriate. + + A `compare' specifying two `VOIDmode' constants is not valid since + there is no way to know in what mode the comparison is to be + performed; the comparison must either be folded during the + compilation or the first operand must be loaded into a register + while its mode is still known. + +`(neg:M X)' + Represents the negation (subtraction from zero) of the value + represented by X, carried out in mode M. + +`(mult:M X Y)' + Represents the signed product of the values represented by X and Y + carried out in machine mode M. + + Some machines support a multiplication that generates a product + wider than the operands. Write the pattern for this as + + (mult:M (sign_extend:M X) (sign_extend:M Y)) + + where M is wider than the modes of X and Y, which need not be the + same. + + Write patterns for unsigned widening multiplication similarly using + `zero_extend'. + +`(div:M X Y)' + Represents the quotient in signed division of X by Y, carried out + in machine mode M. If M is a floating point mode, it represents + the exact quotient; otherwise, the integerized quotient. + + Some machines have division instructions in which the operands and + quotient widths are not all the same; you should represent such + instructions using `truncate' and `sign_extend' as in, + + (truncate:M1 (div:M2 X (sign_extend:M2 Y))) + +`(udiv:M X Y)' + Like `div' but represents unsigned division. + +`(mod:M X Y)' +`(umod:M X Y)' + Like `div' and `udiv' but represent the remainder instead of the + quotient. + +`(smin:M X Y)' +`(smax:M X Y)' + Represents the smaller (for `smin') or larger (for `smax') of X + and Y, interpreted as signed integers in mode M. + +`(umin:M X Y)' +`(umax:M X Y)' + Like `smin' and `smax', but the values are interpreted as unsigned + integers. + +`(not:M X)' + Represents the bitwise complement of the value represented by X, + carried out in mode M, which must be a fixed-point machine mode. + +`(and:M X Y)' + Represents the bitwise logical-and of the values represented by X + and Y, carried out in machine mode M, which must be a fixed-point + machine mode. + +`(ior:M X Y)' + Represents the bitwise inclusive-or of the values represented by X + and Y, carried out in machine mode M, which must be a fixed-point + mode. + +`(xor:M X Y)' + Represents the bitwise exclusive-or of the values represented by X + and Y, carried out in machine mode M, which must be a fixed-point + mode. + +`(ashift:M X C)' + Represents the result of arithmetically shifting X left by C + places. X have mode M, a fixed-point machine mode. C be a + fixed-point mode or be a constant with mode `VOIDmode'; which mode + is determined by the mode called for in the machine description + entry for the left-shift instruction. For example, on the Vax, + the mode of C is `QImode' regardless of M. + +`(lshiftrt:M X C)' +`(ashiftrt:M X C)' + Like `ashift' but for right shift. Unlike the case for left shift, + these two operations are distinct. + +`(rotate:M X C)' +`(rotatert:M X C)' + Similar but represent left and right rotate. If C is a constant, + use `rotate'. + +`(abs:M X)' + Represents the absolute value of X, computed in mode M. + +`(sqrt:M X)' + Represents the square root of X, computed in mode M. Most often M + will be a floating point mode. + +`(ffs:M X)' + Represents one plus the index of the least significant 1-bit in X, + represented as an integer of mode M. (The value is zero if X is + zero.) The mode of X need not be M; depending on the target + machine, various mode combinations may be valid. + + +File: gcc.info, Node: Comparisons, Next: Bit Fields, Prev: Arithmetic, Up: RTL + +Comparison Operations +===================== + + Comparison operators test a relation on two operands and are +considered to represent a machine-dependent nonzero value described by, +but not necessarily equal to, `STORE_FLAG_VALUE' (*note Misc::.) if the +relation holds, or zero if it does not. The mode of the comparison +operation is independent of the mode of the data being compared. If +the comparison operation is being tested (e.g., the first operand of an +`if_then_else'), the mode must be `VOIDmode'. If the comparison +operation is producing data to be stored in some variable, the mode +must be in class `MODE_INT'. All comparison operations producing data +must use the same mode, which is machine-specific. + + There are two ways that comparison operations may be used. The +comparison operators may be used to compare the condition codes `(cc0)' +against zero, as in `(eq (cc0) (const_int 0))'. Such a construct +actually refers to the result of the preceding instruction in which the +condition codes were set. The