xref: /freebsd-src/cddl/contrib/opensolaris/tools/ctf/cvt/dwarf.c (revision 58fc1c99e4b4368c3fe7e3f982f5e22741d7ec19)
1 /*
2  * CDDL HEADER START
3  *
4  * The contents of this file are subject to the terms of the
5  * Common Development and Distribution License (the "License").
6  * You may not use this file except in compliance with the License.
7  *
8  * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9  * or http://www.opensolaris.org/os/licensing.
10  * See the License for the specific language governing permissions
11  * and limitations under the License.
12  *
13  * When distributing Covered Code, include this CDDL HEADER in each
14  * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15  * If applicable, add the following below this CDDL HEADER, with the
16  * fields enclosed by brackets "[]" replaced with your own identifying
17  * information: Portions Copyright [yyyy] [name of copyright owner]
18  *
19  * CDDL HEADER END
20  */
21 /*
22  * Copyright 2007 Sun Microsystems, Inc.  All rights reserved.
23  * Use is subject to license terms.
24  */
25 
26 /*
27  * DWARF to tdata conversion
28  *
29  * For the most part, conversion is straightforward, proceeding in two passes.
30  * On the first pass, we iterate through every die, creating new type nodes as
31  * necessary.  Referenced tdesc_t's are created in an uninitialized state, thus
32  * allowing type reference pointers to be filled in.  If the tdesc_t
33  * corresponding to a given die can be completely filled out (sizes and offsets
34  * calculated, and so forth) without using any referenced types, the tdesc_t is
35  * marked as resolved.  Consider an array type.  If the type corresponding to
36  * the array contents has not yet been processed, we will create a blank tdesc
37  * for the contents type (only the type ID will be filled in, relying upon the
38  * later portion of the first pass to encounter and complete the referenced
39  * type).  We will then attempt to determine the size of the array.  If the
40  * array has a byte size attribute, we will have completely characterized the
41  * array type, and will be able to mark it as resolved.  The lack of a byte
42  * size attribute, on the other hand, will prevent us from fully resolving the
43  * type, as the size will only be calculable with reference to the contents
44  * type, which has not, as yet, been encountered.  The array type will thus be
45  * left without the resolved flag, and the first pass will continue.
46  *
47  * When we begin the second pass, we will have created tdesc_t nodes for every
48  * type in the section.  We will traverse the tree, from the iidescs down,
49  * processing each unresolved node.  As the referenced nodes will have been
50  * populated, the array type used in our example above will be able to use the
51  * size of the referenced types (if available) to determine its own type.  The
52  * traversal will be repeated until all types have been resolved or we have
53  * failed to make progress.  When all tdescs have been resolved, the conversion
54  * is complete.
55  *
56  * There are, as always, a few special cases that are handled during the first
57  * and second passes:
58  *
59  *  1. Empty enums - GCC will occasionally emit an enum without any members.
60  *     Later on in the file, it will emit the same enum type, though this time
61  *     with the full complement of members.  All references to the memberless
62  *     enum need to be redirected to the full definition.  During the first
63  *     pass, each enum is entered in dm_enumhash, along with a pointer to its
64  *     corresponding tdesc_t.  If, during the second pass, we encounter a
65  *     memberless enum, we use the hash to locate the full definition.  All
66  *     tdescs referencing the empty enum are then redirected.
67  *
68  *  2. Forward declarations - If the compiler sees a forward declaration for
69  *     a structure, followed by the definition of that structure, it will emit
70  *     DWARF data for both the forward declaration and the definition.  We need
71  *     to resolve the forward declarations when possible, by redirecting
72  *     forward-referencing tdescs to the actual struct/union definitions.  This
73  *     redirection is done completely within the first pass.  We begin by
74  *     recording all forward declarations in dw_fwdhash.  When we define a
75  *     structure, we check to see if there have been any corresponding forward
76  *     declarations.  If so, we redirect the tdescs which referenced the forward
77  *     declarations to the structure or union definition.
78  *
79  * XXX see if a post traverser will allow the elimination of repeated pass 2
80  * traversals.
81  */
82 
83 #include <stdio.h>
84 #include <stdlib.h>
85 #include <string.h>
86 #include <strings.h>
87 #include <errno.h>
88 #include <libelf.h>
89 #include <libdwarf.h>
90 #include <libgen.h>
91 #include <dwarf.h>
92 
93 #include "ctf_headers.h"
94 #include "ctftools.h"
95 #include "memory.h"
96 #include "list.h"
97 #include "traverse.h"
98 
99 /* The version of DWARF which we support. */
100 #define	DWARF_VERSION	2
101 
102 /*
103  * We need to define a couple of our own intrinsics, to smooth out some of the
104  * differences between the GCC and DevPro DWARF emitters.  See the referenced
105  * routines and the special cases in the file comment for more details.
106  *
107  * Type IDs are 32 bits wide.  We're going to use the top of that field to
108  * indicate types that we've created ourselves.
109  */
110 #define	TID_FILEMAX		0x3fffffff	/* highest tid from file */
111 #define	TID_VOID		0x40000001	/* see die_void() */
112 #define	TID_LONG		0x40000002	/* see die_array() */
113 
114 #define	TID_MFGTID_BASE		0x40000003	/* first mfg'd tid */
115 
116 /*
117  * To reduce the staggering amount of error-handling code that would otherwise
118  * be required, the attribute-retrieval routines handle most of their own
119  * errors.  If the following flag is supplied as the value of the `req'
120  * argument, they will also handle the absence of a requested attribute by
121  * terminating the program.
122  */
123 #define	DW_ATTR_REQ	1
124 
125 #define	TDESC_HASH_BUCKETS	511
126 
127 typedef struct dwarf {
128 	Dwarf_Debug dw_dw;		/* for libdwarf */
129 	Dwarf_Error dw_err;		/* for libdwarf */
130 	Dwarf_Off dw_maxoff;		/* highest legal offset in this cu */
131 	tdata_t *dw_td;			/* root of the tdesc/iidesc tree */
132 	hash_t *dw_tidhash;		/* hash of tdescs by t_id */
133 	hash_t *dw_fwdhash;		/* hash of fwd decls by name */
134 	hash_t *dw_enumhash;		/* hash of memberless enums by name */
135 	tdesc_t *dw_void;		/* manufactured void type */
136 	tdesc_t *dw_long;		/* manufactured long type for arrays */
137 	size_t dw_ptrsz;		/* size of a pointer in this file */
138 	tid_t dw_mfgtid_last;		/* last mfg'd type ID used */
139 	uint_t dw_nunres;		/* count of unresolved types */
140 	char *dw_cuname;		/* name of compilation unit */
141 } dwarf_t;
142 
143 static void die_create_one(dwarf_t *, Dwarf_Die);
144 static void die_create(dwarf_t *, Dwarf_Die);
145 
146 static tid_t
147 mfgtid_next(dwarf_t *dw)
148 {
149 	return (++dw->dw_mfgtid_last);
150 }
151 
152 static void
153 tdesc_add(dwarf_t *dw, tdesc_t *tdp)
154 {
155 	hash_add(dw->dw_tidhash, tdp);
156 }
157 
158 static tdesc_t *
159 tdesc_lookup(dwarf_t *dw, int tid)
160 {
161 	tdesc_t tmpl;
162 	void *tdp;
163 
164 	tmpl.t_id = tid;
165 
166 	if (hash_find(dw->dw_tidhash, &tmpl, &tdp))
167 		return (tdp);
168 	else
169 		return (NULL);
170 }
171 
172 /*
173  * Resolve a tdesc down to a node which should have a size.  Returns the size,
174  * zero if the size hasn't yet been determined.
