Annotation of gcc/cp-tree.c, revision 1.1.1.1

1.1       root        1: /* Language-dependent node constructors for parse phase of GNU compiler.
                      2:    Copyright (C) 1987, 1988, 1992 Free Software Foundation, Inc.
                      3:    Hacked by Michael Tiemann ([email protected])
                      4: 
                      5: This file is part of GNU CC.
                      6: 
                      7: GNU CC is free software; you can redistribute it and/or modify
                      8: it under the terms of the GNU General Public License as published by
                      9: the Free Software Foundation; either version 2, or (at your option)
                     10: any later version.
                     11: 
                     12: GNU CC is distributed in the hope that it will be useful,
                     13: but WITHOUT ANY WARRANTY; without even the implied warranty of
                     14: MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
                     15: GNU General Public License for more details.
                     16: 
                     17: You should have received a copy of the GNU General Public License
                     18: along with GNU CC; see the file COPYING.  If not, write to
                     19: the Free Software Foundation, 675 Mass Ave, Cambridge, MA 02139, USA.  */
                     20: 
                     21: #include "config.h"
                     22: #include <stdio.h>
                     23: #include "obstack.h"
                     24: #include "tree.h"
                     25: #include "cp-tree.h"
                     26: #include "flags.h"
                     27: #include "assert.h"
                     28: 
                     29: #define CEIL(x,y) (((x) + (y) - 1) / (y))
                     30: 
                     31: /* Return nonzero if REF is an lvalue valid for this language.
                     32:    Lvalues can be assigned, unless they have TREE_READONLY.
                     33:    Lvalues can have their address taken, unless they have TREE_REGDECL.  */
                     34: 
                     35: int
                     36: lvalue_p (ref)
                     37:      tree ref;
                     38: {
                     39:   register enum tree_code code = TREE_CODE (ref);
                     40: 
                     41:   if (language_lvalue_valid (ref))
                     42:     switch (code)
                     43:       {
                     44:       case COMPONENT_REF:
                     45:        return lvalue_p (TREE_OPERAND (ref, 0));
                     46: 
                     47:       case STRING_CST:
                     48:        return 1;
                     49: 
                     50:       case VAR_DECL:
                     51:        if (TREE_READONLY (ref) && ! TREE_STATIC (ref)
                     52:            && DECL_LANG_SPECIFIC (ref)
                     53:            && DECL_IN_AGGR_P (ref))
                     54:          return 0;
                     55:       case INDIRECT_REF:
                     56:       case ARRAY_REF:
                     57:       case PARM_DECL:
                     58:       case RESULT_DECL:
                     59:       case ERROR_MARK:
                     60:        if (TREE_CODE (TREE_TYPE (ref)) != FUNCTION_TYPE
                     61:            && TREE_CODE (TREE_TYPE (ref)) != METHOD_TYPE)
                     62:          return 1;
                     63:        break;
                     64: 
                     65:       case TARGET_EXPR:
                     66:       case WITH_CLEANUP_EXPR:
                     67:        return 1;
                     68: 
                     69:       case CALL_EXPR:
                     70:        if (TREE_CODE (TREE_TYPE (ref)) == REFERENCE_TYPE
                     71:            /* unary_complex_lvalue knows how to deal with this case.  */
                     72:            || TREE_ADDRESSABLE (TREE_TYPE (ref)))
                     73:          return 1;
                     74:        break;
                     75: 
                     76:        /* A currently unresolved scope ref.  */
                     77:       case SCOPE_REF:
                     78:        abort ();
                     79:       case OFFSET_REF:
                     80:        if (TREE_CODE (TREE_OPERAND (ref, 1)) == FUNCTION_DECL)
                     81:          return 1;
                     82:        if (TREE_CODE (TREE_OPERAND (ref, 1)) == VAR_DECL)
                     83:          if (TREE_READONLY (ref) && ! TREE_STATIC (ref)
                     84:              && DECL_LANG_SPECIFIC (ref)
                     85:              && DECL_IN_AGGR_P (ref))
                     86:            return 0;
                     87:          else
                     88:            return 1;
                     89:        break;
                     90:       }
                     91:   return 0;
                     92: }
                     93: 
                     94: /* Return nonzero if REF is an lvalue valid for this language;
                     95:    otherwise, print an error message and return zero.  */
                     96: 
                     97: int
                     98: lvalue_or_else (ref, string)
                     99:      tree ref;
                    100:      char *string;
                    101: {
                    102:   int win = lvalue_p (ref);
                    103:   if (! win)
                    104:     error ("invalid lvalue in %s", string);
                    105:   return win;
                    106: }
                    107: 
                    108: /* INIT is a CALL_EXPR which needs info about its target.
                    109:    TYPE is the type that this initialization should appear to have.
                    110: 
                    111:    Build an encapsulation of the initialization to perform
                    112:    and return it so that it can be processed by language-independent
                    113:    and language-specific expression expanders.
                    114: 
                    115:    If WITH_CLEANUP_P is nonzero, we build a cleanup for this expression.
                    116:    Otherwise, cleanups are not built here.  For example, when building
                    117:    an initialization for a stack slot, since the called function handles
                    118:    the cleanup, we would not want to do it here.  */
                    119: tree
                    120: build_cplus_new (type, init, with_cleanup_p)
                    121:      tree type;
                    122:      tree init;
                    123:      int with_cleanup_p;
                    124: {
                    125:   tree slot = build (VAR_DECL, type);
                    126:   tree rval = build (NEW_EXPR, type,
                    127:                     TREE_OPERAND (init, 0), TREE_OPERAND (init, 1), slot);
                    128:   TREE_ADDRESSABLE (rval) = 1;
                    129:   rval = build (TARGET_EXPR, type, slot, rval, 0);
                    130:   TREE_SIDE_EFFECTS (rval) = 1;
                    131:   TREE_ADDRESSABLE (rval) = 1;
                    132: 
                    133:   if (with_cleanup_p && TYPE_NEEDS_DESTRUCTOR (type))
                    134:     rval = build (WITH_CLEANUP_EXPR, type, rval, 0,
                    135:                  build_delete (TYPE_POINTER_TO (type),
                    136:                                build_unary_op (ADDR_EXPR, slot, 0),
                    137:                                integer_two_node,
                    138:                                LOOKUP_NORMAL|LOOKUP_DESTRUCTOR, 0, 0));
                    139:   TREE_SIDE_EFFECTS (rval) = 1;
                    140:   return rval;
                    141: }
                    142: 
                    143: tree
                    144: break_out_cleanups (exp)
                    145:      tree exp;
                    146: {
                    147:   tree tmp = exp;
                    148: 
                    149:   if (TREE_CODE (tmp) == CALL_EXPR
                    150:       && TYPE_NEEDS_DESTRUCTOR (TREE_TYPE (tmp)))
                    151:     return build_cplus_new (TREE_TYPE (tmp), tmp, 1);
                    152: 
                    153:   while (TREE_CODE (tmp) == NOP_EXPR
                    154:         || TREE_CODE (tmp) == CONVERT_EXPR
                    155:         || TREE_CODE (tmp) == NON_LVALUE_EXPR)
                    156:     {
                    157:       if (TREE_CODE (TREE_OPERAND (tmp, 0)) == CALL_EXPR
                    158:          && TYPE_NEEDS_DESTRUCTOR (TREE_TYPE (TREE_OPERAND (tmp, 0))))
                    159:        {
                    160:          TREE_OPERAND (tmp, 0)
                    161:            = build_cplus_new (TREE_TYPE (TREE_OPERAND (tmp, 0)),
                    162:                               TREE_OPERAND (tmp, 0), 1);
                    163:          break;
                    164:        }
                    165:       else
                    166:        tmp = TREE_OPERAND (tmp, 0);
                    167:     }
                    168:   return exp;
                    169: }
                    170: 
                    171: extern struct obstack *current_obstack;
                    172: extern struct obstack permanent_obstack, class_obstack;
                    173: extern struct obstack *saveable_obstack;
                    174: 
                    175: /* Here is how primitive or already-canonicalized types' hash
                    176:    codes are made.  MUST BE CONSISTENT WITH tree.c !!! */
                    177: #define TYPE_HASH(TYPE) ((int) (TYPE) & 0777777)
                    178: 
                    179: /* Construct, lay out and return the type of methods belonging to class
                    180:    BASETYPE and whose arguments and values are described by TYPE.
                    181:    If that type exists already, reuse it.
                    182:    TYPE must be a FUNCTION_TYPE node.  */
                    183: 
                    184: tree
                    185: build_cplus_method_type (basetype, rettype, argtypes)
                    186:      tree basetype, rettype, argtypes;
                    187: {
                    188:   register tree t;
                    189:   tree ptype = build_pointer_type (basetype);
                    190:   int hashcode;
                    191: 
                    192:   /* Make a node of the sort we want.  */
                    193:   t = make_node (METHOD_TYPE);
                    194: 
                    195:   TYPE_METHOD_BASETYPE (t) = TYPE_MAIN_VARIANT (basetype);
                    196:   TREE_TYPE (t) = rettype;
                    197:   ptype = build_type_variant (ptype, !flag_this_is_variable, 0);
                    198: 
                    199:   /* The actual arglist for this function includes a "hidden" argument
                    200:      which is "this".  Put it into the list of argument types.  */
                    201: 
                    202:   TYPE_ARG_TYPES (t) = tree_cons (NULL, ptype, argtypes);
                    203: 
                    204:   /* If we already have such a type, use the old one and free this one.
