| 1 | /* Disassemble SH64 instructions. | 
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| 2 | Copyright 2000, 2001, 2002, 2003 Free Software Foundation, Inc. | 
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| 3 |  | 
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| 4 | This program is free software; you can redistribute it and/or modify | 
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| 5 | it under the terms of the GNU General Public License as published by | 
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| 6 | the Free Software Foundation; either version 2 of the License, or | 
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| 7 | (at your option) any later version. | 
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| 8 |  | 
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| 9 | This program is distributed in the hope that it will be useful, | 
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| 10 | but WITHOUT ANY WARRANTY; without even the implied warranty of | 
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| 11 | MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the | 
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| 12 | GNU General Public License for more details. | 
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| 13 |  | 
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| 14 | You should have received a copy of the GNU General Public License | 
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| 15 | along with this program; if not, write to the Free Software | 
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| 16 | Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.  */ | 
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| 17 |  | 
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| 18 | #include <stdio.h> | 
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| 19 |  | 
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| 20 | #include "dis-asm.h" | 
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| 21 | #include "sysdep.h" | 
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| 22 | #include "sh64-opc.h" | 
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| 23 | #include "libiberty.h" | 
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| 24 |  | 
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| 25 | /* We need to refer to the ELF header structure.  */ | 
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| 26 | #include "elf-bfd.h" | 
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| 27 | #include "elf/sh.h" | 
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| 28 | #include "elf32-sh64.h" | 
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| 29 |  | 
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| 30 | #define ELF_MODE32_CODE_LABEL_P(SYM) \ | 
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| 31 | (((elf_symbol_type *) (SYM))->internal_elf_sym.st_other & STO_SH5_ISA32) | 
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| 32 |  | 
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| 33 | #define SAVED_MOVI_R(INFO) \ | 
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| 34 | (((struct sh64_disassemble_info *) ((INFO)->private_data))->address_reg) | 
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| 35 |  | 
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| 36 | #define SAVED_MOVI_IMM(INFO) \ | 
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| 37 | (((struct sh64_disassemble_info *) ((INFO)->private_data))->built_address) | 
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| 38 |  | 
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| 39 | struct sh64_disassemble_info | 
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| 40 | { | 
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| 41 | /* When we see a MOVI, we save the register and the value, and merge a | 
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| 42 | subsequent SHORI and display the address, if there is one.  */ | 
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| 43 | unsigned int address_reg; | 
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| 44 | bfd_signed_vma built_address; | 
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| 45 |  | 
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| 46 | /* This is the range decriptor for the current address.  It is kept | 
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| 47 | around for the next call.  */ | 
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| 48 | sh64_elf_crange crange; | 
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| 49 | }; | 
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| 50 |  | 
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| 51 | /* Each item in the table is a mask to indicate which bits to be set | 
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| 52 | to determine an instruction's operator. | 
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| 53 | The index is as same as the instruction in the opcode table. | 
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| 54 | Note that some archs have this as a field in the opcode table.  */ | 
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| 55 | static unsigned long *shmedia_opcode_mask_table; | 
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| 56 |  | 
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| 57 | static void initialize_shmedia_opcode_mask_table PARAMS ((void)); | 
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| 58 | static int print_insn_shmedia PARAMS ((bfd_vma, disassemble_info *)); | 
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| 59 | static const char *creg_name PARAMS ((int)); | 
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| 60 | static bfd_boolean init_sh64_disasm_info PARAMS ((struct disassemble_info *)); | 
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| 61 | static enum sh64_elf_cr_type sh64_get_contents_type_disasm | 
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| 62 | PARAMS ((bfd_vma, struct disassemble_info *)); | 
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| 63 |  | 
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| 64 | /* Initialize the SH64 opcode mask table for each instruction in SHmedia | 
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| 65 | mode.  */ | 
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| 66 |  | 
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| 67 | static void | 
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| 68 | initialize_shmedia_opcode_mask_table () | 
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| 69 | { | 
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| 70 | int n_opc; | 
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| 71 | int n; | 
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| 72 |  | 
