| 1 | /* CGEN generic opcode support. | 
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| 2 |  | 
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| 3 | Copyright 1996, 1997, 1998, 1999, 2000, 2001 | 
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| 4 | Free Software Foundation, Inc. | 
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| 5 |  | 
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| 6 | This file is part of the GNU Binutils and GDB, the GNU debugger. | 
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| 7 |  | 
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| 8 | This program is free software; you can redistribute it and/or modify | 
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| 9 | it under the terms of the GNU General Public License as published by | 
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| 10 | the Free Software Foundation; either version 2, or (at your option) | 
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| 11 | any later version. | 
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| 12 |  | 
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| 13 | This program is distributed in the hope that it will be useful, | 
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| 14 | but WITHOUT ANY WARRANTY; without even the implied warranty of | 
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| 15 | MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the | 
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| 16 | GNU General Public License for more details. | 
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| 17 |  | 
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| 18 | You should have received a copy of the GNU General Public License along | 
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| 19 | with this program; if not, write to the Free Software Foundation, Inc., | 
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| 20 | 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.  */ | 
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| 21 |  | 
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| 22 | #include "sysdep.h" | 
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| 23 | #include <stdio.h> | 
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| 24 | #include "ansidecl.h" | 
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| 25 | #include "libiberty.h" | 
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| 26 | #include "safe-ctype.h" | 
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| 27 | #include "bfd.h" | 
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| 28 | #include "symcat.h" | 
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| 29 | #include "opcode/cgen.h" | 
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| 30 |  | 
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| 31 | #ifdef HAVE_ALLOCA_H | 
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| 32 | #include <alloca.h> | 
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| 33 | #endif | 
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| 34 |  | 
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| 35 | static unsigned int hash_keyword_name | 
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| 36 | PARAMS ((const CGEN_KEYWORD *, const char *, int)); | 
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| 37 | static unsigned int hash_keyword_value | 
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| 38 | PARAMS ((const CGEN_KEYWORD *, unsigned int)); | 
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| 39 | static void build_keyword_hash_tables | 
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| 40 | PARAMS ((CGEN_KEYWORD *)); | 
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| 41 |  | 
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| 42 | /* Return number of hash table entries to use for N elements.  */ | 
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| 43 | #define KEYWORD_HASH_SIZE(n) ((n) <= 31 ? 17 : 31) | 
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| 44 |  | 
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| 45 | /* Look up *NAMEP in the keyword table KT. | 
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| 46 | The result is the keyword entry or NULL if not found.  */ | 
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| 47 |  | 
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| 48 | const CGEN_KEYWORD_ENTRY * | 
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| 49 | cgen_keyword_lookup_name (kt, name) | 
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| 50 | CGEN_KEYWORD *kt; | 
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| 51 | const char *name; | 
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| 52 | { | 
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| 53 | const CGEN_KEYWORD_ENTRY *ke; | 
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| 54 | const char *p,*n; | 
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| 55 |  | 
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| 56 | if (kt->name_hash_table == NULL) | 
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| 57 | build_keyword_hash_tables (kt); | 
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| 58 |  | 
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| 59 | ke = kt->name_hash_table[hash_keyword_name (kt, name, 0)]; | 
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| 60 |  | 
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| 61 | /* We do case insensitive comparisons. | 
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| 62 | If that ever becomes a problem, add an attribute that denotes | 
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| 63 | "do case sensitive comparisons".  */ | 
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| 64 |  | 
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| 65 | while (ke != NULL) | 
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| 66 | { | 
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| 67 | n = name; | 
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| 68 | p = ke->name; | 
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| 69 |  | 
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| 70 | while (*p | 
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| 71 | && (*p == *n | 
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| 72 | || (ISALPHA (*p) && (TOLOWER (*p) == TOLOWER (*n))))) | 
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| 73 | ++n, ++p; | 
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| 74 |  | 
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| 75 | if (!*p && !*n) | 
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| 76 | return ke; | 
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| 77 |  | 
