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tc-crx.c revision 1.1.1.9
      1      1.1     skrll /* tc-crx.c -- Assembler code for the CRX CPU core.
      2  1.1.1.9  christos    Copyright (C) 2004-2022 Free Software Foundation, Inc.
      3      1.1     skrll 
      4      1.1     skrll    Contributed by Tomer Levi, NSC, Israel.
      5      1.1     skrll    Originally written for GAS 2.12 by Tomer Levi, NSC, Israel.
      6      1.1     skrll    Updates, BFDizing, GNUifying and ELF support by Tomer Levi.
      7      1.1     skrll 
      8      1.1     skrll    This file is part of GAS, the GNU Assembler.
      9      1.1     skrll 
     10      1.1     skrll    GAS is free software; you can redistribute it and/or modify
     11      1.1     skrll    it under the terms of the GNU General Public License as published by
     12      1.1     skrll    the Free Software Foundation; either version 3, or (at your option)
     13      1.1     skrll    any later version.
     14      1.1     skrll 
     15      1.1     skrll    GAS is distributed in the hope that it will be useful,
     16      1.1     skrll    but WITHOUT ANY WARRANTY; without even the implied warranty of
     17      1.1     skrll    MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
     18      1.1     skrll    GNU General Public License for more details.
     19      1.1     skrll 
     20      1.1     skrll    You should have received a copy of the GNU General Public License
     21      1.1     skrll    along with GAS; see the file COPYING.  If not, write to the
     22      1.1     skrll    Free Software Foundation, 51 Franklin Street - Fifth Floor, Boston,
     23      1.1     skrll    MA 02110-1301, USA.  */
     24      1.1     skrll 
     25      1.1     skrll #include "as.h"
     26  1.1.1.9  christos #include <stdint.h>
     27      1.1     skrll #include "safe-ctype.h"
     28      1.1     skrll #include "dwarf2dbg.h"
     29      1.1     skrll #include "opcode/crx.h"
     30      1.1     skrll #include "elf/crx.h"
     31      1.1     skrll 
     32      1.1     skrll /* Word is considered here as a 16-bit unsigned short int.  */
     33      1.1     skrll #define WORD_SHIFT  16
     34      1.1     skrll 
     35      1.1     skrll /* Register is 4-bit size.  */
     36      1.1     skrll #define REG_SIZE   4
     37      1.1     skrll 
     38      1.1     skrll /* Maximum size of a single instruction (in words).  */
     39      1.1     skrll #define INSN_MAX_SIZE   3
     40      1.1     skrll 
     41      1.1     skrll /* Maximum bits which may be set in a `mask16' operand.  */
     42      1.1     skrll #define MAX_REGS_IN_MASK16  8
     43      1.1     skrll 
     44      1.1     skrll /* Utility macros for string comparison.  */
     45      1.1     skrll #define streq(a, b)           (strcmp (a, b) == 0)
     46      1.1     skrll 
     47      1.1     skrll /* Assign a number NUM, shifted by SHIFT bytes, into a location
     48      1.1     skrll    pointed by index BYTE of array 'output_opcode'.  */
     49  1.1.1.9  christos #define CRX_PRINT(BYTE, NUM, SHIFT)   output_opcode[BYTE] |= (NUM) << (SHIFT)
     50      1.1     skrll 
     51      1.1     skrll /* Operand errors.  */
     52      1.1     skrll typedef enum
     53      1.1     skrll   {
     54      1.1     skrll     OP_LEGAL = 0,	/* Legal operand.  */
     55      1.1     skrll     OP_OUT_OF_RANGE,	/* Operand not within permitted range.  */
     56      1.1     skrll     OP_NOT_EVEN,	/* Operand is Odd number, should be even.  */
     57      1.1     skrll     OP_ILLEGAL_DISPU4,	/* Operand is not within DISPU4 range.  */
     58      1.1     skrll     OP_ILLEGAL_CST4,	/* Operand is not within CST4 range.  */
     59  1.1.1.4  christos     OP_NOT_UPPER_64KB	/* Operand is not within the upper 64KB
     60      1.1     skrll 			   (0xFFFF0000-0xFFFFFFFF).  */
     61      1.1     skrll   }
     62      1.1     skrll op_err;
     63      1.1     skrll 
     64      1.1     skrll /* Opcode mnemonics hash table.  */
     65  1.1.1.9  christos static htab_t crx_inst_hash;
     66      1.1     skrll /* CRX registers hash table.  */
     67  1.1.1.9  christos static htab_t reg_hash;
     68      1.1     skrll /* CRX coprocessor registers hash table.  */
     69  1.1.1.9  christos static htab_t copreg_hash;
     70      1.1     skrll /* Current instruction we're assembling.  */
     71  1.1.1.6  christos static const inst *instruction;
     72      1.1     skrll 
     73      1.1     skrll /* Global variables.  */
     74      1.1     skrll 
     75      1.1     skrll /* Array to hold an instruction encoding.  */
     76  1.1.1.6  christos static long output_opcode[2];
     77      1.1     skrll 
     78      1.1     skrll /* Nonzero means a relocatable symbol.  */
     79  1.1.1.6  christos static int relocatable;
     80      1.1     skrll 
     81      1.1     skrll /* A copy of the original instruction (used in error messages).  */
     82  1.1.1.6  christos static char ins_parse[MAX_INST_LEN];
     83      1.1     skrll 
     84      1.1     skrll /* The current processed argument number.  */
     85  1.1.1.6  christos static int cur_arg_num;
     86      1.1     skrll 
     87      1.1     skrll /* Generic assembler global variables which must be defined by all targets.  */
     88      1.1     skrll 
     89      1.1     skrll /* Characters which always start a comment.  */
     90      1.1     skrll const char comment_chars[] = "#";
     91      1.1     skrll 
     92      1.1     skrll /* Characters which start a comment at the beginning of a line.  */
     93      1.1     skrll const char line_comment_chars[] = "#";
     94      1.1     skrll 
     95      1.1     skrll /* This array holds machine specific line separator characters.  */
     96      1.1     skrll const char line_separator_chars[] = ";";
     97      1.1     skrll 
     98      1.1     skrll /* Chars that can be used to separate mant from exp in floating point nums.  */
     99      1.1     skrll const char EXP_CHARS[] = "eE";
    100      1.1     skrll 
    101      1.1     skrll /* Chars that mean this number is a floating point constant as in 0f12.456  */
    102      1.1     skrll const char FLT_CHARS[] = "f'";
    103      1.1     skrll 
    104      1.1     skrll /* Target-specific multicharacter options, not const-declared at usage.  */
    105      1.1     skrll const char *md_shortopts = "";
    106      1.1     skrll struct option md_longopts[] =
    107      1.1     skrll {
    108      1.1     skrll   {NULL, no_argument, NULL, 0}
    109      1.1     skrll };
    110      1.1     skrll size_t md_longopts_size = sizeof (md_longopts);
    111      1.1     skrll 
    112      1.1     skrll /* This table describes all the machine specific pseudo-ops
    113      1.1     skrll    the assembler has to support.  The fields are:
    114      1.1     skrll    *** Pseudo-op name without dot.
    115      1.1     skrll    *** Function to call to execute this pseudo-op.
    116      1.1     skrll    *** Integer arg to pass to the function.  */
    117      1.1     skrll 
    118      1.1     skrll const pseudo_typeS md_pseudo_table[] =
    119      1.1     skrll {
    120      1.1     skrll   /* In CRX machine, align is in bytes (not a ptwo boundary).  */
    121      1.1     skrll   {"align", s_align_bytes, 0},
    122      1.1     skrll   {0, 0, 0}
    123      1.1     skrll };
    124      1.1     skrll 
    125      1.1     skrll /* CRX relaxation table.  */
    126      1.1     skrll const relax_typeS md_relax_table[] =
    127      1.1     skrll {
    128      1.1     skrll   /* bCC  */
    129      1.1     skrll   {0xfa, -0x100, 2, 1},			/*  8 */
    130      1.1     skrll   {0xfffe, -0x10000, 4, 2},		/* 16 */
    131      1.1     skrll   {0xfffffffe, -0xfffffffe, 6, 0},	/* 32 */
    132      1.1     skrll 
    133      1.1     skrll   /* bal  */
    134      1.1     skrll   {0xfffe, -0x10000, 4, 4},		/* 16 */
    135      1.1     skrll   {0xfffffffe, -0xfffffffe, 6, 0},	/* 32 */
    136      1.1     skrll 
    137      1.1     skrll   /* cmpbr/bcop  */
    138      1.1     skrll   {0xfe, -0x100, 4, 6},			/*  8 */
    139      1.1     skrll   {0xfffffe, -0x1000000, 6, 0}		/* 24 */
    140      1.1     skrll };
    141      1.1     skrll 
    142  1.1.1.9  christos static int     get_cinv_parameters	(const char *);
    143  1.1.1.9  christos static char *  preprocess_reglist	(char *, int *);
    144      1.1     skrll static void    warn_if_needed		(ins *);
    145      1.1     skrll static int     adjust_if_needed		(ins *);
    146      1.1     skrll 
    147      1.1     skrll /* Return the bit size for a given operand.  */
    148      1.1     skrll 
    149      1.1     skrll static int
    150      1.1     skrll get_opbits (operand_type op)
    151      1.1     skrll {
    152      1.1     skrll   if (op < MAX_OPRD)
    153      1.1     skrll     return crx_optab[op].bit_size;
    154      1.1     skrll   else
    155      1.1     skrll     return 0;
    156      1.1     skrll }
    157      1.1     skrll 
    158      1.1     skrll /* Return the argument type of a given operand.  */
    159      1.1     skrll 
    160      1.1     skrll static argtype
    161      1.1     skrll get_optype (operand_type op)
    162      1.1     skrll {
    163      1.1     skrll   if (op < MAX_OPRD)
    164      1.1     skrll     return crx_optab[op].arg_type;
    165      1.1     skrll   else
    166      1.1     skrll     return nullargs;
    167      1.1     skrll }
    168      1.1     skrll 
    169      1.1     skrll /* Return the flags of a given operand.  */
    170      1.1     skrll 
    171      1.1     skrll static int
    172      1.1     skrll get_opflags (operand_type op)
    173      1.1     skrll {
    174      1.1     skrll   if (op < MAX_OPRD)
    175      1.1     skrll     return crx_optab[op].flags;
    176      1.1     skrll   else
    177      1.1     skrll     return 0;
    178      1.1     skrll }
    179      1.1     skrll 
    180      1.1     skrll /* Get the core processor register 'reg_name'.  */
    181      1.1     skrll 
    182      1.1     skrll static reg
    183      1.1     skrll get_register (char *reg_name)
    184      1.1     skrll {
    185  1.1.1.2  christos   const reg_entry *rreg;
    186      1.1     skrll 
    187  1.1.1.9  christos   rreg = (const reg_entry *) str_hash_find (reg_hash, reg_name);
    188      1.1     skrll 
    189  1.1.1.2  christos   if (rreg != NULL)
    190  1.1.1.2  christos     return rreg->value.reg_val;
    191      1.1     skrll   else
    192      1.1     skrll     return nullregister;
    193      1.1     skrll }
    194      1.1     skrll 
    195      1.1     skrll /* Get the coprocessor register 'copreg_name'.  */
    196      1.1     skrll 
    197      1.1     skrll static copreg
    198      1.1     skrll get_copregister (char *copreg_name)
    199      1.1     skrll {
    200  1.1.1.2  christos   const reg_entry *coreg;
    201      1.1     skrll 
    202  1.1.1.9  christos   coreg = (const reg_entry *) str_hash_find (copreg_hash, copreg_name);
    203      1.1     skrll 
    204  1.1.1.2  christos   if (coreg != NULL)
    205  1.1.1.2  christos     return coreg->value.copreg_val;
    206      1.1     skrll   else
    207      1.1     skrll     return nullcopregister;
    208      1.1     skrll }
    209      1.1     skrll 
    210      1.1     skrll /* Round up a section size to the appropriate boundary.  */
    211      1.1     skrll 
    212      1.1     skrll valueT
    213      1.1     skrll md_section_align (segT seg, valueT val)
    214      1.1     skrll {
    215      1.1     skrll   /* Round .text section to a multiple of 2.  */
    216      1.1     skrll   if (seg == text_section)
    217      1.1     skrll     return (val + 1) & ~1;
    218      1.1     skrll   return val;
    219      1.1     skrll }
    220      1.1     skrll 
    221      1.1     skrll /* Parse an operand that is machine-specific (remove '*').  */
    222      1.1     skrll 
    223      1.1     skrll void
    224      1.1     skrll md_operand (expressionS * exp)
    225      1.1     skrll {
    226      1.1     skrll   char c = *input_line_pointer;
    227      1.1     skrll 
    228      1.1     skrll   switch (c)
    229      1.1     skrll     {
    230      1.1     skrll     case '*':
    231      1.1     skrll       input_line_pointer++;
    232      1.1     skrll       expression (exp);
    233      1.1     skrll       break;
    234      1.1     skrll     default:
    235      1.1     skrll       break;
    236      1.1     skrll     }
    237      1.1     skrll }
    238      1.1     skrll 
    239      1.1     skrll /* Reset global variables before parsing a new instruction.  */
    240      1.1     skrll 
    241      1.1     skrll static void
    242      1.1     skrll reset_vars (char *op)
    243      1.1     skrll {
    244      1.1     skrll   cur_arg_num = relocatable = 0;
    245      1.1     skrll   memset (& output_opcode, '\0', sizeof (output_opcode));
    246      1.1     skrll 
    247      1.1     skrll   /* Save a copy of the original OP (used in error messages).  */
    248      1.1     skrll   strncpy (ins_parse, op, sizeof ins_parse - 1);
    249      1.1     skrll   ins_parse [sizeof ins_parse - 1] = 0;
    250      1.1     skrll }
    251      1.1     skrll 
    252      1.1     skrll /* This macro decides whether a particular reloc is an entry in a
    253      1.1     skrll    switch table.  It is used when relaxing, because the linker needs
    254      1.1     skrll    to know about all such entries so that it can adjust them if
    255      1.1     skrll    necessary.  */
    256      1.1     skrll 
    257      1.1     skrll #define SWITCH_TABLE(fix)				  \
    258      1.1     skrll   (   (fix)->fx_addsy != NULL				  \
    259      1.1     skrll    && (fix)->fx_subsy != NULL				  \
    260      1.1     skrll    && S_GET_SEGMENT ((fix)->fx_addsy) ==		  \
    261      1.1     skrll       S_GET_SEGMENT ((fix)->fx_subsy)			  \
    262      1.1     skrll    && S_GET_SEGMENT (fix->fx_addsy) != undefined_section  \
    263      1.1     skrll    && (   (fix)->fx_r_type == BFD_RELOC_CRX_NUM8	  \
    264      1.1     skrll        || (fix)->fx_r_type == BFD_RELOC_CRX_NUM16	  \
    265      1.1     skrll        || (fix)->fx_r_type == BFD_RELOC_CRX_NUM32))
    266      1.1     skrll 
    267      1.1     skrll /* See whether we need to force a relocation into the output file.
