imgact_elf.c revision 230132
1/*-
2 * Copyright (c) 2000 David O'Brien
3 * Copyright (c) 1995-1996 S��ren Schmidt
4 * Copyright (c) 1996 Peter Wemm
5 * All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 *    notice, this list of conditions and the following disclaimer
12 *    in this position and unchanged.
13 * 2. Redistributions in binary form must reproduce the above copyright
14 *    notice, this list of conditions and the following disclaimer in the
15 *    documentation and/or other materials provided with the distribution.
16 * 3. The name of the author may not be used to endorse or promote products
17 *    derived from this software without specific prior written permission
18 *
19 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
20 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
21 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
22 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
23 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
24 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
25 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
26 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
27 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
28 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
29 */
30
31#include <sys/cdefs.h>
32__FBSDID("$FreeBSD: head/sys/kern/imgact_elf.c 230132 2012-01-15 13:23:18Z uqs $");
33
34#include "opt_capsicum.h"
35#include "opt_compat.h"
36#include "opt_core.h"
37
38#include <sys/param.h>
39#include <sys/capability.h>
40#include <sys/exec.h>
41#include <sys/fcntl.h>
42#include <sys/imgact.h>
43#include <sys/imgact_elf.h>
44#include <sys/kernel.h>
45#include <sys/lock.h>
46#include <sys/malloc.h>
47#include <sys/mount.h>
48#include <sys/mutex.h>
49#include <sys/mman.h>
50#include <sys/namei.h>
51#include <sys/pioctl.h>
52#include <sys/proc.h>
53#include <sys/procfs.h>
54#include <sys/racct.h>
55#include <sys/resourcevar.h>
56#include <sys/sf_buf.h>
57#include <sys/smp.h>
58#include <sys/systm.h>
59#include <sys/signalvar.h>
60#include <sys/stat.h>
61#include <sys/sx.h>
62#include <sys/syscall.h>
63#include <sys/sysctl.h>
64#include <sys/sysent.h>
65#include <sys/vnode.h>
66#include <sys/syslog.h>
67#include <sys/eventhandler.h>
68
69#include <net/zlib.h>
70
71#include <vm/vm.h>
72#include <vm/vm_kern.h>
73#include <vm/vm_param.h>
74#include <vm/pmap.h>
75#include <vm/vm_map.h>
76#include <vm/vm_object.h>
77#include <vm/vm_extern.h>
78
79#include <machine/elf.h>
80#include <machine/md_var.h>
81
82#define OLD_EI_BRAND	8
83
84static int __elfN(check_header)(const Elf_Ehdr *hdr);
85static Elf_Brandinfo *__elfN(get_brandinfo)(struct image_params *imgp,
86    const char *interp, int32_t *osrel);
87static int __elfN(load_file)(struct proc *p, const char *file, u_long *addr,
88    u_long *entry, size_t pagesize);
89static int __elfN(load_section)(struct vmspace *vmspace, vm_object_t object,
90    vm_offset_t offset, caddr_t vmaddr, size_t memsz, size_t filsz,
91    vm_prot_t prot, size_t pagesize);
92static int __CONCAT(exec_, __elfN(imgact))(struct image_params *imgp);
93static boolean_t __elfN(freebsd_trans_osrel)(const Elf_Note *note,
94    int32_t *osrel);
95static boolean_t kfreebsd_trans_osrel(const Elf_Note *note, int32_t *osrel);
96static boolean_t __elfN(check_note)(struct image_params *imgp,
97    Elf_Brandnote *checknote, int32_t *osrel);
98static vm_prot_t __elfN(trans_prot)(Elf_Word);
99static Elf_Word __elfN(untrans_prot)(vm_prot_t);
100
101SYSCTL_NODE(_kern, OID_AUTO, __CONCAT(elf, __ELF_WORD_SIZE), CTLFLAG_RW, 0,
102    "");
103
104#ifdef COMPRESS_USER_CORES
105static int compress_core(gzFile, char *, char *, unsigned int,
106    struct thread * td);
107#define CORE_BUF_SIZE	(16 * 1024)
108#endif
109
110int __elfN(fallback_brand) = -1;
111SYSCTL_INT(__CONCAT(_kern_elf, __ELF_WORD_SIZE), OID_AUTO,
112    fallback_brand, CTLFLAG_RW, &__elfN(fallback_brand), 0,
113    __XSTRING(__CONCAT(ELF, __ELF_WORD_SIZE)) " brand of last resort");
114TUNABLE_INT("kern.elf" __XSTRING(__ELF_WORD_SIZE) ".fallback_brand",
115    &__elfN(fallback_brand));
116
117static int elf_legacy_coredump = 0;
118SYSCTL_INT(_debug, OID_AUTO, __elfN(legacy_coredump), CTLFLAG_RW,
119    &elf_legacy_coredump, 0, "");
120
121static int __elfN(nxstack) = 0;
122SYSCTL_INT(__CONCAT(_kern_elf, __ELF_WORD_SIZE), OID_AUTO,
123    nxstack, CTLFLAG_RW, &__elfN(nxstack), 0,
124    __XSTRING(__CONCAT(ELF, __ELF_WORD_SIZE)) ": enable non-executable stack");
125
126#if __ELF_WORD_SIZE == 32
127#if defined(__amd64__) || defined(__ia64__)
128int i386_read_exec = 0;
129SYSCTL_INT(_kern_elf32, OID_AUTO, read_exec, CTLFLAG_RW, &i386_read_exec, 0,
130    "enable execution from readable segments");
131#endif
132#endif
133
134static Elf_Brandinfo *elf_brand_list[MAX_BRANDS];
135
136#define	trunc_page_ps(va, ps)	((va) & ~(ps - 1))
137#define	round_page_ps(va, ps)	(((va) + (ps - 1)) & ~(ps - 1))
138#define	aligned(a, t)	(trunc_page_ps((u_long)(a), sizeof(t)) == (u_long)(a))
139
140static const char FREEBSD_ABI_VENDOR[] = "FreeBSD";
141
142Elf_Brandnote __elfN(freebsd_brandnote) = {
143	.hdr.n_namesz	= sizeof(FREEBSD_ABI_VENDOR),
144	.hdr.n_descsz	= sizeof(int32_t),
145	.hdr.n_type	= 1,
146	.vendor		= FREEBSD_ABI_VENDOR,
147	.flags		= BN_TRANSLATE_OSREL,
148	.trans_osrel	= __elfN(freebsd_trans_osrel)
149};
150
151static boolean_t
152__elfN(freebsd_trans_osrel)(const Elf_Note *note, int32_t *osrel)
153{
154	uintptr_t p;
155
156	p = (uintptr_t)(note + 1);
157	p += roundup2(note->n_namesz, sizeof(Elf32_Addr));
158	*osrel = *(const int32_t *)(p);
159
160	return (TRUE);
161}
162
163static const char GNU_ABI_VENDOR[] = "GNU";
164static int GNU_KFREEBSD_ABI_DESC = 3;
165
166Elf_Brandnote __elfN(kfreebsd_brandnote) = {
167	.hdr.n_namesz	= sizeof(GNU_ABI_VENDOR),
168	.hdr.n_descsz	= 16,	/* XXX at least 16 */
169	.hdr.n_type	= 1,
170	.vendor		= GNU_ABI_VENDOR,
171	.flags		= BN_TRANSLATE_OSREL,
172	.trans_osrel	= kfreebsd_trans_osrel
173};
174
175static boolean_t
176kfreebsd_trans_osrel(const Elf_Note *note, int32_t *osrel)
177{
178	const Elf32_Word *desc;
179	uintptr_t p;
180
181	p = (uintptr_t)(note + 1);
182	p += roundup2(note->n_namesz, sizeof(Elf32_Addr));
183
184	desc = (const Elf32_Word *)p;
185	if (desc[0] != GNU_KFREEBSD_ABI_DESC)
186		return (FALSE);
187
188	/*
189	 * Debian GNU/kFreeBSD embed the earliest compatible kernel version
190	 * (__FreeBSD_version: <major><two digit minor>Rxx) in the LSB way.