instructing setting the condition code +must be adjacent to the instruction using the condition code; only +`note' insns may separate them. + + Alternatively, a comparison operation may directly compare two data +objects. The mode of the comparison is determined by the operands; they +must both be valid for a common machine mode. A comparison with both +operands constant would be invalid as the machine mode could not be +deduced from it, but such a comparison should never exist in RTL due to +constant folding. + + In the example above, if `(cc0)' were last set to `(compare X Y)', +the comparison operation is identical to `(eq X Y)'. Usually only one +style of comparisons is supported on a particular machine, but the +combine pass will try to merge the operations to produce the `eq' shown +in case it exists in the context of the particular insn involved. + + Inequality comparisons come in two flavors, signed and unsigned. +Thus, there are distinct expression codes `gt' and `gtu' for signed and +unsigned greater-than. These can produce different results for the same +pair of integer values: for example, 1 is signed greater-than -1 but not +unsigned greater-than, because -1 when regarded as unsigned is actually +`0xffffffff' which is greater than 1. + + The signed comparisons are also used for floating point values. +Floating point comparisons are distinguished by the machine modes of +the operands. + +`(eq:M X Y)' + 1 if the values represented by X and Y are equal, otherwise 0. + +`(ne:M X Y)' + 1 if the values represented by X and Y are not equal, otherwise 0. + +`(gt:M X Y)' + 1 if the X is greater than Y. If they are fixed-point, the + comparison is done in a signed sense. + +`(gtu:M X Y)' + Like `gt' but does unsigned comparison, on fixed-point numbers + only. + +`(lt:M X Y)' +`(ltu:M X Y)' + Like `gt' and `gtu' but test for "less than". + +`(ge:M X Y)' +`(geu:M X Y)' + Like `gt' and `gtu' but test for "greater than or equal". + +`(le:M X Y)' +`(leu:M X Y)' + Like `gt' and `gtu' but test for "less than or equal". + +`(if_then_else COND THEN ELSE)' + This is not a comparison operation but is listed here because it is + always used in conjunction with a comparison operation. To be + precise, COND is a comparison expression. This expression + represents a choice, according to COND, between the value + represented by THEN and the one represented by ELSE. + + On most machines, `if_then_else' expressions are valid only to + express conditional jumps. + +`(cond [TEST1 VALUE1 TEST2 VALUE2 ...] DEFAULT)' + Similar to `if_then_else', but more general. Each of TEST1, + TEST2, ... is performed in turn. The result of this expression is + the VALUE corresponding to the first non-zero test, or DEFAULT if + none of the tests are non-zero expressions. + + This is currently not valid for instruction patterns and is + supported only for insn attributes. *Note Insn Attributes::. + + +File: gcc.info, Node: Bit Fields, Next: Conversions, Prev: Comparisons, Up: RTL - For most machines, GNU CC assumes that the machine has a condition -code. A comparison insn sets the condition code, recording the results -of both signed and unsigned comparison of the given operands. A -separate branch insn tests the condition code and branches or not -according its value. The branch insns come in distinct signed and -unsigned flavors. Many common machines, such as the Vax, the 68000 and -the 32000, work this way. - - Some machines have distinct signed and unsigned compare -instructions, and only one set of conditional branch instructions. The -easiest way to handle these machines is to treat them just like the -others until the final stage where assembly code is written. At this -time, when outputting code for the compare instruction, peek ahead at -the following branch using `next_cc0_user (insn)'. (The variable -`insn' refers to the insn being output, in the output-writing code in -an instruction pattern.) If the RTL says that is an unsigned branch, -output an unsigned compare; otherwise output a signed compare. When -the branch itself is output, you can treat signed and unsigned branches -identically. - - The reason you can do this is that GNU CC always generates a pair of -consecutive RTL insns, possibly separated by `note' insns, one to set -the condition code and one to test it, and keeps the pair inviolate -until the end. - - To go with this technique, you must define the machine-description -macro `NOTICE_UPDATE_CC' to do `CC_STATUS_INIT'; in other words, no -compare instruction is superfluous. - - Some machines have compare-and-branch instructions and no condition -code. A similar technique works for