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ctf.c revision 1.13.14.1
      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 2009 Sun Microsystems, Inc.  All rights reserved.
     23  * Use is subject to license terms.
     24  */
     25 
     26 /*
     27  * Create and parse buffers containing CTF data.
     28  */
     29 
     30 #if HAVE_NBTOOL_CONFIG_H
     31 #include "nbtool_config.h"
     32 #endif
     33 
     34 #include <sys/types.h>
     35 #include <stdio.h>
     36 #include <stdlib.h>
     37 #include <strings.h>
     38 #include <ctype.h>
     39 #include <zlib.h>
     40 #include <elf.h>
     41 
     42 #include "ctf_headers.h"
     43 #include "ctftools.h"
     44 #include "strtab.h"
     45 #include "memory.h"
     46 
     47 /*
     48  * Name of the file currently being read, used to print error messages.  We
     49  * assume that only one file will be read at a time, and thus make no attempt
     50  * to allow curfile to be used simultaneously by multiple threads.
     51  *
     52  * The value is only valid during a call to ctf_load.
     53  */
     54 static char *curfile;
     55 
     56 #define	CTF_BUF_CHUNK_SIZE	(64 * 1024)
     57 #define	RES_BUF_CHUNK_SIZE	(64 * 1024)
     58 
     59 struct ctf_buf {
     60 	strtab_t ctb_strtab;	/* string table */
     61 	caddr_t ctb_base;	/* pointer to base of buffer */
     62 	caddr_t ctb_end;	/* pointer to end of buffer */
     63 	caddr_t ctb_ptr;	/* pointer to empty buffer space */
     64 	size_t ctb_size;	/* size of buffer */
     65 	int nptent;		/* number of processed types */
     66 	int ntholes;		/* number of type holes */
     67 };
     68 
     69 /*
     70  * Macros to reverse byte order
     71  */
     72 #define	BSWAP_8(x)	((x) & 0xff)
     73 #define	BSWAP_16(x)	((BSWAP_8(x) << 8) | BSWAP_8((x) >> 8))
     74 #define	BSWAP_32(x)	((BSWAP_16(x) << 16) | BSWAP_16((x) >> 16))
     75 
     76 #define	SWAP_16(x)	(x) = BSWAP_16(x)
     77 #define	SWAP_32(x)	(x) = BSWAP_32(x)
     78 
     79 static int target_requires_swap;
     80 
     81 /*PRINTFLIKE1*/
     82 static void __printflike(1, 2) __dead
     83 parseterminate(const char *fmt, ...)
     84 {
     85 	static char msgbuf[1024]; /* sigh */
     86 	va_list ap;
     87 
     88 	va_start(ap, fmt);
     89 	vsnprintf(msgbuf, sizeof (msgbuf), fmt, ap);
     90 	va_end(ap);
     91 
     92 	terminate("%s: %s\n", curfile, msgbuf);
     93 }
     94 
     95 static void
     96 ctf_buf_grow(ctf_buf_t *b)
     97 {
     98 	off_t ptroff = b->ctb_ptr - b->ctb_base;
     99 
    100 	b->ctb_size += CTF_BUF_CHUNK_SIZE;
    101 	b->ctb_base = xrealloc(b->ctb_base, b->ctb_size);
    102 	b->ctb_end = b->ctb_base + b->ctb_size;
    103 	b->ctb_ptr = b->ctb_base + ptroff;
    104 }
    105 
    106 static ctf_buf_t *
    107 ctf_buf_new(void)
    108 {
    109 	ctf_buf_t *b = xcalloc(sizeof (ctf_buf_t));
    110 
    111 	strtab_create(&b->ctb_strtab);
    112 	ctf_buf_grow(b);
    113 
    114 	return (b);
    115 }
    116 
    117 static void
    118 ctf_buf_free(ctf_buf_t *b)
    119 {
    120 	strtab_destroy(&b->ctb_strtab);
    121 	free(b->ctb_base);
    122 	free(b);
    123 }
    124 
    125 static uint_t
    126 ctf_buf_cur(ctf_buf_t *b)
    127 {
    128 	return (b->ctb_ptr - b->ctb_base);
    129 }
    130 
    131 static void
    132 ctf_buf_write(ctf_buf_t *b, void const *p, size_t n)
    133 {
    134 	size_t len;
    135 
    136 	while (n != 0) {
    137 		if (b->ctb_ptr == b->ctb_end)
    138 			ctf_buf_grow(b);
    139 
    140 		len = MIN((size_t)(b->ctb_end - b->ctb_ptr), n);
    141 		bcopy(p, b->ctb_ptr, len);
    142 		b->ctb_ptr += len;
    143 
    144 		p = (char const *)p + len;
    145 		n -= len;
    146 	}
    147 }
    148 
    149 static int
    150 write_label(void *arg1, void *arg2)
    151 {
    152 	labelent_t *le = arg1;
    153 	ctf_buf_t *b = arg2;
    154 	ctf_lblent_t ctl;
    155 
    156 	ctl.ctl_label = strtab_insert(&b->ctb_strtab, le->le_name);
    157 	ctl.ctl_typeidx = le->le_idx;
    158 
    159 	if (target_requires_swap) {
    160 		SWAP_32(ctl.ctl_label);
    161 		SWAP_32(ctl.ctl_typeidx);
    162 	}
    163 
    164 	ctf_buf_write(b, &ctl, sizeof (ctl));
    165 
    166 	return (1);
    167 }
    168 
    169 static void
    170 write_objects(iidesc_t *idp, ctf_buf_t *b)
    171 {
    172 	ushort_t id = (idp ? idp->ii_dtype->t_id : 0);
    173 
    174 	if (target_requires_swap) {
    175 		SWAP_16(id);
    176 	}
    177 
    178 	ctf_buf_write(b, &id, sizeof (id));
    179 
    180 	debug(3, "Wrote object %s (%d)\n", (idp ? idp->ii_name : "(null)"), id);
    181 }
    182 
    183 static void
    184 write_functions(iidesc_t *idp, ctf_buf_t *b)
    185 {
    186 	ushort_t fdata[2];
    187 	ushort_t id;
    188 	int nargs;
    189 	int i;
    190 
    191 	if (!idp) {
    192 		fdata[0] = 0;
    193 		ctf_buf_write(b, &fdata[0], sizeof (fdata[0]));
    194 
    195 		debug(3, "Wrote function (null)\n");
    196 		return;
    197 	}
    198 
    199 	nargs = idp->ii_nargs + (idp->ii_vargs != 0);
    200 
    201 	if (nargs > CTF_MAX_VLEN) {
    202 		terminate("function %s has too many args: %d > %d\n",
    203 		    idp->ii_name, nargs, CTF_MAX_VLEN);
    204 	}
    205 
    206 	fdata[0] = CTF_TYPE_INFO(CTF_K_FUNCTION, 1, nargs);
    207 	fdata[1] = idp->ii_dtype->t_id;
    208 
    209 	if (target_requires_swap) {
    210 		SWAP_16(fdata[0]);
    211 		SWAP_16(fdata[1]);
    212 	}
    213 
    214 	ctf_buf_write(b, fdata, sizeof (fdata));
    215 
    216 	for (i = 0; i < idp->ii_nargs; i++) {
    217 		id = idp->ii_args[i]->t_id;
    218 
    219 		if (target_requires_swap) {
    220 			SWAP_16(id);
    221 		}
    222 
    223 		ctf_buf_write(b, &id, sizeof (id));
    224 	}
    225 
    226 	if (idp->ii_vargs) {
    227 		id = 0;
    228 		ctf_buf_write(b, &id, sizeof (id));
    229 	}
    230 
    231 	debug(3, "Wrote function %s (%d args)\n", idp->ii_name, nargs);
    232 }
    233 
    234 /*
    235  * Depending on the size of the type being described, either a ctf_stype_t (for
    236  * types with size < CTF_LSTRUCT_THRESH) or a ctf_type_t (all others) will be
    237  * written.  We isolate the determination here so the rest of the writer code
    238  * doesn't need to care.