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| 78 | ke = ke->next_name; | 
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| 79 | } | 
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| 80 |  | 
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| 81 | if (kt->null_entry) | 
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| 82 | return kt->null_entry; | 
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| 83 | return NULL; | 
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| 84 | } | 
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| 85 |  | 
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| 86 | /* Look up VALUE in the keyword table KT. | 
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| 87 | The result is the keyword entry or NULL if not found.  */ | 
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| 88 |  | 
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| 89 | const CGEN_KEYWORD_ENTRY * | 
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| 90 | cgen_keyword_lookup_value (kt, value) | 
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| 91 | CGEN_KEYWORD *kt; | 
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| 92 | int value; | 
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| 93 | { | 
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| 94 | const CGEN_KEYWORD_ENTRY *ke; | 
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| 95 |  | 
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| 96 | if (kt->name_hash_table == NULL) | 
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| 97 | build_keyword_hash_tables (kt); | 
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| 98 |  | 
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| 99 | ke = kt->value_hash_table[hash_keyword_value (kt, value)]; | 
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| 100 |  | 
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| 101 | while (ke != NULL) | 
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| 102 | { | 
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| 103 | if (value == ke->value) | 
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| 104 | return ke; | 
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| 105 | ke = ke->next_value; | 
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| 106 | } | 
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| 107 |  | 
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| 108 | return NULL; | 
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| 109 | } | 
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| 110 |  | 
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| 111 | /* Add an entry to a keyword table.  */ | 
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| 112 |  | 
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| 113 | void | 
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| 114 | cgen_keyword_add (kt, ke) | 
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| 115 | CGEN_KEYWORD *kt; | 
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| 116 | CGEN_KEYWORD_ENTRY *ke; | 
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| 117 | { | 
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| 118 | unsigned int hash; | 
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| 119 | size_t i; | 
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| 120 |  | 
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| 121 | if (kt->name_hash_table == NULL) | 
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| 122 | build_keyword_hash_tables (kt); | 
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| 123 |  | 
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| 124 | hash = hash_keyword_name (kt, ke->name, 0); | 
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| 125 | ke->next_name = kt->name_hash_table[hash]; | 
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| 126 | kt->name_hash_table[hash] = ke; | 
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| 127 |  | 
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| 128 | hash = hash_keyword_value (kt, ke->value); | 
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| 129 | ke->next_value = kt->value_hash_table[hash]; | 
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| 130 | kt->value_hash_table[hash] = ke; | 
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| 131 |  | 
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| 132 | if (ke->name[0] == 0) | 
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| 133 | kt->null_entry = ke; | 
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| 134 |  | 
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| 135 | for (i = 1; i < strlen (ke->name); i++) | 
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| 136 | if (! ISALNUM (ke->name[i]) | 
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| 137 | && ! strchr (kt->nonalpha_chars, ke->name[i])) | 
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| 138 | { | 
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| 139 | size_t idx = strlen (kt->nonalpha_chars); | 
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| 140 |  | 
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| 141 | /* If you hit this limit, please don't just | 
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| 142 | increase the size of the field, instead | 
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| 143 | look for a better algorithm.  */ | 
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| 144 | if (idx >= sizeof (kt->nonalpha_chars) - 1) | 
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| 145 | abort (); | 
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| 146 | kt->nonalpha_chars[idx] = ke->name[i]; | 
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| 147 | kt->nonalpha_chars[idx+1] = 0; | 
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| 148 | } | 
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| 149 | } | 
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| 150 |  | 
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| 151 | /* FIXME: Need function to return count of keywords.  */ | 
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| 152 |  | 
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| 153 | /* Initialize a keyword table search. | 
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| 154 | SPEC is a specification of what to search for. | 
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| 155 | A value of NULL means to find every keyword. | 
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| 156 | Currently NULL is the only acceptable value [further specification | 
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| 157 | deferred]. | 
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| 158 | The result is an opaque data item used to record the search status. | 
