ctf.c revision 1.2 1 1.1 darran /*
2 1.1 darran * CDDL HEADER START
3 1.1 darran *
4 1.1 darran * The contents of this file are subject to the terms of the
5 1.1 darran * Common Development and Distribution License (the "License").
6 1.1 darran * You may not use this file except in compliance with the License.
7 1.1 darran *
8 1.1 darran * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9 1.1 darran * or http://www.opensolaris.org/os/licensing.
10 1.1 darran * See the License for the specific language governing permissions
11 1.1 darran * and limitations under the License.
12 1.1 darran *
13 1.1 darran * When distributing Covered Code, include this CDDL HEADER in each
14 1.1 darran * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15 1.1 darran * If applicable, add the following below this CDDL HEADER, with the
16 1.1 darran * fields enclosed by brackets "[]" replaced with your own identifying
17 1.1 darran * information: Portions Copyright [yyyy] [name of copyright owner]
18 1.1 darran *
19 1.1 darran * CDDL HEADER END
20 1.1 darran */
21 1.1 darran /*
22 1.1 darran * Copyright 2006 Sun Microsystems, Inc. All rights reserved.
23 1.1 darran * Use is subject to license terms.
24 1.1 darran */
25 1.1 darran
26 1.1 darran #pragma ident "%Z%%M% %I% %E% SMI"
27 1.1 darran
28 1.1 darran /*
29 1.1 darran * Create and parse buffers containing CTF data.
30 1.1 darran */
31 1.1 darran
32 1.1 darran #include <sys/types.h>
33 1.1 darran #include <stdio.h>
34 1.1 darran #include <stdlib.h>
35 1.1 darran #include <strings.h>
36 1.1 darran #include <ctype.h>
37 1.1 darran #include <zlib.h>
38 1.1 darran #include <elf.h>
39 1.1 darran
40 1.1 darran #include "ctf_headers.h"
41 1.1 darran #include "ctftools.h"
42 1.1 darran #include "strtab.h"
43 1.1 darran #include "memory.h"
44 1.1 darran
45 1.1 darran /*
46 1.1 darran * Name of the file currently being read, used to print error messages. We
47 1.1 darran * assume that only one file will be read at a time, and thus make no attempt
48 1.1 darran * to allow curfile to be used simultaneously by multiple threads.
49 1.1 darran *
50 1.1 darran * The value is only valid during a call to ctf_load.
51 1.1 darran */
52 1.1 darran char *curfile;
53 1.1 darran
54 1.1 darran #define CTF_BUF_CHUNK_SIZE (64 * 1024)
55 1.1 darran #define RES_BUF_CHUNK_SIZE (64 * 1024)
56 1.1 darran
57 1.1 darran struct ctf_buf {
58 1.1 darran strtab_t ctb_strtab; /* string table */
59 1.1 darran caddr_t ctb_base; /* pointer to base of buffer */
60 1.1 darran caddr_t ctb_end; /* pointer to end of buffer */
61 1.1 darran caddr_t ctb_ptr; /* pointer to empty buffer space */
62 1.1 darran size_t ctb_size; /* size of buffer */
63 1.1 darran int nptent; /* number of processed types */
64 1.1 darran int ntholes; /* number of type holes */
65 1.1 darran };
66 1.1 darran
67 1.1 darran /*PRINTFLIKE1*/
68 1.1 darran static void
69 1.2 darran parseterminate(const char *fmt, ...)
70 1.1 darran {
71 1.1 darran static char msgbuf[1024]; /* sigh */
72 1.1 darran va_list ap;
73 1.1 darran
74 1.1 darran va_start(ap, fmt);
75 1.1 darran vsnprintf(msgbuf, sizeof (msgbuf), fmt, ap);
76 1.1 darran va_end(ap);
77 1.1 darran
78 1.1 darran terminate("%s: %s\n", curfile, msgbuf);
79 1.1 darran }
80 1.1 darran
81 1.2 darran static void
82 1.1 darran ctf_buf_grow(ctf_buf_t *b)
83 1.1 darran {
84 1.1 darran off_t ptroff = b->ctb_ptr - b->ctb_base;
85 1.1 darran
86 1.1 darran b->ctb_size += CTF_BUF_CHUNK_SIZE;
87 1.1 darran b->ctb_base = xrealloc(b->ctb_base, b->ctb_size);
88 1.1 darran b->ctb_end = b->ctb_base + b->ctb_size;
89 1.1 darran b->ctb_ptr = b->ctb_base + ptroff;
90 1.1 darran }
91 1.1 darran
92 1.2 darran static ctf_buf_t *
93 1.1 darran ctf_buf_new(void)
94 1.1 darran {
95 1.1 darran ctf_buf_t *b = xcalloc(sizeof (ctf_buf_t));
96 1.1 darran
97 1.1 darran strtab_create(&b->ctb_strtab);
98 1.1 darran ctf_buf_grow(b);
99 1.1 darran
100 1.1 darran return (b);
101 1.1 darran }
102 1.1 darran
103 1.2 darran static void
104 1.1 darran ctf_buf_free(ctf_buf_t *b)
105 1.1 darran {
106 1.1 darran strtab_destroy(&b->ctb_strtab);
107 1.1 darran free(b->ctb_base);
108 1.1 darran free(b);
109 1.1 darran }
110 1.1 darran
111 1.2 darran static uint_t
112 1.1 darran ctf_buf_cur(ctf_buf_t *b)
113 1.1 darran {
114 1.1 darran return (b->ctb_ptr - b->ctb_base);
115 1.1 darran }
116 1.1 darran
117 1.2 darran static void
118 1.2 darran ctf_buf_write(ctf_buf_t *b, void const *p, size_t n)
119 1.1 darran {
120 1.1 darran size_t len;
121 1.1 darran
122 1.1 darran while (n != 0) {
123 1.1 darran if (b->ctb_ptr == b->ctb_end)
124 1.1 darran ctf_buf_grow(b);
125 1.1 darran
126 1.1 darran len = MIN((size_t)(b->ctb_end - b->ctb_ptr), n);
127 1.1 darran bcopy(p, b->ctb_ptr, len);
128 1.1 darran b->ctb_ptr += len;
129 1.1 darran
130 1.2 darran p = (char const *)p + len;
131 1.1 darran n -= len;
132 1.1 darran }
133 1.1 darran }
134 1.1 darran
135 1.1 darran static int
136 1.2 darran write_label(void *arg1, void *arg2)
137 1.1 darran {
138 1.2 darran labelent_t *le = arg1;
139 1.2 darran ctf_buf_t *b = arg2;
140 1.1 darran ctf_lblent_t ctl;
141 1.1 darran
142 1.1 darran ctl.ctl_label = strtab_insert(&b->ctb_strtab, le->le_name);
143 1.1 darran ctl.ctl_typeidx = le->le_idx;
144 1.1 darran
145 1.1 darran ctf_buf_write(b, &ctl, sizeof (ctl));
146 1.1 darran
147 1.1 darran return (1);
148 1.1 darran }
149 1.1 darran
150 1.1 darran static void
151 1.1 darran write_objects(iidesc_t *idp, ctf_buf_t *b)
152 1.1 darran {
153 1.1 darran ushort_t id = (idp ? idp->ii_dtype->t_id : 0);
154 1.1 darran
155 1.1 darran ctf_buf_write(b, &id, sizeof (id));
156 1.1 darran
157 1.1 darran debug(3, "Wrote object %s (%d)\n", (idp ? idp->ii_name : "(null)"), id);
158 1.1 darran }
159 1.1 darran
160 1.1 darran static void
161 1.1 darran write_functions(iidesc_t *idp, ctf_buf_t *b)
162 1.1 darran {
163 1.1 darran ushort_t fdata[2];
164 1.1 darran ushort_t id;
165 1.1 darran int nargs;
166 1.1 darran int i;
167 1.1 darran
168 1.1 darran if (!idp) {
169 1.1 darran fdata[0] = 0;
170 1.1 darran ctf_buf_write(b, &fdata[0], sizeof (fdata[0]));
171 1.1 darran
172 1.1 darran debug(3, "Wrote function (null)\n");
173 1.1 darran return;
174 1.1 darran }
175 1.1 darran
176 1.1 darran nargs = idp->ii_nargs + (idp->ii_vargs != 0);
177 1.1 darran fdata[0] = CTF_TYPE_INFO(CTF_K_FUNCTION, 1, nargs);
178 1.1 darran fdata[1] = idp->ii_dtype->t_id;
179 1.1 darran ctf_buf_write(b, fdata, sizeof (fdata));
180 1.1 darran
181 1.1 darran for (i = 0; i < idp->ii_nargs; i++) {
182 1.1 darran id = idp->ii_args[i]->t_id;
183 1.1 darran ctf_buf_write(b, &id, sizeof (id));
184 1.1 darran }
185 1.1 darran
186 1.1 darran if (idp->ii_vargs) {
187 1.1 darran id = 0;
188 1.1 darran ctf_buf_write(b, &id, sizeof (id));
189 1.1 darran }
190 1.1 darran
191 1.1 darran debug(3, "Wrote function %s (%d args)\n", idp->ii_name, nargs);
192 1.1 darran }
193 1.1 darran
194 1.1 darran /*
195 1.1 darran * Depending on the size of the type being described, either a ctf_stype_t (for
196 1.1 darran * types with size < CTF_LSTRUCT_THRESH) or a ctf_type_t (all others) will be
197 1.1 darran * written. We isolate the determination here so the rest of the writer code
198 1.1 darran * doesn't need to care.
