[testsuite] Unbuffer the output in gdb.base/multi-forks.c
[deliverable/binutils-gdb.git] / gdb / gdbarch.sh
CommitLineData
66b43ecb 1#!/bin/sh -u
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2
3# Architecture commands for GDB, the GNU debugger.
79d45cd4 4#
618f726f 5# Copyright (C) 1998-2016 Free Software Foundation, Inc.
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6#
7# This file is part of GDB.
8#
9# This program is free software; you can redistribute it and/or modify
10# it under the terms of the GNU General Public License as published by
50efebf8 11# the Free Software Foundation; either version 3 of the License, or
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12# (at your option) any later version.
13#
14# This program is distributed in the hope that it will be useful,
15# but WITHOUT ANY WARRANTY; without even the implied warranty of
16# MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17# GNU General Public License for more details.
18#
19# You should have received a copy of the GNU General Public License
50efebf8 20# along with this program. If not, see <http://www.gnu.org/licenses/>.
104c1213 21
6e2c7fa1 22# Make certain that the script is not running in an internationalized
d8864532 23# environment.
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24LANG=C ; export LANG
25LC_ALL=C ; export LC_ALL
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26
27
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28compare_new ()
29{
30 file=$1
66b43ecb 31 if test ! -r ${file}
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32 then
33 echo "${file} missing? cp new-${file} ${file}" 1>&2
50248794 34 elif diff -u ${file} new-${file}
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35 then
36 echo "${file} unchanged" 1>&2
37 else
38 echo "${file} has changed? cp new-${file} ${file}" 1>&2
39 fi
40}
41
42
43# Format of the input table
97030eea 44read="class returntype function formal actual staticdefault predefault postdefault invalid_p print garbage_at_eol"
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45
46do_read ()
47{
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48 comment=""
49 class=""
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50 # On some SH's, 'read' trims leading and trailing whitespace by
51 # default (e.g., bash), while on others (e.g., dash), it doesn't.
52 # Set IFS to empty to disable the trimming everywhere.
53 while IFS='' read line
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54 do
55 if test "${line}" = ""
56 then
57 continue
58 elif test "${line}" = "#" -a "${comment}" = ""
f0d4cc9e 59 then
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60 continue
61 elif expr "${line}" : "#" > /dev/null
f0d4cc9e 62 then
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63 comment="${comment}
64${line}"
f0d4cc9e 65 else
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66
67 # The semantics of IFS varies between different SH's. Some
68 # treat ``::' as three fields while some treat it as just too.
69 # Work around this by eliminating ``::'' ....
70 line="`echo "${line}" | sed -e 's/::/: :/g' -e 's/::/: :/g'`"
71
72 OFS="${IFS}" ; IFS="[:]"
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73 eval read ${read} <<EOF
74${line}
75EOF
76 IFS="${OFS}"
77
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78 if test -n "${garbage_at_eol}"
79 then
80 echo "Garbage at end-of-line in ${line}" 1>&2
81 kill $$
82 exit 1
83 fi
84
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85 # .... and then going back through each field and strip out those
86 # that ended up with just that space character.
87 for r in ${read}
88 do
89 if eval test \"\${${r}}\" = \"\ \"
90 then
91 eval ${r}=""
92 fi
93 done
94
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95 case "${class}" in
96 m ) staticdefault="${predefault}" ;;
97 M ) staticdefault="0" ;;
98 * ) test "${staticdefault}" || staticdefault=0 ;;
99 esac
06b25f14 100
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101 case "${class}" in
102 F | V | M )
103 case "${invalid_p}" in
34620563 104 "" )
f7968451 105 if test -n "${predefault}"
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106 then
107 #invalid_p="gdbarch->${function} == ${predefault}"
ae45cd16 108 predicate="gdbarch->${function} != ${predefault}"
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109 elif class_is_variable_p
110 then
111 predicate="gdbarch->${function} != 0"
112 elif class_is_function_p
113 then
114 predicate="gdbarch->${function} != NULL"
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115 fi
116 ;;
ae45cd16 117 * )
1e9f55d0 118 echo "Predicate function ${function} with invalid_p." 1>&2
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119 kill $$
120 exit 1
121 ;;
122 esac
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123 esac
124
125 # PREDEFAULT is a valid fallback definition of MEMBER when
126 # multi-arch is not enabled. This ensures that the
127 # default value, when multi-arch is the same as the
128 # default value when not multi-arch. POSTDEFAULT is
129 # always a valid definition of MEMBER as this again
130 # ensures consistency.
131
72e74a21 132 if [ -n "${postdefault}" ]
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133 then
134 fallbackdefault="${postdefault}"
72e74a21 135 elif [ -n "${predefault}" ]
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136 then
137 fallbackdefault="${predefault}"
138 else
73d3c16e 139 fallbackdefault="0"
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140 fi
141
142 #NOT YET: See gdbarch.log for basic verification of
143 # database
144
145 break
f0d4cc9e 146 fi
34620563 147 done
72e74a21 148 if [ -n "${class}" ]
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149 then
150 true
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151 else
152 false
153 fi
154}
155
104c1213 156
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157fallback_default_p ()
158{
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159 [ -n "${postdefault}" -a "x${invalid_p}" != "x0" ] \
160 || [ -n "${predefault}" -a "x${invalid_p}" = "x0" ]
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161}
162
163class_is_variable_p ()
164{
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165 case "${class}" in
166 *v* | *V* ) true ;;
167 * ) false ;;
168 esac
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169}
170
171class_is_function_p ()
172{
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173 case "${class}" in
174 *f* | *F* | *m* | *M* ) true ;;
175 * ) false ;;
176 esac
177}
178
179class_is_multiarch_p ()
180{
181 case "${class}" in
182 *m* | *M* ) true ;;
183 * ) false ;;
184 esac
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185}
186
187class_is_predicate_p ()
188{
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189 case "${class}" in
190 *F* | *V* | *M* ) true ;;
191 * ) false ;;
192 esac
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193}
194
195class_is_info_p ()
196{
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197 case "${class}" in
198 *i* ) true ;;
199 * ) false ;;
200 esac
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201}
202
203
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204# dump out/verify the doco
205for field in ${read}
206do
207 case ${field} in
208
209 class ) : ;;
c4093a6a 210
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211 # # -> line disable
212 # f -> function
213 # hiding a function
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214 # F -> function + predicate
215 # hiding a function + predicate to test function validity
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216 # v -> variable
217 # hiding a variable
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218 # V -> variable + predicate
219 # hiding a variable + predicate to test variables validity
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220 # i -> set from info
221 # hiding something from the ``struct info'' object
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222 # m -> multi-arch function
223 # hiding a multi-arch function (parameterised with the architecture)
224 # M -> multi-arch function + predicate
225 # hiding a multi-arch function + predicate to test function validity
cff3e48b 226
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227 returntype ) : ;;
228
c0e8c252 229 # For functions, the return type; for variables, the data type
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230
231 function ) : ;;
232
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233 # For functions, the member function name; for variables, the
234 # variable name. Member function names are always prefixed with
235 # ``gdbarch_'' for name-space purity.
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236
237 formal ) : ;;
238
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239 # The formal argument list. It is assumed that the formal
240 # argument list includes the actual name of each list element.
241 # A function with no arguments shall have ``void'' as the
242 # formal argument list.
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243
244 actual ) : ;;
245
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246 # The list of actual arguments. The arguments specified shall
247 # match the FORMAL list given above. Functions with out
248 # arguments leave this blank.
cff3e48b 249
0b8f9e4d 250 staticdefault ) : ;;
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251
252 # To help with the GDB startup a static gdbarch object is
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253 # created. STATICDEFAULT is the value to insert into that
254 # static gdbarch object. Since this a static object only
255 # simple expressions can be used.
cff3e48b 256
0b8f9e4d 257 # If STATICDEFAULT is empty, zero is used.
c0e8c252 258
0b8f9e4d 259 predefault ) : ;;
cff3e48b 260
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261 # An initial value to assign to MEMBER of the freshly
262 # malloc()ed gdbarch object. After initialization, the
263 # freshly malloc()ed object is passed to the target
264 # architecture code for further updates.
cff3e48b 265
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266 # If PREDEFAULT is empty, zero is used.
267
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268 # A non-empty PREDEFAULT, an empty POSTDEFAULT and a zero
269 # INVALID_P are specified, PREDEFAULT will be used as the
270 # default for the non- multi-arch target.
271
272 # A zero PREDEFAULT function will force the fallback to call
273 # internal_error().
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274
275 # Variable declarations can refer to ``gdbarch'' which will
276 # contain the current architecture. Care should be taken.
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277
278 postdefault ) : ;;
279
280 # A value to assign to MEMBER of the new gdbarch object should
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281 # the target architecture code fail to change the PREDEFAULT
282 # value.
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283
284 # If POSTDEFAULT is empty, no post update is performed.
285
286 # If both INVALID_P and POSTDEFAULT are non-empty then
287 # INVALID_P will be used to determine if MEMBER should be
288 # changed to POSTDEFAULT.
289
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290 # If a non-empty POSTDEFAULT and a zero INVALID_P are
291 # specified, POSTDEFAULT will be used as the default for the
292 # non- multi-arch target (regardless of the value of
293 # PREDEFAULT).
294
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295 # You cannot specify both a zero INVALID_P and a POSTDEFAULT.
296
be7811ad 297 # Variable declarations can refer to ``gdbarch'' which
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298 # will contain the current architecture. Care should be
299 # taken.
cff3e48b 300
c4093a6a 301 invalid_p ) : ;;
cff3e48b 302
0b8f9e4d 303 # A predicate equation that validates MEMBER. Non-zero is
c0e8c252 304 # returned if the code creating the new architecture failed to
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AC
305 # initialize MEMBER or the initialized the member is invalid.
306 # If POSTDEFAULT is non-empty then MEMBER will be updated to
307 # that value. If POSTDEFAULT is empty then internal_error()
308 # is called.
309
310 # If INVALID_P is empty, a check that MEMBER is no longer
311 # equal to PREDEFAULT is used.
312
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313 # The expression ``0'' disables the INVALID_P check making
314 # PREDEFAULT a legitimate value.
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315
316 # See also PREDEFAULT and POSTDEFAULT.
cff3e48b 317
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318 print ) : ;;
319
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320 # An optional expression that convers MEMBER to a value
321 # suitable for formatting using %s.
c0e8c252 322
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UW
323 # If PRINT is empty, core_addr_to_string_nz (for CORE_ADDR)
324 # or plongest (anything else) is used.
cff3e48b 325
283354d8 326 garbage_at_eol ) : ;;
0b8f9e4d 327
283354d8 328 # Catches stray fields.
cff3e48b 329
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330 *)
331 echo "Bad field ${field}"
332 exit 1;;
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333 esac
334done
335
cff3e48b 336
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337function_list ()
338{
cff3e48b 339 # See below (DOCO) for description of each field
34620563 340 cat <<EOF
be7811ad 341i:const struct bfd_arch_info *:bfd_arch_info:::&bfd_default_arch_struct::::gdbarch_bfd_arch_info (gdbarch)->printable_name
104c1213 342#
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YQ
343i:enum bfd_endian:byte_order:::BFD_ENDIAN_BIG
344i:enum bfd_endian:byte_order_for_code:::BFD_ENDIAN_BIG
4be87837 345#
97030eea 346i:enum gdb_osabi:osabi:::GDB_OSABI_UNKNOWN
424163ea 347#
30737ed9 348i:const struct target_desc *:target_desc:::::::host_address_to_string (gdbarch->target_desc)
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MD
349
350# The bit byte-order has to do just with numbering of bits in debugging symbols
351# and such. Conceptually, it's quite separate from byte/word byte order.
352v:int:bits_big_endian:::1:(gdbarch->byte_order == BFD_ENDIAN_BIG)::0
353
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354# Number of bits in a char or unsigned char for the target machine.
355# Just like CHAR_BIT in <limits.h> but describes the target machine.
57010b1c 356# v:TARGET_CHAR_BIT:int:char_bit::::8 * sizeof (char):8::0:
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357#
358# Number of bits in a short or unsigned short for the target machine.
97030eea 359v:int:short_bit:::8 * sizeof (short):2*TARGET_CHAR_BIT::0
66b43ecb 360# Number of bits in an int or unsigned int for the target machine.
97030eea 361v:int:int_bit:::8 * sizeof (int):4*TARGET_CHAR_BIT::0
66b43ecb 362# Number of bits in a long or unsigned long for the target machine.
97030eea 363v:int:long_bit:::8 * sizeof (long):4*TARGET_CHAR_BIT::0
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AC
364# Number of bits in a long long or unsigned long long for the target
365# machine.
be7811ad 366v:int:long_long_bit:::8 * sizeof (LONGEST):2*gdbarch->long_bit::0
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DM
367# Alignment of a long long or unsigned long long for the target
368# machine.
369v:int:long_long_align_bit:::8 * sizeof (LONGEST):2*gdbarch->long_bit::0
456fcf94 370
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UW
371# The ABI default bit-size and format for "half", "float", "double", and
372# "long double". These bit/format pairs should eventually be combined
373# into a single object. For the moment, just initialize them as a pair.
8da61cc4
DJ
374# Each format describes both the big and little endian layouts (if
375# useful).
456fcf94 376
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UW
377v:int:half_bit:::16:2*TARGET_CHAR_BIT::0
378v:const struct floatformat **:half_format:::::floatformats_ieee_half::pformat (gdbarch->half_format)
97030eea 379v:int:float_bit:::8 * sizeof (float):4*TARGET_CHAR_BIT::0
be7811ad 380v:const struct floatformat **:float_format:::::floatformats_ieee_single::pformat (gdbarch->float_format)
97030eea 381v:int:double_bit:::8 * sizeof (double):8*TARGET_CHAR_BIT::0
be7811ad 382v:const struct floatformat **:double_format:::::floatformats_ieee_double::pformat (gdbarch->double_format)
97030eea 383v:int:long_double_bit:::8 * sizeof (long double):8*TARGET_CHAR_BIT::0
be7811ad 384v:const struct floatformat **:long_double_format:::::floatformats_ieee_double::pformat (gdbarch->long_double_format)
456fcf94 385
52204a0b
DT
386# For most targets, a pointer on the target and its representation as an
387# address in GDB have the same size and "look the same". For such a
17a912b6 388# target, you need only set gdbarch_ptr_bit and gdbarch_addr_bit
52204a0b
DT
389# / addr_bit will be set from it.
390#
17a912b6 391# If gdbarch_ptr_bit and gdbarch_addr_bit are different, you'll probably
8da614df
CV
392# also need to set gdbarch_dwarf2_addr_size, gdbarch_pointer_to_address and
393# gdbarch_address_to_pointer as well.
52204a0b
DT
394#
395# ptr_bit is the size of a pointer on the target
be7811ad 396v:int:ptr_bit:::8 * sizeof (void*):gdbarch->int_bit::0
52204a0b 397# addr_bit is the size of a target address as represented in gdb
be7811ad 398v:int:addr_bit:::8 * sizeof (void*):0:gdbarch_ptr_bit (gdbarch):
104c1213 399#
8da614df
CV
400# dwarf2_addr_size is the target address size as used in the Dwarf debug
401# info. For .debug_frame FDEs, this is supposed to be the target address
402# size from the associated CU header, and which is equivalent to the
403# DWARF2_ADDR_SIZE as defined by the target specific GCC back-end.