    268      1.1     skrll    This is used to force out switch and PC relative relocations when
    269      1.1     skrll    relaxing.  */
    270      1.1     skrll 
    271      1.1     skrll int
    272      1.1     skrll crx_force_relocation (fixS *fix)
    273      1.1     skrll {
    274      1.1     skrll   if (generic_force_reloc (fix) || SWITCH_TABLE (fix))
    275      1.1     skrll     return 1;
    276      1.1     skrll 
    277      1.1     skrll   return 0;
    278      1.1     skrll }
    279      1.1     skrll 
    280      1.1     skrll /* Generate a relocation entry for a fixup.  */
    281      1.1     skrll 
    282      1.1     skrll arelent *
    283      1.1     skrll tc_gen_reloc (asection *section ATTRIBUTE_UNUSED, fixS * fixP)
    284      1.1     skrll {
    285      1.1     skrll   arelent * reloc;
    286      1.1     skrll 
    287  1.1.1.5  christos   reloc = XNEW (arelent);
    288  1.1.1.5  christos   reloc->sym_ptr_ptr  = XNEW (asymbol *);
    289      1.1     skrll   *reloc->sym_ptr_ptr = symbol_get_bfdsym (fixP->fx_addsy);
    290      1.1     skrll   reloc->address = fixP->fx_frag->fr_address + fixP->fx_where;
    291      1.1     skrll   reloc->addend = fixP->fx_offset;
    292      1.1     skrll 
    293      1.1     skrll   if (fixP->fx_subsy != NULL)
    294      1.1     skrll     {
    295      1.1     skrll       if (SWITCH_TABLE (fixP))
    296      1.1     skrll 	{
    297      1.1     skrll 	  /* Keep the current difference in the addend.  */
    298      1.1     skrll 	  reloc->addend = (S_GET_VALUE (fixP->fx_addsy)
    299      1.1     skrll 			   - S_GET_VALUE (fixP->fx_subsy) + fixP->fx_offset);
    300      1.1     skrll 
    301      1.1     skrll 	  switch (fixP->fx_r_type)
    302      1.1     skrll 	    {
    303      1.1     skrll 	    case BFD_RELOC_CRX_NUM8:
    304      1.1     skrll 	      fixP->fx_r_type = BFD_RELOC_CRX_SWITCH8;
    305      1.1     skrll 	      break;
    306      1.1     skrll 	    case BFD_RELOC_CRX_NUM16:
    307      1.1     skrll 	      fixP->fx_r_type = BFD_RELOC_CRX_SWITCH16;
    308      1.1     skrll 	      break;
    309      1.1     skrll 	    case BFD_RELOC_CRX_NUM32:
    310      1.1     skrll 	      fixP->fx_r_type = BFD_RELOC_CRX_SWITCH32;
    311      1.1     skrll 	      break;
    312      1.1     skrll 	    default:
    313      1.1     skrll 	      abort ();
    314      1.1     skrll 	      break;
    315      1.1     skrll 	    }
    316      1.1     skrll 	}
    317      1.1     skrll       else
    318      1.1     skrll 	{
    319      1.1     skrll 	  /* We only resolve difference expressions in the same section.  */
    320  1.1.1.9  christos 	  as_bad_subtract (fixP);
    321  1.1.1.9  christos 	  free (reloc->sym_ptr_ptr);
    322  1.1.1.9  christos 	  free (reloc);
    323  1.1.1.9  christos 	  return NULL;
    324      1.1     skrll 	}
    325      1.1     skrll     }
    326      1.1     skrll 
    327  1.1.1.2  christos   gas_assert ((int) fixP->fx_r_type > 0);
    328      1.1     skrll   reloc->howto = bfd_reloc_type_lookup (stdoutput, fixP->fx_r_type);
    329      1.1     skrll 
    330      1.1     skrll   if (reloc->howto == (reloc_howto_type *) NULL)
    331      1.1     skrll     {
    332      1.1     skrll       as_bad_where (fixP->fx_file, fixP->fx_line,
    333      1.1     skrll 		    _("internal error: reloc %d (`%s') not supported by object file format"),
    334      1.1     skrll 		    fixP->fx_r_type,
    335      1.1     skrll 		    bfd_get_reloc_code_name (fixP->fx_r_type));
    336      1.1     skrll       return NULL;
    337      1.1     skrll     }
    338  1.1.1.2  christos   gas_assert (!fixP->fx_pcrel == !reloc->howto->pc_relative);
    339      1.1     skrll 
    340      1.1     skrll   return reloc;
    341      1.1     skrll }
    342      1.1     skrll 
    343      1.1     skrll /* Prepare machine-dependent frags for relaxation.  */
    344      1.1     skrll 
    345      1.1     skrll int
    346      1.1     skrll md_estimate_size_before_relax (fragS *fragp, asection *seg)
    347      1.1     skrll {
    348      1.1     skrll   /* If symbol is undefined or located in a different section,
    349      1.1     skrll      select the largest supported relocation.  */
    350      1.1     skrll   relax_substateT subtype;
    351      1.1     skrll   relax_substateT rlx_state[] = {0, 2,
    352      1.1     skrll 				 3, 4,
    353      1.1     skrll 				 5, 6};
    354      1.1     skrll 
    355      1.1     skrll   for (subtype = 0; subtype < ARRAY_SIZE (rlx_state); subtype += 2)
    356      1.1     skrll     {
    357      1.1     skrll       if (fragp->fr_subtype == rlx_state[subtype]
    358      1.1     skrll 	  && (!S_IS_DEFINED (fragp->fr_symbol)
    359      1.1     skrll 	      || seg != S_GET_SEGMENT (fragp->fr_symbol)))
    360      1.1     skrll 	{
    361      1.1     skrll 	  fragp->fr_subtype = rlx_state[subtype + 1];
    362      1.1     skrll 	  break;
    363      1.1     skrll 	}
    364      1.1     skrll     }
    365      1.1     skrll 
    366      1.1     skrll   if (fragp->fr_subtype >= ARRAY_SIZE (md_relax_table))
    367      1.1     skrll     abort ();
    368      1.1     skrll 
    369      1.1     skrll   return md_relax_table[fragp->fr_subtype].rlx_length;
    370      1.1     skrll }
    371      1.1     skrll 
    372      1.1     skrll void
    373      1.1     skrll md_convert_frag (bfd *abfd ATTRIBUTE_UNUSED, asection *sec, fragS *fragP)
    374      1.1     skrll {
    375      1.1     skrll   /* 'opcode' points to the start of the instruction, whether
    376      1.1     skrll      we need to change the instruction's fixed encoding.  */
    377  1.1.1.9  christos   char *opcode = &fragP->fr_literal[0] + fragP->fr_fix;
    378      1.1     skrll   bfd_reloc_code_real_type reloc;
    379      1.1     skrll 
    380      1.1     skrll   subseg_change (sec, 0);
    381      1.1     skrll 
    382      1.1     skrll   switch (fragP->fr_subtype)
    383      1.1     skrll     {
    384      1.1     skrll     case 0:
    385      1.1     skrll       reloc = BFD_RELOC_CRX_REL8;
    386      1.1     skrll       break;
    387      1.1     skrll     case 1:
    388      1.1     skrll       *opcode = 0x7e;
    389      1.1     skrll       reloc = BFD_RELOC_CRX_REL16;
    390      1.1     skrll       break;
    391      1.1     skrll     case 2:
    392      1.1     skrll       *opcode = 0x7f;
    393      1.1     skrll       reloc = BFD_RELOC_CRX_REL32;
    394      1.1     skrll       break;
    395      1.1     skrll     case 3:
    396      1.1     skrll       reloc = BFD_RELOC_CRX_REL16;
    397      1.1     skrll       break;
    398      1.1     skrll     case 4:
    399      1.1     skrll       *++opcode = 0x31;
    400      1.1     skrll       reloc = BFD_RELOC_CRX_REL32;
    401      1.1     skrll       break;
    402      1.1     skrll     case 5:
    403      1.1     skrll       reloc = BFD_RELOC_CRX_REL8_CMP;
    404      1.1     skrll       break;
    405      1.1     skrll     case 6:
    406      1.1     skrll       *++opcode = 0x31;
    407      1.1     skrll       reloc = BFD_RELOC_CRX_REL24;
    408      1.1     skrll       break;
    409      1.1     skrll     default:
    410      1.1     skrll       abort ();
    411      1.1     skrll       break;
    412      1.1     skrll     }
    413      1.1     skrll 
    414      1.1     skrll     fix_new (fragP, fragP->fr_fix,
    415      1.1     skrll 	     bfd_get_reloc_size (bfd_reloc_type_lookup (stdoutput, reloc)),
    416      1.1     skrll 	     fragP->fr_symbol, fragP->fr_offset, 1, reloc);
    417      1.1     skrll     fragP->fr_var = 0;
    418      1.1     skrll     fragP->fr_fix += md_relax_table[fragP->fr_subtype].rlx_length;
    419      1.1     skrll }
    420      1.1     skrll 
    421      1.1     skrll /* Process machine-dependent command line options.  Called once for
    422      1.1     skrll    each option on the command line that the machine-independent part of
    423      1.1     skrll    GAS does not understand.  */
    424      1.1     skrll 
    425      1.1     skrll int
    426  1.1.1.5  christos md_parse_option (int c ATTRIBUTE_UNUSED, const char *arg ATTRIBUTE_UNUSED)
    427      1.1     skrll {
    428      1.1     skrll   return 0;
    429      1.1     skrll }
    430      1.1     skrll 
    431      1.1     skrll /* Machine-dependent usage-output.  */
    432      1.1     skrll 
    433      1.1     skrll void
    434      1.1     skrll md_show_usage (FILE *stream ATTRIBUTE_UNUSED)
    435      1.1     skrll {
    436      1.1     skrll   return;
    437      1.1     skrll }
    438      1.1     skrll 
    439  1.1.1.5  christos const char *
    440      1.1     skrll md_atof (int type, char *litP, int *sizeP)
    441      1.1     skrll {
    442      1.1     skrll   return ieee_md_atof (type, litP, sizeP, target_big_endian);
    443      1.1     skrll }
    444      1.1     skrll 
    445      1.1     skrll /* Apply a fixS (fixup of an instruction or data that we didn't have
    446      1.1     skrll    enough info to complete immediately) to the data in a frag.
