xref: /netbsd-src/external/cddl/osnet/dist/lib/libctf/common/ctf_lib.c (revision da39824b722dbd84beb9a1ab7e8de6710cc44d4b)
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, Version 1.0 only
6  * (the "License").  You may not use this file except in compliance
7  * with the License.
8  *
9  * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
10  * or http://www.opensolaris.org/os/licensing.
11  * See the License for the specific language governing permissions
12  * and limitations under the License.
13  *
14  * When distributing Covered Code, include this CDDL HEADER in each
15  * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
16  * If applicable, add the following below this CDDL HEADER, with the
17  * fields enclosed by brackets "[]" replaced with your own identifying
18  * information: Portions Copyright [yyyy] [name of copyright owner]
19  *
20  * CDDL HEADER END
21  */
22 /*
23  * Copyright 2003 Sun Microsystems, Inc.  All rights reserved.
24  * Use is subject to license terms.
25  */
26 
27 #pragma ident	"%Z%%M%	%I%	%E% SMI"
28 
29 #if HAVE_NBTOOL_CONFIG_H
30 # include "nbtool_config.h"
31 #endif
32 
33 #include <sys/types.h>
34 #include <sys/stat.h>
35 #include <sys/mman.h>
36 #include <sys/zmod.h>
37 #include <ctf_impl.h>
38 #include <unistd.h>
39 #include <fcntl.h>
40 #include <errno.h>
41 #if defined(sun)
42 #include <dlfcn.h>
43 #else
44 #include <zlib.h>
45 #endif
46 #include <gelf.h>
47 
48 #if defined(sun)
49 #ifdef _LP64
50 static const char *_libctf_zlib = "/usr/lib/64/libz.so";
51 #else
52 static const char *_libctf_zlib = "/usr/lib/libz.so";
53 #endif
54 #endif
55 
56 static struct {
57 	int (*z_uncompress)(uchar_t *, ulong_t *, const uchar_t *, ulong_t);
58 	const char *(*z_error)(int);
59 	void *z_dlp;
60 } zlib;
61 
62 static size_t _PAGESIZE;
63 static size_t _PAGEMASK;
64 
65 #if defined(sun)
66 #pragma init(_libctf_init)
67 #else
68 void    _libctf_init(void) __attribute__ ((constructor));
69 #endif
70 void
71 _libctf_init(void)
72 {
73 #if defined(sun)
74 	const char *p = getenv("LIBCTF_DECOMPRESSOR");
75 
76 	if (p != NULL)
77 		_libctf_zlib = p; /* use alternate decompression library */
78 #endif
79 
80 	_libctf_debug = getenv("LIBCTF_DEBUG") != NULL;
81 
82 	_PAGESIZE = getpagesize();
83 	_PAGEMASK = ~(_PAGESIZE - 1);
84 }
85 
86 /*
87  * Attempt to dlopen the decompression library and locate the symbols of
88  * interest that we will need to call.  This information in cached so
89  * that multiple calls to ctf_bufopen() do not need to reopen the library.
90  */
91 void *
92 ctf_zopen(int *errp)
93 {
94 #if defined(sun)
95 	ctf_dprintf("decompressing CTF data using %s\n", _libctf_zlib);
96 
97 	if (zlib.z_dlp != NULL)
98 		return (zlib.z_dlp); /* library is already loaded */
99 
100 	if (access(_libctf_zlib, R_OK) == -1)
101 		return (ctf_set_open_errno(errp, ECTF_ZMISSING));
102 
103 	if ((zlib.z_dlp = dlopen(_libctf_zlib, RTLD_LAZY | RTLD_LOCAL)) == NULL)
104 		return (ctf_set_open_errno(errp, ECTF_ZINIT));
105 
106 	zlib.z_uncompress = (int (*)(uchar_t *, ulong_t *, const uchar_t *, ulong_t)) dlsym(zlib.z_dlp, "uncompress");
107 	zlib.z_error = (const char *(*)(int)) dlsym(zlib.z_dlp, "zError");
108 
109 	if (zlib.z_uncompress == NULL || zlib.z_error == NULL) {
110 		(void) dlclose(zlib.z_dlp);
111 		bzero(&zlib, sizeof (zlib));
112 		return (ctf_set_open_errno(errp, ECTF_ZINIT));
113 	}
114 #else
115 	zlib.z_uncompress = uncompress;
116 	zlib.z_error = zError;
117 
118 	/* Dummy return variable as 'no error' */
119 	zlib.z_dlp = (void *) (uintptr_t) 1;
120 #endif
121 
122 	return (zlib.z_dlp);
123 }
124 
125 /*
126  * The ctf_bufopen() routine calls these subroutines, defined by <sys/zmod.h>,
127  * which we then patch through to the functions in the decompression library.