404# Unfortunately there is no good way to determine this value. Therefore
405# dwarf2_addr_size simply defaults to the target pointer size.
406#
407# dwarf2_addr_size is not used for .eh_frame FDEs, which are generally
408# defined using the target's pointer size so far.
409#
410# Note that dwarf2_addr_size only needs to be redefined by a target if the
411# GCC back-end defines a DWARF2_ADDR_SIZE other than the target pointer size,
412# and if Dwarf versions < 4 need to be supported.
413v:int:dwarf2_addr_size:::sizeof (void*):0:gdbarch_ptr_bit (gdbarch) / TARGET_CHAR_BIT:
414#
4e409299 415# One if \`char' acts like \`signed char', zero if \`unsigned char'.
97030eea 416v:int:char_signed:::1:-1:1
4e409299 417#
97030eea
UW
418F:CORE_ADDR:read_pc:struct regcache *regcache:regcache
419F:void:write_pc:struct regcache *regcache, CORE_ADDR val:regcache, val
39d4ef09
AC
420# Function for getting target's idea of a frame pointer. FIXME: GDB's
421# whole scheme for dealing with "frames" and "frame pointers" needs a
422# serious shakedown.
a54fba4c 423m:void:virtual_frame_pointer:CORE_ADDR pc, int *frame_regnum, LONGEST *frame_offset:pc, frame_regnum, frame_offset:0:legacy_virtual_frame_pointer::0
66b43ecb 424#
05d1431c 425M:enum register_status:pseudo_register_read:struct regcache *regcache, int cookednum, gdb_byte *buf:regcache, cookednum, buf
3543a589
TT
426# Read a register into a new struct value. If the register is wholly
427# or partly unavailable, this should call mark_value_bytes_unavailable
428# as appropriate. If this is defined, then pseudo_register_read will
429# never be called.
430M:struct value *:pseudo_register_read_value:struct regcache *regcache, int cookednum:regcache, cookednum
97030eea 431M:void:pseudo_register_write:struct regcache *regcache, int cookednum, const gdb_byte *buf:regcache, cookednum, buf
61a0eb5b 432#
97030eea 433v:int:num_regs:::0:-1
0aba1244
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434# This macro gives the number of pseudo-registers that live in the
435# register namespace but do not get fetched or stored on the target.
3d9a5942
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436# These pseudo-registers may be aliases for other registers,
437# combinations of other registers, or they may be computed by GDB.
97030eea 438v:int:num_pseudo_regs:::0:0::0
c2169756 439
175ff332
HZ
440# Assemble agent expression bytecode to collect pseudo-register REG.
441# Return -1 if something goes wrong, 0 otherwise.
442M:int:ax_pseudo_register_collect:struct agent_expr *ax, int reg:ax, reg
443
444# Assemble agent expression bytecode to push the value of pseudo-register
445# REG on the interpreter stack.
446# Return -1 if something goes wrong, 0 otherwise.
447M:int:ax_pseudo_register_push_stack:struct agent_expr *ax, int reg:ax, reg
448
c2169756
AC
449# GDB's standard (or well known) register numbers. These can map onto
450# a real register or a pseudo (computed) register or not be defined at
1200cd6e 451# all (-1).
3e8c568d 452# gdbarch_sp_regnum will hopefully be replaced by UNWIND_SP.
97030eea
UW
453v:int:sp_regnum:::-1:-1::0
454v:int:pc_regnum:::-1:-1::0
455v:int:ps_regnum:::-1:-1::0
456v:int:fp0_regnum:::0:-1::0
88c72b7d 457# Convert stab register number (from \`r\' declaration) to a gdb REGNUM.
d3f73121 458m:int:stab_reg_to_regnum:int stab_regnr:stab_regnr::no_op_reg_to_regnum::0
88c72b7d 459# Provide a default mapping from a ecoff register number to a gdb REGNUM.
d3f73121 460m:int:ecoff_reg_to_regnum:int ecoff_regnr:ecoff_regnr::no_op_reg_to_regnum::0
88c72b7d 461# Convert from an sdb register number to an internal gdb register number.
d3f73121 462m:int:sdb_reg_to_regnum:int sdb_regnr:sdb_regnr::no_op_reg_to_regnum::0
ba2b1c56 463# Provide a default mapping from a DWARF2 register number to a gdb REGNUM.
0fde2c53 464# Return -1 for bad REGNUM. Note: Several targets get this wrong.
d3f73121 465m:int:dwarf2_reg_to_regnum:int dwarf2_regnr:dwarf2_regnr::no_op_reg_to_regnum::0
d93859e2 466m:const char *:register_name:int regnr:regnr::0
9c04cab7 467
7b9ee6a8
DJ
468# Return the type of a register specified by the architecture. Only
469# the register cache should call this function directly; others should
470# use "register_type".
97030eea 471M:struct type *:register_type:int reg_nr:reg_nr
9c04cab7 472
669fac23
DJ
473M:struct frame_id:dummy_id:struct frame_info *this_frame:this_frame
474# Implement DUMMY_ID and PUSH_DUMMY_CALL, then delete
064f5156 475# deprecated_fp_regnum.
97030eea 476v:int:deprecated_fp_regnum:::-1:-1::0
f3be58bc 477
97030eea
UW
478M:CORE_ADDR:push_dummy_call:struct value *function, struct regcache *regcache, CORE_ADDR bp_addr, int nargs, struct value **args, CORE_ADDR sp, int struct_return, CORE_ADDR struct_addr:function, regcache, bp_addr, nargs, args, sp, struct_return, struct_addr
479v:int:call_dummy_location::::AT_ENTRY_POINT::0
480M:CORE_ADDR:push_dummy_code:CORE_ADDR sp, CORE_ADDR funaddr, struct value **args, int nargs, struct type *value_type, CORE_ADDR *real_pc, CORE_ADDR *bp_addr, struct regcache *regcache:sp, funaddr, args, nargs, value_type, real_pc, bp_addr, regcache
57010b1c 481
97030eea 482m:void:print_registers_info:struct ui_file *file, struct frame_info *frame, int regnum, int all:file, frame, regnum, all::default_print_registers_info::0
cc86d1cb 483m:void:print_float_info:struct ui_file *file, struct frame_info *frame, const char *args:file, frame, args::default_print_float_info::0
97030eea 484M:void:print_vector_info:struct ui_file *file, struct frame_info *frame, const char *args:file, frame, args
7c7651b2
AC
485# MAP a GDB RAW register number onto a simulator register number. See
486# also include/...-sim.h.
e7faf938 487m:int:register_sim_regno:int reg_nr:reg_nr::legacy_register_sim_regno::0
64a3914f
MD
488m:int:cannot_fetch_register:int regnum:regnum::cannot_register_not::0
489m:int:cannot_store_register:int regnum:regnum::cannot_register_not::0
eade6471
JB
490
491# Determine the address where a longjmp will land and save this address
492# in PC. Return nonzero on success.
493#
494# FRAME corresponds to the longjmp frame.
97030eea 495F:int:get_longjmp_target:struct frame_info *frame, CORE_ADDR *pc:frame, pc
eade6471 496
104c1213 497#
97030eea 498v:int:believe_pcc_promotion:::::::
104c1213 499#
0abe36f5 500m:int:convert_register_p:int regnum, struct type *type:regnum, type:0:generic_convert_register_p::0
8dccd430 501f:int:register_to_value:struct frame_info *frame, int regnum, struct type *type, gdb_byte *buf, int *optimizedp, int *unavailablep:frame, regnum, type, buf, optimizedp, unavailablep:0
97030eea 502f:void:value_to_register:struct frame_info *frame, int regnum, struct type *type, const gdb_byte *buf:frame, regnum, type, buf:0
9acbedc0 503# Construct a value representing the contents of register REGNUM in
2ed3c037 504# frame FRAME_ID, interpreted as type TYPE. The routine needs to
9acbedc0
UW
505# allocate and return a struct value with all value attributes
506# (but not the value contents) filled in.
2ed3c037 507m:struct value *:value_from_register:struct type *type, int regnum, struct frame_id frame_id:type, regnum, frame_id::default_value_from_register::0
104c1213 508#
9898f801
UW
509m:CORE_ADDR:pointer_to_address:struct type *type, const gdb_byte *buf:type, buf::unsigned_pointer_to_address::0
510m:void:address_to_pointer:struct type *type, gdb_byte *buf, CORE_ADDR addr:type, buf, addr::unsigned_address_to_pointer::0
97030eea 511M:CORE_ADDR:integer_to_address:struct type *type, const gdb_byte *buf:type, buf
92ad9cd9 512
6a3a010b
MR
513# Return the return-value convention that will be used by FUNCTION
514# to return a value of type VALTYPE. FUNCTION may be NULL in which
ea42b34a
JB
515# case the return convention is computed based only on VALTYPE.
516#
517# If READBUF is not NULL, extract the return value and save it in this buffer.
518#
519# If WRITEBUF is not NULL, it contains a return value which will be
520# stored into the appropriate register. This can be used when we want
521# to force the value returned by a function (see the "return" command
522# for instance).
6a3a010b 523M:enum return_value_convention:return_value:struct value *function, struct type *valtype, struct regcache *regcache, gdb_byte *readbuf, const gdb_byte *writebuf:function, valtype, regcache, readbuf, writebuf
92ad9cd9 524
18648a37
YQ
525# Return true if the return value of function is stored in the first hidden
526# parameter. In theory, this feature should be language-dependent, specified
527# by language and its ABI, such as C++. Unfortunately, compiler may
528# implement it to a target-dependent feature. So that we need such hook here
529# to be aware of this in GDB.
530m:int:return_in_first_hidden_param_p:struct type *type:type::default_return_in_first_hidden_param_p::0
531
6093d2eb 532m:CORE_ADDR:skip_prologue:CORE_ADDR ip:ip:0:0
4309257c 533M:CORE_ADDR:skip_main_prologue:CORE_ADDR ip:ip
591a12a1
UW
534# On some platforms, a single function may provide multiple entry points,
535# e.g. one that is used for function-pointer calls and a different one
536# that is used for direct function calls.
537# In order to ensure that breakpoints set on the function will trigger
538# no matter via which entry point the function is entered, a platform
539# may provide the skip_entrypoint callback. It is called with IP set
540# to the main entry point of a function (as determined by the symbol table),
541# and should return the address of the innermost entry point, where the
542# actual breakpoint needs to be set. Note that skip_entrypoint is used
543# by GDB common code even when debugging optimized code, where skip_prologue
544# is not used.
545M:CORE_ADDR:skip_entrypoint:CORE_ADDR ip:ip
546
97030eea 547f:int:inner_than:CORE_ADDR lhs, CORE_ADDR rhs:lhs, rhs:0:0
67d57894 548m:const gdb_byte *:breakpoint_from_pc:CORE_ADDR *pcptr, int *lenptr:pcptr, lenptr::0:
a1dcb23a
DJ
549# Return the adjusted address and kind to use for Z0/Z1 packets.
550# KIND is usually the memory length of the breakpoint, but may have a
551# different target-specific meaning.
0e05dfcb 552m:void:remote_breakpoint_from_pc:CORE_ADDR *pcptr, int *kindptr:pcptr, kindptr:0:default_remote_breakpoint_from_pc::0
97030eea 553M:CORE_ADDR:adjust_breakpoint_address:CORE_ADDR bpaddr:bpaddr
ae4b2284
MD
554m:int:memory_insert_breakpoint:struct bp_target_info *bp_tgt:bp_tgt:0:default_memory_insert_breakpoint::0
555m:int:memory_remove_breakpoint:struct bp_target_info *bp_tgt:bp_tgt:0:default_memory_remove_breakpoint::0
97030eea 556v:CORE_ADDR:decr_pc_after_break:::0:::0
782263ab
AC
557
558# A function can be addressed by either it's "pointer" (possibly a
559# descriptor address) or "entry point" (first executable instruction).
560# The method "convert_from_func_ptr_addr" converting the former to the
cbf3b44a 561# latter. gdbarch_deprecated_function_start_offset is being used to implement
782263ab
AC
562# a simplified subset of that functionality - the function's address
563# corresponds to the "function pointer" and the function's start
564# corresponds to the "function entry point" - and hence is redundant.
565
97030eea 566v:CORE_ADDR:deprecated_function_start_offset:::0:::0
782263ab 567
123dc839
DJ
568# Return the remote protocol register number associated with this
569# register. Normally the identity mapping.
97030eea 570m:int:remote_register_number:int regno:regno::default_remote_register_number::0
123dc839 571
b2756930 572# Fetch the target specific address used to represent a load module.
97030eea 573F:CORE_ADDR:fetch_tls_load_module_address:struct objfile *objfile:objfile
104c1213 574#
97030eea
UW
575v:CORE_ADDR:frame_args_skip:::0:::0
576M:CORE_ADDR:unwind_pc:struct frame_info *next_frame:next_frame
577M:CORE_ADDR:unwind_sp:struct frame_info *next_frame:next_frame
42efa47a
AC
578# DEPRECATED_FRAME_LOCALS_ADDRESS as been replaced by the per-frame
579# frame-base. Enable frame-base before frame-unwind.
97030eea 580F:int:frame_num_args:struct frame_info *frame:frame
104c1213 581#
97030eea
UW
582M:CORE_ADDR:frame_align:CORE_ADDR address:address
583m:int:stabs_argument_has_addr:struct type *type:type::default_stabs_argument_has_addr::0
584v:int:frame_red_zone_size
f0d4cc9e 585#
97030eea 586m:CORE_ADDR:convert_from_func_ptr_addr:CORE_ADDR addr, struct target_ops *targ:addr, targ::convert_from_func_ptr_addr_identity::0
875e1767
AC
587# On some machines there are bits in addresses which are not really
588# part of the address, but are used by the kernel, the hardware, etc.
bf6ae464 589# for special purposes. gdbarch_addr_bits_remove takes out any such bits so
875e1767
AC
590# we get a "real" address such as one would find in a symbol table.
591# This is used only for addresses of instructions, and even then I'm
592# not sure it's used in all contexts. It exists to deal with there
593# being a few stray bits in the PC which would mislead us, not as some
594# sort of generic thing to handle alignment or segmentation (it's
595# possible it should be in TARGET_READ_PC instead).
24568a2c 596m:CORE_ADDR:addr_bits_remove:CORE_ADDR addr:addr::core_addr_identity::0
e6590a1b
UW
597
598# FIXME/cagney/2001-01-18: This should be split in two. A target method that
599# indicates if the target needs software single step. An ISA method to
600# implement it.
601#
602# FIXME/cagney/2001-01-18: This should be replaced with something that inserts
603# breakpoints using the breakpoint system instead of blatting memory directly
604# (as with rs6000).