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| 159 | It is passed to each call to cgen_keyword_search_next.  */ | 
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| 160 |  | 
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| 161 | CGEN_KEYWORD_SEARCH | 
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| 162 | cgen_keyword_search_init (kt, spec) | 
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| 163 | CGEN_KEYWORD *kt; | 
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| 164 | const char *spec; | 
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| 165 | { | 
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| 166 | CGEN_KEYWORD_SEARCH search; | 
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| 167 |  | 
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| 168 | /* FIXME: Need to specify format of PARAMS.  */ | 
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| 169 | if (spec != NULL) | 
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| 170 | abort (); | 
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| 171 |  | 
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| 172 | if (kt->name_hash_table == NULL) | 
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| 173 | build_keyword_hash_tables (kt); | 
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| 174 |  | 
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| 175 | search.table = kt; | 
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| 176 | search.spec = spec; | 
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| 177 | search.current_hash = 0; | 
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| 178 | search.current_entry = NULL; | 
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| 179 | return search; | 
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| 180 | } | 
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| 181 |  | 
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| 182 | /* Return the next keyword specified by SEARCH. | 
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| 183 | The result is the next entry or NULL if there are no more.  */ | 
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| 184 |  | 
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| 185 | const CGEN_KEYWORD_ENTRY * | 
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| 186 | cgen_keyword_search_next (search) | 
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| 187 | CGEN_KEYWORD_SEARCH *search; | 
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| 188 | { | 
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| 189 | /* Has search finished?  */ | 
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| 190 | if (search->current_hash == search->table->hash_table_size) | 
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| 191 | return NULL; | 
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| 192 |  | 
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| 193 | /* Search in progress?  */ | 
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| 194 | if (search->current_entry != NULL | 
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| 195 | /* Anything left on this hash chain?  */ | 
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| 196 | && search->current_entry->next_name != NULL) | 
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| 197 | { | 
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| 198 | search->current_entry = search->current_entry->next_name; | 
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| 199 | return search->current_entry; | 
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| 200 | } | 
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| 201 |  | 
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| 202 | /* Move to next hash chain [unless we haven't started yet].  */ | 
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| 203 | if (search->current_entry != NULL) | 
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| 204 | ++search->current_hash; | 
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| 205 |  | 
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| 206 | while (search->current_hash < search->table->hash_table_size) | 
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| 207 | { | 
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| 208 | search->current_entry = search->table->name_hash_table[search->current_hash]; | 
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| 209 | if (search->current_entry != NULL) | 
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| 210 | return search->current_entry; | 
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| 211 | ++search->current_hash; | 
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| 212 | } | 
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| 213 |  | 
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| 214 | return NULL; | 
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| 215 | } | 
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| 216 |  | 
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| 217 | /* Return first entry in hash chain for NAME. | 
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| 218 | If CASE_SENSITIVE_P is non-zero, return a case sensitive hash.  */ | 
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| 219 |  | 
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| 220 | static unsigned int | 
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| 221 | hash_keyword_name (kt, name, case_sensitive_p) | 
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| 222 | const CGEN_KEYWORD *kt; | 
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| 223 | const char *name; | 
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| 224 | int case_sensitive_p; | 
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| 225 | { | 
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| 226 | unsigned int hash; | 
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| 227 |  | 
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| 228 | if (case_sensitive_p) | 
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| 229 | for (hash = 0; *name; ++name) | 
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| 230 | hash = (hash * 97) + (unsigned char) *name; | 
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| 231 | else | 
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| 232 | for (hash = 0; *name; ++name) | 
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| 233 | hash = (hash * 97) + (unsigned char) TOLOWER (*name); | 
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| 234 | return hash % kt->hash_table_size; | 
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| 235 | } | 
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| 236 |  | 
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| 237 | /* Return first entry in hash chain for VALUE.  */ | 