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| 73 | /* Calculate number of opcodes.  */ | 
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| 74 | for (n_opc = 0; shmedia_table[n_opc].name != NULL; n_opc++) | 
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| 75 | ; | 
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| 76 |  | 
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| 77 | shmedia_opcode_mask_table | 
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| 78 | = xmalloc (sizeof (shmedia_opcode_mask_table[0]) * n_opc); | 
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| 79 |  | 
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| 80 | for (n = 0; n < n_opc; n++) | 
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| 81 | { | 
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| 82 | int i; | 
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| 83 |  | 
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| 84 | unsigned long mask = 0; | 
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| 85 |  | 
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| 86 | for (i = 0; shmedia_table[n].arg[i] != A_NONE; i++) | 
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| 87 | { | 
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| 88 | int offset = shmedia_table[n].nibbles[i]; | 
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| 89 | int length; | 
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| 90 |  | 
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| 91 | switch (shmedia_table[n].arg[i]) | 
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| 92 | { | 
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| 93 | case A_GREG_M: | 
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| 94 | case A_GREG_N: | 
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| 95 | case A_GREG_D: | 
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| 96 | case A_CREG_K: | 
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| 97 | case A_CREG_J: | 
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| 98 | case A_FREG_G: | 
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| 99 | case A_FREG_H: | 
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| 100 | case A_FREG_F: | 
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| 101 | case A_DREG_G: | 
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| 102 | case A_DREG_H: | 
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| 103 | case A_DREG_F: | 
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| 104 | case A_FMREG_G: | 
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| 105 | case A_FMREG_H: | 
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| 106 | case A_FMREG_F: | 
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| 107 | case A_FPREG_G: | 
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| 108 | case A_FPREG_H: | 
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| 109 | case A_FPREG_F: | 
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| 110 | case A_FVREG_G: | 
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| 111 | case A_FVREG_H: | 
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| 112 | case A_FVREG_F: | 
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| 113 | case A_REUSE_PREV: | 
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| 114 | length = 6; | 
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| 115 | break; | 
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| 116 |  | 
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| 117 | case A_TREG_A: | 
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| 118 | case A_TREG_B: | 
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| 119 | length = 3; | 
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| 120 | break; | 
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| 121 |  | 
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| 122 | case A_IMMM: | 
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| 123 | abort (); | 
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| 124 | break; | 
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| 125 |  | 
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| 126 | case A_IMMU5: | 
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| 127 | length = 5; | 
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| 128 | break; | 
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| 129 |  | 
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| 130 | case A_IMMS6: | 
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| 131 | case A_IMMU6: | 
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| 132 | case A_IMMS6BY32: | 
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| 133 | length = 6; | 
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| 134 | break; | 
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| 135 |  | 
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| 136 | case A_IMMS10: | 
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| 137 | case A_IMMS10BY1: | 
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| 138 | case A_IMMS10BY2: | 
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| 139 | case A_IMMS10BY4: | 
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| 140 | case A_IMMS10BY8: | 
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| 141 | length = 10; | 
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| 142 | break; | 
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| 143 |  | 
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| 144 | case A_IMMU16: | 
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| 145 | case A_IMMS16: | 
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| 146 | case A_PCIMMS16BY4: | 
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| 147 | case A_PCIMMS16BY4_PT: | 
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| 148 | length = 16; | 
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| 149 | break; | 
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| 150 |  | 
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| 151 | default: | 
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| 152 | abort (); | 
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| 153 | length = 0; | 
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| 154 | break; | 
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| 155 | } | 
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| 156 |  | 
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| 157 | if (length != 0) | 
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| 158 | mask |= (0xffffffff >> (32 - length)) << offset; | 
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| 159 | } | 
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| 160 | shmedia_opcode_mask_table[n] = 0xffffffff & ~mask; | 
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| 161 | } | 