199 1.1 darran */
200 1.1 darran static void
201 1.1 darran write_sized_type_rec(ctf_buf_t *b, ctf_type_t *ctt, size_t size)
202 1.1 darran {
203 1.1 darran if (size > CTF_MAX_SIZE) {
204 1.1 darran ctt->ctt_size = CTF_LSIZE_SENT;
205 1.1 darran ctt->ctt_lsizehi = CTF_SIZE_TO_LSIZE_HI(size);
206 1.1 darran ctt->ctt_lsizelo = CTF_SIZE_TO_LSIZE_LO(size);
207 1.1 darran ctf_buf_write(b, ctt, sizeof (*ctt));
208 1.1 darran } else {
209 1.1 darran ctf_stype_t *cts = (ctf_stype_t *)ctt;
210 1.1 darran
211 1.1 darran cts->ctt_size = (ushort_t)size;
212 1.1 darran ctf_buf_write(b, cts, sizeof (*cts));
213 1.1 darran }
214 1.1 darran }
215 1.1 darran
216 1.1 darran static void
217 1.1 darran write_unsized_type_rec(ctf_buf_t *b, ctf_type_t *ctt)
218 1.1 darran {
219 1.1 darran ctf_stype_t *cts = (ctf_stype_t *)ctt;
220 1.1 darran
221 1.1 darran ctf_buf_write(b, cts, sizeof (*cts));
222 1.1 darran }
223 1.1 darran
224 1.1 darran static int
225 1.2 darran write_type(void *arg1, void *arg2)
226 1.1 darran {
227 1.2 darran tdesc_t *tp = arg1;
228 1.2 darran ctf_buf_t *b = arg2;
229 1.1 darran elist_t *ep;
230 1.1 darran mlist_t *mp;
231 1.1 darran intr_t *ip;
232 1.1 darran
233 1.1 darran size_t offset;
234 1.1 darran uint_t encoding;
235 1.1 darran uint_t data;
236 1.1 darran int isroot = tp->t_flags & TDESC_F_ISROOT;
237 1.1 darran int i;
238 1.1 darran
239 1.1 darran ctf_type_t ctt;
240 1.1 darran ctf_array_t cta;
241 1.1 darran ctf_member_t ctm;
242 1.1 darran ctf_lmember_t ctlm;
243 1.1 darran ctf_enum_t cte;
244 1.1 darran ushort_t id;
245 1.1 darran
246 1.1 darran ctlm.ctlm_pad = 0;
247 1.1 darran
248 1.1 darran /*
249 1.1 darran * There shouldn't be any holes in the type list (where a hole is
250 1.1 darran * defined as two consecutive tdescs without consecutive ids), but
251 1.1 darran * check for them just in case. If we do find holes, we need to make
252 1.1 darran * fake entries to fill the holes, or we won't be able to reconstruct
253 1.1 darran * the tree from the written data.
254 1.1 darran */
255 1.1 darran if (++b->nptent < CTF_TYPE_TO_INDEX(tp->t_id)) {
256 1.1 darran debug(2, "genctf: type hole from %d < x < %d\n",
257 1.1 darran b->nptent - 1, CTF_TYPE_TO_INDEX(tp->t_id));
258 1.1 darran
259 1.1 darran ctt.ctt_name = CTF_TYPE_NAME(CTF_STRTAB_0, 0);
260 1.1 darran ctt.ctt_info = CTF_TYPE_INFO(0, 0, 0);
261 1.1 darran while (b->nptent < CTF_TYPE_TO_INDEX(tp->t_id)) {
262 1.1 darran write_sized_type_rec(b, &ctt, 0);
263 1.1 darran b->nptent++;
264 1.1 darran }
265 1.1 darran }
266 1.1 darran
267 1.1 darran offset = strtab_insert(&b->ctb_strtab, tp->t_name);
268 1.1 darran ctt.ctt_name = CTF_TYPE_NAME(CTF_STRTAB_0, offset);
269 1.1 darran
270 1.1 darran switch (tp->t_type) {
271 1.1 darran case INTRINSIC:
272 1.1 darran ip = tp->t_intr;
273 1.1 darran if (ip->intr_type == INTR_INT)
274 1.1 darran ctt.ctt_info = CTF_TYPE_INFO(CTF_K_INTEGER,
275 1.1 darran isroot, 1);
276 1.1 darran else
277 1.1 darran ctt.ctt_info = CTF_TYPE_INFO(CTF_K_FLOAT, isroot, 1);
278 1.1 darran write_sized_type_rec(b, &ctt, tp->t_size);
279 1.1 darran
280 1.1 darran encoding = 0;
281 1.1 darran
282 1.1 darran if (ip->intr_type == INTR_INT) {
283 1.1 darran if (ip->intr_signed)
284 1.1 darran encoding |= CTF_INT_SIGNED;
285 1.1 darran if (ip->intr_iformat == 'c')
286 1.1 darran encoding |= CTF_INT_CHAR;
287 1.1 darran else if (ip->intr_iformat == 'b')
288 1.1 darran encoding |= CTF_INT_BOOL;
289 1.1 darran else if (ip->intr_iformat == 'v')
290 1.1 darran encoding |= CTF_INT_VARARGS;
291 1.1 darran } else
292 1.1 darran encoding = ip->intr_fformat;
293 1.1 darran
294 1.1 darran data = CTF_INT_DATA(encoding, ip->intr_offset, ip->intr_nbits);
295 1.1 darran ctf_buf_write(b, &data, sizeof (data));
296 1.1 darran break;
297 1.1 darran
298 1.1 darran case POINTER:
299 1.1 darran ctt.ctt_info = CTF_TYPE_INFO(CTF_K_POINTER, isroot, 0);
300 1.1 darran ctt.ctt_type = tp->t_tdesc->t_id;
301 1.1 darran write_unsized_type_rec(b, &ctt);
302 1.1 darran break;
303 1.1 darran
304 1.1 darran case ARRAY:
305 1.1 darran ctt.ctt_info = CTF_TYPE_INFO(CTF_K_ARRAY, isroot, 1);
306 1.1 darran write_sized_type_rec(b, &ctt, tp->t_size);
307 1.1 darran
308 1.1 darran cta.cta_contents = tp->t_ardef->ad_contents->t_id;
309 1.1 darran cta.cta_index = tp->t_ardef->ad_idxtype->t_id;
310 1.1 darran cta.cta_nelems = tp->t_ardef->ad_nelems;
311 1.1 darran ctf_buf_write(b, &cta, sizeof (cta));
312 1.1 darran break;
313 1.1 darran
314 1.1 darran case STRUCT:
315 1.1 darran case UNION:
316 1.1 darran for (i = 0, mp = tp->t_members; mp != NULL; mp = mp->ml_next)
317 1.1 darran i++; /* count up struct or union members */
318 1.1 darran
319 1.1 darran if (tp->t_type == STRUCT)
320 1.1 darran ctt.ctt_info = CTF_TYPE_INFO(CTF_K_STRUCT, isroot, i);
321 1.1 darran else
322 1.1 darran ctt.ctt_info = CTF_TYPE_INFO(CTF_K_UNION, isroot, i);
323 1.1 darran
324 1.1 darran write_sized_type_rec(b, &ctt, tp->t_size);
325 1.1 darran
326 1.1 darran if (tp->t_size < CTF_LSTRUCT_THRESH) {
327 1.1 darran for (mp = tp->t_members; mp != NULL; mp = mp->ml_next) {
328 1.1 darran offset = strtab_insert(&b->ctb_strtab,
329 1.1 darran mp->ml_name);
330 1.1 darran
331 1.1 darran ctm.ctm_name = CTF_TYPE_NAME(CTF_STRTAB_0,
332 1.1 darran offset);
333 1.1 darran ctm.ctm_type = mp->ml_type->t_id;
334 1.1 darran ctm.ctm_offset = mp->ml_offset;
335 1.1 darran ctf_buf_write(b, &ctm, sizeof (ctm));
336 1.1 darran }
337 1.1 darran } else {
338 1.1 darran for (mp = tp->t_members; mp != NULL; mp = mp->ml_next) {
339 1.1 darran offset = strtab_insert(&b->ctb_strtab,
340 1.1 darran mp->ml_name);
341 1.1 darran