128  */
129 int
130 z_uncompress(void *dst, size_t *dstlen, const void *src, size_t srclen)
131 {
132 	return (zlib.z_uncompress(dst, (ulong_t *)dstlen, src, srclen));
133 }
134 
135 const char *
136 z_strerror(int err)
137 {
138 	return (zlib.z_error(err));
139 }
140 
141 /*
142  * Convert a 32-bit ELF file header into GElf.
143  */
144 static void
145 ehdr_to_gelf(const Elf32_Ehdr *src, GElf_Ehdr *dst)
146 {
147 	bcopy(src->e_ident, dst->e_ident, EI_NIDENT);
148 	dst->e_type = src->e_type;
149 	dst->e_machine = src->e_machine;
150 	dst->e_version = src->e_version;
151 	dst->e_entry = (Elf64_Addr)src->e_entry;
152 	dst->e_phoff = (Elf64_Off)src->e_phoff;
153 	dst->e_shoff = (Elf64_Off)src->e_shoff;
154 	dst->e_flags = src->e_flags;
155 	dst->e_ehsize = src->e_ehsize;
156 	dst->e_phentsize = src->e_phentsize;
157 	dst->e_phnum = src->e_phnum;
158 	dst->e_shentsize = src->e_shentsize;
159 	dst->e_shnum = src->e_shnum;
160 	dst->e_shstrndx = src->e_shstrndx;
161 }
162 
163 /*
164  * Convert a 32-bit ELF section header into GElf.
165  */
166 static void
167 shdr_to_gelf(const Elf32_Shdr *src, GElf_Shdr *dst)
168 {
169 	dst->sh_name = src->sh_name;
170 	dst->sh_type = src->sh_type;
171 	dst->sh_flags = src->sh_flags;
172 	dst->sh_addr = src->sh_addr;
173 	dst->sh_offset = src->sh_offset;
174 	dst->sh_size = src->sh_size;
175 	dst->sh_link = src->sh_link;
176 	dst->sh_info = src->sh_info;
177 	dst->sh_addralign = src->sh_addralign;
178 	dst->sh_entsize = src->sh_entsize;
179 }
180 
181 /*
182  * In order to mmap a section from the ELF file, we must round down sh_offset
183  * to the previous page boundary, and mmap the surrounding page.  We store
184  * the pointer to the start of the actual section data back into sp->cts_data.
185  */
186 const void *
187 ctf_sect_mmap(ctf_sect_t *sp, int fd)
188 {
189 	size_t pageoff = sp->cts_offset & ~_PAGEMASK;
190 
191 	caddr_t base = mmap64(NULL, sp->cts_size + pageoff, PROT_READ,
192 	    MAP_PRIVATE, fd, sp->cts_offset & _PAGEMASK);
193 
194 	if (base != MAP_FAILED)
195 		sp->cts_data = base + pageoff;
196 
197 	return (base);
198 }
199 
200 /*
201  * Since sp->cts_data has the adjusted offset, we have to again round down
202  * to get the actual mmap address and round up to get the size.
203  */
204 void
205 ctf_sect_munmap(const ctf_sect_t *sp)
206 {
207 	uintptr_t addr = (uintptr_t)sp->cts_data;
208 	uintptr_t pageoff = addr & ~_PAGEMASK;
209 
210 	(void) munmap((void *)(addr - pageoff), sp->cts_size + pageoff);
211 }
212 
213 /*
214  * Open the specified file descriptor and return a pointer to a CTF container.