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| 162 | } | 
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| 163 |  | 
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| 164 | /* Get a predefined control-register-name, or return NULL.  */ | 
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| 165 |  | 
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| 166 | const char * | 
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| 167 | creg_name (cregno) | 
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| 168 | int cregno; | 
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| 169 | { | 
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| 170 | const shmedia_creg_info *cregp; | 
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| 171 |  | 
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| 172 | /* If control register usage is common enough, change this to search a | 
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| 173 | hash-table.  */ | 
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| 174 | for (cregp = shmedia_creg_table; cregp->name != NULL; cregp++) | 
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| 175 | { | 
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| 176 | if (cregp->cregno == cregno) | 
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| 177 | return cregp->name; | 
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| 178 | } | 
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| 179 |  | 
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| 180 | return NULL; | 
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| 181 | } | 
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| 182 |  | 
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| 183 | /* Main function to disassemble SHmedia instructions.  */ | 
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| 184 |  | 
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| 185 | static int | 
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| 186 | print_insn_shmedia (memaddr, info) | 
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| 187 | bfd_vma memaddr; | 
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| 188 | struct disassemble_info *info; | 
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| 189 | { | 
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| 190 | fprintf_ftype fprintf_fn = info->fprintf_func; | 
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| 191 | void *stream = info->stream; | 
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| 192 |  | 
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| 193 | unsigned char insn[4]; | 
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| 194 | unsigned long instruction; | 
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| 195 | int status; | 
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| 196 | int n; | 
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| 197 | const shmedia_opcode_info *op; | 
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| 198 | int i; | 
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| 199 | unsigned int r = 0; | 
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| 200 | long imm = 0; | 
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| 201 | bfd_vma disp_pc_addr; | 
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| 202 |  | 
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| 203 | status = info->read_memory_func (memaddr, insn, 4, info); | 
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| 204 |  | 
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| 205 | /* If we can't read four bytes, something is wrong.  Display any data we | 
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| 206 | can get as .byte:s.  */ | 
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| 207 | if (status != 0) | 
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| 208 | { | 
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| 209 | int i; | 
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| 210 |  | 
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| 211 | for (i = 0; i < 3; i++) | 
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| 212 | { | 
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| 213 | status = info->read_memory_func (memaddr + i, insn, 1, info); | 
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| 214 | if (status != 0) | 
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| 215 | break; | 
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| 216 | (*fprintf_fn) (stream, "%s0x%02x", | 
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| 217 | i == 0 ? ".byte " : ", ", | 
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| 218 | insn[0]); | 
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| 219 | } | 
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| 220 |  | 
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| 221 | return i ? i : -1; | 
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| 222 | } | 
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| 223 |  | 
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| 224 | /* Rearrange the bytes to make up an instruction.  */ | 
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| 225 | if (info->endian == BFD_ENDIAN_LITTLE) | 
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| 226 | instruction = bfd_getl32 (insn); | 
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| 227 | else | 
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| 228 | instruction = bfd_getb32 (insn); | 
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| 229 |  | 
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| 230 | /* FIXME: Searching could be implemented using a hash on relevant | 
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| 231 | fields.  */ | 
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| 232 | for (n = 0, op = shmedia_table; | 
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| 233 | op->name != NULL | 
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| 234 | && ((instruction & shmedia_opcode_mask_table[n]) != op->opcode_base); | 
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| 235 | n++, op++) | 
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| 236 | ; | 
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| 237 |  | 
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| 238 | /* FIXME: We should also check register number constraints.  */ | 
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| 239 | if (op->name == NULL) | 
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| 240 | { | 
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| 241 | fprintf_fn (stream, ".long 0x%08x", instruction); | 
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| 242 | return 4; | 
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| 243 | } | 