    239  */
    240 static void
    241 write_sized_type_rec(ctf_buf_t *b, ctf_type_t *ctt, size_t size)
    242 {
    243 	if (size > CTF_MAX_SIZE) {
    244 		ctt->ctt_size = CTF_LSIZE_SENT;
    245 		ctt->ctt_lsizehi = CTF_SIZE_TO_LSIZE_HI(size);
    246 		ctt->ctt_lsizelo = CTF_SIZE_TO_LSIZE_LO(size);
    247 		if (target_requires_swap) {
    248 			SWAP_32(ctt->ctt_name);
    249 			SWAP_16(ctt->ctt_info);
    250 			SWAP_16(ctt->ctt_size);
    251 			SWAP_32(ctt->ctt_lsizehi);
    252 			SWAP_32(ctt->ctt_lsizelo);
    253 		}
    254 		ctf_buf_write(b, ctt, sizeof (*ctt));
    255 	} else {
    256 		ctf_stype_t *cts = (ctf_stype_t *)ctt;
    257 
    258 		cts->ctt_size = (ushort_t)size;
    259 
    260 		if (target_requires_swap) {
    261 			SWAP_32(cts->ctt_name);
    262 			SWAP_16(cts->ctt_info);
    263 			SWAP_16(cts->ctt_size);
    264 		}
    265 
    266 		ctf_buf_write(b, cts, sizeof (*cts));
    267 	}
    268 }
    269 
    270 static void
    271 write_unsized_type_rec(ctf_buf_t *b, ctf_type_t *ctt)
    272 {
    273 	ctf_stype_t *cts = (ctf_stype_t *)ctt;
    274 
    275 	if (target_requires_swap) {
    276 		SWAP_32(cts->ctt_name);
    277 		SWAP_16(cts->ctt_info);
    278 		SWAP_16(cts->ctt_size);
    279 	}
    280 
    281 	ctf_buf_write(b, cts, sizeof (*cts));
    282 }
    283 
    284 static int
    285 write_type(void *arg1, void *arg2)
    286 {
    287 	tdesc_t *tp = arg1;
    288 	ctf_buf_t *b = arg2;
    289 	elist_t *ep;
    290 	mlist_t *mp;
    291 	intr_t *ip;
    292 
    293 	size_t offset;
    294 	uint_t encoding;
    295 	uint_t data;
    296 	int isroot = tp->t_flags & TDESC_F_ISROOT;
    297 	int i;
    298 
    299 	ctf_type_t ctt;
    300 	ctf_array_t cta;
    301 	ctf_member_t ctm;
    302 	ctf_lmember_t ctlm;
    303 	ctf_enum_t cte;
    304 	ushort_t id;
    305 
    306 	ctlm.ctlm_pad = 0;
    307 
    308 	/*
    309 	 * There shouldn't be any holes in the type list (where a hole is
    310 	 * defined as two consecutive tdescs without consecutive ids), but
    311 	 * check for them just in case.  If we do find holes, we need to make
    312 	 * fake entries to fill the holes, or we won't be able to reconstruct
    313 	 * the tree from the written data.
    314 	 */
    315 	if (++b->nptent < CTF_TYPE_TO_INDEX(tp->t_id)) {
    316 		debug(2, "genctf: type hole from %d < x < %d\n",
    317 		    b->nptent - 1, CTF_TYPE_TO_INDEX(tp->t_id));
    318 
    319 		ctt.ctt_name = CTF_TYPE_NAME(CTF_STRTAB_0, 0);
    320 		ctt.ctt_info = CTF_TYPE_INFO(0, 0, 0);
    321 		while (b->nptent < CTF_TYPE_TO_INDEX(tp->t_id)) {
    322 			write_sized_type_rec(b, &ctt, 0);
    323 			b->nptent++;
    324 		}
    325 	}
    326 
    327 	offset = strtab_insert(&b->ctb_strtab, tp->t_name);
    328 	ctt.ctt_name = CTF_TYPE_NAME(CTF_STRTAB_0, offset);
    329 
    330 	switch (tp->t_type) {
    331 	case INTRINSIC:
    332 		ip = tp->t_intr;
    333 		if (ip->intr_type == INTR_INT)
    334 			ctt.ctt_info = CTF_TYPE_INFO(CTF_K_INTEGER,
    335 			    isroot, 1);
    336 		else
    337 			ctt.ctt_info = CTF_TYPE_INFO(CTF_K_FLOAT, isroot, 1);
    338 		write_sized_type_rec(b, &ctt, tp->t_size);
    339 
    340 		encoding = 0;
    341 
    342 		if (ip->intr_type == INTR_INT) {
    343 			if (ip->intr_signed)
    344 				encoding |= CTF_INT_SIGNED;
    345 			if (ip->intr_iformat == 'c')
    346 				encoding |= CTF_INT_CHAR;
    347 			else if (ip->intr_iformat == 'b')
    348 				encoding |= CTF_INT_BOOL;
    349 			else if (ip->intr_iformat == 'v')
    350 				encoding |= CTF_INT_VARARGS;
    351 		} else
    352 			encoding = ip->intr_fformat;
    353 
    354 		data = CTF_INT_DATA(encoding, ip->intr_offset, ip->intr_nbits);
    355 		if (target_requires_swap) {
    356 			SWAP_32(data);
    357 		}
    358 		ctf_buf_write(b, &data, sizeof (data));
    359 		break;
    360 
    361 	case POINTER:
    362 	case REFERENCE:	/* XXX: */
    363 		ctt.ctt_info = CTF_TYPE_INFO(CTF_K_POINTER, isroot, 0);
    364 		ctt.ctt_type = tp->t_tdesc->t_id;
    365 		write_unsized_type_rec(b, &ctt);
    366 		break;
    367 
    368 	case ARRAY:
    369 		ctt.ctt_info = CTF_TYPE_INFO(CTF_K_ARRAY, isroot, 1);
    370 		write_sized_type_rec(b, &ctt, tp->t_size);
    371 
    372 		cta.cta_contents = tp->t_ardef->ad_contents->t_id;
    373 		cta.cta_index = tp->t_ardef->ad_idxtype->t_id;
    374 		cta.cta_nelems = tp->t_ardef->ad_nelems;
    375 		if (target_requires_swap) {
    376 			SWAP_16(cta.cta_contents);
    377 			SWAP_16(cta.cta_index);
    378 			SWAP_32(cta.cta_nelems);
    379 		}
    380 		ctf_buf_write(b, &cta, sizeof (cta));
    381 		break;
    382 
    383 	case STRUCT:
    384 	case UNION:
    385 	case CLASS:
    386 		for (i = 0, mp = tp->t_members; mp != NULL; mp = mp->ml_next)
    387 			i++; /* count up struct or union members */
    388 
    389 		if (i > CTF_MAX_VLEN) {
    390 			warning("sou %s has too many members: %d > %d\n",
    391 			    tdesc_name(tp), i, CTF_MAX_VLEN);
    392 			i = CTF_MAX_VLEN;
    393 		}
    394 
    395 		if (tp->t_type == STRUCT)
    396 			ctt.ctt_info = CTF_TYPE_INFO(CTF_K_STRUCT, isroot, i);
