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tc-v850.c revision 1.1.1.9
      1      1.1     skrll /* tc-v850.c -- Assembler code for the NEC V850
      2  1.1.1.9  christos    Copyright (C) 1996-2025 Free Software Foundation, Inc.
      3      1.1     skrll 
      4      1.1     skrll    This file is part of GAS, the GNU Assembler.
      5      1.1     skrll 
      6      1.1     skrll    GAS is free software; you can redistribute it and/or modify
      7      1.1     skrll    it under the terms of the GNU General Public License as published by
      8      1.1     skrll    the Free Software Foundation; either version 3, or (at your option)
      9      1.1     skrll    any later version.
     10      1.1     skrll 
     11      1.1     skrll    GAS is distributed in the hope that it will be useful,
     12      1.1     skrll    but WITHOUT ANY WARRANTY; without even the implied warranty of
     13      1.1     skrll    MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
     14      1.1     skrll    GNU General Public License for more details.
     15      1.1     skrll 
     16      1.1     skrll    You should have received a copy of the GNU General Public License
     17      1.1     skrll    along with GAS; see the file COPYING.  If not, write to
     18      1.1     skrll    the Free Software Foundation, 51 Franklin Street - Fifth Floor,
     19      1.1     skrll    Boston, MA 02110-1301, USA.  */
     20      1.1     skrll 
     21      1.1     skrll #include "as.h"
     22      1.1     skrll #include "safe-ctype.h"
     23      1.1     skrll #include "subsegs.h"
     24      1.1     skrll #include "opcode/v850.h"
     25      1.1     skrll #include "dwarf2dbg.h"
     26      1.1     skrll 
     27      1.1     skrll /* Sign-extend a 16-bit number.  */
     28      1.1     skrll #define SEXT16(x)	((((x) & 0xffff) ^ (~0x7fff)) + 0x8000)
     29      1.1     skrll 
     30      1.1     skrll /* Set to TRUE if we want to be pedantic about signed overflows.  */
     31  1.1.1.7  christos static bool warn_signed_overflows   = false;
     32  1.1.1.7  christos static bool warn_unsigned_overflows = false;
     33      1.1     skrll 
     34  1.1.1.3  christos /* Non-zero if floating point insns are not being used.  */
     35  1.1.1.3  christos static signed int soft_float = -1;
     36  1.1.1.3  christos 
     37      1.1     skrll /* Indicates the target BFD machine number.  */
     38      1.1     skrll static int machine = -1;
     39      1.1     skrll 
     40  1.1.1.3  christos 
     41  1.1.1.5  christos /* Indicates the target BFD architecture.  */
     42  1.1.1.4  christos enum bfd_architecture v850_target_arch = bfd_arch_v850_rh850;
     43  1.1.1.3  christos const char * v850_target_format = "elf32-v850-rh850";
     44  1.1.1.3  christos static flagword v850_e_flags = 0;
     45  1.1.1.3  christos 
     46      1.1     skrll /* Indicates the target processor(s) for the assemble.  */
     47  1.1.1.2  christos static int processor_mask = 0;
     48      1.1     skrll 
     49      1.1     skrll /* Structure to hold information about predefined registers.  */
     51      1.1     skrll struct reg_name
     52      1.1     skrll {
     53      1.1     skrll   const char *name;
     54  1.1.1.2  christos   int value;
     55      1.1     skrll   unsigned int processors;
     56      1.1     skrll };
     57      1.1     skrll 
     58      1.1     skrll /* Generic assembler global variables which must be defined by all
     59      1.1     skrll    targets.  */
     60      1.1     skrll 
     61      1.1     skrll /* Characters which always start a comment.  */
     62      1.1     skrll const char comment_chars[] = "#";
     63      1.1     skrll 
     64      1.1     skrll /* Characters which start a comment at the beginning of a line.  */
     65      1.1     skrll const char line_comment_chars[] = ";#";
     66      1.1     skrll 
     67      1.1     skrll /* Characters which may be used to separate multiple commands on a
     68      1.1     skrll    single line.  */
     69      1.1     skrll const char line_separator_chars[] = ";";
     70      1.1     skrll 
     71      1.1     skrll /* Characters which are used to indicate an exponent in a floating
     72      1.1     skrll    point number.  */
     73      1.1     skrll const char EXP_CHARS[] = "eE";
     74      1.1     skrll 
     75      1.1     skrll /* Characters which mean that a number is a floating point constant,
     76      1.1     skrll    as in 0d1.0.  */
     77      1.1     skrll const char FLT_CHARS[] = "dD";
     78      1.1     skrll 
     79      1.1     skrll const relax_typeS md_relax_table[] =
     81  1.1.1.2  christos {
     82  1.1.1.2  christos   /* Conditional branches.(V850/V850E, max 22bit)  */
     83  1.1.1.2  christos #define SUBYPTE_COND_9_22	0
     84  1.1.1.2  christos   {0xfe,	 -0x100,        2, SUBYPTE_COND_9_22 + 1},
     85  1.1.1.2  christos   {0x1ffffe + 2, -0x200000 + 2, 6, 0},
     86  1.1.1.2  christos   /* Conditional branches.(V850/V850E, max 22bit)  */
     87  1.1.1.2  christos #define SUBYPTE_SA_9_22	2
     88  1.1.1.2  christos   {0xfe,         -0x100,      2, SUBYPTE_SA_9_22 + 1},
     89  1.1.1.2  christos   {0x1ffffe + 4, -0x200000 + 4, 8, 0},
     90  1.1.1.2  christos   /* Unconditional branches.(V850/V850E, max 22bit)  */
     91  1.1.1.2  christos #define SUBYPTE_UNCOND_9_22	4
     92  1.1.1.2  christos   {0xfe,     -0x100,    2, SUBYPTE_UNCOND_9_22 + 1},
     93  1.1.1.2  christos   {0x1ffffe, -0x200000, 4, 0},
     94  1.1.1.2  christos   /* Conditional branches.(V850E2, max 32bit)  */
     95  1.1.1.2  christos #define SUBYPTE_COND_9_22_32	6
     96  1.1.1.2  christos   {0xfe,     -0x100,    2, SUBYPTE_COND_9_22_32 + 1},
     97  1.1.1.2  christos   {0x1fffff + 2, -0x200000 + 2, 6, SUBYPTE_COND_9_22_32 + 2},
     98  1.1.1.2  christos   {0x7ffffffe, -0x80000000, 8, 0},
     99  1.1.1.2  christos   /* Conditional branches.(V850E2, max 32bit)  */
    100  1.1.1.2  christos #define SUBYPTE_SA_9_22_32	9
    101  1.1.1.2  christos   {0xfe,     -0x100,    2, SUBYPTE_SA_9_22_32 + 1},
    102  1.1.1.2  christos   {0x1ffffe + 4, -0x200000 + 4, 8, SUBYPTE_SA_9_22_32 + 2},
    103  1.1.1.2  christos   {0x7ffffffe, -0x80000000, 10, 0},
    104  1.1.1.2  christos   /* Unconditional branches.(V850E2, max 32bit)  */
    105  1.1.1.2  christos #define SUBYPTE_UNCOND_9_22_32	12
    106  1.1.1.2  christos   {0xfe,     -0x100,    2, SUBYPTE_UNCOND_9_22_32 + 1},
    107  1.1.1.2  christos   {0x1ffffe, -0x200000, 4, SUBYPTE_UNCOND_9_22_32 + 2},
    108  1.1.1.2  christos   {0x7ffffffe, -0x80000000, 6, 0},
    109  1.1.1.2  christos   /* Conditional branches.(V850E2R max 22bit)  */
    110  1.1.1.2  christos #define SUBYPTE_COND_9_17_22	15
    111  1.1.1.2  christos   {0xfe,     -0x100,    2, SUBYPTE_COND_9_17_22 + 1},
    112  1.1.1.2  christos   {0xfffe, -0x10000,	4, SUBYPTE_COND_9_17_22 + 2},
    113  1.1.1.2  christos   {0x1ffffe + 2, -0x200000 + 2, 6, 0},
    114  1.1.1.2  christos   /* Conditional branches.(V850E2R max 22bit)  */
    115  1.1.1.2  christos #define SUBYPTE_SA_9_17_22	18
    116  1.1.1.2  christos   {0xfe,     -0x100,    2, SUBYPTE_SA_9_17_22 + 1},
    117  1.1.1.2  christos   {0xfffe, -0x10000,	4, SUBYPTE_SA_9_17_22 + 2},
    118  1.1.1.2  christos   {0x1ffffe + 4, -0x200000 + 4, 8, 0},
    119  1.1.1.2  christos   /* Conditional branches.(V850E2R max 32bit)  */
    120  1.1.1.2  christos #define SUBYPTE_COND_9_17_22_32	21
    121  1.1.1.2  christos   {0xfe,     -0x100,    2, SUBYPTE_COND_9_17_22_32 + 1},
    122  1.1.1.2  christos   {0xfffe, -0x10000,	4, SUBYPTE_COND_9_17_22_32 + 2},
    123  1.1.1.2  christos   {0x1ffffe + 2, -0x200000 + 2, 6, SUBYPTE_COND_9_17_22_32 + 3},
    124  1.1.1.2  christos   {0x7ffffffe, -0x80000000, 8, 0},
    125  1.1.1.2  christos   /* Conditional branches.(V850E2R max 32bit)  */
    126  1.1.1.2  christos #define SUBYPTE_SA_9_17_22_32	25
    127  1.1.1.2  christos   {0xfe,     -0x100,    2, SUBYPTE_SA_9_17_22_32 + 1},
    128  1.1.1.2  christos   {0xfffe, -0x10000,	4, SUBYPTE_SA_9_17_22_32 + 2},
    129  1.1.1.3  christos   {0x1ffffe + 4, -0x200000 + 4, 8, SUBYPTE_SA_9_17_22_32 + 3},
    130  1.1.1.3  christos   {0x7ffffffe, -0x80000000, 10, 0},
    131  1.1.1.3  christos   /* Loop.  (V850E2V4_UP, max 22-bit).  */
    132  1.1.1.3  christos #define SUBYPTE_LOOP_16_22	29
    133      1.1     skrll   {0x0, -0x0fffe, 4, SUBYPTE_LOOP_16_22 + 1},
    134      1.1     skrll   {0x1ffffe + 2, -0x200000 + 2, 6, 0},
    135  1.1.1.2  christos };
    136  1.1.1.2  christos 
    137  1.1.1.2  christos static int v850_relax = 0;
    138  1.1.1.2  christos 
    139  1.1.1.2  christos /* Default branch disp size 22 or 32.  */
    140  1.1.1.2  christos static int default_disp_size = 22;
    141  1.1.1.2  christos 
    142  1.1.1.2  christos /* Default no using bcond17.  */
    143  1.1.1.2  christos static int no_bcond17 = 0;
    144  1.1.1.2  christos 
    145      1.1     skrll /* Default no using ld/st 23bit offset.  */
    146      1.1     skrll static int no_stld23 = 0;
    147      1.1     skrll 
    148      1.1     skrll /* Fixups.  */
    149      1.1     skrll #define MAX_INSN_FIXUPS   5
    150      1.1     skrll 
    151      1.1     skrll struct v850_fixup
    152      1.1     skrll {
    153      1.1     skrll   expressionS exp;
    154      1.1     skrll   int opindex;
    155      1.1     skrll   bfd_reloc_code_real_type reloc;
    156      1.1     skrll };
    157      1.1     skrll 
    158      1.1     skrll struct v850_fixup fixups[MAX_INSN_FIXUPS];
    159      1.1     skrll static int fc;
    160      1.1     skrll 
    161      1.1     skrll struct v850_seg_entry
    162      1.1     skrll {
    163      1.1     skrll   segT s;
    164      1.1     skrll   const char *name;
    165      1.1     skrll   flagword flags;
    166      1.1     skrll };
    167      1.1     skrll 
    168      1.1     skrll struct v850_seg_entry v850_seg_table[] =
    169      1.1     skrll {
    170      1.1     skrll   { NULL, ".sdata",
    171      1.1     skrll     SEC_ALLOC | SEC_LOAD | SEC_RELOC | SEC_DATA | SEC_HAS_CONTENTS
    172      1.1     skrll     | SEC_SMALL_DATA },
    173      1.1     skrll   { NULL, ".tdata",
    174      1.1     skrll     SEC_ALLOC | SEC_LOAD | SEC_RELOC | SEC_DATA | SEC_HAS_CONTENTS },
    175      1.1     skrll   { NULL, ".zdata",
    176      1.1     skrll     SEC_ALLOC | SEC_LOAD | SEC_RELOC | SEC_DATA | SEC_HAS_CONTENTS },
    177      1.1     skrll   { NULL, ".sbss",
    178      1.1     skrll     SEC_ALLOC | SEC_SMALL_DATA },
    179      1.1     skrll   { NULL, ".tbss",
    180      1.1     skrll     SEC_ALLOC },
    181      1.1     skrll   { NULL, ".zbss",
    182      1.1     skrll     SEC_ALLOC},
    183      1.1     skrll   { NULL, ".rosdata",
    184      1.1     skrll     SEC_ALLOC | SEC_LOAD | SEC_RELOC | SEC_READONLY | SEC_DATA
    185      1.1     skrll     | SEC_HAS_CONTENTS | SEC_SMALL_DATA },
    186      1.1     skrll   { NULL, ".rozdata",
    187      1.1     skrll     SEC_ALLOC | SEC_LOAD | SEC_RELOC | SEC_READONLY | SEC_DATA
    188      1.1     skrll     | SEC_HAS_CONTENTS },
    189      1.1     skrll   { NULL, ".scommon",
    190      1.1     skrll     SEC_ALLOC | SEC_LOAD | SEC_RELOC | SEC_DATA | SEC_HAS_CONTENTS
    191      1.1     skrll     | SEC_SMALL_DATA | SEC_IS_COMMON },
    192      1.1     skrll   { NULL, ".tcommon",
    193      1.1     skrll     SEC_ALLOC | SEC_LOAD | SEC_RELOC | SEC_DATA | SEC_HAS_CONTENTS
    194      1.1     skrll     | SEC_IS_COMMON },
    195      1.1     skrll   { NULL, ".zcommon",
    196      1.1     skrll     SEC_ALLOC | SEC_LOAD | SEC_RELOC | SEC_DATA | SEC_HAS_CONTENTS
    197      1.1     skrll     | SEC_IS_COMMON },
    198      1.1     skrll   { NULL, ".call_table_data",
    199      1.1     skrll     SEC_ALLOC | SEC_LOAD | SEC_RELOC | SEC_DATA | SEC_HAS_CONTENTS },
    200      1.1     skrll   { NULL, ".call_table_text",
    201      1.1     skrll     SEC_ALLOC | SEC_LOAD | SEC_RELOC | SEC_READONLY | SEC_CODE
    202      1.1     skrll     | SEC_HAS_CONTENTS},
    203      1.1     skrll };
    204      1.1     skrll 
    205      1.1     skrll #define SDATA_SECTION		0
    206      1.1     skrll #define TDATA_SECTION		1
    207      1.1     skrll #define ZDATA_SECTION		2
    208      1.1     skrll #define SBSS_SECTION		3
    209      1.1     skrll #define TBSS_SECTION		4
    210      1.1     skrll #define ZBSS_SECTION		5
    211      1.1     skrll #define ROSDATA_SECTION		6
    212      1.1     skrll #define ROZDATA_SECTION		7
    213      1.1     skrll #define SCOMMON_SECTION		8
    214      1.1     skrll #define TCOMMON_SECTION		9
    215      1.1     skrll #define ZCOMMON_SECTION		10
    216      1.1     skrll #define CALL_TABLE_DATA_SECTION	11
    217      1.1     skrll #define CALL_TABLE_TEXT_SECTION	12
    218      1.1     skrll 
    219      1.1     skrll static void
    220      1.1     skrll do_v850_seg (int i, subsegT sub)
    221      1.1     skrll {
    222      1.1     skrll   struct v850_seg_entry *seg = v850_seg_table + i;
    223      1.1     skrll 
    224      1.1     skrll   obj_elf_section_change_hook ();
    225      1.1     skrll 
    226      1.1     skrll   if (seg->s != NULL)
    227      1.1     skrll     subseg_set (seg->s, sub);
    228      1.1     skrll   else
    229  1.1.1.6  christos     {
    230      1.1     skrll       seg->s = subseg_new (seg->name, sub);
    231      1.1     skrll       bfd_set_section_flags (seg->s, seg->flags);
    232      1.1     skrll       if ((seg->flags & SEC_LOAD) == 0)
    233      1.1     skrll 	seg_info (seg->s)->bss = 1;
    234      1.1     skrll     }
    235      1.1     skrll }
    236      1.1     skrll 
    237      1.1     skrll static void
    238      1.1     skrll v850_seg (int i)
    239      1.1     skrll {
    240      1.1     skrll   subsegT sub = get_absolute_expression ();
    241      1.1     skrll 
    242      1.1     skrll   do_v850_seg (i, sub);
    243      1.1     skrll   demand_empty_rest_of_line ();
    244      1.1     skrll }
    245      1.1     skrll 
    246      1.1     skrll static void
    247      1.1     skrll v850_offset (int ignore ATTRIBUTE_UNUSED)
    248      1.1     skrll {
    249      1.1     skrll   char *pfrag;
    250  1.1.1.9  christos   int temp = get_absolute_expression ();
    251      1.1     skrll 
    252      1.1     skrll   pfrag = frag_var (rs_org, 1, 1, 0, NULL, temp, NULL);
    253      1.1     skrll   *pfrag = 0;
    254      1.1     skrll 
    255      1.1     skrll   demand_empty_rest_of_line ();
    256      1.1     skrll }
    257      1.1     skrll 
    258      1.1     skrll /* Copied from obj_elf_common() in gas/config/obj-elf.c.  */
    259      1.1     skrll 
    260      1.1     skrll static void
    261      1.1     skrll v850_comm (int area)
    262      1.1     skrll {
    263      1.1     skrll   char *name;
    264      1.1     skrll   char c;
    265      1.1     skrll   char *p;
    266      1.1     skrll   int temp;
    267      1.1     skrll   unsigned int size;
    268      1.1     skrll   symbolS *symbolP;
    269  1.1.1.3  christos   int have_align;
    270      1.1     skrll 
    271      1.1     skrll   c = get_symbol_name (&name);
    272      1.1     skrll 
    273      1.1     skrll   /* Just after name is now '\0'.  */
    274      1.1     skrll   p = input_line_pointer;
    275      1.1     skrll   *p = c;
    276      1.1     skrll 
    277      1.1     skrll   SKIP_WHITESPACE ();
    278      1.1     skrll 
    279      1.1     skrll   if (*input_line_pointer != ',')
    280      1.1     skrll     {
    281      1.1     skrll       as_bad (_("Expected comma after symbol-name"));
    282      1.1     skrll       ignore_rest_of_line ();
    283      1.1     skrll       return;
    284      1.1     skrll     }
    285      1.1     skrll 
    286      1.1     skrll   /* Skip ','.  */
    287      1.1     skrll   input_line_pointer++;
    288      1.1     skrll 
    289      1.1     skrll   if ((temp = get_absolute_expression ()) < 0)
    290      1.1     skrll     {
    291      1.1     skrll       /* xgettext:c-format  */
    292      1.1     skrll       as_bad (_(".COMMon length (%d.) < 0! Ignored."), temp);
    293      1.1     skrll       ignore_rest_of_line ();
    294      1.1     skrll       return;
    295      1.1     skrll     }
    296      1.1     skrll 
    297      1.1     skrll   size = temp;
    298      1.1     skrll   *p = 0;
    299      1.1     skrll   symbolP = symbol_find_or_make (name);
    300      1.1     skrll   *p = c;
    301      1.1     skrll 
    302      1.1     skrll   if (S_IS_DEFINED (symbolP) && ! S_IS_COMMON (symbolP))
    303      1.1     skrll     {
    304      1.1     skrll       as_bad (_("Ignoring attempt to re-define symbol"));
    305      1.1     skrll       ignore_rest_of_line ();
    306      1.1     skrll       return;
    307      1.1     skrll     }
    308      1.1     skrll 
    309      1.1     skrll   if (S_GET_VALUE (symbolP) != 0)
    310      1.1     skrll     {
    311      1.1     skrll       if (S_GET_VALUE (symbolP) != size)
    312      1.1     skrll 	/* xgettext:c-format  */
    313      1.1     skrll 	as_warn (_("Length of .comm \"%s\" is already %ld. Not changed to %d."),
    314      1.1     skrll 		 S_GET_NAME (symbolP), (long) S_GET_VALUE (symbolP), size);
    315      1.1     skrll     }
    316      1.1     skrll 
    317      1.1     skrll   know (symbol_get_frag (symbolP) == &zero_address_frag);
    318      1.1     skrll 
    319      1.1     skrll   if (*input_line_pointer != ',')
    320      1.1     skrll     have_align = 0;
    321      1.1     skrll   else
    322      1.1     skrll     {
    323      1.1     skrll       have_align = 1;
    324      1.1     skrll       input_line_pointer++;
    325      1.1     skrll       SKIP_WHITESPACE ();
    326      1.1     skrll     }
    327      1.1     skrll 
    328      1.1     skrll   if (! have_align || *input_line_pointer != '"')
    329      1.1     skrll     {
    330      1.1     skrll       if (! have_align)
    331      1.1     skrll 	temp = 0;
    332      1.1     skrll       else
    333      1.1     skrll 	{
    334      1.1     skrll 	  temp = get_absolute_expression ();
    335      1.1     skrll 
    336      1.1     skrll 	  if (temp < 0)
    337      1.1     skrll 	    {
    338      1.1     skrll 	      temp = 0;
    339      1.1     skrll 	      as_warn (_("Common alignment negative; 0 assumed"));
    340      1.1     skrll 	    }
    341      1.1     skrll 	}
    342      1.1     skrll 
    343      1.1     skrll       if (symbol_get_obj (symbolP)->local)
    344      1.1     skrll 	{
    345      1.1     skrll 	  segT old_sec;
    346      1.1     skrll 	  int old_subsec;
    347      1.1     skrll 	  char *pfrag;
    348      1.1     skrll 	  int align;
    349      1.1     skrll 	  flagword applicable;
    350      1.1     skrll 
    351      1.1     skrll 	  old_sec = now_seg;
    352      1.1     skrll 	  old_subsec = now_subseg;
    353      1.1     skrll 
    354      1.1     skrll 	  applicable = bfd_applicable_section_flags (stdoutput);
    355      1.1     skrll 
    356      1.1     skrll 	  applicable &= SEC_ALLOC;
    357      1.1     skrll 
    358      1.1     skrll 	  switch (area)
    359      1.1     skrll 	    {
    360      1.1     skrll 	    case SCOMMON_SECTION:
    361      1.1     skrll 	      do_v850_seg (SBSS_SECTION, 0);
    362      1.1     skrll 	      break;
    363      1.1     skrll 
    364      1.1     skrll 	    case ZCOMMON_SECTION:
    365      1.1     skrll 	      do_v850_seg (ZBSS_SECTION, 0);
    366      1.1     skrll 	      break;
    367      1.1     skrll 
    368      1.1     skrll 	    case TCOMMON_SECTION:
    369      1.1     skrll 	      do_v850_seg (TBSS_SECTION, 0);
    370      1.1     skrll 	      break;
    371      1.1     skrll 	    }
    372      1.1     skrll 
    373      1.1     skrll 	  if (temp)
    374      1.1     skrll 	    {
    375      1.1     skrll 	      /* Convert to a power of 2 alignment.  */
    376      1.1     skrll 	      for (align = 0; (temp & 1) == 0; temp >>= 1, ++align)
    377      1.1     skrll 		;
    378      1.1     skrll 
    379      1.1     skrll 	      if (temp != 1)
    380      1.1     skrll 		{
    381      1.1     skrll 		  as_bad (_("Common alignment not a power of 2"));
    382      1.1     skrll 		  ignore_rest_of_line ();
    383      1.1     skrll 		  return;
    384      1.1     skrll 		}
    385      1.1     skrll 	    }
    386      1.1     skrll 	  else
    387      1.1     skrll 	    align = 0;
    388      1.1     skrll 
    389      1.1     skrll 	  record_alignment (now_seg, align);
    390      1.1     skrll 
    391      1.1     skrll 	  if (align)
    392      1.1     skrll 	    frag_align (align, 0, 0);
    393      1.1     skrll 
    394      1.1     skrll 	  switch (area)
    395      1.1     skrll 	    {
    396      1.1     skrll 	    case SCOMMON_SECTION:
    397      1.1     skrll 	      if (S_GET_SEGMENT (symbolP) == v850_seg_table[SBSS_SECTION].s)
    398      1.1     skrll 		symbol_get_frag (symbolP)->fr_symbol = 0;
    399      1.1     skrll 	      break;
    400      1.1     skrll 
    401      1.1     skrll 	    case ZCOMMON_SECTION:
    402      1.1     skrll 	      if (S_GET_SEGMENT (symbolP) == v850_seg_table[ZBSS_SECTION].s)
    403      1.1     skrll 		symbol_get_frag (symbolP)->fr_symbol = 0;
    404      1.1     skrll 	      break;
    405      1.1     skrll 
    406      1.1     skrll 	    case TCOMMON_SECTION:
    407      1.1     skrll 	      if (S_GET_SEGMENT (symbolP) == v850_seg_table[TBSS_SECTION].s)
    408      1.1     skrll 		symbol_get_frag (symbolP)->fr_symbol = 0;
    409      1.1     skrll 	      break;
    410      1.1     skrll 
    411      1.1     skrll 	    default:
    412      1.1     skrll 	      abort ();
    413      1.1     skrll 	    }
    414  1.1.1.9  christos 
    415      1.1     skrll 	  symbol_set_frag (symbolP, frag_now);
    416      1.1     skrll 	  pfrag = frag_var (rs_org, 1, 1, 0, symbolP, size, NULL);
    417      1.1     skrll 	  *pfrag = 0;
    418      1.1     skrll 	  S_SET_SIZE (symbolP, size);
    419      1.1     skrll 
    420      1.1     skrll 	  switch (area)
    421      1.1     skrll 	    {
    422      1.1     skrll 	    case SCOMMON_SECTION:
    423      1.1     skrll 	      S_SET_SEGMENT (symbolP, v850_seg_table[SBSS_SECTION].s);
    424      1.1     skrll 	      break;
    425      1.1     skrll 
    426      1.1     skrll 	    case ZCOMMON_SECTION:
    427      1.1     skrll 	      S_SET_SEGMENT (symbolP, v850_seg_table[ZBSS_SECTION].s);
    428      1.1     skrll 	      break;
    429      1.1     skrll 
    430      1.1     skrll 	    case TCOMMON_SECTION:
    431      1.1     skrll 	      S_SET_SEGMENT (symbolP, v850_seg_table[TBSS_SECTION].s);
    432      1.1     skrll 	      break;
    433      1.1     skrll 
    434      1.1     skrll 	    default:
    435      1.1     skrll 	      abort ();
    436      1.1     skrll 	    }
    437      1.1     skrll 
    438      1.1     skrll 	  S_CLEAR_EXTERNAL (symbolP);
    439      1.1     skrll 	  obj_elf_section_change_hook ();
    440      1.1     skrll 	  subseg_set (old_sec, old_subsec);
    441      1.1     skrll 	}
    442      1.1     skrll       else
    443      1.1     skrll 	{
    444      1.1     skrll 	  segT   old_sec;
    445      1.1     skrll 	  int    old_subsec;
    446      1.1     skrll 
    447      1.1     skrll 	allocate_common:
    448      1.1     skrll 	  old_sec = now_seg;
    449      1.1     skrll 	  old_subsec = now_subseg;
    450      1.1     skrll 
    451      1.1     skrll 	  S_SET_VALUE (symbolP, (valueT) size);
    452      1.1     skrll 	  S_SET_ALIGN (symbolP, temp);
    453      1.1     skrll 	  S_SET_EXTERNAL (symbolP);
    454      1.1     skrll 
    455      1.1     skrll 	  switch (area)
    456      1.1     skrll 	    {
    457      1.1     skrll 	    case SCOMMON_SECTION:
    458      1.1     skrll 	    case ZCOMMON_SECTION:
    459      1.1     skrll 	    case TCOMMON_SECTION:
    460      1.1     skrll 	      do_v850_seg (area, 0);
    461      1.1     skrll 	      S_SET_SEGMENT (symbolP, v850_seg_table[area].s);
    462      1.1     skrll 	      break;
    463      1.1     skrll 
    464      1.1     skrll 	    default:
    465      1.1     skrll 	      abort ();
    466      1.1     skrll 	    }
    467      1.1     skrll 
    468      1.1     skrll 	  obj_elf_section_change_hook ();
    469      1.1     skrll 	  subseg_set (old_sec, old_subsec);
    470      1.1     skrll 	}
    471      1.1     skrll     }
    472      1.1     skrll   else
    473      1.1     skrll     {
    474      1.1     skrll       input_line_pointer++;
    475      1.1     skrll 
    476      1.1     skrll       /* @@ Some use the dot, some don't.  Can we get some consistency??  */
    477      1.1     skrll       if (*input_line_pointer == '.')