                    205:      Note that it also frees up the above cons cell if found.  */
                    206:   hashcode = TYPE_HASH (basetype) + TYPE_HASH (rettype) + type_hash_list (argtypes);
                    207:   t = type_hash_canon (hashcode, t);
                    208: 
                    209:   if (TYPE_SIZE (t) == 0)
                    210:     layout_type (t);
                    211: 
                    212:   return t;
                    213: }
                    214: 
                    215: tree
                    216: build_cplus_staticfn_type (basetype, rettype, argtypes)
                    217:      tree basetype, rettype, argtypes;
                    218: {
                    219:   register tree t;
                    220:   tree ptype = build_pointer_type (basetype);
                    221:   int hashcode;
                    222: 
                    223:   /* Make a node of the sort we want.  */
                    224:   t = make_node (FUNCTION_TYPE);
                    225: 
                    226:   TYPE_METHOD_BASETYPE (t) = TYPE_MAIN_VARIANT (basetype);
                    227:   TREE_TYPE (t) = rettype;
                    228: 
                    229:   /* The actual arglist for this function includes a "hidden" argument
                    230:      which is "this".  Put it into the list of argument types.  */
                    231: 
                    232:   TYPE_ARG_TYPES (t) = argtypes;
                    233: 
                    234:   /* If we already have such a type, use the old one and free this one.
                    235:      Note that it also frees up the above cons cell if found.  */
                    236:   hashcode = TYPE_HASH (basetype) + TYPE_HASH (rettype) + type_hash_list (argtypes);
                    237:   t = type_hash_canon (hashcode, t);
                    238: 
                    239:   if (TYPE_SIZE (t) == 0)
                    240:     layout_type (t);
                    241: 
                    242:   return t;
                    243: }
                    244: 
                    245: tree
                    246: build_cplus_array_type (elt_type, index_type)
                    247:      tree elt_type;
                    248:      tree index_type;
                    249: {
                    250:   register struct obstack *ambient_obstack = current_obstack;
                    251:   register struct obstack *ambient_saveable_obstack = saveable_obstack;
                    252:   tree t;
                    253: 
                    254:   /* We need a new one.  If both ELT_TYPE and INDEX_TYPE are permanent,
                    255:      make this permanent too.  */
                    256:   if (TREE_PERMANENT (elt_type)
                    257:       && (index_type == 0 || TREE_PERMANENT (index_type)))
                    258:     {
                    259:       current_obstack = &permanent_obstack;
                    260:       saveable_obstack = &permanent_obstack;
                    261:     }
                    262: 
                    263:   t = build_array_type (elt_type, index_type);
                    264: 
                    265:   /* Push these needs up so that initialization takes place
                    266:      more easily.  */
                    267:   TYPE_NEEDS_CONSTRUCTING (t) = TYPE_NEEDS_CONSTRUCTING (TYPE_MAIN_VARIANT (elt_type));
                    268:   TYPE_NEEDS_DESTRUCTOR (t) = TYPE_NEEDS_DESTRUCTOR (TYPE_MAIN_VARIANT (elt_type));
                    269:   current_obstack = ambient_obstack;
                    270:   saveable_obstack = ambient_saveable_obstack;
                    271:   return t;
                    272: }
                    273: 
                    274: /* This is temporary until later.  */
                    275: /* Construct, lay out and return the type of objects which are of type TYPE
                    276:    as members of type BASETYPE.  If that type exists already, reuse it.  */
                    277: tree
                    278: build_member_type (basetype, type)
                    279:      tree basetype, type;
                    280: {
                    281:   register tree t;
                    282:   int hashcode;
                    283: 
                    284:   assert (TREE_CODE (type) != FUNCTION_TYPE);
                    285: 
                    286:   /* Make a node of the sort we want.  */
                    287:   t = make_node (OFFSET_TYPE);
                    288:   TYPE_OFFSET_BASETYPE (t) = basetype;
                    289:   TREE_TYPE (t) = type;
                    290:   hashcode = TYPE_HASH (basetype) + TYPE_HASH (type);
                    291:   t = type_hash_canon (hashcode, t);
                    292: 
                    293:   return t;
                    294: }
                    295: 
                    296: /* Add OFFSET to all child types of T.
                    297: 
                    298:    OFFSET, which is a type offset, is number of bytes.
                    299: 
                    300:    Note that we don't have to worry about having two paths to the
                    301:    same base type, since this type owns its association list.  */
                    302: void
                    303: propagate_binfo_offsets (binfo, offset)
                    304:      tree binfo;
                    305:      tree offset;
                    306: {
                    307:   tree t = BINFO_TYPE (binfo);
                    308:   tree binfos = BINFO_BASETYPES (binfo);
                    309:   int i, n_baselinks = binfos ? TREE_VEC_LENGTH (binfos) : 0;
                    310: 
                    311:   for (i = 0; i < n_baselinks; /* note increment is done in the loop.  */)
                    312:     {
                    313:       tree child = TREE_VEC_ELT (binfos, i);
                    314: 
                    315:       if (TREE_VIA_VIRTUAL (child))
                    316:        i += 1;
                    317:       else
                    318:        {
                    319:          int j;
                    320:          tree child_binfos = BINFO_BASETYPES (child);
                    321:          tree basetype = BINFO_TYPE (child);
                    322:          tree delta;
                    323: 
                    324:          for (j = i+1; j < n_baselinks; j++)
                    325:            if (! TREE_VIA_VIRTUAL (TREE_VEC_ELT (binfos, j)))
                    326:              {
                    327:                /* The next basetype offset must take into account the space
                    328:                   between the classes, not just the size of each class.  */
                    329:                delta = size_binop (MINUS_EXPR,
                    330:                                    BINFO_OFFSET (TREE_VEC_ELT (binfos, j)),
                    331:                                    BINFO_OFFSET (child));
                    332:                break;
                    333:              }
                    334: 
                    335: #if 0
                    336:          if (BINFO_OFFSET_ZEROP (child))
                    337:            BINFO_OFFSET (child) = offset;
                    338:          else
                    339:            BINFO_OFFSET (child)
                    340:              = size_binop (PLUS_EXPR, BINFO_OFFSET (child), offset);
                    341: #else
                    342:          BINFO_OFFSET (child) = offset;
                    343: #endif
                    344:          if (child_binfos)
                    345:            {
                    346:              int k;
                    347:              tree chain = NULL_TREE;
                    348: 
                    349:              /* Now unshare the structure beneath CHILD.  */
                    350:              for (k = TREE_VEC_LENGTH (child_binfos)-1;
                    351:                   k >= 0; k--)
                    352:                {
                    353:                  tree child_child = TREE_VEC_ELT (child_binfos, k);
                    354:                  if (! TREE_VIA_VIRTUAL (child_child))
                    355:                    TREE_VEC_ELT (child_binfos, k)
                    356:                      = make_binfo (BINFO_OFFSET (child_child),
                    357:                                    BINFO_TYPE (child_child),
                    358:                                    BINFO_VTABLE (child_child),
                    359:                                    BINFO_VIRTUALS (child_child),
                    360:                                    chain);
                    361:                  chain = TREE_VEC_ELT (child_binfos, k);
                    362:                  TREE_VIA_PUBLIC (chain) = TREE_VIA_PUBLIC (child_child);
                    363:                }
                    364:              /* Now propagate the offset to the children.  */
                    365:              propagate_binfo_offsets (child, offset);
                    366:            }
                    367: 
                    368:          /* Go to our next class that counts for offset propagation.  */
                    369:          i = j;
                    370:          if (i < n_baselinks)
                    371:            offset = size_binop (PLUS_EXPR, offset, delta);
                    372:        }
                    373:     }
                    374: }
                    375: 
                    376: /* Compute the actual offsets that our virtual base classes
                    377:    will have *for this type*.  This must be performed after
                    378:    the fields are laid out, since virtual baseclasses must
                    379:    lay down at the end of the record.
                    380: 
                    381:    Returns the maximum number of virtual functions any of the virtual
                    382:    baseclasses provide.  */
                    383: int
                    384: layout_vbasetypes (rec, max)
                    385:      tree rec;
                    386:      int max;
                    387: {
                    388:   /* Get all the virtual base types that this type uses.
                    389:      The TREE_VALUE slot holds the virtual baseclass type.  */
                    390:   tree vbase_types = get_vbase_types (rec);
                    391: 
                    392: #ifdef STRUCTURE_SIZE_BOUNDARY
                    393:   unsigned record_align = MAX (STRUCTURE_SIZE_BOUNDARY, TYPE_ALIGN (rec));
                    394: #else
                    395:   unsigned record_align = MAX (BITS_PER_UNIT, TYPE_ALIGN (rec));
                    396: #endif
                    397: 
                    398:   /* Record size so far is CONST_SIZE + VAR_SIZE bits,
                    399:      where CONST_SIZE is an integer
                    400:      and VAR_SIZE is a tree expression.
                    401:      If VAR_SIZE is null, the size is just CONST_SIZE.