175  */
176 static size_t
177 tdesc_size(tdesc_t *tdp)
178 {
179 	for (;;) {
180 		switch (tdp->t_type) {
181 		case INTRINSIC:
182 		case POINTER:
183 		case ARRAY:
184 		case FUNCTION:
185 		case STRUCT:
186 		case UNION:
187 		case ENUM:
188 			return (tdp->t_size);
189 
190 		case FORWARD:
191 			return (0);
192 
193 		case TYPEDEF:
194 		case VOLATILE:
195 		case CONST:
196 		case RESTRICT:
197 			tdp = tdp->t_tdesc;
198 			continue;
199 
200 		case 0: /* not yet defined */
201 			return (0);
202 
203 		default:
204 			terminate("tdp %u: tdesc_size on unknown type %d\n",
205 			    tdp->t_id, tdp->t_type);
206 		}
207 	}
208 }
209 
210 static size_t
211 tdesc_bitsize(tdesc_t *tdp)
212 {
213 	for (;;) {
214 		switch (tdp->t_type) {
215 		case INTRINSIC:
216 			return (tdp->t_intr->intr_nbits);
217 
218 		case ARRAY:
219 		case FUNCTION:
220 		case STRUCT:
221 		case UNION:
222 		case ENUM:
223 		case POINTER:
224 			return (tdp->t_size * NBBY);
225 
226 		case FORWARD:
227 			return (0);
228 
229 		case TYPEDEF:
230 		case VOLATILE:
231 		case RESTRICT:
232 		case CONST:
233 			tdp = tdp->t_tdesc;
234 			continue;
235 
236 		case 0: /* not yet defined */
237 			return (0);
238 
239 		default:
240 			terminate("tdp %u: tdesc_bitsize on unknown type %d\n",
241 			    tdp->t_id, tdp->t_type);
242 		}
243 	}
244 }
245 
246 static tdesc_t *
247 tdesc_basetype(tdesc_t *tdp)
248 {
249 	for (;;) {
250 		switch (tdp->t_type) {
251 		case TYPEDEF:
252 		case VOLATILE:
253 		case RESTRICT:
254 		case CONST:
255 			tdp = tdp->t_tdesc;
256 			break;
257 		case 0: /* not yet defined */
258 			return (NULL);
259 		default:
260 			return (tdp);
261 		}
262 	}
263 }
264 
265 static Dwarf_Off
266 die_off(dwarf_t *dw, Dwarf_Die die)
267 {
268 	Dwarf_Off off;
269 
270 	if (dwarf_dieoffset(die, &off, &dw->dw_err) == DW_DLV_OK)
271 		return (off);
272 
273 	terminate("failed to get offset for die: %s\n",
274 	    dwarf_errmsg(dw->dw_err));
275 	/*NOTREACHED*/
276 	return (0);
277 }
278 
279 static Dwarf_Die
280 die_sibling(dwarf_t *dw, Dwarf_Die die)
281 {
282 	Dwarf_Die sib;
283 	int rc;
284 
285 	if ((rc = dwarf_siblingof(dw->dw_dw, die, &sib, &dw->dw_err)) ==
286 	    DW_DLV_OK)
287 		return (sib);
288 	else if (rc == DW_DLV_NO_ENTRY)
289 		return (NULL);
290 
291 	terminate("die %llu: failed to find type sibling: %s\n",
292 	    die_off(dw, die), dwarf_errmsg(dw->dw_err));
293 	/*NOTREACHED*/
294 	return (NULL);
295 }
296 
297 static Dwarf_Die
298 die_child(dwarf_t *dw, Dwarf_Die die)
299 {
300 	Dwarf_Die child;
301 	int rc;
302 
303 	if ((rc = dwarf_child(die, &child, &dw->dw_err)) == DW_DLV_OK)
304 		return (child);
305 	else if (rc == DW_DLV_NO_ENTRY)
306 		return (NULL);
307 
308 	terminate("die %llu: failed to find type child: %s\n",
309 	    die_off(dw, die), dwarf_errmsg(dw->dw_err));
310 	/*NOTREACHED*/
311 	return (NULL);
312 }
313 
314 static Dwarf_Half
315 die_tag(dwarf_t *dw, Dwarf_Die die)
316 {
317 	Dwarf_Half tag;
318 
319 	if (dwarf_tag(die, &tag, &dw->dw_err) == DW_DLV_OK)
320 		return (tag);
321 
322 	terminate("die %llu: failed to get tag for type: %s\n",
323 	    die_off(dw, die), dwarf_errmsg(dw->dw_err));
324 	/*NOTREACHED*/
325 	return (0);
326 }
327 
328 static Dwarf_Attribute
329 die_attr(dwarf_t *dw, Dwarf_Die die, Dwarf_Half name, int req)
330 {
331 	Dwarf_Attribute attr;
332 	int rc;
333 
334 	if ((rc = dwarf_attr(die, name, &attr, &dw->dw_err)) == DW_DLV_OK) {
335 		return (attr);
336 	} else if (rc == DW_DLV_NO_ENTRY) {
337 		if (req) {
338 			terminate("die %llu: no attr 0x%x\n", die_off(dw, die),
339 			    name);
340 		} else {
341 			return (NULL);
342 		}
343 	}
344 
345 	terminate("die %llu: failed to get attribute for type: %s\n",
346 	    die_off(dw, die), dwarf_errmsg(dw->dw_err));
347 	/*NOTREACHED*/
348 	return (NULL);
349 }
350 
351 static int
352 die_signed(dwarf_t *dw, Dwarf_Die die, Dwarf_Half name, Dwarf_Signed *valp,
353     int req)
354 {
355 	*valp = 0;
356 	if (dwarf_attrval_signed(die, name, valp, &dw->dw_err) != DW_DLV_OK) {
357 		if (req)
358 			terminate("die %llu: failed to get signed: %s\n",
359 			    die_off(dw, die), dwarf_errmsg(dw->dw_err));
360 		return (0);
361 	}
362 
363 	return (1);
364 }
365 
366 static int
367 die_unsigned(dwarf_t *dw, Dwarf_Die die, Dwarf_Half name, Dwarf_Unsigned *valp,
368     int req)
369 {
370 	*valp = 0;
371 	if (dwarf_attrval_unsigned(die, name, valp, &dw->dw_err) != DW_DLV_OK) {
372 		if (req)
373 			terminate("die %llu: failed to get unsigned: %s\n",
374 			    die_off(dw, die), dwarf_errmsg(dw->dw_err));
375 		return (0);
376 	}
377 
378 	return (1);
379 }
380 
381 static int
382 die_bool(dwarf_t *dw, Dwarf_Die die, Dwarf_Half name, Dwarf_Bool *valp, int req)
383 {
384 	*valp = 0;
385 
386 	if (dwarf_attrval_flag(die, name, valp, &dw->dw_err) != DW_DLV_OK) {
387 		if (req)
388 			terminate("die %llu: failed to get flag: %s\n",
389 			    die_off(dw, die), dwarf_errmsg(dw->dw_err));
390 		return (0);
391 	}
392 
393 	return (1);
394 }
395 
396 static int
397 die_string(dwarf_t *dw, Dwarf_Die die, Dwarf_Half name, char **strp, int req)
398 {
399 	const char *str = NULL;
400 
401 	if (dwarf_attrval_string(die, name, &str, &dw->dw_err) != DW_DLV_OK ||
402 	    str == NULL) {
403 		if (req)
404 			terminate("die %llu: failed to get string: %s\n",
405 			    die_off(dw, die), dwarf_errmsg(dw->dw_err));
406 		else
407 			*strp = NULL;
408 		return (0);
409 	} else
410 		*strp = xstrdup(str);
411 
412 	return (1);
413 }
414 
415 static Dwarf_Off
416 die_attr_ref(dwarf_t *dw, Dwarf_Die die, Dwarf_Half name)
417 {
418 	Dwarf_Off off;
419 
420 	if (dwarf_attrval_unsigned(die, name, &off, &dw->dw_err) != DW_DLV_OK) {
421 		terminate("die %llu: failed to get ref: %s\n",
422 		    die_off(dw, die), dwarf_errmsg(dw->dw_err));
423 	}
424 
425 	return (off);
426 }
427 
428 static char *
429 die_name(dwarf_t *dw, Dwarf_Die die)
430 {
431 	char *str = NULL;
432 
433 	(void) die_string(dw, die, DW_AT_name, &str, 0);
434 
435 	return (str);
436 }
437 
438 static int
439 die_isdecl(dwarf_t *dw, Dwarf_Die die)
440 {
441 	Dwarf_Bool val;
442 
443 	return (die_bool(dw, die, DW_AT_declaration, &val, 0) && val);
444 }
445 
446 static int
447 die_isglobal(dwarf_t *dw, Dwarf_Die die)
448 {
449 	Dwarf_Signed vis;
450 	Dwarf_Bool ext;
451 
452 	/*
453 	 * Some compilers (gcc) use DW_AT_external to indicate function
454 	 * visibility.  Others (Sun) use DW_AT_visibility.
455 	 */
456 	if (die_signed(dw, die, DW_AT_visibility, &vis, 0))
457 		return (vis == DW_VIS_exported);
458 	else
459 		return (die_bool(dw, die, DW_AT_external, &ext, 0) && ext);
460 }
461 
462 static tdesc_t *
463 die_add(dwarf_t *dw, Dwarf_Off off)
464 {
465 	tdesc_t *tdp = xcalloc(sizeof (tdesc_t));
466 
467 	tdp->t_id = off;
468 
469 	tdesc_add(dw, tdp);
470 
471 	return (tdp);
472 }
473 
474 static tdesc_t *
475 die_lookup_pass1(dwarf_t *dw, Dwarf_Die die, Dwarf_Half name)
476 {
477 	Dwarf_Off ref = die_attr_ref(dw, die, name);
478 	tdesc_t *tdp;
479 
480 	if ((tdp = tdesc_lookup(dw, ref)) != NULL)
481 		return (tdp);
482 
483 	return (die_add(dw, ref));
484 }
485 
486 static int
487 die_mem_offset(dwarf_t *dw, Dwarf_Die die, Dwarf_Half name,
488     Dwarf_Unsigned *valp, int req __unused)
489 {
490 	Dwarf_Locdesc *loc = NULL;
491 	Dwarf_Signed locnum = 0;
492 	Dwarf_Attribute at;
493 
494 	if ((at = die_attr(dw, die, name, 0)) == NULL)
495 		return (0);
496 
497 	if (dwarf_loclist(at, &loc, &locnum, &dw->dw_err) != DW_DLV_OK)
498 		return (0);
499 
500 	if (locnum != 1 || loc->ld_s->lr_atom != DW_OP_plus_uconst) {
501 		terminate("die %llu: cannot parse member offset\n",
502 		    die_off(dw, die));
503 	}
504 
505 	*valp = loc->ld_s->lr_number;
506 
507 	if (loc != NULL) {
508 		dwarf_dealloc(dw->dw_dw, loc->ld_s, DW_DLA_LOC_BLOCK);
509 		dwarf_dealloc(dw->dw_dw, loc, DW_DLA_LOCDESC);
510 	}
511 
512 	return (1);
513 }
514 
515 static tdesc_t *
516 tdesc_intr_common(dwarf_t *dw, int tid, const char *name, size_t sz)
517 {
518 	tdesc_t *tdp;
519 	intr_t *intr;
520 
521 	intr = xcalloc(sizeof (intr_t));
522 	intr->intr_type = INTR_INT;
523 	intr->intr_signed = 1;
524 	intr->intr_nbits = sz * NBBY;
525 
526 	tdp = xcalloc(sizeof (tdesc_t));
527 	tdp->t_name = xstrdup(name);
528 	tdp->t_size = sz;
529 	tdp->t_id = tid;
530 	tdp->t_type = INTRINSIC;
531 	tdp->t_intr = intr;
532 	tdp->t_flags = TDESC_F_RESOLVED;
533 
534 	tdesc_add(dw, tdp);
535 
536 	return (tdp);
537 }
538 
539 /*
540  * Manufacture a void type.  Used for gcc-emitted stabs, where the lack of a
541  * type reference implies a reference to a void type.  A void *, for example
542  * will be represented by a pointer die without a DW_AT_type.  CTF requires
543  * that pointer nodes point to something, so we'll create a void for use as
544  * the target.  Note that the DWARF data may already create a void type.  Ours
545  * would then be a duplicate, but it'll be removed in the self-uniquification
546  * merge performed at the completion of DWARF->tdesc conversion.