    478      1.1     skrll 	input_line_pointer++;
    479  1.1.1.7  christos 
    480  1.1.1.7  christos       /* @@ Some say data, some say bss.  */
    481      1.1     skrll       if (!startswith (input_line_pointer, "bss\"")
    482      1.1     skrll 	  && !startswith (input_line_pointer, "data\""))
    483      1.1     skrll 	{
    484      1.1     skrll 	  while (*--input_line_pointer != '"')
    485      1.1     skrll 	    ;
    486      1.1     skrll 	  input_line_pointer--;
    487      1.1     skrll 	  goto bad_common_segment;
    488      1.1     skrll 	}
    489      1.1     skrll 
    490      1.1     skrll       while (*input_line_pointer++ != '"')
    491      1.1     skrll 	;
    492      1.1     skrll 
    493      1.1     skrll       goto allocate_common;
    494      1.1     skrll     }
    495      1.1     skrll 
    496      1.1     skrll   symbol_get_bfdsym (symbolP)->flags |= BSF_OBJECT;
    497      1.1     skrll 
    498      1.1     skrll   demand_empty_rest_of_line ();
    499      1.1     skrll   return;
    500      1.1     skrll 
    501      1.1     skrll   {
    502      1.1     skrll   bad_common_segment:
    503      1.1     skrll     p = input_line_pointer;
    504      1.1     skrll     while (*p && *p != '\n')
    505      1.1     skrll       p++;
    506      1.1     skrll     c = *p;
    507      1.1     skrll     *p = '\0';
    508      1.1     skrll     as_bad (_("bad .common segment %s"), input_line_pointer + 1);
    509      1.1     skrll     *p = c;
    510      1.1     skrll     input_line_pointer = p;
    511      1.1     skrll     ignore_rest_of_line ();
    512      1.1     skrll     return;
    513      1.1     skrll   }
    514      1.1     skrll }
    515      1.1     skrll 
    516      1.1     skrll static void
    517      1.1     skrll set_machine (int number)
    518  1.1.1.3  christos {
    519      1.1     skrll   machine = number;
    520      1.1     skrll   bfd_set_arch_mach (stdoutput, v850_target_arch, machine);
    521      1.1     skrll 
    522  1.1.1.2  christos   switch (machine)
    523  1.1.1.2  christos     {
    524  1.1.1.2  christos     case 0:                SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850);    break;
    525  1.1.1.2  christos     case bfd_mach_v850:    SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850);    break;
    526  1.1.1.2  christos     case bfd_mach_v850e:   SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850E);   break;
    527  1.1.1.2  christos     case bfd_mach_v850e1:  SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850E);   break;
    528  1.1.1.3  christos     case bfd_mach_v850e2:  SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850E2);  break;
    529      1.1     skrll     case bfd_mach_v850e2v3:SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850E2V3); break;
    530      1.1     skrll     case bfd_mach_v850e3v5: SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850E3V5); break;
    531      1.1     skrll     }
    532      1.1     skrll }
    533      1.1     skrll 
    534      1.1     skrll static void
    535      1.1     skrll v850_longcode (int type)
    536      1.1     skrll {
    537      1.1     skrll   expressionS ex;
    538      1.1     skrll 
    539      1.1     skrll   if (! v850_relax)
    540  1.1.1.2  christos     {
    541      1.1     skrll       if (type == 1)
    542  1.1.1.2  christos 	as_warn (_(".longcall pseudo-op seen when not relaxing"));
    543      1.1     skrll       else
    544      1.1     skrll 	as_warn (_(".longjump pseudo-op seen when not relaxing"));
    545      1.1     skrll     }
    546      1.1     skrll 
    547      1.1     skrll   expression (&ex);
    548      1.1     skrll 
    549  1.1.1.2  christos   if (ex.X_op != O_symbol || ex.X_add_number != 0)
    550      1.1     skrll     {
    551      1.1     skrll       as_bad (_("bad .longcall format"));
    552      1.1     skrll       ignore_rest_of_line ();
    553      1.1     skrll 
    554      1.1     skrll       return;
    555      1.1     skrll     }
    556      1.1     skrll 
    557      1.1     skrll   if (type == 1)
    558      1.1     skrll     fix_new_exp (frag_now, frag_now_fix (), 4, & ex, 1,
    559      1.1     skrll 		 BFD_RELOC_V850_LONGCALL);
    560      1.1     skrll   else
    561      1.1     skrll     fix_new_exp (frag_now, frag_now_fix (), 4, & ex, 1,
    562      1.1     skrll 		 BFD_RELOC_V850_LONGJUMP);
    563      1.1     skrll 
    564      1.1     skrll   demand_empty_rest_of_line ();
    565      1.1     skrll }
    566      1.1     skrll 
    567      1.1     skrll /* The target specific pseudo-ops which we support.  */
    568      1.1     skrll const pseudo_typeS md_pseudo_table[] =
    569      1.1     skrll {
    570      1.1     skrll   { "sdata",		v850_seg,		SDATA_SECTION		},
    571      1.1     skrll   { "tdata",		v850_seg,		TDATA_SECTION		},
    572      1.1     skrll   { "zdata",		v850_seg,		ZDATA_SECTION		},
    573      1.1     skrll   { "sbss",		v850_seg,		SBSS_SECTION		},
    574      1.1     skrll   { "tbss",		v850_seg,		TBSS_SECTION		},
    575      1.1     skrll   { "zbss",		v850_seg,		ZBSS_SECTION		},
    576      1.1     skrll   { "rosdata",		v850_seg,		ROSDATA_SECTION 	},
    577      1.1     skrll   { "rozdata",		v850_seg,		ROZDATA_SECTION 	},
    578      1.1     skrll   { "offset",		v850_offset,		0			},
    579      1.1     skrll   { "word",		cons,			4			},
    580      1.1     skrll   { "zcomm",		v850_comm,		ZCOMMON_SECTION 	},
    581      1.1     skrll   { "scomm",		v850_comm,		SCOMMON_SECTION 	},
    582      1.1     skrll   { "tcomm",		v850_comm,		TCOMMON_SECTION 	},
    583      1.1     skrll   { "v850",		set_machine,		0			},
    584      1.1     skrll   { "call_table_data",	v850_seg,		CALL_TABLE_DATA_SECTION	},
    585  1.1.1.2  christos   { "call_table_text",	v850_seg,		CALL_TABLE_TEXT_SECTION	},
    586  1.1.1.2  christos   { "v850e",		set_machine,		bfd_mach_v850e		},
    587  1.1.1.2  christos   { "v850e1",		set_machine,		bfd_mach_v850e1         },
    588  1.1.1.3  christos   { "v850e2",		set_machine,		bfd_mach_v850e2 	},
    589  1.1.1.3  christos   { "v850e2v3",		set_machine,		bfd_mach_v850e2v3 	},
    590      1.1     skrll   { "v850e2v4",		set_machine,		bfd_mach_v850e3v5 	},
    591      1.1     skrll   { "v850e3v5",		set_machine,		bfd_mach_v850e3v5 	},
    592      1.1     skrll   { "longcall",		v850_longcode,		1			},
    593      1.1     skrll   { "longjump",		v850_longcode,		2			},
    594      1.1     skrll   { NULL,		NULL,			0			}
    595      1.1     skrll };
    596  1.1.1.7  christos 
    597      1.1     skrll /* Opcode hash table.  */
    598      1.1     skrll static htab_t v850_hash;
    599      1.1     skrll 
    600      1.1     skrll /* This table is sorted.  Suitable for searching by a binary search.  */
    601  1.1.1.2  christos static const struct reg_name pre_defined_registers[] =
    602  1.1.1.2  christos {
    603  1.1.1.2  christos   { "ep",  30, PROCESSOR_ALL },		/* ep - element ptr.  */
    604  1.1.1.2  christos   { "gp",   4, PROCESSOR_ALL },		/* gp - global ptr.  */
    605  1.1.1.2  christos   { "hp",   2, PROCESSOR_ALL },		/* hp - handler stack ptr.  */
    606  1.1.1.2  christos   { "lp",  31, PROCESSOR_ALL },		/* lp - link ptr.  */
    607  1.1.1.2  christos   { "r0",   0, PROCESSOR_ALL },
    608  1.1.1.2  christos   { "r1",   1, PROCESSOR_ALL },
    609  1.1.1.2  christos   { "r10", 10, PROCESSOR_ALL },
    610  1.1.1.2  christos   { "r11", 11, PROCESSOR_ALL },
    611  1.1.1.2  christos   { "r12", 12, PROCESSOR_ALL },
    612  1.1.1.2  christos   { "r13", 13, PROCESSOR_ALL },
    613  1.1.1.2  christos   { "r14", 14, PROCESSOR_ALL },
    614  1.1.1.2  christos   { "r15", 15, PROCESSOR_ALL },
    615  1.1.1.2  christos   { "r16", 16, PROCESSOR_ALL },
    616  1.1.1.2  christos   { "r17", 17, PROCESSOR_ALL },
    617  1.1.1.2  christos   { "r18", 18, PROCESSOR_ALL },
    618  1.1.1.2  christos   { "r19", 19, PROCESSOR_ALL },
    619  1.1.1.2  christos   { "r2",   2, PROCESSOR_ALL },
    620  1.1.1.2  christos   { "r20", 20, PROCESSOR_ALL },
    621  1.1.1.2  christos   { "r21", 21, PROCESSOR_ALL },
    622  1.1.1.2  christos   { "r22", 22, PROCESSOR_ALL },
    623  1.1.1.2  christos   { "r23", 23, PROCESSOR_ALL },
    624  1.1.1.2  christos   { "r24", 24, PROCESSOR_ALL },
    625  1.1.1.2  christos   { "r25", 25, PROCESSOR_ALL },
    626  1.1.1.2  christos   { "r26", 26, PROCESSOR_ALL },
    627  1.1.1.2  christos   { "r27", 27, PROCESSOR_ALL },
    628  1.1.1.2  christos   { "r28", 28, PROCESSOR_ALL },
    629  1.1.1.2  christos   { "r29", 29, PROCESSOR_ALL },
    630  1.1.1.2  christos   { "r3",   3, PROCESSOR_ALL },
    631  1.1.1.2  christos   { "r30", 30, PROCESSOR_ALL },
    632  1.1.1.2  christos   { "r31", 31, PROCESSOR_ALL },
    633  1.1.1.2  christos   { "r4",   4, PROCESSOR_ALL },
    634  1.1.1.2  christos   { "r5",   5, PROCESSOR_ALL },
    635  1.1.1.2  christos   { "r6",   6, PROCESSOR_ALL },
    636  1.1.1.2  christos   { "r7",   7, PROCESSOR_ALL },
    637  1.1.1.2  christos   { "r8",   8, PROCESSOR_ALL },
    638  1.1.1.2  christos   { "r9",   9, PROCESSOR_ALL },
    639  1.1.1.2  christos   { "sp",   3, PROCESSOR_ALL },		/* sp - stack ptr.  */
    640      1.1     skrll   { "tp",   5, PROCESSOR_ALL },		/* tp - text ptr.  */
    641      1.1     skrll   { "zero", 0, PROCESSOR_ALL },
    642      1.1     skrll };
    643      1.1     skrll 
    644      1.1     skrll #define REG_NAME_CNT						\
    645      1.1     skrll   (sizeof (pre_defined_registers) / sizeof (struct reg_name))
    646      1.1     skrll 
    647  1.1.1.2  christos static const struct reg_name system_registers[] =
    648  1.1.1.2  christos {
    649  1.1.1.2  christos   { "asid",        23, PROCESSOR_NOT_V850 },
    650  1.1.1.2  christos   { "bpam",        25, PROCESSOR_NOT_V850 },
    651  1.1.1.2  christos   { "bpav",        24, PROCESSOR_NOT_V850 },
    652  1.1.1.2  christos   { "bpc",         22, PROCESSOR_NOT_V850 },
    653  1.1.1.3  christos   { "bpdm",        27, PROCESSOR_NOT_V850 },
    654  1.1.1.3  christos   { "bpdv",        26, PROCESSOR_NOT_V850 },
    655  1.1.1.2  christos   { "bsel",        31, PROCESSOR_V850E2_UP },
    656  1.1.1.2  christos   { "cfg",          7, PROCESSOR_V850E2V3_UP },
    657  1.1.1.2  christos   { "ctbp",        20, PROCESSOR_NOT_V850 },
    658  1.1.1.3  christos   { "ctpc",        16, PROCESSOR_NOT_V850 },
    659  1.1.1.2  christos   { "ctpsw",       17, PROCESSOR_NOT_V850 },
    660  1.1.1.2  christos   { "dbic",        15, PROCESSOR_V850E2_UP },
    661  1.1.1.3  christos   { "dbpc",        18, PROCESSOR_NOT_V850 },
    662  1.1.1.2  christos   { "dbpsw",       19, PROCESSOR_NOT_V850 },
    663  1.1.1.3  christos   { "dbwr",        30, PROCESSOR_V850E2_UP },
    664  1.1.1.3  christos   { "dir",         21, PROCESSOR_NOT_V850 },
    665  1.1.1.3  christos   { "dpa0l",       16, PROCESSOR_V850E2V3_UP },
    666  1.1.1.3  christos   { "dpa0u",       17, PROCESSOR_V850E2V3_UP },
    667  1.1.1.3  christos   { "dpa1l",       18, PROCESSOR_V850E2V3_UP },
    668  1.1.1.3  christos   { "dpa1u",       19, PROCESSOR_V850E2V3_UP },
    669  1.1.1.3  christos   { "dpa2l",       20, PROCESSOR_V850E2V3_UP },
    670  1.1.1.3  christos   { "dpa2u",       21, PROCESSOR_V850E2V3_UP },
    671  1.1.1.3  christos   { "dpa3l",       22, PROCESSOR_V850E2V3_UP },
    672  1.1.1.3  christos   { "dpa3u",       23, PROCESSOR_V850E2V3_UP },
    673  1.1.1.3  christos   { "dpa4l",       24, PROCESSOR_V850E2V3_UP },
    674  1.1.1.3  christos   { "dpa4u",       25, PROCESSOR_V850E2V3_UP },
    675  1.1.1.2  christos   { "dpa5l",       26, PROCESSOR_V850E2V3_UP },
    676  1.1.1.3  christos   { "dpa5u",       27, PROCESSOR_V850E2V3_UP },
    677  1.1.1.3  christos   { "ecr",          4, PROCESSOR_ALL },
    678  1.1.1.3  christos   { "eh_base",      3, PROCESSOR_V850E2V3_UP },
    679  1.1.1.3  christos   { "eh_cfg",       1, PROCESSOR_V850E2V3_UP },
    680  1.1.1.2  christos   { "eh_reset",     2, PROCESSOR_V850E2V3_UP },
    681  1.1.1.2  christos   { "eiic",        13, PROCESSOR_V850E2_UP },
    682  1.1.1.3  christos   { "eipc",         0, PROCESSOR_ALL },
    683  1.1.1.3  christos   { "eipsw",        1, PROCESSOR_ALL },
    684  1.1.1.2  christos   { "eiwr",        28, PROCESSOR_V850E2_UP },
    685  1.1.1.2  christos   { "feic",        14, PROCESSOR_V850E2_UP },
    686  1.1.1.3  christos   { "fepc",         2, PROCESSOR_ALL },
    687  1.1.1.3  christos   { "fepsw",        3, PROCESSOR_ALL },
    688  1.1.1.3  christos   { "fewr",        29, PROCESSOR_V850E2_UP },
    689  1.1.1.3  christos   { "fpcc",         9, PROCESSOR_V850E2V3_UP },
    690  1.1.1.3  christos   { "fpcfg",       10, PROCESSOR_V850E2V3_UP },
    691  1.1.1.3  christos   { "fpec",        11, PROCESSOR_V850E2V3_UP },
    692  1.1.1.3  christos   { "fpepc",        7, PROCESSOR_V850E2V3_UP },
    693  1.1.1.3  christos   { "fpspc",       27, PROCESSOR_V850E2V3_UP },
    694  1.1.1.3  christos   { "fpsr",         6, PROCESSOR_V850E2V3_UP },
    695  1.1.1.3  christos   { "fpst",         8, PROCESSOR_V850E2V3_UP },
    696  1.1.1.3  christos   { "ipa0l",        6, PROCESSOR_V850E2V3_UP },
    697  1.1.1.3  christos   { "ipa0u",        7, PROCESSOR_V850E2V3_UP },
    698  1.1.1.3  christos   { "ipa1l",        8, PROCESSOR_V850E2V3_UP },
    699  1.1.1.3  christos   { "ipa1u",        9, PROCESSOR_V850E2V3_UP },
    700  1.1.1.3  christos   { "ipa2l",       10, PROCESSOR_V850E2V3_UP },
    701  1.1.1.3  christos   { "ipa2u",       11, PROCESSOR_V850E2V3_UP },
    702  1.1.1.3  christos   { "ipa3l",       12, PROCESSOR_V850E2V3_UP },
    703  1.1.1.3  christos   { "ipa3u",       13, PROCESSOR_V850E2V3_UP },
    704  1.1.1.3  christos   { "ipa4l",       14, PROCESSOR_V850E2V3_UP },
    705  1.1.1.3  christos   { "ipa4u",       15, PROCESSOR_V850E2V3_UP },
    706  1.1.1.3  christos   { "mca",         24, PROCESSOR_V850E2V3_UP },
    707  1.1.1.3  christos   { "mcc",         26, PROCESSOR_V850E2V3_UP },
    708  1.1.1.3  christos   { "mcr",         27, PROCESSOR_V850E2V3_UP },
    709  1.1.1.3  christos   { "mcs",         25, PROCESSOR_V850E2V3_UP },
    710  1.1.1.3  christos   { "mpc",          1, PROCESSOR_V850E2V3_UP },
    711  1.1.1.3  christos   { "mpm",          0, PROCESSOR_V850E2V3_UP },
    712  1.1.1.3  christos   { "mpu10_dpa0l", 16, PROCESSOR_V850E2V3_UP },
    713  1.1.1.3  christos   { "mpu10_dpa0u", 17, PROCESSOR_V850E2V3_UP },
    714  1.1.1.3  christos   { "mpu10_dpa1l", 18, PROCESSOR_V850E2V3_UP },
    715  1.1.1.3  christos   { "mpu10_dpa1u", 19, PROCESSOR_V850E2V3_UP },
    716  1.1.1.3  christos   { "mpu10_dpa2l", 20, PROCESSOR_V850E2V3_UP },
    717  1.1.1.3  christos   { "mpu10_dpa2u", 21, PROCESSOR_V850E2V3_UP },
    718  1.1.1.3  christos   { "mpu10_dpa3l", 22, PROCESSOR_V850E2V3_UP },
    719  1.1.1.3  christos   { "mpu10_dpa3u", 23, PROCESSOR_V850E2V3_UP },
    720  1.1.1.3  christos   { "mpu10_dpa4l", 24, PROCESSOR_V850E2V3_UP },
    721  1.1.1.3  christos   { "mpu10_dpa4u", 25, PROCESSOR_V850E2V3_UP },
    722  1.1.1.3  christos   { "mpu10_dpa5l", 26, PROCESSOR_V850E2V3_UP },
    723  1.1.1.3  christos   { "mpu10_dpa5u", 27, PROCESSOR_V850E2V3_UP },
    724  1.1.1.3  christos   { "mpu10_ipa0l",  6, PROCESSOR_V850E2V3_UP },
    725  1.1.1.3  christos   { "mpu10_ipa0u",  7, PROCESSOR_V850E2V3_UP },
    726  1.1.1.3  christos   { "mpu10_ipa1l",  8, PROCESSOR_V850E2V3_UP },
    727  1.1.1.3  christos   { "mpu10_ipa1u",  9, PROCESSOR_V850E2V3_UP },
    728  1.1.1.3  christos   { "mpu10_ipa2l", 10, PROCESSOR_V850E2V3_UP },
    729  1.1.1.3  christos   { "mpu10_ipa2u", 11, PROCESSOR_V850E2V3_UP },
    730  1.1.1.3  christos   { "mpu10_ipa3l", 12, PROCESSOR_V850E2V3_UP },
    731  1.1.1.3  christos   { "mpu10_ipa3u", 13, PROCESSOR_V850E2V3_UP },
    732  1.1.1.3  christos   { "mpu10_ipa4l", 14, PROCESSOR_V850E2V3_UP },
    733  1.1.1.3  christos   { "mpu10_ipa4u", 15, PROCESSOR_V850E2V3_UP },
    734  1.1.1.3  christos   { "mpu10_mpc",    1, PROCESSOR_V850E2V3_UP },
    735  1.1.1.3  christos   { "mpu10_mpm",    0, PROCESSOR_V850E2V3_UP },
    736  1.1.1.3  christos   { "mpu10_tid",    2, PROCESSOR_V850E2V3_UP },
    737  1.1.1.3  christos   { "mpu10_vmadr",  5, PROCESSOR_V850E2V3_UP },
    738  1.1.1.3  christos   { "mpu10_vmecr",  3, PROCESSOR_V850E2V3_UP },
    739  1.1.1.3  christos   { "mpu10_vmtid",  4, PROCESSOR_V850E2V3_UP },
    740  1.1.1.3  christos   { "pid",          6, PROCESSOR_V850E2V3_UP },
    741  1.1.1.2  christos   { "pmcr0",        4, PROCESSOR_V850E2V3_UP },
    742  1.1.1.3  christos   { "pmis2",       14, PROCESSOR_V850E2V3_UP },
    743  1.1.1.3  christos   { "psw",          5, PROCESSOR_ALL },
    744  1.1.1.2  christos   { "scbp",        12, PROCESSOR_V850E2V3_UP },
    745  1.1.1.2  christos   { "sccfg",       11, PROCESSOR_V850E2V3_UP },
    746  1.1.1.2  christos   { "sr0",          0, PROCESSOR_ALL },
    747  1.1.1.2  christos   { "sr1",          1, PROCESSOR_ALL },
    748  1.1.1.2  christos   { "sr10",        10, PROCESSOR_ALL },
    749  1.1.1.2  christos   { "sr11",        11, PROCESSOR_ALL },
    750  1.1.1.2  christos   { "sr12",        12, PROCESSOR_ALL },
    751  1.1.1.2  christos   { "sr13",        13, PROCESSOR_ALL },
    752  1.1.1.2  christos   { "sr14",        14, PROCESSOR_ALL },
    753  1.1.1.2  christos   { "sr15",        15, PROCESSOR_ALL },
    754  1.1.1.2  christos   { "sr16",        16, PROCESSOR_ALL },
    755  1.1.1.2  christos   { "sr17",        17, PROCESSOR_ALL },
    756  1.1.1.2  christos   { "sr18",        18, PROCESSOR_ALL },
    757  1.1.1.2  christos   { "sr19",        19, PROCESSOR_ALL },
    758  1.1.1.2  christos   { "sr2",          2, PROCESSOR_ALL },
    759  1.1.1.2  christos   { "sr20",        20, PROCESSOR_ALL },
    760  1.1.1.2  christos   { "sr21",        21, PROCESSOR_ALL },
    761  1.1.1.2  christos   { "sr22",        22, PROCESSOR_ALL },
    762  1.1.1.2  christos   { "sr23",        23, PROCESSOR_ALL },
    763  1.1.1.2  christos   { "sr24",        24, PROCESSOR_ALL },
    764  1.1.1.2  christos   { "sr25",        25, PROCESSOR_ALL },
    765  1.1.1.2  christos   { "sr26",        26, PROCESSOR_ALL },
    766  1.1.1.2  christos   { "sr27",        27, PROCESSOR_ALL },
    767  1.1.1.2  christos   { "sr28",        28, PROCESSOR_ALL },
    768  1.1.1.2  christos   { "sr29",        29, PROCESSOR_ALL },
    769  1.1.1.2  christos   { "sr3",          3, PROCESSOR_ALL },
    770  1.1.1.2  christos   { "sr30",        30, PROCESSOR_ALL },
    771  1.1.1.2  christos   { "sr31",        31, PROCESSOR_ALL },
    772  1.1.1.2  christos   { "sr4",          4, PROCESSOR_ALL },
    773  1.1.1.2  christos   { "sr5",          5, PROCESSOR_ALL },
    774  1.1.1.2  christos   { "sr6",          6, PROCESSOR_ALL },
    775  1.1.1.2  christos   { "sr7",          7, PROCESSOR_ALL },
    776  1.1.1.3  christos   { "sr8",          8, PROCESSOR_ALL },
    777  1.1.1.3  christos   { "sr9",          9, PROCESSOR_ALL },
    778  1.1.1.3  christos   { "sw_base",      3, PROCESSOR_V850E2V3_UP },
    779  1.1.1.3  christos   { "sw_cfg",       1, PROCESSOR_V850E2V3_UP },
    780  1.1.1.3  christos   { "sw_ctl",       0, PROCESSOR_V850E2V3_UP },
    781  1.1.1.3  christos   { "tid",          2, PROCESSOR_V850E2V3_UP },
    782  1.1.1.3  christos   { "vmadr",        6, PROCESSOR_V850E2V3_UP },
    783  1.1.1.3  christos   { "vmecr",        4, PROCESSOR_V850E2V3_UP },
    784  1.1.1.3  christos   { "vmtid",        5, PROCESSOR_V850E2V3_UP },
    785  1.1.1.3  christos   { "vsadr",        2, PROCESSOR_V850E2V3_UP },
    786      1.1     skrll   { "vsecr",        0, PROCESSOR_V850E2V3_UP },
    787      1.1     skrll   { "vstid",        1, PROCESSOR_V850E2V3_UP },
    788      1.1     skrll };
    789      1.1     skrll 
    790      1.1     skrll #define SYSREG_NAME_CNT						\
    791      1.1     skrll   (sizeof (system_registers) / sizeof (struct reg_name))
    792      1.1     skrll 
    793      1.1     skrll 
    794  1.1.1.2  christos static const struct reg_name cc_names[] =
    795  1.1.1.2  christos {
    796  1.1.1.2  christos   { "c",  0x1, PROCESSOR_ALL },
    797  1.1.1.2  christos   { "e",  0x2, PROCESSOR_ALL },
    798  1.1.1.2  christos   { "ge", 0xe, PROCESSOR_ALL },
    799  1.1.1.2  christos   { "gt", 0xf, PROCESSOR_ALL },
    800  1.1.1.2  christos   { "h",  0xb, PROCESSOR_ALL },
    801  1.1.1.2  christos   { "l",  0x1, PROCESSOR_ALL },
    802  1.1.1.2  christos   { "le", 0x7, PROCESSOR_ALL },
    803  1.1.1.2  christos   { "lt", 0x6, PROCESSOR_ALL },
    804  1.1.1.2  christos   { "n",  0x4, PROCESSOR_ALL },
    805  1.1.1.2  christos   { "nc", 0x9, PROCESSOR_ALL },
    806  1.1.1.2  christos   { "ne", 0xa, PROCESSOR_ALL },
    807  1.1.1.2  christos   { "nh", 0x3, PROCESSOR_ALL },
    808  1.1.1.2  christos   { "nl", 0x9, PROCESSOR_ALL },
    809  1.1.1.2  christos   { "ns", 0xc, PROCESSOR_ALL },
    810  1.1.1.2  christos   { "nv", 0x8, PROCESSOR_ALL },
    811  1.1.1.2  christos   { "nz", 0xa, PROCESSOR_ALL },
    812  1.1.1.2  christos   { "p",  0xc, PROCESSOR_ALL },
    813  1.1.1.2  christos   { "s",  0x4, PROCESSOR_ALL },
    814  1.1.1.2  christos #define COND_SA_NUM 0xd
    815  1.1.1.2  christos   { "sa", COND_SA_NUM, PROCESSOR_ALL },
    816  1.1.1.2  christos   { "t",  0x5, PROCESSOR_ALL },
    817      1.1     skrll   { "v",  0x0, PROCESSOR_ALL },
    818      1.1     skrll   { "z",  0x2, PROCESSOR_ALL },
    819      1.1     skrll };
    820      1.1     skrll 
    821      1.1     skrll #define CC_NAME_CNT					\
    822  1.1.1.2  christos   (sizeof (cc_names) / sizeof (struct reg_name))
    823  1.1.1.2  christos 
    824  1.1.1.3  christos static const struct reg_name float_cc_names[] =
    825  1.1.1.3  christos {
    826  1.1.1.3  christos   { "eq",  0x2, PROCESSOR_V850E2V3_UP },	/* true.  */
    827  1.1.1.3  christos   { "f",   0x0, PROCESSOR_V850E2V3_UP },	/* true.  */
    828  1.1.1.3  christos   { "ge",  0xd, PROCESSOR_V850E2V3_UP },	/* false.  */
    829  1.1.1.3  christos   { "gl",  0xb, PROCESSOR_V850E2V3_UP },	/* false.  */
    830  1.1.1.3  christos   { "gle", 0x9, PROCESSOR_V850E2V3_UP },	/* false.  */
    831  1.1.1.3  christos   { "gt",  0xf, PROCESSOR_V850E2V3_UP },	/* false.  */
    832  1.1.1.3  christos   { "le",  0xe, PROCESSOR_V850E2V3_UP },	/* true.  */
    833  1.1.1.3  christos   { "lt",  0xc, PROCESSOR_V850E2V3_UP },	/* true.  */
    834  1.1.1.3  christos   { "neq", 0x2, PROCESSOR_V850E2V3_UP },	/* false.  */
    835  1.1.1.3  christos   { "nge", 0xd, PROCESSOR_V850E2V3_UP },	/* true.  */
    836  1.1.1.3  christos   { "ngl", 0xb, PROCESSOR_V850E2V3_UP },	/* true.  */
    837  1.1.1.3  christos   { "ngle",0x9, PROCESSOR_V850E2V3_UP },	/* true.  */
    838  1.1.1.3  christos   { "ngt", 0xf, PROCESSOR_V850E2V3_UP },	/* true.  */
    839  1.1.1.3  christos   { "nle", 0xe, PROCESSOR_V850E2V3_UP },	/* false.  */
    840  1.1.1.3  christos   { "nlt", 0xc, PROCESSOR_V850E2V3_UP },	/* false.  */
    841  1.1.1.3  christos   { "oge", 0x5, PROCESSOR_V850E2V3_UP },	/* false.  */
    842  1.1.1.3  christos   { "ogl", 0x3, PROCESSOR_V850E2V3_UP },	/* false.  */
    843  1.1.1.3  christos   { "ogt", 0x7, PROCESSOR_V850E2V3_UP },	/* false.  */
    844  1.1.1.3  christos   { "ole", 0x6, PROCESSOR_V850E2V3_UP },	/* true.  */
    845  1.1.1.3  christos   { "olt", 0x4, PROCESSOR_V850E2V3_UP },	/* true.  */
    846  1.1.1.3  christos   { "or",  0x1, PROCESSOR_V850E2V3_UP },	/* false.  */
    847  1.1.1.3  christos   { "seq", 0xa, PROCESSOR_V850E2V3_UP },	/* true.  */
    848  1.1.1.3  christos   { "sf",  0x8, PROCESSOR_V850E2V3_UP },	/* true.  */
    849  1.1.1.3  christos   { "sne", 0xa, PROCESSOR_V850E2V3_UP },	/* false.  */
    850  1.1.1.3  christos   { "st",  0x8, PROCESSOR_V850E2V3_UP },	/* false.  */
    851  1.1.1.3  christos   { "t",   0x0, PROCESSOR_V850E2V3_UP },	/* false.  */
    852  1.1.1.3  christos   { "ueq", 0x3, PROCESSOR_V850E2V3_UP },	/* true.  */
    853  1.1.1.3  christos   { "uge", 0x4, PROCESSOR_V850E2V3_UP },	/* false.  */
    854  1.1.1.3  christos   { "ugt", 0x6, PROCESSOR_V850E2V3_UP },	/* false.  */
    855  1.1.1.3  christos   { "ule", 0x7, PROCESSOR_V850E2V3_UP },	/* true.  */
    856  1.1.1.2  christos   { "ult", 0x5, PROCESSOR_V850E2V3_UP },	/* true.  */
    857  1.1.1.2  christos   { "un",  0x1, PROCESSOR_V850E2V3_UP },	/* true.  */
    858  1.1.1.2  christos };
    859  1.1.1.2  christos 
    860  1.1.1.2  christos #define FLOAT_CC_NAME_CNT					\
    861  1.1.1.3  christos   (sizeof (float_cc_names) / sizeof (struct reg_name))
    862  1.1.1.3  christos 
    863  1.1.1.3  christos 
    864  1.1.1.3  christos static const struct reg_name cacheop_names[] =
    865  1.1.1.3  christos {
    866  1.1.1.3  christos   { "cfald",   0x44, PROCESSOR_V850E3V5_UP },
    867  1.1.1.3  christos   { "cfali",   0x40, PROCESSOR_V850E3V5_UP },
    868  1.1.1.3  christos   { "chbid",   0x04, PROCESSOR_V850E3V5_UP },
    869  1.1.1.3  christos   { "chbii",   0x00, PROCESSOR_V850E3V5_UP },
    870  1.1.1.3  christos   { "chbiwbd", 0x06, PROCESSOR_V850E3V5_UP },
    871  1.1.1.3  christos   { "chbwbd",  0x07, PROCESSOR_V850E3V5_UP },
    872  1.1.1.3  christos   { "cibid",   0x24, PROCESSOR_V850E3V5_UP },
    873  1.1.1.3  christos   { "cibii",   0x20, PROCESSOR_V850E3V5_UP },
    874  1.1.1.3  christos   { "cibiwbd", 0x26, PROCESSOR_V850E3V5_UP },
    875  1.1.1.3  christos   { "cibwbd",  0x27, PROCESSOR_V850E3V5_UP },
    876  1.1.1.3  christos   { "cildd",   0x65, PROCESSOR_V850E3V5_UP },
    877  1.1.1.3  christos   { "cildi",   0x61, PROCESSOR_V850E3V5_UP },
    878  1.1.1.3  christos   { "cistd",   0x64, PROCESSOR_V850E3V5_UP },
    879  1.1.1.3  christos   { "cisti",   0x60, PROCESSOR_V850E3V5_UP },
    880  1.1.1.3  christos };
    881  1.1.1.3  christos 
    882  1.1.1.3  christos #define CACHEOP_NAME_CNT					\
    883  1.1.1.3  christos   (sizeof (cacheop_names) / sizeof (struct reg_name))
    884  1.1.1.3  christos 
    885  1.1.1.3  christos static const struct reg_name prefop_names[] =
    886  1.1.1.3  christos {
    887  1.1.1.3  christos   { "prefd",   0x04, PROCESSOR_V850E3V5_UP },
    888  1.1.1.3  christos   { "prefi",   0x00, PROCESSOR_V850E3V5_UP },
    889  1.1.1.3  christos };
    890  1.1.1.3  christos 
    891  1.1.1.3  christos #define PREFOP_NAME_CNT					\
    892  1.1.1.3  christos   (sizeof (prefop_names) / sizeof (struct reg_name))
    893  1.1.1.3  christos 
    894  1.1.1.3  christos static const struct reg_name vector_registers[] =
    895  1.1.1.3  christos {
    896  1.1.1.3  christos   { "vr0",   0, PROCESSOR_V850E3V5_UP },
    897  1.1.1.3  christos   { "vr1",   1, PROCESSOR_V850E3V5_UP },
    898  1.1.1.3  christos   { "vr10", 10, PROCESSOR_V850E3V5_UP },
    899  1.1.1.3  christos   { "vr11", 11, PROCESSOR_V850E3V5_UP },
    900  1.1.1.3  christos   { "vr12", 12, PROCESSOR_V850E3V5_UP },
    901  1.1.1.3  christos   { "vr13", 13, PROCESSOR_V850E3V5_UP },
    902  1.1.1.3  christos   { "vr14", 14, PROCESSOR_V850E3V5_UP },
    903  1.1.1.3  christos   { "vr15", 15, PROCESSOR_V850E3V5_UP },
    904  1.1.1.3  christos   { "vr16", 16, PROCESSOR_V850E3V5_UP },
    905  1.1.1.3  christos   { "vr17", 17, PROCESSOR_V850E3V5_UP },
    906  1.1.1.3  christos   { "vr18", 18, PROCESSOR_V850E3V5_UP },
    907  1.1.1.3  christos   { "vr19", 19, PROCESSOR_V850E3V5_UP },
    908  1.1.1.3  christos   { "vr2",   2, PROCESSOR_V850E3V5_UP },
    909  1.1.1.3  christos   { "vr20", 20, PROCESSOR_V850E3V5_UP },
    910  1.1.1.3  christos   { "vr21", 21, PROCESSOR_V850E3V5_UP },
    911  1.1.1.3  christos   { "vr22", 22, PROCESSOR_V850E3V5_UP },
    912  1.1.1.3  christos   { "vr23", 23, PROCESSOR_V850E3V5_UP },
    913  1.1.1.3  christos   { "vr24", 24, PROCESSOR_V850E3V5_UP },
    914  1.1.1.3  christos   { "vr25", 25, PROCESSOR_V850E3V5_UP },
    915  1.1.1.3  christos   { "vr26", 26, PROCESSOR_V850E3V5_UP },
    916  1.1.1.3  christos   { "vr27", 27, PROCESSOR_V850E3V5_UP },
    917  1.1.1.3  christos   { "vr28", 28, PROCESSOR_V850E3V5_UP },
    918  1.1.1.3  christos   { "vr29", 29, PROCESSOR_V850E3V5_UP },
    919  1.1.1.3  christos   { "vr3",   3, PROCESSOR_V850E3V5_UP },
    920  1.1.1.3  christos   { "vr30", 30, PROCESSOR_V850E3V5_UP },
    921  1.1.1.3  christos   { "vr31", 31, PROCESSOR_V850E3V5_UP },
    922  1.1.1.3  christos   { "vr4",   4, PROCESSOR_V850E3V5_UP },
    923  1.1.1.3  christos   { "vr5",   5, PROCESSOR_V850E3V5_UP },
    924  1.1.1.3  christos   { "vr6",   6, PROCESSOR_V850E3V5_UP },
    925  1.1.1.3  christos   { "vr7",   7, PROCESSOR_V850E3V5_UP },
    926  1.1.1.3  christos   { "vr8",   8, PROCESSOR_V850E3V5_UP },
    927  1.1.1.3  christos   { "vr9",   9, PROCESSOR_V850E3V5_UP },
    928  1.1.1.3  christos };
    929  1.1.1.3  christos 
    930  1.1.1.3  christos #define VREG_NAME_CNT						\
    931      1.1     skrll   (sizeof (vector_registers) / sizeof (struct reg_name))
    932  1.1.1.5  christos 
    933      1.1     skrll /* Do a binary search of the given register table to see if NAME is a
    934      1.1     skrll    valid register name.  Return the register number from the array on
    935      1.1     skrll    success, or -1 on failure.  */
    936      1.1     skrll 
    937      1.1     skrll static int
    938      1.1     skrll reg_name_search (const struct reg_name *regs,
    939  1.1.1.7  christos 		 int regcount,
    940      1.1     skrll 		 const char *name,
    941      1.1     skrll 		 bool accept_numbers)
    942      1.1     skrll {
    943      1.1     skrll   int middle, low, high;
    944      1.1     skrll   int cmp;
    945      1.1     skrll   symbolS *symbolP;
    946      1.1     skrll 
    947      1.1     skrll   /* If the register name is a symbol, then evaluate it.  */
    948      1.1     skrll   if ((symbolP = symbol_find (name)) != NULL)
    949      1.1     skrll     {
    950      1.1     skrll       /* If the symbol is an alias for another name then use that.
