* elflink.h (elf_link_sort_cmp2): Don't mix PLT and non-PLT
[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.
338d7c5c 4# Copyright 1998, 1999, 2000, 2001 Free Software Foundation, Inc.
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5#
6# This file is part of GDB.
7#
8# This program is free software; you can redistribute it and/or modify
9# it under the terms of the GNU General Public License as published by
10# the Free Software Foundation; either version 2 of the License, or
11# (at your option) any later version.
12#
13# This program is distributed in the hope that it will be useful,
14# but WITHOUT ANY WARRANTY; without even the implied warranty of
15# MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16# GNU General Public License for more details.
17#
18# You should have received a copy of the GNU General Public License
19# along with this program; if not, write to the Free Software
20# Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
21
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22compare_new ()
23{
24 file=$1
66b43ecb 25 if test ! -r ${file}
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26 then
27 echo "${file} missing? cp new-${file} ${file}" 1>&2
28 elif diff -c ${file} new-${file}
29 then
30 echo "${file} unchanged" 1>&2
31 else
32 echo "${file} has changed? cp new-${file} ${file}" 1>&2
33 fi
34}
35
36
37# Format of the input table
0b8f9e4d 38read="class level macro returntype function formal actual attrib staticdefault predefault postdefault invalid_p fmt print print_p description"
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39
40do_read ()
41{
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42 comment=""
43 class=""
44 while read line
45 do
46 if test "${line}" = ""
47 then
48 continue
49 elif test "${line}" = "#" -a "${comment}" = ""
f0d4cc9e 50 then
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51 continue
52 elif expr "${line}" : "#" > /dev/null
f0d4cc9e 53 then
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54 comment="${comment}
55${line}"
f0d4cc9e 56 else
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57
58 # The semantics of IFS varies between different SH's. Some
59 # treat ``::' as three fields while some treat it as just too.
60 # Work around this by eliminating ``::'' ....
61 line="`echo "${line}" | sed -e 's/::/: :/g' -e 's/::/: :/g'`"
62
63 OFS="${IFS}" ; IFS="[:]"
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64 eval read ${read} <<EOF
65${line}
66EOF
67 IFS="${OFS}"
68
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69 # .... and then going back through each field and strip out those
70 # that ended up with just that space character.
71 for r in ${read}
72 do
73 if eval test \"\${${r}}\" = \"\ \"
74 then
75 eval ${r}=""
76 fi
77 done
78
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79 test "${staticdefault}" || staticdefault=0
80 # NOT YET: Breaks BELIEVE_PCC_PROMOTION and confuses non-
81 # multi-arch defaults.
82 # test "${predefault}" || predefault=0
83 test "${fmt}" || fmt="%ld"
84 test "${print}" || print="(long) ${macro}"
85 case "${invalid_p}" in
86 0 ) valid_p=1 ;;
87 "" )
72e74a21 88 if [ -n "${predefault}" ]
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89 then
90 #invalid_p="gdbarch->${function} == ${predefault}"
91 valid_p="gdbarch->${function} != ${predefault}"
92 else
93 #invalid_p="gdbarch->${function} == 0"
94 valid_p="gdbarch->${function} != 0"
95 fi
96 ;;
97 * ) valid_p="!(${invalid_p})"
98 esac
99
100 # PREDEFAULT is a valid fallback definition of MEMBER when
101 # multi-arch is not enabled. This ensures that the
102 # default value, when multi-arch is the same as the
103 # default value when not multi-arch. POSTDEFAULT is
104 # always a valid definition of MEMBER as this again
105 # ensures consistency.
106
72e74a21 107 if [ -n "${postdefault}" ]
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108 then
109 fallbackdefault="${postdefault}"
72e74a21 110 elif [ -n "${predefault}" ]
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111 then
112 fallbackdefault="${predefault}"
113 else
114 fallbackdefault=""
115 fi
116
117 #NOT YET: See gdbarch.log for basic verification of
118 # database
119
120 break
f0d4cc9e 121 fi
34620563 122 done
72e74a21 123 if [ -n "${class}" ]
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124 then
125 true
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126 else
127 false
128 fi
129}
130
104c1213 131
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132fallback_default_p ()
133{
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134 [ -n "${postdefault}" -a "x${invalid_p}" != "x0" ] \
135 || [ -n "${predefault}" -a "x${invalid_p}" = "x0" ]
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136}
137
138class_is_variable_p ()
139{
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140 case "${class}" in
141 *v* | *V* ) true ;;
142 * ) false ;;
143 esac
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144}
145
146class_is_function_p ()
147{
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148 case "${class}" in
149 *f* | *F* | *m* | *M* ) true ;;
150 * ) false ;;
151 esac
152}
153
154class_is_multiarch_p ()
155{
156 case "${class}" in
157 *m* | *M* ) true ;;
158 * ) false ;;
159 esac
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160}
161
162class_is_predicate_p ()
163{
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164 case "${class}" in
165 *F* | *V* | *M* ) true ;;
166 * ) false ;;
167 esac
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168}
169
170class_is_info_p ()
171{
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172 case "${class}" in
173 *i* ) true ;;
174 * ) false ;;
175 esac
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176}
177
178
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179# dump out/verify the doco
180for field in ${read}
181do
182 case ${field} in
183
184 class ) : ;;
c4093a6a 185
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186 # # -> line disable
187 # f -> function
188 # hiding a function
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189 # F -> function + predicate
190 # hiding a function + predicate to test function validity
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191 # v -> variable
192 # hiding a variable
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193 # V -> variable + predicate
194 # hiding a variable + predicate to test variables validity
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195 # i -> set from info
196 # hiding something from the ``struct info'' object
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197 # m -> multi-arch function
198 # hiding a multi-arch function (parameterised with the architecture)
199 # M -> multi-arch function + predicate
200 # hiding a multi-arch function + predicate to test function validity
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201
202 level ) : ;;
203
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204 # See GDB_MULTI_ARCH description. Having GDB_MULTI_ARCH >=
205 # LEVEL is a predicate on checking that a given method is
206 # initialized (using INVALID_P).
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207
208 macro ) : ;;
209
c0e8c252 210 # The name of the MACRO that this method is to be accessed by.
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211
212 returntype ) : ;;
213
c0e8c252 214 # For functions, the return type; for variables, the data type
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215
216 function ) : ;;
217
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218 # For functions, the member function name; for variables, the
219 # variable name. Member function names are always prefixed with
220 # ``gdbarch_'' for name-space purity.
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221
222 formal ) : ;;
223
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224 # The formal argument list. It is assumed that the formal
225 # argument list includes the actual name of each list element.
226 # A function with no arguments shall have ``void'' as the
227 # formal argument list.
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228
229 actual ) : ;;
230
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231 # The list of actual arguments. The arguments specified shall
232 # match the FORMAL list given above. Functions with out
233 # arguments leave this blank.
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234
235 attrib ) : ;;
236
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237 # Any GCC attributes that should be attached to the function
238 # declaration. At present this field is unused.
cff3e48b 239
0b8f9e4d 240 staticdefault ) : ;;
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241
242 # To help with the GDB startup a static gdbarch object is
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243 # created. STATICDEFAULT is the value to insert into that
244 # static gdbarch object. Since this a static object only
245 # simple expressions can be used.
cff3e48b 246
0b8f9e4d 247 # If STATICDEFAULT is empty, zero is used.
c0e8c252 248
0b8f9e4d 249 predefault ) : ;;
cff3e48b 250
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251 # An initial value to assign to MEMBER of the freshly
252 # malloc()ed gdbarch object. After initialization, the
253 # freshly malloc()ed object is passed to the target
254 # architecture code for further updates.
cff3e48b 255
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256 # If PREDEFAULT is empty, zero is used.
257
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258 # A non-empty PREDEFAULT, an empty POSTDEFAULT and a zero
259 # INVALID_P are specified, PREDEFAULT will be used as the
260 # default for the non- multi-arch target.
261
262 # A zero PREDEFAULT function will force the fallback to call
263 # internal_error().
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264
265 # Variable declarations can refer to ``gdbarch'' which will
266 # contain the current architecture. Care should be taken.
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267
268 postdefault ) : ;;
269
270 # A value to assign to MEMBER of the new gdbarch object should
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271 # the target architecture code fail to change the PREDEFAULT
272 # value.
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273
274 # If POSTDEFAULT is empty, no post update is performed.
275
276 # If both INVALID_P and POSTDEFAULT are non-empty then
277 # INVALID_P will be used to determine if MEMBER should be
278 # changed to POSTDEFAULT.
279
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280 # If a non-empty POSTDEFAULT and a zero INVALID_P are
281 # specified, POSTDEFAULT will be used as the default for the
282 # non- multi-arch target (regardless of the value of
283 # PREDEFAULT).
284
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285 # You cannot specify both a zero INVALID_P and a POSTDEFAULT.
286
287 # Variable declarations can refer to ``gdbarch'' which will
288 # contain the current architecture. Care should be taken.
cff3e48b 289
c4093a6a 290 invalid_p ) : ;;
cff3e48b 291
0b8f9e4d 292 # A predicate equation that validates MEMBER. Non-zero is
c0e8c252 293 # returned if the code creating the new architecture failed to
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294 # initialize MEMBER or the initialized the member is invalid.
295 # If POSTDEFAULT is non-empty then MEMBER will be updated to
296 # that value. If POSTDEFAULT is empty then internal_error()
297 # is called.
298
299 # If INVALID_P is empty, a check that MEMBER is no longer
300 # equal to PREDEFAULT is used.
301
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302 # The expression ``0'' disables the INVALID_P check making
303 # PREDEFAULT a legitimate value.
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304
305 # See also PREDEFAULT and POSTDEFAULT.
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306
307 fmt ) : ;;
308
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309 # printf style format string that can be used to print out the
310 # MEMBER. Sometimes "%s" is useful. For functions, this is
311 # ignored and the function address is printed.
312
0b8f9e4d 313 # If FMT is empty, ``%ld'' is used.
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314
315 print ) : ;;
316
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317 # An optional equation that casts MEMBER to a value suitable
318 # for formatting by FMT.
319
0b8f9e4d 320 # If PRINT is empty, ``(long)'' is used.
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321
322 print_p ) : ;;
323
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324 # An optional indicator for any predicte to wrap around the
325 # print member code.
326
4b9b3959 327 # () -> Call a custom function to do the dump.
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328 # exp -> Wrap print up in ``if (${print_p}) ...
329 # ``'' -> No predicate
cff3e48b 330
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331 # If PRINT_P is empty, ``1'' is always used.
332
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333 description ) : ;;
334
0b8f9e4d 335 # Currently unused.
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336
337 *) exit 1;;
338 esac
339done
340
cff3e48b 341
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342function_list ()
343{
cff3e48b 344 # See below (DOCO) for description of each field
34620563 345 cat <<EOF
0b8f9e4d 346i:2:TARGET_ARCHITECTURE:const struct bfd_arch_info *:bfd_arch_info::::&bfd_default_arch_struct::::%s:TARGET_ARCHITECTURE->printable_name:TARGET_ARCHITECTURE != NULL
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347#
348i:2:TARGET_BYTE_ORDER:int:byte_order::::BIG_ENDIAN
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349# Number of bits in a char or unsigned char for the target machine.
350# Just like CHAR_BIT in <limits.h> but describes the target machine.
351# v::TARGET_CHAR_BIT:int:char_bit::::8 * sizeof (char):8::0:
352#
353# Number of bits in a short or unsigned short for the target machine.
354v::TARGET_SHORT_BIT:int:short_bit::::8 * sizeof (short):2*TARGET_CHAR_BIT::0
355# Number of bits in an int or unsigned int for the target machine.
356v::TARGET_INT_BIT:int:int_bit::::8 * sizeof (int):4*TARGET_CHAR_BIT::0
357# Number of bits in a long or unsigned long for the target machine.
358v::TARGET_LONG_BIT:int:long_bit::::8 * sizeof (long):4*TARGET_CHAR_BIT::0
359# Number of bits in a long long or unsigned long long for the target
360# machine.
361v::TARGET_LONG_LONG_BIT:int:long_long_bit::::8 * sizeof (LONGEST):2*TARGET_LONG_BIT::0
362# Number of bits in a float for the target machine.
363v::TARGET_FLOAT_BIT:int:float_bit::::8 * sizeof (float):4*TARGET_CHAR_BIT::0
364# Number of bits in a double for the target machine.
365v::TARGET_DOUBLE_BIT:int:double_bit::::8 * sizeof (double):8*TARGET_CHAR_BIT::0
366# Number of bits in a long double for the target machine.
367v::TARGET_LONG_DOUBLE_BIT:int:long_double_bit::::8 * sizeof (long double):2*TARGET_DOUBLE_BIT::0
52204a0b
DT
368# For most targets, a pointer on the target and its representation as an
369# address in GDB have the same size and "look the same". For such a
370# target, you need only set TARGET_PTR_BIT / ptr_bit and TARGET_ADDR_BIT
371# / addr_bit will be set from it.
