232 lines
7.7 KiB
C
232 lines
7.7 KiB
C
/* Internal functions.
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Copyright (C) 2011-2019 Free Software Foundation, Inc.
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This file is part of GCC.
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GCC is free software; you can redistribute it and/or modify it under
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the terms of the GNU General Public License as published by the Free
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Software Foundation; either version 3, or (at your option) any later
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version.
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GCC is distributed in the hope that it will be useful, but WITHOUT ANY
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WARRANTY; without even the implied warranty of MERCHANTABILITY or
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FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
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for more details.
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You should have received a copy of the GNU General Public License
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along with GCC; see the file COPYING3. If not see
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<http://www.gnu.org/licenses/>. */
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#ifndef GCC_INTERNAL_FN_H
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#define GCC_INTERNAL_FN_H
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/* INTEGER_CST values for IFN_UNIQUE function arg-0.
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UNSPEC: Undifferentiated UNIQUE.
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FORK and JOIN mark the points at which OpenACC partitioned
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execution is entered or exited.
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DEP_VAR = UNIQUE ({FORK,JOIN}, DEP_VAR, AXIS)
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HEAD_MARK and TAIL_MARK are used to demark the sequence entering
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or leaving partitioned execution.
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DEP_VAR = UNIQUE ({HEAD,TAIL}_MARK, REMAINING_MARKS, ...PRIMARY_FLAGS)
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The PRIMARY_FLAGS only occur on the first HEAD_MARK of a sequence. */
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#define IFN_UNIQUE_CODES \
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DEF(UNSPEC), \
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DEF(OACC_FORK), DEF(OACC_JOIN), \
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DEF(OACC_HEAD_MARK), DEF(OACC_TAIL_MARK)
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enum ifn_unique_kind {
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#define DEF(X) IFN_UNIQUE_##X
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IFN_UNIQUE_CODES
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#undef DEF
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};
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/* INTEGER_CST values for IFN_GOACC_LOOP arg-0. Allows the precise
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stepping of the compute geometry over the loop iterations to be
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deferred until it is known which compiler is generating the code.
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The action is encoded in a constant first argument.
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CHUNK_MAX = LOOP (CODE_CHUNKS, DIR, RANGE, STEP, CHUNK_SIZE, MASK)
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STEP = LOOP (CODE_STEP, DIR, RANGE, STEP, CHUNK_SIZE, MASK)
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OFFSET = LOOP (CODE_OFFSET, DIR, RANGE, STEP, CHUNK_SIZE, MASK, CHUNK_NO)
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BOUND = LOOP (CODE_BOUND, DIR, RANGE, STEP, CHUNK_SIZE, MASK, OFFSET)
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DIR - +1 for up loop, -1 for down loop
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RANGE - Range of loop (END - BASE)
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STEP - iteration step size
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CHUNKING - size of chunking, (constant zero for no chunking)
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CHUNK_NO - chunk number
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MASK - partitioning mask. */
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#define IFN_GOACC_LOOP_CODES \
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DEF(CHUNKS), DEF(STEP), DEF(OFFSET), DEF(BOUND)
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enum ifn_goacc_loop_kind {
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#define DEF(X) IFN_GOACC_LOOP_##X
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IFN_GOACC_LOOP_CODES
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#undef DEF
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};
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/* The GOACC_REDUCTION function defines a generic interface to support
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gang, worker and vector reductions. All calls are of the following
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form:
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V = REDUCTION (CODE, REF_TO_RES, LOCAL_VAR, LEVEL, OP, OFFSET)
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REF_TO_RES - is a reference to the original reduction varl, may be NULL
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LOCAL_VAR is the intermediate reduction variable
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LEVEL corresponds to the GOMP_DIM of the reduction
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OP is the tree code of the reduction operation
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OFFSET may be used as an offset into a reduction array for the
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reductions occuring at this level.