342 1.1 darran ctlm.ctlm_name = CTF_TYPE_NAME(CTF_STRTAB_0,
343 1.1 darran offset);
344 1.1 darran ctlm.ctlm_type = mp->ml_type->t_id;
345 1.1 darran ctlm.ctlm_offsethi =
346 1.1 darran CTF_OFFSET_TO_LMEMHI(mp->ml_offset);
347 1.1 darran ctlm.ctlm_offsetlo =
348 1.1 darran CTF_OFFSET_TO_LMEMLO(mp->ml_offset);
349 1.1 darran ctf_buf_write(b, &ctlm, sizeof (ctlm));
350 1.1 darran }
351 1.1 darran }
352 1.1 darran break;
353 1.1 darran
354 1.1 darran case ENUM:
355 1.1 darran for (i = 0, ep = tp->t_emem; ep != NULL; ep = ep->el_next)
356 1.1 darran i++; /* count up enum members */
357 1.1 darran
358 1.1 darran ctt.ctt_info = CTF_TYPE_INFO(CTF_K_ENUM, isroot, i);
359 1.1 darran write_sized_type_rec(b, &ctt, tp->t_size);
360 1.1 darran
361 1.1 darran for (ep = tp->t_emem; ep != NULL; ep = ep->el_next) {
362 1.1 darran offset = strtab_insert(&b->ctb_strtab, ep->el_name);
363 1.1 darran cte.cte_name = CTF_TYPE_NAME(CTF_STRTAB_0, offset);
364 1.1 darran cte.cte_value = ep->el_number;
365 1.1 darran ctf_buf_write(b, &cte, sizeof (cte));
366 1.1 darran }
367 1.1 darran break;
368 1.1 darran
369 1.1 darran case FORWARD:
370 1.1 darran ctt.ctt_info = CTF_TYPE_INFO(CTF_K_FORWARD, isroot, 0);
371 1.1 darran ctt.ctt_type = 0;
372 1.1 darran write_unsized_type_rec(b, &ctt);
373 1.1 darran break;
374 1.1 darran
375 1.1 darran case TYPEDEF:
376 1.1 darran ctt.ctt_info = CTF_TYPE_INFO(CTF_K_TYPEDEF, isroot, 0);
377 1.1 darran ctt.ctt_type = tp->t_tdesc->t_id;
378 1.1 darran write_unsized_type_rec(b, &ctt);
379 1.1 darran break;
380 1.1 darran
381 1.1 darran case VOLATILE:
382 1.1 darran ctt.ctt_info = CTF_TYPE_INFO(CTF_K_VOLATILE, isroot, 0);
383 1.1 darran ctt.ctt_type = tp->t_tdesc->t_id;
384 1.1 darran write_unsized_type_rec(b, &ctt);
385 1.1 darran break;
386 1.1 darran
387 1.1 darran case CONST:
388 1.1 darran ctt.ctt_info = CTF_TYPE_INFO(CTF_K_CONST, isroot, 0);
389 1.1 darran ctt.ctt_type = tp->t_tdesc->t_id;
390 1.1 darran write_unsized_type_rec(b, &ctt);
391 1.1 darran break;
392 1.1 darran
393 1.1 darran case FUNCTION:
394 1.1 darran ctt.ctt_info = CTF_TYPE_INFO(CTF_K_FUNCTION, isroot,
395 1.1 darran tp->t_fndef->fn_nargs + tp->t_fndef->fn_vargs);
396 1.1 darran ctt.ctt_type = tp->t_fndef->fn_ret->t_id;
397 1.1 darran write_unsized_type_rec(b, &ctt);
398 1.1 darran
399 1.2 darran for (i = 0; i < (int) tp->t_fndef->fn_nargs; i++) {
400 1.1 darran id = tp->t_fndef->fn_args[i]->t_id;
401 1.1 darran ctf_buf_write(b, &id, sizeof (id));
402 1.1 darran }
403 1.1 darran
404 1.1 darran if (tp->t_fndef->fn_vargs) {
405 1.1 darran id = 0;
406 1.1 darran ctf_buf_write(b, &id, sizeof (id));
407 1.1 darran i++;
408 1.1 darran }
409 1.1 darran
410 1.1 darran if (i & 1) {
411 1.1 darran id = 0;
412 1.1 darran ctf_buf_write(b, &id, sizeof (id));
413 1.1 darran }
414 1.1 darran break;
415 1.1 darran
416 1.1 darran case RESTRICT:
417 1.1 darran ctt.ctt_info = CTF_TYPE_INFO(CTF_K_RESTRICT, isroot, 0);
418 1.1 darran ctt.ctt_type = tp->t_tdesc->t_id;
419 1.1 darran write_unsized_type_rec(b, &ctt);
420 1.1 darran break;
421 1.1 darran
422 1.1 darran default:
423 1.1 darran warning("Can't write unknown type %d\n", tp->t_type);
424 1.1 darran }
425 1.1 darran
426 1.1 darran debug(3, "Wrote type %d %s\n", tp->t_id, tdesc_name(tp));
427 1.1 darran
428 1.1 darran return (1);
429 1.1 darran }
430 1.1 darran
431 1.1 darran typedef struct resbuf {
432 1.1 darran caddr_t rb_base;
433 1.1 darran caddr_t rb_ptr;
434 1.1 darran size_t rb_size;
435 1.1 darran z_stream rb_zstr;
436 1.1 darran } resbuf_t;
437 1.1 darran
438 1.1 darran static void
439 1.1 darran rbzs_grow(resbuf_t *rb)
440 1.1 darran {
441 1.1 darran off_t ptroff = (caddr_t)rb->rb_zstr.next_out - rb->rb_base;
442 1.1 darran
443 1.1 darran rb->rb_size += RES_BUF_CHUNK_SIZE;
444 1.1 darran rb->rb_base = xrealloc(rb->rb_base, rb->rb_size);
445 1.1 darran rb->rb_ptr = rb->rb_base + ptroff;
446 1.1 darran rb->rb_zstr.next_out = (Bytef *)(rb->rb_ptr);
447 1.1 darran rb->rb_zstr.avail_out += RES_BUF_CHUNK_SIZE;
448 1.1 darran }
449 1.1 darran
450 1.1 darran static void
451 1.1 darran compress_start(resbuf_t *rb)
452 1.1 darran {
453 1.1 darran int rc;
454 1.1 darran
455 1.1 darran rb->rb_zstr.zalloc = (alloc_func)0;
456 1.1 darran rb->rb_zstr.zfree = (free_func)0;
457 1.1 darran rb->rb_zstr.opaque = (voidpf)0;
458 1.1 darran
459 1.1 darran if ((rc = deflateInit(&rb->rb_zstr, Z_BEST_COMPRESSION)) != Z_OK)
460 1.1 darran parseterminate("zlib start failed: %s", zError(rc));
461 1.1 darran }
462 1.1 darran
463 1.1 darran static ssize_t
464 1.2 darran compress_buffer(void *buf, size_t n, void *data)
465 1.1 darran {
466 1.1 darran resbuf_t *rb = (resbuf_t *)data;
467 1.1 darran int rc;
468 1.1 darran
469 1.1 darran rb->rb_zstr.next_out = (Bytef *)rb->rb_ptr;
470 1.1 darran rb->rb_zstr.avail_out = rb->rb_size - (rb->rb_ptr - rb->rb_base);
471 1.2 darran rb->rb_zstr.next_in = buf;
472 1.1 darran rb->rb_zstr.avail_in = n;
473 1.1 darran
474 1.1 darran while (rb->rb_zstr.avail_in) {
475 1.1 darran if (rb->rb_zstr.avail_out == 0)
476 1.1 darran rbzs_grow(rb);
477 1.1 darran
478 1.1 darran if ((rc = deflate(&rb->rb_zstr, Z_NO_FLUSH)) != Z_OK)
479 1.1 darran parseterminate("zlib deflate failed: %s", zError(rc));
480 1.1 darran }
481 1.1 darran rb->rb_ptr = (caddr_t)rb->rb_zstr.next_out;
482 1.1 darran
483 1.1 darran return (n);
484 1.1 darran }
485 1.1 darran
486 1.1 darran static void
487 1.1 darran compress_flush(resbuf_t *rb, int type)
488 1.1 darran {
489 1.1 darran int rc;
490 1.1 darran
491 1.1 darran for (;;) {
492 1.1 darran if (rb->rb_zstr.avail_out == 0)
493 1.1 darran rbzs_grow(rb);
494 1.1 darran