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| 238 |  | 
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| 239 | static unsigned int | 
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| 240 | hash_keyword_value (kt, value) | 
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| 241 | const CGEN_KEYWORD *kt; | 
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| 242 | unsigned int value; | 
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| 243 | { | 
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| 244 | return value % kt->hash_table_size; | 
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| 245 | } | 
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| 246 |  | 
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| 247 | /* Build a keyword table's hash tables. | 
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| 248 | We probably needn't build the value hash table for the assembler when | 
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| 249 | we're using the disassembler, but we keep things simple.  */ | 
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| 250 |  | 
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| 251 | static void | 
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| 252 | build_keyword_hash_tables (kt) | 
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| 253 | CGEN_KEYWORD *kt; | 
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| 254 | { | 
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| 255 | int i; | 
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| 256 | /* Use the number of compiled in entries as an estimate for the | 
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| 257 | typical sized table [not too many added at runtime].  */ | 
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| 258 | unsigned int size = KEYWORD_HASH_SIZE (kt->num_init_entries); | 
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| 259 |  | 
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| 260 | kt->hash_table_size = size; | 
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| 261 | kt->name_hash_table = (CGEN_KEYWORD_ENTRY **) | 
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| 262 | xmalloc (size * sizeof (CGEN_KEYWORD_ENTRY *)); | 
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| 263 | memset (kt->name_hash_table, 0, size * sizeof (CGEN_KEYWORD_ENTRY *)); | 
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| 264 | kt->value_hash_table = (CGEN_KEYWORD_ENTRY **) | 
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| 265 | xmalloc (size * sizeof (CGEN_KEYWORD_ENTRY *)); | 
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| 266 | memset (kt->value_hash_table, 0, size * sizeof (CGEN_KEYWORD_ENTRY *)); | 
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| 267 |  | 
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| 268 | /* The table is scanned backwards as we want keywords appearing earlier to | 
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| 269 | be prefered over later ones.  */ | 
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| 270 | for (i = kt->num_init_entries - 1; i >= 0; --i) | 
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| 271 | cgen_keyword_add (kt, &kt->init_entries[i]); | 
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| 272 | } | 
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| 273 |  | 
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| 274 |  | 
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| 275 | /* Hardware support.  */ | 
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| 276 |  | 
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| 277 | /* Lookup a hardware element by its name. | 
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| 278 | Returns NULL if NAME is not supported by the currently selected | 
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| 279 | mach/isa.  */ | 
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| 280 |  | 
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| 281 | const CGEN_HW_ENTRY * | 
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| 282 | cgen_hw_lookup_by_name (cd, name) | 
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| 283 | CGEN_CPU_DESC cd; | 
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| 284 | const char *name; | 
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| 285 | { | 
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| 286 | unsigned int i; | 
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| 287 | const CGEN_HW_ENTRY **hw = cd->hw_table.entries; | 
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| 288 |  | 
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| 289 | for (i = 0; i < cd->hw_table.num_entries; ++i) | 
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| 290 | if (hw[i] && strcmp (name, hw[i]->name) == 0) | 
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| 291 | return hw[i]; | 
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| 292 |  | 
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| 293 | return NULL; | 
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| 294 | } | 
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| 295 |  | 
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| 296 | /* Lookup a hardware element by its number. | 
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| 297 | Hardware elements are enumerated, however it may be possible to add some | 
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| 298 | at runtime, thus HWNUM is not an enum type but rather an int. | 
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| 299 | Returns NULL if HWNUM is not supported by the currently selected mach.  */ | 
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| 300 |  | 
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| 301 | const CGEN_HW_ENTRY * | 
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| 302 | cgen_hw_lookup_by_num (cd, hwnum) | 
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| 303 | CGEN_CPU_DESC cd; | 
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| 304 | unsigned int hwnum; | 
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| 305 | { | 
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| 306 | unsigned int i; | 
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| 307 | const CGEN_HW_ENTRY **hw = cd->hw_table.entries; | 
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| 308 |  | 
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| 309 | /* ??? This can be speeded up.  */ | 
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| 310 | for (i = 0; i < cd->hw_table.num_entries; ++i) | 
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| 311 | if (hw[i] && hwnum == hw[i]->type) | 
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| 312 | return hw[i]; | 