215  * The file can be either an ELF file or raw CTF file.  The caller is
216  * responsible for closing the file descriptor when it is no longer needed.
217  */
218 ctf_file_t *
219 ctf_fdopen(int fd, int *errp)
220 {
221 	ctf_sect_t ctfsect, symsect, strsect;
222 	ctf_file_t *fp = NULL;
223 
224 	struct stat64 st;
225 	ssize_t nbytes;
226 
227 	union {
228 		ctf_preamble_t ctf;
229 		Elf32_Ehdr e32;
230 		GElf_Ehdr e64;
231 	} hdr;
232 
233 	bzero(&ctfsect, sizeof (ctf_sect_t));
234 	bzero(&symsect, sizeof (ctf_sect_t));
235 	bzero(&strsect, sizeof (ctf_sect_t));
236 	bzero(&hdr.ctf, sizeof (hdr));
237 
238 	if (fstat64(fd, &st) == -1)
239 		return (ctf_set_open_errno(errp, errno));
240 
241 	if ((nbytes = pread64(fd, &hdr.ctf, sizeof (hdr), 0)) <= 0)
242 		return (ctf_set_open_errno(errp, nbytes < 0? errno : ECTF_FMT));
243 
244 	/*
245 	 * If we have read enough bytes to form a CTF header and the magic
246 	 * string matches, attempt to interpret the file as raw CTF.
247 	 */
248 	if (nbytes >= (ssize_t) sizeof (ctf_preamble_t) &&
249 	    hdr.ctf.ctp_magic == CTF_MAGIC) {
250 		if (hdr.ctf.ctp_version > CTF_VERSION)
251 			return (ctf_set_open_errno(errp, ECTF_CTFVERS));
252 
253 		ctfsect.cts_data = mmap64(NULL, st.st_size, PROT_READ,
254 		    MAP_PRIVATE, fd, 0);
255 
256 		if (ctfsect.cts_data == MAP_FAILED)
257 			return (ctf_set_open_errno(errp, errno));
258 
259 		ctfsect.cts_name = (char *)_CTF_SECTION;
260 		ctfsect.cts_type = SHT_PROGBITS;
261 		ctfsect.cts_flags = SHF_ALLOC;
262 		ctfsect.cts_size = (size_t)st.st_size;
263 		ctfsect.cts_entsize = 1;
264 		ctfsect.cts_offset = 0;
265 
266 		if ((fp = ctf_bufopen(&ctfsect, NULL, NULL, errp)) == NULL)
267 			ctf_sect_munmap(&ctfsect);
268 
269 		return (fp);
270 	}
271 
272 	/*
273 	 * If we have read enough bytes to form an ELF header and the magic
274 	 * string matches, attempt to interpret the file as an ELF file.  We
275 	 * do our own largefile ELF processing, and convert everything to
276 	 * GElf structures so that clients can operate on any data model.
277 	 */
278 	if (nbytes >= (ssize_t) sizeof (Elf32_Ehdr) &&
279 	    bcmp(&hdr.e32.e_ident[EI_MAG0], ELFMAG, SELFMAG) == 0) {
280 #ifdef	_BIG_ENDIAN
281 		uchar_t order = ELFDATA2MSB;
282 #else
283 		uchar_t order = ELFDATA2LSB;
284 #endif
285 		GElf_Half i, n;
286 		GElf_Shdr *sp;
287 
288 		void *strs_map;
289 		size_t strs_mapsz;
290 		char *strs;
291 
292 		if (hdr.e32.e_ident[EI_DATA] != order)
293 			return (ctf_set_open_errno(errp, ECTF_ENDIAN));
294 		if (hdr.e32.e_version != EV_CURRENT)
295 			return (ctf_set_open_errno(errp, ECTF_ELFVERS));
296 
297 		if (hdr.e32.e_ident[EI_CLASS] == ELFCLASS64) {
298 			if (nbytes < (ssize_t) sizeof (GElf_Ehdr))
299 				return (ctf_set_open_errno(errp, ECTF_FMT));
300 		} else {
301 			Elf32_Ehdr e32 = hdr.e32;
302 			ehdr_to_gelf(&e32, &hdr.e64);
303 		}
304 
305 		if (hdr.e64.e_shstrndx >= hdr.e64.e_shnum)
306 			return (ctf_set_open_errno(errp, ECTF_CORRUPT));
307 
308 		n = hdr.e64.e_shnum;
309 		nbytes = sizeof (GElf_Shdr) * n;
310 
311 		if ((sp = malloc(nbytes)) == NULL)
312 			return (ctf_set_open_errno(errp, errno));
313 
314 		/*
315 		 * Read in and convert to GElf the array of Shdr structures
316 		 * from e_shoff so we can locate sections of interest.