64c4637f 605#
e6590a1b
UW
606# FIXME/cagney/2001-01-18: The logic is backwards. It should be asking if the
607# target can single step. If not, then implement single step using breakpoints.
64c4637f 608#
6f112b18 609# A return value of 1 means that the software_single_step breakpoints
e6590a1b 610# were inserted; 0 means they were not.
97030eea 611F:int:software_single_step:struct frame_info *frame:frame
e6590a1b 612
3352ef37
AC
613# Return non-zero if the processor is executing a delay slot and a
614# further single-step is needed before the instruction finishes.
97030eea 615M:int:single_step_through_delay:struct frame_info *frame:frame
f6c40618 616# FIXME: cagney/2003-08-28: Need to find a better way of selecting the
b2fa5097 617# disassembler. Perhaps objdump can handle it?
97030eea
UW
618f:int:print_insn:bfd_vma vma, struct disassemble_info *info:vma, info::0:
619f:CORE_ADDR:skip_trampoline_code:struct frame_info *frame, CORE_ADDR pc:frame, pc::generic_skip_trampoline_code::0
d50355b6
MS
620
621
cfd8ab24 622# If in_solib_dynsym_resolve_code() returns true, and SKIP_SOLIB_RESOLVER
dea0c52f
MK
623# evaluates non-zero, this is the address where the debugger will place
624# a step-resume breakpoint to get us past the dynamic linker.
97030eea 625m:CORE_ADDR:skip_solib_resolver:CORE_ADDR pc:pc::generic_skip_solib_resolver::0
d50355b6 626# Some systems also have trampoline code for returning from shared libs.
2c02bd72 627m:int:in_solib_return_trampoline:CORE_ADDR pc, const char *name:pc, name::generic_in_solib_return_trampoline::0
d50355b6 628
c12260ac
CV
629# A target might have problems with watchpoints as soon as the stack
630# frame of the current function has been destroyed. This mostly happens
c9cf6e20 631# as the first action in a function's epilogue. stack_frame_destroyed_p()
c12260ac
CV
632# is defined to return a non-zero value if either the given addr is one
633# instruction after the stack destroying instruction up to the trailing
634# return instruction or if we can figure out that the stack frame has
635# already been invalidated regardless of the value of addr. Targets
636# which don't suffer from that problem could just let this functionality
637# untouched.
c9cf6e20 638m:int:stack_frame_destroyed_p:CORE_ADDR addr:addr:0:generic_stack_frame_destroyed_p::0
3e29f34a
MR
639# Process an ELF symbol in the minimal symbol table in a backend-specific
640# way. Normally this hook is supposed to do nothing, however if required,
641# then this hook can be used to apply tranformations to symbols that are
642# considered special in some way. For example the MIPS backend uses it
643# to interpret \`st_other' information to mark compressed code symbols so
644# that they can be treated in the appropriate manner in the processing of
645# the main symbol table and DWARF-2 records.
646F:void:elf_make_msymbol_special:asymbol *sym, struct minimal_symbol *msym:sym, msym
97030eea 647f:void:coff_make_msymbol_special:int val, struct minimal_symbol *msym:val, msym::default_coff_make_msymbol_special::0
3e29f34a
MR
648# Process a symbol in the main symbol table in a backend-specific way.
649# Normally this hook is supposed to do nothing, however if required,
650# then this hook can be used to apply tranformations to symbols that
651# are considered special in some way. This is currently used by the
652# MIPS backend to make sure compressed code symbols have the ISA bit
653# set. This in turn is needed for symbol values seen in GDB to match
654# the values used at the runtime by the program itself, for function
655# and label references.
656f:void:make_symbol_special:struct symbol *sym, struct objfile *objfile:sym, objfile::default_make_symbol_special::0
657# Adjust the address retrieved from a DWARF-2 record other than a line
658# entry in a backend-specific way. Normally this hook is supposed to
659# return the address passed unchanged, however if that is incorrect for
660# any reason, then this hook can be used to fix the address up in the
661# required manner. This is currently used by the MIPS backend to make
662# sure addresses in FDE, range records, etc. referring to compressed
663# code have the ISA bit set, matching line information and the symbol
664# table.
665f:CORE_ADDR:adjust_dwarf2_addr:CORE_ADDR pc:pc::default_adjust_dwarf2_addr::0
666# Adjust the address updated by a line entry in a backend-specific way.
667# Normally this hook is supposed to return the address passed unchanged,
668# however in the case of inconsistencies in these records, this hook can
669# be used to fix them up in the required manner. This is currently used
670# by the MIPS backend to make sure all line addresses in compressed code
671# are presented with the ISA bit set, which is not always the case. This
672# in turn ensures breakpoint addresses are correctly matched against the
673# stop PC.
674f:CORE_ADDR:adjust_dwarf2_line:CORE_ADDR addr, int rel:addr, rel::default_adjust_dwarf2_line::0
97030eea
UW
675v:int:cannot_step_breakpoint:::0:0::0
676v:int:have_nonsteppable_watchpoint:::0:0::0
677F:int:address_class_type_flags:int byte_size, int dwarf2_addr_class:byte_size, dwarf2_addr_class
678M:const char *:address_class_type_flags_to_name:int type_flags:type_flags
69f97648
SM
679
680# Return the appropriate type_flags for the supplied address class.
681# This function should return 1 if the address class was recognized and
682# type_flags was set, zero otherwise.
97030eea 683M:int:address_class_name_to_type_flags:const char *name, int *type_flags_ptr:name, type_flags_ptr
b59ff9d5 684# Is a register in a group
97030eea 685m:int:register_reggroup_p:int regnum, struct reggroup *reggroup:regnum, reggroup::default_register_reggroup_p::0
f6214256 686# Fetch the pointer to the ith function argument.
97030eea 687F:CORE_ADDR:fetch_pointer_argument:struct frame_info *frame, int argi, struct type *type:frame, argi, type
6ce6d90f 688
5aa82d05
AA
689# Iterate over all supported register notes in a core file. For each
690# supported register note section, the iterator must call CB and pass
691# CB_DATA unchanged. If REGCACHE is not NULL, the iterator can limit
692# the supported register note sections based on the current register
693# values. Otherwise it should enumerate all supported register note
694# sections.
695M:void:iterate_over_regset_sections:iterate_over_regset_sections_cb *cb, void *cb_data, const struct regcache *regcache:cb, cb_data, regcache
17ea7499 696
6432734d
UW
697# Create core file notes
698M:char *:make_corefile_notes:bfd *obfd, int *note_size:obfd, note_size
699
b3ac9c77
SDJ
700# The elfcore writer hook to use to write Linux prpsinfo notes to core
701# files. Most Linux architectures use the same prpsinfo32 or
702# prpsinfo64 layouts, and so won't need to provide this hook, as we
703# call the Linux generic routines in bfd to write prpsinfo notes by
704# default.
705F:char *:elfcore_write_linux_prpsinfo:bfd *obfd, char *note_data, int *note_size, const struct elf_internal_linux_prpsinfo *info:obfd, note_data, note_size, info
706
35c2fab7
UW
707# Find core file memory regions
708M:int:find_memory_regions:find_memory_region_ftype func, void *data:func, data
709
de584861 710# Read offset OFFSET of TARGET_OBJECT_LIBRARIES formatted shared libraries list from
c09f20e4
YQ
711# core file into buffer READBUF with length LEN. Return the number of bytes read
712# (zero indicates failure).
713# failed, otherwise, return the red length of READBUF.
714M:ULONGEST:core_xfer_shared_libraries:gdb_byte *readbuf, ULONGEST offset, ULONGEST len:readbuf, offset, len
de584861 715
356a5233
JB
716# Read offset OFFSET of TARGET_OBJECT_LIBRARIES_AIX formatted shared
717# libraries list from core file into buffer READBUF with length LEN.
c09f20e4
YQ
718# Return the number of bytes read (zero indicates failure).
719M:ULONGEST:core_xfer_shared_libraries_aix:gdb_byte *readbuf, ULONGEST offset, ULONGEST len:readbuf, offset, len
356a5233 720
c0edd9ed 721# How the core target converts a PTID from a core file to a string.
28439f5e
PA
722M:char *:core_pid_to_str:ptid_t ptid:ptid
723
4dfc5dbc
JB
724# How the core target extracts the name of a thread from a core file.
725M:const char *:core_thread_name:struct thread_info *thr:thr
726
a78c2d62 727# BFD target to use when generating a core file.
86ba1042 728V:const char *:gcore_bfd_target:::0:0:::pstring (gdbarch->gcore_bfd_target)
a78c2d62 729
0d5de010
DJ
730# If the elements of C++ vtables are in-place function descriptors rather
731# than normal function pointers (which may point to code or a descriptor),
732# set this to one.
97030eea 733v:int:vtable_function_descriptors:::0:0::0
0d5de010
DJ
734
735# Set if the least significant bit of the delta is used instead of the least
736# significant bit of the pfn for pointers to virtual member functions.
97030eea 737v:int:vbit_in_delta:::0:0::0
6d350bb5
UW
738
739# Advance PC to next instruction in order to skip a permanent breakpoint.
ae9bb220 740f:void:skip_permanent_breakpoint:struct regcache *regcache:regcache:default_skip_permanent_breakpoint:default_skip_permanent_breakpoint::0
1c772458 741
1668ae25 742# The maximum length of an instruction on this architecture in bytes.
237fc4c9
PA
743V:ULONGEST:max_insn_length:::0:0
744
745# Copy the instruction at FROM to TO, and make any adjustments
746# necessary to single-step it at that address.
747#
748# REGS holds the state the thread's registers will have before
749# executing the copied instruction; the PC in REGS will refer to FROM,
750# not the copy at TO. The caller should update it to point at TO later.
751#
752# Return a pointer to data of the architecture's choice to be passed
753# to gdbarch_displaced_step_fixup. Or, return NULL to indicate that
754# the instruction's effects have been completely simulated, with the
755# resulting state written back to REGS.
756#
757# For a general explanation of displaced stepping and how GDB uses it,
758# see the comments in infrun.c.
759#
760# The TO area is only guaranteed to have space for
761# gdbarch_max_insn_length (arch) bytes, so this function must not
762# write more bytes than that to that area.
763#
764# If you do not provide this function, GDB assumes that the
765# architecture does not support displaced stepping.
766#
767# If your architecture doesn't need to adjust instructions before
768# single-stepping them, consider using simple_displaced_step_copy_insn
769# here.
7f03bd92
PA
770#
771# If the instruction cannot execute out of line, return NULL. The
772# core falls back to stepping past the instruction in-line instead in
773# that case.
237fc4c9
PA
774M:struct displaced_step_closure *:displaced_step_copy_insn:CORE_ADDR from, CORE_ADDR to, struct regcache *regs:from, to, regs
775
99e40580
UW
776# Return true if GDB should use hardware single-stepping to execute
777# the displaced instruction identified by CLOSURE. If false,
778# GDB will simply restart execution at the displaced instruction
779# location, and it is up to the target to ensure GDB will receive
780# control again (e.g. by placing a software breakpoint instruction
781# into the displaced instruction buffer).
782#
783# The default implementation returns false on all targets that
784# provide a gdbarch_software_single_step routine, and true otherwise.
785m:int:displaced_step_hw_singlestep:struct displaced_step_closure *closure:closure::default_displaced_step_hw_singlestep::0
786
237fc4c9
PA
787# Fix up the state resulting from successfully single-stepping a
788# displaced instruction, to give the result we would have gotten from
789# stepping the instruction in its original location.
790#
791# REGS is the register state resulting from single-stepping the
792# displaced instruction.
793#
794# CLOSURE is the result from the matching call to
795# gdbarch_displaced_step_copy_insn.
796#
797# If you provide gdbarch_displaced_step_copy_insn.but not this
798# function, then GDB assumes that no fixup is needed after
799# single-stepping the instruction.
800#
801# For a general explanation of displaced stepping and how GDB uses it,
802# see the comments in infrun.c.
803M:void:displaced_step_fixup:struct displaced_step_closure *closure, CORE_ADDR from, CORE_ADDR to, struct regcache *regs:closure, from, to, regs::NULL
804
805# Free a closure returned by gdbarch_displaced_step_copy_insn.
806#
807# If you provide gdbarch_displaced_step_copy_insn, you must provide
808# this function as well.
809#
810# If your architecture uses closures that don't need to be freed, then
811# you can use simple_displaced_step_free_closure here.
812#
813# For a general explanation of displaced stepping and how GDB uses it,
814# see the comments in infrun.c.
815m:void:displaced_step_free_closure:struct displaced_step_closure *closure:closure::NULL::(! gdbarch->displaced_step_free_closure) != (! gdbarch->displaced_step_copy_insn)
816
817# Return the address of an appropriate place to put displaced
818# instructions while we step over them. There need only be one such
819# place, since we're only stepping one thread over a breakpoint at a
820# time.
821#
822# For a general explanation of displaced stepping and how GDB uses it,
823# see the comments in infrun.c.
824m:CORE_ADDR:displaced_step_location:void:::NULL::(! gdbarch->displaced_step_location) != (! gdbarch->displaced_step_copy_insn)
825
dde08ee1
PA
826# Relocate an instruction to execute at a different address. OLDLOC
827# is the address in the inferior memory where the instruction to
828# relocate is currently at. On input, TO points to the destination
829# where we want the instruction to be copied (and possibly adjusted)
830# to. On output, it points to one past the end of the resulting
831# instruction(s). The effect of executing the instruction at TO shall
832# be the same as if executing it at FROM. For example, call
833# instructions that implicitly push the return address on the stack
834# should be adjusted to return to the instruction after OLDLOC;
835# relative branches, and other PC-relative instructions need the
836# offset adjusted; etc.
837M:void:relocate_instruction:CORE_ADDR *to, CORE_ADDR from:to, from::NULL
838
1c772458 839# Refresh overlay mapped state for section OSECT.
97030eea 840F:void:overlay_update:struct obj_section *osect:osect
4eb0ad19 841
97030eea 842M:const struct target_desc *:core_read_description:struct target_ops *target, bfd *abfd:target, abfd
149ad273
UW
843
844# Handle special encoding of static variables in stabs debug info.
0d5cff50 845F:const char *:static_transform_name:const char *name:name
203c3895 846# Set if the address in N_SO or N_FUN stabs may be zero.
97030eea 847v:int:sofun_address_maybe_missing:::0:0::0
1cded358 848
0508c3ec
HZ
849# Parse the instruction at ADDR storing in the record execution log
850# the registers REGCACHE and memory ranges that will be affected when
851# the instruction executes, along with their current values.
852# Return -1 if something goes wrong, 0 otherwise.
853M:int:process_record:struct regcache *regcache, CORE_ADDR addr:regcache, addr
854
3846b520
HZ
855# Save process state after a signal.
856# Return -1 if something goes wrong, 0 otherwise.