                    402:      Naturally we try to avoid using VAR_SIZE.  */
                    403:   register unsigned const_size = 0;
                    404:   register tree var_size = 0;
                    405:   int nonvirtual_const_size;
                    406:   tree nonvirtual_var_size;
                    407: 
                    408:   CLASSTYPE_VBASECLASSES (rec) = vbase_types;
                    409: 
                    410:   if (TREE_CODE (TYPE_SIZE (rec)) == INTEGER_CST)
                    411:     const_size = TREE_INT_CST_LOW (TYPE_SIZE (rec));
                    412:   else
                    413:     var_size = TYPE_SIZE (rec);
                    414: 
                    415:   nonvirtual_const_size = const_size;
                    416:   nonvirtual_var_size = var_size;
                    417: 
                    418:   while (vbase_types)
                    419:     {
                    420:       tree basetype = BINFO_TYPE (vbase_types);
                    421:       tree offset;
                    422: 
                    423:       if (const_size == 0)
                    424:        offset = integer_zero_node;
                    425:       else
                    426:        offset = size_int ((const_size + BITS_PER_UNIT - 1) / BITS_PER_UNIT);
                    427: 
                    428:       if (CLASSTYPE_VSIZE (basetype) > max)
                    429:        max = CLASSTYPE_VSIZE (basetype);
                    430:       BINFO_OFFSET (vbase_types) = offset;
                    431: 
                    432:       if (TREE_CODE (TYPE_SIZE (basetype)) == INTEGER_CST)
                    433:        const_size += MAX (record_align,
                    434:                           TREE_INT_CST_LOW (TYPE_SIZE (basetype))
                    435:                           - TREE_INT_CST_LOW (CLASSTYPE_VBASE_SIZE (basetype)));
                    436:       else if (var_size == 0)
                    437:        var_size = TYPE_SIZE (basetype);
                    438:       else
                    439:        var_size = size_binop (PLUS_EXPR, var_size, TYPE_SIZE (basetype));
                    440: 
                    441:       vbase_types = TREE_CHAIN (vbase_types);
                    442:     }
                    443: 
                    444:   if (const_size != nonvirtual_const_size)
                    445:     {
                    446:       CLASSTYPE_VBASE_SIZE (rec)
                    447:        = size_int (const_size - nonvirtual_const_size);
                    448:       TYPE_SIZE (rec) = size_int (const_size);
                    449:     }
                    450: 
                    451:   /* Now propagate offset information throughout the lattice
                    452:      under the vbase type.  */
                    453:   for (vbase_types = CLASSTYPE_VBASECLASSES (rec); vbase_types;
                    454:        vbase_types = TREE_CHAIN (vbase_types))
                    455:     {
                    456:       tree child_binfos = BINFO_BASETYPES (vbase_types);
                    457: 
                    458:       if (child_binfos)
                    459:        {
                    460:          tree chain = NULL_TREE;
                    461:          int j;
                    462:          /* Now unshare the structure beneath CHILD.  */
                    463: 
                    464:          for (j = TREE_VEC_LENGTH (child_binfos)-1;
                    465:               j >= 0; j--)
                    466:            {
                    467:              tree child_child = TREE_VEC_ELT (child_binfos, j);
                    468:              if (! TREE_VIA_VIRTUAL (child_child))
                    469:                TREE_VEC_ELT (child_binfos, j)
                    470:                  = make_binfo (BINFO_OFFSET (child_child),
                    471:                                BINFO_TYPE (child_child),
                    472:                                BINFO_VTABLE (child_child),
                    473:                                BINFO_VIRTUALS (child_child),
                    474:                                chain);
                    475:              chain = TREE_VEC_ELT (child_binfos, j);
                    476:              TREE_VIA_PUBLIC (chain) = TREE_VIA_PUBLIC (child_child);
                    477:            }
                    478: 
                    479:          propagate_binfo_offsets (vbase_types, BINFO_OFFSET (vbase_types));
                    480:        }
                    481:     }
                    482: 
                    483:   return max;
                    484: }
                    485: 
                    486: /* Lay out the base types of a record type, REC.
                    487:    Tentatively set the size and alignment of REC
                    488:    according to the base types alone.
                    489: 
                    490:    Offsets for immediate nonvirtual baseclasses are also computed here.
                    491: 
                    492:    Returns list of virtual base classes in a FIELD_DECL chain.  */
                    493: tree
                    494: layout_basetypes (rec, binfos)
                    495:      tree rec, binfos;
                    496: {
                    497:   /* Chain to hold all the new FIELD_DECLs which point at virtual
                    498:      base classes.  */
                    499:   tree vbase_decls = NULL_TREE;
                    500: 
                    501: #ifdef STRUCTURE_SIZE_BOUNDARY
                    502:   int record_align = MAX (STRUCTURE_SIZE_BOUNDARY, TYPE_ALIGN (rec));
                    503: #else
                    504:   int record_align = MAX (BITS_PER_UNIT, TYPE_ALIGN (rec));
                    505: #endif
                    506: 
                    507:   /* Record size so far is CONST_SIZE + VAR_SIZE bits,
                    508:      where CONST_SIZE is an integer
                    509:      and VAR_SIZE is a tree expression.
                    510:      If VAR_SIZE is null, the size is just CONST_SIZE.
                    511:      Naturally we try to avoid using VAR_SIZE.  */
                    512:   register int const_size = 0;
                    513:   register tree var_size = 0;
                    514:   int i, n_baseclasses = binfos ? TREE_VEC_LENGTH (binfos) : 0;
                    515: 
                    516:   /* Handle basetypes almost like fields, but record their
                    517:      offsets differently.  */
                    518: 
                    519:   for (i = 0; i < n_baseclasses; i++)
                    520:     {
                    521:       int inc, desired_align, int_vbase_size;
                    522:       register tree child = TREE_VEC_ELT (binfos, i);
                    523:       register tree basetype = BINFO_TYPE (child);
                    524:       tree decl, offset;
                    525: 
                    526:       if (TYPE_SIZE (basetype) == 0)
                    527:        {
                    528:          error_with_aggr_type (child, "base class `%s' has incomplete type");
                    529:          TREE_VIA_PUBLIC (child) = 1;
                    530:          TREE_VIA_VIRTUAL (child) = 0;
                    531:          continue;
                    532:        }
                    533: 
                    534:       /* All basetypes are recorded in the association list of the
                    535:         derived type.  */
                    536: 
                    537:       if (TREE_VIA_VIRTUAL (child))
                    538:        {
                    539:          tree binfo;
                    540:          int j;
                    541:          char *name = (char *)alloca (TYPE_NAME_LENGTH (basetype)
                    542:                                       + sizeof (VBASE_NAME) + 1);
                    543: 
                    544:          /* The offset for a virtual base class is only used in computing
                    545:             virtual function tables and for initializing virtual base
                    546:             pointers.  It is built once `get_vbase_types' is called.  */
                    547: 
                    548:          /* If this basetype can come from another vbase pointer
                    549:             without an additional indirection, we will share
                    550:             that pointer.  If an indirection is involved, we
                    551:             make our own pointer.  */
                    552:          for (j = 0; j < n_baseclasses; j++)
                    553:            {
                    554:              tree other_child = TREE_VEC_ELT (binfos, j);
                    555:              if (! TREE_VIA_VIRTUAL (other_child)
                    556:                  && binfo_member (basetype,
                    557:                                   CLASSTYPE_VBASECLASSES (BINFO_TYPE (other_child))))
                    558:                goto got_it;
                    559:            }
                    560:          sprintf (name, VBASE_NAME_FORMAT, TYPE_NAME_STRING (basetype));
                    561:          decl = build_lang_decl (FIELD_DECL, get_identifier (name),
                    562:                                  build_pointer_type (basetype));
                    563:          DECL_ASSEMBLER_NAME (decl) = get_identifier ("$vb");
                    564:          DECL_VIRTUAL_P (decl) = 1;
                    565:          DECL_FIELD_CONTEXT (decl) = rec;
                    566:          DECL_CLASS_CONTEXT (decl) = rec;
                    567:          DECL_FCONTEXT (decl) = basetype;
                    568:          TREE_CHAIN (decl) = vbase_decls;
                    569:          vbase_decls = decl;
                    570: 
                    571:          if (TYPE_HAS_DESTRUCTOR (basetype)
                    572:              && DECL_VINDEX (TREE_VEC_ELT (CLASSTYPE_METHOD_VEC (basetype), 0)) == NULL_TREE)
                    573:            {
                    574:              warning_with_decl (TREE_VEC_ELT (CLASSTYPE_METHOD_VEC (basetype), 0),
                    575:                                 "destructor `%s' non-virtual");
                    576:              warning ("in inheritance relationship `%s: virtual %s'",
                    577:                       TYPE_NAME_STRING (rec),
                    578:                       TYPE_NAME_STRING (basetype));
                    579:            }
                    580:        got_it:
                    581:          /* The space this decl occupies has already been accounted for.  */
                    582:          continue;
                    583:        }
                    584: 
                    585:       if (const_size == 0)
                    586:        offset = integer_zero_node;
                    587:       else
                    588:        {
                    589:          /* Give each base type the alignment it wants.  */
                    590:          const_size = CEIL (const_size, TYPE_ALIGN (basetype))
                    591:            * TYPE_ALIGN (basetype);
                    592:          offset = size_int ((const_size + BITS_PER_UNIT - 1) / BITS_PER_UNIT);
                    593: 
                    594:          if (TYPE_HAS_DESTRUCTOR (basetype)
                    595:              && DECL_VINDEX (TREE_VEC_ELT (CLASSTYPE_METHOD_VEC (basetype), 0)) == NULL_TREE)
                    596:            {
                    597:              warning_with_decl (TREE_VEC_ELT (CLASSTYPE_METHOD_VEC (basetype), 0),
                    598:                                 "destructor `%s' non-virtual");
                    599:              warning ("in inheritance relationship `%s: virtual %s'",
                    600:                       TYPE_NAME_STRING (rec),
                    601:                       TYPE_NAME_STRING (basetype));
                    602:            }
                    603:        }
                    604:       BINFO_OFFSET (child) = offset;
                    605:       if (CLASSTYPE_VSIZE (basetype))
                    606:        {
                    607:          BINFO_VTABLE (child) = TYPE_BINFO_VTABLE (basetype);
                    608:          BINFO_VIRTUALS (child) = TYPE_BINFO_VIRTUALS (basetype);
                    609:        }
                    610:       TREE_CHAIN (child) = TYPE_BINFO (rec);
                    611:       TYPE_BINFO (rec) = child;
                    612: 
                    613:       /* Add only the amount of storage not present in
                    614:         the virtual baseclasses.  */
                    615: 
                    616:       int_vbase_size = TREE_INT_CST_LOW (CLASSTYPE_VBASE_SIZE (basetype));
                    617:       if (TREE_INT_CST_LOW (TYPE_SIZE (basetype)) > int_vbase_size)
                    618:        {
                    619:          inc = MAX (record_align,
                    620:                     (TREE_INT_CST_LOW (TYPE_SIZE (basetype))
                    621:                      - int_vbase_size));
                    622: 
                    623:          /* Record must have at least as much alignment as any field.  */
                    624:          desired_align = TYPE_ALIGN (basetype);
                    625:          record_align = MAX (record_align, desired_align);
                    626: 
                    627:          const_size += inc;
                    628:        }
                    629:     }
                    630: 
                    631:   if (const_size)
                    632:     CLASSTYPE_SIZE (rec) = size_int (const_size);
                    633:   else
                    634:     CLASSTYPE_SIZE (rec) = integer_zero_node;
                    635:   CLASSTYPE_ALIGN (rec) = record_align;
                    636: 
                    637:   return vbase_decls;
                    638: }
                    639: 
                    640: /* Hashing of lists so that we don't make duplicates.