    397 		else
    398 			ctt.ctt_info = CTF_TYPE_INFO(CTF_K_UNION, isroot, i);
    399 
    400 		write_sized_type_rec(b, &ctt, tp->t_size);
    401 
    402 		if (tp->t_size < CTF_LSTRUCT_THRESH) {
    403 			for (mp = tp->t_members; mp != NULL && i > 0;
    404 			    mp = mp->ml_next) {
    405 				offset = strtab_insert(&b->ctb_strtab,
    406 				    mp->ml_name);
    407 
    408 				ctm.ctm_name = CTF_TYPE_NAME(CTF_STRTAB_0,
    409 				    offset);
    410 				ctm.ctm_type = mp->ml_type->t_id;
    411 				ctm.ctm_offset = mp->ml_offset;
    412 				if (target_requires_swap) {
    413 					SWAP_32(ctm.ctm_name);
    414 					SWAP_16(ctm.ctm_type);
    415 					SWAP_16(ctm.ctm_offset);
    416 				}
    417 				ctf_buf_write(b, &ctm, sizeof (ctm));
    418 				i--;
    419 			}
    420 		} else {
    421 			for (mp = tp->t_members; mp != NULL && i > 0;
    422 			    mp = mp->ml_next) {
    423 				offset = strtab_insert(&b->ctb_strtab,
    424 				    mp->ml_name);
    425 
    426 				ctlm.ctlm_name = CTF_TYPE_NAME(CTF_STRTAB_0,
    427 				    offset);
    428 				ctlm.ctlm_type = mp->ml_type->t_id;
    429 				ctlm.ctlm_offsethi =
    430 				    CTF_OFFSET_TO_LMEMHI(mp->ml_offset);
    431 				ctlm.ctlm_offsetlo =
    432 				    CTF_OFFSET_TO_LMEMLO(mp->ml_offset);
    433 
    434 				if (target_requires_swap) {
    435 					SWAP_32(ctlm.ctlm_name);
    436 					SWAP_16(ctlm.ctlm_type);
    437 					SWAP_32(ctlm.ctlm_offsethi);
    438 					SWAP_32(ctlm.ctlm_offsetlo);
    439 				}
    440 
    441 				ctf_buf_write(b, &ctlm, sizeof (ctlm));
    442 				i--;
    443 			}
    444 		}
    445 		break;
    446 
    447 	case ENUM:
    448 		for (i = 0, ep = tp->t_emem; ep != NULL; ep = ep->el_next)
    449 			i++; /* count up enum members */
    450 
    451 		if (i > CTF_MAX_VLEN) {
    452 			warning("enum %s has too many values: %d > %d\n",
    453 			    tdesc_name(tp), i, CTF_MAX_VLEN);
    454 			i = CTF_MAX_VLEN;
    455 		}
    456 
    457 		ctt.ctt_info = CTF_TYPE_INFO(CTF_K_ENUM, isroot, i);
    458 		write_sized_type_rec(b, &ctt, tp->t_size);
    459 
    460 		for (ep = tp->t_emem; ep != NULL && i > 0; ep = ep->el_next) {
    461 			offset = strtab_insert(&b->ctb_strtab, ep->el_name);
    462 			cte.cte_name = CTF_TYPE_NAME(CTF_STRTAB_0, offset);
    463 			cte.cte_value = ep->el_number;
    464 
    465 			if (target_requires_swap) {
    466 				SWAP_32(cte.cte_name);
    467 				SWAP_32(cte.cte_value);
    468 			}
    469 
    470 			ctf_buf_write(b, &cte, sizeof (cte));
    471 			i--;
    472 		}
    473 		break;
    474 
    475 	case FORWARD:
    476 		ctt.ctt_info = CTF_TYPE_INFO(CTF_K_FORWARD, isroot, 0);
    477 		ctt.ctt_type = 0;
    478 		write_unsized_type_rec(b, &ctt);
    479 		break;
    480 
    481 	case TYPEDEF:
    482 		ctt.ctt_info = CTF_TYPE_INFO(CTF_K_TYPEDEF, isroot, 0);
    483 		ctt.ctt_type = tp->t_tdesc->t_id;
    484 		write_unsized_type_rec(b, &ctt);
    485 		break;
    486 
    487 	case VOLATILE:
    488 		ctt.ctt_info = CTF_TYPE_INFO(CTF_K_VOLATILE, isroot, 0);
    489 		ctt.ctt_type = tp->t_tdesc->t_id;
    490 		write_unsized_type_rec(b, &ctt);
    491 		break;
    492 
    493 	case CONST:
    494 		ctt.ctt_info = CTF_TYPE_INFO(CTF_K_CONST, isroot, 0);
    495 		ctt.ctt_type = tp->t_tdesc->t_id;
    496 		write_unsized_type_rec(b, &ctt);
    497 		break;
    498 
    499 	case FUNCTION:
    500 		i = tp->t_fndef->fn_nargs + tp->t_fndef->fn_vargs;
    501 
    502 		if (i > CTF_MAX_VLEN) {
    503 			terminate("function %s has too many args: %d > %d\n",
    504 			    tdesc_name(tp), i, CTF_MAX_VLEN);
    505 		}
    506 
    507 		ctt.ctt_info = CTF_TYPE_INFO(CTF_K_FUNCTION, isroot, i);
    508 		ctt.ctt_type = tp->t_fndef->fn_ret->t_id;
    509 		write_unsized_type_rec(b, &ctt);
    510 
    511 		for (i = 0; i < (int) tp->t_fndef->fn_nargs; i++) {
    512 			id = tp->t_fndef->fn_args[i]->t_id;
    513 
    514 			if (target_requires_swap) {
    515 				SWAP_16(id);
    516 			}
    517 
    518 			ctf_buf_write(b, &id, sizeof (id));
    519 		}
    520 
    521 		if (tp->t_fndef->fn_vargs) {
    522 			id = 0;
    523 			ctf_buf_write(b, &id, sizeof (id));
    524 			i++;
    525 		}
    526 
    527 		if (i & 1) {
    528 			id = 0;
    529 			ctf_buf_write(b, &id, sizeof (id));
    530 		}
    531 		break;
    532 
    533 	case RESTRICT:
    534 		ctt.ctt_info = CTF_TYPE_INFO(CTF_K_RESTRICT, isroot, 0);
    535 		ctt.ctt_type = tp->t_tdesc->t_id;
    536 		write_unsized_type_rec(b, &ctt);
    537 		break;
    538 
    539 	default:
    540 		warning("Can't write unknown type %d\n", tp->t_type);
    541 	}
    542 
    543 	debug(3, "Wrote type %d %s\n", tp->t_id, tdesc_name(tp));
    544 
    545 	return (1);
    546 }
    547 
    548 typedef struct resbuf {
    549 	caddr_t rb_base;
    550 	caddr_t rb_ptr;
    551 	size_t rb_size;
    552 	z_stream rb_zstr;
    553 } resbuf_t;
    554 
    555 static void
    556 rbzs_grow(resbuf_t *rb)
    557 {
    558 	off_t ptroff = (caddr_t)rb->rb_zstr.next_out - rb->rb_base;
    559 
