377 lines
9.3 KiB
C
377 lines
9.3 KiB
C
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/* Function return value location for Linux/AArch64 ABI.
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Copyright (C) 2013 Red Hat, Inc.
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This file is part of elfutils.
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This file is free software; you can redistribute it and/or modify
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it under the terms of either
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* the GNU Lesser General Public License as published by the Free
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Software Foundation; either version 3 of the License, or (at
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your option) any later version
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or
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* the GNU General Public License as published by the Free
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Software Foundation; either version 2 of the License, or (at
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your option) any later version
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or both in parallel, as here.
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elfutils is distributed in the hope that it will be useful, but
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WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
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General Public License for more details.
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You should have received copies of the GNU General Public License and
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the GNU Lesser General Public License along with this program. If
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not, see <http://www.gnu.org/licenses/>. */
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#ifdef HAVE_CONFIG_H
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# include <config.h>
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#endif
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#include <stdio.h>
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#include <inttypes.h>
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#include <assert.h>
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#include <dwarf.h>
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#define BACKEND aarch64_
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#include "libebl_CPU.h"
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static int
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skip_until (Dwarf_Die *child, int tag)
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{
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int i;
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while (DWARF_TAG_OR_RETURN (child) != tag)
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if ((i = dwarf_siblingof (child, child)) != 0)
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/* If there are no members, then this is not a HFA. Errors
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are propagated. */
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return i;
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return 0;
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}
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static int
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dwarf_bytesize_aux (Dwarf_Die *die, Dwarf_Word *sizep)
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{
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int bits;
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if (((bits = 8 * dwarf_bytesize (die)) < 0
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&& (bits = dwarf_bitsize (die)) < 0)
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|| bits % 8 != 0)
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return -1;
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*sizep = bits / 8;
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return 0;
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}
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/* HFA (Homogeneous Floating-point Aggregate) is an aggregate type
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whose members are all of the same floating-point type, which is
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then base type of this HFA. Instead of being floating-point types
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directly, members can instead themselves be HFA. Such HFA fields
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are handled as if their type were HFA base type.
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This function returns 0 if TYPEDIE is HFA, 1 if it is not, or -1 if
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there were errors. In the former case, *SIZEP contains byte size
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of the base type (e.g. 8 for IEEE double). *COUNT is set to the
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number of leaf members of the HFA. */
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static int hfa_type (Dwarf_Die *ftypedie, int tag,
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Dwarf_Word *sizep, Dwarf_Word *countp);
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/* Return 0 if MEMBDIE refers to a member with a floating-point or HFA
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type, or 1 if it's not. Return -1 for errors. The meaning of the
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remaining arguments is as documented at hfa_type. */
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static int
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member_is_fp (Dwarf_Die *membdie, Dwarf_Word *sizep, Dwarf_Word *countp)
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{
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Dwarf_Die typedie;
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int tag = dwarf_peeled_die_type (membdie, &typedie);
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switch (tag)
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{
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case DW_TAG_base_type:;
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Dwarf_Word encoding;
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Dwarf_Attribute attr_mem;
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if (dwarf_attr_integrate (&typedie, DW_AT_encoding, &attr_mem) == NULL
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|| dwarf_formudata (&attr_mem, &encoding) != 0)
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return -1;
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switch (encoding)
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{
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case DW_ATE_complex_float:
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*countp = 2;
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break;
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case DW_ATE_float:
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*countp = 1;
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break;
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default:
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return 1;
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}
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if (dwarf_bytesize_aux (&typedie, sizep) < 0)
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return -1;
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*sizep /= *countp;
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return 0;
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case DW_TAG_structure_type:
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case DW_TAG_union_type:
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case DW_TAG_array_type:
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return hfa_type (&typedie, tag, sizep, countp);
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}
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return 1;
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}
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static int
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hfa_type (Dwarf_Die *ftypedie, int tag, Dwarf_Word *sizep, Dwarf_Word *countp)
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{
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assert (tag == DW_TAG_structure_type || tag == DW_TAG_class_type
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|| tag == DW_TAG_union_type || tag == DW_TAG_array_type);
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int i;
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if (tag == DW_TAG_array_type)
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{
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Dwarf_Word tot_size;
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if (dwarf_aggregate_size (ftypedie, &tot_size) < 0)
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return -1;
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/* For vector types, we don't care about the underlying
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type, but only about the vector type itself. */
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bool vec;
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Dwarf_Attribute attr_mem;
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if (dwarf_formflag (dwarf_attr_integrate (ftypedie, DW_AT_GNU_vector,
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&attr_mem), &vec) == 0
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&& vec)
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{
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*sizep = tot_size;
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*countp = 1;
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return 0;
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}
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if ((i = member_is_fp (ftypedie, sizep, countp)) == 0)
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{
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*countp = tot_size / *sizep;
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return 0;
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}
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return i;
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}
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/* Find first DW_TAG_member and determine its type. */
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Dwarf_Die member;
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if ((i = dwarf_child (ftypedie, &member) != 0))
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return i;
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if ((i = skip_until (&member, DW_TAG_member)) != 0)
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return i;
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*countp = 0;
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if ((i = member_is_fp (&member, sizep, countp)) != 0)
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return i;
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while ((i = dwarf_siblingof (&member, &member)) == 0
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&& (i = skip_until (&member, DW_TAG_member)) == 0)
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{
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Dwarf_Word size, count;
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if ((i = member_is_fp (&member, &size, &count)) != 0)
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return i;
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if (*sizep != size)
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return 1;
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*countp += count;
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}
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/* At this point we already have at least one FP member, which means
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FTYPEDIE is an HFA. So either return 0, or propagate error. */