191	 */
192	*osrel = desc[1] * 100000 + desc[2] * 1000 + desc[3];
193
194	return (TRUE);
195}
196
197int
198__elfN(insert_brand_entry)(Elf_Brandinfo *entry)
199{
200	int i;
201
202	for (i = 0; i < MAX_BRANDS; i++) {
203		if (elf_brand_list[i] == NULL) {
204			elf_brand_list[i] = entry;
205			break;
206		}
207	}
208	if (i == MAX_BRANDS) {
209		printf("WARNING: %s: could not insert brandinfo entry: %p\n",
210			__func__, entry);
211		return (-1);
212	}
213	return (0);
214}
215
216int
217__elfN(remove_brand_entry)(Elf_Brandinfo *entry)
218{
219	int i;
220
221	for (i = 0; i < MAX_BRANDS; i++) {
222		if (elf_brand_list[i] == entry) {
223			elf_brand_list[i] = NULL;
224			break;
225		}
226	}
227	if (i == MAX_BRANDS)
228		return (-1);
229	return (0);
230}
231
232int
233__elfN(brand_inuse)(Elf_Brandinfo *entry)
234{
235	struct proc *p;
236	int rval = FALSE;
237
238	sx_slock(&allproc_lock);
239	FOREACH_PROC_IN_SYSTEM(p) {
240		if (p->p_sysent == entry->sysvec) {
241			rval = TRUE;
242			break;
243		}
244	}
245	sx_sunlock(&allproc_lock);
246
247	return (rval);
248}
249
250static Elf_Brandinfo *
251__elfN(get_brandinfo)(struct image_params *imgp, const char *interp,
252    int32_t *osrel)
253{
254	const Elf_Ehdr *hdr = (const Elf_Ehdr *)imgp->image_header;
255	Elf_Brandinfo *bi;
256	boolean_t ret;
257	int i;
258
259	/*
260	 * We support four types of branding -- (1) the ELF EI_OSABI field
261	 * that SCO added to the ELF spec, (2) FreeBSD 3.x's traditional string
262	 * branding w/in the ELF header, (3) path of the `interp_path'
263	 * field, and (4) the ".note.ABI-tag" ELF section.
264	 */
265
266	/* Look for an ".note.ABI-tag" ELF section */
267	for (i = 0; i < MAX_BRANDS; i++) {
268		bi = elf_brand_list[i];
269		if (bi == NULL)
270			continue;
271		if (hdr->e_machine == bi->machine && (bi->flags &
272		    (BI_BRAND_NOTE|BI_BRAND_NOTE_MANDATORY)) != 0) {
273			ret = __elfN(check_note)(imgp, bi->brand_note, osrel);
274			if (ret)
275				return (bi);
276		}
277	}
278
279	/* If the executable has a brand, search for it in the brand list. */
280	for (i = 0; i < MAX_BRANDS; i++) {
281		bi = elf_brand_list[i];
282		if (bi == NULL || bi->flags & BI_BRAND_NOTE_MANDATORY)
283			continue;
284		if (hdr->e_machine == bi->machine &&
285		    (hdr->e_ident[EI_OSABI] == bi->brand ||
286		    strncmp((const char *)&hdr->e_ident[OLD_EI_BRAND],
287		    bi->compat_3_brand, strlen(bi->compat_3_brand)) == 0))
288			return (bi);
289	}
290
291	/* Lacking a known brand, search for a recognized interpreter. */
292	if (interp != NULL) {
293		for (i = 0; i < MAX_BRANDS; i++) {
294			bi = elf_brand_list[i];
295			if (bi == NULL || bi->flags & BI_BRAND_NOTE_MANDATORY)
296				continue;
297			if (hdr->e_machine == bi->machine &&
298			    strcmp(interp, bi->interp_path) == 0)
299				return (bi);
300		}
301	}
302
303	/* Lacking a recognized interpreter, try the default brand */
304	for (i = 0; i < MAX_BRANDS; i++) {
305		bi = elf_brand_list[i];
306		if (bi == NULL || bi->flags & BI_BRAND_NOTE_MANDATORY)
307			continue;
308		if (hdr->e_machine == bi->machine &&
309		    __elfN(fallback_brand) == bi->brand)
310			return (bi);
311	}
312	return (NULL);
313}
314
315static int
316__elfN(check_header)(const Elf_Ehdr *hdr)
317{
318	Elf_Brandinfo *bi;
319	int i;
320
321	if (!IS_ELF(*hdr) ||
322	    hdr->e_ident[EI_CLASS] != ELF_TARG_CLASS ||
323	    hdr->e_ident[EI_DATA] != ELF_TARG_DATA ||
324	    hdr->e_ident[EI_VERSION] != EV_CURRENT ||
325	    hdr->e_phentsize != sizeof(Elf_Phdr) ||
326	    hdr->e_version != ELF_TARG_VER)
327		return (ENOEXEC);
328
329	/*
330	 * Make sure we have at least one brand for this machine.
331	 */
332
333	for (i = 0; i < MAX_BRANDS; i++) {
334		bi = elf_brand_list[i];
335		if (bi != NULL && bi->machine == hdr->e_machine)
336			break;
337	}
338	if (i == MAX_BRANDS)
339		return (ENOEXEC);
340
341	return (0);
342}
343
344static int
345__elfN(map_partial)(vm_map_t map, vm_object_t object, vm_ooffset_t offset,
346    vm_offset_t start, vm_offset_t end, vm_prot_t prot)
347{
348	struct sf_buf *sf;
349	int error;
350	vm_offset_t off;
351
352	/*
353	 * Create the page if it doesn't exist yet. Ignore errors.
354	 */
355	vm_map_lock(map);
356	vm_map_insert(map, NULL, 0, trunc_page(start), round_page(end),
357	    VM_PROT_ALL, VM_PROT_ALL, 0);
358	vm_map_unlock(map);
359
360	/*
361	 * Find the page from the underlying object.
362	 */
363	if (object) {
364		sf = vm_imgact_map_page(object, offset);
365		if (sf == NULL)
366			return (KERN_FAILURE);
367		off = offset - trunc_page(offset);
368		error = copyout((caddr_t)sf_buf_kva(sf) + off, (caddr_t)start,
369		    end - start);
370		vm_imgact_unmap_page(sf);
371		if (error) {
372			return (KERN_FAILURE);
373		}
374	}
375
376	return (KERN_SUCCESS);
377}
378
379static int
380__elfN(map_insert)(vm_map_t map, vm_object_t object, vm_ooffset_t offset,
381    vm_offset_t start, vm_offset_t end, vm_prot_t prot, int cow)
382{
383	struct sf_buf *sf;
384	vm_offset_t off;
385	vm_size_t sz;
386	int error, rv;
387
388	if (start != trunc_page(start)) {
389		rv = __elfN(map_partial)(map, object, offset, start,
390		    round_page(start), prot);
391		if (rv)
392			return (rv);
393		offset += round_page(start) - start;
394		start = round_page(start);
395	}
396	if (end != round_page(end)) {
397		rv = __elfN(map_partial)(map, object, offset +
398		    trunc_page(end) - start, trunc_page(end), end, prot);
399		if (rv)
400			return (rv);
401		end = trunc_page(end);
402	}
403	if (end > start) {
404		if (offset & PAGE_MASK) {
405			/*
406			 * The mapping is not page aligned. This means we have
407			 * to copy the data. Sigh.