495 1.1 darran rc = deflate(&rb->rb_zstr, type);
496 1.1 darran if ((type == Z_FULL_FLUSH && rc == Z_BUF_ERROR) ||
497 1.1 darran (type == Z_FINISH && rc == Z_STREAM_END))
498 1.1 darran break;
499 1.1 darran else if (rc != Z_OK)
500 1.1 darran parseterminate("zlib finish failed: %s", zError(rc));
501 1.1 darran }
502 1.1 darran rb->rb_ptr = (caddr_t)rb->rb_zstr.next_out;
503 1.1 darran }
504 1.1 darran
505 1.1 darran static void
506 1.1 darran compress_end(resbuf_t *rb)
507 1.1 darran {
508 1.1 darran int rc;
509 1.1 darran
510 1.1 darran compress_flush(rb, Z_FINISH);
511 1.1 darran
512 1.1 darran if ((rc = deflateEnd(&rb->rb_zstr)) != Z_OK)
513 1.1 darran parseterminate("zlib end failed: %s", zError(rc));
514 1.1 darran }
515 1.1 darran
516 1.1 darran /*
517 1.1 darran * Pad the buffer to a power-of-2 boundary
518 1.1 darran */
519 1.1 darran static void
520 1.1 darran pad_buffer(ctf_buf_t *buf, int align)
521 1.1 darran {
522 1.1 darran uint_t cur = ctf_buf_cur(buf);
523 1.1 darran ssize_t topad = (align - (cur % align)) % align;
524 1.1 darran static const char pad[8] = { 0 };
525 1.1 darran
526 1.1 darran while (topad > 0) {
527 1.1 darran ctf_buf_write(buf, pad, (topad > 8 ? 8 : topad));
528 1.1 darran topad -= 8;
529 1.1 darran }
530 1.1 darran }
531 1.1 darran
532 1.1 darran static ssize_t
533 1.2 darran bcopy_data(void *buf, size_t n, void *data)
534 1.1 darran {
535 1.1 darran caddr_t *posp = (caddr_t *)data;
536 1.1 darran bcopy(buf, *posp, n);
537 1.1 darran *posp += n;
538 1.1 darran return (n);
539 1.1 darran }
540 1.1 darran
541 1.1 darran static caddr_t
542 1.1 darran write_buffer(ctf_header_t *h, ctf_buf_t *buf, size_t *resszp)
543 1.1 darran {
544 1.1 darran caddr_t outbuf;
545 1.1 darran caddr_t bufpos;
546 1.1 darran
547 1.1 darran outbuf = xmalloc(sizeof (ctf_header_t) + (buf->ctb_ptr - buf->ctb_base)
548 1.1 darran + buf->ctb_strtab.str_size);
549 1.1 darran
550 1.1 darran bufpos = outbuf;
551 1.1 darran (void) bcopy_data(h, sizeof (ctf_header_t), &bufpos);
552 1.1 darran (void) bcopy_data(buf->ctb_base, buf->ctb_ptr - buf->ctb_base,
553 1.1 darran &bufpos);
554 1.1 darran (void) strtab_write(&buf->ctb_strtab, bcopy_data, &bufpos);
555 1.1 darran *resszp = bufpos - outbuf;
556 1.1 darran return (outbuf);
557 1.1 darran }
558 1.1 darran
559 1.1 darran /*
560 1.1 darran * Create the compression buffer, and fill it with the CTF and string
561 1.1 darran * table data. We flush the compression state between the two so the
562 1.1 darran * dictionary used for the string tables won't be polluted with values
563 1.1 darran * that made sense for the CTF data.
564 1.1 darran */
565 1.1 darran static caddr_t
566 1.1 darran write_compressed_buffer(ctf_header_t *h, ctf_buf_t *buf, size_t *resszp)
567 1.1 darran {
568 1.1 darran resbuf_t resbuf;
569 1.1 darran resbuf.rb_size = RES_BUF_CHUNK_SIZE;
570 1.1 darran resbuf.rb_base = xmalloc(resbuf.rb_size);
571 1.1 darran bcopy(h, resbuf.rb_base, sizeof (ctf_header_t));
572 1.1 darran resbuf.rb_ptr = resbuf.rb_base + sizeof (ctf_header_t);
573 1.1 darran
574 1.1 darran compress_start(&resbuf);
575 1.1 darran (void) compress_buffer(buf->ctb_base, buf->ctb_ptr - buf->ctb_base,
576 1.1 darran &resbuf);
577 1.1 darran compress_flush(&resbuf, Z_FULL_FLUSH);
578 1.1 darran (void) strtab_write(&buf->ctb_strtab, compress_buffer, &resbuf);
579 1.1 darran compress_end(&resbuf);
580 1.1 darran
581 1.1 darran *resszp = (resbuf.rb_ptr - resbuf.rb_base);
582 1.1 darran return (resbuf.rb_base);
583 1.1 darran }
584 1.1 darran
585 1.1 darran caddr_t
586 1.1 darran ctf_gen(iiburst_t *iiburst, size_t *resszp, int do_compress)
587 1.1 darran {
588 1.1 darran ctf_buf_t *buf = ctf_buf_new();
589 1.1 darran ctf_header_t h;
590 1.1 darran caddr_t outbuf;
591 1.1 darran
592 1.1 darran int i;
593 1.1 darran
594 1.1 darran /*
595 1.1 darran * Prepare the header, and create the CTF output buffers. The data
596 1.1 darran * object section and function section are both lists of 2-byte
597 1.1 darran * integers; we pad these out to the next 4-byte boundary if needed.
598 1.1 darran */
599 1.1 darran h.cth_magic = CTF_MAGIC;
600 1.1 darran h.cth_version = CTF_VERSION;
601 1.1 darran h.cth_flags = do_compress ? CTF_F_COMPRESS : 0;
602 1.1 darran h.cth_parlabel = strtab_insert(&buf->ctb_strtab,
603 1.1 darran iiburst->iib_td->td_parlabel);
604 1.1 darran h.cth_parname = strtab_insert(&buf->ctb_strtab,
605 1.1 darran iiburst->iib_td->td_parname);
606 1.1 darran
607 1.1 darran h.cth_lbloff = 0;
608 1.2 darran (void) list_iter(iiburst->iib_td->td_labels, write_label,
609 1.1 darran buf);
610 1.1 darran
611 1.1 darran pad_buffer(buf, 2);
612 1.1 darran h.cth_objtoff = ctf_buf_cur(buf);
613 1.1 darran for (i = 0; i < iiburst->iib_nobjts; i++)
614 1.1 darran write_objects(iiburst->iib_objts[i], buf);
615 1.1 darran
616 1.1 darran pad_buffer(buf, 2);
617 1.1 darran h.cth_funcoff = ctf_buf_cur(buf);
618 1.1 darran for (i = 0; i < iiburst->iib_nfuncs; i++)
619 1.1 darran write_functions(iiburst->iib_funcs[i], buf);
620 1.1 darran
621 1.1 darran pad_buffer(buf, 4);
622 1.1 darran h.cth_typeoff = ctf_buf_cur(buf);
623 1.2 darran (void) list_iter(iiburst->iib_types, write_type, buf);
624 1.1 darran
625 1.1 darran debug(2, "CTF wrote %d types\n", list_count(iiburst->iib_types));
626 1.1 darran
627 1.1 darran h.cth_stroff = ctf_buf_cur(buf);
628 1.1 darran h.cth_strlen = strtab_size(&buf->ctb_strtab);
629 1.1 darran
630 1.1 darran /*
631 1.1 darran * We only do compression for ctfmerge, as ctfconvert is only
632 1.1 darran * supposed to be used on intermediary build objects. This is
633 1.1 darran * significantly faster.
