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sparc64-tdep.c
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/* Target-dependent code for UltraSPARC.
Copyright (C) 2003-2015 Free Software Foundation, Inc.
This file is part of GDB.
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 3 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program. If not, see <http://www.gnu.org/licenses/>. */
#include "defs.h"
#include "arch-utils.h"
#include "dwarf2-frame.h"
#include "floatformat.h"
#include "frame.h"
#include "frame-base.h"
#include "frame-unwind.h"
#include "gdbcore.h"
#include "gdbtypes.h"
#include "inferior.h"
#include "symtab.h"
#include "objfiles.h"
#include "osabi.h"
#include "regcache.h"
#include "target.h"
#include "value.h"
#include "sparc64-tdep.h"
/* This file implements the SPARC 64-bit ABI as defined by the
section "Low-Level System Information" of the SPARC Compliance
Definition (SCD) 2.4.1, which is the 64-bit System V psABI for
SPARC. */
/* Please use the sparc32_-prefix for 32-bit specific code, the
sparc64_-prefix for 64-bit specific code and the sparc_-prefix for
code can handle both. */
/* The functions on this page are intended to be used to classify
function arguments. */
/* Check whether TYPE is "Integral or Pointer". */
static int
sparc64_integral_or_pointer_p (const struct type *type)
{
switch (TYPE_CODE (type))
{
case TYPE_CODE_INT:
case TYPE_CODE_BOOL:
case TYPE_CODE_CHAR:
case TYPE_CODE_ENUM:
case TYPE_CODE_RANGE:
{
int len = TYPE_LENGTH (type);
gdb_assert (len == 1 || len == 2 || len == 4 || len == 8);
}
return 1;
case TYPE_CODE_PTR:
case TYPE_CODE_REF:
{
int len = TYPE_LENGTH (type);
gdb_assert (len == 8);
}
return 1;
default:
break;
}
return 0;
}
/* Check whether TYPE is "Floating". */
static int
sparc64_floating_p (const struct type *type)
{
switch (TYPE_CODE (type))
{
case TYPE_CODE_FLT:
{
int len = TYPE_LENGTH (type);
gdb_assert (len == 4 || len == 8 || len == 16);
}
return 1;
default:
break;
}
return 0;
}
/* Check whether TYPE is "Complex Floating". */
static int
sparc64_complex_floating_p (const struct type *type)
{
switch (TYPE_CODE (type))
{
case TYPE_CODE_COMPLEX:
{
int len = TYPE_LENGTH (type);
gdb_assert (len == 8 || len == 16 || len == 32);
}
return 1;
default:
break;
}
return 0;
}
/* Check whether TYPE is "Structure or Union".
In terms of Ada subprogram calls, arrays are treated the same as
struct and union types. So this function also returns non-zero
for array types. */
static int
sparc64_structure_or_union_p (const struct type *type)
{
switch (TYPE_CODE (type))
{
case TYPE_CODE_STRUCT:
case TYPE_CODE_UNION:
case TYPE_CODE_ARRAY:
return 1;
default:
break;
}
return 0;
}
/* Construct types for ISA-specific registers. */
static struct type *
sparc64_pstate_type (struct gdbarch *gdbarch)
{
struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
if (!tdep->sparc64_pstate_type)
{
struct type *type;
type = arch_flags_type (gdbarch, "builtin_type_sparc64_pstate", 8);
append_flags_type_flag (type, 0, "AG");
append_flags_type_flag (type, 1, "IE");
append_flags_type_flag (type, 2, "PRIV");
append_flags_type_flag (type, 3, "AM");
append_flags_type_flag (type, 4, "PEF");
append_flags_type_flag (type, 5, "RED");
append_flags_type_flag (type, 8, "TLE");