    951      1.1     skrll 	 If the symbol is an alias for a number, then return the number.  */
    952      1.1     skrll       if (symbol_equated_p (symbolP))
    953      1.1     skrll 	name
    954      1.1     skrll 	  = S_GET_NAME (symbol_get_value_expression (symbolP)->X_add_symbol);
    955      1.1     skrll       else if (accept_numbers)
    956  1.1.1.2  christos 	{
    957      1.1     skrll 	  int reg = S_GET_VALUE (symbolP);
    958      1.1     skrll 	  return reg;
    959      1.1     skrll 	}
    960      1.1     skrll 
    961      1.1     skrll       /* Otherwise drop through and try parsing name normally.  */
    962      1.1     skrll     }
    963      1.1     skrll 
    964      1.1     skrll   low = 0;
    965      1.1     skrll   high = regcount - 1;
    966      1.1     skrll 
    967      1.1     skrll   do
    968      1.1     skrll     {
    969      1.1     skrll       middle = (low + high) / 2;
    970      1.1     skrll       cmp = strcasecmp (name, regs[middle].name);
    971      1.1     skrll       if (cmp < 0)
    972      1.1     skrll 	high = middle - 1;
    973      1.1     skrll       else if (cmp > 0)
    974  1.1.1.2  christos 	low = middle + 1;
    975  1.1.1.2  christos       else
    976  1.1.1.2  christos 	return ((regs[middle].processors & processor_mask)
    977      1.1     skrll 		? regs[middle].value
    978      1.1     skrll 		: -1);
    979      1.1     skrll     }
    980      1.1     skrll   while (low <= high);
    981      1.1     skrll   return -1;
    982      1.1     skrll }
    983      1.1     skrll 
    984      1.1     skrll /* Summary of register_name().
    985      1.1     skrll 
    986      1.1     skrll    in: Input_line_pointer points to 1st char of operand.
    987      1.1     skrll 
    988      1.1     skrll    out: An expressionS.
    989      1.1     skrll   	The operand may have been a register: in this case, X_op == O_register,
    990      1.1     skrll   	X_add_number is set to the register number, and truth is returned.
    991      1.1     skrll   	Input_line_pointer->(next non-blank) char after operand, or is in
    992  1.1.1.7  christos   	its original state.  */
    993      1.1     skrll 
    994      1.1     skrll static bool
    995      1.1     skrll register_name (expressionS *expressionP)
    996      1.1     skrll {
    997      1.1     skrll   int reg_number;
    998      1.1     skrll   char *name;
    999      1.1     skrll   char *start;
   1000      1.1     skrll   char c;
   1001  1.1.1.3  christos 
   1002  1.1.1.3  christos   /* Find the spelling of the operand.  */
   1003      1.1     skrll   start = input_line_pointer;
   1004      1.1     skrll   c = get_symbol_name (&name);
   1005  1.1.1.7  christos 
   1006      1.1     skrll   reg_number = reg_name_search (pre_defined_registers, REG_NAME_CNT,
   1007      1.1     skrll 				name, false);
   1008  1.1.1.3  christos 
   1009      1.1     skrll   /* Put back the delimiting char.  */
   1010  1.1.1.2  christos   (void) restore_line_pointer (c);
   1011  1.1.1.2  christos 
   1012  1.1.1.2  christos   expressionP->X_add_symbol = NULL;
   1013      1.1     skrll   expressionP->X_op_symbol  = NULL;
   1014      1.1     skrll 
   1015      1.1     skrll   /* Look to see if it's in the register table.  */
   1016      1.1     skrll   if (reg_number >= 0)
   1017      1.1     skrll     {
   1018      1.1     skrll       expressionP->X_op		= O_register;
   1019  1.1.1.7  christos       expressionP->X_add_number = reg_number;
   1020      1.1     skrll 
   1021      1.1     skrll       return true;
   1022  1.1.1.2  christos     }
   1023  1.1.1.2  christos 
   1024  1.1.1.2  christos   /* Reset the line as if we had not done anything.  */
   1025  1.1.1.2  christos   input_line_pointer = start;
   1026  1.1.1.2  christos 
   1027  1.1.1.7  christos   expressionP->X_op = O_illegal;
   1028      1.1     skrll 
   1029      1.1     skrll   return false;
   1030      1.1     skrll }
   1031      1.1     skrll 
   1032      1.1     skrll /* Summary of system_register_name().
   1033      1.1     skrll 
   1034      1.1     skrll    in:  INPUT_LINE_POINTER points to 1st char of operand.
   1035      1.1     skrll 	EXPRESSIONP points to an expression structure to be filled in.
   1036      1.1     skrll 	ACCEPT_NUMBERS is true iff numerical register names may be used.
   1037      1.1     skrll 
   1038      1.1     skrll    out: An expressionS structure in expressionP.
   1039      1.1     skrll   	The operand may have been a register: in this case, X_op == O_register,
   1040      1.1     skrll   	X_add_number is set to the register number, and truth is returned.
   1041      1.1     skrll   	Input_line_pointer->(next non-blank) char after operand, or is in
   1042  1.1.1.7  christos   	its original state.  */
   1043      1.1     skrll 
   1044  1.1.1.7  christos static bool
   1045      1.1     skrll system_register_name (expressionS *expressionP,
   1046      1.1     skrll 		      bool accept_numbers)
   1047      1.1     skrll {
   1048      1.1     skrll   int reg_number;
   1049      1.1     skrll   char *name;
   1050      1.1     skrll   char *start;
   1051      1.1     skrll   char c;
   1052  1.1.1.3  christos 
   1053  1.1.1.3  christos   /* Find the spelling of the operand.  */
   1054      1.1     skrll   start = input_line_pointer;
   1055      1.1     skrll   c = get_symbol_name (&name);
   1056      1.1     skrll   reg_number = reg_name_search (system_registers, SYSREG_NAME_CNT, name,
   1057      1.1     skrll 				accept_numbers);
   1058  1.1.1.3  christos 
   1059      1.1     skrll   /* Put back the delimiting char.  */
   1060      1.1     skrll   (void) restore_line_pointer (c);
   1061      1.1     skrll 
   1062      1.1     skrll   if (reg_number < 0
   1063      1.1     skrll       && accept_numbers)
   1064      1.1     skrll     {
   1065      1.1     skrll       /* Reset input_line pointer.  */
   1066      1.1     skrll       input_line_pointer = start;
   1067      1.1     skrll 
   1068  1.1.1.2  christos       if (ISDIGIT (*input_line_pointer))
   1069      1.1     skrll 	{
   1070      1.1     skrll 	  reg_number = strtol (input_line_pointer, &input_line_pointer, 0);
   1071      1.1     skrll 	}
   1072  1.1.1.2  christos     }
   1073  1.1.1.2  christos 
   1074  1.1.1.2  christos   expressionP->X_add_symbol = NULL;
   1075      1.1     skrll   expressionP->X_op_symbol  = NULL;
   1076      1.1     skrll 
   1077      1.1     skrll   /* Look to see if it's in the register table.  */
   1078      1.1     skrll   if (reg_number >= 0)
   1079      1.1     skrll     {
   1080      1.1     skrll       expressionP->X_op		= O_register;
   1081  1.1.1.7  christos       expressionP->X_add_number = reg_number;
   1082      1.1     skrll 
   1083      1.1     skrll       return true;
   1084  1.1.1.2  christos     }
   1085  1.1.1.2  christos 
   1086  1.1.1.2  christos   /* Reset the line as if we had not done anything.  */
   1087  1.1.1.2  christos   input_line_pointer = start;
   1088  1.1.1.2  christos 
   1089  1.1.1.7  christos   expressionP->X_op = O_illegal;
   1090      1.1     skrll 
   1091      1.1     skrll   return false;
   1092      1.1     skrll }
   1093      1.1     skrll 
   1094      1.1     skrll /* Summary of cc_name().
   1095      1.1     skrll 
   1096      1.1     skrll    in: INPUT_LINE_POINTER points to 1st char of operand.
   1097      1.1     skrll 
   1098      1.1     skrll    out: An expressionS.
   1099      1.1     skrll   	The operand may have been a register: in this case, X_op == O_register,
   1100      1.1     skrll   	X_add_number is set to the register number, and truth is returned.
   1101      1.1     skrll   	Input_line_pointer->(next non-blank) char after operand, or is in
   1102  1.1.1.7  christos   	its original state.  */
   1103  1.1.1.2  christos 
   1104  1.1.1.7  christos static bool
   1105      1.1     skrll cc_name (expressionS *expressionP,
   1106      1.1     skrll 	 bool accept_numbers)
   1107      1.1     skrll {
   1108      1.1     skrll   int reg_number;
   1109      1.1     skrll   char *name;
   1110      1.1     skrll   char *start;
   1111      1.1     skrll   char c;
   1112  1.1.1.3  christos 
   1113  1.1.1.3  christos   /* Find the spelling of the operand.  */
   1114  1.1.1.2  christos   start = input_line_pointer;
   1115      1.1     skrll   c = get_symbol_name (&name);
   1116      1.1     skrll   reg_number = reg_name_search (cc_names, CC_NAME_CNT, name, accept_numbers);
   1117  1.1.1.3  christos 
   1118      1.1     skrll   /* Put back the delimiting char.  */
   1119  1.1.1.2  christos   (void) restore_line_pointer (c);
   1120  1.1.1.2  christos 
   1121  1.1.1.2  christos   if (reg_number < 0
   1122  1.1.1.2  christos       && accept_numbers)
   1123  1.1.1.2  christos     {
   1124  1.1.1.2  christos       /* Reset input_line pointer.  */
   1125  1.1.1.2  christos       input_line_pointer = start;
   1126  1.1.1.2  christos 
   1127  1.1.1.2  christos       if (ISDIGIT (*input_line_pointer))
   1128  1.1.1.2  christos 	{
   1129  1.1.1.2  christos 	  reg_number = strtol (input_line_pointer, &input_line_pointer, 0);
   1130  1.1.1.2  christos 	}
   1131  1.1.1.2  christos     }
   1132  1.1.1.2  christos 
   1133  1.1.1.2  christos   expressionP->X_add_symbol = NULL;
   1134      1.1     skrll   expressionP->X_op_symbol  = NULL;
   1135      1.1     skrll 
   1136      1.1     skrll   /* Look to see if it's in the register table.  */
   1137      1.1     skrll   if (reg_number >= 0)
   1138      1.1     skrll     {
   1139      1.1     skrll       expressionP->X_op		= O_constant;
   1140  1.1.1.7  christos       expressionP->X_add_number = reg_number;
   1141      1.1     skrll 
   1142  1.1.1.2  christos       return true;
   1143  1.1.1.2  christos     }
   1144  1.1.1.2  christos 
   1145  1.1.1.2  christos   /* Reset the line as if we had not done anything.  */
   1146  1.1.1.2  christos   input_line_pointer = start;
   1147  1.1.1.2  christos 
   1148  1.1.1.2  christos   expressionP->X_op = O_illegal;
   1149  1.1.1.7  christos   expressionP->X_add_number = 0;
   1150  1.1.1.2  christos 
   1151  1.1.1.2  christos   return false;
   1152  1.1.1.7  christos }
   1153  1.1.1.2  christos 
   1154  1.1.1.7  christos static bool
   1155  1.1.1.2  christos float_cc_name (expressionS *expressionP,
   1156  1.1.1.2  christos 	       bool accept_numbers)
   1157  1.1.1.2  christos {
   1158  1.1.1.2  christos   int reg_number;
   1159  1.1.1.2  christos   char *name;
   1160  1.1.1.2  christos   char *start;
   1161  1.1.1.2  christos   char c;
   1162  1.1.1.3  christos 
   1163  1.1.1.3  christos   /* Find the spelling of the operand.  */
   1164  1.1.1.2  christos   start = input_line_pointer;
   1165  1.1.1.2  christos   c = get_symbol_name (&name);
   1166  1.1.1.2  christos   reg_number = reg_name_search (float_cc_names, FLOAT_CC_NAME_CNT, name, accept_numbers);
   1167  1.1.1.3  christos 
   1168  1.1.1.2  christos   /* Put back the delimiting char.  */
   1169  1.1.1.2  christos   (void) restore_line_pointer (c);
   1170  1.1.1.2  christos 
   1171      1.1     skrll   if (reg_number < 0
   1172  1.1.1.2  christos       && accept_numbers)
   1173      1.1     skrll     {
   1174      1.1     skrll       /* Reset input_line pointer.  */
   1175  1.1.1.2  christos       input_line_pointer = start;
   1176  1.1.1.2  christos 
   1177  1.1.1.2  christos       if (ISDIGIT (*input_line_pointer))
   1178  1.1.1.2  christos 	{
   1179  1.1.1.2  christos 	  reg_number = strtol (input_line_pointer, &input_line_pointer, 0);
   1180  1.1.1.2  christos 	}
   1181  1.1.1.2  christos     }
   1182  1.1.1.2  christos 
   1183  1.1.1.2  christos   expressionP->X_add_symbol = NULL;
   1184  1.1.1.2  christos   expressionP->X_op_symbol  = NULL;
   1185  1.1.1.2  christos 
   1186  1.1.1.2  christos   /* Look to see if it's in the register table.  */
   1187  1.1.1.2  christos   if (reg_number >= 0)
   1188  1.1.1.2  christos     {
   1189  1.1.1.2  christos       expressionP->X_op		= O_constant;
   1190  1.1.1.7  christos       expressionP->X_add_number = reg_number;
   1191      1.1     skrll 
   1192  1.1.1.2  christos       return true;
   1193  1.1.1.2  christos     }
   1194  1.1.1.2  christos 
   1195  1.1.1.2  christos   /* Reset the line as if we had not done anything.  */
   1196  1.1.1.2  christos   input_line_pointer = start;
   1197  1.1.1.2  christos 
   1198  1.1.1.2  christos   expressionP->X_op = O_illegal;
   1199  1.1.1.7  christos   expressionP->X_add_number = 0;
   1200      1.1     skrll 
   1201      1.1     skrll   return false;
   1202  1.1.1.7  christos }
   1203  1.1.1.3  christos 
   1204  1.1.1.7  christos static bool
   1205  1.1.1.3  christos cacheop_name (expressionS * expressionP,
   1206  1.1.1.3  christos 	      bool accept_numbers)
   1207  1.1.1.3  christos {
   1208  1.1.1.3  christos   int reg_number;
   1209  1.1.1.3  christos   char *name;
   1210  1.1.1.3  christos   char *start;
   1211  1.1.1.3  christos   char c;
   1212  1.1.1.3  christos 
   1213  1.1.1.3  christos   /* Find the spelling of the operand.  */
   1214  1.1.1.3  christos   start = input_line_pointer;
   1215  1.1.1.3  christos   c = get_symbol_name (&name);
   1216  1.1.1.3  christos   reg_number = reg_name_search (cacheop_names, CACHEOP_NAME_CNT, name, accept_numbers);
   1217  1.1.1.3  christos 
   1218  1.1.1.3  christos   /* Put back the delimiting char.  */
   1219  1.1.1.3  christos   (void) restore_line_pointer (c);
   1220  1.1.1.3  christos 
   1221  1.1.1.3  christos   if (reg_number < 0
   1222  1.1.1.3  christos       && accept_numbers)
   1223  1.1.1.3  christos     {
   1224  1.1.1.3  christos       /* Reset input_line pointer.  */
   1225  1.1.1.3  christos       input_line_pointer = start;
   1226  1.1.1.3  christos 
   1227  1.1.1.3  christos       if (ISDIGIT (*input_line_pointer))
   1228  1.1.1.3  christos 	reg_number = strtol (input_line_pointer, &input_line_pointer, 0);
   1229  1.1.1.3  christos     }
   1230  1.1.1.3  christos 
   1231  1.1.1.3  christos   expressionP->X_add_symbol = NULL;
   1232  1.1.1.3  christos   expressionP->X_op_symbol  = NULL;
   1233  1.1.1.3  christos 
   1234  1.1.1.3  christos   /* Look to see if it's in the register table.  */
   1235  1.1.1.3  christos   if (reg_number >= 0)
   1236  1.1.1.3  christos     {
   1237  1.1.1.3  christos       expressionP->X_op		= O_constant;
   1238  1.1.1.7  christos       expressionP->X_add_number = reg_number;
   1239  1.1.1.3  christos 
   1240  1.1.1.3  christos       return true;
   1241  1.1.1.3  christos     }
   1242  1.1.1.3  christos 
   1243  1.1.1.3  christos   /* Reset the line as if we had not done anything.  */
   1244  1.1.1.3  christos   input_line_pointer = start;
   1245  1.1.1.3  christos 
   1246  1.1.1.3  christos   expressionP->X_op = O_illegal;
   1247  1.1.1.7  christos   expressionP->X_add_number = 0;
   1248  1.1.1.3  christos 
   1249  1.1.1.3  christos   return false;
   1250  1.1.1.7  christos }
   1251  1.1.1.3  christos 
   1252  1.1.1.7  christos static bool
   1253  1.1.1.3  christos prefop_name (expressionS * expressionP,
   1254  1.1.1.3  christos 	     bool accept_numbers)
   1255  1.1.1.3  christos {
   1256  1.1.1.3  christos   int reg_number;
   1257  1.1.1.3  christos   char *name;
   1258  1.1.1.3  christos   char *start;
   1259  1.1.1.3  christos   char c;
   1260  1.1.1.3  christos 
   1261  1.1.1.3  christos   /* Find the spelling of the operand.  */
   1262  1.1.1.3  christos   start = input_line_pointer;
   1263  1.1.1.3  christos   c = get_symbol_name (&name);
   1264  1.1.1.3  christos   reg_number = reg_name_search (prefop_names, PREFOP_NAME_CNT, name, accept_numbers);
   1265  1.1.1.3  christos 
   1266  1.1.1.3  christos   /* Put back the delimiting char.  */
   1267  1.1.1.3  christos   (void) restore_line_pointer (c);
   1268  1.1.1.3  christos 
   1269  1.1.1.3  christos   if (reg_number < 0
   1270  1.1.1.3  christos       && accept_numbers)
   1271  1.1.1.3  christos     {
   1272  1.1.1.3  christos       /* Reset input_line pointer.  */
   1273  1.1.1.3  christos       input_line_pointer = start;
   1274  1.1.1.3  christos 
   1275  1.1.1.3  christos       if (ISDIGIT (*input_line_pointer))
   1276  1.1.1.3  christos 	reg_number = strtol (input_line_pointer, &input_line_pointer, 0);
   1277  1.1.1.3  christos     }
   1278  1.1.1.3  christos 
   1279  1.1.1.3  christos   expressionP->X_add_symbol = NULL;
   1280  1.1.1.3  christos   expressionP->X_op_symbol  = NULL;
   1281  1.1.1.3  christos 
   1282  1.1.1.3  christos   /* Look to see if it's in the register table.  */
   1283  1.1.1.3  christos   if (reg_number >= 0)
   1284  1.1.1.3  christos     {
   1285  1.1.1.3  christos       expressionP->X_op		= O_constant;
   1286  1.1.1.7  christos       expressionP->X_add_number = reg_number;
   1287  1.1.1.3  christos 
   1288  1.1.1.3  christos       return true;
   1289  1.1.1.3  christos     }
   1290  1.1.1.3  christos 
   1291  1.1.1.3  christos   /* Reset the line as if we had not done anything.  */
   1292  1.1.1.3  christos   input_line_pointer = start;
   1293  1.1.1.3  christos 
   1294  1.1.1.3  christos   expressionP->X_op = O_illegal;
   1295  1.1.1.7  christos   expressionP->X_add_number = 0;
   1296  1.1.1.3  christos 
   1297  1.1.1.3  christos   return false;
   1298  1.1.1.7  christos }
   1299  1.1.1.3  christos 
   1300  1.1.1.3  christos static bool
   1301  1.1.1.3  christos vector_register_name (expressionS *expressionP)
   1302  1.1.1.3  christos {
   1303  1.1.1.3  christos   int reg_number;
   1304  1.1.1.3  christos   char *name;
   1305  1.1.1.3  christos   char *start;
   1306  1.1.1.3  christos   char c;
   1307  1.1.1.3  christos 
   1308  1.1.1.3  christos   /* Find the spelling of the operand.  */
   1309  1.1.1.3  christos   start = input_line_pointer;
   1310  1.1.1.3  christos   c = get_symbol_name (&name);
   1311  1.1.1.7  christos 
   1312  1.1.1.3  christos   reg_number = reg_name_search (vector_registers, VREG_NAME_CNT,
   1313  1.1.1.3  christos 				name, false);
   1314  1.1.1.3  christos 
   1315  1.1.1.3  christos   /* Put back the delimiting char.  */
   1316  1.1.1.3  christos   (void) restore_line_pointer (c);
   1317  1.1.1.3  christos 
   1318  1.1.1.3  christos   expressionP->X_add_symbol = NULL;
   1319  1.1.1.3  christos   expressionP->X_op_symbol  = NULL;
   1320  1.1.1.3  christos 
   1321  1.1.1.3  christos   /* Look to see if it's in the register table.  */
   1322  1.1.1.3  christos   if (reg_number >= 0)
   1323  1.1.1.3  christos     {
   1324  1.1.1.3  christos       expressionP->X_op		= O_register;
   1325  1.1.1.7  christos       expressionP->X_add_number = reg_number;
   1326  1.1.1.3  christos 
   1327  1.1.1.3  christos       return true;
   1328  1.1.1.3  christos     }
   1329  1.1.1.3  christos 
   1330  1.1.1.3  christos   /* Reset the line as if we had not done anything.  */
   1331  1.1.1.3  christos   input_line_pointer = start;
   1332  1.1.1.3  christos 
   1333  1.1.1.7  christos   expressionP->X_op = O_illegal;
   1334  1.1.1.3  christos 
   1335  1.1.1.3  christos   return false;
   1336      1.1     skrll }
   1337      1.1     skrll 
   1338      1.1     skrll static void
   1339  1.1.1.9  christos skip_white_space (void)
   1340      1.1     skrll {
   1341      1.1     skrll   while (is_whitespace (*input_line_pointer))
   1342      1.1     skrll     ++input_line_pointer;
   1343      1.1     skrll }
   1344      1.1     skrll 
   1345      1.1     skrll /* Summary of parse_register_list ().
   1346      1.1     skrll 
   1347      1.1     skrll    in: INPUT_LINE_POINTER  points to 1st char of a list of registers.
   1348      1.1     skrll        INSN		   is the partially constructed instruction.
   1349      1.1     skrll        OPERAND		   is the operand being inserted.
   1350      1.1     skrll 
   1351      1.1     skrll    out: NULL if the parse completed successfully, otherwise a
   1352      1.1     skrll 	pointer to an error message is returned.  If the parse
   1353      1.1     skrll 	completes the correct bit fields in the instruction
   1354      1.1     skrll 	will be filled in.
   1355      1.1     skrll 
   1356      1.1     skrll    Parses register lists with the syntax:
   1357      1.1     skrll 
   1358      1.1     skrll      { rX }
   1359      1.1     skrll      { rX, rY }
   1360      1.1     skrll      { rX - rY }
   1361      1.1     skrll      { rX - rY, rZ }
   1362  1.1.1.5  christos      etc
   1363      1.1     skrll 
   1364      1.1     skrll    and also parses constant expressions whose bits indicate the
   1365      1.1     skrll    registers in the lists.  The LSB in the expression refers to
   1366      1.1     skrll    the lowest numbered permissible register in the register list,
   1367      1.1     skrll    and so on upwards.  System registers are considered to be very
   1368  1.1.1.4  christos    high numbers.  */
   1369      1.1     skrll 
   1370      1.1     skrll static const char *
   1371      1.1     skrll parse_register_list (unsigned long *insn,
   1372      1.1     skrll 		     const struct v850_operand *operand)
   1373      1.1     skrll {
   1374      1.1     skrll   static int type1_regs[32] =
   1375      1.1     skrll   {
   1376      1.1     skrll     30,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,  0,
   1377  1.1.1.2  christos      0,  0,  0,  0,  0, 31, 29, 28, 23, 22, 21, 20, 27, 26, 25, 24
   1378      1.1     skrll   };
   1379      1.1     skrll 
   1380      1.1     skrll   int *regs;
   1381      1.1     skrll   expressionS exp;
   1382      1.1     skrll 
   1383      1.1     skrll   /* Select a register array to parse.  */
   1384      1.1     skrll   switch (operand->shift)
   1385      1.1     skrll     {
   1386      1.1     skrll     case 0xffe00001: regs = type1_regs; break;
   1387      1.1     skrll     default:
   1388      1.1     skrll       as_bad (_("unknown operand shift: %x\n"), operand->shift);
   1389      1.1     skrll       return _("internal failure in parse_register_list");
   1390      1.1     skrll     }
   1391      1.1     skrll 
   1392      1.1     skrll   skip_white_space ();
   1393  1.1.1.5  christos 
   1394      1.1     skrll   /* If the expression starts with a curly brace it is a register list.