    560 	rb->rb_size += RES_BUF_CHUNK_SIZE;
    561 	rb->rb_base = xrealloc(rb->rb_base, rb->rb_size);
    562 	rb->rb_ptr = rb->rb_base + ptroff;
    563 	rb->rb_zstr.next_out = (Bytef *)(rb->rb_ptr);
    564 	rb->rb_zstr.avail_out += RES_BUF_CHUNK_SIZE;
    565 }
    566 
    567 static void
    568 compress_start(resbuf_t *rb)
    569 {
    570 	int rc;
    571 
    572 	rb->rb_zstr.zalloc = (alloc_func)0;
    573 	rb->rb_zstr.zfree = (free_func)0;
    574 	rb->rb_zstr.opaque = (voidpf)0;
    575 
    576 	if ((rc = deflateInit(&rb->rb_zstr, Z_BEST_COMPRESSION)) != Z_OK)
    577 		parseterminate("zlib start failed: %s", zError(rc));
    578 }
    579 
    580 static ssize_t
    581 compress_buffer(void *buf, size_t n, void *data)
    582 {
    583 	resbuf_t *rb = (resbuf_t *)data;
    584 	int rc;
    585 
    586 	rb->rb_zstr.next_out = (Bytef *)rb->rb_ptr;
    587 	rb->rb_zstr.avail_out = rb->rb_size - (rb->rb_ptr - rb->rb_base);
    588 	rb->rb_zstr.next_in = buf;
    589 	rb->rb_zstr.avail_in = n;
    590 
    591 	while (rb->rb_zstr.avail_in) {
    592 		if (rb->rb_zstr.avail_out == 0)
    593 			rbzs_grow(rb);
    594 
    595 		if ((rc = deflate(&rb->rb_zstr, Z_NO_FLUSH)) != Z_OK)
    596 			parseterminate("zlib deflate failed: %s", zError(rc));
    597 	}
    598 	rb->rb_ptr = (caddr_t)rb->rb_zstr.next_out;
    599 
    600 	return (n);
    601 }
    602 
    603 static void
    604 compress_flush(resbuf_t *rb, int type)
    605 {
    606 	int rc;
    607 
    608 	for (;;) {
    609 		if (rb->rb_zstr.avail_out == 0)
    610 			rbzs_grow(rb);
    611 
    612 		rc = deflate(&rb->rb_zstr, type);
    613 		if ((type == Z_FULL_FLUSH && rc == Z_BUF_ERROR) ||
    614 		    (type == Z_FINISH && rc == Z_STREAM_END))
    615 			break;
    616 		else if (rc != Z_OK)
    617 			parseterminate("zlib finish failed: %s", zError(rc));
    618 	}
    619 	rb->rb_ptr = (caddr_t)rb->rb_zstr.next_out;
    620 }
    621 
    622 static void
    623 compress_end(resbuf_t *rb)
    624 {
    625 	int rc;
    626 
    627 	compress_flush(rb, Z_FINISH);
    628 
    629 	if ((rc = deflateEnd(&rb->rb_zstr)) != Z_OK)
    630 		parseterminate("zlib end failed: %s", zError(rc));
    631 }
    632 
    633 /*
    634  * Pad the buffer to a power-of-2 boundary
    635  */
    636 static void
    637 pad_buffer(ctf_buf_t *buf, int align)
    638 {
    639 	uint_t cur = ctf_buf_cur(buf);
    640 	ssize_t topad = (align - (cur % align)) % align;
    641 	static const char pad[8] = { 0 };
    642 
    643 	while (topad > 0) {
    644 		ctf_buf_write(buf, pad, (topad > 8 ? 8 : topad));
    645 		topad -= 8;
    646 	}
    647 }
    648 
    649 static ssize_t
    650 bcopy_data(void *buf, size_t n, void *data)
    651 {
    652 	caddr_t *posp = (caddr_t *)data;
    653 	bcopy(buf, *posp, n);
    654 	*posp += n;
    655 	return (n);
    656 }
    657 
    658 static caddr_t
    659 write_buffer(ctf_header_t *h, ctf_buf_t *buf, size_t *resszp)
    660 {
    661 	caddr_t outbuf;
    662 	caddr_t bufpos;
    663 
    664 	outbuf = xmalloc(sizeof (ctf_header_t) + (buf->ctb_ptr - buf->ctb_base)
    665 	    + buf->ctb_strtab.str_size);
    666 
    667 	bufpos = outbuf;
    668 	(void) bcopy_data(h, sizeof (ctf_header_t), &bufpos);
    669 	(void) bcopy_data(buf->ctb_base, buf->ctb_ptr - buf->ctb_base,
    670 	    &bufpos);
    671 	(void) strtab_write(&buf->ctb_strtab, bcopy_data, &bufpos);
    672 	*resszp = bufpos - outbuf;
    673 	return (outbuf);
    674 }
    675 
    676 /*
    677  * Create the compression buffer, and fill it with the CTF and string
    678  * table data.  We flush the compression state between the two so the
    679  * dictionary used for the string tables won't be polluted with values
    680  * that made sense for the CTF data.
    681  */
    682 static caddr_t
    683 write_compressed_buffer(ctf_header_t *h, ctf_buf_t *buf, size_t *resszp)
    684 {
    685 	resbuf_t resbuf;
    686 	resbuf.rb_size = RES_BUF_CHUNK_SIZE;
    687 	resbuf.rb_base = xmalloc(resbuf.rb_size);
    688 	bcopy(h, resbuf.rb_base, sizeof (ctf_header_t));
    689 	resbuf.rb_ptr = resbuf.rb_base + sizeof (ctf_header_t);
    690 
    691 	compress_start(&resbuf);
    692 	(void) compress_buffer(buf->ctb_base, buf->ctb_ptr - buf->ctb_base,
    693 	    &resbuf);
    694 	compress_flush(&resbuf, Z_FULL_FLUSH);
    695 	(void) strtab_write(&buf->ctb_strtab, compress_buffer, &resbuf);
    696 	compress_end(&resbuf);
    697 
    698 	*resszp = (resbuf.rb_ptr - resbuf.rb_base);
    699 	return (resbuf.rb_base);
    700 }
    701 
    702 caddr_t
    703 ctf_gen(iiburst_t *iiburst, size_t *resszp, int do_compress)
    704 {
    705 	ctf_buf_t *buf = ctf_buf_new();
    706 	ctf_header_t h;
    707 	caddr_t outbuf;
    708 
    709 	int i;
    710 
    711 	target_requires_swap = do_compress & CTF_SWAP_BYTES;
    712 	do_compress &= ~CTF_SWAP_BYTES;
    713 
    714 	/*
    715 	 * Prepare the header, and create the CTF output buffers.  The data
    716 	 * object section and function section are both lists of 2-byte
    717 	 * integers; we pad these out to the next 4-byte boundary if needed.