append_flags_type_flag (type, 9, "CLE");
append_flags_type_flag (type, 10, "PID0");
append_flags_type_flag (type, 11, "PID1");
tdep->sparc64_pstate_type = type;
}
return tdep->sparc64_pstate_type;
}
static struct type *
sparc64_fsr_type (struct gdbarch *gdbarch)
{
struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
if (!tdep->sparc64_fsr_type)
{
struct type *type;
type = arch_flags_type (gdbarch, "builtin_type_sparc64_fsr", 8);
append_flags_type_flag (type, 0, "NXA");
append_flags_type_flag (type, 1, "DZA");
append_flags_type_flag (type, 2, "UFA");
append_flags_type_flag (type, 3, "OFA");
append_flags_type_flag (type, 4, "NVA");
append_flags_type_flag (type, 5, "NXC");
append_flags_type_flag (type, 6, "DZC");
append_flags_type_flag (type, 7, "UFC");
append_flags_type_flag (type, 8, "OFC");
append_flags_type_flag (type, 9, "NVC");
append_flags_type_flag (type, 22, "NS");
append_flags_type_flag (type, 23, "NXM");
append_flags_type_flag (type, 24, "DZM");
append_flags_type_flag (type, 25, "UFM");
append_flags_type_flag (type, 26, "OFM");
append_flags_type_flag (type, 27, "NVM");
tdep->sparc64_fsr_type = type;
}
return tdep->sparc64_fsr_type;
}
static struct type *
sparc64_fprs_type (struct gdbarch *gdbarch)
{
struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
if (!tdep->sparc64_fprs_type)
{
struct type *type;
type = arch_flags_type (gdbarch, "builtin_type_sparc64_fprs", 8);
append_flags_type_flag (type, 0, "DL");
append_flags_type_flag (type, 1, "DU");
append_flags_type_flag (type, 2, "FEF");
tdep->sparc64_fprs_type = type;
}
return tdep->sparc64_fprs_type;
}
/* Register information. */
static const char *sparc64_register_names[] =
{
"g0", "g1", "g2", "g3", "g4", "g5", "g6", "g7",
"o0", "o1", "o2", "o3", "o4", "o5", "sp", "o7",
"l0", "l1", "l2", "l3", "l4", "l5", "l6", "l7",
"i0", "i1", "i2", "i3", "i4", "i5", "fp", "i7",
"f0", "f1", "f2", "f3", "f4", "f5", "f6", "f7",
"f8", "f9", "f10", "f11", "f12", "f13", "f14", "f15",
"f16", "f17", "f18", "f19", "f20", "f21", "f22", "f23",
"f24", "f25", "f26", "f27", "f28", "f29", "f30", "f31",
"f32", "f34", "f36", "f38", "f40", "f42", "f44", "f46",
"f48", "f50", "f52", "f54", "f56", "f58", "f60", "f62",
"pc", "npc",
/* FIXME: Give "state" a name until we start using register groups. */
"state",
"fsr",
"fprs",
"y",
};
/* Total number of registers. */
#define SPARC64_NUM_REGS ARRAY_SIZE (sparc64_register_names)
/* We provide the aliases %d0..%d62 and %q0..%q60 for the floating
registers as "psuedo" registers. */
static const char *sparc64_pseudo_register_names[] =
{
"cwp", "pstate", "asi", "ccr",
"d0", "d2", "d4", "d6", "d8", "d10", "d12", "d14",
"d16", "d18", "d20", "d22", "d24", "d26", "d28", "d30",
"d32", "d34", "d36", "d38", "d40", "d42", "d44", "d46",
"d48", "d50", "d52", "d54", "d56", "d58", "d60", "d62",
"q0", "q4", "q8", "q12", "q16", "q20", "q24", "q28",
"q32", "q36", "q40", "q44", "q48", "q52", "q56", "q60",
};
/* Total number of pseudo registers. */
#define SPARC64_NUM_PSEUDO_REGS ARRAY_SIZE (sparc64_pseudo_register_names)
/* Return the name of register REGNUM. */
static const char *
sparc64_register_name (struct gdbarch *gdbarch, int regnum)
{
if (regnum >= 0 && regnum < SPARC64_NUM_REGS)
return sparc64_register_names[regnum];
if (regnum >= SPARC64_NUM_REGS