   1395      1.1     skrll      Otherwise it is a constant expression, whose bits indicate which
   1396      1.1     skrll      registers are to be included in the list.  */
   1397      1.1     skrll   if (*input_line_pointer != '{')
   1398      1.1     skrll     {
   1399      1.1     skrll       int reg;
   1400      1.1     skrll       int i;
   1401      1.1     skrll 
   1402      1.1     skrll       expression (&exp);
   1403      1.1     skrll 
   1404      1.1     skrll       if (exp.X_op != O_constant)
   1405      1.1     skrll 	return _("constant expression or register list expected");
   1406      1.1     skrll 
   1407      1.1     skrll       if (regs == type1_regs)
   1408      1.1     skrll 	{
   1409      1.1     skrll 	  if (exp.X_add_number & 0xFFFFF000)
   1410      1.1     skrll 	    return _("high bits set in register list expression");
   1411      1.1     skrll 
   1412      1.1     skrll 	  for (reg = 20; reg < 32; reg++)
   1413      1.1     skrll 	    if (exp.X_add_number & (1 << (reg - 20)))
   1414      1.1     skrll 	      {
   1415      1.1     skrll 		for (i = 0; i < 32; i++)
   1416      1.1     skrll 		  if (regs[i] == reg)
   1417      1.1     skrll 		    *insn |= (1 << i);
   1418      1.1     skrll 	      }
   1419      1.1     skrll 	}
   1420      1.1     skrll 
   1421      1.1     skrll       return NULL;
   1422      1.1     skrll     }
   1423      1.1     skrll 
   1424      1.1     skrll   input_line_pointer++;
   1425      1.1     skrll 
   1426      1.1     skrll   /* Parse the register list until a terminator (closing curly brace or
   1427      1.1     skrll      new-line) is found.  */
   1428  1.1.1.2  christos   for (;;)
   1429  1.1.1.2  christos     {
   1430      1.1     skrll       skip_white_space ();
   1431      1.1     skrll 
   1432      1.1     skrll       if (register_name (&exp))
   1433      1.1     skrll 	{
   1434      1.1     skrll 	  int i;
   1435      1.1     skrll 
   1436      1.1     skrll 	  /* Locate the given register in the list, and if it is there,
   1437      1.1     skrll 	     insert the corresponding bit into the instruction.  */
   1438      1.1     skrll 	  for (i = 0; i < 32; i++)
   1439      1.1     skrll 	    {
   1440  1.1.1.7  christos 	      if (regs[i] == exp.X_add_number)
   1441      1.1     skrll 		{
   1442      1.1     skrll 		  *insn |= 1u << i;
   1443      1.1     skrll 		  break;
   1444      1.1     skrll 		}
   1445      1.1     skrll 	    }
   1446      1.1     skrll 
   1447      1.1     skrll 	  if (i == 32)
   1448  1.1.1.7  christos 	    return _("illegal register included in list");
   1449      1.1     skrll 	}
   1450      1.1     skrll       else if (system_register_name (&exp, true))
   1451      1.1     skrll 	{
   1452      1.1     skrll 	  if (regs == type1_regs)
   1453      1.1     skrll 	    {
   1454      1.1     skrll 	      return _("system registers cannot be included in list");
   1455  1.1.1.2  christos 	    }
   1456  1.1.1.2  christos 	}
   1457      1.1     skrll 
   1458      1.1     skrll       if (*input_line_pointer == '}')
   1459      1.1     skrll 	{
   1460      1.1     skrll 	  input_line_pointer++;
   1461      1.1     skrll 	  break;
   1462      1.1     skrll 	}
   1463      1.1     skrll       else if (*input_line_pointer == ',')
   1464      1.1     skrll 	{
   1465      1.1     skrll 	  input_line_pointer++;
   1466      1.1     skrll 	  continue;
   1467      1.1     skrll 	}
   1468      1.1     skrll       else if (*input_line_pointer == '-')
   1469      1.1     skrll 	{
   1470      1.1     skrll 	  /* We have encountered a range of registers: rX - rY.  */
   1471      1.1     skrll 	  int j;
   1472      1.1     skrll 	  expressionS exp2;
   1473      1.1     skrll 
   1474      1.1     skrll 	  /* Skip the dash.  */
   1475      1.1     skrll 	  ++input_line_pointer;
   1476      1.1     skrll 
   1477      1.1     skrll 	  /* Get the second register in the range.  */
   1478      1.1     skrll 	  if (! register_name (&exp2))
   1479  1.1.1.2  christos 	    {
   1480  1.1.1.2  christos 	      return _("second register should follow dash in register list");
   1481  1.1.1.2  christos 	    }
   1482  1.1.1.2  christos 
   1483  1.1.1.2  christos 	  if (exp.X_add_number > exp2.X_add_number)
   1484      1.1     skrll 	    {
   1485      1.1     skrll 	      return _("second register should be greater than first register");
   1486      1.1     skrll 	    }
   1487      1.1     skrll 
   1488      1.1     skrll 	  /* Add the rest of the registers in the range.  */
   1489      1.1     skrll 	  for (j = exp.X_add_number + 1; j <= exp2.X_add_number; j++)
   1490      1.1     skrll 	    {
   1491      1.1     skrll 	      int i;
   1492      1.1     skrll 
   1493      1.1     skrll 	      /* Locate the given register in the list, and if it is there,
   1494      1.1     skrll 		 insert the corresponding bit into the instruction.  */
   1495      1.1     skrll 	      for (i = 0; i < 32; i++)
   1496      1.1     skrll 		{
   1497      1.1     skrll 		  if (regs[i] == j)
   1498      1.1     skrll 		    {
   1499      1.1     skrll 		      *insn |= (1 << i);
   1500      1.1     skrll 		      break;
   1501      1.1     skrll 		    }
   1502      1.1     skrll 		}
   1503      1.1     skrll 
   1504      1.1     skrll 	      if (i == 32)
   1505  1.1.1.2  christos 		return _("illegal register included in list");
   1506  1.1.1.2  christos 	    }
   1507      1.1     skrll 
   1508      1.1     skrll 	  exp = exp2;
   1509      1.1     skrll 	}
   1510      1.1     skrll       else
   1511      1.1     skrll 	break;
   1512      1.1     skrll     }
   1513      1.1     skrll 
   1514      1.1     skrll   return NULL;
   1515  1.1.1.9  christos }
   1516      1.1     skrll 
   1517  1.1.1.9  christos const char md_shortopts[] = "m:";
   1518      1.1     skrll 
   1519  1.1.1.2  christos const struct option md_longopts[] =
   1520  1.1.1.2  christos {
   1521  1.1.1.2  christos #define OPTION_DISP_SIZE_DEFAULT_22 (OPTION_MD_BASE)
   1522  1.1.1.2  christos   {"disp-size-default-22", no_argument, NULL, OPTION_DISP_SIZE_DEFAULT_22},
   1523      1.1     skrll #define OPTION_DISP_SIZE_DEFAULT_32 (OPTION_MD_BASE + 1)
   1524      1.1     skrll   {"disp-size-default-32", no_argument, NULL, OPTION_DISP_SIZE_DEFAULT_32},
   1525      1.1     skrll   {NULL, no_argument, NULL, 0}
   1526  1.1.1.9  christos };
   1527      1.1     skrll 
   1528  1.1.1.7  christos const size_t md_longopts_size = sizeof (md_longopts);
   1529  1.1.1.3  christos 
   1530      1.1     skrll static bool v850_data_8 = false;
   1531      1.1     skrll 
   1532      1.1     skrll void
   1533      1.1     skrll md_show_usage (FILE *stream)
   1534      1.1     skrll {
   1535      1.1     skrll   fprintf (stream, _(" V850 options:\n"));
   1536      1.1     skrll   fprintf (stream, _("  -mwarn-signed-overflow    Warn if signed immediate values overflow\n"));
   1537      1.1     skrll   fprintf (stream, _("  -mwarn-unsigned-overflow  Warn if unsigned immediate values overflow\n"));
   1538      1.1     skrll   fprintf (stream, _("  -mv850                    The code is targeted at the v850\n"));
   1539  1.1.1.2  christos   fprintf (stream, _("  -mv850e                   The code is targeted at the v850e\n"));
   1540  1.1.1.2  christos   fprintf (stream, _("  -mv850e1                  The code is targeted at the v850e1\n"));
   1541  1.1.1.3  christos   fprintf (stream, _("  -mv850e2                  The code is targeted at the v850e2\n"));
   1542  1.1.1.3  christos   fprintf (stream, _("  -mv850e2v3                The code is targeted at the v850e2v3\n"));
   1543      1.1     skrll   fprintf (stream, _("  -mv850e2v4                Alias for -mv850e3v5\n"));
   1544  1.1.1.2  christos   fprintf (stream, _("  -mv850e3v5                The code is targeted at the v850e3v5\n"));
   1545  1.1.1.2  christos   fprintf (stream, _("  -mrelax                   Enable relaxation\n"));
   1546  1.1.1.2  christos   fprintf (stream, _("  --disp-size-default-22    branch displacement with unknown size is 22 bits (default)\n"));
   1547  1.1.1.2  christos   fprintf (stream, _("  --disp-size-default-32    branch displacement with unknown size is 32 bits\n"));
   1548  1.1.1.2  christos   fprintf (stream, _("  -mextension               enable extension opcode support\n"));
   1549  1.1.1.3  christos   fprintf (stream, _("  -mno-bcond17		  disable b<cond> disp17 instruction\n"));
   1550  1.1.1.3  christos   fprintf (stream, _("  -mno-stld23		  disable st/ld offset23 instruction\n"));
   1551  1.1.1.3  christos   fprintf (stream, _("  -mgcc-abi                 Mark the binary as using the old GCC ABI\n"));
   1552  1.1.1.3  christos   fprintf (stream, _("  -mrh850-abi               Mark the binary as using the RH850 ABI (default)\n"));
   1553  1.1.1.3  christos   fprintf (stream, _("  -m8byte-align             Mark the binary as using 64-bit alignment\n"));
   1554  1.1.1.3  christos   fprintf (stream, _("  -m4byte-align             Mark the binary as using 32-bit alignment (default)\n"));
   1555      1.1     skrll   fprintf (stream, _("  -msoft-float              Mark the binary as not using FP insns (default for pre e2v3)\n"));
   1556      1.1     skrll   fprintf (stream, _("  -mhard-float              Mark the binary as using FP insns (default for e2v3 and up)\n"));
   1557      1.1     skrll }
   1558  1.1.1.4  christos 
   1559      1.1     skrll int
   1560      1.1     skrll md_parse_option (int c, const char *arg)
   1561  1.1.1.2  christos {
   1562  1.1.1.2  christos   if (c != 'm')
   1563  1.1.1.2  christos     {
   1564  1.1.1.2  christos       switch (c)
   1565  1.1.1.2  christos         {
   1566  1.1.1.2  christos         case OPTION_DISP_SIZE_DEFAULT_22:
   1567  1.1.1.2  christos           default_disp_size = 22;
   1568  1.1.1.2  christos           return 1;
   1569  1.1.1.2  christos 
   1570  1.1.1.2  christos         case OPTION_DISP_SIZE_DEFAULT_32:
   1571  1.1.1.2  christos           default_disp_size = 32;
   1572  1.1.1.2  christos           return 1;
   1573  1.1.1.2  christos         }
   1574      1.1     skrll       return 0;
   1575      1.1     skrll     }
   1576  1.1.1.7  christos 
   1577      1.1     skrll   if (strcmp (arg, "warn-signed-overflow") == 0)
   1578      1.1     skrll     warn_signed_overflows = true;
   1579  1.1.1.7  christos 
   1580      1.1     skrll   else if (strcmp (arg, "warn-unsigned-overflow") == 0)
   1581      1.1     skrll     warn_unsigned_overflows = true;
   1582      1.1     skrll 
   1583      1.1     skrll   else if (strcmp (arg, "v850") == 0)
   1584  1.1.1.2  christos     {
   1585      1.1     skrll       machine = 0;
   1586      1.1     skrll       SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850);
   1587      1.1     skrll     }
   1588      1.1     skrll   else if (strcmp (arg, "v850e") == 0)
   1589  1.1.1.2  christos     {
   1590      1.1     skrll       machine = bfd_mach_v850e;
   1591      1.1     skrll       SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850E);
   1592      1.1     skrll     }
   1593      1.1     skrll   else if (strcmp (arg, "v850e1") == 0)
   1594  1.1.1.2  christos     {
   1595      1.1     skrll       machine = bfd_mach_v850e1;
   1596  1.1.1.2  christos       SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850E1);
   1597      1.1     skrll     }
   1598  1.1.1.2  christos   else if (strcmp (arg, "v850e2") == 0)
   1599  1.1.1.2  christos     {
   1600  1.1.1.2  christos       machine = bfd_mach_v850e2;
   1601  1.1.1.2  christos       SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850E2);
   1602  1.1.1.2  christos     }
   1603  1.1.1.2  christos   else if (strcmp (arg, "v850e2v3") == 0)
   1604  1.1.1.2  christos     {
   1605  1.1.1.2  christos       machine = bfd_mach_v850e2v3;
   1606  1.1.1.3  christos       SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850E2V3);
   1607  1.1.1.3  christos     }
   1608  1.1.1.3  christos   else if (strcmp (arg, "v850e2v4") == 0)
   1609  1.1.1.3  christos     {
   1610  1.1.1.3  christos       machine = bfd_mach_v850e3v5;
   1611  1.1.1.3  christos       SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850E3V5);
   1612  1.1.1.3  christos     }
   1613  1.1.1.3  christos   else if (strcmp (arg, "v850e3v5") == 0)
   1614  1.1.1.3  christos     {
   1615  1.1.1.3  christos       machine = bfd_mach_v850e3v5;
   1616  1.1.1.2  christos       SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850E3V5);
   1617  1.1.1.2  christos     }
   1618  1.1.1.3  christos   else if (strcmp (arg, "extension") == 0)
   1619  1.1.1.2  christos     {
   1620  1.1.1.2  christos       processor_mask |= PROCESSOR_OPTION_EXTENSION | PROCESSOR_OPTION_ALIAS;
   1621  1.1.1.2  christos     }
   1622  1.1.1.2  christos   else if (strcmp (arg, "no-bcond17") == 0)
   1623  1.1.1.2  christos     {
   1624  1.1.1.2  christos       no_bcond17 = 1;
   1625  1.1.1.2  christos     }
   1626  1.1.1.2  christos   else if (strcmp (arg, "no-stld23") == 0)
   1627      1.1     skrll     {
   1628      1.1     skrll       no_stld23 = 1;
   1629      1.1     skrll     }
   1630  1.1.1.3  christos   else if (strcmp (arg, "relax") == 0)
   1631  1.1.1.3  christos     v850_relax = 1;
   1632  1.1.1.3  christos   else if (strcmp (arg, "gcc-abi") == 0)
   1633  1.1.1.3  christos     {
   1634  1.1.1.3  christos       v850_target_arch = bfd_arch_v850;
   1635  1.1.1.3  christos       v850_target_format = "elf32-v850";
   1636  1.1.1.3  christos     }
   1637  1.1.1.3  christos   else if (strcmp (arg, "rh850-abi") == 0)
   1638  1.1.1.3  christos     {
   1639  1.1.1.3  christos       v850_target_arch = bfd_arch_v850_rh850;
   1640  1.1.1.3  christos       v850_target_format = "elf32-v850-rh850";
   1641  1.1.1.3  christos     }
   1642  1.1.1.7  christos   else if (strcmp (arg, "8byte-align") == 0)
   1643  1.1.1.3  christos     {
   1644  1.1.1.3  christos       v850_data_8 = true;
   1645  1.1.1.3  christos       v850_e_flags |= EF_RH850_DATA_ALIGN8;
   1646  1.1.1.3  christos     }
   1647  1.1.1.7  christos   else if (strcmp (arg, "4byte-align") == 0)
   1648  1.1.1.3  christos     {
   1649  1.1.1.3  christos       v850_data_8 = false;
   1650  1.1.1.3  christos       v850_e_flags &= ~ EF_RH850_DATA_ALIGN8;
   1651  1.1.1.3  christos     }
   1652  1.1.1.3  christos   else if (strcmp (arg, "soft-float") == 0)
   1653  1.1.1.3  christos     soft_float = 1;
   1654      1.1     skrll   else if (strcmp (arg, "hard-float") == 0)
   1655      1.1     skrll     soft_float = 0;
   1656      1.1     skrll   else
   1657      1.1     skrll     return 0;
   1658      1.1     skrll 
   1659      1.1     skrll   return 1;
   1660      1.1     skrll }
   1661      1.1     skrll 
   1662      1.1     skrll symbolS *
   1663      1.1     skrll md_undefined_symbol (char *name ATTRIBUTE_UNUSED)
   1664      1.1     skrll {
   1665      1.1     skrll   return 0;
   1666  1.1.1.4  christos }
   1667      1.1     skrll 
   1668      1.1     skrll const char *
   1669  1.1.1.7  christos md_atof (int type, char *litp, int *sizep)
   1670      1.1     skrll {
   1671      1.1     skrll   return ieee_md_atof (type, litp, sizep, false);
   1672      1.1     skrll }
   1673      1.1     skrll 
   1674      1.1     skrll /* Very gross.  */
   1675      1.1     skrll 
   1676  1.1.1.9  christos void
   1677      1.1     skrll md_convert_frag (bfd *abfd ATTRIBUTE_UNUSED,
   1678      1.1     skrll 		 asection *sec ATTRIBUTE_UNUSED,
   1679  1.1.1.9  christos 		 fragS *fragP)
   1680  1.1.1.2  christos {
   1681  1.1.1.3  christos   unsigned int opindex = (uintptr_t) fragP->fr_opcode;
   1682  1.1.1.3  christos 
   1683  1.1.1.3  christos   if (fragP->fr_subtype == SUBYPTE_LOOP_16_22)
   1684  1.1.1.9  christos     {
   1685  1.1.1.3  christos       fix_new (fragP, fragP->fr_fix, 4, fragP->fr_symbol,
   1686  1.1.1.3  christos 	       fragP->fr_offset, 1, BFD_RELOC_UNUSED + opindex);
   1687  1.1.1.3  christos       fragP->fr_fix += 4;
   1688  1.1.1.3  christos     }
   1689  1.1.1.9  christos   else if (fragP->fr_subtype == SUBYPTE_LOOP_16_22 + 1)
   1690  1.1.1.9  christos     {
   1691  1.1.1.3  christos       char *buffer = fragP->fr_literal + fragP->fr_fix;
   1692  1.1.1.3  christos       int loop_reg = buffer[0] & 0x1f;
   1693  1.1.1.9  christos 
   1694  1.1.1.3  christos       /* Add -1.reg.  */
   1695  1.1.1.3  christos       md_number_to_chars (buffer, 0x025f | (loop_reg << 11), 2);
   1696  1.1.1.9  christos       /* Now create the conditional branch + fixup to the final target.  */
   1697  1.1.1.7  christos       /* 0x000107ea = bne LBL(disp17).  */
   1698  1.1.1.9  christos       md_number_to_chars (buffer + 2, 0x000107ea, 4);
   1699  1.1.1.3  christos       fix_new (fragP, fragP->fr_fix + 2, 4, fragP->fr_symbol,
   1700  1.1.1.3  christos 	       fragP->fr_offset, 1, BFD_RELOC_V850_17_PCREL);
   1701      1.1     skrll       fragP->fr_fix += 6;
   1702  1.1.1.3  christos     }
   1703  1.1.1.2  christos   /* In range conditional or unconditional branch.  */
   1704  1.1.1.2  christos   else if (fragP->fr_subtype == SUBYPTE_COND_9_22
   1705  1.1.1.2  christos       || fragP->fr_subtype == SUBYPTE_UNCOND_9_22
   1706  1.1.1.2  christos       || fragP->fr_subtype == SUBYPTE_COND_9_22_32
   1707  1.1.1.2  christos       || fragP->fr_subtype == SUBYPTE_UNCOND_9_22_32
   1708  1.1.1.2  christos       || fragP->fr_subtype == SUBYPTE_COND_9_17_22
   1709  1.1.1.2  christos       || fragP->fr_subtype == SUBYPTE_COND_9_17_22_32
   1710  1.1.1.2  christos       || fragP->fr_subtype == SUBYPTE_SA_9_22
   1711  1.1.1.2  christos       || fragP->fr_subtype == SUBYPTE_SA_9_22_32
   1712  1.1.1.2  christos       || fragP->fr_subtype == SUBYPTE_SA_9_17_22
   1713      1.1     skrll       || fragP->fr_subtype == SUBYPTE_SA_9_17_22_32)
   1714      1.1     skrll 
   1715  1.1.1.9  christos     {
   1716      1.1     skrll       fix_new (fragP, fragP->fr_fix, 2, fragP->fr_symbol,
   1717      1.1     skrll 	       fragP->fr_offset, 1, BFD_RELOC_UNUSED + opindex);
   1718  1.1.1.2  christos       fragP->fr_fix += 2;
   1719  1.1.1.2  christos     }
   1720  1.1.1.2  christos   /* V850e2r-v3 17bit conditional branch.  */
   1721  1.1.1.2  christos   else if (fragP->fr_subtype == SUBYPTE_COND_9_17_22 + 1
   1722  1.1.1.2  christos 	   || fragP->fr_subtype == SUBYPTE_COND_9_17_22_32 + 1
   1723  1.1.1.2  christos 	   || fragP->fr_subtype == SUBYPTE_SA_9_17_22 + 1
   1724  1.1.1.9  christos 	   || fragP->fr_subtype == SUBYPTE_SA_9_17_22_32 + 1)
   1725  1.1.1.2  christos     {
   1726  1.1.1.2  christos       char *buffer = fragP->fr_literal + fragP->fr_fix;
   1727  1.1.1.2  christos 
   1728  1.1.1.2  christos       buffer[0] &= 0x0f;	/* Use condition.  */
   1729  1.1.1.2  christos       buffer[0] |= 0xe0;
   1730  1.1.1.2  christos       buffer[1] = 0x07;
   1731  1.1.1.2  christos 
   1732  1.1.1.9  christos       /* Now create the unconditional branch + fixup to the final
   1733  1.1.1.2  christos 	 target.  */
   1734  1.1.1.2  christos       md_number_to_chars (buffer + 2, 0x0001, 2);
   1735  1.1.1.2  christos       fix_new (fragP, fragP->fr_fix, 4, fragP->fr_symbol,
   1736  1.1.1.2  christos 	       fragP->fr_offset, 1, BFD_RELOC_V850_17_PCREL);
   1737  1.1.1.2  christos       fragP->fr_fix += 4;
   1738  1.1.1.2  christos     }
   1739  1.1.1.2  christos   /* Out of range conditional branch.  Emit a branch around a 22bit jump.  */
   1740  1.1.1.3  christos   else if (fragP->fr_subtype == SUBYPTE_COND_9_22 + 1
   1741  1.1.1.2  christos 	   || fragP->fr_subtype == SUBYPTE_COND_9_22_32 + 1
   1742      1.1     skrll 	   || fragP->fr_subtype == SUBYPTE_COND_9_17_22 + 2
   1743  1.1.1.9  christos 	   || fragP->fr_subtype == SUBYPTE_COND_9_17_22_32 + 2)
   1744      1.1     skrll     {
   1745      1.1     skrll       char *buffer = fragP->fr_literal + fragP->fr_fix;
   1746      1.1     skrll 
   1747      1.1     skrll       /* Reverse the condition of the first branch.  */
   1748      1.1     skrll       buffer[0] ^= 0x08;
   1749      1.1     skrll       /* Mask off all the displacement bits.  */
   1750      1.1     skrll       buffer[0] &= 0x8f;
   1751      1.1     skrll       buffer[1] &= 0x07;
   1752      1.1     skrll       /* Now set the displacement bits so that we branch
   1753      1.1     skrll 	 around the unconditional branch.  */
   1754      1.1     skrll       buffer[0] |= 0x30;
   1755      1.1     skrll 
   1756  1.1.1.9  christos       /* Now create the unconditional branch + fixup to the final
   1757      1.1     skrll 	 target.  */
   1758  1.1.1.2  christos       md_number_to_chars (buffer + 2, 0x00000780, 4);
   1759      1.1     skrll       fix_new (fragP, fragP->fr_fix + 2, 4, fragP->fr_symbol,
   1760      1.1     skrll 	       fragP->fr_offset, 1, BFD_RELOC_V850_22_PCREL);
   1761  1.1.1.2  christos       fragP->fr_fix += 6;
   1762  1.1.1.2  christos     }
   1763  1.1.1.2  christos   /* Out of range conditional branch.  Emit a branch around a 32bit jump.  */
   1764  1.1.1.2  christos   else if (fragP->fr_subtype == SUBYPTE_COND_9_22_32 + 2
   1765  1.1.1.9  christos 	   || fragP->fr_subtype == SUBYPTE_COND_9_17_22_32 + 3)
   1766  1.1.1.2  christos     {
   1767  1.1.1.2  christos       char *buffer = fragP->fr_literal + fragP->fr_fix;
   1768  1.1.1.2  christos 
   1769  1.1.1.2  christos       /* Reverse the condition of the first branch.  */
   1770  1.1.1.2  christos       buffer[0] ^= 0x08;
   1771  1.1.1.2  christos       /* Mask off all the displacement bits.  */
   1772  1.1.1.2  christos       buffer[0] &= 0x8f;
   1773  1.1.1.2  christos       buffer[1] &= 0x07;
   1774  1.1.1.2  christos       /* Now set the displacement bits so that we branch
   1775  1.1.1.2  christos 	 around the unconditional branch.  */
   1776  1.1.1.2  christos       buffer[0] |= 0x40;
   1777  1.1.1.2  christos 
   1778  1.1.1.9  christos       /* Now create the unconditional branch + fixup to the final
   1779  1.1.1.2  christos 	 target.  */
   1780  1.1.1.2  christos       md_number_to_chars (buffer + 2, 0x02e0, 2);
   1781  1.1.1.2  christos       fix_new (fragP, fragP->fr_fix + 4, 4, fragP->fr_symbol,
   1782  1.1.1.2  christos 	       fragP->fr_offset + 2, 1, BFD_RELOC_V850_32_PCREL);
   1783  1.1.1.2  christos       fragP->fr_fix += 8;
   1784  1.1.1.2  christos     }
   1785  1.1.1.2  christos   /* Out of range unconditional branch.  Emit a 22bit jump.  */
   1786      1.1     skrll   else if (fragP->fr_subtype == SUBYPTE_UNCOND_9_22 + 1
   1787      1.1     skrll 	   || fragP->fr_subtype == SUBYPTE_UNCOND_9_22_32 + 1)
   1788      1.1     skrll     {
   1789  1.1.1.2  christos       md_number_to_chars (fragP->fr_fix + fragP->fr_literal, 0x00000780, 4);
   1790      1.1     skrll       fix_new (fragP, fragP->fr_fix, 4, fragP->fr_symbol,
   1791      1.1     skrll 	       fragP->fr_offset, 1, BFD_RELOC_V850_22_PCREL);
   1792  1.1.1.2  christos       fragP->fr_fix += 4;
   1793  1.1.1.2  christos     }
   1794  1.1.1.2  christos   /* Out of range unconditional branch.  Emit a 32bit jump.  */
   1795  1.1.1.2  christos   else if (fragP->fr_subtype == SUBYPTE_UNCOND_9_22_32 + 2)
   1796  1.1.1.2  christos     {
   1797  1.1.1.2  christos       md_number_to_chars (fragP->fr_fix + fragP->fr_literal, 0x02e0, 2);
   1798  1.1.1.2  christos       fix_new (fragP, fragP->fr_fix + 4, 4, fragP->fr_symbol,
   1799  1.1.1.2  christos 	       fragP->fr_offset + 2, 1, BFD_RELOC_V850_32_PCREL);
   1800  1.1.1.2  christos       fragP->fr_fix += 6;
   1801  1.1.1.2  christos     }
   1802  1.1.1.2  christos   /* Out of range SA conditional branch.  Emit a branch to a 22bit jump.  */
   1803  1.1.1.2  christos   else if (fragP->fr_subtype == SUBYPTE_SA_9_22 + 1
   1804  1.1.1.2  christos 	   || fragP->fr_subtype == SUBYPTE_SA_9_22_32 + 1
   1805  1.1.1.2  christos 	   || fragP->fr_subtype == SUBYPTE_SA_9_17_22 + 2
   1806  1.1.1.9  christos 	   || fragP->fr_subtype == SUBYPTE_SA_9_17_22_32 + 2)
   1807  1.1.1.2  christos     {
   1808  1.1.1.2  christos       char *buffer = fragP->fr_literal + fragP->fr_fix;
   1809  1.1.1.2  christos 
   1810  1.1.1.2  christos       /* bsa .+4 */
   1811  1.1.1.2  christos       buffer[0] &= 0x8f;
   1812  1.1.1.2  christos       buffer[0] |= 0x20;
   1813  1.1.1.2  christos       buffer[1] &= 0x07;
   1814  1.1.1.9  christos 
   1815  1.1.1.2  christos       /* br .+6 */
   1816  1.1.1.2  christos       md_number_to_chars (buffer + 2, 0x05b5, 2);
   1817  1.1.1.2  christos 
   1818  1.1.1.2  christos       /* Now create the unconditional branch + fixup to the final
   1819  1.1.1.9  christos 	 target.  */
   1820  1.1.1.2  christos       /* jr SYM */
   1821  1.1.1.9  christos       md_number_to_chars (buffer + 4, 0x00000780, 4);
   1822  1.1.1.2  christos       fix_new (fragP, fragP->fr_fix + 4, 4, fragP->fr_symbol,
   1823  1.1.1.2  christos 	       fragP->fr_offset, 1, BFD_RELOC_V850_22_PCREL);
   1824  1.1.1.2  christos       fragP->fr_fix += 8;
   1825  1.1.1.2  christos     }
   1826  1.1.1.2  christos   /* Out of range SA conditional branch.  Emit a branch around a 32bit jump.  */
   1827  1.1.1.2  christos   else if (fragP->fr_subtype == SUBYPTE_SA_9_22_32 + 2
   1828  1.1.1.9  christos 	   || fragP->fr_subtype == SUBYPTE_SA_9_17_22_32 + 3)
   1829  1.1.1.2  christos     {
   1830  1.1.1.2  christos       char *buffer = fragP->fr_literal + fragP->fr_fix;
   1831  1.1.1.2  christos 
   1832  1.1.1.2  christos       /* bsa .+2 */
   1833  1.1.1.2  christos       buffer[0] &= 0x8f;
   1834  1.1.1.2  christos       buffer[0] |= 0x20;
   1835  1.1.1.2  christos       buffer[1] &= 0x07;
   1836  1.1.1.9  christos 
   1837  1.1.1.2  christos       /* br .+8 */
   1838  1.1.1.2  christos       md_number_to_chars (buffer + 2, 0x05c5, 2);
   1839  1.1.1.2  christos 
   1840  1.1.1.2  christos       /* Now create the unconditional branch + fixup to the final
   1841  1.1.1.9  christos 	 target.  */
   1842  1.1.1.2  christos       /* jr SYM */
   1843  1.1.1.2  christos       md_number_to_chars (buffer + 4, 0x02e0, 2);