2ea28649 857M:int:process_record_signal:struct regcache *regcache, enum gdb_signal signal:regcache, signal
3846b520 858
22203bbf 859# Signal translation: translate inferior's signal (target's) number
86b49880
PA
860# into GDB's representation. The implementation of this method must
861# be host independent. IOW, don't rely on symbols of the NAT_FILE
862# header (the nm-*.h files), the host <signal.h> header, or similar
863# headers. This is mainly used when cross-debugging core files ---
864# "Live" targets hide the translation behind the target interface
1f8cf220
PA
865# (target_wait, target_resume, etc.).
866M:enum gdb_signal:gdb_signal_from_target:int signo:signo
60c5725c 867
eb14d406
SDJ
868# Signal translation: translate the GDB's internal signal number into
869# the inferior's signal (target's) representation. The implementation
870# of this method must be host independent. IOW, don't rely on symbols
871# of the NAT_FILE header (the nm-*.h files), the host <signal.h>
872# header, or similar headers.
873# Return the target signal number if found, or -1 if the GDB internal
874# signal number is invalid.
875M:int:gdb_signal_to_target:enum gdb_signal signal:signal
876
4aa995e1
PA
877# Extra signal info inspection.
878#
879# Return a type suitable to inspect extra signal information.
880M:struct type *:get_siginfo_type:void:
881
60c5725c
DJ
882# Record architecture-specific information from the symbol table.
883M:void:record_special_symbol:struct objfile *objfile, asymbol *sym:objfile, sym
50c71eaf 884
a96d9b2e
SDJ
885# Function for the 'catch syscall' feature.
886
887# Get architecture-specific system calls information from registers.
888M:LONGEST:get_syscall_number:ptid_t ptid:ptid
889
458c8db8
SDJ
890# The filename of the XML syscall for this architecture.
891v:const char *:xml_syscall_file:::0:0::0:pstring (gdbarch->xml_syscall_file)
892
893# Information about system calls from this architecture
894v:struct syscalls_info *:syscalls_info:::0:0::0:host_address_to_string (gdbarch->syscalls_info)
895
55aa24fb
SDJ
896# SystemTap related fields and functions.
897
05c0465e
SDJ
898# A NULL-terminated array of prefixes used to mark an integer constant
899# on the architecture's assembly.
55aa24fb
SDJ
900# For example, on x86 integer constants are written as:
901#
902# \$10 ;; integer constant 10
903#
904# in this case, this prefix would be the character \`\$\'.
05c0465e 905v:const char *const *:stap_integer_prefixes:::0:0::0:pstring_list (gdbarch->stap_integer_prefixes)
55aa24fb 906
05c0465e
SDJ
907# A NULL-terminated array of suffixes used to mark an integer constant
908# on the architecture's assembly.
909v:const char *const *:stap_integer_suffixes:::0:0::0:pstring_list (gdbarch->stap_integer_suffixes)
55aa24fb 910
05c0465e
SDJ
911# A NULL-terminated array of prefixes used to mark a register name on
912# the architecture's assembly.
55aa24fb
SDJ
913# For example, on x86 the register name is written as:
914#
915# \%eax ;; register eax
916#
917# in this case, this prefix would be the character \`\%\'.
05c0465e 918v:const char *const *:stap_register_prefixes:::0:0::0:pstring_list (gdbarch->stap_register_prefixes)
55aa24fb 919
05c0465e
SDJ
920# A NULL-terminated array of suffixes used to mark a register name on
921# the architecture's assembly.
922v:const char *const *:stap_register_suffixes:::0:0::0:pstring_list (gdbarch->stap_register_suffixes)
55aa24fb 923
05c0465e
SDJ
924# A NULL-terminated array of prefixes used to mark a register
925# indirection on the architecture's assembly.
55aa24fb
SDJ
926# For example, on x86 the register indirection is written as:
927#
928# \(\%eax\) ;; indirecting eax
929#
930# in this case, this prefix would be the charater \`\(\'.
931#
932# Please note that we use the indirection prefix also for register
933# displacement, e.g., \`4\(\%eax\)\' on x86.
05c0465e 934v:const char *const *:stap_register_indirection_prefixes:::0:0::0:pstring_list (gdbarch->stap_register_indirection_prefixes)
55aa24fb 935
05c0465e
SDJ
936# A NULL-terminated array of suffixes used to mark a register
937# indirection on the architecture's assembly.
55aa24fb
SDJ
938# For example, on x86 the register indirection is written as:
939#
940# \(\%eax\) ;; indirecting eax
941#
942# in this case, this prefix would be the charater \`\)\'.
943#
944# Please note that we use the indirection suffix also for register
945# displacement, e.g., \`4\(\%eax\)\' on x86.
05c0465e 946v:const char *const *:stap_register_indirection_suffixes:::0:0::0:pstring_list (gdbarch->stap_register_indirection_suffixes)
55aa24fb 947
05c0465e 948# Prefix(es) used to name a register using GDB's nomenclature.
55aa24fb
SDJ
949#
950# For example, on PPC a register is represented by a number in the assembly
951# language (e.g., \`10\' is the 10th general-purpose register). However,
952# inside GDB this same register has an \`r\' appended to its name, so the 10th
953# register would be represented as \`r10\' internally.
08af7a40 954v:const char *:stap_gdb_register_prefix:::0:0::0:pstring (gdbarch->stap_gdb_register_prefix)
55aa24fb
SDJ
955
956# Suffix used to name a register using GDB's nomenclature.
08af7a40 957v:const char *:stap_gdb_register_suffix:::0:0::0:pstring (gdbarch->stap_gdb_register_suffix)
55aa24fb
SDJ
958
959# Check if S is a single operand.
960#
961# Single operands can be:
962# \- Literal integers, e.g. \`\$10\' on x86
963# \- Register access, e.g. \`\%eax\' on x86
964# \- Register indirection, e.g. \`\(\%eax\)\' on x86
965# \- Register displacement, e.g. \`4\(\%eax\)\' on x86
966#
967# This function should check for these patterns on the string
968# and return 1 if some were found, or zero otherwise. Please try to match
969# as much info as you can from the string, i.e., if you have to match
970# something like \`\(\%\', do not match just the \`\(\'.
971M:int:stap_is_single_operand:const char *s:s
972
973# Function used to handle a "special case" in the parser.
974#
975# A "special case" is considered to be an unknown token, i.e., a token
976# that the parser does not know how to parse. A good example of special
977# case would be ARM's register displacement syntax:
978#
979# [R0, #4] ;; displacing R0 by 4
980#
981# Since the parser assumes that a register displacement is of the form:
982#
983# <number> <indirection_prefix> <register_name> <indirection_suffix>
984#
985# it means that it will not be able to recognize and parse this odd syntax.
986# Therefore, we should add a special case function that will handle this token.
987#
988# This function should generate the proper expression form of the expression
989# using GDB\'s internal expression mechanism (e.g., \`write_exp_elt_opcode\'
990# and so on). It should also return 1 if the parsing was successful, or zero
991# if the token was not recognized as a special token (in this case, returning
992# zero means that the special parser is deferring the parsing to the generic
993# parser), and should advance the buffer pointer (p->arg).
994M:int:stap_parse_special_token:struct stap_parse_info *p:p
995
8b367e17
JM
996# DTrace related functions.
997
998# The expression to compute the NARTGth+1 argument to a DTrace USDT probe.
999# NARG must be >= 0.
1000M:void:dtrace_parse_probe_argument:struct parser_state *pstate, int narg:pstate, narg
1001
1002# True if the given ADDR does not contain the instruction sequence
1003# corresponding to a disabled DTrace is-enabled probe.
1004M:int:dtrace_probe_is_enabled:CORE_ADDR addr:addr
1005
1006# Enable a DTrace is-enabled probe at ADDR.
1007M:void:dtrace_enable_probe:CORE_ADDR addr:addr
1008
1009# Disable a DTrace is-enabled probe at ADDR.
1010M:void:dtrace_disable_probe:CORE_ADDR addr:addr
55aa24fb 1011
50c71eaf
PA
1012# True if the list of shared libraries is one and only for all
1013# processes, as opposed to a list of shared libraries per inferior.
2567c7d9
PA
1014# This usually means that all processes, although may or may not share
1015# an address space, will see the same set of symbols at the same
1016# addresses.
50c71eaf 1017v:int:has_global_solist:::0:0::0
2567c7d9
PA
1018
1019# On some targets, even though each inferior has its own private
1020# address space, the debug interface takes care of making breakpoints
1021# visible to all address spaces automatically. For such cases,
1022# this property should be set to true.
1023v:int:has_global_breakpoints:::0:0::0
6c95b8df
PA
1024
1025# True if inferiors share an address space (e.g., uClinux).
1026m:int:has_shared_address_space:void:::default_has_shared_address_space::0
7a697b8d
SS
1027
1028# True if a fast tracepoint can be set at an address.
6b940e6a 1029m:int:fast_tracepoint_valid_at:CORE_ADDR addr, char **msg:addr, msg::default_fast_tracepoint_valid_at::0
75cebea9 1030
f870a310
TT
1031# Return the "auto" target charset.
1032f:const char *:auto_charset:void::default_auto_charset:default_auto_charset::0
1033# Return the "auto" target wide charset.
1034f:const char *:auto_wide_charset:void::default_auto_wide_charset:default_auto_wide_charset::0
08105857
PA
1035
1036# If non-empty, this is a file extension that will be opened in place
1037# of the file extension reported by the shared library list.
1038#
1039# This is most useful for toolchains that use a post-linker tool,
1040# where the names of the files run on the target differ in extension
1041# compared to the names of the files GDB should load for debug info.
1042v:const char *:solib_symbols_extension:::::::pstring (gdbarch->solib_symbols_extension)
ab38a727
PA
1043
1044# If true, the target OS has DOS-based file system semantics. That
1045# is, absolute paths include a drive name, and the backslash is
1046# considered a directory separator.
1047v:int:has_dos_based_file_system:::0:0::0
6710bf39
SS
1048
1049# Generate bytecodes to collect the return address in a frame.
1050# Since the bytecodes run on the target, possibly with GDB not even
1051# connected, the full unwinding machinery is not available, and
1052# typically this function will issue bytecodes for one or more likely
1053# places that the return address may be found.
1054m:void:gen_return_address:struct agent_expr *ax, struct axs_value *value, CORE_ADDR scope:ax, value, scope::default_gen_return_address::0
1055
3030c96e 1056# Implement the "info proc" command.
7bc112c1 1057M:void:info_proc:const char *args, enum info_proc_what what:args, what
3030c96e 1058
451b7c33
TT
1059# Implement the "info proc" command for core files. Noe that there
1060# are two "info_proc"-like methods on gdbarch -- one for core files,
1061# one for live targets.
7bc112c1 1062M:void:core_info_proc:const char *args, enum info_proc_what what:args, what
451b7c33 1063
19630284
JB
1064# Iterate over all objfiles in the order that makes the most sense
1065# for the architecture to make global symbol searches.
1066#
1067# CB is a callback function where OBJFILE is the objfile to be searched,
1068# and CB_DATA a pointer to user-defined data (the same data that is passed
1069# when calling this gdbarch method). The iteration stops if this function
1070# returns nonzero.
1071#
1072# CB_DATA is a pointer to some user-defined data to be passed to
1073# the callback.
1074#
1075# If not NULL, CURRENT_OBJFILE corresponds to the objfile being
1076# inspected when the symbol search was requested.
1077m:void:iterate_over_objfiles_in_search_order:iterate_over_objfiles_in_search_order_cb_ftype *cb, void *cb_data, struct objfile *current_objfile:cb, cb_data, current_objfile:0:default_iterate_over_objfiles_in_search_order::0
1078
7e35103a
JB
1079# Ravenscar arch-dependent ops.
1080v:struct ravenscar_arch_ops *:ravenscar_ops:::NULL:NULL::0:host_address_to_string (gdbarch->ravenscar_ops)
c2170eef
MM
1081
1082# Return non-zero if the instruction at ADDR is a call; zero otherwise.
1083m:int:insn_is_call:CORE_ADDR addr:addr::default_insn_is_call::0
1084
1085# Return non-zero if the instruction at ADDR is a return; zero otherwise.
1086m:int:insn_is_ret:CORE_ADDR addr:addr::default_insn_is_ret::0
1087
1088# Return non-zero if the instruction at ADDR is a jump; zero otherwise.
1089m:int:insn_is_jump:CORE_ADDR addr:addr::default_insn_is_jump::0
27a48a92
MK
1090
1091# Read one auxv entry from *READPTR, not reading locations >= ENDPTR.
1092# Return 0 if *READPTR is already at the end of the buffer.
1093# Return -1 if there is insufficient buffer for a whole entry.
1094# Return 1 if an entry was read into *TYPEP and *VALP.
1095M:int:auxv_parse:gdb_byte **readptr, gdb_byte *endptr, CORE_ADDR *typep, CORE_ADDR *valp:readptr, endptr, typep, valp
3437254d
PA
1096
1097# Find the address range of the current inferior's vsyscall/vDSO, and
1098# write it to *RANGE. If the vsyscall's length can't be determined, a
1099# range with zero length is returned. Returns true if the vsyscall is
1100# found, false otherwise.
1101m:int:vsyscall_range:struct mem_range *range:range::default_vsyscall_range::0
f208eee0
JK
1102
1103# Allocate SIZE bytes of PROT protected page aligned memory in inferior.
1104# PROT has GDB_MMAP_PROT_* bitmask format.
1105# Throw an error if it is not possible. Returned address is always valid.
1106f:CORE_ADDR:infcall_mmap:CORE_ADDR size, unsigned prot:size, prot::default_infcall_mmap::0
1107
7f361056
JK
1108# Deallocate SIZE bytes of memory at ADDR in inferior from gdbarch_infcall_mmap.
1109# Print a warning if it is not possible.
1110f:void:infcall_munmap:CORE_ADDR addr, CORE_ADDR size:addr, size::default_infcall_munmap::0
1111
f208eee0
JK
1112# Return string (caller has to use xfree for it) with options for GCC
1113# to produce code for this target, typically "-m64", "-m32" or "-m31".
1114# These options are put before CU's DW_AT_producer compilation options so that
1115# they can override it. Method may also return NULL.
1116m:char *:gcc_target_options:void:::default_gcc_target_options::0
ac04f72b
TT
1117
1118# Return a regular expression that matches names used by this
1119# architecture in GNU configury triplets. The result is statically
1120# allocated and must not be freed. The default implementation simply
1121# returns the BFD architecture name, which is correct in nearly every
1122# case.
1123m:const char *:gnu_triplet_regexp:void:::default_gnu_triplet_regexp::0
3374165f
SM
1124
1125# Return the size in 8-bit bytes of an addressable memory unit on this
1126# architecture. This corresponds to the number of 8-bit bytes associated to
1127# each address in memory.