372#
373# If TARGET_PTR_BIT and TARGET_ADDR_BIT are different, you'll probably
374# also need to set POINTER_TO_ADDRESS and ADDRESS_TO_POINTER as well.
375#
376# ptr_bit is the size of a pointer on the target
66b43ecb 377v::TARGET_PTR_BIT:int:ptr_bit::::8 * sizeof (void*):TARGET_INT_BIT::0
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378# addr_bit is the size of a target address as represented in gdb
379v::TARGET_ADDR_BIT:int:addr_bit::::8 * sizeof (void*):0:TARGET_PTR_BIT:
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380# Number of bits in a BFD_VMA for the target object file format.
381v::TARGET_BFD_VMA_BIT:int:bfd_vma_bit::::8 * sizeof (void*):TARGET_ARCHITECTURE->bits_per_address::0
104c1213 382#
be8dfb87 383v::IEEE_FLOAT:int:ieee_float::::0:0::0:::
104c1213 384#
39f77062
KB
385f::TARGET_READ_PC:CORE_ADDR:read_pc:ptid_t ptid:ptid::0:generic_target_read_pc::0
386f::TARGET_WRITE_PC:void:write_pc:CORE_ADDR val, ptid_t ptid:val, ptid::0:generic_target_write_pc::0
be8dfb87
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387f::TARGET_READ_FP:CORE_ADDR:read_fp:void:::0:generic_target_read_fp::0
388f::TARGET_WRITE_FP:void:write_fp:CORE_ADDR val:val::0:generic_target_write_fp::0
389f::TARGET_READ_SP:CORE_ADDR:read_sp:void:::0:generic_target_read_sp::0
390f::TARGET_WRITE_SP:void:write_sp:CORE_ADDR val:val::0:generic_target_write_sp::0
39d4ef09
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391# Function for getting target's idea of a frame pointer. FIXME: GDB's
392# whole scheme for dealing with "frames" and "frame pointers" needs a
393# serious shakedown.
394f::TARGET_VIRTUAL_FRAME_POINTER: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 395#
61a0eb5b
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396M:::void:register_read:int regnum, char *buf:regnum, buf:
397M:::void:register_write:int regnum, char *buf:regnum, buf:
398#
104c1213 399v:2:NUM_REGS:int:num_regs::::0:-1
0aba1244
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400# This macro gives the number of pseudo-registers that live in the
401# register namespace but do not get fetched or stored on the target.
3d9a5942
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402# These pseudo-registers may be aliases for other registers,
403# combinations of other registers, or they may be computed by GDB.
0aba1244 404v:2:NUM_PSEUDO_REGS:int:num_pseudo_regs::::0:0::0:::
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405v:2:SP_REGNUM:int:sp_regnum::::0:-1
406v:2:FP_REGNUM:int:fp_regnum::::0:-1
407v:2:PC_REGNUM:int:pc_regnum::::0:-1
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408v:2:FP0_REGNUM:int:fp0_regnum::::0:-1::0
409v:2:NPC_REGNUM:int:npc_regnum::::0:-1::0
410v:2:NNPC_REGNUM:int:nnpc_regnum::::0:-1::0
88c72b7d
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411# Convert stab register number (from \`r\' declaration) to a gdb REGNUM.
412f:2:STAB_REG_TO_REGNUM:int:stab_reg_to_regnum:int stab_regnr:stab_regnr:::no_op_reg_to_regnum::0
413# Provide a default mapping from a ecoff register number to a gdb REGNUM.
414f:2:ECOFF_REG_TO_REGNUM:int:ecoff_reg_to_regnum:int ecoff_regnr:ecoff_regnr:::no_op_reg_to_regnum::0
415# Provide a default mapping from a DWARF register number to a gdb REGNUM.
416f:2:DWARF_REG_TO_REGNUM:int:dwarf_reg_to_regnum:int dwarf_regnr:dwarf_regnr:::no_op_reg_to_regnum::0
417# Convert from an sdb register number to an internal gdb register number.
418# This should be defined in tm.h, if REGISTER_NAMES is not set up
419# to map one to one onto the sdb register numbers.
420f:2:SDB_REG_TO_REGNUM:int:sdb_reg_to_regnum:int sdb_regnr:sdb_regnr:::no_op_reg_to_regnum::0
421f:2:DWARF2_REG_TO_REGNUM:int:dwarf2_reg_to_regnum:int dwarf2_regnr:dwarf2_regnr:::no_op_reg_to_regnum::0
0b8f9e4d 422f:2:REGISTER_NAME:char *:register_name:int regnr:regnr:::legacy_register_name::0
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423v:2:REGISTER_SIZE:int:register_size::::0:-1
424v:2:REGISTER_BYTES:int:register_bytes::::0:-1
425f:2:REGISTER_BYTE:int:register_byte:int reg_nr:reg_nr::0:0
426f:2:REGISTER_RAW_SIZE:int:register_raw_size:int reg_nr:reg_nr::0:0
427v:2:MAX_REGISTER_RAW_SIZE:int:max_register_raw_size::::0:-1
428f:2:REGISTER_VIRTUAL_SIZE:int:register_virtual_size:int reg_nr:reg_nr::0:0
429v:2:MAX_REGISTER_VIRTUAL_SIZE:int:max_register_virtual_size::::0:-1
430f:2:REGISTER_VIRTUAL_TYPE:struct type *:register_virtual_type:int reg_nr:reg_nr::0:0
666e11c5 431f:2:DO_REGISTERS_INFO:void:do_registers_info:int reg_nr, int fpregs:reg_nr, fpregs:::do_registers_info::0
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432# MAP a GDB RAW register number onto a simulator register number. See
433# also include/...-sim.h.
434f:2:REGISTER_SIM_REGNO:int:register_sim_regno:int reg_nr:reg_nr:::default_register_sim_regno::0
2649061d 435F:2:REGISTER_BYTES_OK:int:register_bytes_ok:long nr_bytes:nr_bytes::0:0
01fb7433
AC
436f:2:CANNOT_FETCH_REGISTER:int:cannot_fetch_register:int regnum:regnum:::cannot_register_not::0
437f:2:CANNOT_STORE_REGISTER:int:cannot_store_register:int regnum:regnum:::cannot_register_not::0
104c1213
JM
438#
439v:1:USE_GENERIC_DUMMY_FRAMES:int:use_generic_dummy_frames::::0:-1
440v:2:CALL_DUMMY_LOCATION:int:call_dummy_location::::0:0
0b8f9e4d
AC
441f:2:CALL_DUMMY_ADDRESS:CORE_ADDR:call_dummy_address:void:::0:0::gdbarch->call_dummy_location == AT_ENTRY_POINT && gdbarch->call_dummy_address == 0
442v:2:CALL_DUMMY_START_OFFSET:CORE_ADDR:call_dummy_start_offset::::0:-1:::0x%08lx
7861024d 443v:2:CALL_DUMMY_BREAKPOINT_OFFSET:CORE_ADDR:call_dummy_breakpoint_offset::::0:-1:::0x%08lx::CALL_DUMMY_BREAKPOINT_OFFSET_P
104c1213 444v:1:CALL_DUMMY_BREAKPOINT_OFFSET_P:int:call_dummy_breakpoint_offset_p::::0:-1
0b8f9e4d 445v:2:CALL_DUMMY_LENGTH:int:call_dummy_length::::0:-1:::::CALL_DUMMY_LOCATION == BEFORE_TEXT_END || CALL_DUMMY_LOCATION == AFTER_TEXT_END
104c1213
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446f:2:PC_IN_CALL_DUMMY:int:pc_in_call_dummy:CORE_ADDR pc, CORE_ADDR sp, CORE_ADDR frame_address:pc, sp, frame_address::0:0
447v:1:CALL_DUMMY_P:int:call_dummy_p::::0:-1
0b8f9e4d
AC
448v:2:CALL_DUMMY_WORDS:LONGEST *:call_dummy_words::::0:legacy_call_dummy_words::0:0x%08lx
449v:2:SIZEOF_CALL_DUMMY_WORDS:int:sizeof_call_dummy_words::::0:legacy_sizeof_call_dummy_words::0:0x%08lx
450v:1:CALL_DUMMY_STACK_ADJUST_P:int:call_dummy_stack_adjust_p::::0:-1:::0x%08lx
451v:2:CALL_DUMMY_STACK_ADJUST:int:call_dummy_stack_adjust::::0:::gdbarch->call_dummy_stack_adjust_p && gdbarch->call_dummy_stack_adjust == 0:0x%08lx::CALL_DUMMY_STACK_ADJUST_P
452f:2:FIX_CALL_DUMMY:void:fix_call_dummy:char *dummy, CORE_ADDR pc, CORE_ADDR fun, int nargs, struct value **args, struct type *type, int gcc_p:dummy, pc, fun, nargs, args, type, gcc_p:::0
10312cc4 453f:2:INIT_FRAME_PC_FIRST:void:init_frame_pc_first:int fromleaf, struct frame_info *prev:fromleaf, prev:::init_frame_pc_noop::0
7824d2f2 454f:2:INIT_FRAME_PC:void:init_frame_pc:int fromleaf, struct frame_info *prev:fromleaf, prev:::init_frame_pc_default::0
104c1213 455#
f0d4cc9e
AC
456v:2:BELIEVE_PCC_PROMOTION:int:believe_pcc_promotion:::::::
457v:2:BELIEVE_PCC_PROMOTION_TYPE:int:believe_pcc_promotion_type:::::::
0b8f9e4d 458f:2:COERCE_FLOAT_TO_DOUBLE:int:coerce_float_to_double:struct type *formal, struct type *actual:formal, actual:::default_coerce_float_to_double::0
104c1213
JM
459f:1:GET_SAVED_REGISTER:void:get_saved_register:char *raw_buffer, int *optimized, CORE_ADDR *addrp, struct frame_info *frame, int regnum, enum lval_type *lval:raw_buffer, optimized, addrp, frame, regnum, lval::generic_get_saved_register:0
460#
0b8f9e4d
AC
461f:1:REGISTER_CONVERTIBLE:int:register_convertible:int nr:nr:::generic_register_convertible_not::0
462f:2:REGISTER_CONVERT_TO_VIRTUAL:void:register_convert_to_virtual:int regnum, struct type *type, char *from, char *to:regnum, type, from, to:::0::0
463f:2:REGISTER_CONVERT_TO_RAW:void:register_convert_to_raw:struct type *type, int regnum, char *from, char *to:type, regnum, from, to:::0::0
34620563
AC
464# This function is called when the value of a pseudo-register needs to
465# be updated. Typically it will be defined on a per-architecture
466# basis.
7f1b2585 467f:2:FETCH_PSEUDO_REGISTER:void:fetch_pseudo_register:int regnum:regnum:::0::0
34620563
AC
468# This function is called when the value of a pseudo-register needs to
469# be set or stored. Typically it will be defined on a
470# per-architecture basis.