   1844  1.1.1.2  christos       fix_new (fragP, fragP->fr_fix + 6, 4, fragP->fr_symbol,
   1845  1.1.1.2  christos 	       fragP->fr_offset + 2, 1, BFD_RELOC_V850_32_PCREL);
   1846  1.1.1.2  christos 
   1847      1.1     skrll       fragP->fr_fix += 10;
   1848      1.1     skrll     }
   1849      1.1     skrll   else
   1850      1.1     skrll     abort ();
   1851      1.1     skrll }
   1852      1.1     skrll 
   1853      1.1     skrll valueT
   1854  1.1.1.6  christos md_section_align (asection *seg, valueT addr)
   1855  1.1.1.3  christos {
   1856      1.1     skrll   int align = bfd_section_alignment (seg);
   1857      1.1     skrll   return ((addr + (1 << align) - 1) & -(1 << align));
   1858      1.1     skrll }
   1859      1.1     skrll 
   1860      1.1     skrll void
   1861  1.1.1.4  christos md_begin (void)
   1862      1.1     skrll {
   1863      1.1     skrll   const char *prev_name = "";
   1864  1.1.1.7  christos   const struct v850_opcode *op;
   1865  1.1.1.3  christos 
   1866  1.1.1.3  christos   if (startswith (TARGET_CPU, "v850e3v5"))
   1867  1.1.1.3  christos     {
   1868  1.1.1.3  christos       if (machine == -1)
   1869  1.1.1.3  christos 	machine = bfd_mach_v850e3v5;
   1870  1.1.1.3  christos 
   1871  1.1.1.3  christos       if (!processor_mask)
   1872  1.1.1.7  christos 	SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850E3V5);
   1873  1.1.1.3  christos     }
   1874  1.1.1.3  christos   else if (startswith (TARGET_CPU, "v850e2v4"))
   1875  1.1.1.3  christos     {
   1876  1.1.1.3  christos       if (machine == -1)
   1877  1.1.1.3  christos 	machine = bfd_mach_v850e3v5;
   1878  1.1.1.3  christos 
   1879  1.1.1.3  christos       if (!processor_mask)
   1880  1.1.1.7  christos 	SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850E3V5);
   1881  1.1.1.2  christos     }
   1882  1.1.1.2  christos   else if (startswith (TARGET_CPU, "v850e2v3"))
   1883  1.1.1.2  christos     {
   1884  1.1.1.2  christos       if (machine == -1)
   1885  1.1.1.2  christos         machine = bfd_mach_v850e2v3;
   1886  1.1.1.2  christos 
   1887  1.1.1.2  christos       if (!processor_mask)
   1888  1.1.1.7  christos         SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850E2V3);
   1889  1.1.1.2  christos     }
   1890  1.1.1.2  christos   else if (startswith (TARGET_CPU, "v850e2"))
   1891  1.1.1.2  christos     {
   1892  1.1.1.2  christos       if (machine == -1)
   1893  1.1.1.2  christos 	machine = bfd_mach_v850e2;
   1894  1.1.1.2  christos 
   1895  1.1.1.2  christos       if (!processor_mask)
   1896  1.1.1.7  christos 	SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850E2);
   1897      1.1     skrll     }
   1898      1.1     skrll   else if (startswith (TARGET_CPU, "v850e1"))
   1899  1.1.1.2  christos     {
   1900      1.1     skrll       if (machine == -1)
   1901  1.1.1.2  christos         machine = bfd_mach_v850e1;
   1902  1.1.1.2  christos 
   1903      1.1     skrll       if (!processor_mask)
   1904  1.1.1.7  christos         SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850E1);
   1905      1.1     skrll     }
   1906      1.1     skrll   else if (startswith (TARGET_CPU, "v850e"))
   1907      1.1     skrll     {
   1908      1.1     skrll       if (machine == -1)
   1909  1.1.1.2  christos 	machine = bfd_mach_v850e;
   1910  1.1.1.2  christos 
   1911      1.1     skrll       if (!processor_mask)
   1912  1.1.1.7  christos 	SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850E);
   1913      1.1     skrll     }
   1914      1.1     skrll   else if (startswith (TARGET_CPU, "v850"))
   1915      1.1     skrll     {
   1916      1.1     skrll       if (machine == -1)
   1917  1.1.1.2  christos 	machine = 0;
   1918  1.1.1.2  christos 
   1919      1.1     skrll       if (!processor_mask)
   1920      1.1     skrll 	SET_PROCESSOR_MASK (processor_mask, PROCESSOR_V850);
   1921      1.1     skrll     }
   1922      1.1     skrll   else
   1923      1.1     skrll     /* xgettext:c-format  */
   1924      1.1     skrll     as_bad (_("Unable to determine default target processor from string: %s"),
   1925  1.1.1.3  christos 	    TARGET_CPU);
   1926  1.1.1.3  christos 
   1927  1.1.1.3  christos   if (soft_float == -1)
   1928  1.1.1.7  christos     soft_float = machine < bfd_mach_v850e2v3;
   1929      1.1     skrll 
   1930      1.1     skrll   v850_hash = str_htab_create ();
   1931      1.1     skrll 
   1932      1.1     skrll   /* Insert unique names into hash table.  The V850 instruction set
   1933      1.1     skrll      has many identical opcode names that have different opcodes based
   1934      1.1     skrll      on the operands.  This hash table then provides a quick index to
   1935      1.1     skrll      the first opcode with a particular name in the opcode table.  */
   1936      1.1     skrll   op = v850_opcodes;
   1937      1.1     skrll   while (op->name)
   1938      1.1     skrll     {
   1939  1.1.1.9  christos       if (strcmp (prev_name, op->name))
   1940  1.1.1.7  christos 	{
   1941      1.1     skrll 	  prev_name = op->name;
   1942      1.1     skrll 	  str_hash_insert (v850_hash, op->name, op, 0);
   1943      1.1     skrll 	}
   1944      1.1     skrll       op++;
   1945  1.1.1.3  christos     }
   1946  1.1.1.3  christos 
   1947      1.1     skrll   bfd_set_arch_mach (stdoutput, v850_target_arch, machine);
   1948      1.1     skrll   bfd_set_private_flags (stdoutput, v850_e_flags);
   1949  1.1.1.2  christos }
   1950      1.1     skrll 
   1951  1.1.1.2  christos 
   1952      1.1     skrll static bfd_reloc_code_real_type
   1953  1.1.1.2  christos handle_hi016 (const struct v850_operand *operand, const char **errmsg)
   1954  1.1.1.2  christos {
   1955      1.1     skrll   if (operand == NULL)
   1956  1.1.1.2  christos     return BFD_RELOC_HI16;
   1957  1.1.1.2  christos 
   1958  1.1.1.2  christos   if (operand->default_reloc == BFD_RELOC_HI16)
   1959  1.1.1.2  christos     return BFD_RELOC_HI16;
   1960  1.1.1.2  christos 
   1961  1.1.1.2  christos   if (operand->default_reloc == BFD_RELOC_HI16_S)
   1962  1.1.1.2  christos     return BFD_RELOC_HI16;
   1963  1.1.1.2  christos 
   1964  1.1.1.2  christos   if (operand->default_reloc == BFD_RELOC_16)
   1965  1.1.1.2  christos     return BFD_RELOC_HI16;
   1966  1.1.1.2  christos 
   1967  1.1.1.2  christos   *errmsg = _("hi0() relocation used on an instruction which does "
   1968  1.1.1.2  christos 	      "not support it");
   1969  1.1.1.2  christos   return BFD_RELOC_64;  /* Used to indicate an error condition.  */
   1970  1.1.1.2  christos }
   1971  1.1.1.2  christos 
   1972  1.1.1.2  christos static bfd_reloc_code_real_type
   1973  1.1.1.2  christos handle_hi16 (const struct v850_operand *operand, const char **errmsg)
   1974  1.1.1.2  christos {
   1975  1.1.1.2  christos   if (operand == NULL)
   1976  1.1.1.2  christos     return BFD_RELOC_HI16_S;
   1977  1.1.1.2  christos 
   1978  1.1.1.2  christos   if (operand->default_reloc == BFD_RELOC_HI16_S)
   1979  1.1.1.2  christos     return BFD_RELOC_HI16_S;
   1980  1.1.1.2  christos 
   1981  1.1.1.2  christos   if (operand->default_reloc == BFD_RELOC_HI16)
   1982  1.1.1.2  christos     return BFD_RELOC_HI16_S;
   1983  1.1.1.2  christos 
   1984  1.1.1.2  christos   if (operand->default_reloc == BFD_RELOC_16)
   1985  1.1.1.2  christos     return BFD_RELOC_HI16_S;
   1986  1.1.1.2  christos 
   1987  1.1.1.2  christos   *errmsg = _("hi() relocation used on an instruction which does "
   1988  1.1.1.2  christos 	      "not support it");
   1989  1.1.1.2  christos   return BFD_RELOC_64;  /* Used to indicate an error condition.  */
   1990  1.1.1.2  christos }
   1991  1.1.1.2  christos 
   1992  1.1.1.2  christos static bfd_reloc_code_real_type
   1993  1.1.1.2  christos handle_lo16 (const struct v850_operand *operand, const char **errmsg)
   1994  1.1.1.2  christos {
   1995  1.1.1.7  christos   if (operand == NULL)
   1996  1.1.1.7  christos     return BFD_RELOC_LO16;
   1997  1.1.1.7  christos 
   1998  1.1.1.7  christos   switch (operand->default_reloc)
   1999  1.1.1.7  christos     {
   2000  1.1.1.7  christos     case BFD_RELOC_LO16: return BFD_RELOC_LO16;
   2001  1.1.1.7  christos     case BFD_RELOC_V850_LO16_SPLIT_OFFSET: return BFD_RELOC_V850_LO16_SPLIT_OFFSET;
   2002  1.1.1.7  christos     case BFD_RELOC_V850_16_SPLIT_OFFSET: return BFD_RELOC_V850_LO16_SPLIT_OFFSET;
   2003  1.1.1.7  christos     case BFD_RELOC_V850_16_S1: return BFD_RELOC_V850_LO16_S1;
   2004  1.1.1.7  christos     case BFD_RELOC_16: return BFD_RELOC_LO16;
   2005  1.1.1.7  christos     default:
   2006  1.1.1.7  christos       *errmsg = _("lo() relocation used on an instruction which does "
   2007  1.1.1.7  christos 		  "not support it");
   2008      1.1     skrll       return BFD_RELOC_64;  /* Used to indicate an error condition.  */
   2009      1.1     skrll     }
   2010      1.1     skrll }
   2011  1.1.1.2  christos 
   2012      1.1     skrll static bfd_reloc_code_real_type
   2013  1.1.1.3  christos handle_ctoff (const struct v850_operand *operand, const char **errmsg)
   2014  1.1.1.3  christos {
   2015  1.1.1.3  christos   if (v850_target_arch == bfd_arch_v850_rh850)
   2016  1.1.1.3  christos     {
   2017  1.1.1.3  christos       *errmsg = _("ctoff() is not supported by the rh850 ABI. Use -mgcc-abi instead");
   2018  1.1.1.3  christos       return BFD_RELOC_64;  /* Used to indicate an error condition.  */
   2019      1.1     skrll     }
   2020      1.1     skrll 
   2021      1.1     skrll   if (operand == NULL)
   2022  1.1.1.2  christos     return BFD_RELOC_V850_CALLT_16_16_OFFSET;
   2023  1.1.1.2  christos 
   2024  1.1.1.2  christos   if (operand->default_reloc == BFD_RELOC_V850_CALLT_6_7_OFFSET)
   2025  1.1.1.2  christos     return operand->default_reloc;
   2026  1.1.1.2  christos 
   2027  1.1.1.2  christos   if (operand->default_reloc == BFD_RELOC_V850_16_S1)
   2028  1.1.1.2  christos     return BFD_RELOC_V850_CALLT_15_16_OFFSET;
   2029  1.1.1.2  christos 
   2030      1.1     skrll   if (operand->default_reloc == BFD_RELOC_16)
   2031  1.1.1.2  christos     return BFD_RELOC_V850_CALLT_16_16_OFFSET;
   2032  1.1.1.2  christos 
   2033      1.1     skrll   *errmsg = _("ctoff() relocation used on an instruction which does not support it");
   2034      1.1     skrll   return BFD_RELOC_64;  /* Used to indicate an error condition.  */
   2035      1.1     skrll }
   2036  1.1.1.2  christos 
   2037      1.1     skrll static bfd_reloc_code_real_type
   2038      1.1     skrll handle_sdaoff (const struct v850_operand *operand, const char **errmsg)
   2039      1.1     skrll {
   2040      1.1     skrll   if (operand == NULL)
   2041  1.1.1.2  christos     return BFD_RELOC_V850_SDA_16_16_OFFSET;
   2042      1.1     skrll 
   2043      1.1     skrll   if (operand->default_reloc == BFD_RELOC_V850_16_SPLIT_OFFSET)
   2044  1.1.1.2  christos     return BFD_RELOC_V850_SDA_16_16_SPLIT_OFFSET;
   2045  1.1.1.2  christos 
   2046  1.1.1.2  christos   if (operand->default_reloc == BFD_RELOC_16)
   2047  1.1.1.2  christos     return BFD_RELOC_V850_SDA_16_16_OFFSET;
   2048  1.1.1.2  christos 
   2049      1.1     skrll   if (operand->default_reloc == BFD_RELOC_V850_16_S1)
   2050  1.1.1.2  christos     return BFD_RELOC_V850_SDA_15_16_OFFSET;
   2051  1.1.1.2  christos 
   2052      1.1     skrll   *errmsg = _("sdaoff() relocation used on an instruction which does not support it");
   2053      1.1     skrll   return BFD_RELOC_64;  /* Used to indicate an error condition.  */
   2054      1.1     skrll }
   2055  1.1.1.2  christos 
   2056      1.1     skrll static bfd_reloc_code_real_type
   2057      1.1     skrll handle_zdaoff (const struct v850_operand *operand, const char **errmsg)
   2058      1.1     skrll {
   2059      1.1     skrll   if (operand == NULL)
   2060  1.1.1.2  christos     return BFD_RELOC_V850_ZDA_16_16_OFFSET;
   2061      1.1     skrll 
   2062      1.1     skrll   if (operand->default_reloc == BFD_RELOC_V850_16_SPLIT_OFFSET)
   2063  1.1.1.2  christos     return BFD_RELOC_V850_ZDA_16_16_SPLIT_OFFSET;
   2064  1.1.1.2  christos 
   2065      1.1     skrll   if (operand->default_reloc == BFD_RELOC_16)
   2066  1.1.1.2  christos     return BFD_RELOC_V850_ZDA_16_16_OFFSET;
   2067  1.1.1.2  christos 
   2068  1.1.1.2  christos   if (operand->default_reloc == BFD_RELOC_V850_16_S1)
   2069  1.1.1.2  christos     return BFD_RELOC_V850_ZDA_15_16_OFFSET;
   2070  1.1.1.2  christos 
   2071      1.1     skrll   *errmsg = _("zdaoff() relocation used on an instruction which does not support it");
   2072      1.1     skrll   return BFD_RELOC_64;  /* Used to indicate an error condition.  */
   2073      1.1     skrll }
   2074  1.1.1.2  christos 
   2075      1.1     skrll static bfd_reloc_code_real_type
   2076      1.1     skrll handle_tdaoff (const struct v850_operand *operand, const char **errmsg)
   2077      1.1     skrll {
   2078  1.1.1.2  christos   if (operand == NULL)
   2079      1.1     skrll     /* Data item, not an instruction.  */
   2080  1.1.1.2  christos     return BFD_RELOC_V850_TDA_16_16_OFFSET;
   2081  1.1.1.2  christos 
   2082  1.1.1.2  christos   switch (operand->default_reloc)
   2083  1.1.1.2  christos     {
   2084  1.1.1.2  christos       /* sld.hu, operand: D5-4.  */
   2085  1.1.1.2  christos     case BFD_RELOC_V850_TDA_4_5_OFFSET:
   2086      1.1     skrll       /* sld.bu, operand: D4.  */
   2087  1.1.1.2  christos     case BFD_RELOC_V850_TDA_4_4_OFFSET:
   2088  1.1.1.2  christos     /* sld.w/sst.w, operand: D8_6.  */
   2089  1.1.1.2  christos     case BFD_RELOC_V850_TDA_6_8_OFFSET:
   2090  1.1.1.2  christos     /* sld.h/sst.h, operand: D8_7.  */
   2091  1.1.1.2  christos     case BFD_RELOC_V850_TDA_7_8_OFFSET:
   2092  1.1.1.2  christos       /* sld.b/sst.b, operand: D7.  */
   2093  1.1.1.2  christos     case BFD_RELOC_V850_TDA_7_7_OFFSET:
   2094  1.1.1.2  christos       return operand->default_reloc;
   2095  1.1.1.2  christos     default:
   2096      1.1     skrll       break;
   2097  1.1.1.2  christos     }
   2098      1.1     skrll 
   2099      1.1     skrll   if (operand->default_reloc == BFD_RELOC_16 && operand->shift == 16)
   2100      1.1     skrll     /* set1 & chums, operands: D16.  */
   2101  1.1.1.2  christos     return BFD_RELOC_V850_TDA_16_16_OFFSET;
   2102  1.1.1.2  christos 
   2103  1.1.1.2  christos   *errmsg = _("tdaoff() relocation used on an instruction which does not support it");
   2104      1.1     skrll   /* Used to indicate an error condition.  */
   2105      1.1     skrll   return BFD_RELOC_64;
   2106      1.1     skrll }
   2107      1.1     skrll 
   2108      1.1     skrll /* Warning: The code in this function relies upon the definitions
   2109      1.1     skrll    in the v850_operands[] array (defined in opcodes/v850-opc.c)
   2110      1.1     skrll    matching the hard coded values contained herein.  */
   2111  1.1.1.2  christos 
   2112      1.1     skrll static bfd_reloc_code_real_type
   2113  1.1.1.7  christos v850_reloc_prefix (const struct v850_operand *operand, const char **errmsg)
   2114      1.1     skrll {
   2115      1.1     skrll   bool paren_skipped = false;
   2116      1.1     skrll 
   2117      1.1     skrll   /* Skip leading opening parenthesis.  */
   2118      1.1     skrll   if (*input_line_pointer == '(')
   2119  1.1.1.7  christos     {
   2120      1.1     skrll       ++input_line_pointer;
   2121      1.1     skrll       paren_skipped = true;
   2122      1.1     skrll     }
   2123      1.1     skrll 
   2124      1.1     skrll #define CHECK_(name, reloc) 						\
   2125      1.1     skrll   if (strncmp (input_line_pointer, name "(", strlen (name) + 1) == 0)	\
   2126      1.1     skrll     {									\
   2127      1.1     skrll       input_line_pointer += strlen (name);				\
   2128      1.1     skrll       return reloc;							\
   2129  1.1.1.7  christos     }
   2130  1.1.1.7  christos 
   2131  1.1.1.7  christos   CHECK_ ("hi0",    handle_hi016 (operand, errmsg));
   2132  1.1.1.2  christos   CHECK_ ("hi",	    handle_hi16 (operand, errmsg));
   2133  1.1.1.2  christos   CHECK_ ("lo",	    handle_lo16 (operand, errmsg));
   2134  1.1.1.2  christos   CHECK_ ("sdaoff", handle_sdaoff (operand, errmsg));
   2135  1.1.1.2  christos   CHECK_ ("zdaoff", handle_zdaoff (operand, errmsg));
   2136  1.1.1.2  christos   CHECK_ ("tdaoff", handle_tdaoff (operand, errmsg));
   2137  1.1.1.7  christos   CHECK_ ("hilo",   BFD_RELOC_32);
   2138      1.1     skrll   CHECK_ ("lo23",   BFD_RELOC_V850_23);
   2139      1.1     skrll   CHECK_ ("ctoff",  handle_ctoff (operand, errmsg));
   2140      1.1     skrll 
   2141      1.1     skrll   /* Restore skipped parenthesis.  */
   2142      1.1     skrll   if (paren_skipped)
   2143  1.1.1.3  christos     --input_line_pointer;
   2144      1.1     skrll 
   2145      1.1     skrll   return BFD_RELOC_NONE;
   2146      1.1     skrll }
   2147      1.1     skrll 
   2148      1.1     skrll /* Insert an operand value into an instruction.  */
   2149      1.1     skrll 
   2150      1.1     skrll static unsigned long
   2151      1.1     skrll v850_insert_operand (unsigned long insn,
   2152  1.1.1.2  christos 		     const struct v850_operand *operand,
   2153      1.1     skrll 		     offsetT val,
   2154      1.1     skrll 		     const char **errmsg)
   2155      1.1     skrll {
   2156      1.1     skrll   if (operand->insert)
   2157      1.1     skrll     {
   2158      1.1     skrll       const char *message = NULL;
   2159      1.1     skrll 
   2160      1.1     skrll       insn = operand->insert (insn, val, &message);
   2161      1.1     skrll       if (message != NULL)
   2162      1.1     skrll 	{
   2163  1.1.1.2  christos 	  if ((operand->flags & V850_OPERAND_SIGNED)
   2164      1.1     skrll 	      && ! warn_signed_overflows
   2165      1.1     skrll               && v850_msg_is_out_of_range (message))
   2166      1.1     skrll 	    {
   2167      1.1     skrll 	      /* Skip warning...  */
   2168      1.1     skrll 	    }
   2169  1.1.1.2  christos 	  else if ((operand->flags & V850_OPERAND_SIGNED) == 0
   2170      1.1     skrll 		   && ! warn_unsigned_overflows
   2171      1.1     skrll                   && v850_msg_is_out_of_range (message))
   2172      1.1     skrll 	    {
   2173      1.1     skrll 	      /* Skip warning...  */
   2174      1.1     skrll 	    }
   2175  1.1.1.2  christos 	  else
   2176  1.1.1.2  christos 	    {
   2177      1.1     skrll              if (errmsg != NULL)
   2178      1.1     skrll                *errmsg = message;
   2179      1.1     skrll 	    }
   2180  1.1.1.2  christos 	}
   2181  1.1.1.2  christos     }
   2182  1.1.1.2  christos   else if (operand->bits == -1
   2183  1.1.1.2  christos           || operand->flags & V850E_IMMEDIATE16
   2184  1.1.1.2  christos           || operand->flags & V850E_IMMEDIATE23
   2185  1.1.1.2  christos           || operand->flags & V850E_IMMEDIATE32)
   2186  1.1.1.2  christos     {
   2187      1.1     skrll       abort ();
   2188      1.1     skrll     }
   2189  1.1.1.2  christos   else
   2190      1.1     skrll     {
   2191      1.1     skrll       if (operand->bits < 32)
   2192      1.1     skrll 	{
   2193      1.1     skrll 	  long min, max;
   2194      1.1     skrll 
   2195      1.1     skrll 	  if ((operand->flags & V850_OPERAND_SIGNED) != 0)
   2196      1.1     skrll 	    {
   2197      1.1     skrll 	      if (! warn_signed_overflows)
   2198      1.1     skrll 		max = (1 << operand->bits) - 1;
   2199      1.1     skrll 	      else
   2200      1.1     skrll 		max = (1 << (operand->bits - 1)) - 1;
   2201      1.1     skrll 
   2202      1.1     skrll 	      min = -(1 << (operand->bits - 1));
   2203      1.1     skrll 	    }
   2204      1.1     skrll 	  else
   2205      1.1     skrll 	    {
   2206      1.1     skrll 	      max = (1 << operand->bits) - 1;
   2207      1.1     skrll 
   2208      1.1     skrll 	      if (! warn_unsigned_overflows)
   2209      1.1     skrll 		min = -(1 << (operand->bits - 1));
   2210      1.1     skrll 	      else
   2211      1.1     skrll 		min = 0;
   2212  1.1.1.2  christos 	    }
   2213  1.1.1.2  christos 
   2214  1.1.1.2  christos 	  /* Some people write constants with the sign extension done by
   2215  1.1.1.2  christos 	     hand but only up to 32 bits.  This shouldn't really be valid,
   2216  1.1.1.2  christos 	     but, to permit this code to assemble on a 64-bit host, we
   2217  1.1.1.2  christos 	     sign extend the 32-bit value to 64 bits if so doing makes the
   2218  1.1.1.2  christos 	     value valid.  */
   2219  1.1.1.2  christos 	  if (val > max
   2220  1.1.1.2  christos 	      && (offsetT) (val - 0x80000000 - 0x80000000) >= min
   2221  1.1.1.2  christos 	      && (offsetT) (val - 0x80000000 - 0x80000000) <= max)
   2222  1.1.1.2  christos 	    val = val - 0x80000000 - 0x80000000;
   2223  1.1.1.2  christos 
   2224  1.1.1.2  christos 	  /* Similarly, people write expressions like ~(1<<15), and expect
   2225  1.1.1.2  christos 	     this to be OK for a 32-bit unsigned value.  */
   2226  1.1.1.2  christos 	  else if (val < min
   2227  1.1.1.2  christos 		   && (offsetT) (val + 0x80000000 + 0x80000000) >= min
   2228  1.1.1.2  christos 		   && (offsetT) (val + 0x80000000 + 0x80000000) <= max)
   2229  1.1.1.2  christos 	    val = val + 0x80000000 + 0x80000000;
   2230      1.1     skrll 
   2231  1.1.1.3  christos 	  else if (val < (offsetT) min || val > (offsetT) max)
   2232      1.1     skrll 	    {
   2233      1.1     skrll 	      static char buf [128];
   2234      1.1     skrll 
   2235      1.1     skrll 	      /* Restore min and mix to expected values for decimal ranges.  */
   2236      1.1     skrll 	      if ((operand->flags & V850_OPERAND_SIGNED)
   2237      1.1     skrll 		  && ! warn_signed_overflows)
   2238      1.1     skrll 		max = (1 << (operand->bits - 1)) - 1;
   2239      1.1     skrll 
   2240      1.1     skrll 	      if (! (operand->flags & V850_OPERAND_SIGNED)
   2241      1.1     skrll 		  && ! warn_unsigned_overflows)
   2242  1.1.1.2  christos 		min = 0;
   2243  1.1.1.2  christos 
   2244  1.1.1.2  christos 	      sprintf (buf, _("operand out of range (%d is not between %d and %d)"),
   2245      1.1     skrll 		       (int) val, (int) min, (int) max);
   2246      1.1     skrll 	      *errmsg = buf;
   2247  1.1.1.2  christos 	    }
   2248  1.1.1.2  christos 
   2249  1.1.1.2  christos 	  insn |= (((long) val & ((1 << operand->bits) - 1)) << operand->shift);
   2250  1.1.1.2  christos 	}
   2251  1.1.1.2  christos       else
   2252  1.1.1.2  christos 	{
   2253      1.1     skrll 	  insn |= (((long) val) << operand->shift);
   2254      1.1     skrll 	}
   2255      1.1     skrll     }
   2256      1.1     skrll 
   2257      1.1     skrll   return insn;
   2258      1.1     skrll }
   2259      1.1     skrll 
   2260      1.1     skrll static char copy_of_instruction[128];
   2262      1.1     skrll 
   2263      1.1     skrll void
   2264      1.1     skrll md_assemble (char *str)
   2265      1.1     skrll {
   2266      1.1     skrll   char *s;
   2267      1.1     skrll   char *start_of_operands;
   2268      1.1     skrll   struct v850_opcode *opcode;
   2269      1.1     skrll   struct v850_opcode *next_opcode;
   2270  1.1.1.5  christos   const unsigned char *opindex_ptr;
   2271      1.1     skrll   int next_opindex;
   2272  1.1.1.3  christos   int relaxable = 0;
   2273      1.1     skrll   unsigned long insn = 0;
   2274      1.1     skrll   unsigned long insn_size;
   2275  1.1.1.7  christos   char *f = NULL;
   2276      1.1     skrll   int i;
   2277      1.1     skrll   int match;
   2278      1.1     skrll   bool extra_data_after_insn = false;
   2279  1.1.1.2  christos   unsigned extra_data_len = 0;
   2280  1.1.1.2  christos   unsigned long extra_data = 0;
   2281      1.1     skrll   char *saved_input_line_pointer;
   2282      1.1     skrll   char most_match_errmsg[1024];
   2283  1.1.1.2  christos   int most_match_count = -1;
   2284      1.1     skrll 
   2285      1.1     skrll   strncpy (copy_of_instruction, str, sizeof (copy_of_instruction) - 1);
   2286  1.1.1.9  christos   most_match_errmsg[0] = 0;
   2287      1.1     skrll 
   2288      1.1     skrll   /* Get the opcode.  */
   2289      1.1     skrll   for (s = str; ! is_end_of_stmt (*s) && ! is_whitespace (*s); s++)
   2290      1.1     skrll     continue;
   2291      1.1     skrll 
   2292      1.1     skrll   if (*s != '\0')
   2293  1.1.1.9  christos     *s++ = '\0';
   2294      1.1     skrll 
   2295      1.1     skrll   /* Find the first opcode with the proper name.  */
   2296      1.1     skrll   opcode = str_hash_find (v850_hash, str);
   2297      1.1     skrll   if (opcode == NULL)
   2298      1.1     skrll     {
   2299      1.1     skrll       /* xgettext:c-format  */
   2300      1.1     skrll       as_bad (_("Unrecognized opcode: `%s'"), str);
   2301      1.1     skrll       ignore_rest_of_line ();
   2302      1.1     skrll       return;
   2303  1.1.1.9  christos     }
   2304      1.1     skrll 
   2305      1.1     skrll   str = s;
   2306      1.1     skrll   while (is_whitespace (*str))
   2307      1.1     skrll     ++str;
   2308      1.1     skrll 
   2309      1.1     skrll   start_of_operands = str;
   2310      1.1     skrll 
   2311      1.1     skrll   saved_input_line_pointer = input_line_pointer;
   2312      1.1     skrll 
   2313  1.1.1.2  christos   for (;;)
   2314      1.1     skrll     {
   2315      1.1     skrll       const char *errmsg = NULL;
   2316  1.1.1.2  christos       const char *warningmsg = NULL;
   2317      1.1     skrll 
   2318  1.1.1.2  christos       match = 0;
   2319  1.1.1.2  christos       opindex_ptr = opcode->operands;
   2320  1.1.1.7  christos 
   2321  1.1.1.2  christos       if (no_stld23)
   2322  1.1.1.7  christos 	{
   2323  1.1.1.2  christos 	  if ((startswith (opcode->name, "st.")
   2324  1.1.1.2  christos 	       && v850_operands[opcode->operands[1]].bits == 23)
   2325  1.1.1.2  christos 	      || (startswith (opcode->name, "ld.")