547  */
548 static tdesc_t *
549 tdesc_intr_void(dwarf_t *dw)
550 {
551 	if (dw->dw_void == NULL)
552 		dw->dw_void = tdesc_intr_common(dw, TID_VOID, "void", 0);
553 
554 	return (dw->dw_void);
555 }
556 
557 static tdesc_t *
558 tdesc_intr_long(dwarf_t *dw)
559 {
560 	if (dw->dw_long == NULL) {
561 		dw->dw_long = tdesc_intr_common(dw, TID_LONG, "long",
562 		    dw->dw_ptrsz);
563 	}
564 
565 	return (dw->dw_long);
566 }
567 
568 /*
569  * Used for creating bitfield types.  We create a copy of an existing intrinsic,
570  * adjusting the size of the copy to match what the caller requested.  The
571  * caller can then use the copy as the type for a bitfield structure member.
572  */
573 static tdesc_t *
574 tdesc_intr_clone(dwarf_t *dw, tdesc_t *old, size_t bitsz)
575 {
576 	tdesc_t *new = xcalloc(sizeof (tdesc_t));
577 
578 	if (!(old->t_flags & TDESC_F_RESOLVED)) {
579 		terminate("tdp %u: attempt to make a bit field from an "
580 		    "unresolved type\n", old->t_id);
581 	}
582 
583 	new->t_name = xstrdup(old->t_name);
584 	new->t_size = old->t_size;
585 	new->t_id = mfgtid_next(dw);
586 	new->t_type = INTRINSIC;
587 	new->t_flags = TDESC_F_RESOLVED;
588 
589 	new->t_intr = xcalloc(sizeof (intr_t));
590 	bcopy(old->t_intr, new->t_intr, sizeof (intr_t));
591 	new->t_intr->intr_nbits = bitsz;
592 
593 	tdesc_add(dw, new);
594 
595 	return (new);
596 }
597 
598 static void
599 tdesc_array_create(dwarf_t *dw, Dwarf_Die dim, tdesc_t *arrtdp,
600     tdesc_t *dimtdp)
601 {
602 	Dwarf_Unsigned uval;
603 	Dwarf_Signed sval;
604 	tdesc_t *ctdp = NULL;
605 	Dwarf_Die dim2;
606 	ardef_t *ar;
607 
608 	if ((dim2 = die_sibling(dw, dim)) == NULL) {
609 		ctdp = arrtdp;
610 	} else if (die_tag(dw, dim2) == DW_TAG_subrange_type) {
611 		ctdp = xcalloc(sizeof (tdesc_t));
612 		ctdp->t_id = mfgtid_next(dw);
613 		debug(3, "die %llu: creating new type %u for sub-dimension\n",
614 		    die_off(dw, dim2), ctdp->t_id);
615 		tdesc_array_create(dw, dim2, arrtdp, ctdp);
616 	} else {
617 		terminate("die %llu: unexpected non-subrange node in array\n",
618 		    die_off(dw, dim2));
619 	}
620 
621 	dimtdp->t_type = ARRAY;
622 	dimtdp->t_ardef = ar = xcalloc(sizeof (ardef_t));
623 
624 	/*
625 	 * Array bounds can be signed or unsigned, but there are several kinds
626 	 * of signless forms (data1, data2, etc) that take their sign from the
627 	 * routine that is trying to interpret them.  That is, data1 can be
628 	 * either signed or unsigned, depending on whether you use the signed or
629 	 * unsigned accessor function.  GCC will use the signless forms to store
630 	 * unsigned values which have their high bit set, so we need to try to
631 	 * read them first as unsigned to get positive values.  We could also
632 	 * try signed first, falling back to unsigned if we got a negative
633 	 * value.
634 	 */
635 	if (die_unsigned(dw, dim, DW_AT_upper_bound, &uval, 0))
636 		ar->ad_nelems = uval + 1;
637 	else if (die_signed(dw, dim, DW_AT_upper_bound, &sval, 0))
638 		ar->ad_nelems = sval + 1;
639 	else
640 		ar->ad_nelems = 0;
641 
642 	/*
643 	 * Different compilers use different index types.  Force the type to be
644 	 * a common, known value (long).
645 	 */
646 	ar->ad_idxtype = tdesc_intr_long(dw);
647 	ar->ad_contents = ctdp;
648 
649 	if (ar->ad_contents->t_size != 0) {
650 		dimtdp->t_size = ar->ad_contents->t_size * ar->ad_nelems;
651 		dimtdp->t_flags |= TDESC_F_RESOLVED;
652 	}
653 }
654 
655 /*
656  * Create a tdesc from an array node.  Some arrays will come with byte size
657  * attributes, and thus can be resolved immediately.  Others don't, and will
658  * need to wait until the second pass for resolution.
659  */
660 static void
661 die_array_create(dwarf_t *dw, Dwarf_Die arr, Dwarf_Off off, tdesc_t *tdp)
662 {
663 	tdesc_t *arrtdp = die_lookup_pass1(dw, arr, DW_AT_type);
664 	Dwarf_Unsigned uval;
665 	Dwarf_Die dim;
666 
667 	debug(3, "die %llu <%llx>: creating array\n", off, off);
668 
669 	if ((dim = die_child(dw, arr)) == NULL ||
670 	    die_tag(dw, dim) != DW_TAG_subrange_type)
671 		terminate("die %llu: failed to retrieve array bounds\n", off);
672 
673 	tdesc_array_create(dw, dim, arrtdp, tdp);
674 
675 	if (die_unsigned(dw, arr, DW_AT_byte_size, &uval, 0)) {
676 		tdesc_t *dimtdp;
677 		int flags;
678 
679 		/* Check for bogus gcc DW_AT_byte_size attribute */
680 		if (uval == (unsigned)-1) {
681 			printf("dwarf.c:%s() working around bogus -1 DW_AT_byte_size\n",
682 			    __func__);
683 			uval = 0;
684 		}
685 
686 		tdp->t_size = uval;
687 
688 		/*
689 		 * Ensure that sub-dimensions have sizes too before marking
690 		 * as resolved.
691 		 */
692 		flags = TDESC_F_RESOLVED;
693 		for (dimtdp = tdp->t_ardef->ad_contents;
694 		    dimtdp->t_type == ARRAY;
695 		    dimtdp = dimtdp->t_ardef->ad_contents) {
696 			if (!(dimtdp->t_flags & TDESC_F_RESOLVED)) {
697 				flags = 0;
698 				break;
699 			}
700 		}
701 
702 		tdp->t_flags |= flags;
703 	}
704 
705 	debug(3, "die %llu <%llx>: array nelems %u size %u\n", off, off,
706 	    tdp->t_ardef->ad_nelems, tdp->t_size);
707 }
708 
709 /*ARGSUSED1*/
710 static int
711 die_array_resolve(tdesc_t *tdp, tdesc_t **tdpp __unused, void *private)
712 {
713 	dwarf_t *dw = private;
714 	size_t sz;
715 
716 	if (tdp->t_flags & TDESC_F_RESOLVED)
717 		return (1);
718 
719 	debug(3, "trying to resolve array %d (cont %d)\n", tdp->t_id,
720 	    tdp->t_ardef->ad_contents->t_id);
721 
722 	if ((sz = tdesc_size(tdp->t_ardef->ad_contents)) == 0) {
723 		debug(3, "unable to resolve array %s (%d) contents %d\n",
724 		    tdesc_name(tdp), tdp->t_id,
725 		    tdp->t_ardef->ad_contents->t_id);
726 
727 		dw->dw_nunres++;
728 		return (1);
729 	}
730 
731 	tdp->t_size = sz * tdp->t_ardef->ad_nelems;
732 	tdp->t_flags |= TDESC_F_RESOLVED;
733 
734 	debug(3, "resolved array %d: %u bytes\n", tdp->t_id, tdp->t_size);
735 
736 	return (1);
737 }
738 
739 /*ARGSUSED1*/
740 static int
741 die_array_failed(tdesc_t *tdp, tdesc_t **tdpp __unused, void *private __unused)
742 {
743 	tdesc_t *cont = tdp->t_ardef->ad_contents;
744 
745 	if (tdp->t_flags & TDESC_F_RESOLVED)
746 		return (1);
747 
748 	fprintf(stderr, "Array %d: failed to size contents type %s (%d)\n",
749 	    tdp->t_id, tdesc_name(cont), cont->t_id);
750 
751 	return (1);
752 }
753 
754 /*
755  * Most enums (those with members) will be resolved during this first pass.
756  * Others - those without members (see the file comment) - won't be, and will
757  * need to wait until the second pass when they can be matched with their full
758  * definitions.