7f1b2585 471f:2:STORE_PSEUDO_REGISTER:void:store_pseudo_register:int regnum:regnum:::0::0
104c1213 472#
ac2e2ef7
AC
473f:2:POINTER_TO_ADDRESS:CORE_ADDR:pointer_to_address:struct type *type, void *buf:type, buf:::unsigned_pointer_to_address::0
474f:2:ADDRESS_TO_POINTER:void:address_to_pointer:struct type *type, void *buf, CORE_ADDR addr:type, buf, addr:::unsigned_address_to_pointer::0
4478b372 475#
0b8f9e4d 476f:2:RETURN_VALUE_ON_STACK:int:return_value_on_stack:struct type *type:type:::generic_return_value_on_stack_not::0
104c1213
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477f:2:EXTRACT_RETURN_VALUE:void:extract_return_value:struct type *type, char *regbuf, char *valbuf:type, regbuf, valbuf::0:0
478f:1:PUSH_ARGUMENTS:CORE_ADDR:push_arguments:int nargs, struct value **args, CORE_ADDR sp, int struct_return, CORE_ADDR struct_addr:nargs, args, sp, struct_return, struct_addr::0:0
c0e8c252
AC
479f:2:PUSH_DUMMY_FRAME:void:push_dummy_frame:void:-:::0
480f:1:PUSH_RETURN_ADDRESS:CORE_ADDR:push_return_address:CORE_ADDR pc, CORE_ADDR sp:pc, sp:::0
481f:2:POP_FRAME:void:pop_frame:void:-:::0
104c1213 482#
c0e8c252
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483f:2:STORE_STRUCT_RETURN:void:store_struct_return:CORE_ADDR addr, CORE_ADDR sp:addr, sp:::0
484f:2:STORE_RETURN_VALUE:void:store_return_value:struct type *type, char *valbuf:type, valbuf:::0
d6dd581e 485F:2:EXTRACT_STRUCT_VALUE_ADDRESS:CORE_ADDR:extract_struct_value_address:char *regbuf:regbuf:::0
c0e8c252 486f:2:USE_STRUCT_CONVENTION:int:use_struct_convention:int gcc_p, struct type *value_type:gcc_p, value_type:::0
104c1213
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487#
488f:2:FRAME_INIT_SAVED_REGS:void:frame_init_saved_regs:struct frame_info *frame:frame::0:0
c0e8c252 489f:2:INIT_EXTRA_FRAME_INFO:void:init_extra_frame_info:int fromleaf, struct frame_info *frame:fromleaf, frame:::0
104c1213
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490#
491f:2:SKIP_PROLOGUE:CORE_ADDR:skip_prologue:CORE_ADDR ip:ip::0:0
0b8f9e4d 492f:2:PROLOGUE_FRAMELESS_P:int:prologue_frameless_p:CORE_ADDR ip:ip::0:generic_prologue_frameless_p::0
104c1213 493f:2:INNER_THAN:int:inner_than:CORE_ADDR lhs, CORE_ADDR rhs:lhs, rhs::0:0
0b8f9e4d
AC
494f:2:BREAKPOINT_FROM_PC:unsigned char *:breakpoint_from_pc:CORE_ADDR *pcptr, int *lenptr:pcptr, lenptr:::legacy_breakpoint_from_pc::0
495f:2:MEMORY_INSERT_BREAKPOINT:int:memory_insert_breakpoint:CORE_ADDR addr, char *contents_cache:addr, contents_cache::0:default_memory_insert_breakpoint::0
496f:2:MEMORY_REMOVE_BREAKPOINT:int:memory_remove_breakpoint:CORE_ADDR addr, char *contents_cache:addr, contents_cache::0:default_memory_remove_breakpoint::0
104c1213 497v:2:DECR_PC_AFTER_BREAK:CORE_ADDR:decr_pc_after_break::::0:-1
e02bc4cc 498f::PREPARE_TO_PROCEED:int:prepare_to_proceed:int select_it:select_it::0:default_prepare_to_proceed::0
104c1213
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499v:2:FUNCTION_START_OFFSET:CORE_ADDR:function_start_offset::::0:-1
500#
0b8f9e4d 501f:2:REMOTE_TRANSLATE_XFER_ADDRESS:void:remote_translate_xfer_address:CORE_ADDR gdb_addr, int gdb_len, CORE_ADDR *rem_addr, int *rem_len:gdb_addr, gdb_len, rem_addr, rem_len:::generic_remote_translate_xfer_address::0
104c1213
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502#
503v:2:FRAME_ARGS_SKIP:CORE_ADDR:frame_args_skip::::0:-1
0b8f9e4d 504f:2:FRAMELESS_FUNCTION_INVOCATION:int:frameless_function_invocation:struct frame_info *fi:fi:::generic_frameless_function_invocation_not::0
104c1213
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505f:2:FRAME_CHAIN:CORE_ADDR:frame_chain:struct frame_info *frame:frame::0:0
506f:1:FRAME_CHAIN_VALID:int:frame_chain_valid:CORE_ADDR chain, struct frame_info *thisframe:chain, thisframe::0:0
507f:2:FRAME_SAVED_PC:CORE_ADDR:frame_saved_pc:struct frame_info *fi:fi::0:0
508f:2:FRAME_ARGS_ADDRESS:CORE_ADDR:frame_args_address:struct frame_info *fi:fi::0:0
509f:2:FRAME_LOCALS_ADDRESS:CORE_ADDR:frame_locals_address:struct frame_info *fi:fi::0:0
510f:2:SAVED_PC_AFTER_CALL:CORE_ADDR:saved_pc_after_call:struct frame_info *frame:frame::0:0
511f:2:FRAME_NUM_ARGS:int:frame_num_args:struct frame_info *frame:frame::0:0
512#
2ada493a 513F:2:STACK_ALIGN:CORE_ADDR:stack_align:CORE_ADDR sp:sp::0:0
0a49d05e 514v:1:EXTRA_STACK_ALIGNMENT_NEEDED:int:extra_stack_alignment_needed::::0:1::0:::
d03e67c9 515F:2:REG_STRUCT_HAS_ADDR:int:reg_struct_has_addr:int gcc_p, struct type *type:gcc_p, type::0:0
d1e3cf49 516F:2:SAVE_DUMMY_FRAME_TOS:void:save_dummy_frame_tos:CORE_ADDR sp:sp::0:0
58d5518e 517v:2:PARM_BOUNDARY:int:parm_boundary
f0d4cc9e
AC
518#
519v:2:TARGET_FLOAT_FORMAT:const struct floatformat *:float_format::::::default_float_format (gdbarch)
520v:2:TARGET_DOUBLE_FORMAT:const struct floatformat *:double_format::::::default_double_format (gdbarch)
521v:2:TARGET_LONG_DOUBLE_FORMAT:const struct floatformat *:long_double_format::::::&floatformat_unknown
875e1767
AC
522f:2:CONVERT_FROM_FUNC_PTR_ADDR:CORE_ADDR:convert_from_func_ptr_addr:CORE_ADDR addr:addr:::core_addr_identity::0
523# On some machines there are bits in addresses which are not really
524# part of the address, but are used by the kernel, the hardware, etc.
525# for special purposes. ADDR_BITS_REMOVE takes out any such bits so
526# we get a "real" address such as one would find in a symbol table.
527# This is used only for addresses of instructions, and even then I'm
528# not sure it's used in all contexts. It exists to deal with there
529# being a few stray bits in the PC which would mislead us, not as some
530# sort of generic thing to handle alignment or segmentation (it's
531# possible it should be in TARGET_READ_PC instead).
532f:2:ADDR_BITS_REMOVE:CORE_ADDR:addr_bits_remove:CORE_ADDR addr:addr:::core_addr_identity::0
64c4637f
AC
533# FIXME/cagney/2001-01-18: This should be split in two. A target method that indicates if
534# the target needs software single step. An ISA method to implement it.
535#
536# FIXME/cagney/2001-01-18: This should be replaced with something that inserts breakpoints
537# using the breakpoint system instead of blatting memory directly (as with rs6000).
538#
539# FIXME/cagney/2001-01-18: The logic is backwards. It should be asking if the target can
540# single step. If not, then implement single step using breakpoints.
541F:2:SOFTWARE_SINGLE_STEP:void:software_single_step:enum target_signal sig, int insert_breakpoints_p:sig, insert_breakpoints_p::0:0
2bf0cb65 542f:2:TARGET_PRINT_INSN:int:print_insn:bfd_vma vma, disassemble_info *info:vma, info:::legacy_print_insn::0
bdcd319a 543f:2:SKIP_TRAMPOLINE_CODE:CORE_ADDR:skip_trampoline_code:CORE_ADDR pc:pc:::generic_skip_trampoline_code::0
104c1213 544EOF
104c1213
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545}
546
0b8f9e4d
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547#
548# The .log file
549#
550exec > new-gdbarch.log
34620563 551function_list | while do_read
0b8f9e4d
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552do
553 cat <<EOF
104c1213
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554${class} ${macro}(${actual})
555 ${returntype} ${function} ($formal)${attrib}
104c1213 556EOF
3d9a5942
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557 for r in ${read}
558 do
559 eval echo \"\ \ \ \ ${r}=\${${r}}\"
560 done
561# #fallbackdefault=${fallbackdefault}
562# #valid_p=${valid_p}
563#EOF
f0d4cc9e 564 if class_is_predicate_p && fallback_default_p
0b8f9e4d 565 then
66b43ecb 566 echo "Error: predicate function ${macro} can not have a non- multi-arch default" 1>&2
0b8f9e4d
AC
567 kill $$
568 exit 1
569 fi
72e74a21 570 if [ "x${invalid_p}" = "x0" -a -n "${postdefault}" ]
f0d4cc9e
AC
571 then
572 echo "Error: postdefault is useless when invalid_p=0" 1>&2
573 kill $$
574 exit 1
575 fi
3d9a5942 576 echo ""
0b8f9e4d
AC
577done
578
579exec 1>&2
580compare_new gdbarch.log
581
104c1213
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582
583copyright ()
584{
585cat <<EOF
59233f88
AC
586/* *INDENT-OFF* */ /* THIS FILE IS GENERATED */
587
104c1213 588/* Dynamic architecture support for GDB, the GNU debugger.
338d7c5c 589 Copyright 1998, 1999, 2000, 2001 Free Software Foundation, Inc.
104c1213
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590
591 This file is part of GDB.
592
593 This program is free software; you can redistribute it and/or modify
594 it under the terms of the GNU General Public License as published by
595 the Free Software Foundation; either version 2 of the License, or
596 (at your option) any later version.
597
598 This program is distributed in the hope that it will be useful,
599 but WITHOUT ANY WARRANTY; without even the implied warranty of
600 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
601 GNU General Public License for more details.
602
603 You should have received a copy of the GNU General Public License
604 along with this program; if not, write to the Free Software
605 Foundation, Inc., 59 Temple Place - Suite 330,
606 Boston, MA 02111-1307, USA. */
607
104c1213
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608/* This file was created with the aid of \`\`gdbarch.sh''.
609
52204a0b 610 The Bourne shell script \`\`gdbarch.sh'' creates the files
104c1213
JM
611 \`\`new-gdbarch.c'' and \`\`new-gdbarch.h and then compares them
612 against the existing \`\`gdbarch.[hc]''. Any differences found
613 being reported.
614
615 If editing this file, please also run gdbarch.sh and merge any
52204a0b 616 changes into that script. Conversely, when making sweeping changes
104c1213
JM
617 to this file, modifying gdbarch.sh and using its output may prove
618 easier. */
619
620EOF
621}
622
623#
624# The .h file
625#
626
627exec > new-gdbarch.h
628copyright
629cat <<EOF
630#ifndef GDBARCH_H
631#define GDBARCH_H
632
2bf0cb65
EZ
633#include "dis-asm.h" /* Get defs for disassemble_info, which unfortunately is a typedef. */
634
104c1213
JM
635struct frame_info;
636struct value;
637
638
104c1213
JM
639extern struct gdbarch *current_gdbarch;
640
641
104c1213
JM
642/* If any of the following are defined, the target wasn't correctly
643 converted. */
644
104c1213
JM
645#if GDB_MULTI_ARCH
646#if defined (EXTRA_FRAME_INFO)
647#error "EXTRA_FRAME_INFO: replaced by struct frame_extra_info"
648#endif
649#endif
650
651#if GDB_MULTI_ARCH
652#if defined (FRAME_FIND_SAVED_REGS)
653#error "FRAME_FIND_SAVED_REGS: replaced by FRAME_INIT_SAVED_REGS"
654#endif
655#endif
83905903
AC
656
657#if (GDB_MULTI_ARCH >= GDB_MULTI_ARCH_PURE) && defined (GDB_TM_FILE)
658#error "GDB_TM_FILE: Pure multi-arch targets do not have a tm.h file."