    718 	 */
    719 	h.cth_magic = CTF_MAGIC;
    720 	h.cth_version = CTF_VERSION;
    721 	h.cth_flags = do_compress ? CTF_F_COMPRESS : 0;
    722 	h.cth_parlabel = strtab_insert(&buf->ctb_strtab,
    723 	    iiburst->iib_td->td_parlabel);
    724 	h.cth_parname = strtab_insert(&buf->ctb_strtab,
    725 	    iiburst->iib_td->td_parname);
    726 
    727 	h.cth_lbloff = 0;
    728 	(void) list_iter(iiburst->iib_td->td_labels, write_label,
    729 	    buf);
    730 
    731 	pad_buffer(buf, 2);
    732 	h.cth_objtoff = ctf_buf_cur(buf);
    733 	for (i = 0; i < iiburst->iib_nobjts; i++)
    734 		write_objects(iiburst->iib_objts[i], buf);
    735 
    736 	pad_buffer(buf, 2);
    737 	h.cth_funcoff = ctf_buf_cur(buf);
    738 	for (i = 0; i < iiburst->iib_nfuncs; i++)
    739 		write_functions(iiburst->iib_funcs[i], buf);
    740 
    741 	pad_buffer(buf, 4);
    742 	h.cth_typeoff = ctf_buf_cur(buf);
    743 	(void) list_iter(iiburst->iib_types, write_type, buf);
    744 
    745 	debug(2, "CTF wrote %d types\n", list_count(iiburst->iib_types));
    746 
    747 	h.cth_stroff = ctf_buf_cur(buf);
    748 	h.cth_strlen = strtab_size(&buf->ctb_strtab);
    749 
    750 	if (target_requires_swap) {
    751 		SWAP_16(h.cth_preamble.ctp_magic);
    752 		SWAP_32(h.cth_parlabel);
    753 		SWAP_32(h.cth_parname);
    754 		SWAP_32(h.cth_lbloff);
    755 		SWAP_32(h.cth_objtoff);
    756 		SWAP_32(h.cth_funcoff);
    757 		SWAP_32(h.cth_typeoff);
    758 		SWAP_32(h.cth_stroff);
    759 		SWAP_32(h.cth_strlen);
    760 	}
    761 
    762 	/*
    763 	 * We only do compression for ctfmerge, as ctfconvert is only
    764 	 * supposed to be used on intermediary build objects. This is
    765 	 * significantly faster.
    766 	 */
    767 	if (do_compress)
    768 		outbuf = write_compressed_buffer(&h, buf, resszp);
    769 	else
    770 		outbuf = write_buffer(&h, buf, resszp);
    771 
    772 	ctf_buf_free(buf);
    773 	return (outbuf);
    774 }
    775 
    776 static void
    777 get_ctt_size(ctf_type_t *ctt, size_t *sizep, size_t *incrementp)
    778 {
    779 	if (ctt->ctt_size == CTF_LSIZE_SENT) {
    780 		*sizep = (size_t)CTF_TYPE_LSIZE(ctt);
    781 		*incrementp = sizeof (ctf_type_t);
    782 	} else {
    783 		*sizep = ctt->ctt_size;
    784 		*incrementp = sizeof (ctf_stype_t);
    785 	}
    786 }
    787 
    788 static int
    789 count_types(ctf_header_t *h, caddr_t data)
    790 {
    791 	caddr_t dptr = data + h->cth_typeoff;
    792 	int count = 0;
    793 
    794 	dptr = data + h->cth_typeoff;
    795 	while (dptr < data + h->cth_stroff) {
    796 		void *v = (void *) dptr;
    797 		ctf_type_t *ctt = v;
    798 		size_t vlen = CTF_INFO_VLEN(ctt->ctt_info);
    799 		size_t size, increment;
    800 
    801 		get_ctt_size(ctt, &size, &increment);
    802 
    803 		switch (CTF_INFO_KIND(ctt->ctt_info)) {
    804 		case CTF_K_INTEGER:
    805 		case CTF_K_FLOAT:
    806 			dptr += 4;
    807 			break;
    808 		case CTF_K_POINTER:
    809 		case CTF_K_FORWARD:
    810 		case CTF_K_TYPEDEF:
    811 		case CTF_K_VOLATILE:
    812 		case CTF_K_CONST:
    813 		case CTF_K_RESTRICT:
    814 		case CTF_K_FUNCTION:
    815 			dptr += sizeof (ushort_t) * (vlen + (vlen & 1));
    816 			break;
    817 		case CTF_K_ARRAY:
    818 			dptr += sizeof (ctf_array_t);
    819 			break;
    820 		case CTF_K_STRUCT:
    821 		case CTF_K_UNION:
    822 			if (size < CTF_LSTRUCT_THRESH)
    823 				dptr += sizeof (ctf_member_t) * vlen;
    824 			else
    825 				dptr += sizeof (ctf_lmember_t) * vlen;
    826 			break;
    827 		case CTF_K_ENUM:
    828 			dptr += sizeof (ctf_enum_t) * vlen;
    829 			break;
    830 		case CTF_K_UNKNOWN:
    831 			break;
    832 		default:
    833 			parseterminate("Unknown CTF type %d (#%d) at %#jx",
    834 			    CTF_INFO_KIND(ctt->ctt_info), count,
    835 			    (intmax_t)(dptr - data));
    836 		}
    837 
    838 		dptr += increment;
    839 		count++;
    840 	}
    841 
    842 	debug(3, "CTF read %d types\n", count);
    843 
    844 	return (count);
    845 }
    846 
    847 /*
    848  * Resurrect the labels stored in the CTF data, returning the index associated
    849  * with a label provided by the caller.  There are several cases, outlined
    850  * below.  Note that, given two labels, the one associated with the lesser type
    851  * index is considered to be older than the other.
    852  *
    853  *  1. matchlbl == NULL - return the index of the most recent label.
    854  *  2. matchlbl == "BASE" - return the index of the oldest label.
    855  *  3. matchlbl != NULL, but doesn't match any labels in the section - warn
    856  *	the user, and proceed as if matchlbl == "BASE" (for safety).
    857  *  4. matchlbl != NULL, and matches one of the labels in the section - return
    858  *	the type index associated with the label.