759  */
760 static void
761 die_enum_create(dwarf_t *dw, Dwarf_Die die, Dwarf_Off off, tdesc_t *tdp)
762 {
763 	Dwarf_Die mem;
764 	Dwarf_Unsigned uval;
765 	Dwarf_Signed sval;
766 
767 	debug(3, "die %llu: creating enum\n", off);
768 
769 	tdp->t_type = ENUM;
770 
771 	(void) die_unsigned(dw, die, DW_AT_byte_size, &uval, DW_ATTR_REQ);
772 	/* Check for bogus gcc DW_AT_byte_size attribute */
773 	if (uval == (unsigned)-1) {
774 		printf("dwarf.c:%s() working around bogus -1 DW_AT_byte_size\n",
775 		    __func__);
776 		uval = 0;
777 	}
778 	tdp->t_size = uval;
779 
780 	if ((mem = die_child(dw, die)) != NULL) {
781 		elist_t **elastp = &tdp->t_emem;
782 
783 		do {
784 			elist_t *el;
785 
786 			if (die_tag(dw, mem) != DW_TAG_enumerator) {
787 				/* Nested type declaration */
788 				die_create_one(dw, mem);
789 				continue;
790 			}
791 
792 			el = xcalloc(sizeof (elist_t));
793 			el->el_name = die_name(dw, mem);
794 
795 			if (die_signed(dw, mem, DW_AT_const_value, &sval, 0)) {
796 				el->el_number = sval;
797 			} else if (die_unsigned(dw, mem, DW_AT_const_value,
798 			    &uval, 0)) {
799 				el->el_number = uval;
800 			} else {
801 				terminate("die %llu: enum %llu: member without "
802 				    "value\n", off, die_off(dw, mem));
803 			}
804 
805 			debug(3, "die %llu: enum %llu: created %s = %d\n", off,
806 			    die_off(dw, mem), el->el_name, el->el_number);
807 
808 			*elastp = el;
809 			elastp = &el->el_next;
810 
811 		} while ((mem = die_sibling(dw, mem)) != NULL);
812 
813 		hash_add(dw->dw_enumhash, tdp);
814 
815 		tdp->t_flags |= TDESC_F_RESOLVED;
816 
817 		if (tdp->t_name != NULL) {
818 			iidesc_t *ii = xcalloc(sizeof (iidesc_t));
819 			ii->ii_type = II_SOU;
820 			ii->ii_name = xstrdup(tdp->t_name);
821 			ii->ii_dtype = tdp;
822 
823 			iidesc_add(dw->dw_td->td_iihash, ii);
824 		}
825 	}
826 }
827 
828 static int
829 die_enum_match(void *arg1, void *arg2)
830 {
831 	tdesc_t *tdp = arg1, **fullp = arg2;
832 
833 	if (tdp->t_emem != NULL) {
834 		*fullp = tdp;
835 		return (-1); /* stop the iteration */
836 	}
837 
838 	return (0);
839 }
840 
841 /*ARGSUSED1*/
842 static int
843 die_enum_resolve(tdesc_t *tdp, tdesc_t **tdpp __unused, void *private)
844 {
845 	dwarf_t *dw = private;
846 	tdesc_t *full = NULL;
847 
848 	if (tdp->t_flags & TDESC_F_RESOLVED)
849 		return (1);
850 
851 	(void) hash_find_iter(dw->dw_enumhash, tdp, die_enum_match, &full);
852 
853 	/*
854 	 * The answer to this one won't change from iteration to iteration,
855 	 * so don't even try.
856 	 */
857 	if (full == NULL) {
858 		terminate("tdp %u: enum %s has no members\n", tdp->t_id,
859 		    tdesc_name(tdp));
860 	}
861 
862 	debug(3, "tdp %u: enum %s redirected to %u\n", tdp->t_id,
863 	    tdesc_name(tdp), full->t_id);
864 
865 	tdp->t_flags |= TDESC_F_RESOLVED;
866 
867 	return (1);
868 }
869 
870 static int
871 die_fwd_map(void *arg1, void *arg2)
872 {
873 	tdesc_t *fwd = arg1, *sou = arg2;
874 
875 	debug(3, "tdp %u: mapped forward %s to sou %u\n", fwd->t_id,
876 	    tdesc_name(fwd), sou->t_id);
877 	fwd->t_tdesc = sou;
878 
879 	return (0);
880 }
881 
882 /*
883  * Structures and unions will never be resolved during the first pass, as we
884  * won't be able to fully determine the member sizes.  The second pass, which
885  * have access to sizing information, will be able to complete the resolution.
886  */
887 static void
888 die_sou_create(dwarf_t *dw, Dwarf_Die str, Dwarf_Off off, tdesc_t *tdp,
889     int type, const char *typename)
890 {
891 	Dwarf_Unsigned sz, bitsz, bitoff, maxsz=0;
892 	Dwarf_Die mem;
893 	mlist_t *ml, **mlastp;
894 	iidesc_t *ii;
895 
896 	tdp->t_type = (die_isdecl(dw, str) ? FORWARD : type);
897 
898 	debug(3, "die %llu: creating %s %s\n", off,
899 	    (tdp->t_type == FORWARD ? "forward decl" : typename),
900 	    tdesc_name(tdp));
901 
902 	if (tdp->t_type == FORWARD) {
903 		hash_add(dw->dw_fwdhash, tdp);
904 		return;
905 	}
906 
907 	(void) hash_find_iter(dw->dw_fwdhash, tdp, die_fwd_map, tdp);
908 
909 	(void) die_unsigned(dw, str, DW_AT_byte_size, &sz, DW_ATTR_REQ);
910 	tdp->t_size = sz;
911 
912 	/*
913 	 * GCC allows empty SOUs as an extension.
914 	 */
915 	if ((mem = die_child(dw, str)) == NULL) {
916 		goto out;
917 	}
918 
919 	mlastp = &tdp->t_members;
920 
921 	do {
922 		Dwarf_Off memoff = die_off(dw, mem);
923 		Dwarf_Half tag = die_tag(dw, mem);
924 		Dwarf_Unsigned mloff;
925 
926 		if (tag != DW_TAG_member) {
927 			/* Nested type declaration */
928 			die_create_one(dw, mem);
929 			continue;
930 		}
931 
932 		debug(3, "die %llu: mem %llu: creating member\n", off, memoff);
933 
934 		ml = xcalloc(sizeof (mlist_t));
935 
936 		/*
937 		 * This could be a GCC anon struct/union member, so we'll allow
938 		 * an empty name, even though nothing can really handle them
939 		 * properly.  Note that some versions of GCC miss out debug
940 		 * info for anon structs, though recent versions are fixed (gcc
941 		 * bug 11816).
942 		 */
943 		if ((ml->ml_name = die_name(dw, mem)) == NULL)
944 			ml->ml_name = NULL;
945 
946 		ml->ml_type = die_lookup_pass1(dw, mem, DW_AT_type);
947 		debug(3, "die_sou_create(): ml_type = %p t_id = %d\n",
948 		    ml->ml_type, ml->ml_type->t_id);
949 
950 		if (die_mem_offset(dw, mem, DW_AT_data_member_location,
951 		    &mloff, 0)) {
952 			debug(3, "die %llu: got mloff %llx\n", off,
953 			    (u_longlong_t)mloff);
954 			ml->ml_offset = mloff * 8;
955 		}
956 
957 		if (die_unsigned(dw, mem, DW_AT_bit_size, &bitsz, 0))
958 			ml->ml_size = bitsz;
959 		else
960 			ml->ml_size = tdesc_bitsize(ml->ml_type);
961 
962 		if (die_unsigned(dw, mem, DW_AT_bit_offset, &bitoff, 0)) {
963 #if BYTE_ORDER == _BIG_ENDIAN
964 			ml->ml_offset += bitoff;
965 #else
966 			ml->ml_offset += tdesc_bitsize(ml->ml_type) - bitoff -
967 			    ml->ml_size;
968 #endif
969 		}
970 
971 		debug(3, "die %llu: mem %llu: created \"%s\" (off %u sz %u)\n",
972 		    off, memoff, ml->ml_name, ml->ml_offset, ml->ml_size);
973 
974 		*mlastp = ml;
975 		mlastp = &ml->ml_next;
976 
977 		/* Find the size of the largest member to work around a gcc
978 		 * bug.  See GCC Bugzilla 35998.
979 		 */
980 		if (maxsz < ml->ml_size)
981 			maxsz = ml->ml_size;
982 
983 	} while ((mem = die_sibling(dw, mem)) != NULL);
984 
985 	/* See if we got a bogus DW_AT_byte_size.  GCC will sometimes
986 	 * emit this.
987 	 */
988 	if (sz == (unsigned)-1) {
989 		 printf("dwarf.c:%s() working around bogus -1 DW_AT_byte_size\n",
990 		     __func__);
991 		 tdp->t_size = maxsz / 8;  /* maxsz is in bits, t_size is bytes */
992 	}
993 
994 	/*
995 	 * GCC will attempt to eliminate unused types, thus decreasing the
996 	 * size of the emitted dwarf.  That is, if you declare a foo_t in your
997 	 * header, include said header in your source file, and neglect to
998 	 * actually use (directly or indirectly) the foo_t in the source file,
999 	 * the foo_t won't make it into the emitted DWARF.  So, at least, goes
1000 	 * the theory.
1001 	 *
1002 	 * Occasionally, it'll emit the DW_TAG_structure_type for the foo_t,
1003 	 * and then neglect to emit the members.  Strangely, the loner struct
1004 	 * tag will always be followed by a proper nested declaration of
1005 	 * something else.  This is clearly a bug, but we're not going to have
1006 	 * time to get it fixed before this goo goes back, so we'll have to work
1007 	 * around it.  If we see a no-membered struct with a nested declaration
1008 	 * (i.e. die_child of the struct tag won't be null), we'll ignore it.
1009 	 * Being paranoid, we won't simply remove it from the hash.  Instead,
1010 	 * we'll decline to create an iidesc for it, thus ensuring that this
1011 	 * type won't make it into the output file.  To be safe, we'll also
1012 	 * change the name.