659#endif
104c1213
JM
660EOF
661
662# function typedef's
3d9a5942
AC
663printf "\n"
664printf "\n"
665printf "/* The following are pre-initialized by GDBARCH. */\n"
34620563 666function_list | while do_read
104c1213 667do
2ada493a
AC
668 if class_is_info_p
669 then
3d9a5942
AC
670 printf "\n"
671 printf "extern ${returntype} gdbarch_${function} (struct gdbarch *gdbarch);\n"
672 printf "/* set_gdbarch_${function}() - not applicable - pre-initialized. */\n"
83905903
AC
673 printf "#if (GDB_MULTI_ARCH > GDB_MULTI_ARCH_PARTIAL) && defined (${macro})\n"
674 printf "#error \"Non multi-arch definition of ${macro}\"\n"
675 printf "#endif\n"
3d9a5942
AC
676 printf "#if GDB_MULTI_ARCH\n"
677 printf "#if (GDB_MULTI_ARCH > GDB_MULTI_ARCH_PARTIAL) || !defined (${macro})\n"
678 printf "#define ${macro} (gdbarch_${function} (current_gdbarch))\n"
679 printf "#endif\n"
680 printf "#endif\n"
2ada493a 681 fi
104c1213
JM
682done
683
684# function typedef's
3d9a5942
AC
685printf "\n"
686printf "\n"
687printf "/* The following are initialized by the target dependent code. */\n"
34620563 688function_list | while do_read
104c1213 689do
72e74a21 690 if [ -n "${comment}" ]
34620563
AC
691 then
692 echo "${comment}" | sed \
693 -e '2 s,#,/*,' \
694 -e '3,$ s,#, ,' \
695 -e '$ s,$, */,'
696 fi
b77be6cf 697 if class_is_multiarch_p
2ada493a 698 then
b77be6cf
AC
699 if class_is_predicate_p
700 then
701 printf "\n"
702 printf "extern int gdbarch_${function}_p (struct gdbarch *gdbarch);\n"
703 fi
704 else
705 if class_is_predicate_p
706 then
707 printf "\n"
708 printf "#if defined (${macro})\n"
709 printf "/* Legacy for systems yet to multi-arch ${macro} */\n"
710 #printf "#if (GDB_MULTI_ARCH <= GDB_MULTI_ARCH_PARTIAL) && defined (${macro})\n"
eee30e78 711 printf "#if !defined (${macro}_P)\n"
b77be6cf
AC
712 printf "#define ${macro}_P() (1)\n"
713 printf "#endif\n"
eee30e78 714 printf "#endif\n"
b77be6cf
AC
715 printf "\n"
716 printf "/* Default predicate for non- multi-arch targets. */\n"
717 printf "#if (!GDB_MULTI_ARCH) && !defined (${macro}_P)\n"
718 printf "#define ${macro}_P() (0)\n"
719 printf "#endif\n"
720 printf "\n"
721 printf "extern int gdbarch_${function}_p (struct gdbarch *gdbarch);\n"
83905903
AC
722 printf "#if (GDB_MULTI_ARCH > GDB_MULTI_ARCH_PARTIAL) && defined (${macro}_P)\n"
723 printf "#error \"Non multi-arch definition of ${macro}\"\n"
724 printf "#endif\n"
b77be6cf
AC
725 printf "#if (GDB_MULTI_ARCH > GDB_MULTI_ARCH_PARTIAL) || !defined (${macro}_P)\n"
726 printf "#define ${macro}_P() (gdbarch_${function}_p (current_gdbarch))\n"
727 printf "#endif\n"
728 fi
4a5c6a1d 729 fi
2ada493a
AC
730 if class_is_variable_p
731 then
f0d4cc9e 732 if fallback_default_p || class_is_predicate_p
33489c5b 733 then
3d9a5942
AC
734 printf "\n"
735 printf "/* Default (value) for non- multi-arch platforms. */\n"
736 printf "#if (!GDB_MULTI_ARCH) && !defined (${macro})\n"
f0d4cc9e
AC
737 echo "#define ${macro} (${fallbackdefault})" \
738 | sed -e 's/\([^a-z_]\)\(gdbarch[^a-z_]\)/\1current_\2/g'
3d9a5942 739 printf "#endif\n"
33489c5b 740 fi
3d9a5942
AC
741 printf "\n"
742 printf "extern ${returntype} gdbarch_${function} (struct gdbarch *gdbarch);\n"
743 printf "extern void set_gdbarch_${function} (struct gdbarch *gdbarch, ${returntype} ${function});\n"
83905903
AC
744 printf "#if (GDB_MULTI_ARCH > GDB_MULTI_ARCH_PARTIAL) && defined (${macro})\n"
745 printf "#error \"Non multi-arch definition of ${macro}\"\n"
746 printf "#endif\n"
3d9a5942
AC
747 printf "#if GDB_MULTI_ARCH\n"
748 printf "#if (GDB_MULTI_ARCH > GDB_MULTI_ARCH_PARTIAL) || !defined (${macro})\n"
749 printf "#define ${macro} (gdbarch_${function} (current_gdbarch))\n"
750 printf "#endif\n"
751 printf "#endif\n"
2ada493a
AC
752 fi
753 if class_is_function_p
754 then
b77be6cf
AC
755 if class_is_multiarch_p ; then :
756 elif fallback_default_p || class_is_predicate_p
33489c5b 757 then
3d9a5942
AC
758 printf "\n"
759 printf "/* Default (function) for non- multi-arch platforms. */\n"
760 printf "#if (!GDB_MULTI_ARCH) && !defined (${macro})\n"
72e74a21 761 if [ "x${fallbackdefault}" = "x0" ]
33489c5b 762 then
8e65ff28 763 printf "#define ${macro}(${actual}) (internal_error (__FILE__, __LINE__, \"${macro}\"), 0)\n"
33489c5b 764 else
f0d4cc9e
AC
765 # FIXME: Should be passing current_gdbarch through!
766 echo "#define ${macro}(${actual}) (${fallbackdefault} (${actual}))" \
767 | sed -e 's/\([^a-z_]\)\(gdbarch[^a-z_]\)/\1current_\2/g'
33489c5b 768 fi
3d9a5942 769 printf "#endif\n"
33489c5b 770 fi
3d9a5942 771 printf "\n"
72e74a21 772 if [ "x${formal}" = "xvoid" ] && class_is_multiarch_p
4a5c6a1d
AC
773 then
774 printf "typedef ${returntype} (gdbarch_${function}_ftype) (struct gdbarch *gdbarch);\n"
775 elif class_is_multiarch_p
776 then
777 printf "typedef ${returntype} (gdbarch_${function}_ftype) (struct gdbarch *gdbarch, ${formal});\n"
778 else
779 printf "typedef ${returntype} (gdbarch_${function}_ftype) (${formal});\n"
780 fi
72e74a21 781 if [ "x${formal}" = "xvoid" ]
104c1213 782 then
3d9a5942 783 printf "extern ${returntype} gdbarch_${function} (struct gdbarch *gdbarch);\n"
104c1213 784 else
3d9a5942 785 printf "extern ${returntype} gdbarch_${function} (struct gdbarch *gdbarch, ${formal});\n"
104c1213 786 fi
3d9a5942 787 printf "extern void set_gdbarch_${function} (struct gdbarch *gdbarch, gdbarch_${function}_ftype *${function});\n"
b77be6cf
AC
788 if class_is_multiarch_p ; then :
789 else
83905903
AC
790 printf "#if (GDB_MULTI_ARCH > GDB_MULTI_ARCH_PARTIAL) && defined (${macro})\n"
791 printf "#error \"Non multi-arch definition of ${macro}\"\n"
792 printf "#endif\n"
4a5c6a1d
AC
793 printf "#if GDB_MULTI_ARCH\n"
794 printf "#if (GDB_MULTI_ARCH > GDB_MULTI_ARCH_PARTIAL) || !defined (${macro})\n"
72e74a21 795 if [ "x${actual}" = "x" ]
4a5c6a1d
AC
796 then
797 printf "#define ${macro}() (gdbarch_${function} (current_gdbarch))\n"
72e74a21 798 elif [ "x${actual}" = "x-" ]
4a5c6a1d
AC
799 then
800 printf "#define ${macro} (gdbarch_${function} (current_gdbarch))\n"
801 else
802 printf "#define ${macro}(${actual}) (gdbarch_${function} (current_gdbarch, ${actual}))\n"
803 fi
804 printf "#endif\n"
805 printf "#endif\n"
104c1213 806 fi
2ada493a 807 fi
104c1213
JM
808done
809
810# close it off
811cat <<EOF
812
813extern struct gdbarch_tdep *gdbarch_tdep (struct gdbarch *gdbarch);
814
815
816/* Mechanism for co-ordinating the selection of a specific
817 architecture.
818
819 GDB targets (*-tdep.c) can register an interest in a specific
820 architecture. Other GDB components can register a need to maintain
821 per-architecture data.
822
823 The mechanisms below ensures that there is only a loose connection
824 between the set-architecture command and the various GDB
0fa6923a 825 components. Each component can independently register their need
104c1213
JM
826 to maintain architecture specific data with gdbarch.
827
828 Pragmatics:
829
830 Previously, a single TARGET_ARCHITECTURE_HOOK was provided. It
831 didn't scale.
832
833 The more traditional mega-struct containing architecture specific
834 data for all the various GDB components was also considered. Since
0fa6923a 835 GDB is built from a variable number of (fairly independent)
104c1213
JM
836 components it was determined that the global aproach was not
837 applicable. */
838
839
840/* Register a new architectural family with GDB.
841
842 Register support for the specified ARCHITECTURE with GDB. When
843 gdbarch determines that the specified architecture has been
844 selected, the corresponding INIT function is called.
845
846 --
847
848 The INIT function takes two parameters: INFO which contains the
849 information available to gdbarch about the (possibly new)
850 architecture; ARCHES which is a list of the previously created
851 \`\`struct gdbarch'' for this architecture.
852
853 The INIT function parameter INFO shall, as far as possible, be
854 pre-initialized with information obtained from INFO.ABFD or
855 previously selected architecture (if similar). INIT shall ensure
856 that the INFO.BYTE_ORDER is non-zero.
857
858 The INIT function shall return any of: NULL - indicating that it
ec3d358c 859 doesn't recognize the selected architecture; an existing \`\`struct
104c1213
JM
860 gdbarch'' from the ARCHES list - indicating that the new
861 architecture is just a synonym for an earlier architecture (see
862 gdbarch_list_lookup_by_info()); a newly created \`\`struct gdbarch''
4b9b3959
AC
863 - that describes the selected architecture (see gdbarch_alloc()).
864
865 The DUMP_TDEP function shall print out all target specific values.
866 Care should be taken to ensure that the function works in both the
867 multi-arch and non- multi-arch cases. */
104c1213
JM
868
869struct gdbarch_list
870{
871 struct gdbarch *gdbarch;
872 struct gdbarch_list *next;
873};
874
875struct gdbarch_info
876{
104c1213
JM
877 /* Use default: NULL (ZERO). */
878 const struct bfd_arch_info *bfd_arch_info;
879
880 /* Use default: 0 (ZERO). */
881 int byte_order;
882
883 /* Use default: NULL (ZERO). */
884 bfd *abfd;
885
886 /* Use default: NULL (ZERO). */
887 struct gdbarch_tdep_info *tdep_info;
888};
889
890typedef struct gdbarch *(gdbarch_init_ftype) (struct gdbarch_info info, struct gdbarch_list *arches);
4b9b3959 891typedef void (gdbarch_dump_tdep_ftype) (struct gdbarch *gdbarch, struct ui_file *file);
104c1213 892
4b9b3959 893/* DEPRECATED - use gdbarch_register() */
104c1213
JM
894extern void register_gdbarch_init (enum bfd_architecture architecture, gdbarch_init_ftype *);
895
4b9b3959
AC
896extern void gdbarch_register (enum bfd_architecture architecture,
897 gdbarch_init_ftype *,
898 gdbarch_dump_tdep_ftype *);
899
104c1213 900
b4a20239
AC
901/* Return a freshly allocated, NULL terminated, array of the valid
902 architecture names. Since architectures are registered during the
903 _initialize phase this function only returns useful information
904 once initialization has been completed. */
905
906extern const char **gdbarch_printable_names (void);
907
908
104c1213
JM
909/* Helper function. Search the list of ARCHES for a GDBARCH that
910 matches the information provided by INFO. */
911
912extern struct gdbarch_list *gdbarch_list_lookup_by_info (struct gdbarch_list *arches, const struct gdbarch_info *info);
913
914
915/* Helper function. Create a preliminary \`\`struct gdbarch''. Perform
916 basic initialization using values obtained from the INFO andTDEP
917 parameters. set_gdbarch_*() functions are called to complete the
918 initialization of the object. */
919
920extern struct gdbarch *gdbarch_alloc (const struct gdbarch_info *info, struct gdbarch_tdep *tdep);
921
922
4b9b3959
AC
923/* Helper function. Free a partially-constructed \`\`struct gdbarch''.
924 It is assumed that the caller freeds the \`\`struct
925 gdbarch_tdep''. */
926
058f20d5
JB
927extern void gdbarch_free (struct gdbarch *);
928
929
b732d07d 930/* Helper function. Force an update of the current architecture.
104c1213 931
b732d07d
AC
932 The actual architecture selected is determined by INFO, \`\`(gdb) set
933 architecture'' et.al., the existing architecture and BFD's default
934 architecture. INFO should be initialized to zero and then selected
935 fields should be updated.
104c1213 936
16f33e29
AC
937 Returns non-zero if the update succeeds */
938
939extern int gdbarch_update_p (struct gdbarch_info info);
104c1213
JM
940
941
942
943/* Register per-architecture data-pointer.
944
945 Reserve space for a per-architecture data-pointer. An identifier
946 for the reserved data-pointer is returned. That identifer should
95160752 947 be saved in a local static variable.
104c1213 948
95160752
AC
949 The per-architecture data-pointer can be initialized in one of two
950 ways: The value can be set explicitly using a call to
951 set_gdbarch_data(); the value can be set implicitly using the value
952 returned by a non-NULL INIT() callback. INIT(), when non-NULL is
953 called after the basic architecture vector has been created.
104c1213 954
95160752
AC
955 When a previously created architecture is re-selected, the
956 per-architecture data-pointer for that previous architecture is
957 restored. INIT() is not called.
958
959 During initialization, multiple assignments of the data-pointer are
960 allowed, non-NULL values are deleted by calling FREE(). If the
961 architecture is deleted using gdbarch_free() all non-NULL data
962 pointers are also deleted using FREE().