408			 */
409			rv = vm_map_find(map, NULL, 0, &start, end - start,
410			    FALSE, prot | VM_PROT_WRITE, VM_PROT_ALL, 0);
411			if (rv)
412				return (rv);
413			if (object == NULL)
414				return (KERN_SUCCESS);
415			for (; start < end; start += sz) {
416				sf = vm_imgact_map_page(object, offset);
417				if (sf == NULL)
418					return (KERN_FAILURE);
419				off = offset - trunc_page(offset);
420				sz = end - start;
421				if (sz > PAGE_SIZE - off)
422					sz = PAGE_SIZE - off;
423				error = copyout((caddr_t)sf_buf_kva(sf) + off,
424				    (caddr_t)start, sz);
425				vm_imgact_unmap_page(sf);
426				if (error) {
427					return (KERN_FAILURE);
428				}
429				offset += sz;
430			}
431			rv = KERN_SUCCESS;
432		} else {
433			vm_object_reference(object);
434			vm_map_lock(map);
435			rv = vm_map_insert(map, object, offset, start, end,
436			    prot, VM_PROT_ALL, cow);
437			vm_map_unlock(map);
438			if (rv != KERN_SUCCESS)
439				vm_object_deallocate(object);
440		}
441		return (rv);
442	} else {
443		return (KERN_SUCCESS);
444	}
445}
446
447static int
448__elfN(load_section)(struct vmspace *vmspace,
449	vm_object_t object, vm_offset_t offset,
450	caddr_t vmaddr, size_t memsz, size_t filsz, vm_prot_t prot,
451	size_t pagesize)
452{
453	struct sf_buf *sf;
454	size_t map_len;
455	vm_offset_t map_addr;
456	int error, rv, cow;
457	size_t copy_len;
458	vm_offset_t file_addr;
459
460	/*
461	 * It's necessary to fail if the filsz + offset taken from the
462	 * header is greater than the actual file pager object's size.
463	 * If we were to allow this, then the vm_map_find() below would
464	 * walk right off the end of the file object and into the ether.
465	 *
466	 * While I'm here, might as well check for something else that
467	 * is invalid: filsz cannot be greater than memsz.
468	 */
469	if ((off_t)filsz + offset > object->un_pager.vnp.vnp_size ||
470	    filsz > memsz) {
471		uprintf("elf_load_section: truncated ELF file\n");
472		return (ENOEXEC);
473	}
474
475	map_addr = trunc_page_ps((vm_offset_t)vmaddr, pagesize);
476	file_addr = trunc_page_ps(offset, pagesize);
477
478	/*
479	 * We have two choices.  We can either clear the data in the last page
480	 * of an oversized mapping, or we can start the anon mapping a page
481	 * early and copy the initialized data into that first page.  We
482	 * choose the second..
483	 */
484	if (memsz > filsz)
485		map_len = trunc_page_ps(offset + filsz, pagesize) - file_addr;
486	else
487		map_len = round_page_ps(offset + filsz, pagesize) - file_addr;
488
489	if (map_len != 0) {
490		/* cow flags: don't dump readonly sections in core */
491		cow = MAP_COPY_ON_WRITE | MAP_PREFAULT |
492		    (prot & VM_PROT_WRITE ? 0 : MAP_DISABLE_COREDUMP);
493
494		rv = __elfN(map_insert)(&vmspace->vm_map,
495				      object,
496				      file_addr,	/* file offset */
497				      map_addr,		/* virtual start */
498				      map_addr + map_len,/* virtual end */
499				      prot,
500				      cow);
501		if (rv != KERN_SUCCESS)
502			return (EINVAL);
503
504		/* we can stop now if we've covered it all */
505		if (memsz == filsz) {
506			return (0);
507		}
508	}
509
510
511	/*
512	 * We have to get the remaining bit of the file into the first part
513	 * of the oversized map segment.  This is normally because the .data
514	 * segment in the file is extended to provide bss.  It's a neat idea
515	 * to try and save a page, but it's a pain in the behind to implement.
516	 */
517	copy_len = (offset + filsz) - trunc_page_ps(offset + filsz, pagesize);
518	map_addr = trunc_page_ps((vm_offset_t)vmaddr + filsz, pagesize);
519	map_len = round_page_ps((vm_offset_t)vmaddr + memsz, pagesize) -
520	    map_addr;
521
522	/* This had damn well better be true! */
523	if (map_len != 0) {
524		rv = __elfN(map_insert)(&vmspace->vm_map, NULL, 0, map_addr,
525		    map_addr + map_len, VM_PROT_ALL, 0);
526		if (rv != KERN_SUCCESS) {
527			return (EINVAL);
528		}
529	}
530
531	if (copy_len != 0) {
532		vm_offset_t off;
533
534		sf = vm_imgact_map_page(object, offset + filsz);
535		if (sf == NULL)
536			return (EIO);
537
538		/* send the page fragment to user space */
539		off = trunc_page_ps(offset + filsz, pagesize) -
540		    trunc_page(offset + filsz);
541		error = copyout((caddr_t)sf_buf_kva(sf) + off,
542		    (caddr_t)map_addr, copy_len);
543		vm_imgact_unmap_page(sf);
544		if (error) {
545			return (error);
546		}
547	}
548
549	/*
550	 * set it to the specified protection.
551	 * XXX had better undo the damage from pasting over the cracks here!
552	 */
553	vm_map_protect(&vmspace->vm_map, trunc_page(map_addr),
554	    round_page(map_addr + map_len),  prot, FALSE);
555
556	return (0);
557}
558
559/*
560 * Load the file "file" into memory.  It may be either a shared object
561 * or an executable.
562 *
563 * The "addr" reference parameter is in/out.  On entry, it specifies
564 * the address where a shared object should be loaded.  If the file is
565 * an executable, this value is ignored.  On exit, "addr" specifies
566 * where the file was actually loaded.
567 *
568 * The "entry" reference parameter is out only.  On exit, it specifies
569 * the entry point for the loaded file.
570 */
571static int
572__elfN(load_file)(struct proc *p, const char *file, u_long *addr,
573	u_long *entry, size_t pagesize)
574{
575	struct {
576		struct nameidata nd;
577		struct vattr attr;
578		struct image_params image_params;
579	} *tempdata;
580	const Elf_Ehdr *hdr = NULL;
581	const Elf_Phdr *phdr = NULL;
582	struct nameidata *nd;
583	struct vmspace *vmspace = p->p_vmspace;
584	struct vattr *attr;
585	struct image_params *imgp;
586	vm_prot_t prot;
587	u_long rbase;
588	u_long base_addr = 0;
589	int vfslocked, error, i, numsegs;
590
591#ifdef CAPABILITY_MODE
592	/*
593	 * XXXJA: This check can go away once we are sufficiently confident
594	 * that the checks in namei() are correct.