    447      1.1     skrll    Since linkrelax is nonzero and TC_LINKRELAX_FIXUP is defined to disable
    448      1.1     skrll    relaxation of debug sections, this function is called only when
    449      1.1     skrll    fixuping relocations of debug sections.  */
    450      1.1     skrll 
    451      1.1     skrll void
    452      1.1     skrll md_apply_fix (fixS *fixP, valueT *valP, segT seg)
    453      1.1     skrll {
    454      1.1     skrll   valueT val = * valP;
    455      1.1     skrll   char *buf = fixP->fx_frag->fr_literal + fixP->fx_where;
    456      1.1     skrll   fixP->fx_offset = 0;
    457      1.1     skrll 
    458      1.1     skrll   switch (fixP->fx_r_type)
    459      1.1     skrll     {
    460      1.1     skrll     case BFD_RELOC_CRX_NUM8:
    461      1.1     skrll       bfd_put_8 (stdoutput, (unsigned char) val, buf);
    462      1.1     skrll       break;
    463      1.1     skrll     case BFD_RELOC_CRX_NUM16:
    464      1.1     skrll       bfd_put_16 (stdoutput, val, buf);
    465      1.1     skrll       break;
    466      1.1     skrll     case BFD_RELOC_CRX_NUM32:
    467      1.1     skrll       bfd_put_32 (stdoutput, val, buf);
    468      1.1     skrll       break;
    469      1.1     skrll     default:
    470      1.1     skrll       /* We shouldn't ever get here because linkrelax is nonzero.  */
    471      1.1     skrll       abort ();
    472      1.1     skrll       break;
    473      1.1     skrll     }
    474      1.1     skrll 
    475      1.1     skrll   fixP->fx_done = 0;
    476      1.1     skrll 
    477      1.1     skrll   if (fixP->fx_addsy == NULL
    478      1.1     skrll       && fixP->fx_pcrel == 0)
    479      1.1     skrll     fixP->fx_done = 1;
    480      1.1     skrll 
    481      1.1     skrll   if (fixP->fx_pcrel == 1
    482      1.1     skrll       && fixP->fx_addsy != NULL
    483      1.1     skrll       && S_GET_SEGMENT (fixP->fx_addsy) == seg)
    484      1.1     skrll     fixP->fx_done = 1;
    485      1.1     skrll }
    486      1.1     skrll 
    487      1.1     skrll /* The location from which a PC relative jump should be calculated,
    488      1.1     skrll    given a PC relative reloc.  */
    489      1.1     skrll 
    490      1.1     skrll long
    491      1.1     skrll md_pcrel_from (fixS *fixp)
    492      1.1     skrll {
    493      1.1     skrll   return fixp->fx_frag->fr_address + fixp->fx_where;
    494      1.1     skrll }
    495      1.1     skrll 
    496      1.1     skrll /* This function is called once, at assembler startup time.  This should
    497      1.1     skrll    set up all the tables, etc that the MD part of the assembler needs.  */
    498      1.1     skrll 
    499      1.1     skrll void
    500      1.1     skrll md_begin (void)
    501      1.1     skrll {
    502      1.1     skrll   int i = 0;
    503      1.1     skrll 
    504      1.1     skrll   /* Set up a hash table for the instructions.  */
    505  1.1.1.9  christos   crx_inst_hash = str_htab_create ();
    506  1.1.1.4  christos 
    507      1.1     skrll   while (crx_instruction[i].mnemonic != NULL)
    508      1.1     skrll     {
    509      1.1     skrll       const char *mnemonic = crx_instruction[i].mnemonic;
    510      1.1     skrll 
    511  1.1.1.9  christos       if (str_hash_insert (crx_inst_hash, mnemonic, &crx_instruction[i], 0))
    512  1.1.1.9  christos 	as_fatal (_("duplicate %s"), mnemonic);
    513      1.1     skrll 
    514      1.1     skrll       /* Insert unique names into hash table.  The CRX instruction set
    515      1.1     skrll 	 has many identical opcode names that have different opcodes based
    516      1.1     skrll 	 on the operands.  This hash table then provides a quick index to
    517      1.1     skrll 	 the first opcode with a particular name in the opcode table.  */
    518      1.1     skrll       do
    519      1.1     skrll 	{
    520      1.1     skrll 	  ++i;
    521      1.1     skrll 	}
    522      1.1     skrll       while (crx_instruction[i].mnemonic != NULL
    523      1.1     skrll 	     && streq (crx_instruction[i].mnemonic, mnemonic));
    524      1.1     skrll     }
    525      1.1     skrll 
    526      1.1     skrll   /* Initialize reg_hash hash table.  */
    527  1.1.1.9  christos   reg_hash = str_htab_create ();
    528      1.1     skrll   {
    529      1.1     skrll     const reg_entry *regtab;
    530      1.1     skrll 
    531      1.1     skrll     for (regtab = crx_regtab;
    532      1.1     skrll 	 regtab < (crx_regtab + NUMREGS); regtab++)
    533  1.1.1.9  christos       if (str_hash_insert (reg_hash, regtab->name, regtab, 0) != NULL)
    534  1.1.1.9  christos 	as_fatal (_("duplicate %s"), regtab->name);
    535      1.1     skrll   }
    536      1.1     skrll 
    537      1.1     skrll   /* Initialize copreg_hash hash table.  */
    538  1.1.1.9  christos   copreg_hash = str_htab_create ();
    539      1.1     skrll   {
    540      1.1     skrll     const reg_entry *copregtab;
    541      1.1     skrll 
    542      1.1     skrll     for (copregtab = crx_copregtab; copregtab < (crx_copregtab + NUMCOPREGS);
    543      1.1     skrll 	 copregtab++)
    544  1.1.1.9  christos       if (str_hash_insert (copreg_hash, copregtab->name, copregtab, 0) != NULL)
    545  1.1.1.9  christos 	as_fatal (_("duplicate %s"), copregtab->name);
    546      1.1     skrll   }
    547      1.1     skrll   /*  Set linkrelax here to avoid fixups in most sections.  */
    548      1.1     skrll   linkrelax = 1;
    549      1.1     skrll }
    550      1.1     skrll 
    551  1.1.1.4  christos /* Process constants (immediate/absolute)
    552      1.1     skrll    and labels (jump targets/Memory locations).  */
    553      1.1     skrll 
    554      1.1     skrll static void
    555      1.1     skrll process_label_constant (char *str, ins * crx_ins)
    556      1.1     skrll {
    557      1.1     skrll   char *saved_input_line_pointer;
    558      1.1     skrll   argument *cur_arg = &crx_ins->arg[cur_arg_num];  /* Current argument.  */
    559      1.1     skrll 
    560      1.1     skrll   saved_input_line_pointer = input_line_pointer;
    561      1.1     skrll   input_line_pointer = str;
    562      1.1     skrll 
    563      1.1     skrll   expression (&crx_ins->exp);
    564  1.1.1.4  christos 
    565      1.1     skrll   switch (crx_ins->exp.X_op)
    566      1.1     skrll     {
    567      1.1     skrll     case O_big:
    568      1.1     skrll     case O_absent:
    569      1.1     skrll       /* Missing or bad expr becomes absolute 0.  */
    570      1.1     skrll       as_bad (_("missing or invalid displacement expression `%s' taken as 0"),
    571      1.1     skrll 	      str);
    572      1.1     skrll       crx_ins->exp.X_op = O_constant;
    573      1.1     skrll       crx_ins->exp.X_add_number = 0;
    574      1.1     skrll       crx_ins->exp.X_add_symbol = (symbolS *) 0;
    575      1.1     skrll       crx_ins->exp.X_op_symbol = (symbolS *) 0;
    576      1.1     skrll       /* Fall through.  */
    577      1.1     skrll 
    578      1.1     skrll     case O_constant:
    579      1.1     skrll       cur_arg->X_op = O_constant;
    580      1.1     skrll       cur_arg->constant = crx_ins->exp.X_add_number;
    581      1.1     skrll       break;
    582      1.1     skrll 
    583      1.1     skrll     case O_symbol:
    584      1.1     skrll     case O_subtract:
    585      1.1     skrll     case O_add:
    586      1.1     skrll       cur_arg->X_op = O_symbol;
    587      1.1     skrll       crx_ins->rtype = BFD_RELOC_NONE;
    588      1.1     skrll       relocatable = 1;
    589      1.1     skrll 
    590      1.1     skrll       switch (cur_arg->type)
    591      1.1     skrll 	{
    592      1.1     skrll 	case arg_cr:
    593  1.1.1.9  christos 	  if (IS_INSN_TYPE (LD_STOR_INS_INC))
    594      1.1     skrll 	    crx_ins->rtype = BFD_RELOC_CRX_REGREL12;
    595  1.1.1.9  christos 	  else if (IS_INSN_TYPE (CSTBIT_INS)
    596      1.1     skrll 		   || IS_INSN_TYPE (STOR_IMM_INS))
    597      1.1     skrll 	    crx_ins->rtype = BFD_RELOC_CRX_REGREL28;
    598  1.1.1.9  christos 	  else
    599      1.1     skrll 	    crx_ins->rtype = BFD_RELOC_CRX_REGREL32;
    600      1.1     skrll 	  break;
    601      1.1     skrll 
    602      1.1     skrll 	case arg_idxr:
    603  1.1.1.9  christos 	  crx_ins->rtype = BFD_RELOC_CRX_REGREL22;
    604      1.1     skrll 	  break;
    605  1.1.1.4  christos 
    606      1.1     skrll 	case arg_c:
    607  1.1.1.9  christos 	  if (IS_INSN_MNEMONIC ("bal") || IS_INSN_TYPE (DCR_BRANCH_INS))
    608      1.1     skrll 	    crx_ins->rtype = BFD_RELOC_CRX_REL16;
    609      1.1     skrll 	  else if (IS_INSN_TYPE (BRANCH_INS))
    610      1.1     skrll 	    crx_ins->rtype = BFD_RELOC_CRX_REL8;
    611  1.1.1.9  christos 	  else if (IS_INSN_TYPE (LD_STOR_INS) || IS_INSN_TYPE (STOR_IMM_INS)
    612      1.1     skrll 		   || IS_INSN_TYPE (CSTBIT_INS))
    613      1.1     skrll 	    crx_ins->rtype = BFD_RELOC_CRX_ABS32;
    614      1.1     skrll 	  else if (IS_INSN_TYPE (BRANCH_NEQ_INS))
    615      1.1     skrll 	    crx_ins->rtype = BFD_RELOC_CRX_REL4;
    616  1.1.1.9  christos 	  else if (IS_INSN_TYPE (CMPBR_INS) || IS_INSN_TYPE (COP_BRANCH_INS))
    617      1.1     skrll 	    crx_ins->rtype = BFD_RELOC_CRX_REL8_CMP;
    618      1.1     skrll 	  break;
    619  1.1.1.4  christos 
    620      1.1     skrll 	case arg_ic:
    621  1.1.1.9  christos 	  if (IS_INSN_TYPE (ARITH_INS))
    622      1.1     skrll 	    crx_ins->rtype = BFD_RELOC_CRX_IMM32;
    623      1.1     skrll 	  else if (IS_INSN_TYPE (ARITH_BYTE_INS))
    624      1.1     skrll 	    crx_ins->rtype = BFD_RELOC_CRX_IMM16;
    625      1.1     skrll 	  break;
    626      1.1     skrll 	default:
    627      1.1     skrll 	  break;
    628  1.1.1.9  christos 	}
    629      1.1     skrll       break;
    630      1.1     skrll 
    631      1.1     skrll     default:
    632      1.1     skrll       cur_arg->X_op = crx_ins->exp.X_op;
    633      1.1     skrll       break;
    634      1.1     skrll     }
    635      1.1     skrll 
    636      1.1     skrll   input_line_pointer = saved_input_line_pointer;
    637      1.1     skrll   return;
    638      1.1     skrll }
    639      1.1     skrll 
    640      1.1     skrll /* Get the values of the scale to be encoded -
    641      1.1     skrll    used for the scaled index mode of addressing.  */
    642      1.1     skrll 
    643      1.1     skrll static int
    644      1.1     skrll exponent2scale (int val)
    645      1.1     skrll {
    646      1.1     skrll   int exponent;
    647      1.1     skrll 
    648      1.1     skrll   /* If 'val' is 0, the following 'for' will be an endless loop.  */
    649      1.1     skrll   if (val == 0)
    650      1.1     skrll     return 0;
    651      1.1     skrll 
    652      1.1     skrll   for (exponent = 0; (val != 1); val >>= 1, exponent++)
    653      1.1     skrll     ;
    654      1.1     skrll 
    655      1.1     skrll   return exponent;
    656      1.1     skrll }
    657      1.1     skrll 
    658      1.1     skrll /* Parsing different types of operands
    659      1.1     skrll    -> constants		    Immediate/Absolute/Relative numbers
    660      1.1     skrll    -> Labels		    Relocatable symbols
    661      1.1     skrll    -> (rbase)		    Register base
    662      1.1     skrll    -> disp(rbase)	    Register relative
    663      1.1     skrll    -> disp(rbase)+	    Post-increment mode
    664      1.1     skrll    -> disp(rbase,ridx,scl)  Register index mode  */
    665      1.1     skrll 
    666      1.1     skrll static void
    667      1.1     skrll set_operand (char *operand, ins * crx_ins)
    668      1.1     skrll {
    669  1.1.1.6  christos   char *operandS; /* Pointer to start of sub-operand.  */
    670  1.1.1.6  christos   char *operandE; /* Pointer to end of sub-operand.  */
    671      1.1     skrll   expressionS scale;
    672      1.1     skrll   int scale_val;
    673      1.1     skrll   char *input_save, c;
    674      1.1     skrll   argument *cur_arg = &crx_ins->arg[cur_arg_num]; /* Current argument.  */
    675      1.1     skrll 
    676      1.1     skrll   /* Initialize pointers.  */
    677      1.1     skrll   operandS = operandE = operand;
    678      1.1     skrll 
    679      1.1     skrll   switch (cur_arg->type)
    680      1.1     skrll     {
    681      1.1     skrll     case arg_sc:    /* Case *+0x18.  */
    682      1.1     skrll     case arg_ic:    /* Case $0x18.  */
    683      1.1     skrll       operandS++;
    684  1.1.1.6  christos       /* Fall through.  */
    685      1.1     skrll     case arg_c:	    /* Case 0x18.  */
    686      1.1     skrll       /* Set constant.  */
    687      1.1     skrll       process_label_constant (operandS, crx_ins);
    688  1.1.1.4  christos 
    689      1.1     skrll       if (cur_arg->type != arg_ic)
    690      1.1     skrll 	cur_arg->type = arg_c;
    691      1.1     skrll       break;
    692      1.1     skrll 
    693      1.1     skrll     case arg_icr:   /* Case $0x18(r1).  */
    694      1.1     skrll       operandS++;
    695      1.1     skrll     case arg_cr:    /* Case 0x18(r1).   */
    696      1.1     skrll       /* Set displacement constant.  */
    697      1.1     skrll       while (*operandE != '(')
    698      1.1     skrll 	operandE++;
    699      1.1     skrll       *operandE = '\0';
    700      1.1     skrll       process_label_constant (operandS, crx_ins);
    701  1.1.1.4  christos       operandS = operandE;
    702  1.1.1.6  christos       /* Fall through.  */
    703      1.1     skrll     case arg_rbase: /* Case (r1).  */
    704      1.1     skrll       operandS++;
    705      1.1     skrll       /* Set register base.  */
    706      1.1     skrll       while (*operandE != ')')
    707      1.1     skrll 	operandE++;
    708      1.1     skrll       *operandE = '\0';
    709      1.1     skrll       if ((cur_arg->r = get_register (operandS)) == nullregister)
    710  1.1.1.6  christos 	as_bad (_("Illegal register `%s' in instruction `%s'"),
    711      1.1     skrll 		operandS, ins_parse);
    712      1.1     skrll 
    713      1.1     skrll       if (cur_arg->type != arg_rbase)
    714      1.1     skrll 	cur_arg->type = arg_cr;
    715      1.1     skrll       break;
    716      1.1     skrll 
    717      1.1     skrll     case arg_idxr:
    718      1.1     skrll       /* Set displacement constant.  */
    719      1.1     skrll       while (*operandE != '(')
    720      1.1     skrll 	operandE++;
    721      1.1     skrll       *operandE = '\0';
    722      1.1     skrll       process_label_constant (operandS, crx_ins);
    723      1.1     skrll       operandS = ++operandE;
    724  1.1.1.4  christos 
    725      1.1     skrll       /* Set register base.  */
    726      1.1     skrll       while ((*operandE != ',') && (! ISSPACE (*operandE)))
    727      1.1     skrll 	operandE++;
    728      1.1     skrll       *operandE++ = '\0';
    729      1.1     skrll       if ((cur_arg->r = get_register (operandS)) == nullregister)
    730  1.1.1.6  christos 	as_bad (_("Illegal register `%s' in instruction `%s'"),
    731      1.1     skrll 		operandS, ins_parse);
    732      1.1     skrll 
    733      1.1     skrll       /* Skip leading white space.  */
    734      1.1     skrll       while (ISSPACE (*operandE))
    735      1.1     skrll 	operandE++;
    736      1.1     skrll       operandS = operandE;
    737      1.1     skrll 
    738      1.1     skrll       /* Set register index.  */
    739      1.1     skrll       while ((*operandE != ')') && (*operandE != ','))
    740      1.1     skrll 	operandE++;
    741      1.1     skrll       c = *operandE;
    742      1.1     skrll       *operandE++ = '\0';
    743      1.1     skrll 
    744      1.1     skrll       if ((cur_arg->i_r = get_register (operandS)) == nullregister)
    745  1.1.1.6  christos 	as_bad (_("Illegal register `%s' in instruction `%s'"),
    746      1.1     skrll 		operandS, ins_parse);
    747      1.1     skrll 
    748      1.1     skrll       /* Skip leading white space.  */
    749      1.1     skrll       while (ISSPACE (*operandE))
    750      1.1     skrll 	operandE++;
    751      1.1     skrll       operandS = operandE;
    752      1.1     skrll 
    753      1.1     skrll       /* Set the scale.  */
    754      1.1     skrll       if (c == ')')
    755      1.1     skrll 	cur_arg->scale = 0;
    756      1.1     skrll       else
    757  1.1.1.9  christos 	{
    758      1.1     skrll 	  while (*operandE != ')')
    759      1.1     skrll 	    operandE++;
    760      1.1     skrll 	  *operandE = '\0';
    761      1.1     skrll 
    762      1.1     skrll 	  /* Preprocess the scale string.  */
    763      1.1     skrll 	  input_save = input_line_pointer;
    764      1.1     skrll 	  input_line_pointer = operandS;
    765      1.1     skrll 	  expression (&scale);
    766      1.1     skrll 	  input_line_pointer = input_save;
    767      1.1     skrll 
    768      1.1     skrll 	  scale_val = scale.X_add_number;
    769      1.1     skrll 
    770      1.1     skrll 	  /* Check if the scale value is legal.  */
    771  1.1.1.9  christos 	  if (scale_val != 1 && scale_val != 2
    772  1.1.1.9  christos 	      && scale_val != 4 && scale_val != 8)
    773      1.1     skrll 	    as_bad (_("Illegal Scale - `%d'"), scale_val);
    774      1.1     skrll 
    775      1.1     skrll 	  cur_arg->scale = exponent2scale (scale_val);
    776  1.1.1.9  christos 	}
    777      1.1     skrll       break;
    778      1.1     skrll 
    779      1.1     skrll     default:
    780      1.1     skrll       break;
    781      1.1     skrll     }
    782      1.1     skrll }
    783      1.1     skrll 
    784      1.1     skrll /* Parse a single operand.