104c1213
JM
963
964 Multiple registrarants for any architecture are allowed (and
965 strongly encouraged). */
966
95160752 967struct gdbarch_data;
104c1213 968
95160752
AC
969typedef void *(gdbarch_data_init_ftype) (struct gdbarch *gdbarch);
970typedef void (gdbarch_data_free_ftype) (struct gdbarch *gdbarch,
971 void *pointer);
972extern struct gdbarch_data *register_gdbarch_data (gdbarch_data_init_ftype *init,
973 gdbarch_data_free_ftype *free);
974extern void set_gdbarch_data (struct gdbarch *gdbarch,
975 struct gdbarch_data *data,
976 void *pointer);
104c1213
JM
977
978extern void *gdbarch_data (struct gdbarch_data*);
979
980
104c1213
JM
981/* Register per-architecture memory region.
982
983 Provide a memory-region swap mechanism. Per-architecture memory
984 region are created. These memory regions are swapped whenever the
985 architecture is changed. For a new architecture, the memory region
986 is initialized with zero (0) and the INIT function is called.
987
988 Memory regions are swapped / initialized in the order that they are
989 registered. NULL DATA and/or INIT values can be specified.
990
991 New code should use register_gdbarch_data(). */
992
993typedef void (gdbarch_swap_ftype) (void);
994extern void register_gdbarch_swap (void *data, unsigned long size, gdbarch_swap_ftype *init);
e514a9d6 995#define REGISTER_GDBARCH_SWAP(VAR) register_gdbarch_swap (&(VAR), sizeof ((VAR)), NULL)
104c1213
JM
996
997
998
0fa6923a 999/* The target-system-dependent byte order is dynamic */
104c1213
JM
1000
1001/* TARGET_BYTE_ORDER_SELECTABLE_P determines if the target endianness
1002 is selectable at runtime. The user can use the \`\`set endian''
1003 command to change it. TARGET_BYTE_ORDER_AUTO is nonzero when
1004 target_byte_order should be auto-detected (from the program image
1005 say). */
1006
1007#if GDB_MULTI_ARCH
1008/* Multi-arch GDB is always bi-endian. */
1009#define TARGET_BYTE_ORDER_SELECTABLE_P 1
1010#endif
1011
1012#ifndef TARGET_BYTE_ORDER_SELECTABLE_P
1013/* compat - Catch old targets that define TARGET_BYTE_ORDER_SLECTABLE
1014 when they should have defined TARGET_BYTE_ORDER_SELECTABLE_P 1 */
1015#ifdef TARGET_BYTE_ORDER_SELECTABLE
1016#define TARGET_BYTE_ORDER_SELECTABLE_P 1
1017#else
1018#define TARGET_BYTE_ORDER_SELECTABLE_P 0
1019#endif
1020#endif
1021
1022extern int target_byte_order;
1023#ifdef TARGET_BYTE_ORDER_SELECTABLE
1024/* compat - Catch old targets that define TARGET_BYTE_ORDER_SELECTABLE
1025 and expect defs.h to re-define TARGET_BYTE_ORDER. */
1026#undef TARGET_BYTE_ORDER
1027#endif
1028#ifndef TARGET_BYTE_ORDER
1029#define TARGET_BYTE_ORDER (target_byte_order + 0)
1030#endif
1031
1032extern int target_byte_order_auto;
1033#ifndef TARGET_BYTE_ORDER_AUTO
1034#define TARGET_BYTE_ORDER_AUTO (target_byte_order_auto + 0)
1035#endif
1036
1037
1038
0fa6923a 1039/* The target-system-dependent BFD architecture is dynamic */
104c1213
JM
1040
1041extern int target_architecture_auto;
1042#ifndef TARGET_ARCHITECTURE_AUTO
1043#define TARGET_ARCHITECTURE_AUTO (target_architecture_auto + 0)
1044#endif
1045
1046extern const struct bfd_arch_info *target_architecture;
1047#ifndef TARGET_ARCHITECTURE
1048#define TARGET_ARCHITECTURE (target_architecture + 0)
1049#endif
1050
104c1213 1051
0fa6923a 1052/* The target-system-dependent disassembler is semi-dynamic */
104c1213 1053
104c1213 1054extern int dis_asm_read_memory (bfd_vma memaddr, bfd_byte *myaddr,
ff844c8d 1055 unsigned int len, disassemble_info *info);
104c1213
JM
1056
1057extern void dis_asm_memory_error (int status, bfd_vma memaddr,
1058 disassemble_info *info);
1059
1060extern void dis_asm_print_address (bfd_vma addr,
1061 disassemble_info *info);
1062
1063extern int (*tm_print_insn) (bfd_vma, disassemble_info*);
1064extern disassemble_info tm_print_insn_info;
104c1213
JM
1065#ifndef TARGET_PRINT_INSN_INFO
1066#define TARGET_PRINT_INSN_INFO (&tm_print_insn_info)
1067#endif
1068
1069
1070
0fa6923a 1071/* Set the dynamic target-system-dependent parameters (architecture,
104c1213
JM
1072 byte-order, ...) using information found in the BFD */
1073
1074extern void set_gdbarch_from_file (bfd *);
1075
1076
e514a9d6
JM
1077/* Initialize the current architecture to the "first" one we find on
1078 our list. */
1079
1080extern void initialize_current_architecture (void);
1081
ceaa8edf
JB
1082/* For non-multiarched targets, do any initialization of the default
1083 gdbarch object necessary after the _initialize_MODULE functions
1084 have run. */
1085extern void initialize_non_multiarch ();
104c1213
JM
1086
1087/* gdbarch trace variable */
1088extern int gdbarch_debug;
1089
4b9b3959 1090extern void gdbarch_dump (struct gdbarch *gdbarch, struct ui_file *file);
104c1213
JM
1091
1092#endif
1093EOF
1094exec 1>&2
1095#../move-if-change new-gdbarch.h gdbarch.h
59233f88 1096compare_new gdbarch.h
104c1213
JM
1097
1098
1099#
1100# C file
1101#
1102
1103exec > new-gdbarch.c
1104copyright
1105cat <<EOF
1106
1107#include "defs.h"
7355ddba 1108#include "arch-utils.h"
104c1213
JM
1109
1110#if GDB_MULTI_ARCH
1111#include "gdbcmd.h"
1112#include "inferior.h" /* enum CALL_DUMMY_LOCATION et.al. */
1113#else
1114/* Just include everything in sight so that the every old definition
1115 of macro is visible. */
1116#include "gdb_string.h"
1117#include <ctype.h>
1118#include "symtab.h"
1119#include "frame.h"
1120#include "inferior.h"
1121#include "breakpoint.h"
0596389c 1122#include "gdb_wait.h"
104c1213
JM
1123#include "gdbcore.h"
1124#include "gdbcmd.h"
1125#include "target.h"
1126#include "gdbthread.h"
1127#include "annotate.h"
1128#include "symfile.h" /* for overlay functions */
1129#endif
1130#include "symcat.h"
1131
f0d4cc9e 1132#include "floatformat.h"
104c1213 1133
95160752 1134#include "gdb_assert.h"
67c2c32c 1135#include "gdb-events.h"
95160752 1136
104c1213
JM
1137/* Static function declarations */
1138
1139static void verify_gdbarch (struct gdbarch *gdbarch);
b3cc3077
JB
1140static void alloc_gdbarch_data (struct gdbarch *);
1141static void init_gdbarch_data (struct gdbarch *);
95160752 1142static void free_gdbarch_data (struct gdbarch *);
104c1213
JM
1143static void init_gdbarch_swap (struct gdbarch *);
1144static void swapout_gdbarch_swap (struct gdbarch *);
1145static void swapin_gdbarch_swap (struct gdbarch *);
1146
1147/* Convenience macro for allocting typesafe memory. */
1148
1149#ifndef XMALLOC
1150#define XMALLOC(TYPE) (TYPE*) xmalloc (sizeof (TYPE))
1151#endif
1152
1153
1154/* Non-zero if we want to trace architecture code. */
1155
1156#ifndef GDBARCH_DEBUG
1157#define GDBARCH_DEBUG 0
1158#endif
1159int gdbarch_debug = GDBARCH_DEBUG;
1160
1161EOF
1162
1163# gdbarch open the gdbarch object
3d9a5942
AC
1164printf "\n"
1165printf "/* Maintain the struct gdbarch object */\n"
1166printf "\n"
1167printf "struct gdbarch\n"
1168printf "{\n"
1169printf " /* basic architectural information */\n"
34620563 1170function_list | while do_read
104c1213 1171do
2ada493a
AC
1172 if class_is_info_p
1173 then
3d9a5942 1174 printf " ${returntype} ${function};\n"
2ada493a 1175 fi
104c1213 1176done
3d9a5942
AC
1177printf "\n"
1178printf " /* target specific vector. */\n"
1179printf " struct gdbarch_tdep *tdep;\n"
1180printf " gdbarch_dump_tdep_ftype *dump_tdep;\n"
1181printf "\n"
1182printf " /* per-architecture data-pointers */\n"
95160752 1183printf " unsigned nr_data;\n"
3d9a5942
AC
1184printf " void **data;\n"
1185printf "\n"
1186printf " /* per-architecture swap-regions */\n"
1187printf " struct gdbarch_swap *swap;\n"
1188printf "\n"
104c1213
JM
1189cat <<EOF
1190 /* Multi-arch values.
1191
1192 When extending this structure you must:
1193
1194 Add the field below.
1195
1196 Declare set/get functions and define the corresponding
1197 macro in gdbarch.h.
1198
1199 gdbarch_alloc(): If zero/NULL is not a suitable default,
1200 initialize the new field.
1201
1202 verify_gdbarch(): Confirm that the target updated the field
1203 correctly.
1204
7e73cedf 1205 gdbarch_dump(): Add a fprintf_unfiltered call so that the new
104c1213
JM
1206 field is dumped out
1207
c0e8c252 1208 \`\`startup_gdbarch()'': Append an initial value to the static
104c1213
JM
1209 variable (base values on the host's c-type system).
1210
1211 get_gdbarch(): Implement the set/get functions (probably using
1212 the macro's as shortcuts).
1213
1214 */
1215
1216EOF
34620563 1217function_list | while do_read
104c1213 1218do
2ada493a
AC
1219 if class_is_variable_p
1220 then
3d9a5942 1221 printf " ${returntype} ${function};\n"
2ada493a
AC
1222 elif class_is_function_p
1223 then
3d9a5942 1224 printf " gdbarch_${function}_ftype *${function}${attrib};\n"
2ada493a 1225 fi
104c1213 1226done
3d9a5942 1227printf "};\n"
104c1213
JM
1228
1229# A pre-initialized vector
3d9a5942
AC
1230printf "\n"
1231printf "\n"
104c1213
JM
1232cat <<EOF
1233/* The default architecture uses host values (for want of a better
1234 choice). */
1235EOF
3d9a5942
AC
1236printf "\n"
1237printf "extern const struct bfd_arch_info bfd_default_arch_struct;\n"
1238printf "\n"
1239printf "struct gdbarch startup_gdbarch =\n"
1240printf "{\n"
1241printf " /* basic architecture information */\n"
4b9b3959 1242function_list | while do_read
104c1213 1243do
2ada493a
AC
1244 if class_is_info_p
1245 then
3d9a5942 1246 printf " ${staticdefault},\n"
2ada493a 1247 fi
104c1213
JM
1248done
1249cat <<EOF
4b9b3959
AC
1250 /* target specific vector and its dump routine */
1251 NULL, NULL,
104c1213
JM
1252 /*per-architecture data-pointers and swap regions */
1253 0, NULL, NULL,
1254 /* Multi-arch values */
1255EOF
34620563 1256function_list | while do_read
104c1213 1257do
2ada493a
AC
1258 if class_is_function_p || class_is_variable_p
1259 then
3d9a5942 1260 printf " ${staticdefault},\n"
2ada493a 1261 fi
104c1213
JM
1262done
1263cat <<EOF
c0e8c252 1264 /* startup_gdbarch() */
104c1213 1265};
4b9b3959 1266
c0e8c252 1267struct gdbarch *current_gdbarch = &startup_gdbarch;
ceaa8edf
JB
1268
1269/* Do any initialization needed for a non-multiarch configuration
1270 after the _initialize_MODULE functions have been run. */
1271void
1272initialize_non_multiarch ()
1273{
1274 alloc_gdbarch_data (&startup_gdbarch);
1275 init_gdbarch_data (&startup_gdbarch);
1276}
104c1213
JM
1277EOF
1278
1279# Create a new gdbarch struct
3d9a5942
AC
1280printf "\n"
1281printf "\n"
104c1213 1282cat <<EOF
66b43ecb 1283/* Create a new \`\`struct gdbarch'' based on information provided by
104c1213
JM
1284 \`\`struct gdbarch_info''. */
1285EOF
3d9a5942 1286printf "\n"
104c1213
JM
1287cat <<EOF
1288struct gdbarch *
1289gdbarch_alloc (const struct gdbarch_info *info,
1290 struct gdbarch_tdep *tdep)
1291{
85de9627
AC
1292 /* NOTE: The new architecture variable is named \`\`current_gdbarch''
1293 so that macros such as TARGET_DOUBLE_BIT, when expanded, refer to
1294 the current local architecture and not the previous global
1295 architecture. This ensures that the new architectures initial
1296 values are not influenced by the previous architecture. Once
1297 everything is parameterised with gdbarch, this will go away. */
1298 struct gdbarch *current_gdbarch = XMALLOC (struct gdbarch);
1299 memset (current_gdbarch, 0, sizeof (*current_gdbarch));
1300
1301 alloc_gdbarch_data (current_gdbarch);
1302
1303 current_gdbarch->tdep = tdep;
104c1213 1304EOF
3d9a5942 1305printf "\n"
34620563 1306function_list | while do_read
104c1213 1307do
2ada493a
AC
1308 if class_is_info_p
1309 then
85de9627 1310 printf " current_gdbarch->${function} = info->${function};\n"
2ada493a 1311 fi
104c1213 1312done
3d9a5942
AC
1313printf "\n"
1314printf " /* Force the explicit initialization of these. */\n"
34620563 1315function_list | while do_read
104c1213 1316do
2ada493a
AC
1317 if class_is_function_p || class_is_variable_p
1318 then
72e74a21 1319 if [ -n "${predefault}" -a "x${predefault}" != "x0" ]
104c1213 1320 then
85de9627 1321 printf " current_gdbarch->${function} = ${predefault};\n"
104c1213 1322 fi
2ada493a 1323 fi
104c1213
JM
1324done
1325cat <<EOF
1326 /* gdbarch_alloc() */
1327
85de9627 1328 return current_gdbarch;
104c1213
JM
1329}
1330EOF
1331
058f20d5 1332# Free a gdbarch struct.