595	 */
596	if (IN_CAPABILITY_MODE(curthread))
597		return (ECAPMODE);
598#endif
599
600	tempdata = malloc(sizeof(*tempdata), M_TEMP, M_WAITOK);
601	nd = &tempdata->nd;
602	attr = &tempdata->attr;
603	imgp = &tempdata->image_params;
604
605	/*
606	 * Initialize part of the common data
607	 */
608	imgp->proc = p;
609	imgp->attr = attr;
610	imgp->firstpage = NULL;
611	imgp->image_header = NULL;
612	imgp->object = NULL;
613	imgp->execlabel = NULL;
614
615	NDINIT(nd, LOOKUP, MPSAFE|LOCKLEAF|FOLLOW, UIO_SYSSPACE, file,
616	    curthread);
617	vfslocked = 0;
618	if ((error = namei(nd)) != 0) {
619		nd->ni_vp = NULL;
620		goto fail;
621	}
622	vfslocked = NDHASGIANT(nd);
623	NDFREE(nd, NDF_ONLY_PNBUF);
624	imgp->vp = nd->ni_vp;
625
626	/*
627	 * Check permissions, modes, uid, etc on the file, and "open" it.
628	 */
629	error = exec_check_permissions(imgp);
630	if (error)
631		goto fail;
632
633	error = exec_map_first_page(imgp);
634	if (error)
635		goto fail;
636
637	/*
638	 * Also make certain that the interpreter stays the same, so set
639	 * its VV_TEXT flag, too.
640	 */
641	nd->ni_vp->v_vflag |= VV_TEXT;
642
643	imgp->object = nd->ni_vp->v_object;
644
645	hdr = (const Elf_Ehdr *)imgp->image_header;
646	if ((error = __elfN(check_header)(hdr)) != 0)
647		goto fail;
648	if (hdr->e_type == ET_DYN)
649		rbase = *addr;
650	else if (hdr->e_type == ET_EXEC)
651		rbase = 0;
652	else {
653		error = ENOEXEC;
654		goto fail;
655	}
656
657	/* Only support headers that fit within first page for now      */
658	/*    (multiplication of two Elf_Half fields will not overflow) */
659	if ((hdr->e_phoff > PAGE_SIZE) ||
660	    (hdr->e_phentsize * hdr->e_phnum) > PAGE_SIZE - hdr->e_phoff) {
661		error = ENOEXEC;
662		goto fail;
663	}
664
665	phdr = (const Elf_Phdr *)(imgp->image_header + hdr->e_phoff);
666	if (!aligned(phdr, Elf_Addr)) {
667		error = ENOEXEC;
668		goto fail;
669	}
670
671	for (i = 0, numsegs = 0; i < hdr->e_phnum; i++) {
672		if (phdr[i].p_type == PT_LOAD && phdr[i].p_memsz != 0) {
673			/* Loadable segment */
674			prot = __elfN(trans_prot)(phdr[i].p_flags);
675			if ((error = __elfN(load_section)(vmspace,
676			    imgp->object, phdr[i].p_offset,
677			    (caddr_t)(uintptr_t)phdr[i].p_vaddr + rbase,
678			    phdr[i].p_memsz, phdr[i].p_filesz, prot,
679			    pagesize)) != 0)
680				goto fail;
681			/*
682			 * Establish the base address if this is the
683			 * first segment.
684			 */
685			if (numsegs == 0)
686  				base_addr = trunc_page(phdr[i].p_vaddr +
687				    rbase);
688			numsegs++;
689		}
690	}
691	*addr = base_addr;
692	*entry = (unsigned long)hdr->e_entry + rbase;
693
694fail:
695	if (imgp->firstpage)
696		exec_unmap_first_page(imgp);
697
698	if (nd->ni_vp)
699		vput(nd->ni_vp);
700
701	VFS_UNLOCK_GIANT(vfslocked);
702	free(tempdata, M_TEMP);
703
704	return (error);
705}
706
707static int
708__CONCAT(exec_, __elfN(imgact))(struct image_params *imgp)
709{
710	const Elf_Ehdr *hdr = (const Elf_Ehdr *)imgp->image_header;
711	const Elf_Phdr *phdr;
712	Elf_Auxargs *elf_auxargs;
713	struct vmspace *vmspace;
714	vm_prot_t prot;
715	u_long text_size = 0, data_size = 0, total_size = 0;
716	u_long text_addr = 0, data_addr = 0;
717	u_long seg_size, seg_addr;
718	u_long addr, baddr, et_dyn_addr, entry = 0, proghdr = 0;
719	int32_t osrel = 0;
720	int error = 0, i, n;
721	const char *interp = NULL, *newinterp = NULL;
722	Elf_Brandinfo *brand_info;
723	char *path;
724	struct sysentvec *sv;
725
726	/*
727	 * Do we have a valid ELF header ?
728	 *
729	 * Only allow ET_EXEC & ET_DYN here, reject ET_DYN later
730	 * if particular brand doesn't support it.
731	 */
732	if (__elfN(check_header)(hdr) != 0 ||
733	    (hdr->e_type != ET_EXEC && hdr->e_type != ET_DYN))
734		return (-1);
735
736	/*
737	 * From here on down, we return an errno, not -1, as we've
738	 * detected an ELF file.
739	 */
740
741	if ((hdr->e_phoff > PAGE_SIZE) ||
742	    (hdr->e_phoff + hdr->e_phentsize * hdr->e_phnum) > PAGE_SIZE) {
743		/* Only support headers in first page for now */
744		return (ENOEXEC);
745	}
746	phdr = (const Elf_Phdr *)(imgp->image_header + hdr->e_phoff);
747	if (!aligned(phdr, Elf_Addr))
748		return (ENOEXEC);
749	n = 0;
750	baddr = 0;
751	for (i = 0; i < hdr->e_phnum; i++) {
752		switch (phdr[i].p_type) {
753		case PT_LOAD:
754			if (n == 0)
755				baddr = phdr[i].p_vaddr;
756			n++;
757			break;
758		case PT_INTERP:
759			/* Path to interpreter */
760			if (phdr[i].p_filesz > MAXPATHLEN ||
761			    phdr[i].p_offset + phdr[i].p_filesz > PAGE_SIZE)
762				return (ENOEXEC);
763			interp = imgp->image_header + phdr[i].p_offset;
764			break;
765		case PT_GNU_STACK:
766			if (__elfN(nxstack))
767				imgp->stack_prot =
768				    __elfN(trans_prot)(phdr[i].p_flags);
769			break;
770		}
771	}
772
773	brand_info = __elfN(get_brandinfo)(imgp, interp, &osrel);
774	if (brand_info == NULL) {
775		uprintf("ELF binary type \"%u\" not known.\n",
776		    hdr->e_ident[EI_OSABI]);
777		return (ENOEXEC);
778	}
779	if (hdr->e_type == ET_DYN) {
780		if ((brand_info->flags & BI_CAN_EXEC_DYN) == 0)
781			return (ENOEXEC);
782		/*
783		 * Honour the base load address from the dso if it is
784		 * non-zero for some reason.
785		 */
786		if (baddr == 0)
787			et_dyn_addr = ET_DYN_LOAD_ADDR;
788		else
789			et_dyn_addr = 0;
790	} else
791		et_dyn_addr = 0;
792	sv = brand_info->sysvec;
793	if (interp != NULL && brand_info->interp_newpath != NULL)
794		newinterp = brand_info->interp_newpath;
795
796	/*
797	 * Avoid a possible deadlock if the current address space is destroyed
798	 * and that address space maps the locked vnode.  In the common case,
799	 * the locked vnode's v_usecount is decremented but remains greater
800	 * than zero.  Consequently, the vnode lock is not needed by vrele().