them. When it is time to "output" -a compare instruction, record its operands in two static variables. -When outputting the branch-on-condition-code instruction that follows, -actually output a compare-and-branch instruction that uses the -remembered operands. - - It also works to define patterns for compare-and-branch instructions. -In optimizing compilation, the pair of compare and branch instructions -will be combined according to these patterns. But this does not happen -if optimization is not requested. So you must use one of the solutions -above in addition to any special patterns you define. - - In many RISC machines, most instructions do not affect the condition -code and there may not even be a separate condition code register. On -these machines, the restriction that the definition and use of the -condition code be adjacent insns is not necessary and can prevent -important optimizations. For example, on the IBM RS/6000, there is a -delay for taken branches unless the condition code register is set three -instructions earlier than the conditional branch. The instruction -scheduler cannot perform this optimization if it is not permitted to -separate the definition and use of the condition code register. - - On these machines, do not use `(cc0)', but instead use a register to -represent the condition code. If there is a specific condition code -register in the machine, use a hard register. If the condition code or -comparison result can be placed in any general register, or if there are -multiple condition registers, use a pseudo register. - - On some machines, the type of branch instruction generated may -depend on the way the condition code was produced; for example, on the -68k and Sparc, setting the condition code directly from an add or -subtract instruction does not clear the overflow bit the way that a test -instruction does, so a different branch instruction must be used for -some conditional branches. For machines that use `(cc0)', the set and -use of the condition code must be adjacent (separated only by `note' -insns) allowing flags in `cc_status' to be used. (*Note Condition -Code::.) Also, the comparison and branch insns can be located from -each other by using the functions `prev_cc0_setter' and `next_cc0_user'. - - However, this is not true on machines that do not use `(cc0)'. On -those machines, no assumptions can be made about the adjacency of the -compare and branch insns and the above methods cannot be used. Instead, -we use the machine mode of the condition code register to record -different formats of the condition code register. - - Registers used to store the condition code value should have a mode -that is in class `MODE_CC'. Normally, it will be `CCmode'. If -additional modes are required (as for the add example mentioned above in -the Sparc), define the macro `EXTRA_CC_MODES' to list the additional -modes required (*note Condition Code::.). Also define `EXTRA_CC_NAMES' -to list the names of those modes and `SELECT_CC_MODE' to choose a mode -given an operand of a compare. - - If it is known during RTL generation that a different mode will be -required (for example, if the machine has separate compare instructions -for signed and unsigned quantities, like most IBM processors), they can -be specified at that time. - - If the cases that require different modes would be made by -instruction combination, the macro `SELECT_CC_MODE' determines which -machine mode should be used for the comparison result. The patterns -should be written using that mode. To support the case of the add on -the Sparc discussed above, we have the pattern - - (define_insn "" - [(set (reg:CC_NOOV 0) - (compare:CC_NOOV - (plus:SI (match_operand:SI 0 "register_operand" "%r") - (match_operand:SI 1 "arith_operand" "rI")) - (const_int 0)))] - "" - "...") +Bit Fields +========== - The `SELECT_CC_MODE' macro on the Sparc returns `CC_NOOVmode' for -comparisons whose argument is a `plus'. + Special expression codes exist to represent bitfield instructions. +These types of expressions are lvalues in RTL; they may appear on the +left side of an assignment, indicating insertion of a value into the +specified bit field. + +`(sign_extract:M LOC SIZE POS)' + This represents a reference to a sign-extended bit field contained + or starting in LOC (a memory or register reference). The bit field + is SIZE bits wide and starts at bit POS. The compilation option + `BITS_BIG_ENDIAN' says which end of the memory unit POS counts + from. + + If LOC is in memory, its mode must be a single-byte integer mode. + If LOC is in a register, the mode to use is specified by the + operand of the `insv' or `extv' pattern (*note Standard Names::.) + and is usually a full-word integer mode. + + The mode of POS is machine-specific and is also specified in the + `insv' or `extv' pattern. + + The mode M is the same as the mode that would be used for LOC if + it were a register. + +`(zero_extract:M LOC SIZE POS)' + Like `sign_extract' but refers to an unsigned or zero-extended bit + field. The same sequence of bits are extracted, but they are + filled to an entire word with zeros instead of by sign-extension.  -File: gcc.info, Node: Insn Canonicalizations, Next: Peephole Definitions, Prev: Jump Patterns, Up: Machine Desc +File: gcc.info, Node: Conversions, Next: RTL Declarations, Prev: Bit Fields, Up: RTL -Canonicalization of Instructions -================================ +Conversions +=========== - There are often cases where multiple RTL expressions could represent -an operation performed by a single machine instruction. This situation -is most commonly encountered with logical, branch, and -multiply-accumulate instructions. In such cases, the compiler attempts -to convert these multiple RTL expressions into a single canonical form -to reduce the number of insn patterns required. - - In addition to algebraic simplifications, following canonicalizations -are performed: - - * For commutative and comparison operators, a constant is always - made the second operand. If a machine only supports a constant as - the second operand, only patterns that match a constant in the - second operand need be supplied. - - For these operators, if only one operand is a `neg', `not', - `mult', `plus', or `minus' expression, it will be the first - operand. - - * For the `compare' operator, a constant is always the second operand - on machines where `cc0' is used (*note Jump Patterns::.). On other - machines, there are rare cases where the compiler might want to - construct a `compare' with a constant as the first operand. - However, these cases are not common enough for it to be worthwhile - to provide a pattern matching a constant as the first operand - unless the machine actually has such an instruction. - - An operand of `neg', `not', `mult', `plus', or `minus' is made the - first operand under the same conditions as above. - - * `(minus X (const_int N))' is converted to `(plus X (const_int - -N))'. - - * Within address computations (i.e., inside `mem'), a left shift is - converted into the appropriate multiplication by a power of two. - - De`Morgan's Law is used to move bitwise negation inside a bitwise - logical-and or logical-or operation. If this results in only one - operand being a `not' expression, it will be the first one. - - A machine that has an instruction that performs a bitwise - logical-and of one operand with the bitwise negation of the other - should specify the pattern for that instruction as - - (define_insn "" - [(set (match_operand:M 0 ...) - (and:M (not:M (match_operand:M 1 ...)) - (match_operand:M 2 ...)))] - "..." - "...") - - Similarly, a pattern for a "NAND" instruction should be written - - (define_insn "" - [(set (match_operand:M 0 ...) - (ior:M (not:M (match_operand:M 1 ...)) - (not:M (match_operand:M 2 ...))))] - "..." - "...") - - In both cases, it is not necessary to include patterns for the many - logically equivalent RTL expressions. - - * The only possible RTL expressions involving both bitwise - exclusive-or and bitwise negation are `(xor:M X) Y)' and `(not:M - (xor:M X Y))'. - - * The sum of three items, one of which is a constant, will only - appear in the form - - (plus:M (plus:M X Y) CONSTANT) - - * On machines that do not use `cc0', `(compare X (const_int 0))' - will be converted to X. - - * Equality comparisons of a group of bits (usually a single bit) - with zero will be written using `zero_extract' rather than the - equivalent `and' or `sign_extract' operations. + All conversions between machine modes must be represented by +explicit conversion operations. For example, an expression which is +the sum of a byte and a full word cannot be written as `(plus:SI +(reg:QI 34) (reg:SI 80))' because the `plus' operation requires two +operands of the same machine mode. Therefore, the byte-sized operand +is enclosed in a conversion operation, as in + + (plus:SI (sign_extend:SI (reg:QI 34)) (reg:SI 80)) + + The conversion operation is not a mere placeholder, because there +may be more than one way of converting from a given starting mode to +the desired final mode. The conversion operation code says how to do +it. + + For all conversion operations, X must not be `VOIDmode' because the +mode in which to do the conversion would not be known. The conversion +must either be