    785      1.1     skrll    operand - Current operand to parse.
    786      1.1     skrll    crx_ins - Current assembled instruction.  */
    787      1.1     skrll 
    788      1.1     skrll static void
    789      1.1     skrll parse_operand (char *operand, ins * crx_ins)
    790      1.1     skrll {
    791      1.1     skrll   int ret_val;
    792      1.1     skrll   argument *cur_arg = &crx_ins->arg[cur_arg_num]; /* Current argument.  */
    793      1.1     skrll 
    794      1.1     skrll   /* Initialize the type to NULL before parsing.  */
    795      1.1     skrll   cur_arg->type = nullargs;
    796      1.1     skrll 
    797      1.1     skrll   /* Check whether this is a general processor register.  */
    798      1.1     skrll   if ((ret_val = get_register (operand)) != nullregister)
    799      1.1     skrll     {
    800      1.1     skrll       cur_arg->type = arg_r;
    801      1.1     skrll       cur_arg->r = ret_val;
    802      1.1     skrll       cur_arg->X_op = O_register;
    803      1.1     skrll       return;
    804      1.1     skrll     }
    805      1.1     skrll 
    806      1.1     skrll   /* Check whether this is a core [special] coprocessor register.  */
    807      1.1     skrll   if ((ret_val = get_copregister (operand)) != nullcopregister)
    808      1.1     skrll     {
    809      1.1     skrll       cur_arg->type = arg_copr;
    810      1.1     skrll       if (ret_val >= cs0)
    811      1.1     skrll 	cur_arg->type = arg_copsr;
    812      1.1     skrll       cur_arg->cr = ret_val;
    813      1.1     skrll       cur_arg->X_op = O_register;
    814      1.1     skrll       return;
    815      1.1     skrll     }
    816      1.1     skrll 
    817      1.1     skrll   /* Deal with special characters.  */
    818      1.1     skrll   switch (operand[0])
    819      1.1     skrll     {
    820      1.1     skrll     case '$':
    821      1.1     skrll       if (strchr (operand, '(') != NULL)
    822      1.1     skrll 	cur_arg->type = arg_icr;
    823      1.1     skrll       else
    824  1.1.1.9  christos 	cur_arg->type = arg_ic;
    825      1.1     skrll       goto set_params;
    826      1.1     skrll       break;
    827      1.1     skrll 
    828      1.1     skrll     case '*':
    829      1.1     skrll       cur_arg->type = arg_sc;
    830      1.1     skrll       goto set_params;
    831      1.1     skrll       break;
    832      1.1     skrll 
    833      1.1     skrll     case '(':
    834      1.1     skrll       cur_arg->type = arg_rbase;
    835      1.1     skrll       goto set_params;
    836      1.1     skrll       break;
    837      1.1     skrll 
    838      1.1     skrll     default:
    839  1.1.1.9  christos       break;
    840      1.1     skrll     }
    841  1.1.1.4  christos 
    842      1.1     skrll   if (strchr (operand, '(') != NULL)
    843      1.1     skrll     {
    844      1.1     skrll       if (strchr (operand, ',') != NULL
    845  1.1.1.9  christos 	  && (strchr (operand, ',') > strchr (operand, '(')))
    846  1.1.1.9  christos 	cur_arg->type = arg_idxr;
    847      1.1     skrll       else
    848      1.1     skrll 	cur_arg->type = arg_cr;
    849      1.1     skrll     }
    850      1.1     skrll   else
    851      1.1     skrll     cur_arg->type = arg_c;
    852      1.1     skrll   goto set_params;
    853      1.1     skrll 
    854  1.1.1.9  christos   /* Parse an operand according to its type.  */
    855  1.1.1.9  christos  set_params:
    856      1.1     skrll   cur_arg->constant = 0;
    857      1.1     skrll   set_operand (operand, crx_ins);
    858      1.1     skrll }
    859      1.1     skrll 
    860  1.1.1.4  christos /* Parse the various operands. Each operand is then analyzed to fillup
    861      1.1     skrll    the fields in the crx_ins data structure.  */
    862      1.1     skrll 
    863      1.1     skrll static void
    864      1.1     skrll parse_operands (ins * crx_ins, char *operands)
    865      1.1     skrll {
    866      1.1     skrll   char *operandS;	       /* Operands string.  */
    867      1.1     skrll   char *operandH, *operandT;   /* Single operand head/tail pointers.  */
    868      1.1     skrll   int allocated = 0;	       /* Indicates a new operands string was allocated.  */
    869      1.1     skrll   char *operand[MAX_OPERANDS]; /* Separating the operands.  */
    870      1.1     skrll   int op_num = 0;	       /* Current operand number we are parsing.  */
    871      1.1     skrll   int bracket_flag = 0;	       /* Indicates a bracket '(' was found.  */
    872      1.1     skrll   int sq_bracket_flag = 0;     /* Indicates a square bracket '[' was found.  */
    873      1.1     skrll 
    874      1.1     skrll   /* Preprocess the list of registers, if necessary.  */
    875      1.1     skrll   operandS = operandH = operandT = (INST_HAS_REG_LIST) ?
    876      1.1     skrll     preprocess_reglist (operands, &allocated) : operands;
    877      1.1     skrll 
    878      1.1     skrll   while (*operandT != '\0')
    879      1.1     skrll     {
    880      1.1     skrll       if (*operandT == ',' && bracket_flag != 1 && sq_bracket_flag != 1)
    881  1.1.1.9  christos 	{
    882      1.1     skrll 	  *operandT++ = '\0';
    883      1.1     skrll 	  operand[op_num++] = strdup (operandH);
    884  1.1.1.9  christos 	  operandH = operandT;
    885  1.1.1.9  christos 	  continue;
    886  1.1.1.9  christos 	}
    887      1.1     skrll 
    888      1.1     skrll       if (*operandT == ' ')
    889      1.1     skrll 	as_bad (_("Illegal operands (whitespace): `%s'"), ins_parse);
    890      1.1     skrll 
    891      1.1     skrll       if (*operandT == '(')
    892      1.1     skrll 	bracket_flag = 1;
    893      1.1     skrll       else if (*operandT == '[')
    894      1.1     skrll 	sq_bracket_flag = 1;
    895      1.1     skrll 
    896      1.1     skrll       if (*operandT == ')')
    897      1.1     skrll 	{
    898      1.1     skrll 	  if (bracket_flag)
    899      1.1     skrll 	    bracket_flag = 0;
    900      1.1     skrll 	  else
    901      1.1     skrll 	    as_fatal (_("Missing matching brackets : `%s'"), ins_parse);
    902      1.1     skrll 	}
    903      1.1     skrll       else if (*operandT == ']')
    904      1.1     skrll 	{
    905      1.1     skrll 	  if (sq_bracket_flag)
    906      1.1     skrll 	    sq_bracket_flag = 0;
    907      1.1     skrll 	  else
    908      1.1     skrll 	    as_fatal (_("Missing matching brackets : `%s'"), ins_parse);
    909      1.1     skrll 	}
    910      1.1     skrll 
    911      1.1     skrll       if (bracket_flag == 1 && *operandT == ')')
    912      1.1     skrll 	bracket_flag = 0;
    913      1.1     skrll       else if (sq_bracket_flag == 1 && *operandT == ']')
    914      1.1     skrll 	sq_bracket_flag = 0;
    915      1.1     skrll 
    916      1.1     skrll       operandT++;
    917      1.1     skrll     }
    918      1.1     skrll 
    919      1.1     skrll   /* Adding the last operand.  */
    920      1.1     skrll   operand[op_num++] = strdup (operandH);
    921      1.1     skrll   crx_ins->nargs = op_num;
    922      1.1     skrll 
    923      1.1     skrll   /* Verifying correct syntax of operands (all brackets should be closed).  */
    924      1.1     skrll   if (bracket_flag || sq_bracket_flag)
    925      1.1     skrll     as_fatal (_("Missing matching brackets : `%s'"), ins_parse);
    926      1.1     skrll 
    927      1.1     skrll   /* Now we parse each operand separately.  */
    928      1.1     skrll   for (op_num = 0; op_num < crx_ins->nargs; op_num++)
    929      1.1     skrll     {
    930      1.1     skrll       cur_arg_num = op_num;
    931      1.1     skrll       parse_operand (operand[op_num], crx_ins);
    932      1.1     skrll       free (operand[op_num]);
    933      1.1     skrll     }
    934      1.1     skrll 
    935      1.1     skrll   if (allocated)
    936      1.1     skrll     free (operandS);
    937      1.1     skrll }
    938      1.1     skrll 
    939      1.1     skrll /* Get the trap index in dispatch table, given its name.
    940      1.1     skrll    This routine is used by assembling the 'excp' instruction.  */
    941      1.1     skrll 
    942      1.1     skrll static int
    943  1.1.1.2  christos gettrap (const char *s)
    944      1.1     skrll {
    945      1.1     skrll   const trap_entry *trap;
    946      1.1     skrll 
    947      1.1     skrll   for (trap = crx_traps; trap < (crx_traps + NUMTRAPS); trap++)
    948      1.1     skrll     if (strcasecmp (trap->name, s) == 0)
    949      1.1     skrll       return trap->entry;
    950      1.1     skrll 
    951      1.1     skrll   as_bad (_("Unknown exception: `%s'"), s);
    952      1.1     skrll   return 0;
    953      1.1     skrll }
    954      1.1     skrll 
    955  1.1.1.4  christos /* Post-Increment instructions, as well as Store-Immediate instructions, are a
    956  1.1.1.4  christos    sub-group within load/stor instruction groups.
    957  1.1.1.4  christos    Therefore, when parsing a Post-Increment/Store-Immediate insn, we have to
    958  1.1.1.4  christos    advance the instruction pointer to the start of that sub-group (that is, up
    959      1.1     skrll    to the first instruction of that type).
    960      1.1     skrll    Otherwise, the insn will be mistakenly identified as of type LD_STOR_INS.  */
    961      1.1     skrll 
    962      1.1     skrll static void
    963  1.1.1.2  christos handle_LoadStor (const char *operands)
    964      1.1     skrll {
    965  1.1.1.4  christos   /* Post-Increment instructions precede Store-Immediate instructions in
    966  1.1.1.4  christos      CRX instruction table, hence they are handled before.
    967      1.1     skrll      This synchronization should be kept.  */
    968      1.1     skrll 
    969      1.1     skrll   /* Assuming Post-Increment insn has the following format :
    970      1.1     skrll      'MNEMONIC DISP(REG)+, REG' (e.g. 'loadw 12(r5)+, r6').
    971      1.1     skrll      LD_STOR_INS_INC are the only store insns containing a plus sign (+).  */
    972      1.1     skrll   if (strstr (operands, ")+") != NULL)
    973      1.1     skrll     {
    974      1.1     skrll       while (! IS_INSN_TYPE (LD_STOR_INS_INC))
    975      1.1     skrll 	instruction++;
    976      1.1     skrll       return;
    977      1.1     skrll     }
    978      1.1     skrll 
    979      1.1     skrll   /* Assuming Store-Immediate insn has the following format :
    980      1.1     skrll      'MNEMONIC $DISP, ...' (e.g. 'storb $1, 12(r5)').
    981      1.1     skrll      STOR_IMM_INS are the only store insns containing a dollar sign ($).  */
    982      1.1     skrll   if (strstr (operands, "$") != NULL)
    983      1.1     skrll     while (! IS_INSN_TYPE (STOR_IMM_INS))
    984      1.1     skrll       instruction++;
    985      1.1     skrll }
    986      1.1     skrll 
    987      1.1     skrll /* Top level module where instruction parsing starts.
    988      1.1     skrll    crx_ins - data structure holds some information.
    989      1.1     skrll    operands - holds the operands part of the whole instruction.  */
    990      1.1     skrll 
    991      1.1     skrll static void
    992      1.1     skrll parse_insn (ins *insn, char *operands)
    993      1.1     skrll {
    994      1.1     skrll   int i;
    995      1.1     skrll 
    996      1.1     skrll   /* Handle instructions with no operands.  */
    997  1.1.1.6  christos   for (i = 0; crx_no_op_insn[i] != NULL; i++)
    998      1.1     skrll   {
    999  1.1.1.6  christos     if (streq (crx_no_op_insn[i], instruction->mnemonic))
   1000      1.1     skrll     {
   1001      1.1     skrll       insn->nargs = 0;
   1002      1.1     skrll       return;
   1003      1.1     skrll     }
   1004      1.1     skrll   }
   1005      1.1     skrll 
   1006      1.1     skrll   /* Handle 'excp'/'cinv' instructions.  */
   1007      1.1     skrll   if (IS_INSN_MNEMONIC ("excp") || IS_INSN_MNEMONIC ("cinv"))
   1008      1.1     skrll     {
   1009      1.1     skrll       insn->nargs = 1;
   1010      1.1     skrll       insn->arg[0].type = arg_ic;
   1011      1.1     skrll       insn->arg[0].constant = IS_INSN_MNEMONIC ("excp") ?