                    641:    The entry point is `list_hash_canon'.  */
                    642: 
                    643: /* Each hash table slot is a bucket containing a chain
                    644:    of these structures.  */
                    645: 
                    646: struct list_hash
                    647: {
                    648:   struct list_hash *next;      /* Next structure in the bucket.  */
                    649:   int hashcode;                        /* Hash code of this list.  */
                    650:   tree list;                   /* The list recorded here.  */
                    651: };
                    652: 
                    653: /* Now here is the hash table.  When recording a list, it is added
                    654:    to the slot whose index is the hash code mod the table size.
                    655:    Note that the hash table is used for several kinds of lists.
                    656:    While all these live in the same table, they are completely independent,
                    657:    and the hash code is computed differently for each of these.  */
                    658: 
                    659: #define TYPE_HASH_SIZE 59
                    660: struct list_hash *list_hash_table[TYPE_HASH_SIZE];
                    661: 
                    662: /* Compute a hash code for a list (chain of TREE_LIST nodes
                    663:    with goodies in the TREE_PURPOSE, TREE_VALUE, and bits of the
                    664:    TREE_COMMON slots), by adding the hash codes of the individual entries.  */
                    665: 
                    666: int
                    667: list_hash (list)
                    668:      tree list;
                    669: {
                    670:   register int hashcode = 0;
                    671: 
                    672:   if (TREE_CHAIN (list))
                    673:     hashcode += TYPE_HASH (TREE_CHAIN (list));
                    674: 
                    675:   if (TREE_VALUE (list))
                    676:     hashcode += TYPE_HASH (TREE_VALUE (list));
                    677:   else
                    678:     hashcode += 1007;
                    679:   if (TREE_PURPOSE (list))
                    680:     hashcode += TYPE_HASH (TREE_PURPOSE (list));
                    681:   else
                    682:     hashcode += 1009;
                    683:   return hashcode;
                    684: }
                    685: 
                    686: /* Look in the type hash table for a type isomorphic to TYPE.
                    687:    If one is found, return it.  Otherwise return 0.  */
                    688: 
                    689: tree
                    690: list_hash_lookup (hashcode, list)
                    691:      int hashcode;
                    692:      tree list;
                    693: {
                    694:   register struct list_hash *h;
                    695:   for (h = list_hash_table[hashcode % TYPE_HASH_SIZE]; h; h = h->next)
                    696:     if (h->hashcode == hashcode
                    697:        && TREE_VIA_VIRTUAL (h->list) == TREE_VIA_VIRTUAL (list)
                    698:        && TREE_VIA_PUBLIC (h->list) == TREE_VIA_PUBLIC (list)
                    699:        && TREE_PURPOSE (h->list) == TREE_PURPOSE (list)
                    700:        && TREE_VALUE (h->list) == TREE_VALUE (list)
                    701:        && TREE_CHAIN (h->list) == TREE_CHAIN (list))
                    702:       {
                    703:        assert (TREE_TYPE (h->list) == TREE_TYPE (list));
                    704:        return h->list;
                    705:       }
                    706:   return 0;
                    707: }
                    708: 
                    709: /* Add an entry to the list-hash-table
                    710:    for a list TYPE whose hash code is HASHCODE.  */
                    711: 
                    712: void
                    713: list_hash_add (hashcode, list)
                    714:      int hashcode;
                    715:      tree list;
                    716: {
                    717:   register struct list_hash *h;
                    718: 
                    719:   h = (struct list_hash *) obstack_alloc (&class_obstack, sizeof (struct list_hash));
                    720:   h->hashcode = hashcode;
                    721:   h->list = list;
                    722:   h->next = list_hash_table[hashcode % TYPE_HASH_SIZE];
                    723:   list_hash_table[hashcode % TYPE_HASH_SIZE] = h;
                    724: }
                    725: 
                    726: /* Given TYPE, and HASHCODE its hash code, return the canonical
                    727:    object for an identical list if one already exists.
                    728:    Otherwise, return TYPE, and record it as the canonical object
                    729:    if it is a permanent object.
                    730: 
                    731:    To use this function, first create a list of the sort you want.
                    732:    Then compute its hash code from the fields of the list that
                    733:    make it different from other similar lists.
                    734:    Then call this function and use the value.
                    735:    This function frees the list you pass in if it is a duplicate.  */
                    736: 
                    737: /* Set to 1 to debug without canonicalization.  Never set by program.  */
                    738: int debug_no_list_hash = 0;
                    739: 
                    740: tree
                    741: list_hash_canon (hashcode, list)
                    742:      int hashcode;
                    743:      tree list;
                    744: {
                    745:   tree t1;
                    746: 
                    747:   if (debug_no_list_hash)
                    748:     return list;
                    749: 
                    750:   t1 = list_hash_lookup (hashcode, list);
                    751:   if (t1 != 0)
                    752:     {
                    753:       obstack_free (&class_obstack, list);
                    754:       return t1;
                    755:     }
                    756: 
                    757:   /* If this is a new list, record it for later reuse.  */
                    758:   list_hash_add (hashcode, list);
                    759: 
                    760:   return list;
                    761: }
                    762: 
                    763: tree
                    764: hash_tree_cons (via_public, via_virtual, purpose, value, chain)
                    765:      int via_public, via_virtual;
                    766:      tree purpose, value, chain;
                    767: {
                    768:   struct obstack *ambient_obstack = current_obstack;
                    769:   tree t;
                    770:   int hashcode;
                    771: 
                    772:   current_obstack = &class_obstack;
                    773:   t = tree_cons (purpose, value, chain);
                    774:   TREE_VIA_PUBLIC (t) = via_public;
                    775:   TREE_VIA_VIRTUAL (t) = via_virtual;
                    776:   hashcode = list_hash (t);
                    777:   t = list_hash_canon (hashcode, t);
                    778:   current_obstack = ambient_obstack;
                    779:   return t;
                    780: }
                    781: 
                    782: /* Constructor for hashed lists.  */
                    783: tree
                    784: hash_tree_chain (value, chain)
                    785:      tree value, chain;
                    786: {
                    787:   struct obstack *ambient_obstack = current_obstack;
                    788:   tree t;
                    789:   int hashcode;
                    790: 
                    791:   current_obstack = &class_obstack;
                    792:   t = tree_cons (NULL_TREE, value, chain);
                    793:   hashcode = list_hash (t);
                    794:   t = list_hash_canon (hashcode, t);
                    795:   current_obstack = ambient_obstack;
                    796:   return t;
                    797: }
                    798: 
                    799: /* Similar, but used for concatenating two lists.  */
                    800: tree
                    801: hash_chainon (list1, list2)
                    802:      tree list1, list2;
                    803: {
                    804:   if (list2 == 0)
                    805:     return list1;
                    806:   if (list1 == 0)
                    807:     return list2;
                    808:   if (TREE_CHAIN (list1) == NULL_TREE)
                    809:     return hash_tree_chain (TREE_VALUE (list1), list2);
                    810:   return hash_tree_chain (TREE_VALUE (list1),
                    811:                          hash_chainon (TREE_CHAIN (list1), list2));
                    812: }
                    813: 
                    814: tree
                    815: get_decl_list (value)
                    816:      tree value;
                    817: {
                    818:   tree list = NULL_TREE;
                    819: 
                    820:   if (TREE_CODE (value) == IDENTIFIER_NODE)
                    821:     {
                    822:       list = IDENTIFIER_AS_LIST (value);
                    823:       if (list != NULL_TREE
                    824:          && (TREE_CODE (list) != TREE_LIST
                    825:              || TREE_VALUE (list) != value))
                    826:        list = NULL_TREE;
                    827:       else if (IDENTIFIER_HAS_TYPE_VALUE (value)
                    828:               && TREE_CODE (IDENTIFIER_TYPE_VALUE (value)) == RECORD_TYPE)
                    829:        {
                    830:          tree type = IDENTIFIER_TYPE_VALUE (value);
                    831:          if (CLASSTYPE_ID_AS_LIST (type) == NULL_TREE)
                    832:            CLASSTYPE_ID_AS_LIST (type) = perm_tree_cons (NULL_TREE, value, NULL_TREE);
                    833:          list = CLASSTYPE_ID_AS_LIST (type);
                    834:        }
                    835:     }
                    836:   else if (TREE_CODE (value) == RECORD_TYPE
                    837:           && TYPE_LANG_SPECIFIC (value))
                    838:     list = CLASSTYPE_AS_LIST (value);
                    839: 
                    840:   if (list != NULL_TREE)
                    841:     {
                    842:       assert (TREE_CHAIN (list) == NULL_TREE);
                    843:       return list;
                    844:     }
                    845: 
                    846:   return build_decl_list (NULL_TREE, value);
                    847: }
                    848: 
                    849: /* Look in the type hash table for a type isomorphic to
                    850:    `build_tree_list (NULL_TREE, VALUE)'.