&& regnum < SPARC64_NUM_REGS + SPARC64_NUM_PSEUDO_REGS)
return sparc64_pseudo_register_names[regnum - SPARC64_NUM_REGS];
return NULL;
}
/* Return the GDB type object for the "standard" data type of data in
register REGNUM. */
static struct type *
sparc64_register_type (struct gdbarch *gdbarch, int regnum)
{
/* Raw registers. */
if (regnum == SPARC_SP_REGNUM || regnum == SPARC_FP_REGNUM)
return builtin_type (gdbarch)->builtin_data_ptr;
if (regnum >= SPARC_G0_REGNUM && regnum <= SPARC_I7_REGNUM)
return builtin_type (gdbarch)->builtin_int64;
if (regnum >= SPARC_F0_REGNUM && regnum <= SPARC_F31_REGNUM)
return builtin_type (gdbarch)->builtin_float;
if (regnum >= SPARC64_F32_REGNUM && regnum <= SPARC64_F62_REGNUM)
return builtin_type (gdbarch)->builtin_double;
if (regnum == SPARC64_PC_REGNUM || regnum == SPARC64_NPC_REGNUM)
return builtin_type (gdbarch)->builtin_func_ptr;
/* This raw register contains the contents of %cwp, %pstate, %asi
and %ccr as laid out in a %tstate register. */
if (regnum == SPARC64_STATE_REGNUM)
return builtin_type (gdbarch)->builtin_int64;
if (regnum == SPARC64_FSR_REGNUM)
return sparc64_fsr_type (gdbarch);
if (regnum == SPARC64_FPRS_REGNUM)
return sparc64_fprs_type (gdbarch);
/* "Although Y is a 64-bit register, its high-order 32 bits are
reserved and always read as 0." */
if (regnum == SPARC64_Y_REGNUM)
return builtin_type (gdbarch)->builtin_int64;
/* Pseudo registers. */
if (regnum == SPARC64_CWP_REGNUM)
return builtin_type (gdbarch)->builtin_int64;
if (regnum == SPARC64_PSTATE_REGNUM)
return sparc64_pstate_type (gdbarch);
if (regnum == SPARC64_ASI_REGNUM)
return builtin_type (gdbarch)->builtin_int64;
if (regnum == SPARC64_CCR_REGNUM)
return builtin_type (gdbarch)->builtin_int64;
if (regnum >= SPARC64_D0_REGNUM && regnum <= SPARC64_D62_REGNUM)
return builtin_type (gdbarch)->builtin_double;
if (regnum >= SPARC64_Q0_REGNUM && regnum <= SPARC64_Q60_REGNUM)
return builtin_type (gdbarch)->builtin_long_double;
internal_error (__FILE__, __LINE__, _("invalid regnum"));
}
static enum register_status
sparc64_pseudo_register_read (struct gdbarch *gdbarch,
struct regcache *regcache,
int regnum, gdb_byte *buf)
{
enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
enum register_status status;
gdb_assert (regnum >= SPARC64_NUM_REGS);
if (regnum >= SPARC64_D0_REGNUM && regnum <= SPARC64_D30_REGNUM)
{
regnum = SPARC_F0_REGNUM + 2 * (regnum - SPARC64_D0_REGNUM);
status = regcache_raw_read (regcache, regnum, buf);
if (status == REG_VALID)
status = regcache_raw_read (regcache, regnum + 1, buf + 4);
return status;
}
else if (regnum >= SPARC64_D32_REGNUM && regnum <= SPARC64_D62_REGNUM)
{
regnum = SPARC64_F32_REGNUM + (regnum - SPARC64_D32_REGNUM);
return regcache_raw_read (regcache, regnum, buf);
}
else if (regnum >= SPARC64_Q0_REGNUM && regnum <= SPARC64_Q28_REGNUM)
{
regnum = SPARC_F0_REGNUM + 4 * (regnum - SPARC64_Q0_REGNUM);
status = regcache_raw_read (regcache, regnum, buf);
if (status == REG_VALID)
status = regcache_raw_read (regcache, regnum + 1, buf + 4);
if (status == REG_VALID)
status = regcache_raw_read (regcache, regnum + 2, buf + 8);
if (status == REG_VALID)
status = regcache_raw_read (regcache, regnum + 3, buf + 12);
return status;
}
else if (regnum >= SPARC64_Q32_REGNUM && regnum <= SPARC64_Q60_REGNUM)
{