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| 313 |  | 
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| 314 | return NULL; | 
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| 315 | } | 
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| 316 |  | 
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| 317 |  | 
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| 318 | /* Operand support.  */ | 
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| 319 |  | 
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| 320 | /* Lookup an operand by its name. | 
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| 321 | Returns NULL if NAME is not supported by the currently selected | 
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| 322 | mach/isa.  */ | 
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| 323 |  | 
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| 324 | const CGEN_OPERAND * | 
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| 325 | cgen_operand_lookup_by_name (cd, name) | 
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| 326 | CGEN_CPU_DESC cd; | 
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| 327 | const char *name; | 
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| 328 | { | 
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| 329 | unsigned int i; | 
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| 330 | const CGEN_OPERAND **op = cd->operand_table.entries; | 
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| 331 |  | 
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| 332 | for (i = 0; i < cd->operand_table.num_entries; ++i) | 
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| 333 | if (op[i] && strcmp (name, op[i]->name) == 0) | 
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| 334 | return op[i]; | 
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| 335 |  | 
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| 336 | return NULL; | 
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| 337 | } | 
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| 338 |  | 
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| 339 | /* Lookup an operand by its number. | 
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| 340 | Operands are enumerated, however it may be possible to add some | 
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| 341 | at runtime, thus OPNUM is not an enum type but rather an int. | 
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| 342 | Returns NULL if OPNUM is not supported by the currently selected | 
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| 343 | mach/isa.  */ | 
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| 344 |  | 
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| 345 | const CGEN_OPERAND * | 
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| 346 | cgen_operand_lookup_by_num (cd, opnum) | 
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| 347 | CGEN_CPU_DESC cd; | 
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| 348 | int opnum; | 
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| 349 | { | 
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| 350 | return cd->operand_table.entries[opnum]; | 
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| 351 | } | 
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| 352 |  | 
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| 353 |  | 
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| 354 | /* Instruction support.  */ | 
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| 355 |  | 
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| 356 | /* Return number of instructions.  This includes any added at runtime.  */ | 
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| 357 |  | 
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| 358 | int | 
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| 359 | cgen_insn_count (cd) | 
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| 360 | CGEN_CPU_DESC cd; | 
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| 361 | { | 
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| 362 | int count = cd->insn_table.num_init_entries; | 
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| 363 | CGEN_INSN_LIST *rt_insns = cd->insn_table.new_entries; | 
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| 364 |  | 
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| 365 | for ( ; rt_insns != NULL; rt_insns = rt_insns->next) | 
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| 366 | ++count; | 
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| 367 |  | 
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| 368 | return count; | 
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| 369 | } | 
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| 370 |  | 
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| 371 | /* Return number of macro-instructions. | 
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| 372 | This includes any added at runtime.  */ | 
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| 373 |  | 
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| 374 | int | 
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| 375 | cgen_macro_insn_count (cd) | 
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| 376 | CGEN_CPU_DESC cd; | 
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| 377 | { | 
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| 378 | int count = cd->macro_insn_table.num_init_entries; | 
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| 379 | CGEN_INSN_LIST *rt_insns = cd->macro_insn_table.new_entries; | 
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| 380 |  | 
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| 381 | for ( ; rt_insns != NULL; rt_insns = rt_insns->next) | 
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| 382 | ++count; | 
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| 383 |  | 
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| 384 | return count; | 
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| 385 | } | 
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| 386 |  | 
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| 387 | /* Cover function to read and properly byteswap an insn value.  */ | 
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| 388 |  | 
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| 389 | CGEN_INSN_INT | 
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| 390 | cgen_get_insn_value (cd, buf, length) | 
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| 391 | CGEN_CPU_DESC cd; | 
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| 392 | unsigned char *buf; | 
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| 393 | int length; | 
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| 394 | { | 