   1012      1.1     skrll 	gettrap (operands) : get_cinv_parameters (operands);
   1013      1.1     skrll       insn->arg[0].X_op = O_constant;
   1014      1.1     skrll       return;
   1015      1.1     skrll     }
   1016      1.1     skrll 
   1017      1.1     skrll   /* Handle load/stor unique instructions before parsing.  */
   1018      1.1     skrll   if (IS_INSN_TYPE (LD_STOR_INS))
   1019      1.1     skrll     handle_LoadStor (operands);
   1020      1.1     skrll 
   1021      1.1     skrll   if (operands != NULL)
   1022      1.1     skrll     parse_operands (insn, operands);
   1023      1.1     skrll }
   1024      1.1     skrll 
   1025      1.1     skrll /* Cinv instruction requires special handling.  */
   1026      1.1     skrll 
   1027      1.1     skrll static int
   1028  1.1.1.2  christos get_cinv_parameters (const char *operand)
   1029      1.1     skrll {
   1030  1.1.1.2  christos   const char *p = operand;
   1031      1.1     skrll   int d_used = 0, i_used = 0, u_used = 0, b_used = 0;
   1032      1.1     skrll 
   1033      1.1     skrll   while (*++p != ']')
   1034      1.1     skrll     {
   1035      1.1     skrll       if (*p == ',' || *p == ' ')
   1036      1.1     skrll 	continue;
   1037      1.1     skrll 
   1038      1.1     skrll       if (*p == 'd')
   1039      1.1     skrll 	d_used = 1;
   1040      1.1     skrll       else if (*p == 'i')
   1041      1.1     skrll 	i_used = 1;
   1042      1.1     skrll       else if (*p == 'u')
   1043      1.1     skrll 	u_used = 1;
   1044      1.1     skrll       else if (*p == 'b')
   1045      1.1     skrll 	b_used = 1;
   1046      1.1     skrll       else
   1047      1.1     skrll 	as_bad (_("Illegal `cinv' parameter: `%c'"), *p);
   1048      1.1     skrll     }
   1049      1.1     skrll 
   1050      1.1     skrll   return ((b_used ? 8 : 0)
   1051      1.1     skrll 	+ (d_used ? 4 : 0)
   1052      1.1     skrll 	+ (i_used ? 2 : 0)
   1053      1.1     skrll 	+ (u_used ? 1 : 0));
   1054      1.1     skrll }
   1055      1.1     skrll 
   1056      1.1     skrll /* Retrieve the opcode image of a given register.
   1057      1.1     skrll    If the register is illegal for the current instruction,
   1058      1.1     skrll    issue an error.  */
   1059      1.1     skrll 
   1060      1.1     skrll static int
   1061  1.1.1.9  christos getreg_image (int r)
   1062      1.1     skrll {
   1063  1.1.1.2  christos   const reg_entry *rreg;
   1064      1.1     skrll   char *reg_name;
   1065      1.1     skrll   int is_procreg = 0; /* Nonzero means argument should be processor reg.  */
   1066      1.1     skrll 
   1067      1.1     skrll   if (((IS_INSN_MNEMONIC ("mtpr")) && (cur_arg_num == 1))
   1068      1.1     skrll       || ((IS_INSN_MNEMONIC ("mfpr")) && (cur_arg_num == 0)) )
   1069      1.1     skrll     is_procreg = 1;
   1070      1.1     skrll 
   1071      1.1     skrll   /* Check whether the register is in registers table.  */
   1072      1.1     skrll   if (r < MAX_REG)
   1073  1.1.1.2  christos     rreg = &crx_regtab[r];
   1074      1.1     skrll   /* Check whether the register is in coprocessor registers table.  */
   1075  1.1.1.2  christos   else if (r < (int) MAX_COPREG)
   1076  1.1.1.2  christos     rreg = &crx_copregtab[r-MAX_REG];
   1077      1.1     skrll   /* Register not found.  */
   1078      1.1     skrll   else
   1079      1.1     skrll     {
   1080      1.1     skrll       as_bad (_("Unknown register: `%d'"), r);
   1081      1.1     skrll       return 0;
   1082      1.1     skrll     }
   1083      1.1     skrll 
   1084  1.1.1.2  christos   reg_name = rreg->name;
   1085      1.1     skrll 
   1086      1.1     skrll /* Issue a error message when register is illegal.  */
   1087      1.1     skrll #define IMAGE_ERR \
   1088  1.1.1.6  christos   as_bad (_("Illegal register (`%s') in instruction: `%s'"), \
   1089  1.1.1.7  christos 	  reg_name, ins_parse);
   1090      1.1     skrll 
   1091  1.1.1.2  christos   switch (rreg->type)
   1092      1.1     skrll   {
   1093      1.1     skrll     case CRX_U_REGTYPE:
   1094      1.1     skrll       if (is_procreg || (instruction->flags & USER_REG))
   1095  1.1.1.2  christos 	return rreg->image;
   1096      1.1     skrll       else
   1097      1.1     skrll 	IMAGE_ERR;
   1098  1.1.1.7  christos       break;
   1099      1.1     skrll 
   1100      1.1     skrll     case CRX_CFG_REGTYPE:
   1101      1.1     skrll       if (is_procreg)
   1102  1.1.1.2  christos 	return rreg->image;
   1103      1.1     skrll       else
   1104      1.1     skrll 	IMAGE_ERR;
   1105  1.1.1.7  christos       break;
   1106      1.1     skrll 
   1107      1.1     skrll     case CRX_R_REGTYPE:
   1108      1.1     skrll       if (! is_procreg)
   1109  1.1.1.2  christos 	return rreg->image;
   1110      1.1     skrll       else
   1111      1.1     skrll 	IMAGE_ERR;
   1112  1.1.1.7  christos       break;
   1113      1.1     skrll 
   1114      1.1     skrll     case CRX_C_REGTYPE:
   1115      1.1     skrll     case CRX_CS_REGTYPE:
   1116  1.1.1.2  christos       return rreg->image;
   1117      1.1     skrll       break;
   1118      1.1     skrll 
   1119      1.1     skrll     default:
   1120      1.1     skrll       IMAGE_ERR;
   1121  1.1.1.7  christos       break;
   1122      1.1     skrll   }
   1123      1.1     skrll 
   1124      1.1     skrll   return 0;
   1125      1.1     skrll }
   1126      1.1     skrll 
   1127      1.1     skrll /* Routine used to represent integer X using NBITS bits.  */
   1128      1.1     skrll 
   1129      1.1     skrll static long
   1130      1.1     skrll getconstant (long x, int nbits)
   1131      1.1     skrll {
   1132  1.1.1.3  christos   return x & ((((1U << (nbits - 1)) - 1) << 1) | 1);
   1133      1.1     skrll }
   1134      1.1     skrll 
   1135      1.1     skrll /* Print a constant value to 'output_opcode':
   1136      1.1     skrll    ARG holds the operand's type and value.
   1137      1.1     skrll    SHIFT represents the location of the operand to be print into.
   1138      1.1     skrll    NBITS determines the size (in bits) of the constant.  */
   1139      1.1     skrll 
   1140      1.1     skrll static void
   1141      1.1     skrll print_constant (int nbits, int shift, argument *arg)
   1142      1.1     skrll {
   1143      1.1     skrll   unsigned long mask = 0;
   1144  1.1.1.9  christos   unsigned long constant = getconstant (arg->constant, nbits);
   1145      1.1     skrll 
   1146      1.1     skrll   switch (nbits)
   1147      1.1     skrll   {
   1148      1.1     skrll     case 32:
   1149      1.1     skrll     case 28:
   1150      1.1     skrll     case 24:
   1151      1.1     skrll     case 22:
   1152      1.1     skrll       /* mask the upper part of the constant, that is, the bits
   1153      1.1     skrll 	 going to the lowest byte of output_opcode[0].
   1154      1.1     skrll 	 The upper part of output_opcode[1] is always filled,
   1155      1.1     skrll 	 therefore it is always masked with 0xFFFF.  */
   1156      1.1     skrll       mask = (1 << (nbits - 16)) - 1;
   1157      1.1     skrll       /* Divide the constant between two consecutive words :
   1158      1.1     skrll 		 0	   1	     2	       3
   1159      1.1     skrll 	    +---------+---------+---------+---------+
   1160      1.1     skrll 	    |	      | X X X X | X X X X |	    |
   1161      1.1     skrll 	    +---------+---------+---------+---------+
   1162      1.1     skrll 	      output_opcode[0]    output_opcode[1]     */
   1163      1.1     skrll 
   1164      1.1     skrll       CRX_PRINT (0, (constant >> WORD_SHIFT) & mask, 0);
   1165  1.1.1.9  christos       CRX_PRINT (1, constant & 0xFFFF, WORD_SHIFT);
   1166      1.1     skrll       break;
   1167      1.1     skrll 
   1168      1.1     skrll     case 16:
   1169      1.1     skrll     case 12:
   1170      1.1     skrll       /* Special case - in arg_cr, the SHIFT represents the location
   1171      1.1     skrll 	 of the REGISTER, not the constant, which is itself not shifted.  */
   1172      1.1     skrll       if (arg->type == arg_cr)
   1173      1.1     skrll 	{
   1174      1.1     skrll 	  CRX_PRINT (0, constant,  0);
   1175      1.1     skrll 	  break;
   1176      1.1     skrll 	}
   1177      1.1     skrll 
   1178  1.1.1.4  christos       /* When instruction size is 3 and 'shift' is 16, a 16-bit constant is
   1179  1.1.1.4  christos 	 always filling the upper part of output_opcode[1]. If we mistakenly
   1180      1.1     skrll 	 write it to output_opcode[0], the constant prefix (that is, 'match')
   1181      1.1     skrll 	 will be overridden.
   1182      1.1     skrll 		 0	   1	     2	       3
   1183      1.1     skrll 	    +---------+---------+---------+---------+
   1184      1.1     skrll 	    | 'match' |         | X X X X |	    |
   1185      1.1     skrll 	    +---------+---------+---------+---------+
   1186      1.1     skrll 	      output_opcode[0]    output_opcode[1]     */
   1187      1.1     skrll 
   1188      1.1     skrll       if ((instruction->size > 2) && (shift == WORD_SHIFT))
   1189      1.1     skrll 	CRX_PRINT (1, constant, WORD_SHIFT);
   1190      1.1     skrll       else
   1191      1.1     skrll 	CRX_PRINT (0, constant, shift);
   1192      1.1     skrll       break;
   1193      1.1     skrll 
   1194      1.1     skrll     default:
   1195      1.1     skrll       CRX_PRINT (0, constant,  shift);
   1196      1.1     skrll       break;
   1197      1.1     skrll   }
   1198      1.1     skrll }
   1199      1.1     skrll 
   1200      1.1     skrll /* Print an operand to 'output_opcode', which later on will be
   1201      1.1     skrll    printed to the object file:
   1202      1.1     skrll    ARG holds the operand's type, size and value.
   1203      1.1     skrll    SHIFT represents the printing location of operand.
   1204      1.1     skrll    NBITS determines the size (in bits) of a constant operand.  */
   1205      1.1     skrll 
   1206      1.1     skrll static void
   1207      1.1     skrll print_operand (int nbits, int shift, argument *arg)
   1208      1.1     skrll {
   1209      1.1     skrll   switch (arg->type)
   1210      1.1     skrll     {
   1211      1.1     skrll     case arg_r:
   1212      1.1     skrll       CRX_PRINT (0, getreg_image (arg->r), shift);
   1213      1.1     skrll       break;
   1214      1.1     skrll 
   1215      1.1     skrll     case arg_copr:
   1216      1.1     skrll       if (arg->cr < c0 || arg->cr > c15)
   1217  1.1.1.6  christos 	as_bad (_("Illegal co-processor register in instruction `%s'"),
   1218      1.1     skrll 		ins_parse);
   1219      1.1     skrll       CRX_PRINT (0, getreg_image (arg->cr), shift);
   1220      1.1     skrll       break;
   1221      1.1     skrll 
   1222      1.1     skrll     case arg_copsr:
   1223      1.1     skrll       if (arg->cr < cs0 || arg->cr > cs15)
   1224  1.1.1.6  christos 	as_bad (_("Illegal co-processor special register in instruction `%s'"),
   1225      1.1     skrll 		ins_parse);
   1226      1.1     skrll       CRX_PRINT (0, getreg_image (arg->cr), shift);
   1227      1.1     skrll       break;
   1228      1.1     skrll 
   1229      1.1     skrll     case arg_idxr:
   1230      1.1     skrll       /*    16      12	      8    6         0
   1231      1.1     skrll 	    +--------------------------------+
   1232      1.1     skrll 	    | r_base | r_idx  | scl|  disp   |
   1233      1.1     skrll 	    +--------------------------------+	  */
   1234      1.1     skrll       CRX_PRINT (0, getreg_image (arg->r), 12);
   1235      1.1     skrll       CRX_PRINT (0, getreg_image (arg->i_r), 8);
   1236      1.1     skrll       CRX_PRINT (0, arg->scale, 6);
   1237  1.1.1.6  christos       /* Fall through.  */
   1238      1.1     skrll     case arg_ic:
   1239      1.1     skrll     case arg_c:
   1240      1.1     skrll       print_constant (nbits, shift, arg);
   1241      1.1     skrll       break;
   1242      1.1     skrll 
   1243      1.1     skrll     case arg_rbase:
   1244      1.1     skrll       CRX_PRINT (0, getreg_image (arg->r), shift);
   1245      1.1     skrll       break;
   1246      1.1     skrll 
   1247      1.1     skrll     case arg_cr:
   1248      1.1     skrll       /* case base_cst4.  */
   1249      1.1     skrll       if (instruction->flags & DISPU4MAP)
   1250      1.1     skrll 	print_constant (nbits, shift + REG_SIZE, arg);
   1251      1.1     skrll       else
   1252      1.1     skrll 	/* rbase_disps<NN> and other such cases.  */
   1253      1.1     skrll 	print_constant (nbits, shift, arg);
   1254      1.1     skrll       /* Add the register argument to the output_opcode.  */
   1255      1.1     skrll       CRX_PRINT (0, getreg_image (arg->r), shift);
   1256      1.1     skrll       break;
   1257      1.1     skrll 
   1258      1.1     skrll     default:
   1259      1.1     skrll       break;
   1260      1.1     skrll     }
   1261      1.1     skrll }
   1262      1.1     skrll 
   1263      1.1     skrll /* Retrieve the number of operands for the current assembled instruction.  */
   1264      1.1     skrll 
   1265      1.1     skrll static int
   1266      1.1     skrll get_number_of_operands (void)
   1267      1.1     skrll {
   1268      1.1     skrll   int i;
   1269      1.1     skrll 
   1270      1.1     skrll   for (i = 0; instruction->operands[i].op_type && i < MAX_OPERANDS; i++)
   1271      1.1     skrll     ;
   1272      1.1     skrll   return i;
   1273      1.1     skrll }
   1274      1.1     skrll 
   1275  1.1.1.4  christos /* Verify that the number NUM can be represented in BITS bits (that is,
   1276  1.1.1.4  christos    within its permitted range), based on the instruction's FLAGS.