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| 244 |  | 
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| 245 | fprintf_fn (stream, "%s\t", op->name); | 
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| 246 |  | 
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| 247 | for (i = 0; i < 3 && op->arg[i] != A_NONE; i++) | 
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| 248 | { | 
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| 249 | unsigned long temp = instruction >> op->nibbles[i]; | 
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| 250 | int by_number = 0; | 
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| 251 |  | 
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| 252 | if (i > 0 && op->arg[i] != A_REUSE_PREV) | 
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| 253 | fprintf_fn (stream, ","); | 
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| 254 |  | 
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| 255 | switch (op->arg[i]) | 
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| 256 | { | 
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| 257 | case A_REUSE_PREV: | 
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| 258 | continue; | 
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| 259 |  | 
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| 260 | case A_GREG_M: | 
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| 261 | case A_GREG_N: | 
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| 262 | case A_GREG_D: | 
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| 263 | r = temp & 0x3f; | 
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| 264 | fprintf_fn (stream, "r%d", r); | 
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| 265 | break; | 
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| 266 |  | 
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| 267 | case A_FVREG_F: | 
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| 268 | case A_FVREG_G: | 
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| 269 | case A_FVREG_H: | 
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| 270 | r = temp & 0x3f; | 
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| 271 | fprintf_fn (stream, "fv%d", r); | 
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| 272 | break; | 
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| 273 |  | 
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| 274 | case A_FPREG_F: | 
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| 275 | case A_FPREG_G: | 
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| 276 | case A_FPREG_H: | 
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| 277 | r = temp & 0x3f; | 
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| 278 | fprintf_fn (stream, "fp%d", r); | 
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| 279 | break; | 
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| 280 |  | 
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| 281 | case A_FMREG_F: | 
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| 282 | case A_FMREG_G: | 
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| 283 | case A_FMREG_H: | 
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| 284 | r = temp & 0x3f; | 
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| 285 | fprintf_fn (stream, "mtrx%d", r); | 
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| 286 | break; | 
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| 287 |  | 
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| 288 | case A_CREG_K: | 
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| 289 | case A_CREG_J: | 
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| 290 | { | 
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| 291 | const char *name; | 
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| 292 | r = temp & 0x3f; | 
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| 293 |  | 
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| 294 | name = creg_name (r); | 
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| 295 |  | 
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| 296 | if (name != NULL) | 
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| 297 | fprintf_fn (stream, "%s", name); | 
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| 298 | else | 
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| 299 | fprintf_fn (stream, "cr%d", r); | 
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| 300 | } | 
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| 301 | break; | 
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| 302 |  | 
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| 303 | case A_FREG_G: | 
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| 304 | case A_FREG_H: | 
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| 305 | case A_FREG_F: | 
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| 306 | r = temp & 0x3f; | 
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| 307 | fprintf_fn (stream, "fr%d", r); | 
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| 308 | break; | 
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| 309 |  | 
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| 310 | case A_DREG_G: | 
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| 311 | case A_DREG_H: | 
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| 312 | case A_DREG_F: | 
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| 313 | r = temp & 0x3f; | 
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| 314 | fprintf_fn (stream, "dr%d", r); | 
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| 315 | break; | 
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| 316 |  | 
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| 317 | case A_TREG_A: | 
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| 318 | case A_TREG_B: | 
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| 319 | r = temp & 0x7; | 
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| 320 | fprintf_fn (stream, "tr%d", r); | 
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| 321 | break; | 
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| 322 |  | 
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| 323 | /* A signed 6-bit number.  */ | 
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| 324 | case A_IMMS6: | 
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| 325 | imm = temp & 0x3f; | 
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| 326 | if (imm & (unsigned long) 0x20) | 
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| 327 | imm |= ~(unsigned long) 0x3f; | 
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| 328 | fprintf_fn (stream, "%d", imm); | 
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| 329 | break; | 
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| 330 |  | 