   2326  1.1.1.2  christos 		  && v850_operands[opcode->operands[0]].bits == 23))
   2327  1.1.1.2  christos 	    {
   2328  1.1.1.2  christos 	      errmsg = _("st/ld offset 23 instruction was disabled .");
   2329  1.1.1.2  christos 	      goto error;
   2330  1.1.1.2  christos 	    }
   2331  1.1.1.2  christos 	}
   2332  1.1.1.2  christos 
   2333      1.1     skrll       if ((opcode->processors & processor_mask & PROCESSOR_MASK) == 0
   2334      1.1     skrll 	  || (((opcode->processors & ~PROCESSOR_MASK) != 0)
   2335      1.1     skrll 	      && ((opcode->processors & processor_mask & ~PROCESSOR_MASK) == 0)))
   2336      1.1     skrll 	{
   2337      1.1     skrll 	  errmsg = _("Target processor does not support this instruction.");
   2338      1.1     skrll 	  goto error;
   2339      1.1     skrll 	}
   2340      1.1     skrll 
   2341      1.1     skrll       relaxable = 0;
   2342  1.1.1.2  christos       fc = 0;
   2343  1.1.1.7  christos       next_opindex = 0;
   2344      1.1     skrll       insn = opcode->opcode;
   2345      1.1     skrll       extra_data_len = 0;
   2346      1.1     skrll       extra_data_after_insn = false;
   2347      1.1     skrll 
   2348      1.1     skrll       input_line_pointer = str = start_of_operands;
   2349      1.1     skrll 
   2350      1.1     skrll       for (opindex_ptr = opcode->operands; *opindex_ptr != 0; opindex_ptr++)
   2351      1.1     skrll 	{
   2352      1.1     skrll 	  const struct v850_operand *operand;
   2353      1.1     skrll 	  char *hold;
   2354      1.1     skrll 	  expressionS ex;
   2355      1.1     skrll 	  bfd_reloc_code_real_type reloc;
   2356      1.1     skrll 
   2357      1.1     skrll 	  if (next_opindex == 0)
   2358      1.1     skrll 	    operand = &v850_operands[*opindex_ptr];
   2359      1.1     skrll 	  else
   2360      1.1     skrll 	    {
   2361      1.1     skrll 	      operand = &v850_operands[next_opindex];
   2362      1.1     skrll 	      next_opindex = 0;
   2363      1.1     skrll 	    }
   2364  1.1.1.9  christos 
   2365  1.1.1.2  christos 	  errmsg = NULL;
   2366  1.1.1.2  christos 
   2367  1.1.1.2  christos 	  while (is_whitespace (*str))
   2368  1.1.1.2  christos 	    ++str;
   2369  1.1.1.2  christos 
   2370  1.1.1.2  christos 	  if (operand->flags & V850_OPERAND_BANG
   2371  1.1.1.2  christos 	      && *str == '!')
   2372  1.1.1.2  christos 	    ++str;
   2373  1.1.1.2  christos 	  else if (operand->flags & V850_OPERAND_PERCENT
   2374  1.1.1.2  christos 		   && *str == '%')
   2375  1.1.1.2  christos 	    ++str;
   2376  1.1.1.2  christos 
   2377  1.1.1.9  christos 	  if (*str == ',' || *str == '[' || *str == ']')
   2378      1.1     skrll 	    ++str;
   2379      1.1     skrll 
   2380  1.1.1.3  christos 	  while (is_whitespace (*str))
   2381  1.1.1.3  christos 	    ++str;
   2382  1.1.1.3  christos 
   2383  1.1.1.3  christos 	  if (   (strcmp (opcode->name, "pushsp") == 0
   2384  1.1.1.3  christos 	       || strcmp (opcode->name, "popsp") == 0
   2385  1.1.1.3  christos 	       || strcmp (opcode->name, "dbpush") == 0)
   2386      1.1     skrll 	      && (*str == '-'))
   2387      1.1     skrll 	    ++str;
   2388      1.1     skrll 
   2389      1.1     skrll 	  if (operand->flags & V850_OPERAND_RELAX)
   2390      1.1     skrll 	    relaxable = 1;
   2391      1.1     skrll 
   2392      1.1     skrll 	  /* Gather the operand.  */
   2393      1.1     skrll 	  hold = input_line_pointer;
   2394  1.1.1.3  christos 	  input_line_pointer = str;
   2395      1.1     skrll 
   2396      1.1     skrll 	  /* lo(), hi(), hi0(), etc...  */
   2397      1.1     skrll 	  if ((reloc = v850_reloc_prefix (operand, &errmsg)) != BFD_RELOC_NONE)
   2398      1.1     skrll 	    {
   2399  1.1.1.2  christos 	      /* This is a fake reloc, used to indicate an error condition.  */
   2400      1.1     skrll 	      if (reloc == BFD_RELOC_64)
   2401      1.1     skrll 		{
   2402      1.1     skrll 		  /* match = 1;  */
   2403      1.1     skrll 		  goto error;
   2404      1.1     skrll 		}
   2405      1.1     skrll 
   2406      1.1     skrll 	      expression (&ex);
   2407      1.1     skrll 
   2408      1.1     skrll 	      if (ex.X_op == O_constant)
   2409      1.1     skrll 		{
   2410  1.1.1.2  christos 		  switch (reloc)
   2411  1.1.1.2  christos 		    {
   2412      1.1     skrll 		    case BFD_RELOC_V850_ZDA_16_16_OFFSET:
   2413      1.1     skrll 		    case BFD_RELOC_V850_ZDA_16_16_SPLIT_OFFSET:
   2414      1.1     skrll 		    case BFD_RELOC_V850_ZDA_15_16_OFFSET:
   2415      1.1     skrll 		      /* To cope with "not1 7, zdaoff(0xfffff006)[r0]"
   2416      1.1     skrll 			 and the like.  */
   2417  1.1.1.2  christos 		      /* Fall through.  */
   2418      1.1     skrll 
   2419      1.1     skrll 		    case BFD_RELOC_LO16:
   2420      1.1     skrll 		    case BFD_RELOC_V850_LO16_S1:
   2421      1.1     skrll 		    case BFD_RELOC_V850_LO16_SPLIT_OFFSET:
   2422      1.1     skrll 		      {
   2423      1.1     skrll 			/* Truncate, then sign extend the value.  */
   2424      1.1     skrll 			ex.X_add_number = SEXT16 (ex.X_add_number);
   2425      1.1     skrll 			break;
   2426      1.1     skrll 		      }
   2427      1.1     skrll 
   2428      1.1     skrll 		    case BFD_RELOC_HI16:
   2429      1.1     skrll 		      {
   2430      1.1     skrll 			/* Truncate, then sign extend the value.  */
   2431      1.1     skrll 			ex.X_add_number = SEXT16 (ex.X_add_number >> 16);
   2432      1.1     skrll 			break;
   2433      1.1     skrll 		      }
   2434      1.1     skrll 
   2435      1.1     skrll 		    case BFD_RELOC_HI16_S:
   2436      1.1     skrll 		      {
   2437      1.1     skrll 			/* Truncate, then sign extend the value.  */
   2438      1.1     skrll 			int temp = (ex.X_add_number >> 16) & 0xffff;
   2439      1.1     skrll 
   2440      1.1     skrll 			temp += (ex.X_add_number >> 15) & 1;
   2441      1.1     skrll 
   2442      1.1     skrll 			ex.X_add_number = SEXT16 (temp);
   2443  1.1.1.2  christos 			break;
   2444  1.1.1.2  christos 		      }
   2445  1.1.1.2  christos 
   2446  1.1.1.2  christos 		    case BFD_RELOC_V850_23:
   2447  1.1.1.2  christos 		      if ((operand->flags & V850E_IMMEDIATE23) == 0)
   2448  1.1.1.2  christos 			{
   2449  1.1.1.2  christos 			  errmsg = _("immediate operand is too large");
   2450  1.1.1.2  christos 			  goto error;
   2451      1.1     skrll 			}
   2452  1.1.1.2  christos 		      break;
   2453  1.1.1.2  christos 
   2454      1.1     skrll 		    case BFD_RELOC_32:
   2455      1.1     skrll 		    case BFD_RELOC_V850_32_ABS:
   2456      1.1     skrll 		    case BFD_RELOC_V850_32_PCREL:
   2457      1.1     skrll 		      if ((operand->flags & V850E_IMMEDIATE32) == 0)
   2458      1.1     skrll 			{
   2459      1.1     skrll 			  errmsg = _("immediate operand is too large");
   2460      1.1     skrll 			  goto error;
   2461      1.1     skrll 			}
   2462      1.1     skrll 
   2463  1.1.1.3  christos 		      break;
   2464      1.1     skrll 
   2465      1.1     skrll 		    default:
   2466      1.1     skrll 		      as_bad (_("AAARG -> unhandled constant reloc: %d"), reloc);
   2467  1.1.1.2  christos 		      break;
   2468  1.1.1.2  christos 		    }
   2469  1.1.1.7  christos 
   2470  1.1.1.2  christos 		  if (operand->flags & V850E_IMMEDIATE32)
   2471  1.1.1.2  christos 		    {
   2472  1.1.1.2  christos 		      extra_data_after_insn = true;
   2473  1.1.1.2  christos 		      extra_data_len	    = 4;
   2474  1.1.1.2  christos 		      extra_data	    = 0;
   2475  1.1.1.2  christos 		    }
   2476  1.1.1.2  christos 		  else if (operand->flags & V850E_IMMEDIATE23)
   2477  1.1.1.2  christos 		    {
   2478  1.1.1.2  christos 		      if (reloc != BFD_RELOC_V850_23)
   2479  1.1.1.2  christos 			{
   2480  1.1.1.7  christos 			  errmsg = _("immediate operand is too large");
   2481  1.1.1.2  christos 			  goto error;
   2482  1.1.1.2  christos 			}
   2483  1.1.1.2  christos 		      extra_data_after_insn = true;
   2484  1.1.1.2  christos 		      extra_data_len	    = 2;
   2485  1.1.1.2  christos 		      extra_data	    = 0;
   2486  1.1.1.2  christos 		    }
   2487  1.1.1.2  christos 		  else if ((operand->flags & V850E_IMMEDIATE16)
   2488  1.1.1.2  christos 			   || (operand->flags & V850E_IMMEDIATE16HI))
   2489  1.1.1.2  christos 		    {
   2490  1.1.1.2  christos 		      if (operand->flags & V850E_IMMEDIATE16HI
   2491  1.1.1.2  christos 			  && reloc != BFD_RELOC_HI16
   2492  1.1.1.2  christos 			  && reloc != BFD_RELOC_HI16_S)
   2493  1.1.1.2  christos 			{
   2494  1.1.1.2  christos 			  errmsg = _("immediate operand is too large");
   2495  1.1.1.2  christos 			  goto error;
   2496  1.1.1.2  christos 			}
   2497  1.1.1.2  christos 		      else if (operand->flags & V850E_IMMEDIATE16
   2498  1.1.1.2  christos 			       && reloc != BFD_RELOC_LO16)
   2499  1.1.1.2  christos 			{
   2500  1.1.1.2  christos 			  errmsg = _("immediate operand is too large");
   2501  1.1.1.7  christos 			  goto error;
   2502  1.1.1.2  christos 			}
   2503  1.1.1.2  christos 
   2504  1.1.1.2  christos 		      extra_data_after_insn = true;
   2505  1.1.1.2  christos 		      extra_data_len	    = 2;
   2506      1.1     skrll 		      extra_data	    = 0;
   2507      1.1     skrll 		    }
   2508      1.1     skrll 
   2509      1.1     skrll 		  if (fc > MAX_INSN_FIXUPS)
   2510      1.1     skrll 		    as_fatal (_("too many fixups"));
   2511      1.1     skrll 
   2512      1.1     skrll 		  fixups[fc].exp     = ex;
   2513      1.1     skrll 		  fixups[fc].opindex = *opindex_ptr;
   2514  1.1.1.2  christos 		  fixups[fc].reloc   = reloc;
   2515      1.1     skrll 		  fc++;
   2516  1.1.1.2  christos 		}
   2517  1.1.1.2  christos 	      else	/* ex.X_op != O_constant.  */
   2518  1.1.1.2  christos 		{
   2519  1.1.1.2  christos 		  if ((reloc == BFD_RELOC_32
   2520      1.1     skrll 		       || reloc == BFD_RELOC_V850_32_ABS
   2521  1.1.1.2  christos 		       || reloc == BFD_RELOC_V850_32_PCREL)
   2522  1.1.1.2  christos 		      && operand->bits < 32)
   2523  1.1.1.2  christos 		    {
   2524  1.1.1.2  christos 		      errmsg = _("immediate operand is too large");
   2525  1.1.1.2  christos 		      goto error;
   2526  1.1.1.2  christos 		    }
   2527  1.1.1.2  christos 		  else if (reloc == BFD_RELOC_V850_23
   2528  1.1.1.2  christos 			   && (operand->flags & V850E_IMMEDIATE23) == 0)
   2529  1.1.1.2  christos 		    {
   2530  1.1.1.2  christos 		      errmsg = _("immediate operand is too large");
   2531  1.1.1.2  christos 		      goto error;
   2532  1.1.1.2  christos 		    }
   2533  1.1.1.2  christos 		  else if ((reloc == BFD_RELOC_HI16
   2534  1.1.1.2  christos 			    || reloc == BFD_RELOC_HI16_S)
   2535  1.1.1.2  christos 			   && operand->bits < 16)
   2536  1.1.1.2  christos 		    {
   2537  1.1.1.2  christos 		      errmsg = _("immediate operand is too large");
   2538  1.1.1.2  christos 		      goto error;
   2539  1.1.1.2  christos 		    }
   2540  1.1.1.7  christos 
   2541  1.1.1.2  christos 		  if (operand->flags & V850E_IMMEDIATE32)
   2542  1.1.1.2  christos 		    {
   2543  1.1.1.2  christos 		      extra_data_after_insn = true;
   2544  1.1.1.2  christos 		      extra_data_len	    = 4;
   2545  1.1.1.2  christos 		      extra_data	    = 0;
   2546  1.1.1.2  christos 		    }
   2547  1.1.1.2  christos 		  else if (operand->flags & V850E_IMMEDIATE23)
   2548  1.1.1.2  christos 		    {
   2549  1.1.1.2  christos 		      if (reloc != BFD_RELOC_V850_23)
   2550  1.1.1.2  christos 			{
   2551  1.1.1.7  christos 			  errmsg = _("immediate operand is too large");
   2552  1.1.1.2  christos 			  goto error;
   2553  1.1.1.2  christos 			}
   2554  1.1.1.2  christos 		      extra_data_after_insn = true;
   2555  1.1.1.2  christos 		      extra_data_len	    = 2;
   2556  1.1.1.2  christos 		      extra_data	    = 0;
   2557  1.1.1.2  christos 		    }
   2558  1.1.1.2  christos 		  else if ((operand->flags & V850E_IMMEDIATE16)
   2559  1.1.1.2  christos 			   || (operand->flags & V850E_IMMEDIATE16HI))
   2560  1.1.1.2  christos 		    {
   2561  1.1.1.2  christos 		      if (operand->flags & V850E_IMMEDIATE16HI
   2562  1.1.1.2  christos 			  && reloc != BFD_RELOC_HI16
   2563  1.1.1.2  christos 			  && reloc != BFD_RELOC_HI16_S)
   2564  1.1.1.2  christos 			{
   2565  1.1.1.2  christos 			  errmsg = _("immediate operand is too large");
   2566  1.1.1.2  christos 			  goto error;
   2567      1.1     skrll 			}
   2568      1.1     skrll 		      else if (operand->flags & V850E_IMMEDIATE16
   2569      1.1     skrll 			       && reloc != BFD_RELOC_LO16)
   2570      1.1     skrll 			{
   2571      1.1     skrll 			  errmsg = _("immediate operand is too large");
   2572  1.1.1.7  christos 			  goto error;
   2573  1.1.1.2  christos 			}
   2574  1.1.1.2  christos 
   2575      1.1     skrll 		      extra_data_after_insn = true;
   2576      1.1     skrll 		      extra_data_len	    = 2;
   2577      1.1     skrll 		      extra_data	    = 0;
   2578      1.1     skrll 		    }
   2579      1.1     skrll 
   2580      1.1     skrll 		  if (fc > MAX_INSN_FIXUPS)
   2581      1.1     skrll 		    as_fatal (_("too many fixups"));
   2582      1.1     skrll 
   2583      1.1     skrll 		  fixups[fc].exp     = ex;
   2584      1.1     skrll 		  fixups[fc].opindex = *opindex_ptr;
   2585      1.1     skrll 		  fixups[fc].reloc   = reloc;
   2586  1.1.1.2  christos 		  fc++;
   2587  1.1.1.2  christos 		}
   2588  1.1.1.2  christos 	    }
   2589  1.1.1.2  christos 	  else if (operand->flags & V850E_IMMEDIATE16
   2590  1.1.1.2  christos 		   || operand->flags & V850E_IMMEDIATE16HI)
   2591  1.1.1.2  christos 	    {
   2592  1.1.1.2  christos 	      expression (&ex);
   2593  1.1.1.2  christos 
   2594  1.1.1.2  christos 	      switch (ex.X_op)
   2595  1.1.1.2  christos 		{
   2596  1.1.1.2  christos 		case O_constant:
   2597  1.1.1.2  christos 		  if (operand->flags & V850E_IMMEDIATE16HI)
   2598  1.1.1.2  christos 		    {
   2599  1.1.1.2  christos 		      if (ex.X_add_number & 0xffff)
   2600  1.1.1.2  christos 			{
   2601  1.1.1.2  christos 			  errmsg = _("constant too big to fit into instruction");
   2602  1.1.1.2  christos 			  goto error;
   2603  1.1.1.2  christos 			}
   2604  1.1.1.2  christos 
   2605  1.1.1.2  christos 		      ex.X_add_number >>= 16;
   2606  1.1.1.3  christos 		    }
   2607  1.1.1.3  christos 		  if (operand->flags & V850E_IMMEDIATE16)
   2608  1.1.1.2  christos 		    {
   2609  1.1.1.2  christos 		      if ((ex.X_add_number & 0xffff8000)
   2610  1.1.1.2  christos 			  && ((ex.X_add_number & 0xffff8000) != 0xffff8000))
   2611  1.1.1.2  christos 			{
   2612  1.1.1.2  christos 			  errmsg = _("constant too big to fit into instruction");
   2613  1.1.1.2  christos 			  goto error;
   2614  1.1.1.2  christos 			}
   2615  1.1.1.2  christos 		    }
   2616  1.1.1.2  christos 		  break;
   2617  1.1.1.2  christos 
   2618  1.1.1.2  christos 		case O_illegal:
   2619  1.1.1.2  christos 		  errmsg = _("illegal operand");
   2620  1.1.1.2  christos 		  goto error;
   2621  1.1.1.2  christos 
   2622  1.1.1.2  christos 		case O_absent:
   2623  1.1.1.2  christos 		  errmsg = _("missing operand");
   2624  1.1.1.2  christos 		  goto error;
   2625  1.1.1.2  christos 
   2626  1.1.1.2  christos 		default:
   2627  1.1.1.2  christos 		  if (fc >= MAX_INSN_FIXUPS)
   2628  1.1.1.2  christos 		    as_fatal (_("too many fixups"));
   2629  1.1.1.2  christos 
   2630  1.1.1.2  christos 		  fixups[fc].exp     = ex;
   2631  1.1.1.2  christos 		  fixups[fc].opindex = *opindex_ptr;
   2632  1.1.1.2  christos 		  fixups[fc].reloc   = operand->default_reloc;
   2633  1.1.1.2  christos 		  ++fc;
   2634  1.1.1.2  christos 
   2635  1.1.1.2  christos 		  ex.X_add_number = 0;
   2636  1.1.1.7  christos 		  break;
   2637  1.1.1.2  christos 		}
   2638  1.1.1.2  christos 
   2639  1.1.1.2  christos 	      extra_data_after_insn = true;
   2640  1.1.1.2  christos 	      extra_data_len        = 2;
   2641  1.1.1.2  christos 	      extra_data            = ex.X_add_number;
   2642  1.1.1.2  christos 	    }
   2643  1.1.1.2  christos 	  else if (operand->flags & V850E_IMMEDIATE23)
   2644  1.1.1.2  christos 	    {
   2645  1.1.1.2  christos 	      expression (&ex);
   2646  1.1.1.2  christos 
   2647  1.1.1.2  christos 	      switch (ex.X_op)
   2648  1.1.1.2  christos 		{
   2649  1.1.1.2  christos 		case O_constant:
   2650  1.1.1.2  christos 		  break;
   2651  1.1.1.2  christos 
   2652  1.1.1.2  christos 		case O_illegal:
   2653  1.1.1.2  christos 		  errmsg = _("illegal operand");
   2654  1.1.1.2  christos 		  goto error;
   2655  1.1.1.2  christos 
   2656  1.1.1.2  christos 		case O_absent:
   2657  1.1.1.2  christos 		  errmsg = _("missing operand");
   2658  1.1.1.2  christos 		  goto error;
   2659  1.1.1.2  christos 
   2660  1.1.1.2  christos 		default:
   2661  1.1.1.2  christos 		  break;
   2662  1.1.1.2  christos 		}
   2663  1.1.1.2  christos 
   2664  1.1.1.2  christos 	      if (fc >= MAX_INSN_FIXUPS)
   2665  1.1.1.2  christos 		as_fatal (_("too many fixups"));
   2666  1.1.1.2  christos 
   2667  1.1.1.2  christos 	      fixups[fc].exp     = ex;
   2668  1.1.1.2  christos 	      fixups[fc].opindex = *opindex_ptr;
   2669  1.1.1.7  christos 	      fixups[fc].reloc   = operand->default_reloc;
   2670  1.1.1.2  christos 	      ++fc;
   2671  1.1.1.2  christos 
   2672  1.1.1.2  christos 	      extra_data_after_insn = true;
   2673  1.1.1.2  christos 	      extra_data_len        = 2;
   2674  1.1.1.2  christos 	      extra_data            = 0;
   2675  1.1.1.2  christos 	    }
   2676  1.1.1.2  christos 	  else if (operand->flags & V850E_IMMEDIATE32)
   2677  1.1.1.2  christos 	    {
   2678  1.1.1.2  christos 	      expression (&ex);
   2679  1.1.1.2  christos 
   2680  1.1.1.2  christos 	      switch (ex.X_op)
   2681  1.1.1.2  christos 		{
   2682  1.1.1.2  christos 		case O_constant:
   2683  1.1.1.2  christos 		  if ((operand->default_reloc == BFD_RELOC_V850_32_ABS
   2684  1.1.1.2  christos 		       || operand->default_reloc == BFD_RELOC_V850_32_PCREL)
   2685  1.1.1.2  christos 		      && (ex.X_add_number & 1))
   2686  1.1.1.2  christos 		    {
   2687  1.1.1.2  christos 		      errmsg = _("odd number cannot be used here");
   2688  1.1.1.2  christos 		      goto error;
   2689  1.1.1.2  christos 		    }
   2690  1.1.1.2  christos 		  break;
   2691  1.1.1.2  christos 
   2692  1.1.1.2  christos 		case O_illegal:
   2693  1.1.1.2  christos 		  errmsg = _("illegal operand");
   2694  1.1.1.2  christos 		  goto error;
   2695  1.1.1.2  christos 
   2696  1.1.1.2  christos 		case O_absent:
   2697  1.1.1.2  christos 		  errmsg = _("missing operand");
   2698  1.1.1.2  christos 		  goto error;
   2699  1.1.1.2  christos 
   2700  1.1.1.2  christos 		default:
   2701  1.1.1.2  christos 		  if (fc >= MAX_INSN_FIXUPS)
   2702  1.1.1.2  christos 		    as_fatal (_("too many fixups"));
   2703  1.1.1.2  christos 
   2704  1.1.1.2  christos 		  fixups[fc].exp     = ex;
   2705  1.1.1.2  christos 		  fixups[fc].opindex = *opindex_ptr;
   2706  1.1.1.2  christos 		  fixups[fc].reloc   = operand->default_reloc;
   2707  1.1.1.2  christos 		  ++fc;
   2708  1.1.1.2  christos 
   2709  1.1.1.2  christos 		  ex.X_add_number = 0;
   2710  1.1.1.7  christos 		  break;
   2711  1.1.1.2  christos 		}
   2712  1.1.1.2  christos 
   2713  1.1.1.2  christos 	      extra_data_after_insn = true;
   2714  1.1.1.2  christos 	      extra_data_len        = 4;
   2715  1.1.1.2  christos 	      extra_data            = ex.X_add_number;
   2716  1.1.1.2  christos 	    }
   2717  1.1.1.2  christos 	  else if (operand->flags & V850E_OPERAND_REG_LIST)
   2718  1.1.1.2  christos 	    {
   2719  1.1.1.2  christos 	      errmsg = parse_register_list (&insn, operand);
   2720  1.1.1.2  christos 
   2721      1.1     skrll 	      if (errmsg)
   2722      1.1     skrll 		goto error;
   2723      1.1     skrll 	    }
   2724      1.1     skrll 	  else
   2725      1.1     skrll 	    {
   2726      1.1     skrll 	      errmsg = NULL;
   2727      1.1     skrll 
   2728  1.1.1.2  christos 	      if ((operand->flags & V850_OPERAND_REG) != 0)
   2729  1.1.1.2  christos 		{
   2730  1.1.1.2  christos 		  if (!register_name (&ex))
   2731  1.1.1.2  christos 		    {
   2732  1.1.1.2  christos 		      errmsg = _("invalid register name");
   2733      1.1     skrll 		    }
   2734      1.1     skrll 
   2735      1.1     skrll 		  if ((operand->flags & V850_NOT_R0)
   2736  1.1.1.2  christos 			   && ex.X_add_number == 0)
   2737      1.1     skrll 		    {
   2738  1.1.1.2  christos 		      errmsg = _("register r0 cannot be used here");
   2739  1.1.1.2  christos 		    }
   2740  1.1.1.2  christos 
   2741  1.1.1.2  christos 		  if (operand->flags & V850_REG_EVEN)
   2742  1.1.1.2  christos 		    {
   2743      1.1     skrll 		      if (ex.X_add_number % 2)
   2744  1.1.1.2  christos 			errmsg = _("odd register cannot be used here");
   2745      1.1     skrll 		      ex.X_add_number = ex.X_add_number / 2;
   2746      1.1     skrll 		    }
   2747      1.1     skrll 
   2748  1.1.1.7  christos 		}
   2749  1.1.1.2  christos 	      else if ((operand->flags & V850_OPERAND_SRG) != 0)
   2750  1.1.1.2  christos 		{
   2751  1.1.1.2  christos 		  if (!system_register_name (&ex, true))
   2752      1.1     skrll 		    {
   2753      1.1     skrll 		      errmsg = _("invalid system register name");
   2754      1.1     skrll 		    }
   2755      1.1     skrll 		}
   2756  1.1.1.3  christos 	      else if ((operand->flags & V850_OPERAND_EP) != 0)
   2757  1.1.1.3  christos 		{
   2758      1.1     skrll 		  char *start = input_line_pointer;
   2759  1.1.1.3  christos 		  char *name;
   2760      1.1     skrll 		  char c = get_symbol_name (&name);
   2761      1.1     skrll 
   2762  1.1.1.3  christos 		  if (strcmp (name, "ep") != 0 && strcmp (name, "r30") != 0)
   2763      1.1     skrll 		    {
   2764      1.1     skrll 		      /* Put things back the way we found them.  */
   2765      1.1     skrll 		      (void) restore_line_pointer (c);
   2766      1.1     skrll 		      input_line_pointer = start;
   2767      1.1     skrll 		      errmsg = _("expected EP register");
   2768  1.1.1.3  christos 		      goto error;
   2769      1.1     skrll 		    }
   2770      1.1     skrll 
   2771      1.1     skrll 		  (void) restore_line_pointer (c);
   2772  1.1.1.9  christos 		  str = input_line_pointer;
   2773      1.1     skrll 		  input_line_pointer = hold;
   2774      1.1     skrll 
   2775      1.1     skrll 		  while (is_whitespace (*str) || *str == ','
   2776      1.1     skrll 			 || *str == '[' || *str == ']')
   2777      1.1     skrll 		    ++str;
   2778      1.1     skrll 		  continue;
   2779  1.1.1.7  christos 		}
   2780      1.1     skrll 	      else if ((operand->flags & V850_OPERAND_CC) != 0)
   2781  1.1.1.2  christos 		{
   2782      1.1     skrll 		  if (!cc_name (&ex, true))
   2783      1.1     skrll 		    {
   2784  1.1.1.2  christos 		      errmsg = _("invalid condition code name");
   2785  1.1.1.2  christos 		    }
   2786  1.1.1.2  christos 
   2787  1.1.1.2  christos 		  if ((operand->flags & V850_NOT_SA)
   2788  1.1.1.2  christos 		      && ex.X_add_number == COND_SA_NUM)
   2789      1.1     skrll 		    {
   2790  1.1.1.2  christos 		      errmsg = _("condition sa cannot be used here");
   2791      1.1     skrll 		    }
   2792  1.1.1.7  christos 		}
   2793  1.1.1.2  christos 	      else if ((operand->flags & V850_OPERAND_FLOAT_CC) != 0)
   2794  1.1.1.2  christos 		{
   2795  1.1.1.2  christos 		  if (!float_cc_name (&ex, true))
   2796      1.1     skrll 		    {
   2797  1.1.1.3  christos 		      errmsg = _("invalid condition code name");
   2798  1.1.1.3  christos 		    }
   2799  1.1.1.7  christos 		}
   2800  1.1.1.5  christos 	      else if ((operand->flags & V850_OPERAND_CACHEOP) != 0)
   2801  1.1.1.3  christos 		{
   2802  1.1.1.3  christos 		  if (!cacheop_name (&ex, true))
   2803  1.1.1.3  christos 		    errmsg = _("invalid cache operation name");
   2804  1.1.1.7  christos 		}
   2805  1.1.1.5  christos 	      else if ((operand->flags & V850_OPERAND_PREFOP) != 0)
   2806  1.1.1.3  christos 		{
   2807  1.1.1.3  christos 		  if (!prefop_name (&ex, true))
   2808  1.1.1.3  christos 		    errmsg = _("invalid pref operation name");
   2809  1.1.1.3  christos 		}
   2810  1.1.1.3  christos 	      else if ((operand->flags & V850_OPERAND_VREG) != 0)
   2811  1.1.1.3  christos 		{
   2812  1.1.1.2  christos 		  if (!vector_register_name (&ex))
   2813  1.1.1.2  christos 		    errmsg = _("invalid vector register name");
   2814      1.1     skrll 		}
   2815  1.1.1.3  christos 	      else if ((register_name (&ex)
   2816      1.1     skrll 			&& (operand->flags & V850_OPERAND_REG) == 0))
   2817      1.1     skrll 		{
   2818      1.1     skrll 		  char *name;
   2819      1.1     skrll 		  char c;
   2820      1.1     skrll 		  int exists = 0;
   2821      1.1     skrll 
   2822      1.1     skrll 		  /* It is possible that an alias has been defined that
   2823      1.1     skrll 		     matches a register name.  For example the code may
   2824      1.1     skrll 		     include a ".set ZERO, 0" directive, which matches
   2825      1.1     skrll 		     the register name "zero".  Attempt to reparse the
   2826      1.1     skrll 		     field as an expression, and only complain if we
   2827      1.1     skrll 		     cannot generate a constant.  */
   2828  1.1.1.3  christos 
   2829      1.1     skrll 		  input_line_pointer = str;
   2830  1.1.1.3  christos 
   2831      1.1     skrll 		  c = get_symbol_name (&name);
   2832      1.1     skrll 
   2833  1.1.1.3  christos 		  if (symbol_find (name) != NULL)
   2834      1.1     skrll 		    exists = 1;
   2835      1.1     skrll 
   2836      1.1     skrll 		  (void) restore_line_pointer (c);
   2837      1.1     skrll 		  input_line_pointer = str;
   2838      1.1     skrll 
   2839      1.1     skrll 		  expression (&ex);
   2840      1.1     skrll 
   2841      1.1     skrll 		  if (ex.X_op != O_constant)
   2842      1.1     skrll 		    {
   2843      1.1     skrll 		      /* If this register is actually occurring too early on
   2844  1.1.1.2  christos 			 the parsing of the instruction, (because another
   2845  1.1.1.2  christos 			 field is missing) then report this.  */
   2846  1.1.1.2  christos 		      if (opindex_ptr[1] != 0
   2847  1.1.1.2  christos 			  && ((v850_operands[opindex_ptr[1]].flags
   2848      1.1     skrll 			       & V850_OPERAND_REG)
   2849      1.1     skrll 			      ||(v850_operands[opindex_ptr[1]].flags
   2850      1.1     skrll 				 & V850_OPERAND_VREG)))
   2851      1.1     skrll 			errmsg = _("syntax error: value is missing before the register name");
   2852      1.1     skrll 		      else
   2853      1.1     skrll 			errmsg = _("syntax error: register not expected");
   2854      1.1     skrll 
   2855      1.1     skrll 		      /* If we created a symbol in the process of this
   2856      1.1     skrll 			 test then delete it now, so that it will not
   2857      1.1     skrll 			 be output with the real symbols...  */
   2858      1.1     skrll 		      if (exists == 0
   2859      1.1     skrll 			  && ex.X_op == O_symbol)
   2860      1.1     skrll 			symbol_remove (ex.X_add_symbol,
   2861  1.1.1.7  christos 				       &symbol_rootP, &symbol_lastP);
   2862      1.1     skrll 		    }
   2863  1.1.1.2  christos 		}
   2864  1.1.1.2  christos 	      else if (system_register_name (&ex, false)
   2865  1.1.1.2  christos 		       && (operand->flags & V850_OPERAND_SRG) == 0)
   2866  1.1.1.7  christos 		{
   2867      1.1     skrll 		  errmsg = _("syntax error: system register not expected");
   2868  1.1.1.2  christos 		}
   2869  1.1.1.2  christos 	      else if (cc_name (&ex, false)
   2870  1.1.1.2  christos 		       && (operand->flags & V850_OPERAND_CC) == 0)
   2871  1.1.1.7  christos 		{
   2872  1.1.1.2  christos 		  errmsg = _("syntax error: condition code not expected");
   2873  1.1.1.2  christos 		}
   2874  1.1.1.2  christos 	      else if (float_cc_name (&ex, false)
   2875  1.1.1.2  christos 		       && (operand->flags & V850_OPERAND_FLOAT_CC) == 0)
   2876  1.1.1.3  christos 		{
   2877  1.1.1.3  christos 		  errmsg = _("syntax error: condition code not expected");
   2878  1.1.1.3  christos 		}
   2879  1.1.1.3  christos 	      else if (vector_register_name (&ex)
   2880  1.1.1.3  christos 		       && (operand->flags & V850_OPERAND_VREG) == 0)
   2881      1.1     skrll 		{
   2882      1.1     skrll 		  errmsg = _("syntax error: vector register not expected");
   2883      1.1     skrll 		}
   2884  1.1.1.8  christos 	      else
   2885  1.1.1.2  christos 		{
   2886  1.1.1.2  christos 		  expression (&ex);
   2887  1.1.1.2  christos 		  resolve_register (&ex);
   2888  1.1.1.2  christos 
   2889  1.1.1.2  christos 		  if ((operand->flags & V850_NOT_IMM0)
   2890  1.1.1.2  christos 		      && ex.X_op == O_constant
   2891  1.1.1.2  christos 		      && ex.X_add_number == 0)
   2892  1.1.1.2  christos 		    {
   2893      1.1     skrll 		      errmsg = _("immediate 0 cannot be used here");
   2894  1.1.1.2  christos 		    }
   2895      1.1     skrll 
   2896  1.1.1.2  christos 		  /* Special case:
   2897      1.1     skrll 		     If we are assembling a MOV/JARL/JR instruction and the immediate
   2898      1.1     skrll 		     value does not fit into the bits available then create a
   2899  1.1.1.2  christos 		     fake error so that the next MOV/JARL/JR instruction will be
   2900  1.1.1.2  christos 		     selected.  This one has a 32 bit immediate field.  */
   2901  1.1.1.2  christos 
   2902      1.1     skrll 		  if ((strcmp (opcode->name, "mov") == 0
   2903      1.1     skrll 		       || strcmp (opcode->name, "jarl") == 0
   2904      1.1     skrll 		       || strcmp (opcode->name, "jr") == 0)
   2905  1.1.1.2  christos 		      && ex.X_op == O_constant
   2906  1.1.1.2  christos 		      && (ex.X_add_number < (-(1 << (operand->bits - 1)))
   2907  1.1.1.2  christos 			  || ex.X_add_number > ((1 << (operand->bits - 1)) - 1)))
   2908  1.1.1.2  christos 		    {
   2909  1.1.1.2  christos 		      errmsg = _("immediate operand is too large");
   2910  1.1.1.2  christos 		    }
   2911  1.1.1.2  christos 
   2912  1.1.1.2  christos 		  if ((strcmp (opcode->name, "jarl") == 0
   2913  1.1.1.2  christos 		       || strcmp (opcode->name, "jr") == 0)
   2914  1.1.1.2  christos 		      && ex.X_op != O_constant
   2915  1.1.1.2  christos 		      && operand->bits != default_disp_size)
   2916  1.1.1.3  christos 		    {
   2917  1.1.1.3  christos 		      errmsg = _("immediate operand is not match");
   2918  1.1.1.3  christos 		    }
   2919  1.1.1.3  christos 
   2920  1.1.1.3  christos                   /* Special case2 :
   2921  1.1.1.3  christos                      If we are assembling a ld/st instruction and the immediate
   2922  1.1.1.7  christos                      value does not fit into the bits available then create a
   2923  1.1.1.7  christos                      fake error so that the next ld/st instruction will be
   2924  1.1.1.3  christos                      selected.  */
   2925  1.1.1.3  christos                   if ( (  (startswith (opcode->name, "st."))