634 1.1 darran */
635 1.1 darran if (do_compress)
636 1.1 darran outbuf = write_compressed_buffer(&h, buf, resszp);
637 1.1 darran else
638 1.1 darran outbuf = write_buffer(&h, buf, resszp);
639 1.1 darran
640 1.1 darran ctf_buf_free(buf);
641 1.1 darran return (outbuf);
642 1.1 darran }
643 1.1 darran
644 1.2 darran static void
645 1.1 darran get_ctt_size(ctf_type_t *ctt, size_t *sizep, size_t *incrementp)
646 1.1 darran {
647 1.1 darran if (ctt->ctt_size == CTF_LSIZE_SENT) {
648 1.1 darran *sizep = (size_t)CTF_TYPE_LSIZE(ctt);
649 1.1 darran *incrementp = sizeof (ctf_type_t);
650 1.1 darran } else {
651 1.1 darran *sizep = ctt->ctt_size;
652 1.1 darran *incrementp = sizeof (ctf_stype_t);
653 1.1 darran }
654 1.1 darran }
655 1.1 darran
656 1.1 darran static int
657 1.1 darran count_types(ctf_header_t *h, caddr_t data)
658 1.1 darran {
659 1.1 darran caddr_t dptr = data + h->cth_typeoff;
660 1.1 darran int count = 0;
661 1.1 darran
662 1.1 darran dptr = data + h->cth_typeoff;
663 1.1 darran while (dptr < data + h->cth_stroff) {
664 1.2 darran void *v = (void *) dptr;
665 1.2 darran ctf_type_t *ctt = v;
666 1.1 darran size_t vlen = CTF_INFO_VLEN(ctt->ctt_info);
667 1.1 darran size_t size, increment;
668 1.1 darran
669 1.1 darran get_ctt_size(ctt, &size, &increment);
670 1.1 darran
671 1.1 darran switch (CTF_INFO_KIND(ctt->ctt_info)) {
672 1.1 darran case CTF_K_INTEGER:
673 1.1 darran case CTF_K_FLOAT:
674 1.1 darran dptr += 4;
675 1.1 darran break;
676 1.1 darran case CTF_K_POINTER:
677 1.1 darran case CTF_K_FORWARD:
678 1.1 darran case CTF_K_TYPEDEF:
679 1.1 darran case CTF_K_VOLATILE:
680 1.1 darran case CTF_K_CONST:
681 1.1 darran case CTF_K_RESTRICT:
682 1.1 darran case CTF_K_FUNCTION:
683 1.1 darran dptr += sizeof (ushort_t) * (vlen + (vlen & 1));
684 1.1 darran break;
685 1.1 darran case CTF_K_ARRAY:
686 1.1 darran dptr += sizeof (ctf_array_t);
687 1.1 darran break;
688 1.1 darran case CTF_K_STRUCT:
689 1.1 darran case CTF_K_UNION:
690 1.1 darran if (size < CTF_LSTRUCT_THRESH)
691 1.1 darran dptr += sizeof (ctf_member_t) * vlen;
692 1.1 darran else
693 1.1 darran dptr += sizeof (ctf_lmember_t) * vlen;
694 1.1 darran break;
695 1.1 darran case CTF_K_ENUM:
696 1.1 darran dptr += sizeof (ctf_enum_t) * vlen;
697 1.1 darran break;
698 1.1 darran case CTF_K_UNKNOWN:
699 1.1 darran break;
700 1.1 darran default:
701 1.1 darran parseterminate("Unknown CTF type %d (#%d) at %#x",
702 1.1 darran CTF_INFO_KIND(ctt->ctt_info), count, dptr - data);
703 1.1 darran }
704 1.1 darran
705 1.1 darran dptr += increment;
706 1.1 darran count++;
707 1.1 darran }
708 1.1 darran
709 1.1 darran debug(3, "CTF read %d types\n", count);
710 1.1 darran
711 1.1 darran return (count);
712 1.1 darran }
713 1.1 darran
714 1.1 darran /*
715 1.1 darran * Resurrect the labels stored in the CTF data, returning the index associated
716 1.1 darran * with a label provided by the caller. There are several cases, outlined
717 1.1 darran * below. Note that, given two labels, the one associated with the lesser type
718 1.1 darran * index is considered to be older than the other.
719 1.1 darran *
720 1.1 darran * 1. matchlbl == NULL - return the index of the most recent label.
721 1.1 darran * 2. matchlbl == "BASE" - return the index of the oldest label.
722 1.1 darran * 3. matchlbl != NULL, but doesn't match any labels in the section - warn
723 1.1 darran * the user, and proceed as if matchlbl == "BASE" (for safety).
724 1.1 darran * 4. matchlbl != NULL, and matches one of the labels in the section - return
725 1.1 darran * the type index associated with the label.
726 1.1 darran */
727 1.1 darran static int
728 1.1 darran resurrect_labels(ctf_header_t *h, tdata_t *td, caddr_t ctfdata, char *matchlbl)
729 1.1 darran {
730 1.1 darran caddr_t buf = ctfdata + h->cth_lbloff;
731 1.1 darran caddr_t sbuf = ctfdata + h->cth_stroff;
732 1.1 darran size_t bufsz = h->cth_objtoff - h->cth_lbloff;
733 1.1 darran int lastidx = 0, baseidx = -1;
734 1.2 darran char *baselabel = NULL;
735 1.1 darran ctf_lblent_t *ctl;
736 1.2 darran void *v = (void *) buf;
737 1.1 darran
738 1.2 darran for (ctl = v; (caddr_t)ctl < buf + bufsz; ctl++) {
739 1.1 darran char *label = sbuf + ctl->ctl_label;
740 1.1 darran
741 1.1 darran lastidx = ctl->ctl_typeidx;
742 1.1 darran
743 1.1 darran debug(3, "Resurrected label %s type idx %d\n", label, lastidx);
744 1.1 darran
745 1.1 darran tdata_label_add(td, label, lastidx);
746 1.1 darran
747 1.1 darran if (baseidx == -1) {
748 1.1 darran baseidx = lastidx;
749 1.1 darran baselabel = label;
750 1.1 darran if (matchlbl != NULL && streq(matchlbl, "BASE"))
751 1.1 darran return (lastidx);
752 1.1 darran }
753 1.1 darran
754 1.1 darran if (matchlbl != NULL && streq(label, matchlbl))
755 1.1 darran return (lastidx);
756 1.1 darran }
757 1.1 darran
758 1.1 darran if (matchlbl != NULL) {
759 1.1 darran /* User provided a label that didn't match */
760 1.1 darran warning("%s: Cannot find label `%s' - using base (%s)\n",
761 1.1 darran curfile, matchlbl, (baselabel ? baselabel : "NONE"));
762 1.1 darran
763 1.1 darran tdata_label_free(td);
764 1.1 darran tdata_label_add(td, baselabel, baseidx);
765 1.1 darran
766 1.1 darran return (baseidx);
767 1.1 darran }
768 1.1 darran
769 1.1 darran return (lastidx);
770 1.1 darran }
771 1.1 darran