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| 331 | /* A signed 6-bit number, multiplied by 32 when used.  */ | 
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| 332 | case A_IMMS6BY32: | 
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| 333 | imm = temp & 0x3f; | 
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| 334 | if (imm & (unsigned long) 0x20) | 
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| 335 | imm |= ~(unsigned long) 0x3f; | 
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| 336 | fprintf_fn (stream, "%d", imm * 32); | 
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| 337 | break; | 
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| 338 |  | 
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| 339 | /* A signed 10-bit number, multiplied by 8 when used.  */ | 
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| 340 | case A_IMMS10BY8: | 
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| 341 | by_number++; | 
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| 342 | /* Fall through.  */ | 
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| 343 |  | 
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| 344 | /* A signed 10-bit number, multiplied by 4 when used.  */ | 
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| 345 | case A_IMMS10BY4: | 
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| 346 | by_number++; | 
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| 347 | /* Fall through.  */ | 
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| 348 |  | 
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| 349 | /* A signed 10-bit number, multiplied by 2 when used.  */ | 
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| 350 | case A_IMMS10BY2: | 
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| 351 | by_number++; | 
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| 352 | /* Fall through.  */ | 
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| 353 |  | 
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| 354 | /* A signed 10-bit number.  */ | 
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| 355 | case A_IMMS10: | 
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| 356 | case A_IMMS10BY1: | 
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| 357 | imm = temp & 0x3ff; | 
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| 358 | if (imm & (unsigned long) 0x200) | 
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| 359 | imm |= ~(unsigned long) 0x3ff; | 
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| 360 | imm <<= by_number; | 
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| 361 | fprintf_fn (stream, "%d", imm); | 
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| 362 | break; | 
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| 363 |  | 
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| 364 | /* A signed 16-bit number.  */ | 
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| 365 | case A_IMMS16: | 
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| 366 | imm = temp & 0xffff; | 
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| 367 | if (imm & (unsigned long) 0x8000) | 
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| 368 | imm |= ~((unsigned long) 0xffff); | 
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| 369 | fprintf_fn (stream, "%d", imm); | 
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| 370 | break; | 
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| 371 |  | 
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| 372 | /* A PC-relative signed 16-bit number, multiplied by 4 when | 
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| 373 | used.  */ | 
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| 374 | case A_PCIMMS16BY4: | 
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| 375 | imm = temp & 0xffff;  /* 16 bits */ | 
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| 376 | if (imm & (unsigned long) 0x8000) | 
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| 377 | imm |= ~(unsigned long) 0xffff; | 
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| 378 | imm <<= 2; | 
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| 379 | disp_pc_addr = (bfd_vma) imm + memaddr; | 
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| 380 | (*info->print_address_func) (disp_pc_addr, info); | 
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| 381 | break; | 
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| 382 |  | 
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| 383 | /* An unsigned 5-bit number.  */ | 
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| 384 | case A_IMMU5: | 
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| 385 | imm = temp & 0x1f; | 
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| 386 | fprintf_fn (stream, "%d", imm); | 
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| 387 | break; | 
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| 388 |  | 
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| 389 | /* An unsigned 6-bit number.  */ | 
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| 390 | case A_IMMU6: | 
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| 391 | imm = temp & 0x3f; | 
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| 392 | fprintf_fn (stream, "%d", imm); | 
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| 393 | break; | 
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| 394 |  | 
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| 395 | /* An unsigned 16-bit number.  */ | 
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| 396 | case A_IMMU16: | 
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| 397 | imm = temp & 0xffff; | 
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| 398 | fprintf_fn (stream, "%d", imm); | 
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| 399 | break; | 
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| 400 |  | 
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| 401 | default: | 
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| 402 | abort (); | 
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| 403 | break; | 
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| 404 | } | 
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| 405 | } | 
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| 406 |  | 
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| 407 | /* FIXME: Looks like 32-bit values only are handled. | 
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| 408 | FIXME: PC-relative numbers aren't handled correctly.  */ | 
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| 409 | if (op->opcode_base == (unsigned long) SHMEDIA_SHORI_OPC | 
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| 410 | && SAVED_MOVI_R (info) == r) | 
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| 411 | { | 