regnum = SPARC64_F32_REGNUM + 2 * (regnum - SPARC64_Q32_REGNUM);
status = regcache_raw_read (regcache, regnum, buf);
if (status == REG_VALID)
status = regcache_raw_read (regcache, regnum + 1, buf + 8);
return status;
}
else if (regnum == SPARC64_CWP_REGNUM
|| regnum == SPARC64_PSTATE_REGNUM
|| regnum == SPARC64_ASI_REGNUM
|| regnum == SPARC64_CCR_REGNUM)
{
ULONGEST state;
status = regcache_raw_read_unsigned (regcache, SPARC64_STATE_REGNUM, &state);
if (status != REG_VALID)
return status;
switch (regnum)
{
case SPARC64_CWP_REGNUM:
state = (state >> 0) & ((1 << 5) - 1);
break;
case SPARC64_PSTATE_REGNUM:
state = (state >> 8) & ((1 << 12) - 1);
break;
case SPARC64_ASI_REGNUM:
state = (state >> 24) & ((1 << 8) - 1);
break;
case SPARC64_CCR_REGNUM:
state = (state >> 32) & ((1 << 8) - 1);
break;
}
store_unsigned_integer (buf, 8, byte_order, state);
}
return REG_VALID;
}
static void
sparc64_pseudo_register_write (struct gdbarch *gdbarch,
struct regcache *regcache,
int regnum, const gdb_byte *buf)
{
enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
gdb_assert (regnum >= SPARC64_NUM_REGS);
if (regnum >= SPARC64_D0_REGNUM && regnum <= SPARC64_D30_REGNUM)
{
regnum = SPARC_F0_REGNUM + 2 * (regnum - SPARC64_D0_REGNUM);
regcache_raw_write (regcache, regnum, buf);
regcache_raw_write (regcache, regnum + 1, buf + 4);
}
else if (regnum >= SPARC64_D32_REGNUM && regnum <= SPARC64_D62_REGNUM)
{
regnum = SPARC64_F32_REGNUM + (regnum - SPARC64_D32_REGNUM);
regcache_raw_write (regcache, regnum, buf);
}
else if (regnum >= SPARC64_Q0_REGNUM && regnum <= SPARC64_Q28_REGNUM)
{
regnum = SPARC_F0_REGNUM + 4 * (regnum - SPARC64_Q0_REGNUM);
regcache_raw_write (regcache, regnum, buf);
regcache_raw_write (regcache, regnum + 1, buf + 4);
regcache_raw_write (regcache, regnum + 2, buf + 8);
regcache_raw_write (regcache, regnum + 3, buf + 12);
}
else if (regnum >= SPARC64_Q32_REGNUM && regnum <= SPARC64_Q60_REGNUM)
{
regnum = SPARC64_F32_REGNUM + 2 * (regnum - SPARC64_Q32_REGNUM);
regcache_raw_write (regcache, regnum, buf);
regcache_raw_write (regcache, regnum + 1, buf + 8);
}
else if (regnum == SPARC64_CWP_REGNUM
|| regnum == SPARC64_PSTATE_REGNUM
|| regnum == SPARC64_ASI_REGNUM
|| regnum == SPARC64_CCR_REGNUM)
{
ULONGEST state, bits;
regcache_raw_read_unsigned (regcache, SPARC64_STATE_REGNUM, &state);
bits = extract_unsigned_integer (buf, 8, byte_order);
switch (regnum)
{
case SPARC64_CWP_REGNUM:
state |= ((bits & ((1 << 5) - 1)) << 0);
break;
case SPARC64_PSTATE_REGNUM:
state |= ((bits & ((1 << 12) - 1)) << 8);
break;
case SPARC64_ASI_REGNUM:
state |= ((bits & ((1 << 8) - 1)) << 24);
break;
case SPARC64_CCR_REGNUM:
state |= ((bits & ((1 << 8) - 1)) << 32);
break;
}
regcache_raw_write_unsigned (regcache, SPARC64_STATE_REGNUM, state);
}
}
/* Return PC of first real instruction of the function starting at
START_PC. */
static CORE_ADDR
sparc64_skip_prologue (struct gdbarch *gdbarch, CORE_ADDR start_pc)
{
struct symtab_and_line sal;
CORE_ADDR func_start, func_end;
struct sparc_frame_cache cache;
/* This is the preferred method, find the end of the prologue by
using the debugging information. */
if (find_pc_partial_function (start_pc, NULL, &func_start, &func_end))
{
sal = find_pc_line (func_start, 0);
if (sal.end < func_end
&& start_pc <= sal.end)
return sal.end;
}