801	 * However, in cases where the vnode lock is external, such as nullfs,
802	 * v_usecount may become zero.
803	 */
804	VOP_UNLOCK(imgp->vp, 0);
805
806	error = exec_new_vmspace(imgp, sv);
807	imgp->proc->p_sysent = sv;
808
809	vn_lock(imgp->vp, LK_EXCLUSIVE | LK_RETRY);
810	if (error)
811		return (error);
812
813	vmspace = imgp->proc->p_vmspace;
814
815	for (i = 0; i < hdr->e_phnum; i++) {
816		switch (phdr[i].p_type) {
817		case PT_LOAD:	/* Loadable segment */
818			if (phdr[i].p_memsz == 0)
819				break;
820			prot = __elfN(trans_prot)(phdr[i].p_flags);
821
822#if defined(__ia64__) && __ELF_WORD_SIZE == 32 && defined(IA32_ME_HARDER)
823			/*
824			 * Some x86 binaries assume read == executable,
825			 * notably the M3 runtime and therefore cvsup
826			 */
827			if (prot & VM_PROT_READ)
828				prot |= VM_PROT_EXECUTE;
829#endif
830
831			if ((error = __elfN(load_section)(vmspace,
832			    imgp->object, phdr[i].p_offset,
833			    (caddr_t)(uintptr_t)phdr[i].p_vaddr + et_dyn_addr,
834			    phdr[i].p_memsz, phdr[i].p_filesz, prot,
835			    sv->sv_pagesize)) != 0)
836				return (error);
837
838			/*
839			 * If this segment contains the program headers,
840			 * remember their virtual address for the AT_PHDR
841			 * aux entry. Static binaries don't usually include
842			 * a PT_PHDR entry.
843			 */
844			if (phdr[i].p_offset == 0 &&
845			    hdr->e_phoff + hdr->e_phnum * hdr->e_phentsize
846				<= phdr[i].p_filesz)
847				proghdr = phdr[i].p_vaddr + hdr->e_phoff +
848				    et_dyn_addr;
849
850			seg_addr = trunc_page(phdr[i].p_vaddr + et_dyn_addr);
851			seg_size = round_page(phdr[i].p_memsz +
852			    phdr[i].p_vaddr + et_dyn_addr - seg_addr);
853
854			/*
855			 * Make the largest executable segment the official
856			 * text segment and all others data.
857			 *
858			 * Note that obreak() assumes that data_addr +
859			 * data_size == end of data load area, and the ELF
860			 * file format expects segments to be sorted by
861			 * address.  If multiple data segments exist, the
862			 * last one will be used.
863			 */
864
865			if (phdr[i].p_flags & PF_X && text_size < seg_size) {
866				text_size = seg_size;
867				text_addr = seg_addr;
868			} else {
869				data_size = seg_size;
870				data_addr = seg_addr;
871			}
872			total_size += seg_size;
873			break;
874		case PT_PHDR: 	/* Program header table info */
875			proghdr = phdr[i].p_vaddr + et_dyn_addr;
876			break;
877		default:
878			break;
879		}
880	}
881
882	if (data_addr == 0 && data_size == 0) {
883		data_addr = text_addr;
884		data_size = text_size;
885	}
886
887	entry = (u_long)hdr->e_entry + et_dyn_addr;
888
889	/*
890	 * Check limits.  It should be safe to check the
891	 * limits after loading the segments since we do
892	 * not actually fault in all the segments pages.
893	 */
894	PROC_LOCK(imgp->proc);
895	if (data_size > lim_cur(imgp->proc, RLIMIT_DATA) ||
896	    text_size > maxtsiz ||
897	    total_size > lim_cur(imgp->proc, RLIMIT_VMEM) ||
898	    racct_set(imgp->proc, RACCT_DATA, data_size) != 0 ||
899	    racct_set(imgp->proc, RACCT_VMEM, total_size) != 0) {
900		PROC_UNLOCK(imgp->proc);
901		return (ENOMEM);
902	}
903
904	vmspace->vm_tsize = text_size >> PAGE_SHIFT;
905	vmspace->vm_taddr = (caddr_t)(uintptr_t)text_addr;
906	vmspace->vm_dsize = data_size >> PAGE_SHIFT;
907	vmspace->vm_daddr = (caddr_t)(uintptr_t)data_addr;
908
909	/*
910	 * We load the dynamic linker where a userland call
911	 * to mmap(0, ...) would put it.  The rationale behind this
912	 * calculation is that it leaves room for the heap to grow to
913	 * its maximum allowed size.
914	 */
915	addr = round_page((vm_offset_t)imgp->proc->p_vmspace->vm_daddr +
916	    lim_max(imgp->proc, RLIMIT_DATA));
917	PROC_UNLOCK(imgp->proc);
918
919	imgp->entry_addr = entry;
920
921	if (interp != NULL) {
922		int have_interp = FALSE;
923		VOP_UNLOCK(imgp->vp, 0);
924		if (brand_info->emul_path != NULL &&
925		    brand_info->emul_path[0] != '\0') {
926			path = malloc(MAXPATHLEN, M_TEMP, M_WAITOK);
927			snprintf(path, MAXPATHLEN, "%s%s",
928			    brand_info->emul_path, interp);
929			error = __elfN(load_file)(imgp->proc, path, &addr,
930			    &imgp->entry_addr, sv->sv_pagesize);
931			free(path, M_TEMP);
932			if (error == 0)
933				have_interp = TRUE;
934		}
935		if (!have_interp && newinterp != NULL) {
936			error = __elfN(load_file)(imgp->proc, newinterp, &addr,
937			    &imgp->entry_addr, sv->sv_pagesize);
938			if (error == 0)
939				have_interp = TRUE;
940		}
941		if (!have_interp) {
942			error = __elfN(load_file)(imgp->proc, interp, &addr,
943			    &imgp->entry_addr, sv->sv_pagesize);
944		}
945		vn_lock(imgp->vp, LK_EXCLUSIVE | LK_RETRY);
946		if (error != 0) {
947			uprintf("ELF interpreter %s not found\n", interp);
948			return (error);
949		}
950	} else
951		addr = et_dyn_addr;
952
953	/*
954	 * Construct auxargs table (used by the fixup routine)
955	 */
956	elf_auxargs = malloc(sizeof(Elf_Auxargs), M_TEMP, M_WAITOK);
957	elf_auxargs->execfd = -1;
958	elf_auxargs->phdr = proghdr;
959	elf_auxargs->phent = hdr->e_phentsize;
960	elf_auxargs->phnum = hdr->e_phnum;
961	elf_auxargs->pagesz = PAGE_SIZE;
962	elf_auxargs->base = addr;
963	elf_auxargs->flags = 0;
964	elf_auxargs->entry = entry;
965
966	imgp->auxargs = elf_auxargs;
967	imgp->interpreted = 0;
968	imgp->reloc_base = addr;
969	imgp->proc->p_osrel = osrel;
970
971	return (error);
972}
973
974#define	suword __CONCAT(suword, __ELF_WORD_SIZE)
975
976int
977__elfN(freebsd_fixup)(register_t **stack_base, struct image_params *imgp)
978{
979	Elf_Auxargs *args = (Elf_Auxargs *)imgp->auxargs;
980	Elf_Addr *base;
981	Elf_Addr *pos;
982
983	base = (Elf_Addr *)*stack_base;
984	pos = base + (imgp->args->argc + imgp->args->envc + 2);
985
986	if (args->execfd != -1)
987		AUXARGS_ENTRY(pos, AT_EXECFD, args->execfd);
988	AUXARGS_ENTRY(pos, AT_PHDR, args->phdr);
989	AUXARGS_ENTRY(pos, AT_PHENT, args->phent);
990	AUXARGS_ENTRY(pos, AT_PHNUM, args->phnum);
991	AUXARGS_ENTRY(pos, AT_PAGESZ, args->pagesz);
992	AUXARGS_ENTRY(pos, AT_FLAGS, args->flags);
993	AUXARGS_ENTRY(pos, AT_ENTRY, args->entry);
994	AUXARGS_ENTRY(pos, AT_BASE, args->base);
995	if (imgp->execpathp != 0)
996		AUXARGS_ENTRY(pos, AT_EXECPATH, imgp->execpathp);
997	AUXARGS_ENTRY(pos, AT_OSRELDATE, osreldate);
998	if (imgp->canary != 0) {
999		AUXARGS_ENTRY(pos, AT_CANARY, imgp->canary);
1000		AUXARGS_ENTRY(pos, AT_CANARYLEN, imgp->canarylen);
1001	}
1002	AUXARGS_ENTRY(pos, AT_NCPUS, mp_ncpus);
1003	if (imgp->pagesizes != 0) {
1004		AUXARGS_ENTRY(pos, AT_PAGESIZES, imgp->pagesizes);
1005		AUXARGS_ENTRY(pos, AT_PAGESIZESLEN, imgp->pagesizeslen);
1006	}
1007	AUXARGS_ENTRY(pos, AT_STACKPROT, imgp->sysent->sv_shared_page_obj
1008	    != NULL && imgp->stack_prot != 0 ? imgp->stack_prot :
1009	    imgp->sysent->sv_stackprot);
1010	AUXARGS_ENTRY(pos, AT_NULL, 0);
1011
1012	free(imgp->auxargs, M_TEMP);
1013	imgp->auxargs = NULL;
1014
1015	base--;
1016	suword(base, (long)imgp->args->argc);
1017	*stack_base = (register_t *)base;
1018	return (0);
1019}
1020
1021/*
1022 * Code for generating ELF core dumps.