   1277      1.1     skrll    If UPDATE is nonzero, update the value of NUM if necessary.
   1278      1.1     skrll    Return OP_LEGAL upon success, actual error type upon failure.  */
   1279      1.1     skrll 
   1280      1.1     skrll static op_err
   1281      1.1     skrll check_range (long *num, int bits, int unsigned flags, int update)
   1282      1.1     skrll {
   1283  1.1.1.3  christos   uint32_t max;
   1284  1.1.1.5  christos   op_err retval = OP_LEGAL;
   1285      1.1     skrll   int bin;
   1286  1.1.1.3  christos   uint32_t upper_64kb = 0xffff0000;
   1287  1.1.1.3  christos   uint32_t value = *num;
   1288      1.1     skrll 
   1289      1.1     skrll   /* Verify operand value is even.  */
   1290      1.1     skrll   if (flags & OP_EVEN)
   1291      1.1     skrll     {
   1292      1.1     skrll       if (value % 2)
   1293      1.1     skrll 	return OP_NOT_EVEN;
   1294      1.1     skrll     }
   1295      1.1     skrll 
   1296      1.1     skrll   if (flags & OP_UPPER_64KB)
   1297      1.1     skrll     {
   1298      1.1     skrll       /* Check if value is to be mapped to upper 64 KB memory area.  */
   1299      1.1     skrll       if ((value & upper_64kb) == upper_64kb)
   1300      1.1     skrll 	{
   1301      1.1     skrll 	  value -= upper_64kb;
   1302      1.1     skrll 	  if (update)
   1303      1.1     skrll 	    *num = value;
   1304      1.1     skrll 	}
   1305      1.1     skrll       else
   1306      1.1     skrll 	return OP_NOT_UPPER_64KB;
   1307      1.1     skrll     }
   1308      1.1     skrll 
   1309      1.1     skrll   if (flags & OP_SHIFT)
   1310      1.1     skrll     {
   1311  1.1.1.3  christos       /* All OP_SHIFT args are also OP_SIGNED, so we want to keep the
   1312  1.1.1.3  christos 	 sign.  However, right shift of a signed type with a negative
   1313  1.1.1.3  christos 	 value is implementation defined.  See ISO C 6.5.7.  So we use
   1314  1.1.1.3  christos 	 an unsigned type and sign extend afterwards.  */
   1315      1.1     skrll       value >>= 1;
   1316  1.1.1.3  christos       value = (value ^ 0x40000000) - 0x40000000;
   1317      1.1     skrll       if (update)
   1318      1.1     skrll 	*num = value;
   1319      1.1     skrll     }
   1320      1.1     skrll   else if (flags & OP_SHIFT_DEC)
   1321      1.1     skrll     {
   1322      1.1     skrll       value = (value >> 1) - 1;
   1323      1.1     skrll       if (update)
   1324      1.1     skrll 	*num = value;
   1325      1.1     skrll     }
   1326      1.1     skrll 
   1327      1.1     skrll   if (flags & OP_ESC)
   1328      1.1     skrll     {
   1329      1.1     skrll       /* 0x7e and 0x7f are reserved escape sequences of dispe9.  */
   1330      1.1     skrll       if (value == 0x7e || value == 0x7f)
   1331      1.1     skrll 	return OP_OUT_OF_RANGE;
   1332      1.1     skrll     }
   1333      1.1     skrll 
   1334      1.1     skrll   if (flags & OP_DISPU4)
   1335      1.1     skrll     {
   1336      1.1     skrll       int is_dispu4 = 0;
   1337      1.1     skrll 
   1338  1.1.1.4  christos       uint32_t mul = (instruction->flags & DISPUB4 ? 1
   1339  1.1.1.3  christos 		      : instruction->flags & DISPUW4 ? 2
   1340  1.1.1.3  christos 		      : instruction->flags & DISPUD4 ? 4
   1341  1.1.1.3  christos 		      : 0);
   1342  1.1.1.4  christos 
   1343  1.1.1.6  christos       for (bin = 0; bin < crx_cst4_maps; bin++)
   1344      1.1     skrll 	{
   1345  1.1.1.3  christos 	  if (value == mul * bin)
   1346      1.1     skrll 	    {
   1347      1.1     skrll 	      is_dispu4 = 1;
   1348      1.1     skrll 	      if (update)
   1349      1.1     skrll 		*num = bin;
   1350      1.1     skrll 	      break;
   1351      1.1     skrll 	    }
   1352      1.1     skrll 	}
   1353      1.1     skrll       if (!is_dispu4)
   1354      1.1     skrll 	retval = OP_ILLEGAL_DISPU4;
   1355      1.1     skrll     }
   1356      1.1     skrll   else if (flags & OP_CST4)
   1357      1.1     skrll     {
   1358      1.1     skrll       int is_cst4 = 0;
   1359      1.1     skrll 
   1360  1.1.1.6  christos       for (bin = 0; bin < crx_cst4_maps; bin++)
   1361      1.1     skrll 	{
   1362  1.1.1.6  christos 	  if (value == (uint32_t) crx_cst4_map[bin])
   1363      1.1     skrll 	    {
   1364      1.1     skrll 	      is_cst4 = 1;
   1365      1.1     skrll 	      if (update)
   1366      1.1     skrll 		*num = bin;
   1367      1.1     skrll 	      break;
   1368      1.1     skrll 	    }
   1369      1.1     skrll 	}
   1370      1.1     skrll       if (!is_cst4)
   1371      1.1     skrll 	retval = OP_ILLEGAL_CST4;
   1372      1.1     skrll     }
   1373      1.1     skrll   else if (flags & OP_SIGNED)
   1374      1.1     skrll     {
   1375  1.1.1.3  christos       max = 1;
   1376  1.1.1.3  christos       max = max << (bits - 1);
   1377  1.1.1.3  christos       value += max;
   1378  1.1.1.3  christos       max = ((max - 1) << 1) | 1;
   1379  1.1.1.3  christos       if (value > max)
   1380      1.1     skrll 	retval = OP_OUT_OF_RANGE;
   1381      1.1     skrll     }
   1382      1.1     skrll   else if (flags & OP_UNSIGNED)
   1383      1.1     skrll     {
   1384  1.1.1.3  christos       max = 1;
   1385  1.1.1.3  christos       max = max << (bits - 1);
   1386  1.1.1.3  christos       max = ((max - 1) << 1) | 1;
   1387  1.1.1.3  christos       if (value > max)
   1388      1.1     skrll 	retval = OP_OUT_OF_RANGE;
   1389      1.1     skrll     }
   1390      1.1     skrll   return retval;
   1391      1.1     skrll }
   1392      1.1     skrll 
   1393      1.1     skrll /* Assemble a single instruction:
   1394      1.1     skrll    INSN is already parsed (that is, all operand values and types are set).
   1395  1.1.1.4  christos    For instruction to be assembled, we need to find an appropriate template in
   1396      1.1     skrll    the instruction table, meeting the following conditions:
   1397      1.1     skrll     1: Has the same number of operands.
   1398      1.1     skrll     2: Has the same operand types.
   1399      1.1     skrll     3: Each operand size is sufficient to represent the instruction's values.
   1400      1.1     skrll    Returns 1 upon success, 0 upon failure.  */
   1401      1.1     skrll 
   1402      1.1     skrll static int
   1403      1.1     skrll assemble_insn (char *mnemonic, ins *insn)
   1404      1.1     skrll {
   1405      1.1     skrll   /* Type of each operand in the current template.  */
   1406      1.1     skrll   argtype cur_type[MAX_OPERANDS];
   1407      1.1     skrll   /* Size (in bits) of each operand in the current template.  */
   1408      1.1     skrll   unsigned int cur_size[MAX_OPERANDS];
   1409      1.1     skrll   /* Flags of each operand in the current template.  */
   1410      1.1     skrll   unsigned int cur_flags[MAX_OPERANDS];
   1411      1.1     skrll   /* Instruction type to match.  */
   1412      1.1     skrll   unsigned int ins_type;
   1413      1.1     skrll   /* Boolean flag to mark whether a match was found.  */
   1414      1.1     skrll   int match = 0;
   1415      1.1     skrll   int i;
   1416      1.1     skrll   /* Nonzero if an instruction with same number of operands was found.  */
   1417      1.1     skrll   int found_same_number_of_operands = 0;
   1418      1.1     skrll   /* Nonzero if an instruction with same argument types was found.  */
   1419      1.1     skrll   int found_same_argument_types = 0;
   1420      1.1     skrll   /* Nonzero if a constant was found within the required range.  */
   1421      1.1     skrll   int found_const_within_range  = 0;
   1422      1.1     skrll   /* Argument number of an operand with invalid type.  */
   1423      1.1     skrll   int invalid_optype = -1;
   1424      1.1     skrll   /* Argument number of an operand with invalid constant value.  */
   1425      1.1     skrll   int invalid_const  = -1;
   1426      1.1     skrll   /* Operand error (used for issuing various constant error messages).  */
   1427      1.1     skrll   op_err op_error, const_err = OP_LEGAL;
   1428      1.1     skrll 
   1429  1.1.1.9  christos   /* Retrieve data (based on FUNC) for each operand of a given instruction.  */
   1430  1.1.1.9  christos #define GET_CURRENT_DATA(FUNC, ARRAY)			\
   1431  1.1.1.9  christos   for (i = 0; i < insn->nargs; i++)			\
   1432      1.1     skrll     ARRAY[i] = FUNC (instruction->operands[i].op_type)
   1433      1.1     skrll 
   1434      1.1     skrll #define GET_CURRENT_TYPE    GET_CURRENT_DATA(get_optype, cur_type)
   1435      1.1     skrll #define GET_CURRENT_SIZE    GET_CURRENT_DATA(get_opbits, cur_size)
   1436      1.1     skrll #define GET_CURRENT_FLAGS   GET_CURRENT_DATA(get_opflags, cur_flags)
   1437      1.1     skrll 
   1438      1.1     skrll   /* Instruction has no operands -> only copy the constant opcode.   */
   1439      1.1     skrll   if (insn->nargs == 0)
   1440      1.1     skrll     {
   1441      1.1     skrll       output_opcode[0] = BIN (instruction->match, instruction->match_bits);
   1442      1.1     skrll       return 1;
   1443      1.1     skrll     }
   1444      1.1     skrll 
   1445      1.1     skrll   /* In some case, same mnemonic can appear with different instruction types.
   1446      1.1     skrll      For example, 'storb' is supported with 3 different types :
   1447      1.1     skrll      LD_STOR_INS, LD_STOR_INS_INC, STOR_IMM_INS.
   1448  1.1.1.4  christos      We assume that when reaching this point, the instruction type was
   1449      1.1     skrll      pre-determined. We need to make sure that the type stays the same
   1450      1.1     skrll      during a search for matching instruction.  */
   1451      1.1     skrll   ins_type = CRX_INS_TYPE(instruction->flags);
   1452      1.1     skrll 
   1453      1.1     skrll   while (/* Check that match is still not found.  */
   1454      1.1     skrll 	 match != 1
   1455      1.1     skrll 	 /* Check we didn't get to end of table.  */
   1456      1.1     skrll 	 && instruction->mnemonic != NULL
   1457      1.1     skrll 	 /* Check that the actual mnemonic is still available.  */
   1458      1.1     skrll 	 && IS_INSN_MNEMONIC (mnemonic)
   1459      1.1     skrll 	 /* Check that the instruction type wasn't changed.  */
   1460      1.1     skrll 	 && IS_INSN_TYPE(ins_type))
   1461      1.1     skrll     {
   1462      1.1     skrll       /* Check whether number of arguments is legal.  */
   1463      1.1     skrll       if (get_number_of_operands () != insn->nargs)
   1464      1.1     skrll 	goto next_insn;
   1465      1.1     skrll       found_same_number_of_operands = 1;
   1466      1.1     skrll 
   1467      1.1     skrll       /* Initialize arrays with data of each operand in current template.  */
   1468      1.1     skrll       GET_CURRENT_TYPE;
   1469      1.1     skrll       GET_CURRENT_SIZE;
   1470      1.1     skrll       GET_CURRENT_FLAGS;
   1471      1.1     skrll 
   1472      1.1     skrll       /* Check for type compatibility.  */
   1473      1.1     skrll       for (i = 0; i < insn->nargs; i++)
   1474  1.1.1.9  christos 	{
   1475      1.1     skrll 	  if (cur_type[i] != insn->arg[i].type)
   1476      1.1     skrll 	    {
   1477      1.1     skrll 	      if (invalid_optype == -1)
   1478      1.1     skrll 		invalid_optype = i + 1;
   1479      1.1     skrll 	      goto next_insn;
   1480      1.1     skrll 	    }
   1481      1.1     skrll 	}
   1482      1.1     skrll       found_same_argument_types = 1;
   1483      1.1     skrll 
   1484      1.1     skrll       for (i = 0; i < insn->nargs; i++)
   1485      1.1     skrll 	{
   1486      1.1     skrll 	  /* Reverse the operand indices for certain opcodes:
   1487      1.1     skrll 	     Index 0	  -->> 1
   1488  1.1.1.4  christos 	     Index 1	  -->> 0
   1489      1.1     skrll 	     Other index  -->> stays the same.  */
   1490  1.1.1.9  christos 	  int j = (instruction->flags & REVERSE_MATCH) && i <= 1 ? 1 - i : i;
   1491      1.1     skrll 
   1492  1.1.1.4  christos 	  /* Only check range - don't update the constant's value, since the
   1493  1.1.1.4  christos 	     current instruction may not be the last we try to match.