3d9a5942
AC
1333printf "\n"
1334printf "\n"
058f20d5
JB
1335cat <<EOF
1336/* Free a gdbarch struct. This should never happen in normal
1337 operation --- once you've created a gdbarch, you keep it around.
1338 However, if an architecture's init function encounters an error
1339 building the structure, it may need to clean up a partially
1340 constructed gdbarch. */
4b9b3959 1341
058f20d5
JB
1342void
1343gdbarch_free (struct gdbarch *arch)
1344{
95160752
AC
1345 gdb_assert (arch != NULL);
1346 free_gdbarch_data (arch);
338d7c5c 1347 xfree (arch);
058f20d5
JB
1348}
1349EOF
1350
104c1213 1351# verify a new architecture
3d9a5942
AC
1352printf "\n"
1353printf "\n"
1354printf "/* Ensure that all values in a GDBARCH are reasonable. */\n"
1355printf "\n"
104c1213
JM
1356cat <<EOF
1357static void
1358verify_gdbarch (struct gdbarch *gdbarch)
1359{
1360 /* Only perform sanity checks on a multi-arch target. */
6166d547 1361 if (!GDB_MULTI_ARCH)
104c1213
JM
1362 return;
1363 /* fundamental */
1364 if (gdbarch->byte_order == 0)
8e65ff28
AC
1365 internal_error (__FILE__, __LINE__,
1366 "verify_gdbarch: byte-order unset");
104c1213 1367 if (gdbarch->bfd_arch_info == NULL)
8e65ff28
AC
1368 internal_error (__FILE__, __LINE__,
1369 "verify_gdbarch: bfd_arch_info unset");
104c1213
JM
1370 /* Check those that need to be defined for the given multi-arch level. */
1371EOF
34620563 1372function_list | while do_read
104c1213 1373do
2ada493a
AC
1374 if class_is_function_p || class_is_variable_p
1375 then
72e74a21 1376 if [ "x${invalid_p}" = "x0" ]
c0e8c252 1377 then
3d9a5942 1378 printf " /* Skip verify of ${function}, invalid_p == 0 */\n"
2ada493a
AC
1379 elif class_is_predicate_p
1380 then
3d9a5942 1381 printf " /* Skip verify of ${function}, has predicate */\n"
f0d4cc9e 1382 # FIXME: See do_read for potential simplification
72e74a21 1383 elif [ -n "${invalid_p}" -a -n "${postdefault}" ]
f0d4cc9e 1384 then
3d9a5942
AC
1385 printf " if (${invalid_p})\n"
1386 printf " gdbarch->${function} = ${postdefault};\n"
72e74a21 1387 elif [ -n "${predefault}" -a -n "${postdefault}" ]
f0d4cc9e 1388 then
3d9a5942
AC
1389 printf " if (gdbarch->${function} == ${predefault})\n"
1390 printf " gdbarch->${function} = ${postdefault};\n"
72e74a21 1391 elif [ -n "${postdefault}" ]
f0d4cc9e 1392 then
3d9a5942
AC
1393 printf " if (gdbarch->${function} == 0)\n"
1394 printf " gdbarch->${function} = ${postdefault};\n"
72e74a21 1395 elif [ -n "${invalid_p}" ]
104c1213 1396 then
3d9a5942
AC
1397 printf " if ((GDB_MULTI_ARCH >= ${level})\n"
1398 printf " && (${invalid_p}))\n"
8e65ff28
AC
1399 printf " internal_error (__FILE__, __LINE__,\n"
1400 printf " \"gdbarch: verify_gdbarch: ${function} invalid\");\n"
72e74a21 1401 elif [ -n "${predefault}" ]
104c1213 1402 then
3d9a5942
AC
1403 printf " if ((GDB_MULTI_ARCH >= ${level})\n"
1404 printf " && (gdbarch->${function} == ${predefault}))\n"
8e65ff28
AC
1405 printf " internal_error (__FILE__, __LINE__,\n"
1406 printf " \"gdbarch: verify_gdbarch: ${function} invalid\");\n"
104c1213 1407 fi
2ada493a 1408 fi
104c1213
JM
1409done
1410cat <<EOF
1411}
1412EOF
1413
1414# dump the structure
3d9a5942
AC
1415printf "\n"
1416printf "\n"
104c1213 1417cat <<EOF
4b9b3959
AC
1418/* Print out the details of the current architecture. */
1419
1420/* NOTE/WARNING: The parameter is called \`\`current_gdbarch'' so that it
1421 just happens to match the global variable \`\`current_gdbarch''. That
1422 way macros refering to that variable get the local and not the global
1423 version - ulgh. Once everything is parameterised with gdbarch, this
1424 will go away. */
1425
104c1213 1426void
4b9b3959 1427gdbarch_dump (struct gdbarch *gdbarch, struct ui_file *file)
104c1213 1428{
4b9b3959
AC
1429 fprintf_unfiltered (file,
1430 "gdbarch_dump: GDB_MULTI_ARCH = %d\\n",
1431 GDB_MULTI_ARCH);
104c1213 1432EOF
08e45a40 1433function_list | sort -t: +2 | while do_read
104c1213 1434do
4a5c6a1d 1435 # multiarch functions don't have macros.
08e45a40
AC
1436 if class_is_multiarch_p
1437 then
1438 printf " if (GDB_MULTI_ARCH)\n"
1439 printf " fprintf_unfiltered (file,\n"
1440 printf " \"gdbarch_dump: ${function} = 0x%%08lx\\\\n\",\n"
1441 printf " (long) current_gdbarch->${function});\n"
1442 continue
1443 fi
1444 printf "#ifdef ${macro}\n"
72e74a21 1445 if [ "x${returntype}" = "xvoid" ]
63e69063 1446 then
08e45a40 1447 printf "#if GDB_MULTI_ARCH\n"
3d9a5942 1448 printf " /* Macro might contain \`[{}]' when not multi-arch */\n"
63e69063 1449 fi
2ada493a
AC
1450 if class_is_function_p
1451 then
3d9a5942
AC
1452 printf " fprintf_unfiltered (file,\n"
1453 printf " \"gdbarch_dump: %%s # %%s\\\\n\",\n"
1454 printf " \"${macro}(${actual})\",\n"
1455 printf " XSTRING (${macro} (${actual})));\n"
2ada493a 1456 else
3d9a5942
AC
1457 printf " fprintf_unfiltered (file,\n"
1458 printf " \"gdbarch_dump: ${macro} # %%s\\\\n\",\n"
1459 printf " XSTRING (${macro}));\n"
4b9b3959 1460 fi
08e45a40 1461 if [ "x${returntype}" = "xvoid" ]
4a5c6a1d 1462 then
08e45a40 1463 printf "#endif\n"
4a5c6a1d 1464 fi
72e74a21 1465 if [ "x${print_p}" = "x()" ]
4b9b3959 1466 then
4a5c6a1d 1467 printf " gdbarch_dump_${function} (current_gdbarch);\n"
72e74a21 1468 elif [ "x${print_p}" = "x0" ]
4b9b3959 1469 then
4a5c6a1d 1470 printf " /* skip print of ${macro}, print_p == 0. */\n"
72e74a21 1471 elif [ -n "${print_p}" ]
4b9b3959 1472 then
4a5c6a1d 1473 printf " if (${print_p})\n"
3d9a5942
AC
1474 printf " fprintf_unfiltered (file,\n"
1475 printf " \"gdbarch_dump: ${macro} = %s\\\\n\",\n" "${fmt}"
1476 printf " ${print});\n"
4b9b3959
AC
1477 elif class_is_function_p
1478 then
3d9a5942
AC
1479 printf " if (GDB_MULTI_ARCH)\n"
1480 printf " fprintf_unfiltered (file,\n"
1481 printf " \"gdbarch_dump: ${macro} = 0x%%08lx\\\\n\",\n"
1482 printf " (long) current_gdbarch->${function}\n"
1483 printf " /*${macro} ()*/);\n"
4b9b3959 1484 else
3d9a5942
AC
1485 printf " fprintf_unfiltered (file,\n"
1486 printf " \"gdbarch_dump: ${macro} = %s\\\\n\",\n" "${fmt}"
1487 printf " ${print});\n"
2ada493a 1488 fi
3d9a5942 1489 printf "#endif\n"
104c1213 1490done
381323f4 1491cat <<EOF
4b9b3959
AC
1492 if (current_gdbarch->dump_tdep != NULL)
1493 current_gdbarch->dump_tdep (current_gdbarch, file);
381323f4
AC
1494}
1495EOF
104c1213
JM
1496
1497
1498# GET/SET
3d9a5942 1499printf "\n"
104c1213
JM
1500cat <<EOF
1501struct gdbarch_tdep *
1502gdbarch_tdep (struct gdbarch *gdbarch)
1503{
1504 if (gdbarch_debug >= 2)
3d9a5942 1505 fprintf_unfiltered (gdb_stdlog, "gdbarch_tdep called\\n");
104c1213
JM
1506 return gdbarch->tdep;
1507}
1508EOF
3d9a5942 1509printf "\n"
34620563 1510function_list | while do_read
104c1213 1511do
2ada493a
AC
1512 if class_is_predicate_p
1513 then
3d9a5942
AC
1514 printf "\n"
1515 printf "int\n"
1516 printf "gdbarch_${function}_p (struct gdbarch *gdbarch)\n"
1517 printf "{\n"
72e74a21 1518 if [ -n "${valid_p}" ]
2ada493a 1519 then
3d9a5942 1520 printf " return ${valid_p};\n"
2ada493a 1521 else
3d9a5942 1522 printf "#error \"gdbarch_${function}_p: not defined\"\n"
2ada493a 1523 fi
3d9a5942 1524 printf "}\n"
2ada493a
AC
1525 fi
1526 if class_is_function_p
1527 then
3d9a5942
AC
1528 printf "\n"
1529 printf "${returntype}\n"
72e74a21 1530 if [ "x${formal}" = "xvoid" ]
104c1213 1531 then
3d9a5942 1532 printf "gdbarch_${function} (struct gdbarch *gdbarch)\n"
104c1213 1533 else
3d9a5942 1534 printf "gdbarch_${function} (struct gdbarch *gdbarch, ${formal})\n"
104c1213 1535 fi
3d9a5942
AC
1536 printf "{\n"
1537 printf " if (gdbarch->${function} == 0)\n"
8e65ff28
AC
1538 printf " internal_error (__FILE__, __LINE__,\n"
1539 printf " \"gdbarch: gdbarch_${function} invalid\");\n"
3d9a5942
AC
1540 printf " if (gdbarch_debug >= 2)\n"
1541 printf " fprintf_unfiltered (gdb_stdlog, \"gdbarch_${function} called\\\\n\");\n"
72e74a21 1542 if [ "x${actual}" = "x-" -o "x${actual}" = "x" ]
4a5c6a1d
AC
1543 then
1544 if class_is_multiarch_p
1545 then
1546 params="gdbarch"
1547 else
1548 params=""
1549 fi
1550 else
1551 if class_is_multiarch_p
1552 then
1553 params="gdbarch, ${actual}"
1554 else
1555 params="${actual}"
1556 fi
1557 fi
72e74a21 1558 if [ "x${returntype}" = "xvoid" ]
104c1213 1559 then
4a5c6a1d 1560 printf " gdbarch->${function} (${params});\n"
104c1213 1561 else
4a5c6a1d 1562 printf " return gdbarch->${function} (${params});\n"
104c1213 1563 fi
3d9a5942
AC
1564 printf "}\n"
1565 printf "\n"
1566 printf "void\n"
1567 printf "set_gdbarch_${function} (struct gdbarch *gdbarch,\n"
1568 printf " `echo ${function} | sed -e 's/./ /g'` gdbarch_${function}_ftype ${function})\n"
1569 printf "{\n"
1570 printf " gdbarch->${function} = ${function};\n"
1571 printf "}\n"
2ada493a
AC
1572 elif class_is_variable_p
1573 then
3d9a5942
AC
1574 printf "\n"
1575 printf "${returntype}\n"
1576 printf "gdbarch_${function} (struct gdbarch *gdbarch)\n"
1577 printf "{\n"
72e74a21 1578 if [ "x${invalid_p}" = "x0" ]
c0e8c252 1579 then
3d9a5942 1580 printf " /* Skip verify of ${function}, invalid_p == 0 */\n"
72e74a21 1581 elif [ -n "${invalid_p}" ]
104c1213 1582 then
3d9a5942 1583 printf " if (${invalid_p})\n"
8e65ff28
AC
1584 printf " internal_error (__FILE__, __LINE__,\n"
1585 printf " \"gdbarch: gdbarch_${function} invalid\");\n"
72e74a21 1586 elif [ -n "${predefault}" ]
104c1213 1587 then
3d9a5942 1588 printf " if (gdbarch->${function} == ${predefault})\n"
8e65ff28
AC
1589 printf " internal_error (__FILE__, __LINE__,\n"