    859  */
    860 static int
    861 resurrect_labels(ctf_header_t *h, tdata_t *td, caddr_t ctfdata, char *matchlbl)
    862 {
    863 	caddr_t buf = ctfdata + h->cth_lbloff;
    864 	caddr_t sbuf = ctfdata + h->cth_stroff;
    865 	size_t bufsz = h->cth_objtoff - h->cth_lbloff;
    866 	int lastidx = 0, baseidx = -1;
    867 	char *baselabel = NULL;
    868 	ctf_lblent_t *ctl;
    869 	void *v = (void *) buf;
    870 
    871 	for (ctl = v; (caddr_t)ctl < buf + bufsz; ctl++) {
    872 		char *label = sbuf + ctl->ctl_label;
    873 
    874 		lastidx = ctl->ctl_typeidx;
    875 
    876 		debug(3, "Resurrected label %s type idx %d\n", label, lastidx);
    877 
    878 		tdata_label_add(td, label, lastidx);
    879 
    880 		if (baseidx == -1) {
    881 			baseidx = lastidx;
    882 			baselabel = label;
    883 			if (matchlbl != NULL && streq(matchlbl, "BASE"))
    884 				return (lastidx);
    885 		}
    886 
    887 		if (matchlbl != NULL && streq(label, matchlbl))
    888 			return (lastidx);
    889 	}
    890 
    891 	if (matchlbl != NULL) {
    892 		/* User provided a label that didn't match */
    893 		warning("%s: Cannot find label `%s' - using base (%s)\n",
    894 		    curfile, matchlbl, (baselabel ? baselabel : "NONE"));
    895 
    896 		tdata_label_free(td);
    897 		tdata_label_add(td, baselabel, baseidx);
    898 
    899 		return (baseidx);
    900 	}
    901 
    902 	return (lastidx);
    903 }
    904 
    905 static void
    906 resurrect_objects(ctf_header_t *h, tdata_t *td, tdesc_t **tdarr, int tdsize,
    907     caddr_t ctfdata, symit_data_t *si)
    908 {
    909 	caddr_t buf = ctfdata + h->cth_objtoff;
    910 	size_t bufsz = h->cth_funcoff - h->cth_objtoff;
    911 	caddr_t dptr;
    912 
    913 	symit_reset(si);
    914 	for (dptr = buf; dptr < buf + bufsz; dptr += 2) {
    915 		void *v = (void *) dptr;
    916 		ushort_t id = *((ushort_t *)v);
    917 		iidesc_t *ii;
    918 		GElf_Sym *sym;
    919 
    920 		if (!(sym = symit_next(si, STT_OBJECT)) && id != 0) {
    921 			parseterminate(
    922 			    "Unexpected end of object symbols at %ju of %zu",
    923 			    (intmax_t)(dptr - buf), bufsz);
    924 		}
    925 
    926 		if (id == 0) {
    927 			debug(3, "Skipping null object\n");
    928 			continue;
    929 		} else if (id >= tdsize) {
    930 			parseterminate("Reference to invalid type %d", id);
    931 		}
    932 
    933 		ii = iidesc_new(symit_name(si));
    934 		ii->ii_dtype = tdarr[id];
    935 		if (GELF_ST_BIND(sym->st_info) == STB_LOCAL) {
    936 			ii->ii_type = II_SVAR;
    937 			ii->ii_owner = xstrdup(symit_curfile(si));
    938 		} else
    939 			ii->ii_type = II_GVAR;
    940 		hash_add(td->td_iihash, ii);
    941 
    942 		debug(3, "Resurrected %s object %s (%d) from %s\n",
    943 		    (ii->ii_type == II_GVAR ? "global" : "static"),
    944 		    ii->ii_name, id, (ii->ii_owner ? ii->ii_owner : "(none)"));
    945 	}
    946 }
    947 
    948 static void
    949 resurrect_functions(ctf_header_t *h, tdata_t *td, tdesc_t **tdarr, int tdsize,
    950     caddr_t ctfdata, symit_data_t *si)
    951 {
    952 	caddr_t buf = ctfdata + h->cth_funcoff;
    953 	size_t bufsz = h->cth_typeoff - h->cth_funcoff;
    954 	caddr_t dptr = buf;
    955 	iidesc_t *ii;
    956 	ushort_t info;
    957 	ushort_t retid;
    958 	GElf_Sym *sym;
    959 	int i;
    960 
    961 	symit_reset(si);
    962 	while (dptr < buf + bufsz) {
    963 		void *v = (void *) dptr;
    964 		info = *((ushort_t *)v);
    965 		dptr += 2;
    966 
    967 		if (!(sym = symit_next(si, STT_FUNC)) && info != 0)
    968 			parseterminate("Unexpected end of function symbols");
    969 
    970 		if (info == 0) {
    971 			debug(3, "Skipping null function (%s)\n",
    972 			    symit_name(si));
    973 			continue;
    974 		}
    975 
    976 		v = (void *) dptr;
    977 		retid = *((ushort_t *)v);
    978 		dptr += 2;
    979 
    980 		if (retid >= tdsize)
    981 			parseterminate("Reference to invalid type %d", retid);
    982 
    983 		ii = iidesc_new(symit_name(si));
    984 		ii->ii_dtype = tdarr[retid];
    985 		if (GELF_ST_BIND(sym->st_info) == STB_LOCAL) {
    986 			ii->ii_type = II_SFUN;
    987 			ii->ii_owner = xstrdup(symit_curfile(si));
    988 		} else
    989 			ii->ii_type = II_GFUN;
    990 		ii->ii_nargs = CTF_INFO_VLEN(info);
    991 		if (ii->ii_nargs)
    992 			ii->ii_args =
    993 			    xmalloc(sizeof (tdesc_t *) * ii->ii_nargs);
    994 
    995 		for (i = 0; i < ii->ii_nargs; i++, dptr += 2) {
    996 			v = (void *) dptr;
    997 			ushort_t id = *((ushort_t *)v);
    998 			if (id >= tdsize)
    999 				parseterminate("Reference to invalid type %d",
   1000 				    id);
   1001 			ii->ii_args[i] = tdarr[id];
   1002 		}
   1003 
   1004 		if (ii->ii_nargs && ii->ii_args[ii->ii_nargs - 1] == NULL) {
   1005 			ii->ii_nargs--;
   1006 			ii->ii_vargs = 1;
   1007 		}
   1008 
   1009 		hash_add(td->td_iihash, ii);
   1010 
   1011 		debug(3, "Resurrected %s function %s (%d, %d args)\n",
   1012 		    (ii->ii_type == II_GFUN ? "global" : "static"),
   1013 		    ii->ii_name, retid, ii->ii_nargs);
   1014 	}
   1015 }
   1016 
   1017 static void
   1018 resurrect_types(ctf_header_t *h, tdata_t *td, tdesc_t **tdarr, int tdsize,
   1019     caddr_t ctfdata, int maxid)
   1020 {
   1021 	caddr_t buf = ctfdata + h->cth_typeoff;
   1022 	size_t bufsz = h->cth_stroff - h->cth_typeoff;
   1023 	caddr_t sbuf = ctfdata + h->cth_stroff;
   1024 	caddr_t dptr = buf;
   1025 	tdesc_t *tdp;
   1026 	uint_t data;
   1027 	uint_t encoding;
   1028 	size_t size, increment;
   1029 	int tcnt;
   1030 	int iicnt = 0;
   1031 	tid_t tid, argid;
   1032 	int kind, vlen;
   1033 	int i;
   1034 
   1035 	elist_t **epp;
   1036 	mlist_t **mpp;
   1037 	intr_t *ip;
   1038 
   1039 	ctf_type_t *ctt;
   1040 	ctf_array_t *cta;
   1041 	ctf_enum_t *cte;
   1042 
   1043 	/*
   1044 	 * A maxid of zero indicates a request to resurrect all types, so reset
   1045 	 * maxid to the maximum type id.