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| 412 | asection *section = info->section; | 
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| 413 |  | 
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| 414 | /* Most callers do not set the section field correctly yet.  Revert | 
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| 415 | to getting the section from symbols, if any. */ | 
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| 416 | if (section == NULL | 
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| 417 | && info->symbols != NULL | 
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| 418 | && bfd_asymbol_flavour (info->symbols[0]) == bfd_target_elf_flavour | 
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| 419 | && ! bfd_is_und_section (bfd_get_section (info->symbols[0])) | 
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| 420 | && ! bfd_is_abs_section (bfd_get_section (info->symbols[0]))) | 
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| 421 | section = bfd_get_section (info->symbols[0]); | 
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| 422 |  | 
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| 423 | /* Only guess addresses when the contents of this section is fully | 
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| 424 | relocated.  Otherwise, the value will be zero or perhaps even | 
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| 425 | bogus.  */ | 
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| 426 | if (section == NULL | 
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| 427 | || section->owner == NULL | 
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| 428 | || elf_elfheader (section->owner)->e_type == ET_EXEC) | 
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| 429 | { | 
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| 430 | bfd_signed_vma shori_addr; | 
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| 431 |  | 
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| 432 | shori_addr = SAVED_MOVI_IMM (info) << 16; | 
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| 433 | shori_addr |= imm; | 
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| 434 |  | 
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| 435 | fprintf_fn (stream, "\t! 0x"); | 
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| 436 | (*info->print_address_func) (shori_addr, info); | 
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| 437 | } | 
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| 438 | } | 
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| 439 |  | 
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| 440 | if (op->opcode_base == SHMEDIA_MOVI_OPC) | 
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| 441 | { | 
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| 442 | SAVED_MOVI_IMM (info) = imm; | 
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| 443 | SAVED_MOVI_R (info) = r; | 
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| 444 | } | 
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| 445 | else | 
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| 446 | { | 
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| 447 | SAVED_MOVI_IMM (info) = 0; | 
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| 448 | SAVED_MOVI_R (info) = 255; | 
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| 449 | } | 
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| 450 |  | 
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| 451 | return 4; | 
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| 452 | } | 
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| 453 |  | 
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| 454 | /* Check the type of contents about to be disassembled.  This is like | 
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| 455 | sh64_get_contents_type (which may be called from here), except that it | 
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| 456 | takes the same arguments as print_insn_* and does what can be done if | 
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| 457 | no section is available.  */ | 
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| 458 |  | 
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| 459 | static enum sh64_elf_cr_type | 
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| 460 | sh64_get_contents_type_disasm (memaddr, info) | 
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| 461 | bfd_vma memaddr; | 
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| 462 | struct disassemble_info *info; | 
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| 463 | { | 
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| 464 | struct sh64_disassemble_info *sh64_infop = info->private_data; | 
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| 465 |  | 
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| 466 | /* Perhaps we have a region from a previous probe and it still counts | 
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| 467 | for this address?  */ | 
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| 468 | if (sh64_infop->crange.cr_type != CRT_NONE | 
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| 469 | && memaddr >= sh64_infop->crange.cr_addr | 
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| 470 | && memaddr < sh64_infop->crange.cr_addr + sh64_infop->crange.cr_size) | 
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| 471 | return sh64_infop->crange.cr_type; | 
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| 472 |  | 
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| 473 | /* If we have a section, try and use it.  */ | 
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| 474 | if (info->section | 
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| 475 | && bfd_get_flavour (info->section->owner) == bfd_target_elf_flavour) | 
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| 476 | { | 
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| 477 | enum sh64_elf_cr_type cr_type | 
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| 478 | = sh64_get_contents_type (info->section, memaddr, | 
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| 479 | &sh64_infop->crange); | 
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| 480 |  | 
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| 481 | if (cr_type != CRT_NONE) | 
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| 482 | return cr_type; | 
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| 483 | } | 
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| 484 |  | 
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| 485 | /* If we have symbols, we can try and get at a section from *that*.  */ | 
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| 486 | if (info->symbols != NULL | 