1128m:int:addressable_memory_unit_size:void:::default_addressable_memory_unit_size::0
1129
104c1213 1130EOF
104c1213
JM
1131}
1132
0b8f9e4d
AC
1133#
1134# The .log file
1135#
1136exec > new-gdbarch.log
34620563 1137function_list | while do_read
0b8f9e4d
AC
1138do
1139 cat <<EOF
2f9b146e 1140${class} ${returntype} ${function} ($formal)
104c1213 1141EOF
3d9a5942
AC
1142 for r in ${read}
1143 do
1144 eval echo \"\ \ \ \ ${r}=\${${r}}\"
1145 done
f0d4cc9e 1146 if class_is_predicate_p && fallback_default_p
0b8f9e4d 1147 then
66d659b1 1148 echo "Error: predicate function ${function} can not have a non- multi-arch default" 1>&2
0b8f9e4d
AC
1149 kill $$
1150 exit 1
1151 fi
72e74a21 1152 if [ "x${invalid_p}" = "x0" -a -n "${postdefault}" ]
f0d4cc9e
AC
1153 then
1154 echo "Error: postdefault is useless when invalid_p=0" 1>&2
1155 kill $$
1156 exit 1
1157 fi
a72293e2
AC
1158 if class_is_multiarch_p
1159 then
1160 if class_is_predicate_p ; then :
1161 elif test "x${predefault}" = "x"
1162 then
2f9b146e 1163 echo "Error: pure multi-arch function ${function} must have a predefault" 1>&2
a72293e2
AC
1164 kill $$
1165 exit 1
1166 fi
1167 fi
3d9a5942 1168 echo ""
0b8f9e4d
AC
1169done
1170
1171exec 1>&2
1172compare_new gdbarch.log
1173
104c1213
JM
1174
1175copyright ()
1176{
1177cat <<EOF
c4bfde41
JK
1178/* *INDENT-OFF* */ /* THIS FILE IS GENERATED -*- buffer-read-only: t -*- */
1179/* vi:set ro: */
59233f88 1180
104c1213 1181/* Dynamic architecture support for GDB, the GNU debugger.
79d45cd4 1182
618f726f 1183 Copyright (C) 1998-2016 Free Software Foundation, Inc.
104c1213
JM
1184
1185 This file is part of GDB.
1186
1187 This program is free software; you can redistribute it and/or modify
1188 it under the terms of the GNU General Public License as published by
50efebf8 1189 the Free Software Foundation; either version 3 of the License, or
104c1213 1190 (at your option) any later version.
618f726f 1191
104c1213
JM
1192 This program is distributed in the hope that it will be useful,
1193 but WITHOUT ANY WARRANTY; without even the implied warranty of
1194 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
1195 GNU General Public License for more details.
618f726f 1196
104c1213 1197 You should have received a copy of the GNU General Public License
50efebf8 1198 along with this program. If not, see <http://www.gnu.org/licenses/>. */
104c1213 1199
104c1213
JM
1200/* This file was created with the aid of \`\`gdbarch.sh''.
1201
52204a0b 1202 The Bourne shell script \`\`gdbarch.sh'' creates the files
104c1213
JM
1203 \`\`new-gdbarch.c'' and \`\`new-gdbarch.h and then compares them
1204 against the existing \`\`gdbarch.[hc]''. Any differences found
1205 being reported.
1206
1207 If editing this file, please also run gdbarch.sh and merge any
52204a0b 1208 changes into that script. Conversely, when making sweeping changes
104c1213 1209 to this file, modifying gdbarch.sh and using its output may prove
0963b4bd 1210 easier. */
104c1213
JM
1211
1212EOF
1213}
1214
1215#
1216# The .h file
1217#
1218
1219exec > new-gdbarch.h
1220copyright
1221cat <<EOF
1222#ifndef GDBARCH_H
1223#define GDBARCH_H
1224
eb7a547a
JB
1225#include "frame.h"
1226
da3331ec
AC
1227struct floatformat;
1228struct ui_file;
104c1213 1229struct value;
b6af0555 1230struct objfile;
1c772458 1231struct obj_section;
a2cf933a 1232struct minimal_symbol;
049ee0e4 1233struct regcache;
b59ff9d5 1234struct reggroup;
6ce6d90f 1235struct regset;
a89aa300 1236struct disassemble_info;
e2d0e7eb 1237struct target_ops;
030f20e1 1238struct obstack;
8181d85f 1239struct bp_target_info;
424163ea 1240struct target_desc;
3e29f34a
MR
1241struct objfile;
1242struct symbol;
237fc4c9 1243struct displaced_step_closure;
a96d9b2e 1244struct syscall;
175ff332 1245struct agent_expr;
6710bf39 1246struct axs_value;
55aa24fb 1247struct stap_parse_info;
8b367e17 1248struct parser_state;
7e35103a 1249struct ravenscar_arch_ops;
b3ac9c77 1250struct elf_internal_linux_prpsinfo;
3437254d 1251struct mem_range;
458c8db8 1252struct syscalls_info;
4dfc5dbc 1253struct thread_info;
104c1213 1254
8a526fa6
PA
1255#include "regcache.h"
1256
6ecd4729
PA
1257/* The architecture associated with the inferior through the
1258 connection to the target.
1259
1260 The architecture vector provides some information that is really a
1261 property of the inferior, accessed through a particular target:
1262 ptrace operations; the layout of certain RSP packets; the solib_ops
1263 vector; etc. To differentiate architecture accesses to
1264 per-inferior/target properties from
1265 per-thread/per-frame/per-objfile properties, accesses to
1266 per-inferior/target properties should be made through this
1267 gdbarch. */
1268
1269/* This is a convenience wrapper for 'current_inferior ()->gdbarch'. */
f5656ead 1270extern struct gdbarch *target_gdbarch (void);
6ecd4729 1271
19630284
JB
1272/* Callback type for the 'iterate_over_objfiles_in_search_order'
1273 gdbarch method. */
1274
1275typedef int (iterate_over_objfiles_in_search_order_cb_ftype)
1276 (struct objfile *objfile, void *cb_data);
5aa82d05 1277
1528345d
AA
1278/* Callback type for regset section iterators. The callback usually
1279 invokes the REGSET's supply or collect method, to which it must
1280 pass a buffer with at least the given SIZE. SECT_NAME is a BFD
1281 section name, and HUMAN_NAME is used for diagnostic messages.
1282 CB_DATA should have been passed unchanged through the iterator. */
1283
5aa82d05 1284typedef void (iterate_over_regset_sections_cb)
8f0435f7
AA
1285 (const char *sect_name, int size, const struct regset *regset,
1286 const char *human_name, void *cb_data);
104c1213
JM
1287EOF
1288
1289# function typedef's
3d9a5942
AC
1290printf "\n"
1291printf "\n"
0963b4bd 1292printf "/* The following are pre-initialized by GDBARCH. */\n"
34620563 1293function_list | while do_read
104c1213 1294do
2ada493a
AC
1295 if class_is_info_p
1296 then
3d9a5942
AC
1297 printf "\n"
1298 printf "extern ${returntype} gdbarch_${function} (struct gdbarch *gdbarch);\n"
0963b4bd 1299 printf "/* set_gdbarch_${function}() - not applicable - pre-initialized. */\n"
2ada493a 1300 fi
104c1213
JM
1301done
1302
1303# function typedef's
3d9a5942
AC
1304printf "\n"
1305printf "\n"
0963b4bd 1306printf "/* The following are initialized by the target dependent code. */\n"
34620563 1307function_list | while do_read
104c1213 1308do
72e74a21 1309 if [ -n "${comment}" ]
34620563
AC
1310 then
1311 echo "${comment}" | sed \
1312 -e '2 s,#,/*,' \
1313 -e '3,$ s,#, ,' \
1314 -e '$ s,$, */,'
1315 fi
412d5987
AC
1316
1317 if class_is_predicate_p
2ada493a 1318 then
412d5987
AC
1319 printf "\n"
1320 printf "extern int gdbarch_${function}_p (struct gdbarch *gdbarch);\n"
4a5c6a1d 1321 fi
2ada493a
AC
1322 if class_is_variable_p
1323 then
3d9a5942
AC
1324 printf "\n"
1325 printf "extern ${returntype} gdbarch_${function} (struct gdbarch *gdbarch);\n"
1326 printf "extern void set_gdbarch_${function} (struct gdbarch *gdbarch, ${returntype} ${function});\n"
2ada493a
AC
1327 fi
1328 if class_is_function_p
1329 then
3d9a5942 1330 printf "\n"
72e74a21 1331 if [ "x${formal}" = "xvoid" ] && class_is_multiarch_p
4a5c6a1d
AC
1332 then
1333 printf "typedef ${returntype} (gdbarch_${function}_ftype) (struct gdbarch *gdbarch);\n"
1334 elif class_is_multiarch_p
1335 then
1336 printf "typedef ${returntype} (gdbarch_${function}_ftype) (struct gdbarch *gdbarch, ${formal});\n"
1337 else
1338 printf "typedef ${returntype} (gdbarch_${function}_ftype) (${formal});\n"
1339 fi
72e74a21 1340 if [ "x${formal}" = "xvoid" ]
104c1213 1341 then
3d9a5942 1342 printf "extern ${returntype} gdbarch_${function} (struct gdbarch *gdbarch);\n"
104c1213 1343 else
3d9a5942 1344 printf "extern ${returntype} gdbarch_${function} (struct gdbarch *gdbarch, ${formal});\n"
104c1213 1345 fi
3d9a5942 1346 printf "extern void set_gdbarch_${function} (struct gdbarch *gdbarch, gdbarch_${function}_ftype *${function});\n"
2ada493a 1347 fi
104c1213
JM
1348done
1349
1350# close it off
1351cat <<EOF
1352
a96d9b2e
SDJ
1353/* Definition for an unknown syscall, used basically in error-cases. */
1354#define UNKNOWN_SYSCALL (-1)
1355
104c1213
JM
1356extern struct gdbarch_tdep *gdbarch_tdep (struct gdbarch *gdbarch);
1357
1358
1359/* Mechanism for co-ordinating the selection of a specific
1360 architecture.
1361
1362 GDB targets (*-tdep.c) can register an interest in a specific
1363 architecture. Other GDB components can register a need to maintain
1364 per-architecture data.
1365
1366 The mechanisms below ensures that there is only a loose connection
1367 between the set-architecture command and the various GDB
0fa6923a 1368 components. Each component can independently register their need
104c1213
JM
1369 to maintain architecture specific data with gdbarch.
1370
1371 Pragmatics:
1372
1373 Previously, a single TARGET_ARCHITECTURE_HOOK was provided. It
1374 didn't scale.
1375
1376 The more traditional mega-struct containing architecture specific
1377 data for all the various GDB components was also considered. Since
0fa6923a 1378 GDB is built from a variable number of (fairly independent)
104c1213 1379 components it was determined that the global aproach was not
0963b4bd 1380 applicable. */
104c1213
JM
1381
1382
1383/* Register a new architectural family with GDB.
1384
1385 Register support for the specified ARCHITECTURE with GDB. When
1386 gdbarch determines that the specified architecture has been
1387 selected, the corresponding INIT function is called.
1388
1389 --
1390
1391 The INIT function takes two parameters: INFO which contains the
1392 information available to gdbarch about the (possibly new)
1393 architecture; ARCHES which is a list of the previously created
1394 \`\`struct gdbarch'' for this architecture.
1395
0f79675b 1396 The INFO parameter is, as far as possible, be pre-initialized with
7a107747 1397 information obtained from INFO.ABFD or the global defaults.
0f79675b
AC
1398
1399 The ARCHES parameter is a linked list (sorted most recently used)
1400 of all the previously created architures for this architecture
1401 family. The (possibly NULL) ARCHES->gdbarch can used to access
1402 values from the previously selected architecture for this
59837fe0 1403 architecture family.
104c1213
JM
1404
1405 The INIT function shall return any of: NULL - indicating that it
ec3d358c 1406 doesn't recognize the selected architecture; an existing \`\`struct
104c1213
JM
1407 gdbarch'' from the ARCHES list - indicating that the new
1408 architecture is just a synonym for an earlier architecture (see
1409 gdbarch_list_lookup_by_info()); a newly created \`\`struct gdbarch''
4b9b3959
AC
1410 - that describes the selected architecture (see gdbarch_alloc()).
1411
1412 The DUMP_TDEP function shall print out all target specific values.
1413 Care should be taken to ensure that the function works in both the
0963b4bd 1414 multi-arch and non- multi-arch cases. */
104c1213
JM
1415
1416struct gdbarch_list
1417{
1418 struct gdbarch *gdbarch;
1419 struct gdbarch_list *next;
1420};
1421
1422struct gdbarch_info
1423{
0963b4bd 1424 /* Use default: NULL (ZERO). */
104c1213
JM
1425 const struct bfd_arch_info *bfd_arch_info;
1426
428721aa 1427 /* Use default: BFD_ENDIAN_UNKNOWN (NB: is not ZERO). */
94123b4f 1428 enum bfd_endian byte_order;
104c1213 1429
94123b4f 1430 enum bfd_endian byte_order_for_code;
9d4fde75 1431
0963b4bd 1432 /* Use default: NULL (ZERO). */
104c1213
JM
1433 bfd *abfd;
1434
0963b4bd 1435 /* Use default: NULL (ZERO). */
ede5f151 1436 void *tdep_info;
4be87837
DJ
1437
1438 /* Use default: GDB_OSABI_UNINITIALIZED (-1). */
1439 enum gdb_osabi osabi;
424163ea
DJ
1440
1441 /* Use default: NULL (ZERO). */
1442 const struct target_desc *target_desc;
104c1213
JM
1443};
1444
1445typedef struct gdbarch *(gdbarch_init_ftype) (struct gdbarch_info info, struct gdbarch_list *arches);
4b9b3959 1446typedef void (gdbarch_dump_tdep_ftype) (struct gdbarch *gdbarch, struct ui_file *file);
104c1213 1447
4b9b3959 1448/* DEPRECATED - use gdbarch_register() */
104c1213
JM
1449extern void register_gdbarch_init (enum bfd_architecture architecture, gdbarch_init_ftype *);
1450
4b9b3959
AC
1451extern void gdbarch_register (enum bfd_architecture architecture,
1452 gdbarch_init_ftype *,
1453 gdbarch_dump_tdep_ftype *);
1454
104c1213 1455
b4a20239
AC
1456/* Return a freshly allocated, NULL terminated, array of the valid
1457 architecture names. Since architectures are registered during the
1458 _initialize phase this function only returns useful information
0963b4bd 1459 once initialization has been completed. */
b4a20239
AC
1460
1461extern const char **gdbarch_printable_names (void);
1462
1463
104c1213 1464/* Helper function. Search the list of ARCHES for a GDBARCH that
0963b4bd 1465 matches the information provided by INFO. */
104c1213 1466
424163ea 1467extern struct gdbarch_list *gdbarch_list_lookup_by_info (struct gdbarch_list *arches, const struct gdbarch_info *info);
104c1213
JM
1468
1469
1470/* Helper function. Create a preliminary \`\`struct gdbarch''. Perform
424163ea 1471 basic initialization using values obtained from the INFO and TDEP
104c1213 1472 parameters. set_gdbarch_*() functions are called to complete the
0963b4bd 1473 initialization of the object. */
104c1213
JM
1474
1475extern struct gdbarch *gdbarch_alloc (const struct gdbarch_info *info, struct gdbarch_tdep *tdep);
1476
1477
4b9b3959
AC
1478/* Helper function. Free a partially-constructed \`\`struct gdbarch''.