   2926  1.1.1.3  christos 		       || (startswith (opcode->name, "ld.")))
   2927  1.1.1.3  christos                       && ex.X_op == O_constant
   2928      1.1     skrll                       && (ex.X_add_number < (-(1 << (operand->bits - 1)))
   2929      1.1     skrll 			  || ex.X_add_number > ((1 << (operand->bits - 1)) - 1)))
   2930      1.1     skrll 		    errmsg = _("displacement is too large");
   2931      1.1     skrll 		}
   2932      1.1     skrll 
   2933      1.1     skrll 	      if (errmsg)
   2934      1.1     skrll 		goto error;
   2935      1.1     skrll 
   2936      1.1     skrll 	      switch (ex.X_op)
   2937      1.1     skrll 		{
   2938      1.1     skrll 		case O_illegal:
   2939      1.1     skrll 		  errmsg = _("illegal operand");
   2940      1.1     skrll 		  goto error;
   2941      1.1     skrll 		case O_absent:
   2942      1.1     skrll 		  errmsg = _("missing operand");
   2943  1.1.1.2  christos 		  goto error;
   2944      1.1     skrll 		case O_register:
   2945      1.1     skrll 		  if ((operand->flags
   2946      1.1     skrll 		       & (V850_OPERAND_REG | V850_OPERAND_SRG | V850_OPERAND_VREG)) == 0)
   2947      1.1     skrll 		    {
   2948  1.1.1.2  christos 		      errmsg = _("invalid operand");
   2949  1.1.1.2  christos 		      goto error;
   2950  1.1.1.2  christos 		    }
   2951  1.1.1.2  christos 
   2952  1.1.1.2  christos 		  insn = v850_insert_operand (insn, operand,
   2953      1.1     skrll 					      ex.X_add_number,
   2954      1.1     skrll 					      &warningmsg);
   2955      1.1     skrll 
   2956      1.1     skrll 		  break;
   2957  1.1.1.2  christos 
   2958      1.1     skrll 		case O_constant:
   2959      1.1     skrll 		  insn = v850_insert_operand (insn, operand, ex.X_add_number,
   2960      1.1     skrll 					      &warningmsg);
   2961      1.1     skrll 		  break;
   2962      1.1     skrll 
   2963      1.1     skrll 		default:
   2964      1.1     skrll 		  /* We need to generate a fixup for this expression.  */
   2965      1.1     skrll 		  if (fc >= MAX_INSN_FIXUPS)
   2966      1.1     skrll 		    as_fatal (_("too many fixups"));
   2967  1.1.1.3  christos 
   2968      1.1     skrll 		  fixups[fc].exp     = ex;
   2969      1.1     skrll 		  fixups[fc].opindex = *opindex_ptr;
   2970      1.1     skrll 		  fixups[fc].reloc   = BFD_RELOC_NONE;
   2971      1.1     skrll 		  ++fc;
   2972      1.1     skrll 		  break;
   2973      1.1     skrll 		}
   2974      1.1     skrll 	    }
   2975      1.1     skrll 
   2976  1.1.1.9  christos 	  str = input_line_pointer;
   2977      1.1     skrll 	  input_line_pointer = hold;
   2978      1.1     skrll 
   2979      1.1     skrll 	  while (is_whitespace (*str) || *str == ',' || *str == '[' || *str == ']'
   2980  1.1.1.2  christos 		 || *str == ')')
   2981  1.1.1.9  christos 	    ++str;
   2982  1.1.1.2  christos 	}
   2983  1.1.1.2  christos 
   2984  1.1.1.2  christos       while (is_whitespace (*str))
   2985  1.1.1.2  christos 	++str;
   2986      1.1     skrll 
   2987      1.1     skrll       if (*str == '\0')
   2988      1.1     skrll 	match = 1;
   2989      1.1     skrll 
   2990  1.1.1.2  christos     error:
   2991  1.1.1.2  christos       if (match == 0)
   2992  1.1.1.2  christos 	{
   2993  1.1.1.2  christos 	  if ((opindex_ptr - opcode->operands) >= most_match_count)
   2994  1.1.1.2  christos 	    {
   2995  1.1.1.2  christos 	      most_match_count = opindex_ptr - opcode->operands;
   2996  1.1.1.2  christos 	      if (errmsg != NULL)
   2997      1.1     skrll 		strncpy (most_match_errmsg, errmsg, sizeof (most_match_errmsg)-1);
   2998      1.1     skrll 	    }
   2999      1.1     skrll 
   3000      1.1     skrll 	  next_opcode = opcode + 1;
   3001      1.1     skrll 	  if (next_opcode->name != NULL
   3002      1.1     skrll 	      && strcmp (next_opcode->name, opcode->name) == 0)
   3003      1.1     skrll 	    {
   3004      1.1     skrll 	      opcode = next_opcode;
   3005      1.1     skrll 
   3006      1.1     skrll 	      /* Skip versions that are not supported by the target
   3007      1.1     skrll 		 processor.  */
   3008      1.1     skrll 	      if ((opcode->processors & processor_mask) == 0)
   3009      1.1     skrll 		goto error;
   3010      1.1     skrll 
   3011  1.1.1.2  christos 	      continue;
   3012  1.1.1.2  christos 	    }
   3013  1.1.1.2  christos 
   3014  1.1.1.2  christos 	  if (most_match_errmsg[0] == 0)
   3015  1.1.1.2  christos 	    /* xgettext:c-format.  */
   3016      1.1     skrll 	    as_bad (_("junk at end of line: `%s'"), str);
   3017      1.1     skrll 	  else
   3018      1.1     skrll 	    as_bad ("%s: %s", copy_of_instruction, most_match_errmsg);
   3019      1.1     skrll 
   3020      1.1     skrll 	  if (*input_line_pointer == ']')
   3021      1.1     skrll 	    ++input_line_pointer;
   3022      1.1     skrll 
   3023      1.1     skrll 	  ignore_rest_of_line ();
   3024  1.1.1.2  christos 	  input_line_pointer = saved_input_line_pointer;
   3025  1.1.1.2  christos 	  return;
   3026  1.1.1.2  christos 	}
   3027      1.1     skrll 
   3028      1.1     skrll       if (warningmsg != NULL)
   3029      1.1     skrll 	as_warn ("%s", warningmsg);
   3030      1.1     skrll       break;
   3031      1.1     skrll     }
   3032      1.1     skrll 
   3033      1.1     skrll   input_line_pointer = str;
   3034      1.1     skrll 
   3035      1.1     skrll   /* Tie dwarf2 debug info to the address at the start of the insn.
   3036      1.1     skrll      We can't do this after the insn has been output as the current
   3037      1.1     skrll      frag may have been closed off.  eg. by frag_var.  */
   3038      1.1     skrll   dwarf2_emit_insn (0);
   3039      1.1     skrll 
   3040      1.1     skrll   /* Write out the instruction.  */
   3041      1.1     skrll   if (relaxable && fc > 0)
   3042      1.1     skrll     {
   3043  1.1.1.3  christos       insn_size = 2;
   3044      1.1     skrll       fc = 0;
   3045  1.1.1.3  christos 
   3046  1.1.1.3  christos       if (strcmp (opcode->name, "loop") == 0)
   3047  1.1.1.3  christos 	{
   3048  1.1.1.3  christos 	  if (((processor_mask & PROCESSOR_V850E3V5_UP) == 0) || default_disp_size == 22)
   3049  1.1.1.3  christos 	    {
   3050  1.1.1.3  christos 	      insn_size = 4;
   3051  1.1.1.9  christos 	      f = frag_var (rs_machine_dependent, 6, 2, SUBYPTE_LOOP_16_22,
   3052  1.1.1.3  christos 			    fixups[0].exp.X_add_symbol,
   3053  1.1.1.3  christos 			    fixups[0].exp.X_add_number,
   3054  1.1.1.3  christos 			    (char *) (uintptr_t) fixups[0].opindex);
   3055  1.1.1.3  christos 	      md_number_to_chars (f, insn, insn_size);
   3056  1.1.1.3  christos 	      md_number_to_chars (f+4, 0, 4);
   3057  1.1.1.3  christos 	    }
   3058  1.1.1.3  christos 	  else
   3059  1.1.1.3  christos 	    {
   3060  1.1.1.3  christos 	      as_bad (_("loop: 32-bit displacement not supported"));
   3061  1.1.1.3  christos 	    }
   3062  1.1.1.3  christos 	}
   3063  1.1.1.3  christos       else if (strcmp (opcode->name, "br") == 0
   3064  1.1.1.2  christos 	       || strcmp (opcode->name, "jbr") == 0)
   3065  1.1.1.2  christos 	{
   3066  1.1.1.2  christos 	  if ((processor_mask & PROCESSOR_V850E2_UP) == 0 || default_disp_size == 22)
   3067  1.1.1.2  christos 	    {
   3068  1.1.1.9  christos 	      f = frag_var (rs_machine_dependent, 4, 2, SUBYPTE_UNCOND_9_22,
   3069  1.1.1.2  christos 			    fixups[0].exp.X_add_symbol,
   3070  1.1.1.2  christos 			    fixups[0].exp.X_add_number,
   3071  1.1.1.2  christos 			    (char *) (uintptr_t) fixups[0].opindex);
   3072  1.1.1.2  christos 	      md_number_to_chars (f, insn, insn_size);
   3073  1.1.1.2  christos 	      md_number_to_chars (f + 2, 0, 2);
   3074  1.1.1.2  christos 	    }
   3075  1.1.1.2  christos 	  else
   3076  1.1.1.2  christos 	    {
   3077  1.1.1.9  christos 	      f = frag_var (rs_machine_dependent, 6, 4, SUBYPTE_UNCOND_9_22_32,
   3078  1.1.1.2  christos 			    fixups[0].exp.X_add_symbol,
   3079  1.1.1.2  christos 			    fixups[0].exp.X_add_number,
   3080  1.1.1.2  christos 			    (char *) (uintptr_t) fixups[0].opindex);
   3081      1.1     skrll 	      md_number_to_chars (f, insn, insn_size);
   3082  1.1.1.2  christos 	      md_number_to_chars (f + 2, 0, 4);
   3083      1.1     skrll 	    }
   3084  1.1.1.2  christos 	}
   3085  1.1.1.3  christos       else /* b<cond>, j<cond>.  */
   3086  1.1.1.2  christos 	{
   3087  1.1.1.3  christos 	  if (default_disp_size == 22
   3088  1.1.1.2  christos 	      || (processor_mask & PROCESSOR_V850E2_UP) == 0)
   3089  1.1.1.2  christos 	    {
   3090  1.1.1.2  christos 	      if (processor_mask & PROCESSOR_V850E2V3_UP && !no_bcond17)
   3091  1.1.1.2  christos 		{
   3092  1.1.1.2  christos 		  if (strcmp (opcode->name, "bsa") == 0)
   3093  1.1.1.2  christos 		    {
   3094  1.1.1.9  christos 		      f = frag_var (rs_machine_dependent, 8, 6, SUBYPTE_SA_9_17_22,
   3095  1.1.1.2  christos 				    fixups[0].exp.X_add_symbol,
   3096  1.1.1.2  christos 				    fixups[0].exp.X_add_number,
   3097  1.1.1.2  christos 				    (char *) (uintptr_t) fixups[0].opindex);
   3098  1.1.1.2  christos 		      md_number_to_chars (f, insn, insn_size);
   3099  1.1.1.2  christos 		      md_number_to_chars (f + 2, 0, 6);
   3100  1.1.1.2  christos 		    }
   3101  1.1.1.2  christos 		  else
   3102  1.1.1.2  christos 		    {
   3103  1.1.1.9  christos 		      f = frag_var (rs_machine_dependent, 6, 4, SUBYPTE_COND_9_17_22,
   3104  1.1.1.2  christos 				    fixups[0].exp.X_add_symbol,
   3105  1.1.1.2  christos 				    fixups[0].exp.X_add_number,
   3106  1.1.1.2  christos 				    (char *) (uintptr_t) fixups[0].opindex);
   3107  1.1.1.2  christos 		      md_number_to_chars (f, insn, insn_size);
   3108  1.1.1.2  christos 		      md_number_to_chars (f + 2, 0, 4);
   3109  1.1.1.2  christos 		    }
   3110  1.1.1.2  christos 		}
   3111  1.1.1.2  christos 	      else
   3112  1.1.1.2  christos 		{
   3113  1.1.1.2  christos 		  if (strcmp (opcode->name, "bsa") == 0)
   3114  1.1.1.2  christos 		    {
   3115  1.1.1.9  christos 		      f = frag_var (rs_machine_dependent, 8, 6, SUBYPTE_SA_9_22,
   3116  1.1.1.2  christos 				    fixups[0].exp.X_add_symbol,
   3117  1.1.1.2  christos 				    fixups[0].exp.X_add_number,
   3118  1.1.1.2  christos 				    (char *) (uintptr_t) fixups[0].opindex);
   3119  1.1.1.2  christos 		      md_number_to_chars (f, insn, insn_size);
   3120  1.1.1.2  christos 		      md_number_to_chars (f + 2, 0, 6);
   3121  1.1.1.2  christos 		    }
   3122  1.1.1.2  christos 		  else
   3123  1.1.1.2  christos 		    {
   3124  1.1.1.9  christos 		      f = frag_var (rs_machine_dependent, 6, 4, SUBYPTE_COND_9_22,
   3125  1.1.1.2  christos 				    fixups[0].exp.X_add_symbol,
   3126  1.1.1.2  christos 				    fixups[0].exp.X_add_number,
   3127  1.1.1.2  christos 				    (char *) (uintptr_t) fixups[0].opindex);
   3128  1.1.1.2  christos 		      md_number_to_chars (f, insn, insn_size);
   3129  1.1.1.2  christos 		      md_number_to_chars (f + 2, 0, 4);
   3130  1.1.1.2  christos 		    }
   3131  1.1.1.2  christos 		}
   3132  1.1.1.3  christos 	    }
   3133  1.1.1.2  christos 	  else
   3134  1.1.1.2  christos 	    {
   3135  1.1.1.2  christos 	      if (processor_mask & PROCESSOR_V850E2V3_UP && !no_bcond17)
   3136  1.1.1.2  christos 		{
   3137  1.1.1.2  christos 		  if (strcmp (opcode->name, "bsa") == 0)
   3138  1.1.1.2  christos 		    {
   3139  1.1.1.9  christos 		      f = frag_var (rs_machine_dependent, 10, 8, SUBYPTE_SA_9_17_22_32,
   3140  1.1.1.2  christos 				    fixups[0].exp.X_add_symbol,
   3141  1.1.1.2  christos 				    fixups[0].exp.X_add_number,
   3142  1.1.1.2  christos 				    (char *) (uintptr_t) fixups[0].opindex);
   3143  1.1.1.2  christos 		      md_number_to_chars (f, insn, insn_size);
   3144  1.1.1.2  christos 		      md_number_to_chars (f + 2, 0, 8);
   3145  1.1.1.2  christos 		    }
   3146  1.1.1.2  christos 		  else
   3147  1.1.1.2  christos 		    {
   3148  1.1.1.9  christos 		      f = frag_var (rs_machine_dependent, 8, 6, SUBYPTE_COND_9_17_22_32,
   3149  1.1.1.2  christos 				    fixups[0].exp.X_add_symbol,
   3150  1.1.1.2  christos 				    fixups[0].exp.X_add_number,
   3151  1.1.1.2  christos 				    (char *) (uintptr_t) fixups[0].opindex);
   3152  1.1.1.2  christos 		      md_number_to_chars (f, insn, insn_size);
   3153  1.1.1.2  christos 		      md_number_to_chars (f + 2, 0, 6);
   3154  1.1.1.2  christos 		    }
   3155  1.1.1.2  christos 		}
   3156  1.1.1.2  christos 	      else
   3157  1.1.1.2  christos 		{
   3158  1.1.1.2  christos 		  if (strcmp (opcode->name, "bsa") == 0)
   3159  1.1.1.2  christos 		    {
   3160  1.1.1.9  christos 		      f = frag_var (rs_machine_dependent, 10, 8, SUBYPTE_SA_9_22_32,
   3161  1.1.1.2  christos 				    fixups[0].exp.X_add_symbol,
   3162  1.1.1.2  christos 				    fixups[0].exp.X_add_number,
   3163  1.1.1.2  christos 				    (char *) (uintptr_t) fixups[0].opindex);
   3164  1.1.1.2  christos 		      md_number_to_chars (f, insn, insn_size);
   3165  1.1.1.2  christos 		      md_number_to_chars (f + 2, 0, 8);
   3166  1.1.1.2  christos 		    }
   3167  1.1.1.2  christos 		  else
   3168  1.1.1.2  christos 		    {
   3169  1.1.1.9  christos 		      f = frag_var (rs_machine_dependent, 8, 6, SUBYPTE_COND_9_22_32,
   3170  1.1.1.2  christos 				    fixups[0].exp.X_add_symbol,
   3171  1.1.1.2  christos 				    fixups[0].exp.X_add_number,
   3172  1.1.1.2  christos 				    (char *) (uintptr_t) fixups[0].opindex);
   3173  1.1.1.2  christos 		      md_number_to_chars (f, insn, insn_size);
   3174  1.1.1.2  christos 		      md_number_to_chars (f + 2, 0, 6);
   3175      1.1     skrll 		    }
   3176      1.1     skrll 		}
   3177      1.1     skrll 	    }
   3178      1.1     skrll 	}
   3179      1.1     skrll     }
   3180      1.1     skrll   else
   3181      1.1     skrll     {
   3182      1.1     skrll       /* Four byte insns have an opcode with the two high bits on.  */
   3183      1.1     skrll       if ((insn & 0x0600) == 0x0600)
   3184      1.1     skrll 	insn_size = 4;
   3185      1.1     skrll       else
   3186      1.1     skrll 	insn_size = 2;
   3187      1.1     skrll 
   3188      1.1     skrll       /* Special case: 32 bit MOV.  */
   3189  1.1.1.2  christos       if ((insn & 0xffe0) == 0x0620)
   3190  1.1.1.2  christos 	insn_size = 2;
   3191  1.1.1.2  christos 
   3192  1.1.1.2  christos       /* Special case: 32 bit JARL,JMP,JR.  */
   3193  1.1.1.2  christos       if ((insn & 0x1ffe0) == 0x2e0	/* JARL.  */
   3194  1.1.1.2  christos 	  || (insn & 0x1ffe0) == 0x6e0	/* JMP.  */
   3195  1.1.1.3  christos 	  || (insn & 0x1ffff) == 0x2e0)	/* JR.  */
   3196  1.1.1.3  christos 	insn_size = 2;
   3197  1.1.1.3  christos 
   3198  1.1.1.3  christos       if (obstack_room (& frchain_now->frch_obstack) < (insn_size + extra_data_len))
   3199  1.1.1.3  christos 	{
   3200  1.1.1.3  christos           frag_wane (frag_now);
   3201      1.1     skrll           frag_new (0);
   3202      1.1     skrll 	}
   3203      1.1     skrll 
   3204      1.1     skrll       f = frag_more (insn_size);
   3205      1.1     skrll       md_number_to_chars (f, insn, insn_size);
   3206      1.1     skrll 
   3207      1.1     skrll       if (extra_data_after_insn)
   3208      1.1     skrll 	{
   3209  1.1.1.7  christos 	  f = frag_more (extra_data_len);
   3210      1.1     skrll 	  md_number_to_chars (f, extra_data, extra_data_len);
   3211      1.1     skrll 
   3212      1.1     skrll 	  extra_data_after_insn = false;
   3213      1.1     skrll 	}
   3214      1.1     skrll     }
   3215      1.1     skrll 
   3216      1.1     skrll   /* Create any fixups.  At this point we do not use a
   3217      1.1     skrll      bfd_reloc_code_real_type, but instead just use the
   3218      1.1     skrll      BFD_RELOC_UNUSED plus the operand index.  This lets us easily
   3219      1.1     skrll      handle fixups for any operand type, although that is admittedly
   3220      1.1     skrll      not a very exciting feature.  We pick a BFD reloc type in
   3221      1.1     skrll      md_apply_fix.  */
   3222      1.1     skrll   for (i = 0; i < fc; i++)
   3223      1.1     skrll     {
   3224      1.1     skrll       const struct v850_operand *operand;
   3225      1.1     skrll       bfd_reloc_code_real_type reloc;
   3226      1.1     skrll 
   3227      1.1     skrll       operand = &v850_operands[fixups[i].opindex];
   3228  1.1.1.3  christos 
   3229      1.1     skrll       reloc = fixups[i].reloc;
   3230      1.1     skrll 
   3231      1.1     skrll       if (reloc != BFD_RELOC_NONE)
   3232      1.1     skrll 	{
   3233      1.1     skrll 	  reloc_howto_type *reloc_howto =
   3234      1.1     skrll 	    bfd_reloc_type_lookup (stdoutput, reloc);
   3235      1.1     skrll 	  int size;
   3236      1.1     skrll 	  int address;
   3237      1.1     skrll 	  fixS *fixP;
   3238      1.1     skrll 
   3239      1.1     skrll 	  if (!reloc_howto)
   3240      1.1     skrll 	    abort ();
   3241      1.1     skrll 
   3242      1.1     skrll 	  size = bfd_get_reloc_size (reloc_howto);
   3243      1.1     skrll 
   3244      1.1     skrll 	  /* XXX This will abort on an R_V850_8 reloc -
   3245      1.1     skrll 	     is this reloc actually used?  */
   3246  1.1.1.2  christos 	  if (size != 2 && size != 4)
   3247  1.1.1.2  christos 	    abort ();
   3248  1.1.1.2  christos 
   3249  1.1.1.2  christos 	  if (extra_data_len == 0)
   3250  1.1.1.2  christos 	    {
   3251  1.1.1.2  christos 	      address = (f - frag_now->fr_literal) + insn_size - size;
   3252  1.1.1.2  christos 	    }
   3253  1.1.1.2  christos 	  else
   3254      1.1     skrll 	    {
   3255  1.1.1.2  christos 	      address = (f - frag_now->fr_literal) + extra_data_len - size;
   3256  1.1.1.2  christos 	    }
   3257  1.1.1.2  christos 
   3258  1.1.1.2  christos 	  if ((operand->flags & V850E_IMMEDIATE32) && (operand->flags & V850_PCREL))
   3259  1.1.1.2  christos 	    {
   3260  1.1.1.2  christos 	      fixups[i].exp.X_add_number += 2;
   3261  1.1.1.2  christos 	    }
   3262  1.1.1.2  christos 	  else if (operand->default_reloc ==  BFD_RELOC_V850_16_PCREL)
   3263  1.1.1.2  christos 	    {
   3264      1.1     skrll 	      fixups[i].exp.X_add_number += 2;
   3265  1.1.1.2  christos 	      address += 2;
   3266      1.1     skrll 	    }
   3267      1.1     skrll 
   3268      1.1     skrll 	  /* fprintf (stderr, "0x%x %d %ld\n", address, size, fixups[i].exp.X_add_number);  */
   3269      1.1     skrll 	  fixP = fix_new_exp (frag_now, address, size,
   3270      1.1     skrll 			      &fixups[i].exp,
   3271      1.1     skrll 			      reloc_howto->pc_relative,
   3272      1.1     skrll 			      reloc);
   3273      1.1     skrll 
   3274      1.1     skrll 	  fixP->tc_fix_data = (void *) operand;
   3275      1.1     skrll 
   3276  1.1.1.2  christos 	  switch (reloc)
   3277      1.1     skrll 	    {
   3278      1.1     skrll 	    case BFD_RELOC_LO16:
   3279      1.1     skrll 	    case BFD_RELOC_V850_LO16_S1:
   3280      1.1     skrll 	    case BFD_RELOC_V850_LO16_SPLIT_OFFSET:
   3281      1.1     skrll 	    case BFD_RELOC_HI16:
   3282      1.1     skrll 	    case BFD_RELOC_HI16_S:
   3283      1.1     skrll 	      fixP->fx_no_overflow = 1;
   3284      1.1     skrll 	      break;
   3285      1.1     skrll 	    default:
   3286      1.1     skrll 	      break;
   3287      1.1     skrll 	    }
   3288  1.1.1.3  christos 	}
   3289      1.1     skrll       else
   3290      1.1     skrll 	{
   3291      1.1     skrll 	  gas_assert (f != NULL);
   3292  1.1.1.2  christos 	  fix_new_exp (frag_now,
   3293  1.1.1.9  christos 		       f - frag_now->fr_literal, 4,
   3294      1.1     skrll 		       & fixups[i].exp,
   3295      1.1     skrll 		       (operand->flags & V850_PCREL) != 0,
   3296      1.1     skrll 		       fixups[i].opindex + BFD_RELOC_UNUSED);
   3297      1.1     skrll 	}
   3298      1.1     skrll     }
   3299      1.1     skrll 
   3300      1.1     skrll   input_line_pointer = saved_input_line_pointer;
   3301      1.1     skrll }
   3302      1.1     skrll 
   3303      1.1     skrll /* If while processing a fixup, a reloc really needs to be created
   3304      1.1     skrll    then it is done here.  */
   3305      1.1     skrll 
   3306      1.1     skrll arelent *
   3307      1.1     skrll tc_gen_reloc (asection *seg ATTRIBUTE_UNUSED, fixS *fixp)
   3308  1.1.1.9  christos {
   3309  1.1.1.9  christos   arelent *reloc;
   3310      1.1     skrll 
   3311  1.1.1.9  christos   reloc = notes_alloc (sizeof (arelent));
   3312      1.1     skrll   reloc->sym_ptr_ptr = notes_alloc (sizeof (asymbol *));
   3313      1.1     skrll   *reloc->sym_ptr_ptr = symbol_get_bfdsym (fixp->fx_addsy);
   3314      1.1     skrll   reloc->address = fixp->fx_frag->fr_address + fixp->fx_where;
   3315      1.1     skrll 
   3316      1.1     skrll   if (   fixp->fx_r_type == BFD_RELOC_VTABLE_ENTRY
   3317      1.1     skrll       || fixp->fx_r_type == BFD_RELOC_VTABLE_INHERIT
   3318      1.1     skrll       || fixp->fx_r_type == BFD_RELOC_V850_LONGCALL
   3319      1.1     skrll       || fixp->fx_r_type == BFD_RELOC_V850_LONGJUMP
   3320      1.1     skrll       || fixp->fx_r_type == BFD_RELOC_V850_ALIGN)
   3321  1.1.1.2  christos     reloc->addend = fixp->fx_offset;
   3322      1.1     skrll   else
   3323      1.1     skrll     {
   3324      1.1     skrll #if 0
   3325  1.1.1.2  christos       if (fixp->fx_r_type == BFD_RELOC_32
   3326      1.1     skrll 	  && fixp->fx_pcrel)
   3327      1.1     skrll 	fixp->fx_r_type = BFD_RELOC_32_PCREL;
   3328      1.1     skrll #endif
   3329      1.1     skrll 
   3330      1.1     skrll       reloc->addend = fixp->fx_addnumber;
   3331      1.1     skrll     }
   3332      1.1     skrll 
   3333      1.1     skrll   reloc->howto = bfd_reloc_type_lookup (stdoutput, fixp->fx_r_type);
   3334      1.1     skrll 
   3335      1.1     skrll   if (reloc->howto == NULL)
   3336      1.1     skrll     {
   3337      1.1     skrll       as_bad_where (fixp->fx_file, fixp->fx_line,
   3338      1.1     skrll 		    /* xgettext:c-format  */
   3339      1.1     skrll 		    _("reloc %d not supported by object file format"),
   3340      1.1     skrll 		    (int) fixp->fx_r_type);
   3341      1.1     skrll       return NULL;
   3342      1.1     skrll     }
   3343      1.1     skrll 
   3344      1.1     skrll   return reloc;
   3345      1.1     skrll }
   3346      1.1     skrll 
   3347      1.1     skrll void
   3348      1.1     skrll v850_handle_align (fragS * frag)
   3349      1.1     skrll {
   3350      1.1     skrll   if (v850_relax
   3351      1.1     skrll       && frag->fr_type == rs_align
   3352      1.1     skrll       && frag->fr_address + frag->fr_fix > 0
   3353      1.1     skrll       && frag->fr_offset > 1
   3354      1.1     skrll       && now_seg != bss_section
   3355      1.1     skrll       && now_seg != v850_seg_table[SBSS_SECTION].s
   3356      1.1     skrll       && now_seg != v850_seg_table[TBSS_SECTION].s
   3357      1.1     skrll       && now_seg != v850_seg_table[ZBSS_SECTION].s)
   3358      1.1     skrll     fix_new (frag, frag->fr_fix, 2, & abs_symbol, frag->fr_offset, 0,
   3359      1.1     skrll 	     BFD_RELOC_V850_ALIGN);
   3360      1.1     skrll }
   3361      1.1     skrll 
   3362      1.1     skrll /* Return current size of variable part of frag.  */
   3363      1.1     skrll 
   3364      1.1     skrll int
   3365      1.1     skrll md_estimate_size_before_relax (fragS *fragp, asection *seg ATTRIBUTE_UNUSED)
   3366      1.1     skrll {
   3367      1.1     skrll   if (fragp->fr_subtype >= sizeof (md_relax_table) / sizeof (md_relax_table[0]))
   3368      1.1     skrll     abort ();
   3369      1.1     skrll 
   3370      1.1     skrll   return md_relax_table[fragp->fr_subtype].rlx_length;
   3371      1.1     skrll }
   3372      1.1     skrll 
   3373      1.1     skrll long
   3374      1.1     skrll v850_pcrel_from_section (fixS *fixp, segT section)
   3375      1.1     skrll {
   3376  1.1.1.9  christos   /* If the symbol is undefined, or in a section other than our own,
   3377      1.1     skrll      or it is weak (in which case it may well be in another section,
   3378      1.1     skrll      then let the linker figure it out.  */
   3379      1.1     skrll   if (fixp->fx_addsy != NULL
   3380      1.1     skrll       && (! S_IS_DEFINED (fixp->fx_addsy)
   3381      1.1     skrll 	  || S_IS_WEAK (fixp->fx_addsy)
   3382      1.1     skrll 	  || (S_GET_SEGMENT (fixp->fx_addsy) != section)))
   3383      1.1     skrll     return 0;
   3384      1.1     skrll 
   3385      1.1     skrll   return fixp->fx_frag->fr_address + fixp->fx_where;
   3386      1.1     skrll }
   3387      1.1     skrll 
   3388      1.1     skrll void
   3389      1.1     skrll md_apply_fix (fixS *fixP, valueT *valueP, segT seg ATTRIBUTE_UNUSED)
   3390      1.1     skrll {
   3391      1.1     skrll   valueT value = * valueP;
   3392      1.1     skrll   char *where;
   3393      1.1     skrll 
   3394      1.1     skrll   if (fixP->fx_r_type == BFD_RELOC_VTABLE_INHERIT
   3395      1.1     skrll       || fixP->fx_r_type == BFD_RELOC_V850_LONGCALL
   3396      1.1     skrll       || fixP->fx_r_type == BFD_RELOC_V850_LONGJUMP
   3397      1.1     skrll       || fixP->fx_r_type == BFD_RELOC_VTABLE_ENTRY)
   3398      1.1     skrll     {
   3399      1.1     skrll       fixP->fx_done = 0;
   3400  1.1.1.9  christos       return;
   3401      1.1     skrll     }
   3402      1.1     skrll 
   3403      1.1     skrll   if (fixP->fx_addsy == NULL)
   3404      1.1     skrll     fixP->fx_addnumber = value,
   3405      1.1     skrll     fixP->fx_done = 1;
   3406      1.1     skrll 
   3407      1.1     skrll   else if (fixP->fx_pcrel)
   3408      1.1     skrll     fixP->fx_addnumber = fixP->fx_offset;
   3409      1.1     skrll 
   3410  1.1.1.9  christos   else
   3411      1.1     skrll     {
   3412      1.1     skrll       value = fixP->fx_offset;
   3413      1.1     skrll       if (fixP->fx_subsy != NULL)
   3414      1.1     skrll 	{
   3415      1.1     skrll 	  if (S_GET_SEGMENT (fixP->fx_subsy) == absolute_section)
   3416  1.1.1.7  christos 	    value -= S_GET_VALUE (fixP->fx_subsy);
   3417      1.1     skrll 	  else
   3418      1.1     skrll 	    /* We don't actually support subtracting a symbol.  */
   3419      1.1     skrll 	    as_bad_subtract (fixP);
   3420      1.1     skrll 	}
   3421  1.1.1.9  christos       fixP->fx_addnumber = value;
   3422      1.1     skrll     }
   3423      1.1     skrll 
   3424      1.1     skrll   if (fixP->fx_r_type >= BFD_RELOC_UNUSED)
   3425      1.1     skrll     {
   3426  1.1.1.2  christos       int opindex;
   3427      1.1     skrll       const struct v850_operand *operand;
   3428  1.1.1.9  christos       unsigned long insn;
   3429      1.1     skrll       const char *errmsg = NULL;
   3430      1.1     skrll 
   3431      1.1     skrll       opindex = fixP->fx_r_type - BFD_RELOC_UNUSED;
   3432      1.1     skrll       operand = &v850_operands[opindex];
   3433      1.1     skrll 
   3434      1.1     skrll       /* Fetch the instruction, insert the fully resolved operand
   3435      1.1     skrll 	 value, and stuff the instruction back again.