return sparc_analyze_prologue (gdbarch, start_pc, 0xffffffffffffffffULL,
&cache);
}
/* Normal frames. */
static struct sparc_frame_cache *
sparc64_frame_cache (struct frame_info *this_frame, void **this_cache)
{
return sparc_frame_cache (this_frame, this_cache);
}
static void
sparc64_frame_this_id (struct frame_info *this_frame, void **this_cache,
struct frame_id *this_id)
{
struct sparc_frame_cache *cache =
sparc64_frame_cache (this_frame, this_cache);
/* This marks the outermost frame. */
if (cache->base == 0)
return;
(*this_id) = frame_id_build (cache->base, cache->pc);
}
static struct value *
sparc64_frame_prev_register (struct frame_info *this_frame, void **this_cache,
int regnum)
{
struct gdbarch *gdbarch = get_frame_arch (this_frame);
struct sparc_frame_cache *cache =
sparc64_frame_cache (this_frame, this_cache);
if (regnum == SPARC64_PC_REGNUM || regnum == SPARC64_NPC_REGNUM)
{
CORE_ADDR pc = (regnum == SPARC64_NPC_REGNUM) ? 4 : 0;
regnum =
(cache->copied_regs_mask & 0x80) ? SPARC_I7_REGNUM : SPARC_O7_REGNUM;
pc += get_frame_register_unsigned (this_frame, regnum) + 8;
return frame_unwind_got_constant (this_frame, regnum, pc);
}
/* Handle StackGhost. */
{
ULONGEST wcookie = sparc_fetch_wcookie (gdbarch);
if (wcookie != 0 && !cache->frameless_p && regnum == SPARC_I7_REGNUM)
{
CORE_ADDR addr = cache->base + (regnum - SPARC_L0_REGNUM) * 8;
ULONGEST i7;
/* Read the value in from memory. */
i7 = get_frame_memory_unsigned (this_frame, addr, 8);
return frame_unwind_got_constant (this_frame, regnum, i7 ^ wcookie);
}
}
/* The previous frame's `local' and `in' registers may have been saved
in the register save area. */
if (regnum >= SPARC_L0_REGNUM && regnum <= SPARC_I7_REGNUM
&& (cache->saved_regs_mask & (1 << (regnum - SPARC_L0_REGNUM))))
{
CORE_ADDR addr = cache->base + (regnum - SPARC_L0_REGNUM) * 8;
return frame_unwind_got_memory (this_frame, regnum, addr);
}
/* The previous frame's `out' registers may be accessible as the current
frame's `in' registers. */
if (regnum >= SPARC_O0_REGNUM && regnum <= SPARC_O7_REGNUM
&& (cache->copied_regs_mask & (1 << (regnum - SPARC_O0_REGNUM))))
regnum += (SPARC_I0_REGNUM - SPARC_O0_REGNUM);
return frame_unwind_got_register (this_frame, regnum, regnum);
}
static const struct frame_unwind sparc64_frame_unwind =
{
NORMAL_FRAME,
default_frame_unwind_stop_reason,
sparc64_frame_this_id,
sparc64_frame_prev_register,
NULL,
default_frame_sniffer
};
static CORE_ADDR
sparc64_frame_base_address (struct frame_info *this_frame, void **this_cache)
{
struct sparc_frame_cache *cache =
sparc64_frame_cache (this_frame, this_cache);
return cache->base;
}
static const struct frame_base sparc64_frame_base =
{
&sparc64_frame_unwind,
sparc64_frame_base_address,
sparc64_frame_base_address,
sparc64_frame_base_address
};
/* Check whether TYPE must be 16-byte aligned. */
static int
sparc64_16_byte_align_p (struct type *type)
{
if (sparc64_floating_p (type) && TYPE_LENGTH (type) == 16)
return 1;
if (sparc64_structure_or_union_p (type))
{
int i;
for (i = 0; i < TYPE_NFIELDS (type); i++)
{
struct type *subtype = check_typedef (TYPE_FIELD_TYPE (type, i));
if (sparc64_16_byte_align_p (subtype))
return 1;
}
}
return 0;
}
/* Store floating fields of element ELEMENT of an "parameter array"