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| 395 | int big_p = (cd->insn_endian == CGEN_ENDIAN_BIG); | 
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| 396 | int insn_chunk_bitsize = cd->insn_chunk_bitsize; | 
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| 397 | CGEN_INSN_INT value = 0; | 
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| 398 |  | 
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| 399 | if (insn_chunk_bitsize != 0 && insn_chunk_bitsize < length) | 
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| 400 | { | 
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| 401 | /* We need to divide up the incoming value into insn_chunk_bitsize-length | 
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| 402 | segments, and endian-convert them, one at a time. */ | 
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| 403 | int i; | 
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| 404 |  | 
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| 405 | /* Enforce divisibility. */ | 
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| 406 | if ((length % insn_chunk_bitsize) != 0) | 
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| 407 | abort (); | 
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| 408 |  | 
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| 409 | for (i = 0; i < length; i += insn_chunk_bitsize) /* NB: i == bits */ | 
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| 410 | { | 
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| 411 | int index; | 
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| 412 | bfd_vma this_value; | 
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| 413 | index = i; /* NB: not dependent on endianness; opposite of cgen_put_insn_value! */ | 
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| 414 | this_value = bfd_get_bits (& buf[index / 8], insn_chunk_bitsize, big_p); | 
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| 415 | value = (value << insn_chunk_bitsize) | this_value; | 
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| 416 | } | 
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| 417 | } | 
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| 418 | else | 
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| 419 | { | 
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| 420 | value = bfd_get_bits (buf, length, cd->insn_endian == CGEN_ENDIAN_BIG); | 
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| 421 | } | 
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| 422 |  | 
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| 423 | return value; | 
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| 424 | } | 
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| 425 |  | 
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| 426 | /* Cover function to store an insn value properly byteswapped.  */ | 
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| 427 |  | 
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| 428 | void | 
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| 429 | cgen_put_insn_value (cd, buf, length, value) | 
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| 430 | CGEN_CPU_DESC cd; | 
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| 431 | unsigned char *buf; | 
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| 432 | int length; | 
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| 433 | CGEN_INSN_INT value; | 
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| 434 | { | 
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| 435 | int big_p = (cd->insn_endian == CGEN_ENDIAN_BIG); | 
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| 436 | int insn_chunk_bitsize = cd->insn_chunk_bitsize; | 
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| 437 |  | 
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| 438 | if (insn_chunk_bitsize != 0 && insn_chunk_bitsize < length) | 
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| 439 | { | 
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| 440 | /* We need to divide up the incoming value into insn_chunk_bitsize-length | 
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| 441 | segments, and endian-convert them, one at a time. */ | 
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| 442 | int i; | 
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| 443 |  | 
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| 444 | /* Enforce divisibility. */ | 
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| 445 | if ((length % insn_chunk_bitsize) != 0) | 
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| 446 | abort (); | 
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| 447 |  | 
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| 448 | for (i = 0; i < length; i += insn_chunk_bitsize) /* NB: i == bits */ | 
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| 449 | { | 
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| 450 | int index; | 
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| 451 | index = (length - insn_chunk_bitsize - i); /* NB: not dependent on endianness! */ | 
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| 452 | bfd_put_bits ((bfd_vma) value, & buf[index / 8], insn_chunk_bitsize, big_p); | 
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| 453 | value >>= insn_chunk_bitsize; | 
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| 454 | } | 
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| 455 | } | 
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| 456 | else | 
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| 457 | { | 
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| 458 | bfd_put_bits ((bfd_vma) value, buf, length, big_p); | 
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| 459 | } | 
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| 460 | } | 
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| 461 |  | 
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| 462 |  | 
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| 463 | /* Look up instruction INSN_*_VALUE and extract its fields. | 
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| 464 | INSN_INT_VALUE is used if CGEN_INT_INSN_P. | 
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| 465 | Otherwise INSN_BYTES_VALUE is used. | 
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| 466 | INSN, if non-null, is the insn table entry. | 
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| 467 | Otherwise INSN_*_VALUE is examined to compute it. | 
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| 468 | LENGTH is the bit length of INSN_*_VALUE if known, otherwise 0. | 
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| 469 | 0 is only valid if `insn == NULL && ! CGEN_INT_INSN_P'. | 