317 		 */
318 		if (hdr.e32.e_ident[EI_CLASS] == ELFCLASS32) {
319 			Elf32_Shdr *sp32;
320 
321 			nbytes = sizeof (Elf32_Shdr) * n;
322 
323 			if ((sp32 = malloc(nbytes)) == NULL || pread64(fd,
324 			    sp32, nbytes, hdr.e64.e_shoff) != nbytes) {
325 				free(sp);
326 				return (ctf_set_open_errno(errp, errno));
327 			}
328 
329 			for (i = 0; i < n; i++)
330 				shdr_to_gelf(&sp32[i], &sp[i]);
331 
332 			free(sp32);
333 
334 		} else if (pread64(fd, sp, nbytes, hdr.e64.e_shoff) != nbytes) {
335 			free(sp);
336 			return (ctf_set_open_errno(errp, errno));
337 		}
338 
339 		/*
340 		 * Now mmap the section header strings section so that we can
341 		 * perform string comparison on the section names.
342 		 */
343 		strs_mapsz = sp[hdr.e64.e_shstrndx].sh_size +
344 		    (sp[hdr.e64.e_shstrndx].sh_offset & ~_PAGEMASK);
345 
346 		strs_map = mmap64(NULL, strs_mapsz, PROT_READ, MAP_PRIVATE,
347 		    fd, sp[hdr.e64.e_shstrndx].sh_offset & _PAGEMASK);
348 
349 		strs = (char *)strs_map +
350 		    (sp[hdr.e64.e_shstrndx].sh_offset & ~_PAGEMASK);
351 
352 		if (strs_map == MAP_FAILED) {
353 			free(sp);
354 			return (ctf_set_open_errno(errp, ECTF_MMAP));
355 		}
356 
357 		/*
358 		 * Iterate over the section header array looking for the CTF
359 		 * section and symbol table.  The strtab is linked to symtab.
360 		 */
361 		for (i = 0; i < n; i++) {
362 			const GElf_Shdr *shp = &sp[i];
363 			const GElf_Shdr *lhp = &sp[shp->sh_link];
364 
365 			if (shp->sh_link >= hdr.e64.e_shnum)
366 				continue; /* corrupt sh_link field */
367 
368 			if (shp->sh_name >= sp[hdr.e64.e_shstrndx].sh_size ||
369 			    lhp->sh_name >= sp[hdr.e64.e_shstrndx].sh_size)
370 				continue; /* corrupt sh_name field */
371 
372 			if (shp->sh_type == SHT_PROGBITS &&
373 			    strcmp(strs + shp->sh_name, _CTF_SECTION) == 0) {
374 				ctfsect.cts_name = strs + shp->sh_name;
375 				ctfsect.cts_type = shp->sh_type;
376 				ctfsect.cts_flags = shp->sh_flags;
377 				ctfsect.cts_size = shp->sh_size;
378 				ctfsect.cts_entsize = shp->sh_entsize;
379 				ctfsect.cts_offset = (off64_t)shp->sh_offset;
380 
381 			} else if (shp->sh_type == SHT_SYMTAB) {
382 				symsect.cts_name = strs + shp->sh_name;
383 				symsect.cts_type = shp->sh_type;
384 				symsect.cts_flags = shp->sh_flags;
385 				symsect.cts_size = shp->sh_size;
386 				symsect.cts_entsize = shp->sh_entsize;
387 				symsect.cts_offset = (off64_t)shp->sh_offset;
388 
389 				strsect.cts_name = strs + lhp->sh_name;
390 				strsect.cts_type = lhp->sh_type;
391 				strsect.cts_flags = lhp->sh_flags;
392 				strsect.cts_size = lhp->sh_size;
393 				strsect.cts_entsize = lhp->sh_entsize;
394 				strsect.cts_offset = (off64_t)lhp->sh_offset;
395 			}
396 		}
397 
398 		free(sp); /* free section header array */
399 
400 		if (ctfsect.cts_type == SHT_NULL) {
401 			(void) munmap(strs_map, strs_mapsz);
402 			return (ctf_set_open_errno(errp, ECTF_NOCTFDATA));
403 		}
404 
405 		/*
406 		 * Now mmap the CTF data, symtab, and strtab sections and
407 		 * call ctf_bufopen() to do the rest of the work.