1479 It is assumed that the caller freeds the \`\`struct
0963b4bd 1480 gdbarch_tdep''. */
4b9b3959 1481
058f20d5
JB
1482extern void gdbarch_free (struct gdbarch *);
1483
1484
aebd7893
AC
1485/* Helper function. Allocate memory from the \`\`struct gdbarch''
1486 obstack. The memory is freed when the corresponding architecture
1487 is also freed. */
1488
1489extern void *gdbarch_obstack_zalloc (struct gdbarch *gdbarch, long size);
1490#define GDBARCH_OBSTACK_CALLOC(GDBARCH, NR, TYPE) ((TYPE *) gdbarch_obstack_zalloc ((GDBARCH), (NR) * sizeof (TYPE)))
1491#define GDBARCH_OBSTACK_ZALLOC(GDBARCH, TYPE) ((TYPE *) gdbarch_obstack_zalloc ((GDBARCH), sizeof (TYPE)))
1492
6c214e7c
PP
1493/* Duplicate STRING, returning an equivalent string that's allocated on the
1494 obstack associated with GDBARCH. The string is freed when the corresponding
1495 architecture is also freed. */
1496
1497extern char *gdbarch_obstack_strdup (struct gdbarch *arch, const char *string);
aebd7893 1498
0963b4bd 1499/* Helper function. Force an update of the current architecture.
104c1213 1500
b732d07d
AC
1501 The actual architecture selected is determined by INFO, \`\`(gdb) set
1502 architecture'' et.al., the existing architecture and BFD's default
1503 architecture. INFO should be initialized to zero and then selected
1504 fields should be updated.
104c1213 1505
0963b4bd 1506 Returns non-zero if the update succeeds. */
16f33e29
AC
1507
1508extern int gdbarch_update_p (struct gdbarch_info info);
104c1213
JM
1509
1510
ebdba546
AC
1511/* Helper function. Find an architecture matching info.
1512
1513 INFO should be initialized using gdbarch_info_init, relevant fields
1514 set, and then finished using gdbarch_info_fill.
1515
1516 Returns the corresponding architecture, or NULL if no matching
59837fe0 1517 architecture was found. */
ebdba546
AC
1518
1519extern struct gdbarch *gdbarch_find_by_info (struct gdbarch_info info);
1520
1521
aff68abb 1522/* Helper function. Set the target gdbarch to "gdbarch". */
ebdba546 1523
aff68abb 1524extern void set_target_gdbarch (struct gdbarch *gdbarch);
ebdba546 1525
104c1213
JM
1526
1527/* Register per-architecture data-pointer.
1528
1529 Reserve space for a per-architecture data-pointer. An identifier
1530 for the reserved data-pointer is returned. That identifer should
95160752 1531 be saved in a local static variable.
104c1213 1532
fcc1c85c
AC
1533 Memory for the per-architecture data shall be allocated using
1534 gdbarch_obstack_zalloc. That memory will be deleted when the
1535 corresponding architecture object is deleted.
104c1213 1536
95160752
AC
1537 When a previously created architecture is re-selected, the
1538 per-architecture data-pointer for that previous architecture is
76860b5f 1539 restored. INIT() is not re-called.
104c1213
JM
1540
1541 Multiple registrarants for any architecture are allowed (and
1542 strongly encouraged). */
1543
95160752 1544struct gdbarch_data;
104c1213 1545
030f20e1
AC
1546typedef void *(gdbarch_data_pre_init_ftype) (struct obstack *obstack);
1547extern struct gdbarch_data *gdbarch_data_register_pre_init (gdbarch_data_pre_init_ftype *init);
1548typedef void *(gdbarch_data_post_init_ftype) (struct gdbarch *gdbarch);
1549extern struct gdbarch_data *gdbarch_data_register_post_init (gdbarch_data_post_init_ftype *init);
1550extern void deprecated_set_gdbarch_data (struct gdbarch *gdbarch,
1551 struct gdbarch_data *data,
1552 void *pointer);
104c1213 1553
451fbdda 1554extern void *gdbarch_data (struct gdbarch *gdbarch, struct gdbarch_data *);
104c1213
JM
1555
1556
0fa6923a 1557/* Set the dynamic target-system-dependent parameters (architecture,
0963b4bd 1558 byte-order, ...) using information found in the BFD. */
104c1213
JM
1559
1560extern void set_gdbarch_from_file (bfd *);
1561
1562
e514a9d6
JM
1563/* Initialize the current architecture to the "first" one we find on
1564 our list. */
1565
1566extern void initialize_current_architecture (void);
1567
104c1213 1568/* gdbarch trace variable */
ccce17b0 1569extern unsigned int gdbarch_debug;
104c1213 1570
4b9b3959 1571extern void gdbarch_dump (struct gdbarch *gdbarch, struct ui_file *file);
104c1213
JM
1572
1573#endif
1574EOF
1575exec 1>&2
1576#../move-if-change new-gdbarch.h gdbarch.h
59233f88 1577compare_new gdbarch.h
104c1213
JM
1578
1579
1580#
1581# C file
1582#
1583
1584exec > new-gdbarch.c
1585copyright
1586cat <<EOF
1587
1588#include "defs.h"
7355ddba 1589#include "arch-utils.h"
104c1213 1590
104c1213 1591#include "gdbcmd.h"
faaf634c 1592#include "inferior.h"
104c1213
JM
1593#include "symcat.h"
1594
f0d4cc9e 1595#include "floatformat.h"
b59ff9d5 1596#include "reggroups.h"
4be87837 1597#include "osabi.h"
aebd7893 1598#include "gdb_obstack.h"
383f836e 1599#include "observer.h"
a3ecef73 1600#include "regcache.h"
19630284 1601#include "objfiles.h"
95160752 1602
104c1213
JM
1603/* Static function declarations */
1604
b3cc3077 1605static void alloc_gdbarch_data (struct gdbarch *);
104c1213 1606
104c1213
JM
1607/* Non-zero if we want to trace architecture code. */
1608
1609#ifndef GDBARCH_DEBUG
1610#define GDBARCH_DEBUG 0
1611#endif
ccce17b0 1612unsigned int gdbarch_debug = GDBARCH_DEBUG;
920d2a44
AC
1613static void
1614show_gdbarch_debug (struct ui_file *file, int from_tty,
1615 struct cmd_list_element *c, const char *value)
1616{
1617 fprintf_filtered (file, _("Architecture debugging is %s.\\n"), value);
1618}
104c1213 1619
456fcf94 1620static const char *
8da61cc4 1621pformat (const struct floatformat **format)
456fcf94
AC
1622{
1623 if (format == NULL)
1624 return "(null)";
1625 else
8da61cc4
DJ
1626 /* Just print out one of them - this is only for diagnostics. */
1627 return format[0]->name;
456fcf94
AC
1628}
1629
08105857
PA
1630static const char *
1631pstring (const char *string)
1632{
1633 if (string == NULL)
1634 return "(null)";
1635 return string;
05c0465e
SDJ
1636}
1637
1638/* Helper function to print a list of strings, represented as "const
1639 char *const *". The list is printed comma-separated. */
1640
1641static char *
1642pstring_list (const char *const *list)
1643{
1644 static char ret[100];
1645 const char *const *p;
1646 size_t offset = 0;
1647
1648 if (list == NULL)
1649 return "(null)";
1650
1651 ret[0] = '\0';
1652 for (p = list; *p != NULL && offset < sizeof (ret); ++p)
1653 {
1654 size_t s = xsnprintf (ret + offset, sizeof (ret) - offset, "%s, ", *p);
1655 offset += 2 + s;
1656 }
1657
1658 if (offset > 0)
1659 {
1660 gdb_assert (offset - 2 < sizeof (ret));
1661 ret[offset - 2] = '\0';
1662 }
1663
1664 return ret;
08105857
PA
1665}
1666
104c1213
JM
1667EOF
1668
1669# gdbarch open the gdbarch object
3d9a5942 1670printf "\n"
0963b4bd 1671printf "/* Maintain the struct gdbarch object. */\n"
3d9a5942
AC
1672printf "\n"
1673printf "struct gdbarch\n"
1674printf "{\n"
76860b5f
AC
1675printf " /* Has this architecture been fully initialized? */\n"
1676printf " int initialized_p;\n"
aebd7893
AC
1677printf "\n"
1678printf " /* An obstack bound to the lifetime of the architecture. */\n"
1679printf " struct obstack *obstack;\n"
1680printf "\n"
0963b4bd 1681printf " /* basic architectural information. */\n"
34620563 1682function_list | while do_read
104c1213 1683do
2ada493a
AC
1684 if class_is_info_p
1685 then
3d9a5942 1686 printf " ${returntype} ${function};\n"
2ada493a 1687 fi
104c1213 1688done
3d9a5942 1689printf "\n"
0963b4bd 1690printf " /* target specific vector. */\n"
3d9a5942
AC
1691printf " struct gdbarch_tdep *tdep;\n"
1692printf " gdbarch_dump_tdep_ftype *dump_tdep;\n"
1693printf "\n"
0963b4bd 1694printf " /* per-architecture data-pointers. */\n"
95160752 1695printf " unsigned nr_data;\n"
3d9a5942
AC
1696printf " void **data;\n"
1697printf "\n"
104c1213
JM
1698cat <<EOF
1699 /* Multi-arch values.
1700
1701 When extending this structure you must:
1702
1703 Add the field below.
1704
1705 Declare set/get functions and define the corresponding
1706 macro in gdbarch.h.
1707
1708 gdbarch_alloc(): If zero/NULL is not a suitable default,
1709 initialize the new field.
1710
1711 verify_gdbarch(): Confirm that the target updated the field
1712 correctly.
1713
7e73cedf 1714 gdbarch_dump(): Add a fprintf_unfiltered call so that the new
104c1213
JM
1715 field is dumped out
1716
104c1213
JM
1717 get_gdbarch(): Implement the set/get functions (probably using
1718 the macro's as shortcuts).
1719
1720 */
1721
1722EOF
34620563 1723function_list | while do_read
104c1213 1724do
2ada493a
AC
1725 if class_is_variable_p
1726 then
3d9a5942 1727 printf " ${returntype} ${function};\n"
2ada493a
AC
1728 elif class_is_function_p
1729 then
2f9b146e 1730 printf " gdbarch_${function}_ftype *${function};\n"
2ada493a 1731 fi
104c1213 1732done
3d9a5942 1733printf "};\n"
104c1213 1734
104c1213 1735# Create a new gdbarch struct
104c1213 1736cat <<EOF
7de2341d 1737
66b43ecb 1738/* Create a new \`\`struct gdbarch'' based on information provided by
0963b4bd 1739 \`\`struct gdbarch_info''. */
104c1213 1740EOF
3d9a5942 1741printf "\n"
104c1213
JM
1742cat <<EOF
1743struct gdbarch *
1744gdbarch_alloc (const struct gdbarch_info *info,
1745 struct gdbarch_tdep *tdep)
1746{
be7811ad 1747 struct gdbarch *gdbarch;
aebd7893
AC
1748
1749 /* Create an obstack for allocating all the per-architecture memory,
1750 then use that to allocate the architecture vector. */
70ba0933 1751 struct obstack *obstack = XNEW (struct obstack);
aebd7893 1752 obstack_init (obstack);
8d749320 1753 gdbarch = XOBNEW (obstack, struct gdbarch);
be7811ad
MD
1754 memset (gdbarch, 0, sizeof (*gdbarch));
1755 gdbarch->obstack = obstack;
85de9627 1756
be7811ad 1757 alloc_gdbarch_data (gdbarch);
85de9627 1758
be7811ad 1759 gdbarch->tdep = tdep;
104c1213 1760EOF
3d9a5942 1761printf "\n"
34620563 1762function_list | while do_read
104c1213 1763do
2ada493a
AC
1764 if class_is_info_p
1765 then
be7811ad 1766 printf " gdbarch->${function} = info->${function};\n"
2ada493a 1767 fi
104c1213 1768done
3d9a5942 1769printf "\n"
0963b4bd 1770printf " /* Force the explicit initialization of these. */\n"
34620563 1771function_list | while do_read
104c1213 1772do
2ada493a
AC
1773 if class_is_function_p || class_is_variable_p
1774 then
72e74a21 1775 if [ -n "${predefault}" -a "x${predefault}" != "x0" ]
104c1213 1776 then
be7811ad 1777 printf " gdbarch->${function} = ${predefault};\n"
104c1213 1778 fi
2ada493a 1779 fi
104c1213
JM
1780done
1781cat <<EOF
1782 /* gdbarch_alloc() */
1783
be7811ad 1784 return gdbarch;
104c1213
JM
1785}
1786EOF
1787
058f20d5 1788# Free a gdbarch struct.
3d9a5942
AC
1789printf "\n"
1790printf "\n"
058f20d5 1791cat <<EOF
aebd7893
AC
1792/* Allocate extra space using the per-architecture obstack. */
1793
1794void *
1795gdbarch_obstack_zalloc (struct gdbarch *arch, long size)
1796{
1797 void *data = obstack_alloc (arch->obstack, size);
05c547f6 1798
aebd7893
AC
1799 memset (data, 0, size);
1800 return data;
1801}
1802
6c214e7c
PP
1803/* See gdbarch.h. */
1804
1805char *
1806gdbarch_obstack_strdup (struct gdbarch *arch, const char *string)
1807{
1808 return obstack_strdup (arch->obstack, string);
1809}
1810
aebd7893 1811
058f20d5
JB
1812/* Free a gdbarch struct. This should never happen in normal
1813 operation --- once you've created a gdbarch, you keep it around.