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| 470 | If INSN != NULL, LENGTH must be valid. | 
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| 471 | ALIAS_P is non-zero if alias insns are to be included in the search. | 
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| 472 |  | 
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| 473 | The result is a pointer to the insn table entry, or NULL if the instruction | 
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| 474 | wasn't recognized.  */ | 
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| 475 |  | 
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| 476 | /* ??? Will need to be revisited for VLIW architectures.  */ | 
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| 477 |  | 
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| 478 | const CGEN_INSN * | 
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| 479 | cgen_lookup_insn (cd, insn, insn_int_value, insn_bytes_value, length, fields, | 
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| 480 | alias_p) | 
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| 481 | CGEN_CPU_DESC cd; | 
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| 482 | const CGEN_INSN *insn; | 
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| 483 | CGEN_INSN_INT insn_int_value; | 
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| 484 | /* ??? CGEN_INSN_BYTES would be a nice type name to use here.  */ | 
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| 485 | unsigned char *insn_bytes_value; | 
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| 486 | int length; | 
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| 487 | CGEN_FIELDS *fields; | 
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| 488 | int alias_p; | 
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| 489 | { | 
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| 490 | unsigned char *buf; | 
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| 491 | CGEN_INSN_INT base_insn; | 
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| 492 | CGEN_EXTRACT_INFO ex_info; | 
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| 493 | CGEN_EXTRACT_INFO *info; | 
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| 494 |  | 
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| 495 | if (cd->int_insn_p) | 
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| 496 | { | 
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| 497 | info = NULL; | 
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| 498 | buf = (unsigned char *) alloca (cd->max_insn_bitsize / 8); | 
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| 499 | cgen_put_insn_value (cd, buf, length, insn_int_value); | 
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| 500 | base_insn = insn_int_value; | 
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| 501 | } | 
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| 502 | else | 
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| 503 | { | 
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| 504 | info = &ex_info; | 
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| 505 | ex_info.dis_info = NULL; | 
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| 506 | ex_info.insn_bytes = insn_bytes_value; | 
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| 507 | ex_info.valid = -1; | 
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| 508 | buf = insn_bytes_value; | 
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| 509 | base_insn = cgen_get_insn_value (cd, buf, length); | 
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| 510 | } | 
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| 511 |  | 
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| 512 | if (!insn) | 
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| 513 | { | 
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| 514 | const CGEN_INSN_LIST *insn_list; | 
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| 515 |  | 
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| 516 | /* The instructions are stored in hash lists. | 
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| 517 | Pick the first one and keep trying until we find the right one.  */ | 
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| 518 |  | 
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| 519 | insn_list = cgen_dis_lookup_insn (cd, buf, base_insn); | 
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| 520 | while (insn_list != NULL) | 
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| 521 | { | 
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| 522 | insn = insn_list->insn; | 
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| 523 |  | 
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| 524 | if (alias_p | 
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| 525 | /* FIXME: Ensure ALIAS attribute always has same index.  */ | 
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| 526 | || ! CGEN_INSN_ATTR_VALUE (insn, CGEN_INSN_ALIAS)) | 
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| 527 | { | 
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| 528 | /* Basic bit mask must be correct.  */ | 
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| 529 | /* ??? May wish to allow target to defer this check until the | 
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| 530 | extract handler.  */ | 
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| 531 | if ((base_insn & CGEN_INSN_BASE_MASK (insn)) | 
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| 532 | == CGEN_INSN_BASE_VALUE (insn)) | 
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| 533 | { | 
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| 534 | /* ??? 0 is passed for `pc' */ | 
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| 535 | int elength = CGEN_EXTRACT_FN (cd, insn) | 
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| 536 | (cd, insn, info, base_insn, fields, (bfd_vma) 0); | 
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| 537 | if (elength > 0) | 
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| 538 | { | 
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| 539 | /* sanity check */ | 
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| 540 | if (length != 0 && length != elength) | 
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| 541 | abort (); | 
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| 542 | return insn; | 
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| 543 | } | 
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| 544 | } | 
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| 545 | } | 
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| 546 |  | 
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| 547 | insn_list = insn_list->next; | 
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| 548 | } | 