772 1.1 darran static void
773 1.1 darran resurrect_objects(ctf_header_t *h, tdata_t *td, tdesc_t **tdarr, int tdsize,
774 1.1 darran caddr_t ctfdata, symit_data_t *si)
775 1.1 darran {
776 1.1 darran caddr_t buf = ctfdata + h->cth_objtoff;
777 1.1 darran size_t bufsz = h->cth_funcoff - h->cth_objtoff;
778 1.1 darran caddr_t dptr;
779 1.1 darran
780 1.1 darran symit_reset(si);
781 1.1 darran for (dptr = buf; dptr < buf + bufsz; dptr += 2) {
782 1.2 darran void *v = (void *) dptr;
783 1.2 darran ushort_t id = *((ushort_t *)v);
784 1.1 darran iidesc_t *ii;
785 1.1 darran GElf_Sym *sym;
786 1.1 darran
787 1.1 darran if (!(sym = symit_next(si, STT_OBJECT)) && id != 0) {
788 1.1 darran parseterminate(
789 1.1 darran "Unexpected end of object symbols at %x of %x",
790 1.1 darran dptr - buf, bufsz);
791 1.1 darran }
792 1.1 darran
793 1.1 darran if (id == 0) {
794 1.1 darran debug(3, "Skipping null object\n");
795 1.1 darran continue;
796 1.1 darran } else if (id >= tdsize) {
797 1.1 darran parseterminate("Reference to invalid type %d", id);
798 1.1 darran }
799 1.1 darran
800 1.1 darran ii = iidesc_new(symit_name(si));
801 1.1 darran ii->ii_dtype = tdarr[id];
802 1.1 darran if (GELF_ST_BIND(sym->st_info) == STB_LOCAL) {
803 1.1 darran ii->ii_type = II_SVAR;
804 1.1 darran ii->ii_owner = xstrdup(symit_curfile(si));
805 1.1 darran } else
806 1.1 darran ii->ii_type = II_GVAR;
807 1.1 darran hash_add(td->td_iihash, ii);
808 1.1 darran
809 1.1 darran debug(3, "Resurrected %s object %s (%d) from %s\n",
810 1.1 darran (ii->ii_type == II_GVAR ? "global" : "static"),
811 1.1 darran ii->ii_name, id, (ii->ii_owner ? ii->ii_owner : "(none)"));
812 1.1 darran }
813 1.1 darran }
814 1.1 darran
815 1.1 darran static void
816 1.1 darran resurrect_functions(ctf_header_t *h, tdata_t *td, tdesc_t **tdarr, int tdsize,
817 1.1 darran caddr_t ctfdata, symit_data_t *si)
818 1.1 darran {
819 1.1 darran caddr_t buf = ctfdata + h->cth_funcoff;
820 1.1 darran size_t bufsz = h->cth_typeoff - h->cth_funcoff;
821 1.1 darran caddr_t dptr = buf;
822 1.1 darran iidesc_t *ii;
823 1.1 darran ushort_t info;
824 1.1 darran ushort_t retid;
825 1.1 darran GElf_Sym *sym;
826 1.1 darran int i;
827 1.1 darran
828 1.1 darran symit_reset(si);
829 1.1 darran while (dptr < buf + bufsz) {
830 1.2 darran void *v = (void *) dptr;
831 1.2 darran info = *((ushort_t *)v);
832 1.1 darran dptr += 2;
833 1.1 darran
834 1.1 darran if (!(sym = symit_next(si, STT_FUNC)) && info != 0)
835 1.1 darran parseterminate("Unexpected end of function symbols");
836 1.1 darran
837 1.1 darran if (info == 0) {
838 1.1 darran debug(3, "Skipping null function (%s)\n",
839 1.1 darran symit_name(si));
840 1.1 darran continue;
841 1.1 darran }
842 1.1 darran
843 1.2 darran v = (void *) dptr;
844 1.2 darran retid = *((ushort_t *)v);
845 1.1 darran dptr += 2;
846 1.1 darran
847 1.1 darran if (retid >= tdsize)
848 1.1 darran parseterminate("Reference to invalid type %d", retid);
849 1.1 darran
850 1.1 darran ii = iidesc_new(symit_name(si));
851 1.1 darran ii->ii_dtype = tdarr[retid];
852 1.1 darran if (GELF_ST_BIND(sym->st_info) == STB_LOCAL) {
853 1.1 darran ii->ii_type = II_SFUN;
854 1.1 darran ii->ii_owner = xstrdup(symit_curfile(si));
855 1.1 darran } else
856 1.1 darran ii->ii_type = II_GFUN;
857 1.1 darran ii->ii_nargs = CTF_INFO_VLEN(info);
858 1.1 darran if (ii->ii_nargs)
859 1.1 darran ii->ii_args =
860 1.1 darran xmalloc(sizeof (tdesc_t *) * ii->ii_nargs);
861 1.1 darran
862 1.1 darran for (i = 0; i < ii->ii_nargs; i++, dptr += 2) {
863 1.2 darran v = (void *) dptr;
864 1.2 darran ushort_t id = *((ushort_t *)v);
865 1.1 darran if (id >= tdsize)
866 1.1 darran parseterminate("Reference to invalid type %d",
867 1.1 darran id);
868 1.1 darran ii->ii_args[i] = tdarr[id];
869 1.1 darran }
870 1.1 darran
871 1.1 darran if (ii->ii_nargs && ii->ii_args[ii->ii_nargs - 1] == NULL) {
872 1.1 darran ii->ii_nargs--;
873 1.1 darran ii->ii_vargs = 1;
874 1.1 darran }
875 1.1 darran
876 1.1 darran hash_add(td->td_iihash, ii);
877 1.1 darran
878 1.1 darran debug(3, "Resurrected %s function %s (%d, %d args)\n",
879 1.1 darran (ii->ii_type == II_GFUN ? "global" : "static"),
880 1.1 darran ii->ii_name, retid, ii->ii_nargs);
881 1.1 darran }
882 1.1 darran }
883 1.1 darran
884 1.1 darran static void
885 1.1 darran resurrect_types(ctf_header_t *h, tdata_t *td, tdesc_t **tdarr, int tdsize,
886 1.1 darran caddr_t ctfdata, int maxid)
887 1.1 darran {
888 1.1 darran caddr_t buf = ctfdata + h->cth_typeoff;
889 1.1 darran size_t bufsz = h->cth_stroff - h->cth_typeoff;
890 1.1 darran caddr_t sbuf = ctfdata + h->cth_stroff;
891 1.1 darran caddr_t dptr = buf;
892 1.1 darran tdesc_t *tdp;
893 1.1 darran uint_t data;
894 1.1 darran uint_t encoding;
895 1.1 darran size_t size, increment;
896 1.1 darran int tcnt;
897 1.1 darran int iicnt = 0;
898 1.1 darran tid_t tid, argid;
899 1.1 darran int kind, vlen;
900 1.1 darran int i;
901 1.1 darran
902 1.1 darran elist_t **epp;
903 1.1 darran mlist_t **mpp;
904 1.1 darran intr_t *ip;
905 1.1 darran
906 1.1 darran ctf_type_t *ctt;
907 1.1 darran ctf_array_t *cta;
908 1.1 darran ctf_enum_t *cte;
909 1.1 darran
910 1.1 darran /*
911 1.1 darran * A maxid of zero indicates a request to resurrect all types, so reset
912 1.1 darran * maxid to the maximum type id.