1590 printf " \"gdbarch: gdbarch_${function} invalid\");\n"
104c1213 1591 fi
3d9a5942
AC
1592 printf " if (gdbarch_debug >= 2)\n"
1593 printf " fprintf_unfiltered (gdb_stdlog, \"gdbarch_${function} called\\\\n\");\n"
1594 printf " return gdbarch->${function};\n"
1595 printf "}\n"
1596 printf "\n"
1597 printf "void\n"
1598 printf "set_gdbarch_${function} (struct gdbarch *gdbarch,\n"
1599 printf " `echo ${function} | sed -e 's/./ /g'` ${returntype} ${function})\n"
1600 printf "{\n"
1601 printf " gdbarch->${function} = ${function};\n"
1602 printf "}\n"
2ada493a
AC
1603 elif class_is_info_p
1604 then
3d9a5942
AC
1605 printf "\n"
1606 printf "${returntype}\n"
1607 printf "gdbarch_${function} (struct gdbarch *gdbarch)\n"
1608 printf "{\n"
1609 printf " if (gdbarch_debug >= 2)\n"
1610 printf " fprintf_unfiltered (gdb_stdlog, \"gdbarch_${function} called\\\\n\");\n"
1611 printf " return gdbarch->${function};\n"
1612 printf "}\n"
2ada493a 1613 fi
104c1213
JM
1614done
1615
1616# All the trailing guff
1617cat <<EOF
1618
1619
f44c642f 1620/* Keep a registry of per-architecture data-pointers required by GDB
104c1213
JM
1621 modules. */
1622
1623struct gdbarch_data
1624{
95160752
AC
1625 unsigned index;
1626 gdbarch_data_init_ftype *init;
1627 gdbarch_data_free_ftype *free;
104c1213
JM
1628};
1629
1630struct gdbarch_data_registration
1631{
104c1213
JM
1632 struct gdbarch_data *data;
1633 struct gdbarch_data_registration *next;
1634};
1635
f44c642f 1636struct gdbarch_data_registry
104c1213 1637{
95160752 1638 unsigned nr;
104c1213
JM
1639 struct gdbarch_data_registration *registrations;
1640};
1641
f44c642f 1642struct gdbarch_data_registry gdbarch_data_registry =
104c1213
JM
1643{
1644 0, NULL,
1645};
1646
1647struct gdbarch_data *
95160752
AC
1648register_gdbarch_data (gdbarch_data_init_ftype *init,
1649 gdbarch_data_free_ftype *free)
104c1213
JM
1650{
1651 struct gdbarch_data_registration **curr;
f44c642f 1652 for (curr = &gdbarch_data_registry.registrations;
104c1213
JM
1653 (*curr) != NULL;
1654 curr = &(*curr)->next);
1655 (*curr) = XMALLOC (struct gdbarch_data_registration);
1656 (*curr)->next = NULL;
104c1213 1657 (*curr)->data = XMALLOC (struct gdbarch_data);
f44c642f 1658 (*curr)->data->index = gdbarch_data_registry.nr++;
95160752
AC
1659 (*curr)->data->init = init;
1660 (*curr)->data->free = free;
104c1213
JM
1661 return (*curr)->data;
1662}
1663
1664
b3cc3077 1665/* Walk through all the registered users initializing each in turn. */
104c1213
JM
1666
1667static void
b3cc3077 1668init_gdbarch_data (struct gdbarch *gdbarch)
104c1213 1669{
b3cc3077
JB
1670 struct gdbarch_data_registration *rego;
1671 for (rego = gdbarch_data_registry.registrations;
1672 rego != NULL;
1673 rego = rego->next)
104c1213 1674 {
b3cc3077
JB
1675 struct gdbarch_data *data = rego->data;
1676 gdb_assert (data->index < gdbarch->nr_data);
1677 if (data->init != NULL)
95160752 1678 {
b3cc3077
JB
1679 void *pointer = data->init (gdbarch);
1680 set_gdbarch_data (gdbarch, data, pointer);
95160752
AC
1681 }
1682 }
1683}
1684
b3cc3077 1685/* Create/delete the gdbarch data vector. */
95160752
AC
1686
1687static void
b3cc3077 1688alloc_gdbarch_data (struct gdbarch *gdbarch)
95160752 1689{
b3cc3077
JB
1690 gdb_assert (gdbarch->data == NULL);
1691 gdbarch->nr_data = gdbarch_data_registry.nr;
1692 gdbarch->data = xcalloc (gdbarch->nr_data, sizeof (void*));
1693}
3c875b6f 1694
b3cc3077
JB
1695static void
1696free_gdbarch_data (struct gdbarch *gdbarch)
1697{
1698 struct gdbarch_data_registration *rego;
1699 gdb_assert (gdbarch->data != NULL);
1700 for (rego = gdbarch_data_registry.registrations;
1701 rego != NULL;
1702 rego = rego->next)
95160752 1703 {
b3cc3077
JB
1704 struct gdbarch_data *data = rego->data;
1705 gdb_assert (data->index < gdbarch->nr_data);
1706 if (data->free != NULL && gdbarch->data[data->index] != NULL)
95160752 1707 {
b3cc3077
JB
1708 data->free (gdbarch, gdbarch->data[data->index]);
1709 gdbarch->data[data->index] = NULL;
95160752 1710 }
104c1213 1711 }
b3cc3077
JB
1712 xfree (gdbarch->data);
1713 gdbarch->data = NULL;
104c1213
JM
1714}
1715
1716
b3cc3077
JB
1717/* Initialize the current value of thee specified per-architecture
1718 data-pointer. */
1719
95160752
AC
1720void
1721set_gdbarch_data (struct gdbarch *gdbarch,
1722 struct gdbarch_data *data,
1723 void *pointer)
1724{
1725 gdb_assert (data->index < gdbarch->nr_data);
1726 if (data->free != NULL && gdbarch->data[data->index] != NULL)
1727 data->free (gdbarch, gdbarch->data[data->index]);
1728 gdbarch->data[data->index] = pointer;
1729}
1730
104c1213
JM
1731/* Return the current value of the specified per-architecture
1732 data-pointer. */
1733
1734void *
34620563 1735gdbarch_data (struct gdbarch_data *data)
104c1213 1736{
95160752 1737 gdb_assert (data->index < current_gdbarch->nr_data);
104c1213
JM
1738 return current_gdbarch->data[data->index];
1739}
1740
1741
1742
f44c642f 1743/* Keep a registry of swapped data required by GDB modules. */
104c1213
JM
1744
1745struct gdbarch_swap
1746{
1747 void *swap;
1748 struct gdbarch_swap_registration *source;
1749 struct gdbarch_swap *next;
1750};
1751
1752struct gdbarch_swap_registration
1753{
1754 void *data;
1755 unsigned long sizeof_data;
1756 gdbarch_swap_ftype *init;
1757 struct gdbarch_swap_registration *next;
1758};
1759
f44c642f 1760struct gdbarch_swap_registry
104c1213
JM
1761{
1762 int nr;
1763 struct gdbarch_swap_registration *registrations;
1764};
1765
f44c642f 1766struct gdbarch_swap_registry gdbarch_swap_registry =
104c1213
JM
1767{
1768 0, NULL,
1769};
1770
1771void
1772register_gdbarch_swap (void *data,
1773 unsigned long sizeof_data,
1774 gdbarch_swap_ftype *init)
1775{
1776 struct gdbarch_swap_registration **rego;
f44c642f 1777 for (rego = &gdbarch_swap_registry.registrations;
104c1213
JM
1778 (*rego) != NULL;
1779 rego = &(*rego)->next);
1780 (*rego) = XMALLOC (struct gdbarch_swap_registration);
1781 (*rego)->next = NULL;
1782 (*rego)->init = init;
1783 (*rego)->data = data;
1784 (*rego)->sizeof_data = sizeof_data;
1785}
1786
1787
1788static void
1789init_gdbarch_swap (struct gdbarch *gdbarch)
1790{
1791 struct gdbarch_swap_registration *rego;
1792 struct gdbarch_swap **curr = &gdbarch->swap;
f44c642f 1793 for (rego = gdbarch_swap_registry.registrations;
104c1213
JM
1794 rego != NULL;
1795 rego = rego->next)
1796 {
1797 if (rego->data != NULL)
1798 {
1799 (*curr) = XMALLOC (struct gdbarch_swap);
1800 (*curr)->source = rego;
1801 (*curr)->swap = xmalloc (rego->sizeof_data);
1802 (*curr)->next = NULL;
1803 memset (rego->data, 0, rego->sizeof_data);
1804 curr = &(*curr)->next;
1805 }
1806 if (rego->init != NULL)
1807 rego->init ();
1808 }
1809}
1810
1811static void
1812swapout_gdbarch_swap (struct gdbarch *gdbarch)
1813{
1814 struct gdbarch_swap *curr;
1815 for (curr = gdbarch->swap;
1816 curr != NULL;
1817 curr = curr->next)
1818 memcpy (curr->swap, curr->source->data, curr->source->sizeof_data);
1819}
1820
1821static void
1822swapin_gdbarch_swap (struct gdbarch *gdbarch)
1823{
1824 struct gdbarch_swap *curr;
1825 for (curr = gdbarch->swap;
1826 curr != NULL;
1827 curr = curr->next)
1828 memcpy (curr->source->data, curr->swap, curr->source->sizeof_data);
1829}
1830
1831
f44c642f 1832/* Keep a registry of the architectures known by GDB. */
104c1213 1833
4b9b3959 1834struct gdbarch_registration
104c1213
JM
1835{
1836 enum bfd_architecture bfd_architecture;
1837 gdbarch_init_ftype *init;
4b9b3959 1838 gdbarch_dump_tdep_ftype *dump_tdep;
104c1213 1839 struct gdbarch_list *arches;
4b9b3959 1840 struct gdbarch_registration *next;
104c1213
JM
1841};
1842
f44c642f 1843static struct gdbarch_registration *gdbarch_registry = NULL;
104c1213 1844
b4a20239
AC
1845static void
1846append_name (const char ***buf, int *nr, const char *name)
1847{
1848 *buf = xrealloc (*buf, sizeof (char**) * (*nr + 1));
1849 (*buf)[*nr] = name;
1850 *nr += 1;
1851}
1852
1853const char **
1854gdbarch_printable_names (void)
1855{
1856 if (GDB_MULTI_ARCH)
1857 {
1858 /* Accumulate a list of names based on the registed list of
1859 architectures. */
1860 enum bfd_architecture a;
1861 int nr_arches = 0;
1862 const char **arches = NULL;
4b9b3959 1863 struct gdbarch_registration *rego;
f44c642f 1864 for (rego = gdbarch_registry;
b4a20239
AC
1865 rego != NULL;
1866 rego = rego->next)
1867 {
1868 const struct bfd_arch_info *ap;
1869 ap = bfd_lookup_arch (rego->bfd_architecture, 0);
1870 if (ap == NULL)
8e65ff28
AC
1871 internal_error (__FILE__, __LINE__,
1872 "gdbarch_architecture_names: multi-arch unknown");
b4a20239
AC
1873 do
1874 {
1875 append_name (&arches, &nr_arches, ap->printable_name);
1876 ap = ap->next;
1877 }
1878 while (ap != NULL);
1879 }
1880 append_name (&arches, &nr_arches, NULL);
1881 return arches;
1882 }
1883 else
1884 /* Just return all the architectures that BFD knows. Assume that
1885 the legacy architecture framework supports them. */
1886 return bfd_arch_list ();
1887}
1888
1889
104c1213 1890void
4b9b3959
AC
1891gdbarch_register (enum bfd_architecture bfd_architecture,
1892 gdbarch_init_ftype *init,
1893 gdbarch_dump_tdep_ftype *dump_tdep)
104c1213 1894{
4b9b3959 1895 struct gdbarch_registration **curr;
104c1213 1896 const struct bfd_arch_info *bfd_arch_info;
ec3d358c 1897 /* Check that BFD recognizes this architecture */
104c1213
JM
1898 bfd_arch_info = bfd_lookup_arch (bfd_architecture, 0);