that has type TYPE and is stored at BITPOS in VALBUF in the
apropriate registers of REGCACHE. This function can be called
recursively and therefore handles floating types in addition to
structures. */
static void
sparc64_store_floating_fields (struct regcache *regcache, struct type *type,
const gdb_byte *valbuf, int element, int bitpos)
{
int len = TYPE_LENGTH (type);
gdb_assert (element < 16);
if (sparc64_floating_p (type)
|| (sparc64_complex_floating_p (type) && len <= 16))
{
int regnum;
if (len == 16)
{
gdb_assert (bitpos == 0);
gdb_assert ((element % 2) == 0);
regnum = SPARC64_Q0_REGNUM + element / 2;
regcache_cooked_write (regcache, regnum, valbuf);
}
else if (len == 8)
{
gdb_assert (bitpos == 0 || bitpos == 64);
regnum = SPARC64_D0_REGNUM + element + bitpos / 64;
regcache_cooked_write (regcache, regnum, valbuf + (bitpos / 8));
}
else
{
gdb_assert (len == 4);
gdb_assert (bitpos % 32 == 0 && bitpos >= 0 && bitpos < 128);
regnum = SPARC_F0_REGNUM + element * 2 + bitpos / 32;
regcache_cooked_write (regcache, regnum, valbuf + (bitpos / 8));
}
}
else if (sparc64_structure_or_union_p (type))
{
int i;
for (i = 0; i < TYPE_NFIELDS (type); i++)
{
struct type *subtype = check_typedef (TYPE_FIELD_TYPE (type, i));
int subpos = bitpos + TYPE_FIELD_BITPOS (type, i);
sparc64_store_floating_fields (regcache, subtype, valbuf,
element, subpos);
}
/* GCC has an interesting bug. If TYPE is a structure that has
a single `float' member, GCC doesn't treat it as a structure
at all, but rather as an ordinary `float' argument. This
argument will be stored in %f1, as required by the psABI.
However, as a member of a structure the psABI requires it to
be stored in %f0. This bug is present in GCC 3.3.2, but
probably in older releases to. To appease GCC, if a
structure has only a single `float' member, we store its
value in %f1 too (we already have stored in %f0). */
if (TYPE_NFIELDS (type) == 1)
{
struct type *subtype = check_typedef (TYPE_FIELD_TYPE (type, 0));
if (sparc64_floating_p (subtype) && TYPE_LENGTH (subtype) == 4)
regcache_cooked_write (regcache, SPARC_F1_REGNUM, valbuf);
}
}
}
/* Fetch floating fields from a variable of type TYPE from the
appropriate registers for BITPOS in REGCACHE and store it at BITPOS
in VALBUF. This function can be called recursively and therefore
handles floating types in addition to structures. */
static void
sparc64_extract_floating_fields (struct regcache *regcache, struct type *type,
gdb_byte *valbuf, int bitpos)
{
if (sparc64_floating_p (type))
{
int len = TYPE_LENGTH (type);
int regnum;
if (len == 16)
{
gdb_assert (bitpos == 0 || bitpos == 128);
regnum = SPARC64_Q0_REGNUM + bitpos / 128;
regcache_cooked_read (regcache, regnum, valbuf + (bitpos / 8));
}
else if (len == 8)
{
gdb_assert (bitpos % 64 == 0 && bitpos >= 0 && bitpos < 256);
regnum = SPARC64_D0_REGNUM + bitpos / 64;
regcache_cooked_read (regcache, regnum, valbuf + (bitpos / 8));
}
else
{
gdb_assert (len == 4);
gdb_assert (bitpos % 32 == 0 && bitpos >= 0 && bitpos < 256);
regnum = SPARC_F0_REGNUM + bitpos / 32;
regcache_cooked_read (regcache, regnum, valbuf + (bitpos / 8));
}
}
else if (sparc64_structure_or_union_p (type))
{
int i;
for (i = 0; i < TYPE_NFIELDS (type); i++)
{
struct type *subtype = check_typedef (TYPE_FIELD_TYPE (type, i));
int subpos = bitpos + TYPE_FIELD_BITPOS (type, i);