   1046 	 */
   1047 	if (maxid == 0)
   1048 		maxid = CTF_MAX_TYPE;
   1049 
   1050 	for (dptr = buf, tcnt = 0, tid = 1; dptr < buf + bufsz; tcnt++, tid++) {
   1051 		if (tid > maxid)
   1052 			break;
   1053 
   1054 		if (tid >= tdsize)
   1055 			parseterminate("Reference to invalid type %d", tid);
   1056 
   1057 		void *v = (void *) dptr;
   1058 		ctt = v;
   1059 
   1060 		get_ctt_size(ctt, &size, &increment);
   1061 		dptr += increment;
   1062 
   1063 		tdp = tdarr[tid];
   1064 
   1065 		if (CTF_NAME_STID(ctt->ctt_name) != CTF_STRTAB_0)
   1066 			parseterminate(
   1067 			    "Unable to cope with non-zero strtab id");
   1068 		if (CTF_NAME_OFFSET(ctt->ctt_name) != 0) {
   1069 			tdp->t_name =
   1070 			    xstrdup(sbuf + CTF_NAME_OFFSET(ctt->ctt_name));
   1071 		} else
   1072 			tdp->t_name = NULL;
   1073 
   1074 		kind = CTF_INFO_KIND(ctt->ctt_info);
   1075 		vlen = CTF_INFO_VLEN(ctt->ctt_info);
   1076 
   1077 		switch (kind) {
   1078 		case CTF_K_INTEGER:
   1079 			tdp->t_type = INTRINSIC;
   1080 			tdp->t_size = size;
   1081 
   1082 			v = (void *) dptr;
   1083 			data = *((uint_t *)v);
   1084 			dptr += sizeof (uint_t);
   1085 			encoding = CTF_INT_ENCODING(data);
   1086 
   1087 			ip = xmalloc(sizeof (intr_t));
   1088 			ip->intr_type = INTR_INT;
   1089 			ip->intr_signed = (encoding & CTF_INT_SIGNED) ? 1 : 0;
   1090 
   1091 			if (encoding & CTF_INT_CHAR)
   1092 				ip->intr_iformat = 'c';
   1093 			else if (encoding & CTF_INT_BOOL)
   1094 				ip->intr_iformat = 'b';
   1095 			else if (encoding & CTF_INT_VARARGS)
   1096 				ip->intr_iformat = 'v';
   1097 			else
   1098 				ip->intr_iformat = '\0';
   1099 
   1100 			ip->intr_offset = CTF_INT_OFFSET(data);
   1101 			ip->intr_nbits = CTF_INT_BITS(data);
   1102 			tdp->t_intr = ip;
   1103 			break;
   1104 
   1105 		case CTF_K_FLOAT:
   1106 			tdp->t_type = INTRINSIC;
   1107 			tdp->t_size = size;
   1108 
   1109 			v = (void *) dptr;
   1110 			data = *((uint_t *)v);
   1111 			dptr += sizeof (uint_t);
   1112 
   1113 			ip = xcalloc(sizeof (intr_t));
   1114 			ip->intr_type = INTR_REAL;
   1115 			ip->intr_fformat = CTF_FP_ENCODING(data);
   1116 			ip->intr_offset = CTF_FP_OFFSET(data);
   1117 			ip->intr_nbits = CTF_FP_BITS(data);
   1118 			tdp->t_intr = ip;
   1119 			break;
   1120 
   1121 		case CTF_K_POINTER:
   1122 			tdp->t_type = POINTER;
   1123 			tdp->t_tdesc = tdarr[ctt->ctt_type];
   1124 			break;
   1125 
   1126 		case CTF_K_ARRAY:
   1127 			tdp->t_type = ARRAY;
   1128 			tdp->t_size = size;
   1129 
   1130 			v = (void *) dptr;
   1131 			cta = v;
   1132 			dptr += sizeof (ctf_array_t);
   1133 
   1134 			tdp->t_ardef = xmalloc(sizeof (ardef_t));
   1135 			tdp->t_ardef->ad_contents = tdarr[cta->cta_contents];
   1136 			tdp->t_ardef->ad_idxtype = tdarr[cta->cta_index];
   1137 			tdp->t_ardef->ad_nelems = cta->cta_nelems;
   1138 			break;
   1139 
   1140 		case CTF_K_STRUCT:
   1141 		case CTF_K_UNION:
   1142 			tdp->t_type = (kind == CTF_K_STRUCT ? STRUCT : UNION);
   1143 			tdp->t_size = size;
   1144 
   1145 			if (size < CTF_LSTRUCT_THRESH) {
   1146 				for (i = 0, mpp = &tdp->t_members; i < vlen;
   1147 				    i++, mpp = &((*mpp)->ml_next)) {
   1148 					v = (void *) dptr;
   1149 					ctf_member_t *ctm = v;
   1150 					dptr += sizeof (ctf_member_t);
   1151 
   1152 					*mpp = xmalloc(sizeof (mlist_t));
   1153 					(*mpp)->ml_name = xstrdup(sbuf +
   1154 					    ctm->ctm_name);
   1155 					(*mpp)->ml_type = tdarr[ctm->ctm_type];
   1156 					(*mpp)->ml_offset = ctm->ctm_offset;
   1157 					(*mpp)->ml_size = 0;
   1158 				}
   1159 			} else {
   1160 				for (i = 0, mpp = &tdp->t_members; i < vlen;
   1161 				    i++, mpp = &((*mpp)->ml_next)) {
   1162 					v = (void *) dptr;
   1163 					ctf_lmember_t *ctlm = v;
   1164 					dptr += sizeof (ctf_lmember_t);
   1165 
   1166 					*mpp = xmalloc(sizeof (mlist_t));
   1167 					(*mpp)->ml_name = xstrdup(sbuf +
   1168 					    ctlm->ctlm_name);
   1169 					(*mpp)->ml_type =
   1170 					    tdarr[ctlm->ctlm_type];
   1171 					(*mpp)->ml_offset =
   1172 					    (int)CTF_LMEM_OFFSET(ctlm);
   1173 					(*mpp)->ml_size = 0;
   1174 				}
   1175 			}
   1176 
   1177 			*mpp = NULL;
   1178 			break;
   1179 
   1180 		case CTF_K_ENUM:
   1181 			tdp->t_type = ENUM;
   1182 			tdp->t_size = size;
   1183 
   1184 			for (i = 0, epp = &tdp->t_emem; i < vlen;
   1185 			    i++, epp = &((*epp)->el_next)) {
   1186 				v = (void *) dptr;
   1187 				cte = v;
   1188 				dptr += sizeof (ctf_enum_t);
   1189 
   1190 				*epp = xmalloc(sizeof (elist_t));
   1191 				(*epp)->el_name = xstrdup(sbuf + cte->cte_name);
   1192 				(*epp)->el_number = cte->cte_value;
   1193 			}
   1194 			*epp = NULL;
   1195 			break;
   1196 
   1197 		case CTF_K_FORWARD:
   1198 			tdp->t_type = FORWARD;
   1199 			list_add(&td->td_fwdlist, tdp);
   1200 			break;
   1201 
   1202 		case CTF_K_TYPEDEF:
   1203 			tdp->t_type = TYPEDEF;
   1204 			tdp->t_tdesc = tdarr[ctt->ctt_type];
   1205 			break;
   1206 
   1207 		case CTF_K_VOLATILE:
   1208 			tdp->t_type = VOLATILE;
   1209 			tdp->t_tdesc = tdarr[ctt->ctt_type];
   1210 			break;
   1211 
   1212 		case CTF_K_CONST:
   1213 			tdp->t_type = CONST;
   1214 			tdp->t_tdesc = tdarr[ctt->ctt_type];
   1215 			break;
   1216 
   1217 		case CTF_K_FUNCTION:
   1218 			tdp->t_type = FUNCTION;
   1219 			tdp->t_fndef = xcalloc(sizeof (fndef_t));
   1220 			tdp->t_fndef->fn_ret = tdarr[ctt->ctt_type];
   1221 
   1222 			v = (void *) (dptr + (sizeof (ushort_t) * (vlen - 1)));
   1223 			if (vlen > 0 && *(ushort_t *)v == 0)