1023 */
1024
1025typedef void (*segment_callback)(vm_map_entry_t, void *);
1026
1027/* Closure for cb_put_phdr(). */
1028struct phdr_closure {
1029	Elf_Phdr *phdr;		/* Program header to fill in */
1030	Elf_Off offset;		/* Offset of segment in core file */
1031};
1032
1033/* Closure for cb_size_segment(). */
1034struct sseg_closure {
1035	int count;		/* Count of writable segments. */
1036	size_t size;		/* Total size of all writable segments. */
1037};
1038
1039static void cb_put_phdr(vm_map_entry_t, void *);
1040static void cb_size_segment(vm_map_entry_t, void *);
1041static void each_writable_segment(struct thread *, segment_callback, void *);
1042static int __elfN(corehdr)(struct thread *, struct vnode *, struct ucred *,
1043    int, void *, size_t, gzFile);
1044static void __elfN(puthdr)(struct thread *, void *, size_t *, int);
1045static void __elfN(putnote)(void *, size_t *, const char *, int,
1046    const void *, size_t);
1047
1048#ifdef COMPRESS_USER_CORES
1049extern int compress_user_cores;
1050extern int compress_user_cores_gzlevel;
1051#endif
1052
1053static int
1054core_output(struct vnode *vp, void *base, size_t len, off_t offset,
1055    struct ucred *active_cred, struct ucred *file_cred,
1056    struct thread *td, char *core_buf, gzFile gzfile) {
1057
1058	int error;
1059	if (gzfile) {
1060#ifdef COMPRESS_USER_CORES
1061		error = compress_core(gzfile, base, core_buf, len, td);
1062#else
1063		panic("shouldn't be here");
1064#endif
1065	} else {
1066		error = vn_rdwr_inchunks(UIO_WRITE, vp, base, len, offset,
1067		    UIO_USERSPACE, IO_UNIT | IO_DIRECT, active_cred, file_cred,
1068		    NULL, td);
1069	}
1070	return (error);
1071}
1072
1073int
1074__elfN(coredump)(struct thread *td, struct vnode *vp, off_t limit, int flags)
1075{
1076	struct ucred *cred = td->td_ucred;
1077	int error = 0;
1078	struct sseg_closure seginfo;
1079	void *hdr;
1080	size_t hdrsize;
1081
1082	gzFile gzfile = Z_NULL;
1083	char *core_buf = NULL;
1084#ifdef COMPRESS_USER_CORES
1085	char gzopen_flags[8];
1086	char *p;
1087	int doing_compress = flags & IMGACT_CORE_COMPRESS;
1088#endif
1089
1090	hdr = NULL;
1091
1092#ifdef COMPRESS_USER_CORES
1093        if (doing_compress) {
1094                p = gzopen_flags;
1095                *p++ = 'w';
1096                if (compress_user_cores_gzlevel >= 0 &&
1097                    compress_user_cores_gzlevel <= 9)
1098                        *p++ = '0' + compress_user_cores_gzlevel;
1099                *p = 0;
1100                gzfile = gz_open("", gzopen_flags, vp);
1101                if (gzfile == Z_NULL) {
1102                        error = EFAULT;
1103                        goto done;
1104                }
1105                core_buf = malloc(CORE_BUF_SIZE, M_TEMP, M_WAITOK | M_ZERO);
1106                if (!core_buf) {
1107                        error = ENOMEM;
1108                        goto done;
1109                }
1110        }
1111#endif
1112
1113	/* Size the program segments. */
1114	seginfo.count = 0;
1115	seginfo.size = 0;
1116	each_writable_segment(td, cb_size_segment, &seginfo);
1117
1118	/*
1119	 * Calculate the size of the core file header area by making
1120	 * a dry run of generating it.  Nothing is written, but the
1121	 * size is calculated.
1122	 */
1123	hdrsize = 0;
1124	__elfN(puthdr)(td, (void *)NULL, &hdrsize, seginfo.count);
1125
1126#ifdef RACCT
1127	PROC_LOCK(td->td_proc);
1128	error = racct_add(td->td_proc, RACCT_CORE, hdrsize + seginfo.size);
1129	PROC_UNLOCK(td->td_proc);
1130	if (error != 0) {
1131		error = EFAULT;
1132		goto done;
1133	}
1134#endif
1135	if (hdrsize + seginfo.size >= limit) {
1136		error = EFAULT;
1137		goto done;
1138	}
1139
1140	/*
1141	 * Allocate memory for building the header, fill it up,
1142	 * and write it out.