1013 	 */
1014 	if (tdp->t_members == NULL) {
1015 		const char *old = tdesc_name(tdp);
1016 		size_t newsz = 7 + strlen(old) + 1;
1017 		char *new = xmalloc(newsz);
1018 		(void) snprintf(new, newsz, "orphan %s", old);
1019 
1020 		debug(3, "die %llu: worked around %s %s\n", off, typename, old);
1021 
1022 		if (tdp->t_name != NULL)
1023 			free(tdp->t_name);
1024 		tdp->t_name = new;
1025 		return;
1026 	}
1027 
1028 out:
1029 	if (tdp->t_name != NULL) {
1030 		ii = xcalloc(sizeof (iidesc_t));
1031 		ii->ii_type = II_SOU;
1032 		ii->ii_name = xstrdup(tdp->t_name);
1033 		ii->ii_dtype = tdp;
1034 
1035 		iidesc_add(dw->dw_td->td_iihash, ii);
1036 	}
1037 }
1038 
1039 static void
1040 die_struct_create(dwarf_t *dw, Dwarf_Die die, Dwarf_Off off, tdesc_t *tdp)
1041 {
1042 	die_sou_create(dw, die, off, tdp, STRUCT, "struct");
1043 }
1044 
1045 static void
1046 die_union_create(dwarf_t *dw, Dwarf_Die die, Dwarf_Off off, tdesc_t *tdp)
1047 {
1048 	die_sou_create(dw, die, off, tdp, UNION, "union");
1049 }
1050 
1051 /*ARGSUSED1*/
1052 static int
1053 die_sou_resolve(tdesc_t *tdp, tdesc_t **tdpp __unused, void *private)
1054 {
1055 	dwarf_t *dw = private;
1056 	mlist_t *ml;
1057 	tdesc_t *mt;
1058 
1059 	if (tdp->t_flags & TDESC_F_RESOLVED)
1060 		return (1);
1061 
1062 	debug(3, "resolving sou %s\n", tdesc_name(tdp));
1063 
1064 	for (ml = tdp->t_members; ml != NULL; ml = ml->ml_next) {
1065 		if (ml->ml_size == 0) {
1066 			mt = tdesc_basetype(ml->ml_type);
1067 
1068 			if ((ml->ml_size = tdesc_bitsize(mt)) != 0)
1069 				continue;
1070 
1071 			/*
1072 			 * For empty members, or GCC/C99 flexible array
1073 			 * members, a size of 0 is correct.
1074 			 */
1075 			if (mt->t_members == NULL)
1076 				continue;
1077 			if (mt->t_type == ARRAY && mt->t_ardef->ad_nelems == 0)
1078 				continue;
1079 
1080 			dw->dw_nunres++;
1081 			return (1);
1082 		}
1083 
1084 		if ((mt = tdesc_basetype(ml->ml_type)) == NULL) {
1085 			dw->dw_nunres++;
1086 			return (1);
1087 		}
1088 
1089 		if (ml->ml_size != 0 && mt->t_type == INTRINSIC &&
1090 		    mt->t_intr->intr_nbits != (int)ml->ml_size) {
1091 			/*
1092 			 * This member is a bitfield, and needs to reference
1093 			 * an intrinsic type with the same width.  If the
1094 			 * currently-referenced type isn't of the same width,
1095 			 * we'll copy it, adjusting the width of the copy to
1096 			 * the size we'd like.
1097 			 */
1098 			debug(3, "tdp %u: creating bitfield for %d bits\n",
1099 			    tdp->t_id, ml->ml_size);
1100 
1101 			ml->ml_type = tdesc_intr_clone(dw, mt, ml->ml_size);
1102 		}
1103 	}
1104 
1105 	tdp->t_flags |= TDESC_F_RESOLVED;
1106 
1107 	return (1);
1108 }
1109 
1110 /*ARGSUSED1*/
1111 static int
1112 die_sou_failed(tdesc_t *tdp, tdesc_t **tdpp __unused, void *private __unused)
1113 {
1114 	const char *typename = (tdp->t_type == STRUCT ? "struct" : "union");
1115 	mlist_t *ml;
1116 
1117 	if (tdp->t_flags & TDESC_F_RESOLVED)
1118 		return (1);
1119 
1120 	for (ml = tdp->t_members; ml != NULL; ml = ml->ml_next) {
1121 		if (ml->ml_size == 0) {
1122 			fprintf(stderr, "%s %d <%x>: failed to size member \"%s\" "
1123 			    "of type %s (%d <%x>)\n", typename, tdp->t_id,
1124 			    tdp->t_id,
1125 			    ml->ml_name, tdesc_name(ml->ml_type),
1126 			    ml->ml_type->t_id, ml->ml_type->t_id);
1127 		}
1128 	}
1129 
1130 	return (1);
1131 }
1132 
1133 static void
1134 die_funcptr_create(dwarf_t *dw, Dwarf_Die die, Dwarf_Off off, tdesc_t *tdp)
1135 {
1136 	Dwarf_Attribute attr;
1137 	Dwarf_Half tag;
1138 	Dwarf_Die arg;
1139 	fndef_t *fn;
1140 	int i;
1141 
1142 	debug(3, "die %llu <%llx>: creating function pointer\n", off, off);
1143 
1144 	/*
1145 	 * We'll begin by processing any type definition nodes that may be
1146 	 * lurking underneath this one.
1147 	 */
1148 	for (arg = die_child(dw, die); arg != NULL;
1149 	    arg = die_sibling(dw, arg)) {
1150 		if ((tag = die_tag(dw, arg)) != DW_TAG_formal_parameter &&
1151 		    tag != DW_TAG_unspecified_parameters) {
1152 			/* Nested type declaration */
1153 			die_create_one(dw, arg);
1154 		}
1155 	}
1156 
1157 	if (die_isdecl(dw, die)) {
1158 		/*
1159 		 * This is a prototype.  We don't add prototypes to the
1160 		 * tree, so we're going to drop the tdesc.  Unfortunately,
1161 		 * it has already been added to the tree.  Nobody will reference
1162 		 * it, though, and it will be leaked.
1163 		 */
1164 		return;
1165 	}
1166 
1167 	fn = xcalloc(sizeof (fndef_t));
1168 
1169 	tdp->t_type = FUNCTION;
1170 
1171 	if ((attr = die_attr(dw, die, DW_AT_type, 0)) != NULL) {
1172 		fn->fn_ret = die_lookup_pass1(dw, die, DW_AT_type);
1173 	} else {
1174 		fn->fn_ret = tdesc_intr_void(dw);
1175 	}
1176 
1177 	/*
1178 	 * Count the arguments to the function, then read them in.
1179 	 */
1180 	for (fn->fn_nargs = 0, arg = die_child(dw, die); arg != NULL;
1181 	    arg = die_sibling(dw, arg)) {
1182 		if ((tag = die_tag(dw, arg)) == DW_TAG_formal_parameter)
1183 			fn->fn_nargs++;
1184 		else if (tag == DW_TAG_unspecified_parameters &&
1185 		    fn->fn_nargs > 0)
1186 			fn->fn_vargs = 1;
1187 	}
1188 
1189 	if (fn->fn_nargs != 0) {
1190 		debug(3, "die %llu: adding %d argument%s\n", off, fn->fn_nargs,
1191 		    (fn->fn_nargs > 1 ? "s" : ""));
1192 
1193 		fn->fn_args = xcalloc(sizeof (tdesc_t *) * fn->fn_nargs);
1194 		for (i = 0, arg = die_child(dw, die);
1195 		    arg != NULL && i < (int) fn->fn_nargs;
1196 		    arg = die_sibling(dw, arg)) {
1197 			if (die_tag(dw, arg) != DW_TAG_formal_parameter)
1198 				continue;
1199 
1200 			fn->fn_args[i++] = die_lookup_pass1(dw, arg,
1201 			    DW_AT_type);
1202 		}
1203 	}
1204 
1205 	tdp->t_fndef = fn;
1206 	tdp->t_flags |= TDESC_F_RESOLVED;
1207 }
1208 
1209 /*
1210  * GCC and DevPro use different names for the base types.  While the terms are
1211  * the same, they are arranged in a different order.  Some terms, such as int,
1212  * are implied in one, and explicitly named in the other.  Given a base type
1213  * as input, this routine will return a common name, along with an intr_t
1214  * that reflects said name.
1215  */
1216 static intr_t *
1217 die_base_name_parse(const char *name, char **newp)
1218 {
1219 	char buf[100];
1220 	char const *base;
1221 	char *c;
1222 	int nlong = 0, nshort = 0, nchar = 0, nint = 0;
1223 	int sign = 1;
1224 	char fmt = '\0';
1225 	intr_t *intr;
1226 
1227 	if (strlen(name) > sizeof (buf) - 1)
1228 		terminate("base type name \"%s\" is too long\n", name);
1229 
1230 	strncpy(buf, name, sizeof (buf));
1231 
1232 	for (c = strtok(buf, " "); c != NULL; c = strtok(NULL, " ")) {
1233 		if (strcmp(c, "signed") == 0)
1234 			sign = 1;
1235 		else if (strcmp(c, "unsigned") == 0)
1236 			sign = 0;
1237 		else if (strcmp(c, "long") == 0)
1238 			nlong++;
1239 		else if (strcmp(c, "char") == 0) {
1240 			nchar++;
1241 			fmt = 'c';
1242 		} else if (strcmp(c, "short") == 0)
1243 			nshort++;
1244 		else if (strcmp(c, "int") == 0)
1245 			nint++;
1246 		else {
1247 			/*
1248 			 * If we don't recognize any of the tokens, we'll tell
1249 			 * the caller to fall back to the dwarf-provided
1250 			 * encoding information.