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In general the return value is LOCAL_VAR, which creates a data
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dependency between calls operating on the same reduction. */
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#define IFN_GOACC_REDUCTION_CODES \
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DEF(SETUP), DEF(INIT), DEF(FINI), DEF(TEARDOWN)
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enum ifn_goacc_reduction_kind {
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#define DEF(X) IFN_GOACC_REDUCTION_##X
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IFN_GOACC_REDUCTION_CODES
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#undef DEF
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};
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/* Initialize internal function tables. */
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extern void init_internal_fns ();
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/* Return the name of internal function FN. The name is only meaningful
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for dumps; it has no linkage. */
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extern const char *const internal_fn_name_array[];
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static inline const char *
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internal_fn_name (enum internal_fn fn)
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{
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return internal_fn_name_array[(int) fn];
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}
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extern internal_fn lookup_internal_fn (const char *);
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/* Return the ECF_* flags for function FN. */
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extern const int internal_fn_flags_array[];
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static inline int
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internal_fn_flags (enum internal_fn fn)
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{
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return internal_fn_flags_array[(int) fn];
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}
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/* Return fnspec for function FN. */
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extern GTY(()) const_tree internal_fn_fnspec_array[IFN_LAST + 1];
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static inline const_tree
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internal_fn_fnspec (enum internal_fn fn)
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{
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return internal_fn_fnspec_array[(int) fn];
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}
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/* Describes an internal function that maps directly to an optab. */
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struct direct_internal_fn_info
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{
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/* optabs can be parameterized by one or two modes. These fields describe
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how to select those modes from the types of the return value and
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arguments. A value of -1 says that the mode is determined by the
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return type while a value N >= 0 says that the mode is determined by
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the type of argument N. A value of -2 says that this internal
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function isn't directly mapped to an optab. */
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signed int type0 : 8;
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signed int type1 : 8;
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/* True if the function is pointwise, so that it can be vectorized by
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converting the return type and all argument types to vectors of the
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same number of elements. E.g. we can vectorize an IFN_SQRT on
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floats as an IFN_SQRT on vectors of N floats.
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This only needs 1 bit, but occupies the full 16 to ensure a nice
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layout. */
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unsigned int vectorizable : 16;
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};
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extern const direct_internal_fn_info direct_internal_fn_array[IFN_LAST + 1];
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/* Return true if FN is mapped directly to an optab. */
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inline bool
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direct_internal_fn_p (internal_fn fn)
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{
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return direct_internal_fn_array[fn].type0 >= -1;
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}
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/* Return true if FN is a direct internal function that can be vectorized by
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converting the return type and all argument types to vectors of the same
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number of elements. E.g. we can vectorize an IFN_SQRT on floats as an
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IFN_SQRT on vectors of N floats. */
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inline bool
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vectorizable_internal_fn_p (internal_fn fn)
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{
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return direct_internal_fn_array[fn].vectorizable;
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}
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/* Return optab information about internal function FN. Only meaningful
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if direct_internal_fn_p (FN). */
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inline const direct_internal_fn_info &
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direct_internal_fn (internal_fn fn)
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{
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gcc_checking_assert (direct_internal_fn_p (fn));
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return direct_internal_fn_array[fn];
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}
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extern tree_pair direct_internal_fn_types (internal_fn, tree, tree *);
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extern tree_pair direct_internal_fn_types (internal_fn, gcall *);
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extern bool direct_internal_fn_supported_p (internal_fn, tree_pair,
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optimization_type);
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extern bool direct_internal_fn_supported_p (internal_fn, tree,
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optimization_type);
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extern bool direct_internal_fn_supported_p (gcall *, optimization_type);
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/* Return true if FN is supported for types TYPE0 and TYPE1 when the
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optimization type is OPT_TYPE. The types are those associated with
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the "type0" and "type1" fields of FN's direct_internal_fn_info
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structure. */
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inline bool
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direct_internal_fn_supported_p (internal_fn fn, tree type0, tree type1,
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optimization_type opt_type)
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{
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return direct_internal_fn_supported_p (fn, tree_pair (type0, type1),
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opt_type);
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}
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extern int first_commutative_argument (internal_fn);
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extern bool set_edom_supported_p (void);
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extern internal_fn get_conditional_internal_fn (tree_code);
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extern internal_fn get_conditional_internal_fn (internal_fn);
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extern tree_code conditional_internal_fn_code (internal_fn);
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extern internal_fn get_unconditional_internal_fn (internal_fn);
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extern bool can_interpret_as_conditional_op_p (gimple *, tree *,
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tree_code *, tree (&)[3],
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tree *);
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extern bool internal_load_fn_p (internal_fn);
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extern bool internal_store_fn_p (internal_fn);
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extern bool internal_gather_scatter_fn_p (internal_fn);
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extern int internal_fn_mask_index (internal_fn);
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extern int internal_fn_stored_value_index (internal_fn);
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extern bool internal_gather_scatter_fn_supported_p (internal_fn, tree,
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tree, signop, int);
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extern void expand_internal_call (gcall *);
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extern void expand_internal_call (internal_fn, gcall *);
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extern void expand_PHI (internal_fn, gcall *);
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extern bool vectorized_internal_fn_supported_p (internal_fn, tree);
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#endif
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