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| 487 | && bfd_asymbol_flavour (info->symbols[0]) == bfd_target_elf_flavour | 
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| 488 | && ! bfd_is_und_section (bfd_get_section (info->symbols[0])) | 
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| 489 | && ! bfd_is_abs_section (bfd_get_section (info->symbols[0]))) | 
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| 490 | { | 
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| 491 | enum sh64_elf_cr_type cr_type | 
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| 492 | = sh64_get_contents_type (bfd_get_section (info->symbols[0]), | 
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| 493 | memaddr, &sh64_infop->crange); | 
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| 494 |  | 
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| 495 | if (cr_type != CRT_NONE) | 
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| 496 | return cr_type; | 
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| 497 | } | 
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| 498 |  | 
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| 499 | /* We can make a reasonable guess based on the st_other field of a | 
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| 500 | symbol; for a BranchTarget this is marked as STO_SH5_ISA32 and then | 
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| 501 | it's most probably code there.  */ | 
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| 502 | if (info->symbols | 
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| 503 | && bfd_asymbol_flavour (info->symbols[0]) == bfd_target_elf_flavour | 
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| 504 | && elf_symbol_from (bfd_asymbol_bfd (info->symbols[0]), | 
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| 505 | info->symbols[0])->internal_elf_sym.st_other | 
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| 506 | == STO_SH5_ISA32) | 
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| 507 | return CRT_SH5_ISA32; | 
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| 508 |  | 
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| 509 | /* If all else fails, guess this is code and guess on the low bit set.  */ | 
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| 510 | return (memaddr & 1) == 1 ? CRT_SH5_ISA32 : CRT_SH5_ISA16; | 
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| 511 | } | 
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| 512 |  | 
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| 513 | /* Initialize static and dynamic disassembly state.  */ | 
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| 514 |  | 
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| 515 | static bfd_boolean | 
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| 516 | init_sh64_disasm_info (info) | 
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| 517 | struct disassemble_info *info; | 
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| 518 | { | 
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| 519 | struct sh64_disassemble_info *sh64_infop | 
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| 520 | = calloc (sizeof (*sh64_infop), 1); | 
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| 521 |  | 
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| 522 | if (sh64_infop == NULL) | 
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| 523 | return FALSE; | 
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| 524 |  | 
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| 525 | info->private_data = sh64_infop; | 
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| 526 |  | 
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| 527 | SAVED_MOVI_IMM (info) = 0; | 
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| 528 | SAVED_MOVI_R (info) = 255; | 
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| 529 |  | 
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| 530 | if (shmedia_opcode_mask_table == NULL) | 
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| 531 | initialize_shmedia_opcode_mask_table (); | 
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| 532 |  | 
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| 533 | return TRUE; | 
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| 534 | } | 
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| 535 |  | 
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| 536 | /* Main entry to disassemble SHmedia instructions, given an endian set in | 
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| 537 | INFO.  Note that the simulator uses this as the main entry and does not | 
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| 538 | use any of the functions further below.  */ | 
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| 539 |  | 
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| 540 | int | 
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| 541 | print_insn_sh64x_media (memaddr, info) | 
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| 542 | bfd_vma memaddr; | 
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| 543 | struct disassemble_info *info; | 
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| 544 | { | 
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| 545 | if (info->private_data == NULL && ! init_sh64_disasm_info (info)) | 
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| 546 | return -1; | 
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| 547 |  | 
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| 548 | /* Make reasonable output.  */ | 
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| 549 | info->bytes_per_line = 4; | 
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| 550 | info->bytes_per_chunk = 4; | 
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| 551 |  | 
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| 552 | return print_insn_shmedia (memaddr, info); | 
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| 553 | } | 
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| 554 |  | 
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| 555 | /* Main entry to disassemble SHmedia insns. | 
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| 556 | If we see an SHcompact instruction, return -2.  */ | 
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| 557 |  | 
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| 558 | int | 
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| 559 | print_insn_sh64 (memaddr, info) | 
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| 560 | bfd_vma memaddr; | 
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| 561 | struct disassemble_info *info; | 
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| 562 | { | 
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| 563 | enum bfd_endian endian = info->endian; | 