1251 			 */
1252 			return (NULL);
1253 		}
1254 	}
1255 
1256 	if (nchar > 1 || nshort > 1 || nint > 1 || nlong > 2)
1257 		return (NULL);
1258 
1259 	if (nchar > 0) {
1260 		if (nlong > 0 || nshort > 0 || nint > 0)
1261 			return (NULL);
1262 
1263 		base = "char";
1264 
1265 	} else if (nshort > 0) {
1266 		if (nlong > 0)
1267 			return (NULL);
1268 
1269 		base = "short";
1270 
1271 	} else if (nlong > 0) {
1272 		base = "long";
1273 
1274 	} else {
1275 		base = "int";
1276 	}
1277 
1278 	intr = xcalloc(sizeof (intr_t));
1279 	intr->intr_type = INTR_INT;
1280 	intr->intr_signed = sign;
1281 	intr->intr_iformat = fmt;
1282 
1283 	snprintf(buf, sizeof (buf), "%s%s%s",
1284 	    (sign ? "" : "unsigned "),
1285 	    (nlong > 1 ? "long " : ""),
1286 	    base);
1287 
1288 	*newp = xstrdup(buf);
1289 	return (intr);
1290 }
1291 
1292 typedef struct fp_size_map {
1293 	size_t fsm_typesz[2];	/* size of {32,64} type */
1294 	uint_t fsm_enc[3];	/* CTF_FP_* for {bare,cplx,imagry} type */
1295 } fp_size_map_t;
1296 
1297 static const fp_size_map_t fp_encodings[] = {
1298 	{ { 4, 4 }, { CTF_FP_SINGLE, CTF_FP_CPLX, CTF_FP_IMAGRY } },
1299 	{ { 8, 8 }, { CTF_FP_DOUBLE, CTF_FP_DCPLX, CTF_FP_DIMAGRY } },
1300 #ifdef __sparc
1301 	{ { 16, 16 }, { CTF_FP_LDOUBLE, CTF_FP_LDCPLX, CTF_FP_LDIMAGRY } },
1302 #else
1303 	{ { 12, 16 }, { CTF_FP_LDOUBLE, CTF_FP_LDCPLX, CTF_FP_LDIMAGRY } },
1304 #endif
1305 	{ { 0, 0 }, { 0, 0, 0 } }
1306 };
1307 
1308 static uint_t
1309 die_base_type2enc(dwarf_t *dw, Dwarf_Off off, Dwarf_Signed enc, size_t sz)
1310 {
1311 	const fp_size_map_t *map = fp_encodings;
1312 	uint_t szidx = dw->dw_ptrsz == sizeof (uint64_t);
1313 	uint_t mult = 1, col = 0;
1314 
1315 	if (enc == DW_ATE_complex_float) {
1316 		mult = 2;
1317 		col = 1;
1318 	} else if (enc == DW_ATE_imaginary_float
1319 #if defined(sun)
1320 	    || enc == DW_ATE_SUN_imaginary_float
1321 #endif
1322 	    )
1323 		col = 2;
1324 
1325 	while (map->fsm_typesz[szidx] != 0) {
1326 		if (map->fsm_typesz[szidx] * mult == sz)
1327 			return (map->fsm_enc[col]);
1328 		map++;
1329 	}
1330 
1331 	terminate("die %llu: unrecognized real type size %u\n", off, sz);
1332 	/*NOTREACHED*/
1333 	return (0);
1334 }
1335 
1336 static intr_t *
1337 die_base_from_dwarf(dwarf_t *dw, Dwarf_Die base, Dwarf_Off off, size_t sz)
1338 {
1339 	intr_t *intr = xcalloc(sizeof (intr_t));
1340 	Dwarf_Signed enc;
1341 
1342 	(void) die_signed(dw, base, DW_AT_encoding, &enc, DW_ATTR_REQ);
1343 
1344 	switch (enc) {
1345 	case DW_ATE_unsigned:
1346 	case DW_ATE_address:
1347 		intr->intr_type = INTR_INT;
1348 		break;
1349 	case DW_ATE_unsigned_char:
1350 		intr->intr_type = INTR_INT;
1351 		intr->intr_iformat = 'c';
1352 		break;
1353 	case DW_ATE_signed:
1354 		intr->intr_type = INTR_INT;
1355 		intr->intr_signed = 1;
1356 		break;
1357 	case DW_ATE_signed_char:
1358 		intr->intr_type = INTR_INT;
1359 		intr->intr_signed = 1;
1360 		intr->intr_iformat = 'c';
1361 		break;
1362 	case DW_ATE_boolean:
1363 		intr->intr_type = INTR_INT;
1364 		intr->intr_signed = 1;
1365 		intr->intr_iformat = 'b';
1366 		break;
1367 	case DW_ATE_float:
1368 	case DW_ATE_complex_float:
1369 	case DW_ATE_imaginary_float:
1370 #if defined(sun)
1371 	case DW_ATE_SUN_imaginary_float:
1372 	case DW_ATE_SUN_interval_float:
1373 #endif
1374 		intr->intr_type = INTR_REAL;
1375 		intr->intr_signed = 1;
1376 		intr->intr_fformat = die_base_type2enc(dw, off, enc, sz);
1377 		break;
1378 	default:
1379 		terminate("die %llu: unknown base type encoding 0x%llx\n",
1380 		    off, enc);
1381 	}
1382 
1383 	return (intr);
1384 }
1385 
1386 static void
1387 die_base_create(dwarf_t *dw, Dwarf_Die base, Dwarf_Off off, tdesc_t *tdp)
1388 {
1389 	Dwarf_Unsigned sz;
1390 	intr_t *intr;
1391 	char *new;
1392 
1393 	debug(3, "die %llu: creating base type\n", off);
1394 
1395 	/*
1396 	 * The compilers have their own clever (internally inconsistent) ideas
1397 	 * as to what base types should look like.  Some times gcc will, for
1398 	 * example, use DW_ATE_signed_char for char.  Other times, however, it
1399 	 * will use DW_ATE_signed.  Needless to say, this causes some problems
1400 	 * down the road, particularly with merging.  We do, however, use the
1401 	 * DWARF idea of type sizes, as this allows us to avoid caring about
1402 	 * the data model.
1403 	 */
1404 	(void) die_unsigned(dw, base, DW_AT_byte_size, &sz, DW_ATTR_REQ);
1405 
1406 	/* Check for bogus gcc DW_AT_byte_size attribute */
1407 	if (sz == (unsigned)-1) {
1408 		printf("dwarf.c:%s() working around bogus -1 DW_AT_byte_size\n",
1409 		    __func__);
1410 		sz = 0;
1411 	}
1412 
1413 	if (tdp->t_name == NULL)
1414 		terminate("die %llu: base type without name\n", off);
1415 
1416 	/* XXX make a name parser for float too */
1417 	if ((intr = die_base_name_parse(tdp->t_name, &new)) != NULL) {
1418 		/* Found it.  We'll use the parsed version */
1419 		debug(3, "die %llu: name \"%s\" remapped to \"%s\"\n", off,
1420 		    tdesc_name(tdp), new);
1421 
1422 		free(tdp->t_name);
1423 		tdp->t_name = new;
1424 	} else {
1425 		/*
1426 		 * We didn't recognize the type, so we'll create an intr_t
1427 		 * based on the DWARF data.
1428 		 */
1429 		debug(3, "die %llu: using dwarf data for base \"%s\"\n", off,
1430 		    tdesc_name(tdp));
1431 
1432 		intr = die_base_from_dwarf(dw, base, off, sz);
1433 	}
1434 
1435 	intr->intr_nbits = sz * 8;
1436 
1437 	tdp->t_type = INTRINSIC;
1438 	tdp->t_intr = intr;
1439 	tdp->t_size = sz;
1440 
1441 	tdp->t_flags |= TDESC_F_RESOLVED;
1442 }
1443 
1444 static void
1445 die_through_create(dwarf_t *dw, Dwarf_Die die, Dwarf_Off off, tdesc_t *tdp,
1446     int type, const char *typename)
1447 {
1448 	Dwarf_Attribute attr;
1449 
1450 	debug(3, "die %llu <%llx>: creating %s type %d\n", off, off, typename, type);
1451 
1452 	tdp->t_type = type;
1453 
1454 	if ((attr = die_attr(dw, die, DW_AT_type, 0)) != NULL) {
1455 		tdp->t_tdesc = die_lookup_pass1(dw, die, DW_AT_type);
1456 	} else {
1457 		tdp->t_tdesc = tdesc_intr_void(dw);
1458 	}
1459 
1460 	if (type == POINTER)
1461 		tdp->t_size = dw->dw_ptrsz;
1462 
1463 	tdp->t_flags |= TDESC_F_RESOLVED;
1464 
1465 	if (type == TYPEDEF) {
1466 		iidesc_t *ii = xcalloc(sizeof (iidesc_t));
1467 		ii->ii_type = II_TYPE;
1468 		ii->ii_name = xstrdup(tdp->t_name);
1469 		ii->ii_dtype = tdp;
1470 
1471 		iidesc_add(dw->dw_td->td_iihash, ii);
1472 	}
1473 }
1474 
1475 static void
1476 die_typedef_create(dwarf_t *dw, Dwarf_Die die, Dwarf_Off off, tdesc_t *tdp)
1477 {
1478 	die_through_create(dw, die, off, tdp, TYPEDEF, "typedef");
1479 }
1480 
1481 static void
1482 die_const_create(dwarf_t *dw, Dwarf_Die die, Dwarf_Off off, tdesc_t *tdp)
1483 {
1484 	die_through_create(dw, die, off, tdp, CONST, "const");
1485 }
1486 
1487 static void
1488 die_pointer_create(dwarf_t *dw, Dwarf_Die die, Dwarf_Off off, tdesc_t *tdp)
1489 {
1490 	die_through_create(dw, die, off, tdp, POINTER, "pointer");
1491 }
1492 
1493 static void
1494 die_restrict_create(dwarf_t *dw, Dwarf_Die die, Dwarf_Off off, tdesc_t *tdp)
1495 {
1496 	die_through_create(dw, die, off, tdp, RESTRICT, "restrict");
1497 }
1498 
1499 static void
1500 die_volatile_create(dwarf_t *dw, Dwarf_Die die, Dwarf_Off off, tdesc_t *tdp)
1501 {
1502 	die_through_create(dw, die, off, tdp, VOLATILE, "volatile");
1503 }
1504 
1505 /*ARGSUSED3*/
1506 static void
1507 die_function_create(dwarf_t *dw, Dwarf_Die die, Dwarf_Off off, tdesc_t *tdp __unused)
1508 {
1509 	Dwarf_Die arg;
1510 	Dwarf_Half tag;
1511 	iidesc_t *ii;
1512 	char *name;
1513 
1514 	debug(3, "die %llu <%llx>: creating function definition\n", off, off);
1515 
1516 	/*
1517 	 * We'll begin by processing any type definition nodes that may be
1518 	 * lurking underneath this one.