408 		 */
409 		if (ctf_sect_mmap(&ctfsect, fd) == MAP_FAILED) {
410 			(void) munmap(strs_map, strs_mapsz);
411 			return (ctf_set_open_errno(errp, ECTF_MMAP));
412 		}
413 
414 		if (symsect.cts_type != SHT_NULL &&
415 		    strsect.cts_type != SHT_NULL) {
416 			if (ctf_sect_mmap(&symsect, fd) == MAP_FAILED ||
417 			    ctf_sect_mmap(&strsect, fd) == MAP_FAILED) {
418 				(void) ctf_set_open_errno(errp, ECTF_MMAP);
419 				goto bad; /* unmap all and abort */
420 			}
421 			fp = ctf_bufopen(&ctfsect, &symsect, &strsect, errp);
422 		} else
423 			fp = ctf_bufopen(&ctfsect, NULL, NULL, errp);
424 bad:
425 		if (fp == NULL) {
426 			ctf_sect_munmap(&ctfsect);
427 			ctf_sect_munmap(&symsect);
428 			ctf_sect_munmap(&strsect);
429 		} else
430 			fp->ctf_flags |= LCTF_MMAP;
431 
432 		(void) munmap(strs_map, strs_mapsz);
433 		return (fp);
434 	}
435 
436 	return (ctf_set_open_errno(errp, ECTF_FMT));
437 }
438 
439 /*
440  * Open the specified file and return a pointer to a CTF container.  The file
441  * can be either an ELF file or raw CTF file.  This is just a convenient
442  * wrapper around ctf_fdopen() for callers.
443  */
444 ctf_file_t *
445 ctf_open(const char *filename, int *errp)
446 {
447 	ctf_file_t *fp;
448 	int fd;
449 
450 	if ((fd = open64(filename, O_RDONLY)) == -1) {
451 		if (errp != NULL)
452 			*errp = errno;
453 		return (NULL);
454 	}
455 
456 	fp = ctf_fdopen(fd, errp);
457 	(void) close(fd);
458 	return (fp);
459 }
460 
461 /*
462  * Write the uncompressed CTF data stream to the specified file descriptor.
463  * This is useful for saving the results of dynamic CTF containers.
464  */
465 int
466 ctf_write(ctf_file_t *fp, int fd)
467 {
468 	const uchar_t *buf = fp->ctf_base;
469 	ssize_t resid = fp->ctf_size;
470 	ssize_t len;
471 
472 	while (resid != 0) {
473 		if ((len = write(fd, buf, resid)) <= 0)
474 			return (ctf_set_errno(fp, errno));
475 		resid -= len;
476 		buf += len;
477 	}
478 
479 	return (0);
480 }
481 
482 /*
483  * Set the CTF library client version to the specified version.  If version is
484  * zero, we just return the default library version number.
485  */
486 int
487 ctf_version(int version)
488 {
489 	if (version < 0) {
490 		errno = EINVAL;
491 		return (-1);
492 	}
493 
494 	if (version > 0) {
495 		if (version > CTF_VERSION) {
496 			errno = ENOTSUP;
497 			return (-1);
498 		}
499 		ctf_dprintf("ctf_version: client using version %d\n", version);
500 		_libctf_version = version;
501 	}
502 
503 	return (_libctf_version);
504 }
505