                    851:    If one is found, return it.  Otherwise return 0.  */
                    852: 
                    853: tree
                    854: list_hash_lookup_or_cons (value)
                    855:      tree value;
                    856: {
                    857:   register int hashcode = TYPE_HASH (value);
                    858:   register struct list_hash *h;
                    859:   struct obstack *ambient_obstack;
                    860:   tree list = NULL_TREE;
                    861: 
                    862:   if (TREE_CODE (value) == IDENTIFIER_NODE)
                    863:     {
                    864:       list = IDENTIFIER_AS_LIST (value);
                    865:       if (list != NULL_TREE
                    866:          && (TREE_CODE (list) != TREE_LIST
                    867:              || TREE_VALUE (list) != value))
                    868:        list = NULL_TREE;
                    869:       else if (IDENTIFIER_HAS_TYPE_VALUE (value)
                    870:               && TREE_CODE (IDENTIFIER_TYPE_VALUE (value)) == RECORD_TYPE)
                    871:        {
                    872:          /* If the type name and constructor name are different, don't
                    873:             write constructor name into type.  */
                    874:          extern tree constructor_name ();
                    875:          if (IDENTIFIER_TYPEDECL_VALUE (value)
                    876:              && IDENTIFIER_TYPEDECL_VALUE (value) != constructor_name (value))
                    877:            list = tree_cons (NULL_TREE, value, NULL_TREE);
                    878:          else
                    879:            {
                    880:              tree type = IDENTIFIER_TYPE_VALUE (value);
                    881:              if (CLASSTYPE_ID_AS_LIST (type) == NULL_TREE)
                    882:                CLASSTYPE_ID_AS_LIST (type) = perm_tree_cons (NULL_TREE, value,
                    883:                                                              NULL_TREE);
                    884:              list = CLASSTYPE_ID_AS_LIST (type);
                    885:            }
                    886:        }
                    887:     }
                    888:   else if (TREE_CODE (value) == TYPE_DECL
                    889:           && TREE_CODE (TREE_TYPE (value)) == RECORD_TYPE
                    890:           && TYPE_LANG_SPECIFIC (TREE_TYPE (value)))
                    891:     list = CLASSTYPE_ID_AS_LIST (TREE_TYPE (value));
                    892:   else if (TREE_CODE (value) == RECORD_TYPE
                    893:           && TYPE_LANG_SPECIFIC (value))
                    894:     list = CLASSTYPE_AS_LIST (value);
                    895: 
                    896:   if (list != NULL_TREE)
                    897:     {
                    898:       assert (TREE_CHAIN (list) == NULL_TREE);
                    899:       return list;
                    900:     }
                    901: 
                    902:   if (debug_no_list_hash)
                    903:     return hash_tree_chain (value, NULL_TREE);
                    904: 
                    905:   for (h = list_hash_table[hashcode % TYPE_HASH_SIZE]; h; h = h->next)
                    906:     if (h->hashcode == hashcode
                    907:        && TREE_VIA_VIRTUAL (h->list) == 0
                    908:        && TREE_VIA_PUBLIC (h->list) == 0
                    909:        && TREE_PURPOSE (h->list) == 0
                    910:        && TREE_VALUE (h->list) == value)
                    911:       {
                    912:        assert (TREE_TYPE (h->list) == 0);
                    913:        assert (TREE_CHAIN (h->list) == 0);
                    914:        return h->list;
                    915:       }
                    916: 
                    917:   ambient_obstack = current_obstack;
                    918:   current_obstack = &class_obstack;
                    919:   list = build_tree_list (NULL_TREE, value);
                    920:   list_hash_add (hashcode, list);
                    921:   current_obstack = ambient_obstack;
                    922:   return list;
                    923: }
                    924: 
                    925: /* Build an association between TYPE and some parameters:
                    926: 
                    927:    OFFSET is the offset added to `this' to convert it to a pointer
                    928:    of type `TYPE *'
                    929: 
                    930:    VTABLE is the virtual function table with which to initialize
                    931:    sub-objects of type TYPE.
                    932: 
                    933:    VIRTUALS are the virtual functions sitting in VTABLE.
                    934: 
                    935:    CHAIN are more associations we must retain.  */
                    936: 
                    937: tree
                    938: make_binfo (offset, type, vtable, virtuals, chain)
                    939:      tree offset, type;
                    940:      tree vtable, virtuals;
                    941:      tree chain;
                    942: {
                    943:   tree binfo = make_tree_vec (5);
                    944:   tree old_binfo = TYPE_BINFO (type);
                    945:   tree last;
                    946: 
                    947:   TREE_CHAIN (binfo) = chain;
                    948:   if (chain)
                    949:     TREE_USED (binfo) = TREE_USED (chain);
                    950: 
                    951:   TREE_TYPE (binfo) = TYPE_MAIN_VARIANT (type);
                    952:   TREE_VEC_ELT (binfo, 1) = offset;
                    953:   TREE_VEC_ELT (binfo, 2) = vtable;
                    954:   TREE_VEC_ELT (binfo, 3) = virtuals;
                    955: 
                    956:   last = binfo;
                    957:   if (old_binfo != NULL_TREE
                    958:       && BINFO_BASETYPES (old_binfo) != NULL_TREE)
                    959:     {
                    960:       int i, n_baseclasses = CLASSTYPE_N_BASECLASSES (type);
                    961:       tree binfos = TYPE_BINFO_BASETYPES (type);
                    962: 
                    963:       BINFO_BASETYPES (binfo) = make_tree_vec (n_baseclasses);
                    964:       for (i = 0; i < n_baseclasses; i++)
                    965:        {
                    966:          tree child = TREE_VEC_ELT (binfos, i);
                    967:          tree old_child = old_binfo ? BINFO_BASETYPE (old_binfo, i) : 0;
                    968:          BINFO_BASETYPE (binfo, i) = child;
                    969:          if (old_binfo)
                    970:            {
                    971:              TREE_VIA_PUBLIC (child) = TREE_VIA_PUBLIC (old_child);
                    972:              TREE_VIA_VIRTUAL (child) = TREE_VIA_VIRTUAL (old_child);
                    973:            }
                    974:        }
                    975:     }
                    976:   return binfo;
                    977: }
                    978: 
                    979: tree
                    980: copy_binfo (list)
                    981:      tree list;
                    982: {
                    983:   tree binfo = copy_list (list);
                    984:   tree rval = binfo;
                    985:   while (binfo)
                    986:     {
                    987:       TREE_USED (binfo) = 0;
                    988:       if (BINFO_BASETYPES (binfo))
                    989:        BINFO_BASETYPES (binfo) = copy_node (BINFO_BASETYPES (binfo));
                    990:       binfo = TREE_CHAIN (binfo);
                    991:     }
                    992:   return rval;
                    993: }
                    994: 
                    995: /* Return the binfo value for ELEM in TYPE.  Due to structure
                    996:    sharing, we may find ELEM only in the association list
                    997:    belonging to a basetype of TYPE.
                    998: 
                    999:    COPYING is 0 if we just want an binfo value without needing
                   1000:    to modify it.
                   1001:    COPYING is 1 if we want the binfo value in order to modify it.
                   1002:    In this case, if we don't find ELEM immediately in the binfo
                   1003:    values of TYPE, we return a copy.
                   1004:    COPYING is -1 if we are called recursively and need a copy.