1814 However, if an architecture's init function encounters an error
1815 building the structure, it may need to clean up a partially
1816 constructed gdbarch. */
4b9b3959 1817
058f20d5
JB
1818void
1819gdbarch_free (struct gdbarch *arch)
1820{
aebd7893 1821 struct obstack *obstack;
05c547f6 1822
95160752 1823 gdb_assert (arch != NULL);
aebd7893
AC
1824 gdb_assert (!arch->initialized_p);
1825 obstack = arch->obstack;
1826 obstack_free (obstack, 0); /* Includes the ARCH. */
1827 xfree (obstack);
058f20d5
JB
1828}
1829EOF
1830
104c1213 1831# verify a new architecture
104c1213 1832cat <<EOF
db446970
AC
1833
1834
1835/* Ensure that all values in a GDBARCH are reasonable. */
1836
104c1213 1837static void
be7811ad 1838verify_gdbarch (struct gdbarch *gdbarch)
104c1213 1839{
f16a1923
AC
1840 struct ui_file *log;
1841 struct cleanup *cleanups;
759ef836 1842 long length;
f16a1923 1843 char *buf;
05c547f6 1844
f16a1923
AC
1845 log = mem_fileopen ();
1846 cleanups = make_cleanup_ui_file_delete (log);
104c1213 1847 /* fundamental */
be7811ad 1848 if (gdbarch->byte_order == BFD_ENDIAN_UNKNOWN)
f16a1923 1849 fprintf_unfiltered (log, "\n\tbyte-order");
be7811ad 1850 if (gdbarch->bfd_arch_info == NULL)
f16a1923 1851 fprintf_unfiltered (log, "\n\tbfd_arch_info");
0963b4bd 1852 /* Check those that need to be defined for the given multi-arch level. */
104c1213 1853EOF
34620563 1854function_list | while do_read
104c1213 1855do
2ada493a
AC
1856 if class_is_function_p || class_is_variable_p
1857 then
72e74a21 1858 if [ "x${invalid_p}" = "x0" ]
c0e8c252 1859 then
3d9a5942 1860 printf " /* Skip verify of ${function}, invalid_p == 0 */\n"
2ada493a
AC
1861 elif class_is_predicate_p
1862 then
0963b4bd 1863 printf " /* Skip verify of ${function}, has predicate. */\n"
f0d4cc9e 1864 # FIXME: See do_read for potential simplification
72e74a21 1865 elif [ -n "${invalid_p}" -a -n "${postdefault}" ]
f0d4cc9e 1866 then
3d9a5942 1867 printf " if (${invalid_p})\n"
be7811ad 1868 printf " gdbarch->${function} = ${postdefault};\n"
72e74a21 1869 elif [ -n "${predefault}" -a -n "${postdefault}" ]
f0d4cc9e 1870 then
be7811ad
MD
1871 printf " if (gdbarch->${function} == ${predefault})\n"
1872 printf " gdbarch->${function} = ${postdefault};\n"
72e74a21 1873 elif [ -n "${postdefault}" ]
f0d4cc9e 1874 then
be7811ad
MD
1875 printf " if (gdbarch->${function} == 0)\n"
1876 printf " gdbarch->${function} = ${postdefault};\n"
72e74a21 1877 elif [ -n "${invalid_p}" ]
104c1213 1878 then
4d60522e 1879 printf " if (${invalid_p})\n"
f16a1923 1880 printf " fprintf_unfiltered (log, \"\\\\n\\\\t${function}\");\n"
72e74a21 1881 elif [ -n "${predefault}" ]
104c1213 1882 then
be7811ad 1883 printf " if (gdbarch->${function} == ${predefault})\n"
f16a1923 1884 printf " fprintf_unfiltered (log, \"\\\\n\\\\t${function}\");\n"
104c1213 1885 fi
2ada493a 1886 fi
104c1213
JM
1887done
1888cat <<EOF
759ef836 1889 buf = ui_file_xstrdup (log, &length);
f16a1923 1890 make_cleanup (xfree, buf);
759ef836 1891 if (length > 0)
f16a1923 1892 internal_error (__FILE__, __LINE__,
85c07804 1893 _("verify_gdbarch: the following are invalid ...%s"),
f16a1923
AC
1894 buf);
1895 do_cleanups (cleanups);
104c1213
JM
1896}
1897EOF
1898
1899# dump the structure
3d9a5942
AC
1900printf "\n"
1901printf "\n"
104c1213 1902cat <<EOF
0963b4bd 1903/* Print out the details of the current architecture. */
4b9b3959 1904
104c1213 1905void
be7811ad 1906gdbarch_dump (struct gdbarch *gdbarch, struct ui_file *file)
104c1213 1907{
b78960be 1908 const char *gdb_nm_file = "<not-defined>";
05c547f6 1909
b78960be
AC
1910#if defined (GDB_NM_FILE)
1911 gdb_nm_file = GDB_NM_FILE;
1912#endif
1913 fprintf_unfiltered (file,
1914 "gdbarch_dump: GDB_NM_FILE = %s\\n",
1915 gdb_nm_file);
104c1213 1916EOF
97030eea 1917function_list | sort -t: -k 3 | while do_read
104c1213 1918do
1e9f55d0
AC
1919 # First the predicate
1920 if class_is_predicate_p
1921 then
7996bcec 1922 printf " fprintf_unfiltered (file,\n"
48f7351b 1923 printf " \"gdbarch_dump: gdbarch_${function}_p() = %%d\\\\n\",\n"
be7811ad 1924 printf " gdbarch_${function}_p (gdbarch));\n"
08e45a40 1925 fi
48f7351b 1926 # Print the corresponding value.
283354d8 1927 if class_is_function_p
4b9b3959 1928 then
7996bcec 1929 printf " fprintf_unfiltered (file,\n"
30737ed9
JB
1930 printf " \"gdbarch_dump: ${function} = <%%s>\\\\n\",\n"
1931 printf " host_address_to_string (gdbarch->${function}));\n"
4b9b3959 1932 else
48f7351b 1933 # It is a variable
2f9b146e
AC
1934 case "${print}:${returntype}" in
1935 :CORE_ADDR )
0b1553bc
UW
1936 fmt="%s"
1937 print="core_addr_to_string_nz (gdbarch->${function})"
48f7351b 1938 ;;
2f9b146e 1939 :* )
48f7351b 1940 fmt="%s"
623d3eb1 1941 print="plongest (gdbarch->${function})"
48f7351b
AC
1942 ;;
1943 * )
2f9b146e 1944 fmt="%s"
48f7351b
AC
1945 ;;
1946 esac
3d9a5942 1947 printf " fprintf_unfiltered (file,\n"
48f7351b 1948 printf " \"gdbarch_dump: ${function} = %s\\\\n\",\n" "${fmt}"
3d9a5942 1949 printf " ${print});\n"
2ada493a 1950 fi
104c1213 1951done
381323f4 1952cat <<EOF
be7811ad
MD
1953 if (gdbarch->dump_tdep != NULL)
1954 gdbarch->dump_tdep (gdbarch, file);
381323f4
AC
1955}
1956EOF
104c1213
JM
1957
1958
1959# GET/SET
3d9a5942 1960printf "\n"
104c1213
JM
1961cat <<EOF
1962struct gdbarch_tdep *
1963gdbarch_tdep (struct gdbarch *gdbarch)
1964{
1965 if (gdbarch_debug >= 2)
3d9a5942 1966 fprintf_unfiltered (gdb_stdlog, "gdbarch_tdep called\\n");
104c1213
JM
1967 return gdbarch->tdep;
1968}
1969EOF
3d9a5942 1970printf "\n"
34620563 1971function_list | while do_read
104c1213 1972do
2ada493a
AC
1973 if class_is_predicate_p
1974 then
3d9a5942
AC
1975 printf "\n"
1976 printf "int\n"
1977 printf "gdbarch_${function}_p (struct gdbarch *gdbarch)\n"
1978 printf "{\n"
8de9bdc4 1979 printf " gdb_assert (gdbarch != NULL);\n"
f7968451 1980 printf " return ${predicate};\n"
3d9a5942 1981 printf "}\n"
2ada493a
AC
1982 fi
1983 if class_is_function_p
1984 then
3d9a5942
AC
1985 printf "\n"
1986 printf "${returntype}\n"
72e74a21 1987 if [ "x${formal}" = "xvoid" ]
104c1213 1988 then
3d9a5942 1989 printf "gdbarch_${function} (struct gdbarch *gdbarch)\n"
104c1213 1990 else
3d9a5942 1991 printf "gdbarch_${function} (struct gdbarch *gdbarch, ${formal})\n"
104c1213 1992 fi
3d9a5942 1993 printf "{\n"
8de9bdc4 1994 printf " gdb_assert (gdbarch != NULL);\n"
956ac328 1995 printf " gdb_assert (gdbarch->${function} != NULL);\n"
f7968451 1996 if class_is_predicate_p && test -n "${predefault}"
ae45cd16
AC
1997 then
1998 # Allow a call to a function with a predicate.
956ac328 1999 printf " /* Do not check predicate: ${predicate}, allow call. */\n"
ae45cd16 2000 fi
3d9a5942
AC
2001 printf " if (gdbarch_debug >= 2)\n"
2002 printf " fprintf_unfiltered (gdb_stdlog, \"gdbarch_${function} called\\\\n\");\n"
72e74a21 2003 if [ "x${actual}" = "x-" -o "x${actual}" = "x" ]
4a5c6a1d
AC
2004 then
2005 if class_is_multiarch_p
2006 then
2007 params="gdbarch"
2008 else
2009 params=""
2010 fi
2011 else
2012 if class_is_multiarch_p
2013 then
2014 params="gdbarch, ${actual}"
2015 else
2016 params="${actual}"
2017 fi
2018 fi
72e74a21 2019 if [ "x${returntype}" = "xvoid" ]
104c1213 2020 then
4a5c6a1d 2021 printf " gdbarch->${function} (${params});\n"
104c1213 2022 else
4a5c6a1d 2023 printf " return gdbarch->${function} (${params});\n"
104c1213 2024 fi
3d9a5942
AC
2025 printf "}\n"
2026 printf "\n"
2027 printf "void\n"
2028 printf "set_gdbarch_${function} (struct gdbarch *gdbarch,\n"
2029 printf " `echo ${function} | sed -e 's/./ /g'` gdbarch_${function}_ftype ${function})\n"
2030 printf "{\n"
2031 printf " gdbarch->${function} = ${function};\n"
2032 printf "}\n"
2ada493a
AC
2033 elif class_is_variable_p
2034 then
3d9a5942
AC
2035 printf "\n"
2036 printf "${returntype}\n"
2037 printf "gdbarch_${function} (struct gdbarch *gdbarch)\n"
2038 printf "{\n"
8de9bdc4 2039 printf " gdb_assert (gdbarch != NULL);\n"
72e74a21 2040 if [ "x${invalid_p}" = "x0" ]
c0e8c252 2041 then
3d9a5942 2042 printf " /* Skip verify of ${function}, invalid_p == 0 */\n"
72e74a21 2043 elif [ -n "${invalid_p}" ]
104c1213 2044 then
956ac328
AC
2045 printf " /* Check variable is valid. */\n"
2046 printf " gdb_assert (!(${invalid_p}));\n"
72e74a21 2047 elif [ -n "${predefault}" ]
104c1213 2048 then
956ac328
AC
2049 printf " /* Check variable changed from pre-default. */\n"
2050 printf " gdb_assert (gdbarch->${function} != ${predefault});\n"
104c1213 2051 fi
3d9a5942
AC
2052 printf " if (gdbarch_debug >= 2)\n"
2053 printf " fprintf_unfiltered (gdb_stdlog, \"gdbarch_${function} called\\\\n\");\n"
2054 printf " return gdbarch->${function};\n"
2055 printf "}\n"
2056 printf "\n"
2057 printf "void\n"
2058 printf "set_gdbarch_${function} (struct gdbarch *gdbarch,\n"
2059 printf " `echo ${function} | sed -e 's/./ /g'` ${returntype} ${function})\n"
2060 printf "{\n"
2061 printf " gdbarch->${function} = ${function};\n"
2062 printf "}\n"
2ada493a
AC
2063 elif class_is_info_p
2064 then
3d9a5942
AC
2065 printf "\n"
2066 printf "${returntype}\n"
2067 printf "gdbarch_${function} (struct gdbarch *gdbarch)\n"
2068 printf "{\n"
8de9bdc4 2069 printf " gdb_assert (gdbarch != NULL);\n"
3d9a5942
AC
2070 printf " if (gdbarch_debug >= 2)\n"
2071 printf " fprintf_unfiltered (gdb_stdlog, \"gdbarch_${function} called\\\\n\");\n"
2072 printf " return gdbarch->${function};\n"
2073 printf "}\n"
2ada493a 2074 fi
104c1213
JM
2075done
2076
2077# All the trailing guff
2078cat <<EOF
2079
2080
f44c642f 2081/* Keep a registry of per-architecture data-pointers required by GDB
0963b4bd 2082 modules. */
104c1213
JM
2083
2084struct gdbarch_data
2085{
95160752 2086 unsigned index;
76860b5f 2087 int init_p;
030f20e1
AC
2088 gdbarch_data_pre_init_ftype *pre_init;
2089 gdbarch_data_post_init_ftype *post_init;
104c1213
JM
2090};
2091
2092struct gdbarch_data_registration
2093{
104c1213
JM
2094 struct gdbarch_data *data;
2095 struct gdbarch_data_registration *next;
2096};
2097
f44c642f 2098struct gdbarch_data_registry
104c1213 2099{
95160752 2100 unsigned nr;
104c1213
JM
2101 struct gdbarch_data_registration *registrations;
2102};
2103
f44c642f 2104struct gdbarch_data_registry gdbarch_data_registry =
104c1213
JM
2105{
2106 0, NULL,
2107};
2108
030f20e1
AC
2109static struct gdbarch_data *
2110gdbarch_data_register (gdbarch_data_pre_init_ftype *pre_init,
2111 gdbarch_data_post_init_ftype *post_init)
104c1213
JM
2112{
2113 struct gdbarch_data_registration **curr;
05c547f6
MS
2114
2115 /* Append the new registration. */
f44c642f 2116 for (curr = &gdbarch_data_registry.registrations;
104c1213
JM
2117 (*curr) != NULL;
2118 curr = &(*curr)->next);
70ba0933 2119 (*curr) = XNEW (struct gdbarch_data_registration);
104c1213 2120 (*curr)->next = NULL;
70ba0933 2121 (*curr)->data = XNEW (struct gdbarch_data);
f44c642f 2122 (*curr)->data->index = gdbarch_data_registry.nr++;
030f20e1
AC
2123 (*curr)->data->pre_init = pre_init;
2124 (*curr)->data->post_init = post_init;
76860b5f 2125 (*curr)->data->init_p = 1;
104c1213
JM
2126 return (*curr)->data;
2127}
2128
030f20e1
AC
2129struct gdbarch_data *
2130gdbarch_data_register_pre_init (gdbarch_data_pre_init_ftype *pre_init)
2131{
2132 return gdbarch_data_register (pre_init, NULL);
2133}
2134
2135struct gdbarch_data *
2136gdbarch_data_register_post_init (gdbarch_data_post_init_ftype *post_init)
2137{
2138 return gdbarch_data_register (NULL, post_init);
2139}
104c1213 2140
0963b4bd 2141/* Create/delete the gdbarch data vector. */
95160752
AC
2142
2143static void
b3cc3077 2144alloc_gdbarch_data (struct gdbarch *gdbarch)
95160752 2145{
b3cc3077
JB
2146 gdb_assert (gdbarch->data == NULL);
2147 gdbarch->nr_data = gdbarch_data_registry.nr;
aebd7893 2148 gdbarch->data = GDBARCH_OBSTACK_CALLOC (gdbarch, gdbarch->nr_data, void *);
b3cc3077 2149}
3c875b6f 2150
76860b5f 2151/* Initialize the current value of the specified per-architecture
0963b4bd 2152 data-pointer. */
b3cc3077 2153
95160752 2154void
030f20e1
AC
2155deprecated_set_gdbarch_data (struct gdbarch *gdbarch,
2156 struct gdbarch_data *data,
2157 void *pointer)
95160752
AC
2158{
2159 gdb_assert (data->index < gdbarch->nr_data);