   1224 				tdp->t_fndef->fn_vargs = 1;
   1225 
   1226 			tdp->t_fndef->fn_nargs = vlen - tdp->t_fndef->fn_vargs;
   1227 			tdp->t_fndef->fn_args = xcalloc(sizeof (tdesc_t) *
   1228 			    vlen - tdp->t_fndef->fn_vargs);
   1229 
   1230 			for (i = 0; i < vlen; i++) {
   1231 				v = (void *) dptr;
   1232 				argid = *(ushort_t *)v;
   1233 				dptr += sizeof (ushort_t);
   1234 
   1235 				if (argid != 0)
   1236 					tdp->t_fndef->fn_args[i] = tdarr[argid];
   1237 			}
   1238 
   1239 			if (vlen & 1)
   1240 				dptr += sizeof (ushort_t);
   1241 			break;
   1242 
   1243 		case CTF_K_RESTRICT:
   1244 			tdp->t_type = RESTRICT;
   1245 			tdp->t_tdesc = tdarr[ctt->ctt_type];
   1246 			break;
   1247 
   1248 		case CTF_K_UNKNOWN:
   1249 			break;
   1250 
   1251 		default:
   1252 			warning("Can't parse unknown CTF type %d\n", kind);
   1253 		}
   1254 
   1255 		if (CTF_INFO_ISROOT(ctt->ctt_info)) {
   1256 			iidesc_t *ii = iidesc_new(tdp->t_name);
   1257 			if (tdp->t_type == STRUCT || tdp->t_type == UNION ||
   1258 			    tdp->t_type == ENUM)
   1259 				ii->ii_type = II_SOU;
   1260 			else
   1261 				ii->ii_type = II_TYPE;
   1262 			ii->ii_dtype = tdp;
   1263 			hash_add(td->td_iihash, ii);
   1264 
   1265 			iicnt++;
   1266 		}
   1267 
   1268 		debug(3, "Resurrected %d %stype %s (%d)\n", tdp->t_type,
   1269 		    (CTF_INFO_ISROOT(ctt->ctt_info) ? "root " : ""),
   1270 		    tdesc_name(tdp), tdp->t_id);
   1271 	}
   1272 
   1273 	debug(3, "Resurrected %d types (%d were roots)\n", tcnt, iicnt);
   1274 }
   1275 
   1276 /*
   1277  * For lack of other inspiration, we're going to take the boring route.  We
   1278  * count the number of types.  This lets us malloc that many tdesc structs
   1279  * before we start filling them in.  This has the advantage of allowing us to
   1280  * avoid a merge-esque remap step.
   1281  */
   1282 static tdata_t *
   1283 ctf_parse(ctf_header_t *h, caddr_t buf, symit_data_t *si, char *label)
   1284 {
   1285 	tdata_t *td = tdata_new();
   1286 	tdesc_t **tdarr;
   1287 	int ntypes = count_types(h, buf);
   1288 	int idx, i;
   1289 
   1290 	/* shudder */
   1291 	tdarr = xcalloc(sizeof (tdesc_t *) * (ntypes + 1));
   1292 	tdarr[0] = NULL;
   1293 	for (i = 1; i <= ntypes; i++) {
   1294 		tdarr[i] = xcalloc(sizeof (tdesc_t));
   1295 		tdarr[i]->t_id = i;
   1296 	}
   1297 
   1298 	td->td_parlabel = xstrdup(buf + h->cth_stroff + h->cth_parlabel);
   1299 
   1300 	/* we have the technology - we can rebuild them */
   1301 	idx = resurrect_labels(h, td, buf, label);
   1302 
   1303 	resurrect_objects(h, td, tdarr, ntypes + 1, buf, si);
   1304 	resurrect_functions(h, td, tdarr, ntypes + 1, buf, si);
   1305 	resurrect_types(h, td, tdarr, ntypes + 1, buf, idx);
   1306 
   1307 	free(tdarr);
   1308 
   1309 	td->td_nextid = ntypes + 1;
   1310 
   1311 	return (td);
   1312 }
   1313 
   1314 static size_t
   1315 decompress_ctf(caddr_t cbuf, size_t cbufsz, caddr_t dbuf, size_t dbufsz)
   1316 {
   1317 	z_stream zstr;
   1318 	int rc;
   1319 
   1320 	zstr.zalloc = (alloc_func)0;
   1321 	zstr.zfree = (free_func)0;
   1322 	zstr.opaque = (voidpf)0;
   1323 
   1324 	zstr.next_in = (Bytef *)cbuf;
   1325 	zstr.avail_in = cbufsz;
   1326 	zstr.next_out = (Bytef *)dbuf;
   1327 	zstr.avail_out = dbufsz;
   1328 
   1329 	if ((rc = inflateInit(&zstr)) != Z_OK ||
   1330 	    (rc = inflate(&zstr, Z_NO_FLUSH)) != Z_STREAM_END ||
   1331 	    (rc = inflateEnd(&zstr)) != Z_OK) {
   1332 		warning("CTF decompress zlib error %s\n", zError(rc));
   1333 		return (0);
   1334 	}
   1335 
   1336 	debug(3, "reflated %lu bytes to %lu, pointer at 0x%jx\n",
   1337 	    zstr.total_in, zstr.total_out,
   1338 	    (intmax_t)((caddr_t)zstr.next_in - cbuf));
   1339 
   1340 	return (zstr.total_out);
   1341 }
   1342 
   1343 /*
   1344  * Reconstruct the type tree from a given buffer of CTF data.  Only the types
   1345  * up to the type associated with the provided label, inclusive, will be
   1346  * reconstructed.  If a NULL label is provided, all types will be reconstructed.
   1347  *
   1348  * This function won't work on files that have been uniquified.
   1349  */
   1350 tdata_t *
   1351 ctf_load(char *file, caddr_t buf, size_t bufsz, symit_data_t *si, char *label)
   1352 {
   1353 	ctf_header_t *h;
   1354 	caddr_t ctfdata;
   1355 	size_t ctfdatasz;
   1356 	tdata_t *td;
   1357 
   1358 	curfile = file;
   1359 
   1360 	if (bufsz < sizeof (ctf_header_t))
   1361 		parseterminate("Corrupt CTF - short header");
   1362 
   1363 	void *v = (void *) buf;
   1364 	h = v;
   1365 	buf += sizeof (ctf_header_t);
   1366 	bufsz -= sizeof (ctf_header_t);
   1367 
   1368 	if (h->cth_magic != CTF_MAGIC)
   1369 		parseterminate("Corrupt CTF - bad magic 0x%x", h->cth_magic);
   1370 
   1371 	if (h->cth_version != CTF_VERSION)
   1372 		parseterminate("Unknown CTF version %d", h->cth_version);
   1373 
   1374 	ctfdatasz = h->cth_stroff + h->cth_strlen;
   1375 	if (h->cth_flags & CTF_F_COMPRESS) {
   1376 		size_t actual;
   1377 
   1378 		ctfdata = xmalloc(ctfdatasz);
   1379 		if ((actual = decompress_ctf(buf, bufsz, ctfdata, ctfdatasz)) !=
   1380 		    ctfdatasz) {
   1381 			parseterminate("Corrupt CTF - short decompression "
   1382 			    "(was %zu, expecting %zu)", actual, ctfdatasz);
   1383 		}
   1384 	} else {
   1385 		ctfdata = buf;
   1386 		ctfdatasz = bufsz;
   1387 	}
   1388 
   1389 	td = ctf_parse(h, ctfdata, si, label);
   1390 
   1391 	if (h->cth_flags & CTF_F_COMPRESS)
   1392 		free(ctfdata);
   1393 
   1394 	curfile = NULL;
   1395 
   1396 	return (td);
   1397 }
   1398