                   1005:    In this case we return a copy of ELEM at the point we find it.  */
                   1006: tree
                   1007: binfo_value (elem, type, copying)
                   1008:      tree elem;
                   1009:      tree type;
                   1010:      int copying;
                   1011: {
                   1012:   tree binfo = TYPE_BINFO (type);
                   1013:   tree last;
                   1014:   tree rval = NULL_TREE;
                   1015: 
                   1016:   /* Dispose quickly of degenerate case.  */
                   1017:   if (elem == type)
                   1018:     return copying < 0 ? copy_binfo (binfo) : binfo;
                   1019: 
                   1020:   /* Look for ELEM in two passes.  First pass checks the entire binfo list.
                   1021:      Second pass recursively searches the binfo lists of binfos.  */
                   1022:   while (binfo)
                   1023:     {
                   1024:       if (elem == BINFO_TYPE (binfo))
                   1025:        /* If we find it on the main spine, then
                   1026:           there can be no ambiguity.  */
                   1027:        return copying < 0 ? copy_binfo (binfo) : binfo;
                   1028:       last = binfo;
                   1029:       binfo = TREE_CHAIN (binfo);
                   1030:     }
                   1031: 
                   1032:   for (binfo = TYPE_BINFO (type);
                   1033:        binfo != TREE_CHAIN (last);
                   1034:        binfo = TREE_CHAIN (binfo))
                   1035:     {
                   1036:       /* ??? Should this condition instead test
                   1037:         BINFO_TYPE (binfo) != TYPE_MAIN_VARIANT (type) ???  */
                   1038:       if (BINFO_TYPE (binfo) != TYPE_MAIN_VARIANT (type))
                   1039:        {
                   1040:          tree nval = binfo_value (elem, BINFO_TYPE (binfo), copying ? -1 : 0);
                   1041: 
                   1042:          if (nval)
                   1043:            {
                   1044:              if (copying && rval == NULL_TREE)
                   1045:                chainon (TYPE_BINFO (type), nval);
                   1046: 
                   1047:              if (rval && BINFO_TYPE (rval) != BINFO_TYPE (nval))
                   1048:                /* If we find it underneath, we must make sure that
                   1049:                   there are no two ways to do it.  */
                   1050:                compiler_error ("base class `%s' ambiguous in binfo_value",
                   1051:                                TYPE_NAME_STRING (elem));
                   1052:              else
                   1053:                rval = nval;
                   1054:            }
                   1055:        }
                   1056:     }
                   1057:   return rval;
                   1058: }
                   1059: 
                   1060: tree
                   1061: reverse_path (path)
                   1062:      tree path;
                   1063: {
                   1064:   register tree prev = 0, tmp, next;
                   1065:   for (tmp = path; tmp; tmp = next)
                   1066:     {
                   1067:       next = BINFO_INHERITANCE_CHAIN (tmp);
                   1068:       BINFO_INHERITANCE_CHAIN (tmp) = prev;
                   1069:       prev = tmp;
                   1070:     }
                   1071:   return prev;
                   1072: }
                   1073: 
                   1074: tree
                   1075: virtual_member (elem, list)
                   1076:      tree elem;
                   1077:      tree list;
                   1078: {
                   1079:   tree t;
                   1080:   tree rval, nval;
                   1081: 
                   1082:   for (t = list; t; t = TREE_CHAIN (t))
                   1083:     if (elem == BINFO_TYPE (t))
                   1084:       return t;
                   1085:   rval = 0;
                   1086:   for (t = list; t; t = TREE_CHAIN (t))
                   1087:     {
                   1088:       tree binfos = BINFO_BASETYPES (t);
                   1089:       int i;
                   1090: 
                   1091:       if (binfos != NULL_TREE)
                   1092:        for (i = TREE_VEC_LENGTH (binfos)-1; i >= 0; i--)
                   1093:          {
                   1094:            nval = binfo_value (elem, BINFO_TYPE (TREE_VEC_ELT (binfos, i)), 0);
                   1095:            if (nval)
                   1096:              {
                   1097:                if (rval && BINFO_OFFSET (nval) != BINFO_OFFSET (rval))
                   1098:                  abort ();
                   1099:                rval = nval;
                   1100:              }
                   1101:          }
                   1102:     }
                   1103:   return rval;
                   1104: }
                   1105: 
                   1106: /* Return the offset (as an INTEGER_CST) for ELEM in LIST.
                   1107:    INITIAL_OFFSET is the value to add to the offset that ELEM's
                   1108:    binfo entry in LIST provides.
                   1109: 
                   1110:    Returns NULL if ELEM does not have an binfo value in LIST.  */
                   1111: 
                   1112: tree
                   1113: virtual_offset (elem, list, initial_offset)
                   1114:      tree elem;
                   1115:      tree list;
                   1116:      tree initial_offset;
                   1117: {
                   1118:   tree vb, offset;
                   1119:   tree rval, nval;
                   1120: 
                   1121:   for (vb = list; vb; vb = TREE_CHAIN (vb))
                   1122:     if (elem == BINFO_TYPE (vb))
                   1123:       return size_binop (PLUS_EXPR, initial_offset, BINFO_OFFSET (vb));
                   1124:   rval = 0;
                   1125:   for (vb = list; vb; vb = TREE_CHAIN (vb))
                   1126:     {
                   1127:       tree binfos = BINFO_BASETYPES (vb);
                   1128:       int i;
                   1129: 
                   1130:       if (binfos == NULL_TREE)
                   1131:        continue;
                   1132: 
                   1133:       for (i = TREE_VEC_LENGTH (binfos)-1; i >= 0; i--)
                   1134:        {
                   1135:          nval = binfo_value (elem, BINFO_TYPE (TREE_VEC_ELT (binfos, i)), 0);
                   1136:          if (nval)
                   1137:            {
                   1138:              if (rval && BINFO_OFFSET (nval) != BINFO_OFFSET (rval))
                   1139:                abort ();
                   1140:              offset = BINFO_OFFSET (vb);
                   1141:              rval = nval;
                   1142:            }
                   1143:        }
                   1144:     }
                   1145:   if (rval == NULL_TREE)
                   1146:     return rval;
                   1147:   return size_binop (PLUS_EXPR, offset, BINFO_OFFSET (rval));
                   1148: }
                   1149: 
                   1150: void
                   1151: debug_binfo (elem)
                   1152:      tree elem;
                   1153: {
                   1154:   int i;
                   1155:   tree virtuals;
                   1156: 
                   1157:   fprintf (stderr, "type \"%s\"; offset = %d\n",
                   1158:           TYPE_NAME_STRING (BINFO_TYPE (elem)),
                   1159:           TREE_INT_CST_LOW (BINFO_OFFSET (elem)));
                   1160:   fprintf (stderr, "vtable type:\n");
                   1161:   debug_tree (BINFO_TYPE (elem));
                   1162:   if (BINFO_VTABLE (elem))
                   1163:     fprintf (stderr, "vtable decl \"%s\"\n", IDENTIFIER_POINTER (DECL_NAME (BINFO_VTABLE (elem))));
                   1164:   else
                   1165:     fprintf (stderr, "no vtable decl yet\n");
                   1166:   fprintf (stderr, "virtuals:\n");
                   1167:   virtuals = BINFO_VIRTUALS (elem);
                   1168:   if (virtuals != 0)
                   1169:     {
                   1170:       virtuals = TREE_CHAIN (virtuals);
                   1171:       if (flag_dossier)
                   1172:        virtuals = TREE_CHAIN (virtuals);
                   1173:     }
                   1174:   i = 1;
                   1175:   while (virtuals)
                   1176:     {
                   1177:       tree fndecl = TREE_OPERAND (FNADDR_FROM_VTABLE_ENTRY (TREE_VALUE (virtuals)), 0);
                   1178:       fprintf (stderr, "%s [%d =? %d]\n",
                   1179:               IDENTIFIER_POINTER (DECL_ASSEMBLER_NAME (fndecl)),
                   1180:               i, TREE_INT_CST_LOW (DECL_VINDEX (fndecl)));
                   1181:       virtuals = TREE_CHAIN (virtuals);
                   1182:       i += 1;
                   1183:     }
                   1184: }
                   1185: 
                   1186: /* Return the length of a chain of nodes chained through DECL_CHAIN.
                   1187:    We expect a null pointer to mark the end of the chain.
                   1188:    This is the Lisp primitive `length'.  */
                   1189: 
                   1190: int
                   1191: decl_list_length (t)
                   1192:      tree t;
                   1193: {
                   1194:   register tree tail;
                   1195:   register int len = 0;
                   1196: 
                   1197:   assert (TREE_CODE (t) == FUNCTION_DECL);
                   1198:   for (tail = t; tail; tail = DECL_CHAIN (tail))
                   1199:     len++;
                   1200: 
                   1201:   return len;
                   1202: }
                   1203: 
                   1204: tree
                   1205: fnaddr_from_vtable_entry (entry)
                   1206:      tree entry;
                   1207: {
                   1208:   return TREE_VALUE (TREE_CHAIN (TREE_CHAIN (CONSTRUCTOR_ELTS (entry))));
                   1209: }
                   1210: 
                   1211: void
                   1212: set_fnaddr_from_vtable_entry (entry, value)
                   1213:      tree entry, value;
                   1214: {
                   1215:   TREE_VALUE (TREE_CHAIN (TREE_CHAIN (CONSTRUCTOR_ELTS (entry)))) = value;
                   1216: }
                   1217: 
                   1218: tree
                   1219: function_arg_chain (t)
                   1220:      tree t;
                   1221: {
                   1222:   return TREE_CHAIN (TYPE_ARG_TYPES (TREE_TYPE (t)));
                   1223: }
                   1224: 
                   1225: int
                   1226: promotes_to_aggr_type (t, code)
                   1227:      tree t;
                   1228:      enum tree_code code;
                   1229: {
                   1230:   if (TREE_CODE (t) == code)
                   1231:     t = TREE_TYPE (t);
                   1232:   return IS_AGGR_TYPE (t);
                   1233: }
                   1234: 
                   1235: int
                   1236: is_aggr_type_2 (t1, t2)
                   1237:      tree t1, t2;
                   1238: {
                   1239:   if (TREE_CODE (t1) != TREE_CODE (t2))
                   1240:     return 0;
                   1241:   return IS_AGGR_TYPE (t1) && IS_AGGR_TYPE (t2);
                   1242: }
                   1243: 
                   1244: /* Give message using types TYPE1 and TYPE2 as arguments.