aebd7893 2160 gdb_assert (gdbarch->data[data->index] == NULL);
030f20e1 2161 gdb_assert (data->pre_init == NULL);
95160752
AC
2162 gdbarch->data[data->index] = pointer;
2163}
2164
104c1213 2165/* Return the current value of the specified per-architecture
0963b4bd 2166 data-pointer. */
104c1213
JM
2167
2168void *
451fbdda 2169gdbarch_data (struct gdbarch *gdbarch, struct gdbarch_data *data)
104c1213 2170{
451fbdda 2171 gdb_assert (data->index < gdbarch->nr_data);
030f20e1 2172 if (gdbarch->data[data->index] == NULL)
76860b5f 2173 {
030f20e1
AC
2174 /* The data-pointer isn't initialized, call init() to get a
2175 value. */
2176 if (data->pre_init != NULL)
2177 /* Mid architecture creation: pass just the obstack, and not
2178 the entire architecture, as that way it isn't possible for
2179 pre-init code to refer to undefined architecture
2180 fields. */
2181 gdbarch->data[data->index] = data->pre_init (gdbarch->obstack);
2182 else if (gdbarch->initialized_p
2183 && data->post_init != NULL)
2184 /* Post architecture creation: pass the entire architecture
2185 (as all fields are valid), but be careful to also detect
2186 recursive references. */
2187 {
2188 gdb_assert (data->init_p);
2189 data->init_p = 0;
2190 gdbarch->data[data->index] = data->post_init (gdbarch);
2191 data->init_p = 1;
2192 }
2193 else
2194 /* The architecture initialization hasn't completed - punt -
2195 hope that the caller knows what they are doing. Once
2196 deprecated_set_gdbarch_data has been initialized, this can be
2197 changed to an internal error. */
2198 return NULL;
76860b5f
AC
2199 gdb_assert (gdbarch->data[data->index] != NULL);
2200 }
451fbdda 2201 return gdbarch->data[data->index];
104c1213
JM
2202}
2203
2204
0963b4bd 2205/* Keep a registry of the architectures known by GDB. */
104c1213 2206
4b9b3959 2207struct gdbarch_registration
104c1213
JM
2208{
2209 enum bfd_architecture bfd_architecture;
2210 gdbarch_init_ftype *init;
4b9b3959 2211 gdbarch_dump_tdep_ftype *dump_tdep;
104c1213 2212 struct gdbarch_list *arches;
4b9b3959 2213 struct gdbarch_registration *next;
104c1213
JM
2214};
2215
f44c642f 2216static struct gdbarch_registration *gdbarch_registry = NULL;
104c1213 2217
b4a20239
AC
2218static void
2219append_name (const char ***buf, int *nr, const char *name)
2220{
1dc7a623 2221 *buf = XRESIZEVEC (const char *, *buf, *nr + 1);
b4a20239
AC
2222 (*buf)[*nr] = name;
2223 *nr += 1;
2224}
2225
2226const char **
2227gdbarch_printable_names (void)
2228{
7996bcec 2229 /* Accumulate a list of names based on the registed list of
0963b4bd 2230 architectures. */
7996bcec
AC
2231 int nr_arches = 0;
2232 const char **arches = NULL;
2233 struct gdbarch_registration *rego;
05c547f6 2234
7996bcec
AC
2235 for (rego = gdbarch_registry;
2236 rego != NULL;
2237 rego = rego->next)
b4a20239 2238 {
7996bcec
AC
2239 const struct bfd_arch_info *ap;
2240 ap = bfd_lookup_arch (rego->bfd_architecture, 0);
2241 if (ap == NULL)
2242 internal_error (__FILE__, __LINE__,
85c07804 2243 _("gdbarch_architecture_names: multi-arch unknown"));
7996bcec
AC
2244 do
2245 {
2246 append_name (&arches, &nr_arches, ap->printable_name);
2247 ap = ap->next;
2248 }
2249 while (ap != NULL);
b4a20239 2250 }
7996bcec
AC
2251 append_name (&arches, &nr_arches, NULL);
2252 return arches;
b4a20239
AC
2253}
2254
2255
104c1213 2256void
4b9b3959
AC
2257gdbarch_register (enum bfd_architecture bfd_architecture,
2258 gdbarch_init_ftype *init,
2259 gdbarch_dump_tdep_ftype *dump_tdep)
104c1213 2260{
4b9b3959 2261 struct gdbarch_registration **curr;
104c1213 2262 const struct bfd_arch_info *bfd_arch_info;
05c547f6 2263
ec3d358c 2264 /* Check that BFD recognizes this architecture */
104c1213
JM
2265 bfd_arch_info = bfd_lookup_arch (bfd_architecture, 0);
2266 if (bfd_arch_info == NULL)
2267 {
8e65ff28 2268 internal_error (__FILE__, __LINE__,
0963b4bd
MS
2269 _("gdbarch: Attempt to register "
2270 "unknown architecture (%d)"),
8e65ff28 2271 bfd_architecture);
104c1213 2272 }
0963b4bd 2273 /* Check that we haven't seen this architecture before. */
f44c642f 2274 for (curr = &gdbarch_registry;
104c1213
JM
2275 (*curr) != NULL;
2276 curr = &(*curr)->next)
2277 {
2278 if (bfd_architecture == (*curr)->bfd_architecture)
8e65ff28 2279 internal_error (__FILE__, __LINE__,
64b9b334 2280 _("gdbarch: Duplicate registration "
0963b4bd 2281 "of architecture (%s)"),
8e65ff28 2282 bfd_arch_info->printable_name);
104c1213
JM
2283 }
2284 /* log it */
2285 if (gdbarch_debug)
30737ed9 2286 fprintf_unfiltered (gdb_stdlog, "register_gdbarch_init (%s, %s)\n",
104c1213 2287 bfd_arch_info->printable_name,
30737ed9 2288 host_address_to_string (init));
104c1213 2289 /* Append it */
70ba0933 2290 (*curr) = XNEW (struct gdbarch_registration);
104c1213
JM
2291 (*curr)->bfd_architecture = bfd_architecture;
2292 (*curr)->init = init;
4b9b3959 2293 (*curr)->dump_tdep = dump_tdep;
104c1213
JM
2294 (*curr)->arches = NULL;
2295 (*curr)->next = NULL;
4b9b3959
AC
2296}
2297
2298void
2299register_gdbarch_init (enum bfd_architecture bfd_architecture,
2300 gdbarch_init_ftype *init)
2301{
2302 gdbarch_register (bfd_architecture, init, NULL);
104c1213 2303}
104c1213
JM
2304
2305
424163ea 2306/* Look for an architecture using gdbarch_info. */
104c1213
JM
2307
2308struct gdbarch_list *
2309gdbarch_list_lookup_by_info (struct gdbarch_list *arches,
2310 const struct gdbarch_info *info)
2311{
2312 for (; arches != NULL; arches = arches->next)
2313 {
2314 if (info->bfd_arch_info != arches->gdbarch->bfd_arch_info)
2315 continue;
2316 if (info->byte_order != arches->gdbarch->byte_order)
2317 continue;
4be87837
DJ
2318 if (info->osabi != arches->gdbarch->osabi)
2319 continue;
424163ea
DJ
2320 if (info->target_desc != arches->gdbarch->target_desc)
2321 continue;
104c1213
JM
2322 return arches;
2323 }
2324 return NULL;
2325}
2326
2327
ebdba546 2328/* Find an architecture that matches the specified INFO. Create a new
59837fe0 2329 architecture if needed. Return that new architecture. */
104c1213 2330
59837fe0
UW
2331struct gdbarch *
2332gdbarch_find_by_info (struct gdbarch_info info)
104c1213
JM
2333{
2334 struct gdbarch *new_gdbarch;
4b9b3959 2335 struct gdbarch_registration *rego;
104c1213 2336
b732d07d 2337 /* Fill in missing parts of the INFO struct using a number of
7a107747
DJ
2338 sources: "set ..."; INFOabfd supplied; and the global
2339 defaults. */
2340 gdbarch_info_fill (&info);
4be87837 2341
0963b4bd 2342 /* Must have found some sort of architecture. */
b732d07d 2343 gdb_assert (info.bfd_arch_info != NULL);
104c1213
JM
2344
2345 if (gdbarch_debug)
2346 {
2347 fprintf_unfiltered (gdb_stdlog,
59837fe0 2348 "gdbarch_find_by_info: info.bfd_arch_info %s\n",
104c1213
JM
2349 (info.bfd_arch_info != NULL
2350 ? info.bfd_arch_info->printable_name
2351 : "(null)"));
2352 fprintf_unfiltered (gdb_stdlog,
59837fe0 2353 "gdbarch_find_by_info: info.byte_order %d (%s)\n",
104c1213 2354 info.byte_order,
d7449b42 2355 (info.byte_order == BFD_ENDIAN_BIG ? "big"
778eb05e 2356 : info.byte_order == BFD_ENDIAN_LITTLE ? "little"
104c1213 2357 : "default"));
4be87837 2358 fprintf_unfiltered (gdb_stdlog,
59837fe0 2359 "gdbarch_find_by_info: info.osabi %d (%s)\n",
4be87837 2360 info.osabi, gdbarch_osabi_name (info.osabi));
104c1213 2361 fprintf_unfiltered (gdb_stdlog,
59837fe0 2362 "gdbarch_find_by_info: info.abfd %s\n",
30737ed9 2363 host_address_to_string (info.abfd));
104c1213 2364 fprintf_unfiltered (gdb_stdlog,
59837fe0 2365 "gdbarch_find_by_info: info.tdep_info %s\n",
30737ed9 2366 host_address_to_string (info.tdep_info));
104c1213
JM
2367 }
2368
ebdba546 2369 /* Find the tdep code that knows about this architecture. */
b732d07d
AC
2370 for (rego = gdbarch_registry;
2371 rego != NULL;
2372 rego = rego->next)
2373 if (rego->bfd_architecture == info.bfd_arch_info->arch)
2374 break;
2375 if (rego == NULL)
2376 {
2377 if (gdbarch_debug)
59837fe0 2378 fprintf_unfiltered (gdb_stdlog, "gdbarch_find_by_info: "
ebdba546 2379 "No matching architecture\n");
b732d07d
AC
2380 return 0;
2381 }
2382
ebdba546 2383 /* Ask the tdep code for an architecture that matches "info". */
104c1213
JM
2384 new_gdbarch = rego->init (info, rego->arches);
2385
ebdba546
AC
2386 /* Did the tdep code like it? No. Reject the change and revert to
2387 the old architecture. */
104c1213
JM
2388 if (new_gdbarch == NULL)
2389 {
2390 if (gdbarch_debug)
59837fe0 2391 fprintf_unfiltered (gdb_stdlog, "gdbarch_find_by_info: "
ebdba546
AC
2392 "Target rejected architecture\n");
2393 return NULL;
104c1213
JM
2394 }
2395
ebdba546
AC
2396 /* Is this a pre-existing architecture (as determined by already
2397 being initialized)? Move it to the front of the architecture
2398 list (keeping the list sorted Most Recently Used). */
2399 if (new_gdbarch->initialized_p)
104c1213 2400 {
ebdba546 2401 struct gdbarch_list **list;
fe978cb0 2402 struct gdbarch_list *self;
104c1213 2403 if (gdbarch_debug)
59837fe0 2404 fprintf_unfiltered (gdb_stdlog, "gdbarch_find_by_info: "
30737ed9
JB
2405 "Previous architecture %s (%s) selected\n",
2406 host_address_to_string (new_gdbarch),
104c1213 2407 new_gdbarch->bfd_arch_info->printable_name);
ebdba546
AC
2408 /* Find the existing arch in the list. */
2409 for (list = &rego->arches;
2410 (*list) != NULL && (*list)->gdbarch != new_gdbarch;
2411 list = &(*list)->next);
2412 /* It had better be in the list of architectures. */
2413 gdb_assert ((*list) != NULL && (*list)->gdbarch == new_gdbarch);
fe978cb0
PA
2414 /* Unlink SELF. */
2415 self = (*list);
2416 (*list) = self->next;
2417 /* Insert SELF at the front. */
2418 self->next = rego->arches;
2419 rego->arches = self;
ebdba546
AC
2420 /* Return it. */
2421 return new_gdbarch;
104c1213
JM
2422 }
2423
ebdba546
AC
2424 /* It's a new architecture. */
2425 if (gdbarch_debug)
59837fe0 2426 fprintf_unfiltered (gdb_stdlog, "gdbarch_find_by_info: "
30737ed9
JB
2427 "New architecture %s (%s) selected\n",
2428 host_address_to_string (new_gdbarch),
ebdba546
AC
2429 new_gdbarch->bfd_arch_info->printable_name);
2430
2431 /* Insert the new architecture into the front of the architecture
2432 list (keep the list sorted Most Recently Used). */
0f79675b 2433 {
fe978cb0
PA
2434 struct gdbarch_list *self = XNEW (struct gdbarch_list);
2435 self->next = rego->arches;
2436 self->gdbarch = new_gdbarch;
2437 rego->arches = self;
0f79675b 2438 }
104c1213 2439
4b9b3959
AC
2440 /* Check that the newly installed architecture is valid. Plug in
2441 any post init values. */
2442 new_gdbarch->dump_tdep = rego->dump_tdep;
104c1213 2443 verify_gdbarch (new_gdbarch);
ebdba546 2444 new_gdbarch->initialized_p = 1;
104c1213 2445
4b9b3959 2446 if (gdbarch_debug)
ebdba546
AC
2447 gdbarch_dump (new_gdbarch, gdb_stdlog);
2448
2449 return new_gdbarch;
2450}
2451
e487cc15 2452/* Make the specified architecture current. */
ebdba546
AC
2453
2454void
aff68abb 2455set_target_gdbarch (struct gdbarch *new_gdbarch)
ebdba546
AC
2456{
2457 gdb_assert (new_gdbarch != NULL);
ebdba546 2458 gdb_assert (new_gdbarch->initialized_p);
6ecd4729 2459 current_inferior ()->gdbarch = new_gdbarch;
383f836e 2460 observer_notify_architecture_changed (new_gdbarch);
a3ecef73 2461 registers_changed ();
ebdba546 2462}
104c1213 2463
f5656ead 2464/* Return the current inferior's arch. */
6ecd4729
PA
2465
2466struct gdbarch *
f5656ead 2467target_gdbarch (void)
6ecd4729
PA
2468{
2469 return current_inferior ()->gdbarch;
2470}
2471
104c1213 2472extern void _initialize_gdbarch (void);
b4a20239 2473
104c1213 2474void
34620563 2475_initialize_gdbarch (void)
104c1213 2476{
ccce17b0 2477 add_setshow_zuinteger_cmd ("arch", class_maintenance, &gdbarch_debug, _("\\
85c07804
AC
2478Set architecture debugging."), _("\\
2479Show architecture debugging."), _("\\
2480When non-zero, architecture debugging is enabled."),
2481 NULL,
920d2a44 2482 show_gdbarch_debug,
85c07804 2483 &setdebuglist, &showdebuglist);
104c1213
JM
2484}
2485EOF
2486
2487# close things off
2488exec 1>&2
2489#../move-if-change new-gdbarch.c gdbarch.c
59233f88 2490compare_new gdbarch.c
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