1143	 */
1144	hdr = malloc(hdrsize, M_TEMP, M_WAITOK);
1145	if (hdr == NULL) {
1146		error = EINVAL;
1147		goto done;
1148	}
1149	error = __elfN(corehdr)(td, vp, cred, seginfo.count, hdr, hdrsize,
1150	    gzfile);
1151
1152	/* Write the contents of all of the writable segments. */
1153	if (error == 0) {
1154		Elf_Phdr *php;
1155		off_t offset;
1156		int i;
1157
1158		php = (Elf_Phdr *)((char *)hdr + sizeof(Elf_Ehdr)) + 1;
1159		offset = hdrsize;
1160		for (i = 0; i < seginfo.count; i++) {
1161			error = core_output(vp, (caddr_t)(uintptr_t)php->p_vaddr,
1162			    php->p_filesz, offset, cred, NOCRED, curthread, core_buf, gzfile);
1163			if (error != 0)
1164				break;
1165			offset += php->p_filesz;
1166			php++;
1167		}
1168	}
1169	if (error) {
1170		log(LOG_WARNING,
1171		    "Failed to write core file for process %s (error %d)\n",
1172		    curproc->p_comm, error);
1173	}
1174
1175done:
1176#ifdef COMPRESS_USER_CORES
1177	if (core_buf)
1178		free(core_buf, M_TEMP);
1179	if (gzfile)
1180		gzclose(gzfile);
1181#endif
1182
1183	free(hdr, M_TEMP);
1184
1185	return (error);
1186}
1187
1188/*
1189 * A callback for each_writable_segment() to write out the segment's
1190 * program header entry.
1191 */
1192static void
1193cb_put_phdr(entry, closure)
1194	vm_map_entry_t entry;
1195	void *closure;
1196{
1197	struct phdr_closure *phc = (struct phdr_closure *)closure;
1198	Elf_Phdr *phdr = phc->phdr;
1199
1200	phc->offset = round_page(phc->offset);
1201
1202	phdr->p_type = PT_LOAD;
1203	phdr->p_offset = phc->offset;
1204	phdr->p_vaddr = entry->start;
1205	phdr->p_paddr = 0;
1206	phdr->p_filesz = phdr->p_memsz = entry->end - entry->start;
1207	phdr->p_align = PAGE_SIZE;
1208	phdr->p_flags = __elfN(untrans_prot)(entry->protection);
1209
1210	phc->offset += phdr->p_filesz;
1211	phc->phdr++;
1212}
1213
1214/*
1215 * A callback for each_writable_segment() to gather information about
1216 * the number of segments and their total size.
1217 */
1218static void
1219cb_size_segment(entry, closure)
1220	vm_map_entry_t entry;
1221	void *closure;
1222{
1223	struct sseg_closure *ssc = (struct sseg_closure *)closure;
1224
1225	ssc->count++;
1226	ssc->size += entry->end - entry->start;
1227}
1228
1229/*
1230 * For each writable segment in the process's memory map, call the given
1231 * function with a pointer to the map entry and some arbitrary
1232 * caller-supplied data.
1233 */
1234static void
1235each_writable_segment(td, func, closure)
1236	struct thread *td;
1237	segment_callback func;
1238	void *closure;
1239{
1240	struct proc *p = td->td_proc;
1241	vm_map_t map = &p->p_vmspace->vm_map;
1242	vm_map_entry_t entry;
1243	vm_object_t backing_object, object;
1244	boolean_t ignore_entry;
1245
1246	vm_map_lock_read(map);
1247	for (entry = map->header.next; entry != &map->header;
1248	    entry = entry->next) {
1249		/*
1250		 * Don't dump inaccessible mappings, deal with legacy
1251		 * coredump mode.
1252		 *
1253		 * Note that read-only segments related to the elf binary
1254		 * are marked MAP_ENTRY_NOCOREDUMP now so we no longer
1255		 * need to arbitrarily ignore such segments.
1256		 */
1257		if (elf_legacy_coredump) {
1258			if ((entry->protection & VM_PROT_RW) != VM_PROT_RW)
1259				continue;
1260		} else {
1261			if ((entry->protection & VM_PROT_ALL) == 0)
1262				continue;
1263		}
1264
1265		/*
1266		 * Dont include memory segment in the coredump if
1267		 * MAP_NOCORE is set in mmap(2) or MADV_NOCORE in
1268		 * madvise(2).  Do not dump submaps (i.e. parts of the
1269		 * kernel map).
1270		 */
1271		if (entry->eflags & (MAP_ENTRY_NOCOREDUMP|MAP_ENTRY_IS_SUB_MAP))
1272			continue;
1273
1274		if ((object = entry->object.vm_object) == NULL)
1275			continue;
1276
1277		/* Ignore memory-mapped devices and such things. */
1278		VM_OBJECT_LOCK(object);
1279		while ((backing_object = object->backing_object) != NULL) {
1280			VM_OBJECT_LOCK(backing_object);
1281			VM_OBJECT_UNLOCK(object);
1282			object = backing_object;
1283		}
1284		ignore_entry = object->type != OBJT_DEFAULT &&
1285		    object->type != OBJT_SWAP && object->type != OBJT_VNODE;
1286		VM_OBJECT_UNLOCK(object);
1287		if (ignore_entry)
1288			continue;
1289
1290		(*func)(entry, closure);
1291	}
1292	vm_map_unlock_read(map);
1293}
1294
1295/*
1296 * Write the core file header to the file, including padding up to
1297 * the page boundary.
1298 */
1299static int
1300__elfN(corehdr)(td, vp, cred, numsegs, hdr, hdrsize, gzfile)
1301	struct thread *td;
1302	struct vnode *vp;
1303	struct ucred *cred;
1304	int numsegs;
1305	size_t hdrsize;
1306	void *hdr;
1307	gzFile gzfile;
1308{
1309	size_t off;
1310
1311	/* Fill in the header. */
1312	bzero(hdr, hdrsize);
1313	off = 0;
1314	__elfN(puthdr)(td, hdr, &off, numsegs);
1315
1316	if (!gzfile) {
1317		/* Write it to the core file. */
1318		return (vn_rdwr_inchunks(UIO_WRITE, vp, hdr, hdrsize, (off_t)0,
1319			UIO_SYSSPACE, IO_UNIT | IO_DIRECT, cred, NOCRED, NULL,
1320			td));
1321	} else {
1322#ifdef COMPRESS_USER_CORES
1323		if (gzwrite(gzfile, hdr, hdrsize) != hdrsize) {
1324			log(LOG_WARNING,
1325			    "Failed to compress core file header for process"
1326			    " %s.\n", curproc->p_comm);
1327			return (EFAULT);
1328		}
1329		else {
1330			return (0);
1331		}
1332#else
1333		panic("shouldn't be here");
1334#endif
1335	}
1336}
1337
1338#if defined(COMPAT_FREEBSD32) && __ELF_WORD_SIZE == 32
1339#include <compat/freebsd32/freebsd32.h>
1340
1341typedef struct prstatus32 elf_prstatus_t;
1342typedef struct prpsinfo32 elf_prpsinfo_t;
1343typedef struct fpreg32 elf_prfpregset_t;
1344typedef struct fpreg32 elf_fpregset_t;
1345typedef struct reg32 elf_gregset_t;
1346typedef struct thrmisc32 elf_thrmisc_t;
1347#else
1348typedef prstatus_t elf_prstatus_t;
1349typedef prpsinfo_t elf_prpsinfo_t;
1350typedef prfpregset_t elf_prfpregset_t;
1351typedef prfpregset_t elf_fpregset_t;
1352typedef gregset_t elf_gregset_t;
1353typedef thrmisc_t elf_thrmisc_t;
1354#endif
1355
1356static void
1357__elfN(puthdr)(struct thread *td, void *dst, size_t *off, int numsegs)
1358{
1359	struct {
1360		elf_prstatus_t status;
1361		elf_prfpregset_t fpregset;
1362		elf_prpsinfo_t psinfo;
1363		elf_thrmisc_t thrmisc;
1364	} *tempdata;
1365	elf_prstatus_t *status;
1366	elf_prfpregset_t *fpregset;
1367	elf_prpsinfo_t *psinfo;
1368	elf_thrmisc_t *thrmisc;
1369	struct proc *p;
1370	struct thread *thr;
1371	size_t ehoff, noteoff, notesz, phoff;
1372
1373	p = td->td_proc;
1374
1375	ehoff = *off;
1376	*off += sizeof(Elf_Ehdr);
1377
1378	phoff = *off;
1379	*off += (numsegs + 1) * sizeof(Elf_Phdr);
1380
1381	noteoff = *off;
1382	/*
1383	 * Don't allocate space for the notes if we're just calculating
1384	 * the size of the header. We also don't collect the data.