                   1245:    PFN is the function which will print the message;
                   1246:    S is the format string for PFN to use.  */
                   1247: void
                   1248: message_2_types (pfn, s, type1, type2)
                   1249:      void (*pfn) ();
                   1250:      char *s;
                   1251:      tree type1, type2;
                   1252: {
                   1253:   tree name1 = TYPE_NAME (type1);
                   1254:   tree name2 = TYPE_NAME (type2);
                   1255:   if (TREE_CODE (name1) == TYPE_DECL)
                   1256:     name1 = DECL_NAME (name1);
                   1257:   if (TREE_CODE (name2) == TYPE_DECL)
                   1258:     name2 = DECL_NAME (name2);
                   1259:   (*pfn) (s, IDENTIFIER_POINTER (name1), IDENTIFIER_POINTER (name2));
                   1260: }
                   1261: 
                   1262: #define PRINT_RING_SIZE 4
                   1263: 
                   1264: char *
                   1265: lang_printable_name (decl)
                   1266:      tree decl;
                   1267: {
                   1268:   static tree decl_ring[PRINT_RING_SIZE];
                   1269:   static char *print_ring[PRINT_RING_SIZE];
                   1270:   static int ring_counter;
                   1271:   int i;
                   1272: 
                   1273:   if (TREE_CODE (decl) != FUNCTION_DECL
                   1274:       || DECL_LANG_SPECIFIC (decl) == 0)
                   1275:     {
                   1276:       if (DECL_NAME (decl))
                   1277:        {
                   1278:          if (THIS_NAME_P (DECL_NAME (decl)))
                   1279:            return "this";
                   1280:          return IDENTIFIER_POINTER (DECL_NAME (decl));
                   1281:        }
                   1282:       return "((anonymous))";
                   1283:     }
                   1284: 
                   1285:   /* See if this print name is lying around.  */
                   1286:   for (i = 0; i < PRINT_RING_SIZE; i++)
                   1287:     if (decl_ring[i] == decl)
                   1288:       /* yes, so return it.  */
                   1289:       return print_ring[i];
                   1290: 
                   1291:   if (++ring_counter == PRINT_RING_SIZE)
                   1292:     ring_counter = 0;
                   1293: 
                   1294:   if (current_function_decl != NULL_TREE)
                   1295:     {
                   1296:       if (decl_ring[ring_counter] == current_function_decl)
                   1297:        ring_counter += 1;
                   1298:       if (ring_counter == PRINT_RING_SIZE)
                   1299:        ring_counter = 0;
                   1300:       if (decl_ring[ring_counter] == current_function_decl)
                   1301:        abort ();
                   1302:     }
                   1303: 
                   1304:   if (print_ring[ring_counter])
                   1305:     free (print_ring[ring_counter]);
                   1306: 
                   1307:   {
                   1308:     int print_ret_type_p
                   1309:       = (!DECL_CONSTRUCTOR_P (decl)
                   1310:         && !DESTRUCTOR_NAME_P (DECL_ASSEMBLER_NAME (decl)));
                   1311: 
                   1312:     char *name = (char *)fndecl_as_string (0, decl, print_ret_type_p);
                   1313:     print_ring[ring_counter] = (char *)malloc (strlen (name) + 1);
                   1314:     strcpy (print_ring[ring_counter], name);
                   1315:     decl_ring[ring_counter] = decl;
                   1316:   }
                   1317:   return print_ring[ring_counter];
                   1318: }
                   1319: 
                   1320: /* Comparison function for sorting identifiers in RAISES lists.
                   1321:    Note that because IDENTIFIER_NODEs are unique, we can sort
                   1322:    them by address, saving an indirection.  */
                   1323: static int
                   1324: id_cmp (p1, p2)
                   1325:      tree *p1, *p2;
                   1326: {
                   1327:   return (int)TREE_VALUE (*p1) - (int)TREE_VALUE (*p2);
                   1328: }
                   1329: 
                   1330: /* Build the FUNCTION_TYPE or METHOD_TYPE which may raise exceptions
                   1331:    listed in RAISES.  */
                   1332: tree
                   1333: build_exception_variant (ctype, type, raises)
                   1334:      tree ctype, type;
                   1335:      tree raises;
                   1336: {
                   1337:   int i;
                   1338:   tree v = TYPE_MAIN_VARIANT (type);
                   1339:   tree t, t2, cname;
                   1340:   tree *a = (tree *)alloca ((list_length (raises)+1) * sizeof (tree));
                   1341:   int constp = TYPE_READONLY (type);
                   1342:   int volatilep = TYPE_VOLATILE (type);
                   1343: 
                   1344:   if (raises && TREE_CHAIN (raises))
                   1345:     {
                   1346:       for (i = 0, t = raises; t; t = TREE_CHAIN (t), i++)
                   1347:        a[i] = t;
                   1348:       /* NULL terminator for list.  */
                   1349:       a[i] = NULL_TREE;
                   1350:       qsort (a, i, sizeof (tree), id_cmp);
                   1351:       while (i--)
                   1352:        TREE_CHAIN (a[i]) = a[i+1];
                   1353:       raises = a[0];
                   1354:     }
                   1355:   else if (raises)
                   1356:     /* do nothing.  */;
                   1357:   else
                   1358:     return build_type_variant (v, constp, volatilep);
                   1359: 
                   1360:   if (ctype)
                   1361:     {
                   1362:       cname = TYPE_NAME (ctype);
                   1363:       if (TREE_CODE (cname) == TYPE_DECL)
                   1364:        cname = DECL_NAME (cname);
                   1365:     }
                   1366:   else
                   1367:     cname = NULL_TREE;
                   1368: 
                   1369:   for (t = raises; t; t = TREE_CHAIN (t))
                   1370:     {
                   1371:       /* See that all the exceptions we are thinking about
                   1372:         raising have been declared.  */
                   1373:       tree this_cname = lookup_exception_cname (ctype, cname, t);
                   1374:       tree decl = lookup_exception_object (this_cname, TREE_VALUE (t), 1);
                   1375: 
                   1376:       if (decl == NULL_TREE)
                   1377:        decl = lookup_exception_object (this_cname, TREE_VALUE (t), 0);
                   1378:       /* Place canonical exception decl into TREE_TYPE of RAISES list.  */
                   1379:       TREE_TYPE (t) = decl;
                   1380:     }
                   1381: 
                   1382:   for (v = TYPE_NEXT_VARIANT (v); v; v = TYPE_NEXT_VARIANT (v))
                   1383:     {
                   1384:       if (TYPE_READONLY (v) != constp
                   1385:          || TYPE_VOLATILE (v) != volatilep)
                   1386:        continue;
                   1387: 
                   1388:       t = raises;
                   1389:       t2 = TYPE_RAISES_EXCEPTIONS (v);
                   1390:       while (t && t2)
                   1391:        {
                   1392:          if (TREE_TYPE (t) == TREE_TYPE (t2))
                   1393:            {
                   1394:              t = TREE_CHAIN (t);
                   1395:              t2 = TREE_CHAIN (t2);
                   1396:            }
                   1397:          else break;
                   1398:        }
                   1399:       if (t || t2)
                   1400:        continue;
                   1401:       /* List of exceptions raised matches previously found list.
                   1402: 
                   1403:          @@ Nice to free up storage used in consing up the
                   1404:         @@ list of exceptions raised.  */
                   1405:       return v;
                   1406:     }
                   1407: 
                   1408:   /* Need to build a new variant.  */
                   1409:   v = copy_node (type);
                   1410:   TYPE_NEXT_VARIANT (v) = TYPE_NEXT_VARIANT (type);
                   1411:   TYPE_NEXT_VARIANT (type) = v;
                   1412:   if (raises && ! TREE_PERMANENT (raises))
                   1413:     {
                   1414:       push_obstacks_nochange ();
                   1415:       end_temporary_allocation ();
                   1416:       raises = copy_list (raises);
                   1417:       pop_obstacks ();
                   1418:     }
                   1419:   TYPE_RAISES_EXCEPTIONS (v) = raises;
                   1420:   return v;
                   1421: }
                   1422: 
                   1423: /* Subroutine of make_permanent_node.