done at compile-time or X must be placed into a register. + +`(sign_extend:M X)' + Represents the result of sign-extending the value X to machine + mode M. M must be a fixed-point mode and X a fixed-point value of + a mode narrower than M. + +`(zero_extend:M X)' + Represents the result of zero-extending the value X to machine + mode M. M must be a fixed-point mode and X a fixed-point value of + a mode narrower than M. + +`(float_extend:M X)' + Represents the result of extending the value X to machine mode M. + m must be a floating point mode and X a floating point value of a + mode narrower than M. + +`(truncate:M X)' + Represents the result of truncating the value X to machine mode M. + M must be a fixed-point mode and X a fixed-point value of a mode + wider than M. + +`(float_truncate:M X)' + Represents the result of truncating the value X to machine mode M. + M must be a floating point mode and X a floating point value of a + mode wider than M. + +`(float:M X)' + Represents the result of converting fixed point value X, regarded + as signed, to floating point mode M. + +`(unsigned_float:M X)' + Represents the result of converting fixed point value X, regarded + as unsigned, to floating point mode M. + +`(fix:M X)' + When M is a fixed point mode, represents the result of converting + floating point value X to mode M, regarded as signed. How + rounding is done is not specified, so this operation may be used + validly in compiling C code only for integer-valued operands. + +`(unsigned_fix:M X)' + Represents the result of converting floating point value X to + fixed point mode M, regarded as unsigned. How rounding is done is + not specified. + +`(fix:M X)' + When M is a floating point mode, represents the result of + converting floating point value X (valid for mode M) to an + integer, still represented in floating point mode M, by rounding + towards zero.  -File: gcc.info, Node: Peephole Definitions, Next: Expander Definitions, Prev: Insn Canonicalizations, Up: Machine Desc +File: gcc.info, Node: RTL Declarations, Next: Side Effects, Prev: Conversions, Up: RTL -Machine-Specific Peephole Optimizers -==================================== +Declarations +============ - In addition to instruction patterns the `md' file may contain -definitions of machine-specific peephole optimizations. + Declaration expression codes do not represent arithmetic operations +but rather state assertions about their operands. - The combiner does not notice certain peephole optimizations when the -data flow in the program does not suggest that it should try them. For -example, sometimes two consecutive insns related in purpose can be -combined even though the second one does not appear to use a register -computed in the first one. A machine-specific peephole optimizer can -detect such opportunities. - - A definition looks like this: - - (define_peephole - [INSN-PATTERN-1 - INSN-PATTERN-2 - ...] - "CONDITION" - "TEMPLATE" - "OPTIONAL INSN-ATTRIBUTES") - -The last string operand may be omitted if you are not using any -machine-specific information in this machine description. If present, -it must obey the same rules as in a `define_insn'. - - In this skeleton, INSN-PATTERN-1 and so on are patterns to match -consecutive insns. The optimization applies to a sequence of insns when -INSN-PATTERN-1 matches the first one, INSN-PATTERN-2 matches the next, -and so on. - - Each of the insns matched by a peephole must also match a -`define_insn'. Peepholes are checked only at the last stage just -before code generation, and only optionally. Therefore, any insn which -would match a peephole but no `define_insn' will cause a crash in code -generation in an unoptimized compilation, or at various optimization -stages. - - The operands of the insns are matched with `match_operands', -`match_operator', and `match_dup', as usual. What is not usual is that -the operand numbers apply to all the insn patterns in the definition. -So, you can check for identical operands in two insns by using -`match_operand' in one insn and `match_dup' in the other. - - The operand constraints used in `match_operand' patterns do not have -any direct effect on the applicability of the peephole, but they will -be validated afterward, so make sure your constraints are general enough -to apply whenever the peephole matches. If the peephole matches but -the constraints are not satisfied, the compiler will crash. - - It is safe to omit constraints in all the operands of the peephole; -or you can write constraints which serve as a double-check on the -criteria previously tested. - - Once a sequence of insns matches the patterns, the CONDITION