   3436      1.1     skrll 
   3437      1.1     skrll 	 Note the instruction has been stored in little endian
   3438  1.1.1.2  christos 	 format!  */
   3439  1.1.1.9  christos       where = fixP->fx_frag->fr_literal + fixP->fx_where;
   3440  1.1.1.2  christos 
   3441  1.1.1.9  christos       if (fixP->fx_size > 2)
   3442  1.1.1.2  christos 	insn = bfd_getl32 (where);
   3443  1.1.1.5  christos       else
   3444  1.1.1.3  christos 	insn = bfd_getl16 (where);
   3445  1.1.1.3  christos 
   3446  1.1.1.3  christos       /* When inserting loop offsets a backwards displacement
   3447  1.1.1.3  christos 	 is encoded as a positive value.  */
   3448      1.1     skrll       if (operand->flags & V850_INVERSE_PCREL)
   3449  1.1.1.2  christos 	value = - value;
   3450  1.1.1.2  christos 
   3451  1.1.1.2  christos       insn = v850_insert_operand (insn, operand, (offsetT) value,
   3452  1.1.1.2  christos 				  &errmsg);
   3453  1.1.1.2  christos       if (errmsg)
   3454  1.1.1.9  christos 	as_warn_where (fixP->fx_file, fixP->fx_line, "%s", errmsg);
   3455  1.1.1.2  christos 
   3456  1.1.1.9  christos       if (fixP->fx_size > 2)
   3457      1.1     skrll 	bfd_putl32 (insn, where);
   3458      1.1     skrll       else
   3459      1.1     skrll 	bfd_putl16 (insn, where);
   3460      1.1     skrll 
   3461      1.1     skrll       if (fixP->fx_done)
   3462      1.1     skrll 	/* Nothing else to do here.  */
   3463      1.1     skrll 	return;
   3464      1.1     skrll 
   3465  1.1.1.2  christos       /* Determine a BFD reloc value based on the operand information.
   3466      1.1     skrll 	 We are only prepared to turn a few of the operands into relocs.  */
   3467      1.1     skrll 
   3468      1.1     skrll       if (operand->default_reloc == BFD_RELOC_NONE)
   3469      1.1     skrll 	{
   3470      1.1     skrll 	  as_bad_where (fixP->fx_file, fixP->fx_line,
   3471      1.1     skrll 			_("unresolved expression that must be resolved"));
   3472  1.1.1.2  christos 	  fixP->fx_done = 1;
   3473  1.1.1.2  christos 	  return;
   3474  1.1.1.2  christos 	}
   3475  1.1.1.2  christos 
   3476  1.1.1.2  christos       {
   3477  1.1.1.2  christos 	fixP->fx_r_type = operand->default_reloc;
   3478  1.1.1.2  christos 	if (operand->default_reloc ==  BFD_RELOC_V850_16_PCREL)
   3479  1.1.1.2  christos 	  {
   3480  1.1.1.2  christos 	    fixP->fx_where += 2;
   3481  1.1.1.2  christos 	    fixP->fx_size = 2;
   3482      1.1     skrll 	    fixP->fx_addnumber += 2;
   3483      1.1     skrll 	  }
   3484      1.1     skrll       }
   3485      1.1     skrll     }
   3486      1.1     skrll   else if (fixP->fx_done)
   3487      1.1     skrll     {
   3488      1.1     skrll       /* We still have to insert the value into memory!  */
   3489  1.1.1.2  christos       where = fixP->fx_frag->fr_literal + fixP->fx_where;
   3490  1.1.1.2  christos 
   3491  1.1.1.2  christos       if (fixP->tc_fix_data != NULL
   3492  1.1.1.9  christos           && ((struct v850_operand *) fixP->tc_fix_data)->insert != NULL)
   3493  1.1.1.2  christos         {
   3494  1.1.1.2  christos           const char * message = NULL;
   3495  1.1.1.2  christos           struct v850_operand * operand = fixP->tc_fix_data;
   3496  1.1.1.2  christos           unsigned long insn;
   3497  1.1.1.2  christos 
   3498  1.1.1.2  christos           /* The variable "where" currently points at the exact point inside
   3499  1.1.1.2  christos              the insn where we need to insert the value.  But we need to
   3500  1.1.1.2  christos              extract the entire insn so we probably need to move "where"
   3501  1.1.1.2  christos              back a few bytes.  */
   3502  1.1.1.2  christos 
   3503  1.1.1.2  christos           if (fixP->fx_size == 2)
   3504  1.1.1.2  christos             where -= 2;
   3505  1.1.1.9  christos           else if (fixP->fx_size == 1)
   3506  1.1.1.2  christos             where -= 3;
   3507  1.1.1.2  christos 
   3508  1.1.1.2  christos           insn = bfd_getl32 (where);
   3509  1.1.1.2  christos 
   3510  1.1.1.2  christos           /* Use the operand's insertion procedure, if present, in order to
   3511      1.1     skrll              make sure that the value is correctly stored in the insn.  */
   3512  1.1.1.9  christos           insn = operand->insert (insn, (offsetT) value, & message);
   3513  1.1.1.2  christos           /* Ignore message even if it is set.  */
   3514      1.1     skrll 
   3515  1.1.1.2  christos           bfd_putl32 (insn, where);
   3516  1.1.1.2  christos         }
   3517  1.1.1.2  christos       else
   3518  1.1.1.2  christos         {
   3519  1.1.1.2  christos 	  switch (fixP->fx_r_type)
   3520  1.1.1.9  christos 	    {
   3521  1.1.1.2  christos 	    case BFD_RELOC_V850_32_ABS:
   3522  1.1.1.2  christos 	    case BFD_RELOC_V850_32_PCREL:
   3523  1.1.1.2  christos 	      bfd_putl32 (value & 0xfffffffe, where);
   3524  1.1.1.9  christos 	      break;
   3525  1.1.1.2  christos 
   3526  1.1.1.2  christos 	    case BFD_RELOC_32:
   3527  1.1.1.2  christos 	      bfd_putl32 (value, where);
   3528  1.1.1.2  christos 	      break;
   3529  1.1.1.2  christos 
   3530  1.1.1.9  christos 	    case BFD_RELOC_V850_23:
   3531  1.1.1.2  christos 	      bfd_putl32 (((value & 0x7f) << 4) | ((value & 0x7fff80) << (16-7))
   3532  1.1.1.2  christos 			  | (bfd_getl32 (where) & ~((0x7f << 4) | (0xffff << 16))),
   3533  1.1.1.2  christos 			  where);
   3534  1.1.1.2  christos 	    break;
   3535  1.1.1.2  christos 
   3536  1.1.1.2  christos 	    case BFD_RELOC_16:
   3537  1.1.1.2  christos 	    case BFD_RELOC_HI16:
   3538  1.1.1.2  christos 	    case BFD_RELOC_HI16_S:
   3539  1.1.1.2  christos 	    case BFD_RELOC_LO16:
   3540  1.1.1.2  christos 	    case BFD_RELOC_V850_ZDA_16_16_OFFSET:
   3541  1.1.1.9  christos 	    case BFD_RELOC_V850_SDA_16_16_OFFSET:
   3542  1.1.1.2  christos 	    case BFD_RELOC_V850_TDA_16_16_OFFSET:
   3543  1.1.1.2  christos 	    case BFD_RELOC_V850_CALLT_16_16_OFFSET:
   3544  1.1.1.2  christos 	      bfd_putl16 (value & 0xffff, where);
   3545  1.1.1.2  christos 	      break;
   3546  1.1.1.2  christos 
   3547  1.1.1.2  christos 	    case BFD_RELOC_8:
   3548  1.1.1.2  christos 	      *where = value & 0xff;
   3549  1.1.1.2  christos 	      break;
   3550  1.1.1.2  christos 
   3551  1.1.1.2  christos 	    case BFD_RELOC_V850_9_PCREL:
   3552  1.1.1.2  christos 	      bfd_putl16 (((value & 0x1f0) << 7) | ((value & 0x0e) << 3)
   3553  1.1.1.2  christos 			  | (bfd_getl16 (where) & ~((0x1f0 << 7) | (0x0e << 3))), where);
   3554  1.1.1.2  christos 	      break;
   3555  1.1.1.2  christos 
   3556  1.1.1.2  christos 	    case BFD_RELOC_V850_17_PCREL:
   3557  1.1.1.2  christos 	      bfd_putl32 (((value & 0x10000) >> (16 - 4)) | ((value & 0xfffe) << 16)
   3558  1.1.1.2  christos 			  | (bfd_getl32 (where) & ~((0x10000 >> (16 - 4)) | (0xfffe << 16))), where);
   3559  1.1.1.3  christos 	      break;
   3560  1.1.1.9  christos 
   3561  1.1.1.2  christos 	    case BFD_RELOC_V850_16_PCREL:
   3562  1.1.1.2  christos 	      bfd_putl16 ((-value & 0xfffe) | (bfd_getl16 (where + 2) & 0x0001),
   3563  1.1.1.2  christos 			  where + 2);
   3564  1.1.1.2  christos 	      break;
   3565  1.1.1.2  christos 
   3566  1.1.1.2  christos 	    case BFD_RELOC_V850_22_PCREL:
   3567  1.1.1.2  christos 	      bfd_putl32 (((value & 0xfffe) << 16) | ((value & 0x3f0000) >> 16)
   3568  1.1.1.2  christos 			  | (bfd_getl32 (where) & ~((0xfffe << 16) | (0x3f0000 >> 16))), where);
   3569  1.1.1.2  christos 	      break;
   3570  1.1.1.2  christos 
   3571  1.1.1.2  christos 	    case BFD_RELOC_V850_16_S1:
   3572  1.1.1.9  christos 	    case BFD_RELOC_V850_LO16_S1:
   3573  1.1.1.2  christos 	    case BFD_RELOC_V850_ZDA_15_16_OFFSET:
   3574  1.1.1.2  christos 	    case BFD_RELOC_V850_SDA_15_16_OFFSET:
   3575  1.1.1.2  christos 	      bfd_putl16 (value & 0xfffe, where);
   3576  1.1.1.2  christos 	      break;
   3577  1.1.1.2  christos 
   3578  1.1.1.2  christos 	    case BFD_RELOC_V850_16_SPLIT_OFFSET:
   3579  1.1.1.2  christos 	    case BFD_RELOC_V850_LO16_SPLIT_OFFSET:
   3580  1.1.1.2  christos 	    case BFD_RELOC_V850_ZDA_16_16_SPLIT_OFFSET:
   3581  1.1.1.2  christos 	    case BFD_RELOC_V850_SDA_16_16_SPLIT_OFFSET:
   3582  1.1.1.2  christos 	      bfd_putl32 (((value << 16) & 0xfffe0000)
   3583  1.1.1.2  christos 			  | ((value << 5) & 0x20)
   3584  1.1.1.2  christos 			  | (bfd_getl32 (where) & ~0xfffe0020), where);
   3585  1.1.1.2  christos 	      break;
   3586  1.1.1.2  christos 
   3587  1.1.1.2  christos 	    case BFD_RELOC_V850_TDA_6_8_OFFSET:
   3588  1.1.1.2  christos 	      *where = (*where & ~0x7e) | ((value >> 1) & 0x7e);
   3589  1.1.1.2  christos 	      break;
   3590  1.1.1.2  christos 
   3591  1.1.1.2  christos 	    case BFD_RELOC_V850_TDA_7_8_OFFSET:
   3592  1.1.1.2  christos 	      *where = (*where & ~0x7f) | ((value >> 1) & 0x7f);
   3593  1.1.1.2  christos 	      break;
   3594  1.1.1.2  christos 
   3595  1.1.1.2  christos 	    case BFD_RELOC_V850_TDA_7_7_OFFSET:
   3596  1.1.1.2  christos 	      *where = (*where & ~0x7f) | (value & 0x7f);
   3597  1.1.1.2  christos 	      break;
   3598  1.1.1.2  christos 
   3599  1.1.1.2  christos 	    case BFD_RELOC_V850_TDA_4_5_OFFSET:
   3600  1.1.1.2  christos 	      *where = (*where & ~0xf) | ((value >> 1) & 0xf);
   3601  1.1.1.2  christos 	      break;
   3602  1.1.1.2  christos 
   3603  1.1.1.2  christos 	    case BFD_RELOC_V850_TDA_4_4_OFFSET:
   3604  1.1.1.2  christos 	      *where = (*where & ~0xf) | (value & 0xf);
   3605  1.1.1.2  christos 	      break;
   3606  1.1.1.2  christos 
   3607  1.1.1.2  christos 	    case BFD_RELOC_V850_CALLT_6_7_OFFSET:
   3608  1.1.1.2  christos 	      *where = (*where & ~0x3f) | (value & 0x3f);
   3609  1.1.1.2  christos 	      break;
   3610  1.1.1.2  christos 
   3611  1.1.1.2  christos 	    default:
   3612      1.1     skrll 	      abort ();
   3613      1.1     skrll 	    }
   3614  1.1.1.2  christos         }
   3615      1.1     skrll     }
   3616      1.1     skrll }
   3617      1.1     skrll 
   3618  1.1.1.3  christos /* Parse a cons expression.  We have to handle hi(), lo(), etc
   3619      1.1     skrll    on the v850.  */
   3620      1.1     skrll 
   3621  1.1.1.2  christos bfd_reloc_code_real_type
   3622  1.1.1.3  christos parse_cons_expression_v850 (expressionS *exp)
   3623  1.1.1.3  christos {
   3624      1.1     skrll   const char *errmsg;
   3625  1.1.1.3  christos   bfd_reloc_code_real_type r;
   3626      1.1     skrll 
   3627      1.1     skrll   /* See if there's a reloc prefix like hi() we have to handle.  */
   3628      1.1     skrll   r = v850_reloc_prefix (NULL, &errmsg);
   3629  1.1.1.3  christos 
   3630      1.1     skrll   /* Do normal expression parsing.  */
   3631      1.1     skrll   expression (exp);
   3632      1.1     skrll   return r;
   3633      1.1     skrll }
   3634      1.1     skrll 
   3635      1.1     skrll /* Create a fixup for a cons expression.  If parse_cons_expression_v850
   3636      1.1     skrll    found a reloc prefix, then we use that reloc, else we choose an
   3637      1.1     skrll    appropriate one based on the size of the expression.  */
   3638      1.1     skrll 
   3639      1.1     skrll void
   3640  1.1.1.3  christos cons_fix_new_v850 (fragS *frag,
   3641  1.1.1.3  christos 		   int where,
   3642      1.1     skrll 		   int size,
   3643  1.1.1.3  christos 		   expressionS *exp,
   3644      1.1     skrll 		   bfd_reloc_code_real_type r)
   3645      1.1     skrll {
   3646  1.1.1.3  christos   if (r == BFD_RELOC_NONE)
   3647      1.1     skrll     {
   3648  1.1.1.3  christos       if (size == 4)
   3649      1.1     skrll 	r = BFD_RELOC_32;
   3650  1.1.1.3  christos       if (size == 2)
   3651      1.1     skrll 	r = BFD_RELOC_16;
   3652      1.1     skrll       if (size == 1)
   3653      1.1     skrll 	r = BFD_RELOC_8;
   3654  1.1.1.3  christos     }
   3655      1.1     skrll 
   3656  1.1.1.3  christos   if (exp != NULL)
   3657      1.1     skrll     fix_new_exp (frag, where, size, exp, 0, r);
   3658      1.1     skrll   else
   3659  1.1.1.7  christos     fix_new (frag, where, size, NULL, 0, 0, r);
   3660      1.1     skrll }
   3661      1.1     skrll 
   3662      1.1     skrll bool
   3663      1.1     skrll v850_fix_adjustable (fixS *fixP)
   3664      1.1     skrll {
   3665      1.1     skrll   if (fixP->fx_addsy == NULL)
   3666      1.1     skrll     return 1;
   3667      1.1     skrll 
   3668      1.1     skrll   /* Don't adjust function names.  */
   3669      1.1     skrll   if (S_IS_FUNCTION (fixP->fx_addsy))
   3670      1.1     skrll     return 0;
   3671      1.1     skrll 
   3672      1.1     skrll   /* We need the symbol name for the VTABLE entries.  */
   3673      1.1     skrll   if (fixP->fx_r_type == BFD_RELOC_VTABLE_INHERIT
   3674      1.1     skrll       || fixP->fx_r_type == BFD_RELOC_VTABLE_ENTRY)
   3675      1.1     skrll     return 0;
   3676      1.1     skrll 
   3677      1.1     skrll   return 1;
   3678      1.1     skrll }
   3679      1.1     skrll 
   3680      1.1     skrll int
   3681      1.1     skrll v850_force_relocation (struct fix *fixP)
   3682      1.1     skrll {
   3683      1.1     skrll   if (fixP->fx_r_type == BFD_RELOC_V850_LONGCALL
   3684      1.1     skrll       || fixP->fx_r_type == BFD_RELOC_V850_LONGJUMP)
   3685      1.1     skrll     return 1;
   3686      1.1     skrll 
   3687      1.1     skrll   if (v850_relax
   3688  1.1.1.2  christos       && (fixP->fx_pcrel
   3689  1.1.1.2  christos 	  || fixP->fx_r_type == BFD_RELOC_V850_ALIGN
   3690  1.1.1.2  christos 	  || fixP->fx_r_type == BFD_RELOC_V850_9_PCREL
   3691  1.1.1.2  christos 	  || fixP->fx_r_type == BFD_RELOC_V850_16_PCREL
   3692      1.1     skrll 	  || fixP->fx_r_type == BFD_RELOC_V850_17_PCREL
   3693      1.1     skrll 	  || fixP->fx_r_type == BFD_RELOC_V850_22_PCREL
   3694      1.1     skrll 	  || fixP->fx_r_type == BFD_RELOC_V850_32_PCREL
   3695      1.1     skrll 	  || fixP->fx_r_type >= BFD_RELOC_UNUSED))
   3696      1.1     skrll     return 1;
   3697  1.1.1.3  christos 
   3698  1.1.1.3  christos   return generic_force_reloc (fixP);
   3699  1.1.1.3  christos }
   3700  1.1.1.8  christos 
   3701  1.1.1.3  christos /* Create a v850 note section.  */
   3702  1.1.1.3  christos void
   3703  1.1.1.3  christos v850_md_finish (void)
   3704  1.1.1.3  christos {
   3705  1.1.1.3  christos   segT note_sec;
   3706  1.1.1.3  christos   segT orig_seg = now_seg;
   3707  1.1.1.3  christos   subsegT orig_subseg = now_subseg;
   3708  1.1.1.6  christos   enum v850_notes id;
   3709  1.1.1.6  christos 
   3710  1.1.1.3  christos   note_sec = subseg_new (V850_NOTE_SECNAME, 0);
   3711  1.1.1.3  christos   bfd_set_section_flags (note_sec, SEC_HAS_CONTENTS | SEC_READONLY | SEC_MERGE);
   3712  1.1.1.3  christos   bfd_set_section_alignment (note_sec, 2);
   3713  1.1.1.3  christos 
   3714  1.1.1.3  christos   /* Provide default values for all of the notes.  */
   3715  1.1.1.3  christos   for (id = V850_NOTE_ALIGNMENT; id <= NUM_V850_NOTES; id++)
   3716  1.1.1.3  christos     {
   3717  1.1.1.3  christos       int val = 0;
   3718  1.1.1.3  christos       char * p;
   3719  1.1.1.3  christos 
   3720  1.1.1.3  christos       /* Follow the standard note section layout:
   3721  1.1.1.3  christos 	 First write the length of the name string.  */
   3722  1.1.1.3  christos       p = frag_more (4);
   3723  1.1.1.3  christos       md_number_to_chars (p, 4, 4);
   3724  1.1.1.3  christos 
   3725  1.1.1.3  christos       /* Next comes the length of the "descriptor", i.e., the actual data.  */
   3726  1.1.1.3  christos       p = frag_more (4);
   3727  1.1.1.3  christos       md_number_to_chars (p, 4, 4);
   3728  1.1.1.9  christos 
   3729  1.1.1.3  christos       /* Write the note type.  */
   3730  1.1.1.3  christos       p = frag_more (4);
   3731  1.1.1.3  christos       md_number_to_chars (p, id, 4);
   3732  1.1.1.3  christos 
   3733  1.1.1.3  christos       /* Write the name field.  */
   3734  1.1.1.3  christos       p = frag_more (4);
   3735  1.1.1.3  christos       memcpy (p, V850_NOTE_NAME, 4);
   3736  1.1.1.3  christos 
   3737  1.1.1.3  christos       /* Finally, write the descriptor.  */
   3738  1.1.1.3  christos       p = frag_more (4);
   3739  1.1.1.3  christos       switch (id)
   3740  1.1.1.3  christos 	{
   3741  1.1.1.3  christos 	case V850_NOTE_ALIGNMENT:
   3742  1.1.1.3  christos 	  val = v850_data_8 ? EF_RH850_DATA_ALIGN8 : EF_RH850_DATA_ALIGN4;
   3743  1.1.1.3  christos 	  break;
   3744  1.1.1.3  christos 
   3745  1.1.1.3  christos 	case V850_NOTE_DATA_SIZE:
   3746  1.1.1.3  christos 	  /* GCC does not currently support an option
   3747  1.1.1.3  christos 	     for 32-bit doubles with the V850 backend.  */
   3748  1.1.1.3  christos 	  val = EF_RH850_DOUBLE64;
   3749  1.1.1.3  christos 	  break;
   3750  1.1.1.3  christos 
   3751  1.1.1.3  christos 	case V850_NOTE_FPU_INFO:
   3752  1.1.1.3  christos 	  if (! soft_float)
   3753  1.1.1.3  christos 	    switch (machine)
   3754  1.1.1.3  christos 	      {
   3755  1.1.1.3  christos 	      case bfd_mach_v850e3v5: val = EF_RH850_FPU30; break;
   3756  1.1.1.3  christos 	      case bfd_mach_v850e2v3: val = EF_RH850_FPU20; break;
   3757  1.1.1.3  christos 	      default: break;
   3758  1.1.1.3  christos 	      }
   3759  1.1.1.3  christos 	  break;
   3760  1.1.1.3  christos 
   3761  1.1.1.3  christos 	default:
   3762  1.1.1.3  christos 	  break;
   3763  1.1.1.3  christos 	}
   3764  1.1.1.3  christos       md_number_to_chars (p, val, 4);
   3765  1.1.1.3  christos     }
   3766  1.1.1.3  christos 
   3767                      /* Paranoia - we probably do not need this.  */
   3768                      subseg_set (orig_seg, orig_subseg);
   3769                    }
   3770