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| 564 | enum sh64_elf_cr_type cr_type; | 
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| 565 |  | 
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| 566 | if (info->private_data == NULL && ! init_sh64_disasm_info (info)) | 
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| 567 | return -1; | 
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| 568 |  | 
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| 569 | cr_type = sh64_get_contents_type_disasm (memaddr, info); | 
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| 570 | if (cr_type != CRT_SH5_ISA16) | 
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| 571 | { | 
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| 572 | int length = 4 - (memaddr % 4); | 
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| 573 | info->display_endian = endian; | 
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| 574 |  | 
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| 575 | /* If we got an uneven address to indicate SHmedia, adjust it.  */ | 
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| 576 | if (cr_type == CRT_SH5_ISA32 && length == 3) | 
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| 577 | memaddr--, length = 4; | 
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| 578 |  | 
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| 579 | /* Only disassemble on four-byte boundaries.  Addresses that are not | 
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| 580 | a multiple of four can happen after a data region.  */ | 
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| 581 | if (cr_type == CRT_SH5_ISA32 && length == 4) | 
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| 582 | return print_insn_sh64x_media (memaddr, info); | 
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| 583 |  | 
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| 584 | /* We get CRT_DATA *only* for data regions in a mixed-contents | 
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| 585 | section.  For sections with data only, we get indication of one | 
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| 586 | of the ISA:s.  You may think that we shouldn't disassemble | 
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| 587 | section with only data if we can figure that out.  However, the | 
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| 588 | disassembly function is by default not called for data-only | 
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| 589 | sections, so if the user explicitly specified disassembly of a | 
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| 590 | data section, that's what we should do.  */ | 
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| 591 | if (cr_type == CRT_DATA || length != 4) | 
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| 592 | { | 
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| 593 | int status; | 
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| 594 | unsigned char data[4]; | 
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| 595 | struct sh64_disassemble_info *sh64_infop = info->private_data; | 
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| 596 |  | 
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| 597 | if (length == 4 | 
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| 598 | && sh64_infop->crange.cr_type != CRT_NONE | 
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| 599 | && memaddr >= sh64_infop->crange.cr_addr | 
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| 600 | && memaddr < (sh64_infop->crange.cr_addr | 
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| 601 | + sh64_infop->crange.cr_size)) | 
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| 602 | length | 
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| 603 | = (sh64_infop->crange.cr_addr | 
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| 604 | + sh64_infop->crange.cr_size - memaddr); | 
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| 605 |  | 
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| 606 | status | 
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| 607 | = (*info->read_memory_func) (memaddr, data, | 
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| 608 | length >= 4 ? 4 : length, info); | 
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| 609 |  | 
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| 610 | if (status == 0 && length >= 4) | 
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| 611 | { | 
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| 612 | (*info->fprintf_func) (info->stream, ".long 0x%08lx", | 
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| 613 | endian == BFD_ENDIAN_BIG | 
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| 614 | ? (long) (bfd_getb32 (data)) | 
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| 615 | : (long) (bfd_getl32 (data))); | 
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| 616 | return 4; | 
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| 617 | } | 
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| 618 | else | 
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| 619 | { | 
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| 620 | int i; | 
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| 621 |  | 
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| 622 | for (i = 0; i < length; i++) | 
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| 623 | { | 
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| 624 | status = info->read_memory_func (memaddr + i, data, 1, info); | 
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| 625 | if (status != 0) | 
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| 626 | break; | 
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| 627 | (*info->fprintf_func) (info->stream, "%s0x%02x", | 
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| 628 | i == 0 ? ".byte " : ", ", | 
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| 629 | data[0]); | 
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| 630 | } | 
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| 631 |  | 
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| 632 | return i ? i : -1; | 
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| 633 | } | 
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| 634 | } | 
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| 635 | } | 
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| 636 |  | 
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| 637 | /* SH1 .. SH4 instruction, let caller handle it.  */ | 
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| 638 | return -2; | 
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| 639 | } | 
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