is -checked. This is a C expression which makes the final decision whether -to perform the optimization (we do so if the expression is nonzero). If -CONDITION is omitted (in other words, the string is empty) then the -optimization is applied to every sequence of insns that matches the -patterns. - - The defined peephole optimizations are applied after register -allocation is complete. Therefore, the peephole definition can check -which operands have ended up in which kinds of registers, just by -looking at the operands. - - The way to refer to the operands in CONDITION is to write -`operands[I]' for operand number I (as matched by `(match_operand I -...)'). Use the variable `insn' to refer to the last of the insns -being matched; use `prev_nonnote_insn' to find the preceding insns. - - When optimizing computations with intermediate results, you can use -CONDITION to match only when the intermediate results are not used -elsewhere. Use the C expression `dead_or_set_p (INSN, OP)', where INSN -is the insn in which you expect the value to be used for the last time -(from the value of `insn', together with use of `prev_nonnote_insn'), -and OP is the intermediate value (from `operands[I]'). - - Applying the optimization means replacing the sequence of insns with -one new insn. The TEMPLATE controls ultimate output of assembler code -for this combined insn. It works exactly like the template of a -`define_insn'. Operand numbers in this template are the same ones used -in matching the original sequence of insns. - - The result of a defined peephole optimizer does not need to match -any of the insn patterns in the machine description; it does not even -have an opportunity to match them. The peephole optimizer definition -itself serves as the insn pattern to control how the insn is output. - - Defined peephole optimizers are run as assembler code is being -output, so the insns they produce are never combined or rearranged in -any way. - - Here is an example, taken from the 68000 machine description: - - (define_peephole - [(set (reg:SI 15) (plus:SI (reg:SI 15) (const_int 4))) - (set (match_operand:DF 0 "register_operand" "=f") - (match_operand:DF 1 "register_operand" "ad"))] - "FP_REG_P (operands[0]) && ! FP_REG_P (operands[1])" - "* - { - rtx xoperands[2]; - xoperands[1] = gen_rtx (REG, SImode, REGNO (operands[1]) + 1); - #ifdef MOTOROLA - output_asm_insn (\"move.l %1,(sp)\", xoperands); - output_asm_insn (\"move.l %1,-(sp)\", operands); - return \"fmove.d (sp)+,%0\"; - #else - output_asm_insn (\"movel %1,sp@\", xoperands); - output_asm_insn (\"movel %1,sp@-\", operands); - return \"fmoved sp@+,%0\"; - #endif - } - ") - - The effect of this optimization is to change - - jbsr _foobar - addql #4,sp - movel d1,sp@- - movel d0,sp@- - fmoved sp@+,fp0 - -into - - jbsr _foobar - movel d1,sp@ - movel d0,sp@- - fmoved sp@+,fp0 - - INSN-PATTERN-1 and so on look *almost* like the second operand of -`define_insn'. There is one important difference: the second operand -of `define_insn' consists of one or more RTX's enclosed in square -brackets. Usually, there is only one: then the same action can be -written as an element of a `define_peephole'. But when there are -multiple actions in a `define_insn', they are implicitly enclosed in a -`parallel'. Then you must explicitly write the `parallel', and the -square brackets within it, in the `define_peephole'. Thus, if an insn -pattern looks like this, - - (define_insn "divmodsi4" - [(set (match_operand:SI 0 "general_operand" "=d") - (div:SI (match_operand:SI 1 "general_operand" "0") - (match_operand:SI 2 "general_operand" "dmsK"))) - (set (match_operand:SI 3 "general_operand" "=d") - (mod:SI (match_dup 1) (match_dup 2)))] - "TARGET_68020" - "divsl%.l %2,%3:%0") - -then the way to mention this insn in a peephole is as follows: - - (define_peephole - [... - (parallel - [(set (match_operand:SI 0 "general_operand" "=d") - (div:SI (match_operand:SI 1 "general_operand" "0") - (match_operand:SI 2 "general_operand" "dmsK"))) - (set (match_operand:SI 3 "general_operand" "=d") - (mod:SI (match_dup 1) (match_dup 2)))]) - ...] - ...) +`(strict_low_part (subreg:M (reg:N R) 0))' + This expression code is used in only one context: as the + destination operand of a `set' expression. In addition, the + operand of this expression must be a non-paradoxical `subreg' + expression. + + The presence of `strict_low_part' says that the part of the + register which is meaningful in mode N, but is not part of mode M, + is not to be altered. Normally, an assignment to such a subreg is + allowed to have undefined effects on the rest of the register when + M is less than a word.