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| 549 | } | 
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| 550 | else | 
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| 551 | { | 
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| 552 | /* Sanity check: can't pass an alias insn if ! alias_p.  */ | 
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| 553 | if (! alias_p | 
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| 554 | && CGEN_INSN_ATTR_VALUE (insn, CGEN_INSN_ALIAS)) | 
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| 555 | abort (); | 
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| 556 | /* Sanity check: length must be correct.  */ | 
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| 557 | if (length != CGEN_INSN_BITSIZE (insn)) | 
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| 558 | abort (); | 
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| 559 |  | 
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| 560 | /* ??? 0 is passed for `pc' */ | 
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| 561 | length = CGEN_EXTRACT_FN (cd, insn) | 
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| 562 | (cd, insn, info, base_insn, fields, (bfd_vma) 0); | 
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| 563 | /* Sanity check: must succeed. | 
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| 564 | Could relax this later if it ever proves useful.  */ | 
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| 565 | if (length == 0) | 
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| 566 | abort (); | 
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| 567 | return insn; | 
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| 568 | } | 
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| 569 |  | 
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| 570 | return NULL; | 
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| 571 | } | 
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| 572 |  | 
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| 573 | /* Fill in the operand instances used by INSN whose operands are FIELDS. | 
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| 574 | INDICES is a pointer to a buffer of MAX_OPERAND_INSTANCES ints to be filled | 
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| 575 | in.  */ | 
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| 576 |  | 
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| 577 | void | 
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| 578 | cgen_get_insn_operands (cd, insn, fields, indices) | 
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| 579 | CGEN_CPU_DESC cd; | 
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| 580 | const CGEN_INSN *insn; | 
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| 581 | const CGEN_FIELDS *fields; | 
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| 582 | int *indices; | 
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| 583 | { | 
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| 584 | const CGEN_OPINST *opinst; | 
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| 585 | int i; | 
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| 586 |  | 
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| 587 | if (insn->opinst == NULL) | 
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| 588 | abort (); | 
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| 589 | for (i = 0, opinst = insn->opinst; opinst->type != CGEN_OPINST_END; ++i, ++opinst) | 
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| 590 | { | 
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| 591 | enum cgen_operand_type op_type = opinst->op_type; | 
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| 592 | if (op_type == CGEN_OPERAND_NIL) | 
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| 593 | indices[i] = opinst->index; | 
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| 594 | else | 
|---|
| 595 | indices[i] = (*cd->get_int_operand) (cd, op_type, fields); | 
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| 596 | } | 
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| 597 | } | 
|---|
| 598 |  | 
|---|
| 599 | /* Cover function to cgen_get_insn_operands when either INSN or FIELDS | 
|---|
| 600 | isn't known. | 
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| 601 | The INSN, INSN_*_VALUE, and LENGTH arguments are passed to | 
|---|
| 602 | cgen_lookup_insn unchanged. | 
|---|
| 603 | INSN_INT_VALUE is used if CGEN_INT_INSN_P. | 
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| 604 | Otherwise INSN_BYTES_VALUE is used. | 
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| 605 |  | 
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| 606 | The result is the insn table entry or NULL if the instruction wasn't | 
|---|
| 607 | recognized.  */ | 
|---|
| 608 |  | 
|---|
| 609 | const CGEN_INSN * | 
|---|
| 610 | cgen_lookup_get_insn_operands (cd, insn, insn_int_value, insn_bytes_value, | 
|---|
| 611 | length, indices, fields) | 
|---|
| 612 | CGEN_CPU_DESC cd; | 
|---|
| 613 | const CGEN_INSN *insn; | 
|---|
| 614 | CGEN_INSN_INT insn_int_value; | 
|---|
| 615 | /* ??? CGEN_INSN_BYTES would be a nice type name to use here.  */ | 
|---|
| 616 | unsigned char *insn_bytes_value; | 
|---|
| 617 | int length; | 
|---|
| 618 | int *indices; | 
|---|
| 619 | CGEN_FIELDS *fields; | 
|---|
| 620 | { | 
|---|
| 621 | /* Pass non-zero for ALIAS_P only if INSN != NULL. | 
|---|
| 622 | If INSN == NULL, we want a real insn.  */ | 
|---|
| 623 | insn = cgen_lookup_insn (cd, insn, insn_int_value, insn_bytes_value, | 
|---|
| 624 | length, fields, insn != NULL); | 
|---|
| 625 | if (! insn) | 
|---|
| 626 | return NULL; | 
|---|
| 627 |  | 
|---|
| 628 | cgen_get_insn_operands (cd, insn, fields, indices); | 
|---|
| 629 | return insn; | 
|---|
| 630 | } | 
|---|
| 631 |  | 
|---|
| 632 | /* Allow signed overflow of instruction fields.  */ | 
|---|
| 633 | void | 
|---|
| 634 | cgen_set_signed_overflow_ok (cd) | 
|---|
| 635 | CGEN_CPU_DESC cd; | 
|---|
| 636 | { | 
|---|
| 637 | cd->signed_overflow_ok_p = 1; | 
|---|
| 638 | } | 
|---|
| 639 |  | 
|---|
| 640 | /* Generate an error message if a signed field in an instruction overflows.  */ | 
|---|
| 641 | void | 
|---|
| 642 | cgen_clear_signed_overflow_ok (cd) | 
|---|
| 643 | CGEN_CPU_DESC cd; | 
|---|
| 644 | { | 
|---|
| 645 | cd->signed_overflow_ok_p = 0; | 
|---|
| 646 | } | 
|---|
| 647 |  | 
|---|
| 648 | /* Will an error message be generated if a signed field in an instruction overflows ? */ | 
|---|
| 649 | unsigned int | 
|---|
| 650 | cgen_signed_overflow_ok_p (cd) | 
|---|
| 651 | CGEN_CPU_DESC cd; | 
|---|
| 652 | { | 
|---|
| 653 | return cd->signed_overflow_ok_p; | 
|---|
| 654 | } | 
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