913 1.1 darran */
914 1.1 darran if (maxid == 0)
915 1.1 darran maxid = CTF_MAX_TYPE;
916 1.1 darran
917 1.1 darran for (dptr = buf, tcnt = 0, tid = 1; dptr < buf + bufsz; tcnt++, tid++) {
918 1.1 darran if (tid > maxid)
919 1.1 darran break;
920 1.1 darran
921 1.1 darran if (tid >= tdsize)
922 1.1 darran parseterminate("Reference to invalid type %d", tid);
923 1.1 darran
924 1.2 darran void *v = (void *) dptr;
925 1.2 darran ctt = v;
926 1.1 darran
927 1.1 darran get_ctt_size(ctt, &size, &increment);
928 1.1 darran dptr += increment;
929 1.1 darran
930 1.1 darran tdp = tdarr[tid];
931 1.1 darran
932 1.1 darran if (CTF_NAME_STID(ctt->ctt_name) != CTF_STRTAB_0)
933 1.1 darran parseterminate(
934 1.1 darran "Unable to cope with non-zero strtab id");
935 1.1 darran if (CTF_NAME_OFFSET(ctt->ctt_name) != 0) {
936 1.1 darran tdp->t_name =
937 1.1 darran xstrdup(sbuf + CTF_NAME_OFFSET(ctt->ctt_name));
938 1.1 darran } else
939 1.1 darran tdp->t_name = NULL;
940 1.1 darran
941 1.1 darran kind = CTF_INFO_KIND(ctt->ctt_info);
942 1.1 darran vlen = CTF_INFO_VLEN(ctt->ctt_info);
943 1.1 darran
944 1.1 darran switch (kind) {
945 1.1 darran case CTF_K_INTEGER:
946 1.1 darran tdp->t_type = INTRINSIC;
947 1.1 darran tdp->t_size = size;
948 1.1 darran
949 1.2 darran v = (void *) dptr;
950 1.2 darran data = *((uint_t *)v);
951 1.1 darran dptr += sizeof (uint_t);
952 1.1 darran encoding = CTF_INT_ENCODING(data);
953 1.1 darran
954 1.1 darran ip = xmalloc(sizeof (intr_t));
955 1.1 darran ip->intr_type = INTR_INT;
956 1.1 darran ip->intr_signed = (encoding & CTF_INT_SIGNED) ? 1 : 0;
957 1.1 darran
958 1.1 darran if (encoding & CTF_INT_CHAR)
959 1.1 darran ip->intr_iformat = 'c';
960 1.1 darran else if (encoding & CTF_INT_BOOL)
961 1.1 darran ip->intr_iformat = 'b';
962 1.1 darran else if (encoding & CTF_INT_VARARGS)
963 1.1 darran ip->intr_iformat = 'v';
964 1.1 darran else
965 1.1 darran ip->intr_iformat = '\0';
966 1.1 darran
967 1.1 darran ip->intr_offset = CTF_INT_OFFSET(data);
968 1.1 darran ip->intr_nbits = CTF_INT_BITS(data);
969 1.1 darran tdp->t_intr = ip;
970 1.1 darran break;
971 1.1 darran
972 1.1 darran case CTF_K_FLOAT:
973 1.1 darran tdp->t_type = INTRINSIC;
974 1.1 darran tdp->t_size = size;
975 1.1 darran
976 1.2 darran v = (void *) dptr;
977 1.2 darran data = *((uint_t *)v);
978 1.1 darran dptr += sizeof (uint_t);
979 1.1 darran
980 1.1 darran ip = xcalloc(sizeof (intr_t));
981 1.1 darran ip->intr_type = INTR_REAL;
982 1.1 darran ip->intr_fformat = CTF_FP_ENCODING(data);
983 1.1 darran ip->intr_offset = CTF_FP_OFFSET(data);
984 1.1 darran ip->intr_nbits = CTF_FP_BITS(data);
985 1.1 darran tdp->t_intr = ip;
986 1.1 darran break;
987 1.1 darran
988 1.1 darran case CTF_K_POINTER:
989 1.1 darran tdp->t_type = POINTER;
990 1.1 darran tdp->t_tdesc = tdarr[ctt->ctt_type];
991 1.1 darran break;
992 1.1 darran
993 1.1 darran case CTF_K_ARRAY:
994 1.1 darran tdp->t_type = ARRAY;
995 1.1 darran tdp->t_size = size;
996 1.1 darran
997 1.2 darran v = (void *) dptr;
998 1.2 darran cta = v;
999 1.1 darran dptr += sizeof (ctf_array_t);
1000 1.1 darran
1001 1.1 darran tdp->t_ardef = xmalloc(sizeof (ardef_t));
1002 1.1 darran tdp->t_ardef->ad_contents = tdarr[cta->cta_contents];
1003 1.1 darran tdp->t_ardef->ad_idxtype = tdarr[cta->cta_index];
1004 1.1 darran tdp->t_ardef->ad_nelems = cta->cta_nelems;
1005 1.1 darran break;
1006 1.1 darran
1007 1.1 darran case CTF_K_STRUCT:
1008 1.1 darran case CTF_K_UNION:
1009 1.1 darran tdp->t_type = (kind == CTF_K_STRUCT ? STRUCT : UNION);
1010 1.1 darran tdp->t_size = size;
1011 1.1 darran
1012 1.1 darran if (size < CTF_LSTRUCT_THRESH) {
1013 1.1 darran for (i = 0, mpp = &tdp->t_members; i < vlen;
1014 1.1 darran i++, mpp = &((*mpp)->ml_next)) {
1015 1.2 darran v = (void *) dptr;
1016 1.2 darran ctf_member_t *ctm = v;
1017 1.1 darran dptr += sizeof (ctf_member_t);
1018 1.1 darran
1019 1.1 darran *mpp = xmalloc(sizeof (mlist_t));
1020 1.1 darran (*mpp)->ml_name = xstrdup(sbuf +
1021 1.1 darran ctm->ctm_name);
1022 1.1 darran (*mpp)->ml_type = tdarr[ctm->ctm_type];
1023 1.1 darran (*mpp)->ml_offset = ctm->ctm_offset;
1024 1.1 darran (*mpp)->ml_size = 0;
1025 1.1 darran }
1026 1.1 darran } else {
1027 1.1 darran for (i = 0, mpp = &tdp->t_members; i < vlen;
1028 1.1 darran i++, mpp = &((*mpp)->ml_next)) {
1029 1.2 darran v = (void *) dptr;
1030 1.2 darran ctf_lmember_t *ctlm = v;
1031 1.1 darran dptr += sizeof (ctf_lmember_t);
1032 1.1 darran
1033 1.1 darran *mpp = xmalloc(sizeof (mlist_t));
1034 1.1 darran (*mpp)->ml_name = xstrdup(sbuf +
1035 1.1 darran ctlm->ctlm_name);
1036 1.1 darran (*mpp)->ml_type =
1037 1.1 darran tdarr[ctlm->ctlm_type];
1038 1.1 darran (*mpp)->ml_offset =
1039 1.1 darran (int)CTF_LMEM_OFFSET(ctlm);
1040 1.1 darran (*mpp)->ml_size = 0;
1041 1.1 darran }
1042 1.1 darran }
1043 1.1 darran
1044 1.1 darran *mpp = NULL;
1045 1.1 darran break;
1046 1.1 darran
1047 1.1 darran case CTF_K_ENUM:
1048 1.1 darran tdp->t_type = ENUM;
1049 1.1 darran tdp->t_size = size;
1050 1.1 darran
1051 1.1 darran for (i = 0, epp = &tdp->t_emem; i < vlen;
1052 1.1 darran i++, epp = &((*epp)->el_next)) {
1053 1.2 darran v = (void *) dptr;
1054 1.2 darran cte = v;
1055 1.1 darran dptr += sizeof (ctf_enum_t);
1056 1.1 darran
1057 1.1 darran *epp = xmalloc(sizeof (elist_t));
1058 1.1 darran (*epp)->el_name = xstrdup(sbuf + cte->cte_name);
1059 1.1 darran (*epp)->el_number = cte->cte_value;
1060 1.1 darran }
1061 1.1 darran *epp = NULL;
1062 1.1 darran break;
1063 1.1 darran
1064 1.1 darran case CTF_K_FORWARD:
1065 1.1 darran tdp->t_type = FORWARD;
1066 1.1 darran list_add(&td->td_fwdlist, tdp);
1067 1.1 darran break;
1068 1.1 darran
1069 1.1 darran case CTF_K_TYPEDEF:
1070 1.1 darran tdp->t_type = TYPEDEF;
1071 1.1 darran tdp->t_tdesc = tdarr[ctt->ctt_type];
1072 1.1 darran break;
1073 1.1 darran
1074 1.1 darran case CTF_K_VOLATILE:
1075 1.1 darran tdp->t_type = VOLATILE;
1076 1.1 darran tdp->t_tdesc = tdarr[ctt->ctt_type];
1077 1.1 darran break;
1078 1.1 darran
1079 1.1 darran case CTF_K_CONST:
1080 1.1 darran tdp->t_type = CONST;
1081 1.1 darran tdp->t_tdesc = tdarr[ctt->ctt_type];
1082 1.1 darran break;
1083 1.1 darran
1084 1.1 darran case CTF_K_FUNCTION:
1085 1.1 darran tdp->t_type = FUNCTION;
1086 1.1 darran tdp->t_fndef = xcalloc(sizeof (fndef_t));
1087 1.1 darran tdp->t_fndef->fn_ret = tdarr[ctt->ctt_type];
1088 1.1 darran
1089 1.2 darran v = (void *) (dptr + (sizeof (ushort_t) * (vlen - 1)));
1090 1.2 darran if (vlen > 0 && *(ushort_t *)v == 0)
1091 1.1 darran tdp->t_fndef->fn_vargs = 1;
1092 1.1 darran
1093 1.1 darran tdp->t_fndef->fn_nargs = vlen - tdp->t_fndef->fn_vargs;
1094 1.1 darran tdp->t_fndef->fn_args = xcalloc(sizeof (tdesc_t) *
1095 1.1 darran vlen - tdp->t_fndef->fn_vargs);
1096 1.1 darran
1097 1.1 darran for (i = 0; i < vlen; i++) {
1098 1.2 darran v = (void *) dptr;
1099 1.2 darran argid = *(ushort_t *)v;
1100 1.1 darran dptr += sizeof (ushort_t);
1101 1.1 darran
1102 1.1 darran if (argid != 0)
1103 1.1 darran tdp->t_fndef->fn_args[i] = tdarr[argid];
1104 1.1 darran }
1105 1.1 darran
1106 1.1 darran if (vlen & 1)
1107 1.1 darran dptr += sizeof (ushort_t);
1108 1.1 darran break;
1109 1.1 darran
1110 1.1 darran case CTF_K_RESTRICT:
1111 1.1 darran tdp->t_type = RESTRICT;
1112 1.1 darran tdp->t_tdesc = tdarr[ctt->ctt_type];
1113 1.1 darran break;
1114 1.1 darran
1115 1.1 darran case CTF_K_UNKNOWN:
1116 1.1 darran break;
1117 1.1 darran
1118 1.1 darran default:
1119 1.1 darran warning("Can't parse unknown CTF type %d\n", kind);
1120 1.1 darran }
1121 1.1 darran
1122 1.1 darran if (CTF_INFO_ISROOT(ctt->ctt_info)) {
1123 1.1 darran iidesc_t *ii = iidesc_new(tdp->t_name);
1124 1.1 darran if (tdp->t_type == STRUCT || tdp->t_type == UNION ||
1125 1.1 darran tdp->t_type == ENUM)
1126 1.1 darran ii->ii_type = II_SOU;
1127 1.1 darran else
1128 1.1 darran ii->ii_type = II_TYPE;
1129 1.1 darran ii->ii_dtype = tdp;
1130 1.1 darran hash_add(td->td_iihash, ii);
1131 1.1 darran
1132 1.1 darran iicnt++;
1133 1.1 darran }
1134 1.1 darran
1135 1.1 darran debug(3, "Resurrected %d %stype %s (%d)\n", tdp->t_type,
1136 1.1 darran (CTF_INFO_ISROOT(ctt->ctt_info) ? "root " : ""),
1137 1.1 darran tdesc_name(tdp), tdp->t_id);
1138 1.1 darran }
1139 1.1 darran
1140 1.1 darran debug(3, "Resurrected %d types (%d were roots)\n", tcnt, iicnt);
1141 1.1 darran }
1142 1.1 darran
1143 1.1 darran /*
1144 1.1 darran * For lack of other inspiration, we're going to take the boring route. We
1145 1.1 darran * count the number of types. This lets us malloc that many tdesc structs
1146 1.1 darran * before we start filling them in. This has the advantage of allowing us to
1147 1.1 darran * avoid a merge-esque remap step.