sparc64_extract_floating_fields (regcache, subtype, valbuf, subpos);
}
}
}
/* Store the NARGS arguments ARGS and STRUCT_ADDR (if STRUCT_RETURN is
non-zero) in REGCACHE and on the stack (starting from address SP). */
static CORE_ADDR
sparc64_store_arguments (struct regcache *regcache, int nargs,
struct value **args, CORE_ADDR sp,
int struct_return, CORE_ADDR struct_addr)
{
struct gdbarch *gdbarch = get_regcache_arch (regcache);
/* Number of extended words in the "parameter array". */
int num_elements = 0;
int element = 0;
int i;
/* Take BIAS into account. */
sp += BIAS;
/* First we calculate the number of extended words in the "parameter
array". While doing so we also convert some of the arguments. */
if (struct_return)
num_elements++;
for (i = 0; i < nargs; i++)
{
struct type *type = value_type (args[i]);
int len = TYPE_LENGTH (type);
if (sparc64_structure_or_union_p (type)
|| (sparc64_complex_floating_p (type) && len == 32))
{
/* Structure or Union arguments. */
if (len <= 16)
{
if (num_elements % 2 && sparc64_16_byte_align_p (type))
num_elements++;
num_elements += ((len + 7) / 8);
}
else
{
/* The psABI says that "Structures or unions larger than
sixteen bytes are copied by the caller and passed
indirectly; the caller will pass the address of a
correctly aligned structure value. This sixty-four
bit address will occupy one word in the parameter
array, and may be promoted to an %o register like any
other pointer value." Allocate memory for these
values on the stack. */
sp -= len;
/* Use 16-byte alignment for these values. That's
always correct, and wasting a few bytes shouldn't be
a problem. */
sp &= ~0xf;
write_memory (sp, value_contents (args[i]), len);
args[i] = value_from_pointer (lookup_pointer_type (type), sp);
num_elements++;
}
}
else if (sparc64_floating_p (type) || sparc64_complex_floating_p (type))
{
/* Floating arguments. */
if (len == 16)
{
/* The psABI says that "Each quad-precision parameter
value will be assigned to two extended words in the
parameter array. */
num_elements += 2;
/* The psABI says that "Long doubles must be
quad-aligned, and thus a hole might be introduced
into the parameter array to force alignment." Skip
an element if necessary. */
if ((num_elements % 2) && sparc64_16_byte_align_p (type))
num_elements++;
}
else
num_elements++;
}
else
{
/* Integral and pointer arguments. */
gdb_assert (sparc64_integral_or_pointer_p (type));
/* The psABI says that "Each argument value of integral type
smaller than an extended word will be widened by the
caller to an extended word according to the signed-ness
of the argument type." */
if (len < 8)
args[i] = value_cast (builtin_type (gdbarch)->builtin_int64,
args[i]);
num_elements++;
}
}
/* Allocate the "parameter array". */
sp -= num_elements * 8;
/* The psABI says that "Every stack frame must be 16-byte aligned." */
sp &= ~0xf;
/* Now we store the arguments in to the "paramater array". Some
Integer or Pointer arguments and Structure or Union arguments
will be passed in %o registers. Some Floating arguments and
floating members of structures are passed in floating-point
registers. However, for functions with variable arguments,
floating arguments are stored in an %0 register, and for
functions without a prototype floating arguments are stored in