   1494  1.1.1.4  christos 	     The constant's value will be updated later, right before printing
   1495      1.1     skrll 	     it to the object file.  */
   1496  1.1.1.9  christos 	  if ((insn->arg[j].X_op == O_constant)
   1497  1.1.1.9  christos 	      && (op_error = check_range (&insn->arg[j].constant, cur_size[j],
   1498  1.1.1.9  christos 					  cur_flags[j], 0)))
   1499  1.1.1.9  christos 	    {
   1500      1.1     skrll 	      if (invalid_const == -1)
   1501  1.1.1.9  christos 		{
   1502  1.1.1.9  christos 		  invalid_const = j + 1;
   1503  1.1.1.9  christos 		  const_err = op_error;
   1504  1.1.1.9  christos 		}
   1505      1.1     skrll 	      goto next_insn;
   1506      1.1     skrll 	    }
   1507  1.1.1.4  christos 	  /* For symbols, we make sure the relocation size (which was already
   1508      1.1     skrll 	     determined) is sufficient.  */
   1509      1.1     skrll 	  else if ((insn->arg[j].X_op == O_symbol)
   1510  1.1.1.9  christos 		   && ((bfd_reloc_type_lookup (stdoutput, insn->rtype))->bitsize
   1511  1.1.1.9  christos 		       > cur_size[j]))
   1512  1.1.1.9  christos 	    goto next_insn;
   1513      1.1     skrll 	}
   1514      1.1     skrll       found_const_within_range = 1;
   1515      1.1     skrll 
   1516      1.1     skrll       /* If we got till here -> Full match is found.  */
   1517      1.1     skrll       match = 1;
   1518      1.1     skrll       break;
   1519      1.1     skrll 
   1520  1.1.1.9  christos       /* Try again with next instruction.  */
   1521  1.1.1.9  christos     next_insn:
   1522      1.1     skrll       instruction++;
   1523      1.1     skrll     }
   1524      1.1     skrll 
   1525      1.1     skrll   if (!match)
   1526      1.1     skrll     {
   1527      1.1     skrll       /* We haven't found a match - instruction can't be assembled.  */
   1528      1.1     skrll       if (!found_same_number_of_operands)
   1529      1.1     skrll 	as_bad (_("Incorrect number of operands"));
   1530      1.1     skrll       else if (!found_same_argument_types)
   1531      1.1     skrll 	as_bad (_("Illegal type of operand (arg %d)"), invalid_optype);
   1532      1.1     skrll       else if (!found_const_within_range)
   1533      1.1     skrll 	{
   1534  1.1.1.9  christos 	  switch (const_err)
   1535  1.1.1.9  christos 	    {
   1536  1.1.1.9  christos 	    case OP_OUT_OF_RANGE:
   1537  1.1.1.9  christos 	      as_bad (_("Operand out of range (arg %d)"), invalid_const);
   1538  1.1.1.9  christos 	      break;
   1539  1.1.1.9  christos 	    case OP_NOT_EVEN:
   1540  1.1.1.9  christos 	      as_bad (_("Operand has odd displacement (arg %d)"),
   1541  1.1.1.9  christos 		      invalid_const);
   1542  1.1.1.9  christos 	      break;
   1543  1.1.1.9  christos 	    case OP_ILLEGAL_DISPU4:
   1544  1.1.1.9  christos 	      as_bad (_("Invalid DISPU4 operand value (arg %d)"),
   1545  1.1.1.9  christos 		      invalid_const);
   1546  1.1.1.9  christos 	      break;
   1547  1.1.1.9  christos 	    case OP_ILLEGAL_CST4:
   1548  1.1.1.9  christos 	      as_bad (_("Invalid CST4 operand value (arg %d)"), invalid_const);
   1549  1.1.1.9  christos 	      break;
   1550  1.1.1.9  christos 	    case OP_NOT_UPPER_64KB:
   1551  1.1.1.9  christos 	      as_bad (_("Operand value is not within upper 64 KB (arg %d)"),
   1552  1.1.1.9  christos 		      invalid_const);
   1553  1.1.1.9  christos 	      break;
   1554  1.1.1.9  christos 	    default:
   1555  1.1.1.9  christos 	      as_bad (_("Illegal operand (arg %d)"), invalid_const);
   1556  1.1.1.9  christos 	      break;
   1557  1.1.1.9  christos 	    }
   1558      1.1     skrll 	}
   1559  1.1.1.4  christos 
   1560      1.1     skrll       return 0;
   1561      1.1     skrll     }
   1562      1.1     skrll   else
   1563      1.1     skrll     /* Full match - print the encoding to output file.  */
   1564      1.1     skrll     {
   1565  1.1.1.6  christos       /* Make further checking (such that couldn't be made earlier).
   1566      1.1     skrll 	 Warn the user if necessary.  */
   1567      1.1     skrll       warn_if_needed (insn);
   1568  1.1.1.4  christos 
   1569      1.1     skrll       /* Check whether we need to adjust the instruction pointer.  */
   1570      1.1     skrll       if (adjust_if_needed (insn))
   1571  1.1.1.4  christos 	/* If instruction pointer was adjusted, we need to update
   1572      1.1     skrll 	   the size of the current template operands.  */
   1573      1.1     skrll 	GET_CURRENT_SIZE;
   1574      1.1     skrll 
   1575      1.1     skrll       for (i = 0; i < insn->nargs; i++)
   1576  1.1.1.9  christos 	{
   1577  1.1.1.9  christos 	  int j = (instruction->flags & REVERSE_MATCH) && i <= 1 ? 1 - i : i;
   1578      1.1     skrll 
   1579      1.1     skrll 	  /* This time, update constant value before printing it.  */
   1580  1.1.1.9  christos 	  if ((insn->arg[j].X_op == O_constant)
   1581  1.1.1.9  christos 	      && (check_range (&insn->arg[j].constant, cur_size[j],
   1582  1.1.1.9  christos 			       cur_flags[j], 1) != OP_LEGAL))
   1583  1.1.1.9  christos 	    as_fatal (_("Illegal operand (arg %d)"), j+1);
   1584      1.1     skrll 	}
   1585      1.1     skrll 
   1586      1.1     skrll       /* First, copy the instruction's opcode.  */
   1587      1.1     skrll       output_opcode[0] = BIN (instruction->match, instruction->match_bits);
   1588      1.1     skrll 
   1589      1.1     skrll       for (i = 0; i < insn->nargs; i++)
   1590  1.1.1.9  christos 	{
   1591      1.1     skrll 	  cur_arg_num = i;
   1592  1.1.1.9  christos 	  print_operand (cur_size[i], instruction->operands[i].shift,
   1593      1.1     skrll 			 &insn->arg[i]);
   1594  1.1.1.9  christos 	}
   1595      1.1     skrll     }
   1596      1.1     skrll 
   1597      1.1     skrll   return 1;
   1598      1.1     skrll }
   1599      1.1     skrll 
   1600  1.1.1.6  christos /* Bunch of error checking.
   1601      1.1     skrll    The checks are made after a matching instruction was found.  */
   1602      1.1     skrll 
   1603      1.1     skrll void
   1604      1.1     skrll warn_if_needed (ins *insn)
   1605      1.1     skrll {
   1606  1.1.1.4  christos   /* If the post-increment address mode is used and the load/store
   1607  1.1.1.4  christos      source register is the same as rbase, the result of the
   1608      1.1     skrll      instruction is undefined.  */
   1609      1.1     skrll   if (IS_INSN_TYPE (LD_STOR_INS_INC))
   1610      1.1     skrll     {
   1611      1.1     skrll       /* Enough to verify that one of the arguments is a simple reg.  */
   1612      1.1     skrll       if ((insn->arg[0].type == arg_r) || (insn->arg[1].type == arg_r))
   1613      1.1     skrll 	if (insn->arg[0].r == insn->arg[1].r)
   1614  1.1.1.4  christos 	  as_bad (_("Same src/dest register is used (`r%d'), result is undefined"),
   1615      1.1     skrll 		   insn->arg[0].r);
   1616      1.1     skrll     }
   1617      1.1     skrll 
   1618      1.1     skrll   /* Some instruction assume the stack pointer as rptr operand.
   1619      1.1     skrll      Issue an error when the register to be loaded is also SP.  */
   1620      1.1     skrll   if (instruction->flags & NO_SP)
   1621      1.1     skrll     {
   1622      1.1     skrll       if (getreg_image (insn->arg[0].r) == getreg_image (sp))
   1623      1.1     skrll 	as_bad (_("`%s' has undefined result"), ins_parse);
   1624      1.1     skrll     }
   1625      1.1     skrll 
   1626  1.1.1.4  christos   /* If the rptr register is specified as one of the registers to be loaded,
   1627      1.1     skrll      the final contents of rptr are undefined. Thus, we issue an error.  */
   1628      1.1     skrll   if (instruction->flags & NO_RPTR)
   1629      1.1     skrll     {
   1630      1.1     skrll       if ((1 << getreg_image (insn->arg[0].r)) & insn->arg[1].constant)
   1631  1.1.1.4  christos 	as_bad (_("Same src/dest register is used (`r%d'), result is undefined"),
   1632      1.1     skrll 	 getreg_image (insn->arg[0].r));
   1633      1.1     skrll     }
   1634      1.1     skrll }
   1635      1.1     skrll 
   1636  1.1.1.4  christos /* In some cases, we need to adjust the instruction pointer although a
   1637      1.1     skrll    match was already found. Here, we gather all these cases.
   1638      1.1     skrll    Returns 1 if instruction pointer was adjusted, otherwise 0.  */
   1639      1.1     skrll 
   1640      1.1     skrll int
   1641      1.1     skrll adjust_if_needed (ins *insn)
   1642      1.1     skrll {
   1643      1.1     skrll   int ret_value = 0;
   1644      1.1     skrll 
   1645      1.1     skrll   /* Special check for 'addub $0, r0' instruction -
   1646      1.1     skrll      The opcode '0000 0000 0000 0000' is not allowed.  */
   1647      1.1     skrll   if (IS_INSN_MNEMONIC ("addub"))
   1648      1.1     skrll     {
   1649      1.1     skrll       if ((instruction->operands[0].op_type == cst4)
   1650      1.1     skrll 	  && instruction->operands[1].op_type == regr)
   1651  1.1.1.9  christos 	{
   1652  1.1.1.9  christos 	  if (insn->arg[0].constant == 0 && insn->arg[1].r == r0)
   1653      1.1     skrll 	    {
   1654      1.1     skrll 	      instruction++;
   1655      1.1     skrll 	      ret_value = 1;
   1656      1.1     skrll 	    }
   1657  1.1.1.9  christos 	}
   1658      1.1     skrll     }
   1659      1.1     skrll 
   1660  1.1.1.4  christos   /* Optimization: Omit a zero displacement in bit operations,
   1661      1.1     skrll      saving 2-byte encoding space (e.g., 'cbitw $8, 0(r1)').  */
   1662      1.1     skrll   if (IS_INSN_TYPE (CSTBIT_INS))
   1663      1.1     skrll     {
   1664      1.1     skrll       if ((instruction->operands[1].op_type == rbase_disps12)
   1665  1.1.1.9  christos 	  && (insn->arg[1].X_op == O_constant)
   1666  1.1.1.9  christos 	  && (insn->arg[1].constant == 0))
   1667  1.1.1.9  christos 	{
   1668  1.1.1.9  christos 	  instruction--;
   1669  1.1.1.9  christos 	  ret_value = 1;
   1670  1.1.1.9  christos 	}
   1671      1.1     skrll     }
   1672      1.1     skrll 
   1673      1.1     skrll   return ret_value;
   1674      1.1     skrll }
   1675      1.1     skrll 
   1676      1.1     skrll /* Set the appropriate bit for register 'r' in 'mask'.