                   1424: 
                   1425:    Assuming T is a node build bottom-up, make it all exist on
                   1426:    permanent obstack, if it is not permanent already.  */
                   1427: static tree
                   1428: make_deep_copy (t)
                   1429:      tree t;
                   1430: {
                   1431:   enum tree_code code;
                   1432: 
                   1433:   if (t == NULL_TREE || TREE_PERMANENT (t))
                   1434:     return t;
                   1435: 
                   1436:   switch (code = TREE_CODE (t))
                   1437:     {
                   1438:     case ERROR_MARK:
                   1439:       return error_mark_node;
                   1440: 
                   1441:     case VAR_DECL:
                   1442:     case FUNCTION_DECL:
                   1443:     case CONST_DECL:
                   1444:       break;
                   1445: 
                   1446:     case PARM_DECL:
                   1447:       {
                   1448:        tree chain = TREE_CHAIN (t);
                   1449:        t = copy_node (t);
                   1450:        TREE_CHAIN (t) = make_deep_copy (chain);
                   1451:        TREE_TYPE (t) = make_deep_copy (TREE_TYPE (t));
                   1452:        DECL_INITIAL (t) = make_deep_copy (DECL_INITIAL (t));
                   1453:        DECL_SIZE (t) = make_deep_copy (DECL_SIZE (t));
                   1454:        return t;
                   1455:       }
                   1456: 
                   1457:     case TREE_LIST:
                   1458:       {
                   1459:        tree chain = TREE_CHAIN (t);
                   1460:        t = copy_node (t);
                   1461:        TREE_PURPOSE (t) = make_deep_copy (TREE_PURPOSE (t));
                   1462:        TREE_VALUE (t) = make_deep_copy (TREE_VALUE (t));
                   1463:        TREE_CHAIN (t) = make_deep_copy (chain);
                   1464:        return t;
                   1465:       }
                   1466: 
                   1467:     case TREE_VEC:
                   1468:       {
                   1469:        int len = TREE_VEC_LENGTH (t);
                   1470: 
                   1471:        t = copy_node (t);
                   1472:        while (len--)
                   1473:          TREE_VEC_ELT (t, len) = make_deep_copy (TREE_VEC_ELT (t, len));
                   1474:        return t;
                   1475:       }
                   1476: 
                   1477:     case INTEGER_CST:
                   1478:     case REAL_CST:
                   1479:     case STRING_CST:
                   1480:       return copy_node (t);
                   1481: 
                   1482:     case COND_EXPR:
                   1483:     case TARGET_EXPR:
                   1484:     case NEW_EXPR:
                   1485:       t = copy_node (t);
                   1486:       TREE_OPERAND (t, 0) = make_deep_copy (TREE_OPERAND (t, 0));
                   1487:       TREE_OPERAND (t, 1) = make_deep_copy (TREE_OPERAND (t, 1));
                   1488:       TREE_OPERAND (t, 2) = make_deep_copy (TREE_OPERAND (t, 2));
                   1489:       return t;
                   1490: 
                   1491:     case SAVE_EXPR:
                   1492:       t = copy_node (t);
                   1493:       TREE_OPERAND (t, 0) = make_deep_copy (TREE_OPERAND (t, 0));
                   1494:       return t;
                   1495: 
                   1496:     case MODIFY_EXPR:
                   1497:     case PLUS_EXPR:
                   1498:     case MINUS_EXPR:
                   1499:     case MULT_EXPR:
                   1500:     case TRUNC_DIV_EXPR:
                   1501:     case TRUNC_MOD_EXPR:
                   1502:     case MIN_EXPR:
                   1503:     case MAX_EXPR:
                   1504:     case LSHIFT_EXPR:
                   1505:     case RSHIFT_EXPR:
                   1506:     case BIT_IOR_EXPR:
                   1507:     case BIT_XOR_EXPR:
                   1508:     case BIT_AND_EXPR:
                   1509:     case BIT_ANDTC_EXPR:
                   1510:     case TRUTH_ANDIF_EXPR:
                   1511:     case TRUTH_ORIF_EXPR:
                   1512:     case LT_EXPR:
                   1513:     case LE_EXPR:
                   1514:     case GT_EXPR:
                   1515:     case GE_EXPR:
                   1516:     case EQ_EXPR:
                   1517:     case NE_EXPR:
                   1518:     case CEIL_DIV_EXPR:
                   1519:     case FLOOR_DIV_EXPR:
                   1520:     case ROUND_DIV_EXPR:
                   1521:     case CEIL_MOD_EXPR:
                   1522:     case FLOOR_MOD_EXPR:
                   1523:     case ROUND_MOD_EXPR:
                   1524:     case COMPOUND_EXPR:
                   1525:     case PREDECREMENT_EXPR:
                   1526:     case PREINCREMENT_EXPR:
                   1527:     case POSTDECREMENT_EXPR:
                   1528:     case POSTINCREMENT_EXPR:
                   1529:     case CALL_EXPR:
                   1530:       t = copy_node (t);
                   1531:       TREE_OPERAND (t, 0) = make_deep_copy (TREE_OPERAND (t, 0));
                   1532:       TREE_OPERAND (t, 1) = make_deep_copy (TREE_OPERAND (t, 1));
                   1533:       return t;
                   1534: 
                   1535:     case CONVERT_EXPR:
                   1536:     case ADDR_EXPR:
                   1537:     case INDIRECT_REF:
                   1538:     case NEGATE_EXPR:
                   1539:     case BIT_NOT_EXPR:
                   1540:     case TRUTH_NOT_EXPR:
                   1541:     case NOP_EXPR:
                   1542:     case COMPONENT_REF:
                   1543:       t = copy_node (t);
                   1544:       TREE_OPERAND (t, 0) = make_deep_copy (TREE_OPERAND (t, 0));
                   1545:       return t;
                   1546: 
                   1547:       /*  This list is incomplete, but should suffice for now.
                   1548:          It is very important that `sorry' does not call
                   1549:          `report_error_function'.  That could cause an infinite loop.  */
                   1550:     default:
                   1551:       sorry ("initializer contains unrecognized tree code");
                   1552:       return error_mark_node;
                   1553: 
                   1554:     }
                   1555:   abort ();
                   1556:   /* NOTREACHED */
                   1557:   return NULL_TREE;
                   1558: }
                   1559: 
                   1560: /* Assuming T is a node built bottom-up, make it all exist on
                   1561:    permanent obstack, if it is not permanent already.  */
                   1562: tree
                   1563: copy_to_permanent (t)
                   1564:      tree t;
                   1565: {
                   1566:   register struct obstack *ambient_obstack = current_obstack;
                   1567:   register struct obstack *ambient_saveable_obstack = saveable_obstack;
                   1568: 
                   1569:   if (t == NULL_TREE || TREE_PERMANENT (t))
                   1570:     return t;
                   1571: 
                   1572:   saveable_obstack = &permanent_obstack;
                   1573:   current_obstack = saveable_obstack;
                   1574: 
                   1575:   t = make_deep_copy (t);
                   1576: 
                   1577:   current_obstack = ambient_obstack;
                   1578:   saveable_obstack = ambient_saveable_obstack;
                   1579: 
                   1580:   return t;
                   1581: }
                   1582: 
                   1583: int
                   1584: lang_simple_cst_equal (t1, t2)
                   1585:      tree t1, t2;
                   1586: {
                   1587:   register enum tree_code code1, code2;
                   1588:   int cmp;
                   1589: 
                   1590:   if (t1 == t2)
                   1591:     return 1;
                   1592:   if (t1 == 0 || t2 == 0)
                   1593:     return 0;
                   1594: 
                   1595:   code1 = TREE_CODE (t1);
                   1596:   code2 = TREE_CODE (t2);
                   1597: 
                   1598:   switch (code1)
                   1599:     {
                   1600:     case NEW_EXPR:
                   1601:       cmp = simple_cst_equal (TREE_OPERAND (t1, 0), TREE_OPERAND (t2, 0));
                   1602:       if (cmp <= 0)
                   1603:        return cmp;
                   1604:       return simple_cst_list_equal (TREE_OPERAND (t1, 1), TREE_OPERAND (t2, 1));
                   1605: 
                   1606:     default:
                   1607:       return -1;
                   1608:     }
                   1609: }
                   1610: 
                   1611: void
                   1612: print_lang_statistics ()
                   1613: {
                   1614:   extern struct obstack maybepermanent_obstack;
                   1615:   print_obstack_statistics ("class_obstack", &class_obstack);
                   1616:   print_obstack_statistics ("permanent_obstack", &permanent_obstack);
                   1617:   print_obstack_statistics ("maybepermanent_obstack", &maybepermanent_obstack);
                   1618:   print_search_statistics ();
                   1619:   print_class_statistics ();
                   1620: }
                   1621: 
                   1622: /* This is used by the `assert' macro.  It is provided in libgcc.a,
                   1623:    which `cc' doesn't know how to link.  */
                   1624: void
                   1625: __eprintf (string, expression, line, filename)
                   1626: #ifdef __STDC__
                   1627:      const char *string;
                   1628:      const char *expression;
                   1629:      int line;
                   1630:      const char *filename;
                   1631: #else
                   1632:      char *string;
                   1633:      char *expression;
                   1634:      int line;
                   1635:      char *filename;
                   1636: #endif
                   1637: {
                   1638:   fprintf (stderr, string, expression, line, filename);
                   1639:   fflush (stderr);
                   1640:   abort ();
                   1641: }

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