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return i < 0 ? i : 0;
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}
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static int
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pass_in_gpr (const Dwarf_Op **locp, Dwarf_Word size)
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{
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static const Dwarf_Op loc[] =
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{
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{ .atom = DW_OP_reg0 }, { .atom = DW_OP_piece, .number = 8 },
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{ .atom = DW_OP_reg1 }, { .atom = DW_OP_piece, .number = 8 }
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};
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*locp = loc;
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return size <= 8 ? 1 : 4;
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}
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static int
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pass_by_ref (const Dwarf_Op **locp)
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{
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static const Dwarf_Op loc[] = { { .atom = DW_OP_breg0 } };
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*locp = loc;
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return 1;
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}
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static int
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pass_hfa (const Dwarf_Op **locp, Dwarf_Word size, Dwarf_Word count)
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{
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assert (count >= 1 && count <= 4);
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assert (size == 2 || size == 4 || size == 8 || size == 16);
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#define DEFINE_FPREG(NAME, SIZE) \
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static const Dwarf_Op NAME[] = { \
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{ .atom = DW_OP_regx, .number = 64 }, \
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{ .atom = DW_OP_piece, .number = SIZE }, \
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{ .atom = DW_OP_regx, .number = 65 }, \
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{ .atom = DW_OP_piece, .number = SIZE }, \
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{ .atom = DW_OP_regx, .number = 66 }, \
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{ .atom = DW_OP_piece, .number = SIZE }, \
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{ .atom = DW_OP_regx, .number = 67 }, \
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{ .atom = DW_OP_piece, .number = SIZE } \
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}
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switch (size)
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{
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case 2:;
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DEFINE_FPREG (loc_hfa_2, 2);
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*locp = loc_hfa_2;
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break;
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case 4:;
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DEFINE_FPREG (loc_hfa_4, 4);
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*locp = loc_hfa_4;
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break;
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case 8:;
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DEFINE_FPREG (loc_hfa_8, 8);
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*locp = loc_hfa_8;
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break;
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case 16:;
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DEFINE_FPREG (loc_hfa_16, 16);
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*locp = loc_hfa_16;
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break;
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}
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#undef DEFINE_FPREG
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return count == 1 ? 1 : 2 * count;
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}
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static int
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pass_in_simd (const Dwarf_Op **locp)
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{
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/* This is like passing single-element HFA. Size doesn't matter, so
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pretend it's for example double. */
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return pass_hfa (locp, 8, 1);
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}
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int
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aarch64_return_value_location (Dwarf_Die *functypedie, const Dwarf_Op **locp)
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{
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/* Start with the function's type, and get the DW_AT_type attribute,
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which is the type of the return value. */
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Dwarf_Die typedie;
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int tag = dwarf_peeled_die_type (functypedie, &typedie);
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if (tag <= 0)
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return tag;
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Dwarf_Word size = (Dwarf_Word)-1;
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/* If the argument type is a Composite Type that is larger than 16
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bytes, then the argument is copied to memory allocated by the
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caller and the argument is replaced by a pointer to the copy. */
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if (tag == DW_TAG_structure_type || tag == DW_TAG_union_type
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|| tag == DW_TAG_class_type || tag == DW_TAG_array_type)
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{
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Dwarf_Word base_size, count;
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switch (hfa_type (&typedie, tag, &base_size, &count))
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{
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default:
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return -1;
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case 0:
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assert (count > 0);
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if (count <= 4)
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return pass_hfa (locp, base_size, count);
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FALLTHROUGH;
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case 1:
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/* Not a HFA. */
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if (dwarf_aggregate_size (&typedie, &size) < 0)
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return -1;
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if (size > 16)
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return pass_by_ref (locp);
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}
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}
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if (tag == DW_TAG_base_type
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|| tag == DW_TAG_pointer_type || tag == DW_TAG_ptr_to_member_type)
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{
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if (dwarf_bytesize_aux (&typedie, &size) < 0)
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{
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if (tag == DW_TAG_pointer_type || tag == DW_TAG_ptr_to_member_type)
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size = 8;
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else
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return -1;
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}
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Dwarf_Attribute attr_mem;
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if (tag == DW_TAG_base_type)
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{
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Dwarf_Word encoding;
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if (dwarf_formudata (dwarf_attr_integrate (&typedie, DW_AT_encoding,
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&attr_mem),
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&encoding) != 0)
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return -1;
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switch (encoding)
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{
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/* If the argument is a Half-, Single-, Double- or Quad-
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precision Floating-point [...] the argument is allocated
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to the least significant bits of register v[NSRN]. */
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case DW_ATE_float:
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switch (size)
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{
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case 2: /* half */
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case 4: /* single */
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case 8: /* double */
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case 16: /* quad */
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return pass_in_simd (locp);
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default:
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return -2;
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}
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case DW_ATE_complex_float:
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switch (size)
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{
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case 8: /* float _Complex */
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case 16: /* double _Complex */
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case 32: /* long double _Complex */
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return pass_hfa (locp, size / 2, 2);
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default:
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return -2;
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}
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/* If the argument is an Integral or Pointer Type, the
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size of the argument is less than or equal to 8 bytes
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[...] the argument is copied to the least significant
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bits in x[NGRN]. */
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case DW_ATE_boolean:
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case DW_ATE_signed:
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case DW_ATE_unsigned:
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case DW_ATE_unsigned_char:
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case DW_ATE_signed_char:
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return pass_in_gpr (locp, size);
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}
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return -2;
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}
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else
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return pass_in_gpr (locp, size);
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}
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*locp = NULL;
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return 0;
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}
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