   1677      1.1     skrll    This indicates that this register is loaded or stored by
   1678      1.1     skrll    the instruction.  */
   1679      1.1     skrll 
   1680      1.1     skrll static void
   1681      1.1     skrll mask_reg (int r, unsigned short int *mask)
   1682      1.1     skrll {
   1683      1.1     skrll   if ((reg)r > (reg)sp)
   1684      1.1     skrll     {
   1685  1.1.1.6  christos       as_bad (_("Invalid register in register list"));
   1686      1.1     skrll       return;
   1687      1.1     skrll     }
   1688      1.1     skrll 
   1689      1.1     skrll   *mask |= (1 << r);
   1690      1.1     skrll }
   1691      1.1     skrll 
   1692      1.1     skrll /* Preprocess register list - create a 16-bit mask with one bit for each
   1693      1.1     skrll    of the 16 general purpose registers. If a bit is set, it indicates
   1694      1.1     skrll    that this register is loaded or stored by the instruction.  */
   1695      1.1     skrll 
   1696      1.1     skrll static char *
   1697      1.1     skrll preprocess_reglist (char *param, int *allocated)
   1698      1.1     skrll {
   1699      1.1     skrll   char reg_name[MAX_REGNAME_LEN]; /* Current parsed register name.  */
   1700      1.1     skrll   char *regP;			  /* Pointer to 'reg_name' string.  */
   1701      1.1     skrll   int reg_counter = 0;		  /* Count number of parsed registers.  */
   1702      1.1     skrll   unsigned short int mask = 0;	  /* Mask for 16 general purpose registers.  */
   1703      1.1     skrll   char *new_param;		  /* New created operands string.  */
   1704  1.1.1.6  christos   char *paramP = param;		  /* Pointer to original operands string.  */
   1705      1.1     skrll   char maskstring[10];		  /* Array to print the mask as a string.  */
   1706      1.1     skrll   int hi_found = 0, lo_found = 0; /* Boolean flags for hi/lo registers.  */
   1707      1.1     skrll   reg r;
   1708      1.1     skrll   copreg cr;
   1709      1.1     skrll 
   1710      1.1     skrll   /* If 'param' is already in form of a number, no need to preprocess.  */
   1711      1.1     skrll   if (strchr (paramP, '{') == NULL)
   1712      1.1     skrll     return param;
   1713      1.1     skrll 
   1714      1.1     skrll   /* Verifying correct syntax of operand.  */
   1715      1.1     skrll   if (strchr (paramP, '}') == NULL)
   1716      1.1     skrll     as_fatal (_("Missing matching brackets : `%s'"), ins_parse);
   1717      1.1     skrll 
   1718      1.1     skrll   while (*paramP++ != '{');
   1719      1.1     skrll 
   1720  1.1.1.5  christos   new_param = XCNEWVEC (char, MAX_INST_LEN);
   1721      1.1     skrll   *allocated = 1;
   1722      1.1     skrll   strncpy (new_param, param, paramP - param - 1);
   1723      1.1     skrll 
   1724      1.1     skrll   while (*paramP != '}')
   1725      1.1     skrll     {
   1726      1.1     skrll       regP = paramP;
   1727      1.1     skrll       memset (&reg_name, '\0', sizeof (reg_name));
   1728      1.1     skrll 
   1729      1.1     skrll       while (ISALNUM (*paramP))
   1730      1.1     skrll 	paramP++;
   1731      1.1     skrll 
   1732      1.1     skrll       strncpy (reg_name, regP, paramP - regP);
   1733      1.1     skrll 
   1734      1.1     skrll       /* Coprocessor register c<N>.  */
   1735      1.1     skrll       if (IS_INSN_TYPE (COP_REG_INS))
   1736  1.1.1.9  christos 	{
   1737  1.1.1.9  christos 	  if (((cr = get_copregister (reg_name)) == nullcopregister)
   1738      1.1     skrll 	      || (crx_copregtab[cr-MAX_REG].type != CRX_C_REGTYPE))
   1739      1.1     skrll 	    as_fatal (_("Illegal register `%s' in cop-register list"), reg_name);
   1740      1.1     skrll 	  mask_reg (getreg_image (cr - c0), &mask);
   1741  1.1.1.9  christos 	}
   1742      1.1     skrll       /* Coprocessor Special register cs<N>.  */
   1743      1.1     skrll       else if (IS_INSN_TYPE (COPS_REG_INS))
   1744  1.1.1.9  christos 	{
   1745  1.1.1.9  christos 	  if (((cr = get_copregister (reg_name)) == nullcopregister)
   1746      1.1     skrll 	      || (crx_copregtab[cr-MAX_REG].type != CRX_CS_REGTYPE))
   1747  1.1.1.4  christos 	    as_fatal (_("Illegal register `%s' in cop-special-register list"),
   1748      1.1     skrll 		      reg_name);
   1749      1.1     skrll 	  mask_reg (getreg_image (cr - cs0), &mask);
   1750  1.1.1.9  christos 	}
   1751      1.1     skrll       /* User register u<N>.  */
   1752      1.1     skrll       else if (instruction->flags & USER_REG)
   1753      1.1     skrll 	{
   1754      1.1     skrll 	  if (streq(reg_name, "uhi"))
   1755      1.1     skrll 	    {
   1756      1.1     skrll 	      hi_found = 1;
   1757      1.1     skrll 	      goto next_inst;
   1758      1.1     skrll 	    }
   1759      1.1     skrll 	  else if (streq(reg_name, "ulo"))
   1760      1.1     skrll 	    {
   1761      1.1     skrll 	      lo_found = 1;
   1762      1.1     skrll 	      goto next_inst;
   1763      1.1     skrll 	    }
   1764  1.1.1.9  christos 	  else if (((r = get_register (reg_name)) == nullregister)
   1765  1.1.1.9  christos 		   || (crx_regtab[r].type != CRX_U_REGTYPE))
   1766      1.1     skrll 	    as_fatal (_("Illegal register `%s' in user register list"), reg_name);
   1767  1.1.1.4  christos 
   1768  1.1.1.4  christos 	  mask_reg (getreg_image (r - u0), &mask);
   1769      1.1     skrll 	}
   1770      1.1     skrll       /* General purpose register r<N>.  */
   1771      1.1     skrll       else
   1772  1.1.1.9  christos 	{
   1773      1.1     skrll 	  if (streq(reg_name, "hi"))
   1774      1.1     skrll 	    {
   1775      1.1     skrll 	      hi_found = 1;
   1776      1.1     skrll 	      goto next_inst;
   1777      1.1     skrll 	    }
   1778      1.1     skrll 	  else if (streq(reg_name, "lo"))
   1779      1.1     skrll 	    {
   1780      1.1     skrll 	      lo_found = 1;
   1781      1.1     skrll 	      goto next_inst;
   1782      1.1     skrll 	    }
   1783  1.1.1.9  christos 	  else if (((r = get_register (reg_name)) == nullregister)
   1784  1.1.1.9  christos 		   || (crx_regtab[r].type != CRX_R_REGTYPE))
   1785      1.1     skrll 	    as_fatal (_("Illegal register `%s' in register list"), reg_name);
   1786      1.1     skrll 
   1787      1.1     skrll 	  mask_reg (getreg_image (r - r0), &mask);
   1788  1.1.1.9  christos 	}
   1789      1.1     skrll 
   1790      1.1     skrll       if (++reg_counter > MAX_REGS_IN_MASK16)
   1791      1.1     skrll 	as_bad (_("Maximum %d bits may be set in `mask16' operand"),
   1792      1.1     skrll 		MAX_REGS_IN_MASK16);
   1793      1.1     skrll 
   1794  1.1.1.9  christos     next_inst:
   1795      1.1     skrll       while (!ISALNUM (*paramP) && *paramP != '}')
   1796  1.1.1.9  christos 	paramP++;
   1797      1.1     skrll     }
   1798      1.1     skrll 
   1799      1.1     skrll   if (*++paramP != '\0')
   1800      1.1     skrll     as_warn (_("rest of line ignored; first ignored character is `%c'"),
   1801      1.1     skrll 	     *paramP);
   1802      1.1     skrll 
   1803      1.1     skrll   switch (hi_found + lo_found)
   1804      1.1     skrll     {
   1805      1.1     skrll     case 0:
   1806      1.1     skrll       /* At least one register should be specified.  */
   1807      1.1     skrll       if (mask == 0)
   1808      1.1     skrll 	as_bad (_("Illegal `mask16' operand, operation is undefined - `%s'"),
   1809      1.1     skrll 		ins_parse);
   1810      1.1     skrll       break;
   1811      1.1     skrll 
   1812      1.1     skrll     case 1:
   1813      1.1     skrll       /* HI can't be specified without LO (and vise-versa).  */
   1814      1.1     skrll       as_bad (_("HI/LO registers should be specified together"));
   1815      1.1     skrll       break;
   1816      1.1     skrll 
   1817      1.1     skrll     case 2:
   1818      1.1     skrll       /* HI/LO registers mustn't be masked with additional registers.  */
   1819      1.1     skrll       if (mask != 0)
   1820      1.1     skrll 	as_bad (_("HI/LO registers should be specified without additional registers"));
   1821      1.1     skrll 
   1822      1.1     skrll     default:
   1823      1.1     skrll       break;
   1824      1.1     skrll     }
   1825      1.1     skrll 
   1826      1.1     skrll   sprintf (maskstring, "$0x%x", mask);
   1827      1.1     skrll   strcat (new_param, maskstring);
   1828      1.1     skrll   return new_param;
   1829      1.1     skrll }
   1830      1.1     skrll 
   1831      1.1     skrll /* Print the instruction.
   1832      1.1     skrll    Handle also cases where the instruction is relaxable/relocatable.  */
   1833      1.1     skrll 
   1834  1.1.1.9  christos static void
   1835      1.1     skrll print_insn (ins *insn)
   1836      1.1     skrll {
   1837      1.1     skrll   unsigned int i, j, insn_size;
   1838      1.1     skrll   char *this_frag;
   1839      1.1     skrll   unsigned short words[4];
   1840      1.1     skrll   int addr_mod;
   1841      1.1     skrll 
   1842      1.1     skrll   /* Arrange the insn encodings in a WORD size array.  */
   1843      1.1     skrll   for (i = 0, j = 0; i < 2; i++)
   1844      1.1     skrll     {
   1845      1.1     skrll       words[j++] = (output_opcode[i] >> 16) & 0xFFFF;
   1846      1.1     skrll       words[j++] = output_opcode[i] & 0xFFFF;
   1847      1.1     skrll     }
   1848      1.1     skrll 
   1849  1.1.1.6  christos   /* Handle relaxation.  */
   1850      1.1     skrll   if ((instruction->flags & RELAXABLE) && relocatable)
   1851      1.1     skrll     {
   1852      1.1     skrll       int relax_subtype;
   1853      1.1     skrll 
   1854      1.1     skrll       /* Write the maximal instruction size supported.  */
   1855      1.1     skrll       insn_size = INSN_MAX_SIZE;
   1856      1.1     skrll 
   1857      1.1     skrll       /* bCC  */
   1858      1.1     skrll       if (IS_INSN_TYPE (BRANCH_INS))
   1859      1.1     skrll 	relax_subtype = 0;
   1860      1.1     skrll       /* bal  */
   1861      1.1     skrll       else if (IS_INSN_TYPE (DCR_BRANCH_INS) || IS_INSN_MNEMONIC ("bal"))
   1862      1.1     skrll 	relax_subtype = 3;
   1863      1.1     skrll       /* cmpbr/bcop  */
   1864      1.1     skrll       else if (IS_INSN_TYPE (CMPBR_INS) || IS_INSN_TYPE (COP_BRANCH_INS))
   1865      1.1     skrll 	relax_subtype = 5;
   1866      1.1     skrll       else
   1867      1.1     skrll 	abort ();
   1868      1.1     skrll 
   1869      1.1     skrll       this_frag = frag_var (rs_machine_dependent, insn_size * 2,
   1870      1.1     skrll 			    4, relax_subtype,
   1871      1.1     skrll 			    insn->exp.X_add_symbol,
   1872      1.1     skrll 			    insn->exp.X_add_number,
   1873      1.1     skrll 			    0);
   1874      1.1     skrll     }
   1875      1.1     skrll   else
   1876      1.1     skrll     {
   1877      1.1     skrll       insn_size = instruction->size;
   1878      1.1     skrll       this_frag = frag_more (insn_size * 2);
   1879      1.1     skrll 
   1880      1.1     skrll       /* Handle relocation.  */
   1881      1.1     skrll       if ((relocatable) && (insn->rtype != BFD_RELOC_NONE))
   1882      1.1     skrll 	{
   1883      1.1     skrll 	  reloc_howto_type *reloc_howto;
   1884      1.1     skrll 	  int size;
   1885      1.1     skrll 
   1886      1.1     skrll 	  reloc_howto = bfd_reloc_type_lookup (stdoutput, insn->rtype);
   1887      1.1     skrll 
   1888      1.1     skrll 	  if (!reloc_howto)
   1889      1.1     skrll 	    abort ();
   1890      1.1     skrll 
   1891      1.1     skrll 	  size = bfd_get_reloc_size (reloc_howto);
   1892      1.1     skrll 
   1893      1.1     skrll 	  if (size < 1 || size > 4)
   1894      1.1     skrll 	    abort ();
   1895      1.1     skrll 
   1896      1.1     skrll 	  fix_new_exp (frag_now, this_frag - frag_now->fr_literal,
   1897      1.1     skrll 		       size, &insn->exp, reloc_howto->pc_relative,
   1898      1.1     skrll 		       insn->rtype);
   1899      1.1     skrll 	}
   1900      1.1     skrll     }
   1901      1.1     skrll 
   1902      1.1     skrll   /* Verify a 2-byte code alignment.  */
   1903      1.1     skrll   addr_mod = frag_now_fix () & 1;
   1904      1.1     skrll   if (frag_now->has_code && frag_now->insn_addr != addr_mod)
   1905      1.1     skrll     as_bad (_("instruction address is not a multiple of 2"));
   1906      1.1     skrll   frag_now->insn_addr = addr_mod;
   1907      1.1     skrll   frag_now->has_code = 1;
   1908      1.1     skrll 
   1909      1.1     skrll   /* Write the instruction encoding to frag.  */
   1910      1.1     skrll   for (i = 0; i < insn_size; i++)
   1911      1.1     skrll     {
   1912      1.1     skrll       md_number_to_chars (this_frag, (valueT) words[i], 2);
   1913      1.1     skrll       this_frag += 2;
   1914      1.1     skrll     }
   1915      1.1     skrll }
   1916      1.1     skrll 
   1917      1.1     skrll /* This is the guts of the machine-dependent assembler.  OP points to a
   1918      1.1     skrll    machine dependent instruction.  This function is supposed to emit
   1919      1.1     skrll    the frags/bytes it assembles to.  */
   1920      1.1     skrll 
   1921      1.1     skrll void
   1922      1.1     skrll md_assemble (char *op)
   1923      1.1     skrll {
   1924      1.1     skrll   ins crx_ins;
   1925      1.1     skrll   char *param;
   1926      1.1     skrll   char c;
   1927      1.1     skrll 
   1928      1.1     skrll   /* Reset global variables for a new instruction.  */
   1929      1.1     skrll   reset_vars (op);
   1930      1.1     skrll 
   1931      1.1     skrll   /* Strip the mnemonic.  */
   1932      1.1     skrll   for (param = op; *param != 0 && !ISSPACE (*param); param++)
   1933      1.1     skrll     ;
   1934      1.1     skrll   c = *param;
   1935      1.1     skrll   *param++ = '\0';
   1936      1.1     skrll 
   1937      1.1     skrll   /* Find the instruction.  */
   1938  1.1.1.9  christos   instruction = (const inst *) str_hash_find (crx_inst_hash, op);
   1939      1.1     skrll   if (instruction == NULL)
   1940      1.1     skrll     {
   1941      1.1     skrll       as_bad (_("Unknown opcode: `%s'"), op);
   1942  1.1.1.2  christos       param[-1] = c;
   1943      1.1     skrll       return;
   1944      1.1     skrll     }
   1945      1.1     skrll 
   1946      1.1     skrll   /* Tie dwarf2 debug info to the address at the start of the insn.  */
   1947      1.1     skrll   dwarf2_emit_insn (0);
   1948      1.1     skrll 
   1949      1.1     skrll   /* Parse the instruction's operands.  */
   1950      1.1     skrll   parse_insn (&crx_ins, param);
   1951      1.1     skrll 
   1952      1.1     skrll   /* Assemble the instruction - return upon failure.  */
   1953      1.1     skrll   if (assemble_insn (op, &crx_ins) == 0)
   1954  1.1.1.2  christos     {
   1955  1.1.1.2  christos       param[-1] = c;
   1956  1.1.1.2  christos       return;
   1957  1.1.1.2  christos     }
   1958      1.1     skrll 
   1959      1.1     skrll   /* Print the instruction.  */
   1960  1.1.1.2  christos   param[-1] = c;
   1961      1.1     skrll   print_insn (&crx_ins);
   1962      1.1     skrll }
   1963