both a floating-point and an %o registers, or a floating-point
register and memory. To simplify the logic here we always pass
arguments in memory, an %o register, and a floating-point
register if appropriate. This should be no problem since the
contents of any unused memory or registers in the "parameter
array" are undefined. */
if (struct_return)
{
regcache_cooked_write_unsigned (regcache, SPARC_O0_REGNUM, struct_addr);
element++;
}
for (i = 0; i < nargs; i++)
{
const gdb_byte *valbuf = value_contents (args[i]);
struct type *type = value_type (args[i]);
int len = TYPE_LENGTH (type);
int regnum = -1;
gdb_byte buf[16];
if (sparc64_structure_or_union_p (type)
|| (sparc64_complex_floating_p (type) && len == 32))
{
/* Structure, Union or long double Complex arguments. */
gdb_assert (len <= 16);
memset (buf, 0, sizeof (buf));
valbuf = memcpy (buf, valbuf, len);
if (element % 2 && sparc64_16_byte_align_p (type))
element++;
if (element < 6)
{
regnum = SPARC_O0_REGNUM + element;
if (len > 8 && element < 5)
regcache_cooked_write (regcache, regnum + 1, valbuf + 8);
}
if (element < 16)
sparc64_store_floating_fields (regcache, type, valbuf, element, 0);
}
else if (sparc64_complex_floating_p (type))
{
/* Float Complex or double Complex arguments. */
if (element < 16)
{
regnum = SPARC64_D0_REGNUM + element;
if (len == 16)
{
if (regnum < SPARC64_D30_REGNUM)
regcache_cooked_write (regcache, regnum + 1, valbuf + 8);
if (regnum < SPARC64_D10_REGNUM)
regcache_cooked_write (regcache,
SPARC_O0_REGNUM + element + 1,
valbuf + 8);
}
}
}
else if (sparc64_floating_p (type))
{
/* Floating arguments. */
if (len == 16)
{
if (element % 2)
element++;
if (element < 16)
regnum = SPARC64_Q0_REGNUM + element / 2;
}
else if (len == 8)
{
if (element < 16)
regnum = SPARC64_D0_REGNUM + element;
}
else if (len == 4)
{
/* The psABI says "Each single-precision parameter value
will be assigned to one extended word in the
parameter array, and right-justified within that
word; the left half (even float register) is
undefined." Even though the psABI says that "the
left half is undefined", set it to zero here. */
memset (buf, 0, 4);
memcpy (buf + 4, valbuf, 4);
valbuf = buf;
len = 8;
if (element < 16)
regnum = SPARC64_D0_REGNUM + element;
}
}
else
{
/* Integral and pointer arguments. */
gdb_assert (len == 8);
if (element < 6)
regnum = SPARC_O0_REGNUM + element;
}
if (regnum != -1)
{
regcache_cooked_write (regcache, regnum, valbuf);
/* If we're storing the value in a floating-point register,
also store it in the corresponding %0 register(s). */
if (regnum >= SPARC64_D0_REGNUM && regnum <= SPARC64_D10_REGNUM)
{
gdb_assert (element < 6);
regnum = SPARC_O0_REGNUM + element;
regcache_cooked_write (regcache, regnum, valbuf);
}
else if (regnum >= SPARC64_Q0_REGNUM && regnum <= SPARC64_Q8_REGNUM)
{
gdb_assert (element < 5);
regnum = SPARC_O0_REGNUM + element;
regcache_cooked_write (regcache, regnum, valbuf);
regcache_cooked_write (regcache, regnum + 1, valbuf + 8);
}
}
/* Always store the argument in memory. */
write_memory (sp + element * 8, valbuf, len);
element += ((len + 7) / 8);
}
gdb_assert (element == num_elements);
/* Take BIAS into account. */
sp -= BIAS;
return sp;
}
static CORE_ADDR
sparc64_frame_align (struct gdbarch *gdbarch, CORE_ADDR address)
{