1148 1.1 darran */
1149 1.1 darran static tdata_t *
1150 1.1 darran ctf_parse(ctf_header_t *h, caddr_t buf, symit_data_t *si, char *label)
1151 1.1 darran {
1152 1.1 darran tdata_t *td = tdata_new();
1153 1.1 darran tdesc_t **tdarr;
1154 1.1 darran int ntypes = count_types(h, buf);
1155 1.1 darran int idx, i;
1156 1.1 darran
1157 1.1 darran /* shudder */
1158 1.1 darran tdarr = xcalloc(sizeof (tdesc_t *) * (ntypes + 1));
1159 1.1 darran tdarr[0] = NULL;
1160 1.1 darran for (i = 1; i <= ntypes; i++) {
1161 1.1 darran tdarr[i] = xcalloc(sizeof (tdesc_t));
1162 1.1 darran tdarr[i]->t_id = i;
1163 1.1 darran }
1164 1.1 darran
1165 1.1 darran td->td_parlabel = xstrdup(buf + h->cth_stroff + h->cth_parlabel);
1166 1.1 darran
1167 1.1 darran /* we have the technology - we can rebuild them */
1168 1.1 darran idx = resurrect_labels(h, td, buf, label);
1169 1.1 darran
1170 1.1 darran resurrect_objects(h, td, tdarr, ntypes + 1, buf, si);
1171 1.1 darran resurrect_functions(h, td, tdarr, ntypes + 1, buf, si);
1172 1.1 darran resurrect_types(h, td, tdarr, ntypes + 1, buf, idx);
1173 1.1 darran
1174 1.1 darran free(tdarr);
1175 1.1 darran
1176 1.1 darran td->td_nextid = ntypes + 1;
1177 1.1 darran
1178 1.1 darran return (td);
1179 1.1 darran }
1180 1.1 darran
1181 1.1 darran static size_t
1182 1.1 darran decompress_ctf(caddr_t cbuf, size_t cbufsz, caddr_t dbuf, size_t dbufsz)
1183 1.1 darran {
1184 1.1 darran z_stream zstr;
1185 1.1 darran int rc;
1186 1.1 darran
1187 1.1 darran zstr.zalloc = (alloc_func)0;
1188 1.1 darran zstr.zfree = (free_func)0;
1189 1.1 darran zstr.opaque = (voidpf)0;
1190 1.1 darran
1191 1.1 darran zstr.next_in = (Bytef *)cbuf;
1192 1.1 darran zstr.avail_in = cbufsz;
1193 1.1 darran zstr.next_out = (Bytef *)dbuf;
1194 1.1 darran zstr.avail_out = dbufsz;
1195 1.1 darran
1196 1.1 darran if ((rc = inflateInit(&zstr)) != Z_OK ||
1197 1.1 darran (rc = inflate(&zstr, Z_NO_FLUSH)) != Z_STREAM_END ||
1198 1.1 darran (rc = inflateEnd(&zstr)) != Z_OK) {
1199 1.1 darran warning("CTF decompress zlib error %s\n", zError(rc));
1200 1.2 darran return (0);
1201 1.1 darran }
1202 1.1 darran
1203 1.1 darran debug(3, "reflated %lu bytes to %lu, pointer at %d\n",
1204 1.1 darran zstr.total_in, zstr.total_out, (caddr_t)zstr.next_in - cbuf);
1205 1.1 darran
1206 1.1 darran return (zstr.total_out);
1207 1.1 darran }
1208 1.1 darran
1209 1.1 darran /*
1210 1.1 darran * Reconstruct the type tree from a given buffer of CTF data. Only the types
1211 1.1 darran * up to the type associated with the provided label, inclusive, will be
1212 1.1 darran * reconstructed. If a NULL label is provided, all types will be reconstructed.
1213 1.1 darran *
1214 1.1 darran * This function won't work on files that have been uniquified.
1215 1.1 darran */
1216 1.1 darran tdata_t *
1217 1.1 darran ctf_load(char *file, caddr_t buf, size_t bufsz, symit_data_t *si, char *label)
1218 1.1 darran {
1219 1.1 darran ctf_header_t *h;
1220 1.1 darran caddr_t ctfdata;
1221 1.1 darran size_t ctfdatasz;
1222 1.1 darran tdata_t *td;
1223 1.1 darran
1224 1.1 darran curfile = file;
1225 1.1 darran
1226 1.1 darran if (bufsz < sizeof (ctf_header_t))
1227 1.1 darran parseterminate("Corrupt CTF - short header");
1228 1.1 darran
1229 1.2 darran void *v = (void *) buf;
1230 1.2 darran h = v;
1231 1.1 darran buf += sizeof (ctf_header_t);
1232 1.1 darran bufsz -= sizeof (ctf_header_t);
1233 1.1 darran
1234 1.1 darran if (h->cth_magic != CTF_MAGIC)
1235 1.1 darran parseterminate("Corrupt CTF - bad magic 0x%x", h->cth_magic);
1236 1.1 darran
1237 1.1 darran if (h->cth_version != CTF_VERSION)
1238 1.1 darran parseterminate("Unknown CTF version %d", h->cth_version);
1239 1.1 darran
1240 1.1 darran ctfdatasz = h->cth_stroff + h->cth_strlen;
1241 1.1 darran if (h->cth_flags & CTF_F_COMPRESS) {
1242 1.1 darran size_t actual;
1243 1.1 darran
1244 1.1 darran ctfdata = xmalloc(ctfdatasz);
1245 1.1 darran if ((actual = decompress_ctf(buf, bufsz, ctfdata, ctfdatasz)) !=
1246 1.1 darran ctfdatasz) {
1247 1.1 darran parseterminate("Corrupt CTF - short decompression "
1248 1.1 darran "(was %d, expecting %d)", actual, ctfdatasz);
1249 1.1 darran }
1250 1.1 darran } else {
1251 1.1 darran ctfdata = buf;
1252 1.1 darran ctfdatasz = bufsz;
1253 1.1 darran }
1254 1.1 darran
1255 1.1 darran td = ctf_parse(h, ctfdata, si, label);
1256 1.1 darran
1257 1.1 darran if (h->cth_flags & CTF_F_COMPRESS)
1258 1.1 darran free(ctfdata);
1259 1.1 darran
1260 1.1 darran curfile = NULL;
1261 1.1 darran
1262 1.1 darran return (td);
1263 1.1 darran }
1264