1519 	 */
1520 	for (arg = die_child(dw, die); arg != NULL;
1521 	    arg = die_sibling(dw, arg)) {
1522 		if ((tag = die_tag(dw, arg)) != DW_TAG_formal_parameter &&
1523 		    tag != DW_TAG_variable) {
1524 			/* Nested type declaration */
1525 			die_create_one(dw, arg);
1526 		}
1527 	}
1528 
1529 	if (die_isdecl(dw, die) || (name = die_name(dw, die)) == NULL) {
1530 		/*
1531 		 * We process neither prototypes nor subprograms without
1532 		 * names.
1533 		 */
1534 		return;
1535 	}
1536 
1537 	ii = xcalloc(sizeof (iidesc_t));
1538 	ii->ii_type = die_isglobal(dw, die) ? II_GFUN : II_SFUN;
1539 	ii->ii_name = name;
1540 	if (ii->ii_type == II_SFUN)
1541 		ii->ii_owner = xstrdup(dw->dw_cuname);
1542 
1543 	debug(3, "die %llu: function %s is %s\n", off, ii->ii_name,
1544 	    (ii->ii_type == II_GFUN ? "global" : "static"));
1545 
1546 	if (die_attr(dw, die, DW_AT_type, 0) != NULL)
1547 		ii->ii_dtype = die_lookup_pass1(dw, die, DW_AT_type);
1548 	else
1549 		ii->ii_dtype = tdesc_intr_void(dw);
1550 
1551 	for (arg = die_child(dw, die); arg != NULL;
1552 	    arg = die_sibling(dw, arg)) {
1553 		char *name1;
1554 
1555 		debug(3, "die %llu: looking at sub member at %llu\n",
1556 		    off, die_off(dw, die));
1557 
1558 		if (die_tag(dw, arg) != DW_TAG_formal_parameter)
1559 			continue;
1560 
1561 		if ((name1 = die_name(dw, arg)) == NULL) {
1562 			terminate("die %llu: func arg %d has no name\n",
1563 			    off, ii->ii_nargs + 1);
1564 		}
1565 
1566 		if (strcmp(name1, "...") == 0) {
1567 			free(name1);
1568 			ii->ii_vargs = 1;
1569 			continue;
1570 		}
1571 
1572 		ii->ii_nargs++;
1573 	}
1574 
1575 	if (ii->ii_nargs > 0) {
1576 		int i;
1577 
1578 		debug(3, "die %llu: function has %d argument%s\n", off,
1579 		    ii->ii_nargs, (ii->ii_nargs == 1 ? "" : "s"));
1580 
1581 		ii->ii_args = xcalloc(sizeof (tdesc_t) * ii->ii_nargs);
1582 
1583 		for (arg = die_child(dw, die), i = 0;
1584 		    arg != NULL && i < ii->ii_nargs;
1585 		    arg = die_sibling(dw, arg)) {
1586 			if (die_tag(dw, arg) != DW_TAG_formal_parameter)
1587 				continue;
1588 
1589 			ii->ii_args[i++] = die_lookup_pass1(dw, arg,
1590 			    DW_AT_type);
1591 		}
1592 	}
1593 
1594 	iidesc_add(dw->dw_td->td_iihash, ii);
1595 }
1596 
1597 /*ARGSUSED3*/
1598 static void
1599 die_variable_create(dwarf_t *dw, Dwarf_Die die, Dwarf_Off off, tdesc_t *tdp __unused)
1600 {
1601 	iidesc_t *ii;
1602 	char *name;
1603 
1604 	debug(3, "die %llu: creating object definition\n", off);
1605 
1606 	if (die_isdecl(dw, die) || (name = die_name(dw, die)) == NULL)
1607 		return; /* skip prototypes and nameless objects */
1608 
1609 	ii = xcalloc(sizeof (iidesc_t));
1610 	ii->ii_type = die_isglobal(dw, die) ? II_GVAR : II_SVAR;
1611 	ii->ii_name = name;
1612 	ii->ii_dtype = die_lookup_pass1(dw, die, DW_AT_type);
1613 	if (ii->ii_type == II_SVAR)
1614 		ii->ii_owner = xstrdup(dw->dw_cuname);
1615 
1616 	iidesc_add(dw->dw_td->td_iihash, ii);
1617 }
1618 
1619 /*ARGSUSED2*/
1620 static int
1621 die_fwd_resolve(tdesc_t *fwd, tdesc_t **fwdp, void *private __unused)
1622 {
1623 	if (fwd->t_flags & TDESC_F_RESOLVED)
1624 		return (1);
1625 
1626 	if (fwd->t_tdesc != NULL) {
1627 		debug(3, "tdp %u: unforwarded %s\n", fwd->t_id,
1628 		    tdesc_name(fwd));
1629 		*fwdp = fwd->t_tdesc;
1630 	}
1631 
1632 	fwd->t_flags |= TDESC_F_RESOLVED;
1633 
1634 	return (1);
1635 }
1636 
1637 /*ARGSUSED*/
1638 static void
1639 die_lexblk_descend(dwarf_t *dw, Dwarf_Die die, Dwarf_Off off __unused, tdesc_t *tdp __unused)
1640 {
1641 	Dwarf_Die child = die_child(dw, die);
1642 
1643 	if (child != NULL)
1644 		die_create(dw, child);
1645 }
1646 
1647 /*
1648  * Used to map the die to a routine which can parse it, using the tag to do the
1649  * mapping.  While the processing of most tags entails the creation of a tdesc,
1650  * there are a few which don't - primarily those which result in the creation of
1651  * iidescs which refer to existing tdescs.
1652  */
1653 
1654 #define	DW_F_NOTDP	0x1	/* Don't create a tdesc for the creator */
1655 
1656 typedef struct die_creator {
1657 	Dwarf_Half dc_tag;
1658 	uint16_t dc_flags;
1659 	void (*dc_create)(dwarf_t *, Dwarf_Die, Dwarf_Off, tdesc_t *);
1660 } die_creator_t;
1661 
1662 static const die_creator_t die_creators[] = {
1663 	{ DW_TAG_array_type,		0,		die_array_create },
1664 	{ DW_TAG_enumeration_type,	0,		die_enum_create },
1665 	{ DW_TAG_lexical_block,		DW_F_NOTDP,	die_lexblk_descend },
1666 	{ DW_TAG_pointer_type,		0,		die_pointer_create },
1667 	{ DW_TAG_structure_type,	0,		die_struct_create },
1668 	{ DW_TAG_subroutine_type,	0,		die_funcptr_create },
1669 	{ DW_TAG_typedef,		0,		die_typedef_create },
1670 	{ DW_TAG_union_type,		0,		die_union_create },
1671 	{ DW_TAG_base_type,		0,		die_base_create },
1672 	{ DW_TAG_const_type,		0,		die_const_create },
1673 	{ DW_TAG_subprogram,		DW_F_NOTDP,	die_function_create },
1674 	{ DW_TAG_variable,		DW_F_NOTDP,	die_variable_create },
1675 	{ DW_TAG_volatile_type,		0,		die_volatile_create },
1676 	{ DW_TAG_restrict_type,		0,		die_restrict_create },
1677 	{ 0, 0, NULL }
1678 };
1679 
1680 static const die_creator_t *
1681 die_tag2ctor(Dwarf_Half tag)
1682 {
1683 	const die_creator_t *dc;
1684 
1685 	for (dc = die_creators; dc->dc_create != NULL; dc++) {
1686 		if (dc->dc_tag == tag)
1687 			return (dc);
1688 	}
1689 
1690 	return (NULL);
1691 }
1692 
1693 static void
1694 die_create_one(dwarf_t *dw, Dwarf_Die die)
1695 {
1696 	Dwarf_Off off = die_off(dw, die);
1697 	const die_creator_t *dc;
1698 	Dwarf_Half tag;
1699 	tdesc_t *tdp;
1700 
1701 	debug(3, "die %llu <%llx>: create_one\n", off, off);
1702 
1703 	if (off > dw->dw_maxoff) {
1704 		terminate("illegal die offset %llu (max %llu)\n", off,
1705 		    dw->dw_maxoff);
1706 	}
1707 
1708 	tag = die_tag(dw, die);
1709 
1710 	if ((dc = die_tag2ctor(tag)) == NULL) {
1711 		debug(2, "die %llu: ignoring tag type %x\n", off, tag);
1712 		return;
1713 	}
1714 
1715 	if ((tdp = tdesc_lookup(dw, off)) == NULL &&
1716 	    !(dc->dc_flags & DW_F_NOTDP)) {
1717 		tdp = xcalloc(sizeof (tdesc_t));
1718 		tdp->t_id = off;
1719 		tdesc_add(dw, tdp);
1720 	}
1721 
1722 	if (tdp != NULL)
1723 		tdp->t_name = die_name(dw, die);
1724 
1725 	dc->dc_create(dw, die, off, tdp);
1726 }
1727 
1728 static void
1729 die_create(dwarf_t *dw, Dwarf_Die die)
1730 {
1731 	do {
1732 		die_create_one(dw, die);