1899 if (bfd_arch_info == NULL)
1900 {
8e65ff28
AC
1901 internal_error (__FILE__, __LINE__,
1902 "gdbarch: Attempt to register unknown architecture (%d)",
1903 bfd_architecture);
104c1213
JM
1904 }
1905 /* Check that we haven't seen this architecture before */
f44c642f 1906 for (curr = &gdbarch_registry;
104c1213
JM
1907 (*curr) != NULL;
1908 curr = &(*curr)->next)
1909 {
1910 if (bfd_architecture == (*curr)->bfd_architecture)
8e65ff28
AC
1911 internal_error (__FILE__, __LINE__,
1912 "gdbarch: Duplicate registraration of architecture (%s)",
1913 bfd_arch_info->printable_name);
104c1213
JM
1914 }
1915 /* log it */
1916 if (gdbarch_debug)
1917 fprintf_unfiltered (gdb_stdlog, "register_gdbarch_init (%s, 0x%08lx)\n",
1918 bfd_arch_info->printable_name,
1919 (long) init);
1920 /* Append it */
4b9b3959 1921 (*curr) = XMALLOC (struct gdbarch_registration);
104c1213
JM
1922 (*curr)->bfd_architecture = bfd_architecture;
1923 (*curr)->init = init;
4b9b3959 1924 (*curr)->dump_tdep = dump_tdep;
104c1213
JM
1925 (*curr)->arches = NULL;
1926 (*curr)->next = NULL;
8e1a459b
C
1927 /* When non- multi-arch, install whatever target dump routine we've
1928 been provided - hopefully that routine has been written correctly
4b9b3959
AC
1929 and works regardless of multi-arch. */
1930 if (!GDB_MULTI_ARCH && dump_tdep != NULL
1931 && startup_gdbarch.dump_tdep == NULL)
1932 startup_gdbarch.dump_tdep = dump_tdep;
1933}
1934
1935void
1936register_gdbarch_init (enum bfd_architecture bfd_architecture,
1937 gdbarch_init_ftype *init)
1938{
1939 gdbarch_register (bfd_architecture, init, NULL);
104c1213 1940}
104c1213
JM
1941
1942
1943/* Look for an architecture using gdbarch_info. Base search on only
1944 BFD_ARCH_INFO and BYTE_ORDER. */
1945
1946struct gdbarch_list *
1947gdbarch_list_lookup_by_info (struct gdbarch_list *arches,
1948 const struct gdbarch_info *info)
1949{
1950 for (; arches != NULL; arches = arches->next)
1951 {
1952 if (info->bfd_arch_info != arches->gdbarch->bfd_arch_info)
1953 continue;
1954 if (info->byte_order != arches->gdbarch->byte_order)
1955 continue;
1956 return arches;
1957 }
1958 return NULL;
1959}
1960
1961
1962/* Update the current architecture. Return ZERO if the update request
1963 failed. */
1964
1965int
16f33e29 1966gdbarch_update_p (struct gdbarch_info info)
104c1213
JM
1967{
1968 struct gdbarch *new_gdbarch;
1969 struct gdbarch_list **list;
4b9b3959 1970 struct gdbarch_registration *rego;
104c1213 1971
b732d07d
AC
1972 /* Fill in missing parts of the INFO struct using a number of
1973 sources: \`\`set ...''; INFOabfd supplied; existing target. */
1974
1975 /* \`\`(gdb) set architecture ...'' */
1976 if (info.bfd_arch_info == NULL
1977 && !TARGET_ARCHITECTURE_AUTO)
1978 info.bfd_arch_info = TARGET_ARCHITECTURE;
1979 if (info.bfd_arch_info == NULL
1980 && info.abfd != NULL
1981 && bfd_get_arch (info.abfd) != bfd_arch_unknown
1982 && bfd_get_arch (info.abfd) != bfd_arch_obscure)
1983 info.bfd_arch_info = bfd_get_arch_info (info.abfd);
104c1213 1984 if (info.bfd_arch_info == NULL)
b732d07d
AC
1985 info.bfd_arch_info = TARGET_ARCHITECTURE;
1986
1987 /* \`\`(gdb) set byte-order ...'' */
1988 if (info.byte_order == 0
1989 && !TARGET_BYTE_ORDER_AUTO)
1990 info.byte_order = TARGET_BYTE_ORDER;
1991 /* From the INFO struct. */
1992 if (info.byte_order == 0
1993 && info.abfd != NULL)
1994 info.byte_order = (bfd_big_endian (info.abfd) ? BIG_ENDIAN
1995 : bfd_little_endian (info.abfd) ? LITTLE_ENDIAN
1996 : 0);
1997 /* From the current target. */
104c1213 1998 if (info.byte_order == 0)
b732d07d 1999 info.byte_order = TARGET_BYTE_ORDER;
104c1213 2000
b732d07d
AC
2001 /* Must have found some sort of architecture. */
2002 gdb_assert (info.bfd_arch_info != NULL);
104c1213
JM
2003
2004 if (gdbarch_debug)
2005 {
2006 fprintf_unfiltered (gdb_stdlog,
b732d07d 2007 "gdbarch_update: info.bfd_arch_info %s\n",
104c1213
JM
2008 (info.bfd_arch_info != NULL
2009 ? info.bfd_arch_info->printable_name
2010 : "(null)"));
2011 fprintf_unfiltered (gdb_stdlog,
b732d07d 2012 "gdbarch_update: info.byte_order %d (%s)\n",
104c1213
JM
2013 info.byte_order,
2014 (info.byte_order == BIG_ENDIAN ? "big"
2015 : info.byte_order == LITTLE_ENDIAN ? "little"
2016 : "default"));
2017 fprintf_unfiltered (gdb_stdlog,
b732d07d 2018 "gdbarch_update: info.abfd 0x%lx\n",
104c1213
JM
2019 (long) info.abfd);
2020 fprintf_unfiltered (gdb_stdlog,
b732d07d 2021 "gdbarch_update: info.tdep_info 0x%lx\n",
104c1213
JM
2022 (long) info.tdep_info);
2023 }
2024
b732d07d
AC
2025 /* Find the target that knows about this architecture. */
2026 for (rego = gdbarch_registry;
2027 rego != NULL;
2028 rego = rego->next)
2029 if (rego->bfd_architecture == info.bfd_arch_info->arch)
2030 break;
2031 if (rego == NULL)
2032 {
2033 if (gdbarch_debug)
2034 fprintf_unfiltered (gdb_stdlog, "gdbarch_update: No matching architecture\\n");
2035 return 0;
2036 }
2037
104c1213
JM
2038 /* Ask the target for a replacement architecture. */
2039 new_gdbarch = rego->init (info, rego->arches);
2040
2041 /* Did the target like it? No. Reject the change. */
2042 if (new_gdbarch == NULL)
2043 {
2044 if (gdbarch_debug)
3d9a5942 2045 fprintf_unfiltered (gdb_stdlog, "gdbarch_update: Target rejected architecture\\n");
104c1213
JM
2046 return 0;
2047 }
2048
2049 /* Did the architecture change? No. Do nothing. */
2050 if (current_gdbarch == new_gdbarch)
2051 {
2052 if (gdbarch_debug)
3d9a5942 2053 fprintf_unfiltered (gdb_stdlog, "gdbarch_update: Architecture 0x%08lx (%s) unchanged\\n",
104c1213
JM
2054 (long) new_gdbarch,
2055 new_gdbarch->bfd_arch_info->printable_name);
2056 return 1;
2057 }
2058
2059 /* Swap all data belonging to the old target out */
2060 swapout_gdbarch_swap (current_gdbarch);
2061
2062 /* Is this a pre-existing architecture? Yes. Swap it in. */
2063 for (list = &rego->arches;
2064 (*list) != NULL;
2065 list = &(*list)->next)
2066 {
2067 if ((*list)->gdbarch == new_gdbarch)
2068 {
2069 if (gdbarch_debug)
4b9b3959 2070 fprintf_unfiltered (gdb_stdlog,
3d9a5942 2071 "gdbarch_update: Previous architecture 0x%08lx (%s) selected\\n",
104c1213
JM
2072 (long) new_gdbarch,
2073 new_gdbarch->bfd_arch_info->printable_name);
2074 current_gdbarch = new_gdbarch;
2075 swapin_gdbarch_swap (new_gdbarch);
67c2c32c 2076 architecture_changed_event ();
104c1213
JM
2077 return 1;
2078 }
2079 }
4b9b3959 2080
104c1213
JM
2081 /* Append this new architecture to this targets list. */
2082 (*list) = XMALLOC (struct gdbarch_list);
2083 (*list)->next = NULL;
2084 (*list)->gdbarch = new_gdbarch;
2085
2086 /* Switch to this new architecture. Dump it out. */
2087 current_gdbarch = new_gdbarch;
2088 if (gdbarch_debug)
2089 {
2090 fprintf_unfiltered (gdb_stdlog,
3d9a5942 2091 "gdbarch_update: New architecture 0x%08lx (%s) selected\\n",
104c1213
JM
2092 (long) new_gdbarch,
2093 new_gdbarch->bfd_arch_info->printable_name);
104c1213
JM
2094 }
2095
4b9b3959
AC
2096 /* Check that the newly installed architecture is valid. Plug in
2097 any post init values. */
2098 new_gdbarch->dump_tdep = rego->dump_tdep;
104c1213
JM
2099 verify_gdbarch (new_gdbarch);
2100
2101 /* Initialize the per-architecture memory (swap) areas.
2102 CURRENT_GDBARCH must be update before these modules are
2103 called. */
2104 init_gdbarch_swap (new_gdbarch);
2105
b3cc3077
JB
2106 /* Initialize the per-architecture data-pointer of all parties that
2107 registered an interest in this architecture. CURRENT_GDBARCH
2108 must be updated before these modules are called. */
2109 init_gdbarch_data (new_gdbarch);
67c2c32c
KS
2110 architecture_changed_event ();
2111
4b9b3959
AC
2112 if (gdbarch_debug)
2113 gdbarch_dump (current_gdbarch, gdb_stdlog);
2114
104c1213
JM
2115 return 1;
2116}
2117
2118
104c1213
JM
2119/* Disassembler */
2120
2121/* Pointer to the target-dependent disassembly function. */
2122int (*tm_print_insn) (bfd_vma, disassemble_info *);
2123disassemble_info tm_print_insn_info;
2124
2125
104c1213 2126extern void _initialize_gdbarch (void);
b4a20239 2127
104c1213 2128void
34620563 2129_initialize_gdbarch (void)
104c1213 2130{
59233f88
AC
2131 struct cmd_list_element *c;
2132
104c1213
JM
2133 INIT_DISASSEMBLE_INFO_NO_ARCH (tm_print_insn_info, gdb_stdout, (fprintf_ftype)fprintf_filtered);
2134 tm_print_insn_info.flavour = bfd_target_unknown_flavour;
2135 tm_print_insn_info.read_memory_func = dis_asm_read_memory;
2136 tm_print_insn_info.memory_error_func = dis_asm_memory_error;
2137 tm_print_insn_info.print_address_func = dis_asm_print_address;
2138
59233f88 2139 add_show_from_set (add_set_cmd ("arch",
104c1213
JM
2140 class_maintenance,
2141 var_zinteger,
2142 (char *)&gdbarch_debug,
3d9a5942 2143 "Set architecture debugging.\\n\\
59233f88
AC
2144When non-zero, architecture debugging is enabled.", &setdebuglist),
2145 &showdebuglist);
2146 c = add_set_cmd ("archdebug",
2147 class_maintenance,
2148 var_zinteger,
2149 (char *)&gdbarch_debug,
3d9a5942 2150 "Set architecture debugging.\\n\\
59233f88
AC
2151When non-zero, architecture debugging is enabled.", &setlist);
2152
2153 deprecate_cmd (c, "set debug arch");
2154 deprecate_cmd (add_show_from_set (c, &showlist), "show debug arch");
104c1213
JM
2155}
2156EOF
2157
2158# close things off
2159exec 1>&2
2160#../move-if-change new-gdbarch.c gdbarch.c
59233f88 2161compare_new gdbarch.c
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