1733 	} while ((die = die_sibling(dw, die)) != NULL);
1734 }
1735 
1736 static tdtrav_cb_f die_resolvers[] = {
1737 	NULL,
1738 	NULL,			/* intrinsic */
1739 	NULL,			/* pointer */
1740 	die_array_resolve,	/* array */
1741 	NULL,			/* function */
1742 	die_sou_resolve,	/* struct */
1743 	die_sou_resolve,	/* union */
1744 	die_enum_resolve,	/* enum */
1745 	die_fwd_resolve,	/* forward */
1746 	NULL,			/* typedef */
1747 	NULL,			/* typedef unres */
1748 	NULL,			/* volatile */
1749 	NULL,			/* const */
1750 	NULL,			/* restrict */
1751 };
1752 
1753 static tdtrav_cb_f die_fail_reporters[] = {
1754 	NULL,
1755 	NULL,			/* intrinsic */
1756 	NULL,			/* pointer */
1757 	die_array_failed,	/* array */
1758 	NULL,			/* function */
1759 	die_sou_failed,		/* struct */
1760 	die_sou_failed,		/* union */
1761 	NULL,			/* enum */
1762 	NULL,			/* forward */
1763 	NULL,			/* typedef */
1764 	NULL,			/* typedef unres */
1765 	NULL,			/* volatile */
1766 	NULL,			/* const */
1767 	NULL,			/* restrict */
1768 };
1769 
1770 static void
1771 die_resolve(dwarf_t *dw)
1772 {
1773 	int last = -1;
1774 	int pass = 0;
1775 
1776 	do {
1777 		pass++;
1778 		dw->dw_nunres = 0;
1779 
1780 		(void) iitraverse_hash(dw->dw_td->td_iihash,
1781 		    &dw->dw_td->td_curvgen, NULL, NULL, die_resolvers, dw);
1782 
1783 		debug(3, "resolve: pass %d, %u left\n", pass, dw->dw_nunres);
1784 
1785 		if ((int) dw->dw_nunres == last) {
1786 			fprintf(stderr, "%s: failed to resolve the following "
1787 			    "types:\n", progname);
1788 
1789 			(void) iitraverse_hash(dw->dw_td->td_iihash,
1790 			    &dw->dw_td->td_curvgen, NULL, NULL,
1791 			    die_fail_reporters, dw);
1792 
1793 			terminate("failed to resolve types\n");
1794 		}
1795 
1796 		last = dw->dw_nunres;
1797 
1798 	} while (dw->dw_nunres != 0);
1799 }
1800 
1801 /*
1802  * Any object containing a function or object symbol at any scope should also
1803  * contain DWARF data.
1804  */
1805 static boolean_t
1806 should_have_dwarf(Elf *elf)
1807 {
1808 	Elf_Scn *scn = NULL;
1809 	Elf_Data *data = NULL;
1810 	GElf_Shdr shdr;
1811 	GElf_Sym sym;
1812 	uint32_t symdx = 0;
1813 	size_t nsyms = 0;
1814 	boolean_t found = B_FALSE;
1815 
1816 	while ((scn = elf_nextscn(elf, scn)) != NULL) {
1817 		gelf_getshdr(scn, &shdr);
1818 
1819 		if (shdr.sh_type == SHT_SYMTAB) {
1820 			found = B_TRUE;
1821 			break;
1822 		}
1823 	}
1824 
1825 	if (!found)
1826 		terminate("cannot convert stripped objects\n");
1827 
1828 	data = elf_getdata(scn, NULL);
1829 	nsyms = shdr.sh_size / shdr.sh_entsize;
1830 
1831 	for (symdx = 0; symdx < nsyms; symdx++) {
1832 		gelf_getsym(data, symdx, &sym);
1833 
1834 		if ((GELF_ST_TYPE(sym.st_info) == STT_FUNC) ||
1835 		    (GELF_ST_TYPE(sym.st_info) == STT_TLS) ||
1836 		    (GELF_ST_TYPE(sym.st_info) == STT_OBJECT)) {
1837 			char *name;
1838 
1839 			name = elf_strptr(elf, shdr.sh_link, sym.st_name);
1840 
1841 			/* Studio emits these local symbols regardless */
1842 			if ((strcmp(name, "Bbss.bss") != 0) &&
1843 			    (strcmp(name, "Ttbss.bss") != 0) &&
1844 			    (strcmp(name, "Ddata.data") != 0) &&
1845 			    (strcmp(name, "Ttdata.data") != 0) &&
1846 			    (strcmp(name, "Drodata.rodata") != 0))
1847 				return (B_TRUE);
1848 		}
1849 	}
1850 
1851 	return (B_FALSE);
1852 }
1853 
1854 /*ARGSUSED*/
1855 int
1856 dw_read(tdata_t *td, Elf *elf, char *filename __unused)
1857 {
1858 	Dwarf_Unsigned abboff, hdrlen, nxthdr;
1859 	Dwarf_Half vers, addrsz, offsz;
1860 	Dwarf_Die cu = 0;
1861 	Dwarf_Die child = 0;
1862 	dwarf_t dw;
1863 	char *prod = NULL;
1864 	int rc;
1865 
1866 	bzero(&dw, sizeof (dwarf_t));
1867 	dw.dw_td = td;
1868 	dw.dw_ptrsz = elf_ptrsz(elf);
1869 	dw.dw_mfgtid_last = TID_MFGTID_BASE;
1870 	dw.dw_tidhash = hash_new(TDESC_HASH_BUCKETS, tdesc_idhash, tdesc_idcmp);
1871 	dw.dw_fwdhash = hash_new(TDESC_HASH_BUCKETS, tdesc_namehash,
1872 	    tdesc_namecmp);
1873 	dw.dw_enumhash = hash_new(TDESC_HASH_BUCKETS, tdesc_namehash,
1874 	    tdesc_namecmp);
1875 
1876 	if ((rc = dwarf_elf_init(elf, DW_DLC_READ, NULL, NULL, &dw.dw_dw,
1877 	    &dw.dw_err)) == DW_DLV_NO_ENTRY) {
1878 		if (should_have_dwarf(elf)) {
1879 			errno = ENOENT;
1880 			return (-1);
1881 		} else {
1882 			return (0);
1883 		}
1884 	} else if (rc != DW_DLV_OK) {
1885 		if (dwarf_errno(dw.dw_err) == DW_DLE_DEBUG_INFO_NULL) {
1886 			/*
1887 			 * There's no type data in the DWARF section, but
1888 			 * libdwarf is too clever to handle that properly.
1889 			 */
1890 			return (0);
1891 		}
1892 
1893 		terminate("failed to initialize DWARF: %s\n",
1894 		    dwarf_errmsg(dw.dw_err));
1895 	}
1896 
1897 	if ((rc = dwarf_next_cu_header_b(dw.dw_dw, &hdrlen, &vers, &abboff,
1898 	    &addrsz, &offsz, NULL, &nxthdr, &dw.dw_err)) != DW_DLV_OK)
1899 		terminate("rc = %d %s\n", rc, dwarf_errmsg(dw.dw_err));
1900 
1901 	if ((cu = die_sibling(&dw, NULL)) == NULL ||
1902 	    (((child = die_child(&dw, cu)) == NULL) &&
1903 	    should_have_dwarf(elf))) {
1904 		terminate("file does not contain dwarf type data "
1905 		    "(try compiling with -g)\n");
1906 	} else if (child == NULL) {
1907 		return (0);
1908 	}
1909 
1910 	dw.dw_maxoff = nxthdr - 1;
1911 
1912 	if (dw.dw_maxoff > TID_FILEMAX)
1913 		terminate("file contains too many types\n");
1914 
1915 	debug(1, "DWARF version: %d\n", vers);
1916 	if (vers != DWARF_VERSION) {
1917 		terminate("file contains incompatible version %d DWARF code "
1918 		    "(version 2 required)\n", vers);
1919 	}
1920 
1921 	if (die_string(&dw, cu, DW_AT_producer, &prod, 0)) {
1922 		debug(1, "DWARF emitter: %s\n", prod);
1923 		free(prod);
1924 	}
1925 
1926 	if ((dw.dw_cuname = die_name(&dw, cu)) != NULL) {
1927 		char *base = xstrdup(basename(dw.dw_cuname));
1928 		free(dw.dw_cuname);
1929 		dw.dw_cuname = base;
1930 
1931 		debug(1, "CU name: %s\n", dw.dw_cuname);
1932 	}
1933 
1934 	if ((child = die_child(&dw, cu)) != NULL)
1935 		die_create(&dw, child);
1936 
1937 	if ((rc = dwarf_next_cu_header_b(dw.dw_dw, &hdrlen, &vers, &abboff,
1938 	    &addrsz, &offsz, NULL, &nxthdr, &dw.dw_err)) != DW_DLV_NO_ENTRY)
1939 		terminate("multiple compilation units not supported\n");
1940 
1941 	(void) dwarf_finish(dw.dw_dw, &dw.dw_err);
1942 
1943 	die_resolve(&dw);
1944 
1945 	cvt_fixups(td, dw.dw_ptrsz);
1946 
1947 	/* leak the dwarf_t */
1948 
1949 	return (0);
1950 }
1951