1385	 */
1386	if (dst != NULL) {
1387		tempdata = malloc(sizeof(*tempdata), M_TEMP, M_ZERO|M_WAITOK);
1388		status = &tempdata->status;
1389		fpregset = &tempdata->fpregset;
1390		psinfo = &tempdata->psinfo;
1391		thrmisc = &tempdata->thrmisc;
1392	} else {
1393		tempdata = NULL;
1394		status = NULL;
1395		fpregset = NULL;
1396		psinfo = NULL;
1397		thrmisc = NULL;
1398	}
1399
1400	if (dst != NULL) {
1401		psinfo->pr_version = PRPSINFO_VERSION;
1402		psinfo->pr_psinfosz = sizeof(elf_prpsinfo_t);
1403		strlcpy(psinfo->pr_fname, p->p_comm, sizeof(psinfo->pr_fname));
1404		/*
1405		 * XXX - We don't fill in the command line arguments properly
1406		 * yet.
1407		 */
1408		strlcpy(psinfo->pr_psargs, p->p_comm,
1409		    sizeof(psinfo->pr_psargs));
1410	}
1411	__elfN(putnote)(dst, off, "FreeBSD", NT_PRPSINFO, psinfo,
1412	    sizeof *psinfo);
1413
1414	/*
1415	 * To have the debugger select the right thread (LWP) as the initial
1416	 * thread, we dump the state of the thread passed to us in td first.
1417	 * This is the thread that causes the core dump and thus likely to
1418	 * be the right thread one wants to have selected in the debugger.
1419	 */
1420	thr = td;
1421	while (thr != NULL) {
1422		if (dst != NULL) {
1423			status->pr_version = PRSTATUS_VERSION;
1424			status->pr_statussz = sizeof(elf_prstatus_t);
1425			status->pr_gregsetsz = sizeof(elf_gregset_t);
1426			status->pr_fpregsetsz = sizeof(elf_fpregset_t);
1427			status->pr_osreldate = osreldate;
1428			status->pr_cursig = p->p_sig;
1429			status->pr_pid = thr->td_tid;
1430#if defined(COMPAT_FREEBSD32) && __ELF_WORD_SIZE == 32
1431			fill_regs32(thr, &status->pr_reg);
1432			fill_fpregs32(thr, fpregset);
1433#else
1434			fill_regs(thr, &status->pr_reg);
1435			fill_fpregs(thr, fpregset);
1436#endif
1437			memset(&thrmisc->_pad, 0, sizeof (thrmisc->_pad));
1438			strcpy(thrmisc->pr_tname, thr->td_name);
1439		}
1440		__elfN(putnote)(dst, off, "FreeBSD", NT_PRSTATUS, status,
1441		    sizeof *status);
1442		__elfN(putnote)(dst, off, "FreeBSD", NT_FPREGSET, fpregset,
1443		    sizeof *fpregset);
1444		__elfN(putnote)(dst, off, "FreeBSD", NT_THRMISC, thrmisc,
1445		    sizeof *thrmisc);
1446		/*
1447		 * Allow for MD specific notes, as well as any MD
1448		 * specific preparations for writing MI notes.
1449		 */
1450		__elfN(dump_thread)(thr, dst, off);
1451
1452		thr = (thr == td) ? TAILQ_FIRST(&p->p_threads) :
1453		    TAILQ_NEXT(thr, td_plist);
1454		if (thr == td)
1455			thr = TAILQ_NEXT(thr, td_plist);
1456	}
1457
1458	notesz = *off - noteoff;
1459
1460	if (dst != NULL)
1461		free(tempdata, M_TEMP);
1462
1463	/* Align up to a page boundary for the program segments. */
1464	*off = round_page(*off);
1465
1466	if (dst != NULL) {
1467		Elf_Ehdr *ehdr;
1468		Elf_Phdr *phdr;
1469		struct phdr_closure phc;
1470
1471		/*
1472		 * Fill in the ELF header.
1473		 */
1474		ehdr = (Elf_Ehdr *)((char *)dst + ehoff);
1475		ehdr->e_ident[EI_MAG0] = ELFMAG0;
1476		ehdr->e_ident[EI_MAG1] = ELFMAG1;
1477		ehdr->e_ident[EI_MAG2] = ELFMAG2;
1478		ehdr->e_ident[EI_MAG3] = ELFMAG3;
1479		ehdr->e_ident[EI_CLASS] = ELF_CLASS;
1480		ehdr->e_ident[EI_DATA] = ELF_DATA;
1481		ehdr->e_ident[EI_VERSION] = EV_CURRENT;
1482		ehdr->e_ident[EI_OSABI] = ELFOSABI_FREEBSD;
1483		ehdr->e_ident[EI_ABIVERSION] = 0;
1484		ehdr->e_ident[EI_PAD] = 0;
1485		ehdr->e_type = ET_CORE;
1486#if defined(COMPAT_FREEBSD32) && __ELF_WORD_SIZE == 32
1487		ehdr->e_machine = ELF_ARCH32;
1488#else
1489		ehdr->e_machine = ELF_ARCH;
1490#endif
1491		ehdr->e_version = EV_CURRENT;
1492		ehdr->e_entry = 0;
1493		ehdr->e_phoff = phoff;
1494		ehdr->e_flags = 0;
1495		ehdr->e_ehsize = sizeof(Elf_Ehdr);
1496		ehdr->e_phentsize = sizeof(Elf_Phdr);
1497		ehdr->e_phnum = numsegs + 1;
1498		ehdr->e_shentsize = sizeof(Elf_Shdr);
1499		ehdr->e_shnum = 0;
1500		ehdr->e_shstrndx = SHN_UNDEF;
1501
1502		/*
1503		 * Fill in the program header entries.
1504		 */
1505		phdr = (Elf_Phdr *)((char *)dst + phoff);
1506
1507		/* The note segement. */
1508		phdr->p_type = PT_NOTE;
1509		phdr->p_offset = noteoff;
1510		phdr->p_vaddr = 0;
1511		phdr->p_paddr = 0;
1512		phdr->p_filesz = notesz;
1513		phdr->p_memsz = 0;
1514		phdr->p_flags = 0;
1515		phdr->p_align = 0;
1516		phdr++;
1517
1518		/* All the writable segments from the program. */
1519		phc.phdr = phdr;
1520		phc.offset = *off;
1521		each_writable_segment(td, cb_put_phdr, &phc);
1522	}
1523}
1524
1525static void
1526__elfN(putnote)(void *dst, size_t *off, const char *name, int type,
1527    const void *desc, size_t descsz)
1528{
1529	Elf_Note note;
1530
1531	note.n_namesz = strlen(name) + 1;
1532	note.n_descsz = descsz;
1533	note.n_type = type;
1534	if (dst != NULL)
1535		bcopy(&note, (char *)dst + *off, sizeof note);
1536	*off += sizeof note;
1537	if (dst != NULL)
1538		bcopy(name, (char *)dst + *off, note.n_namesz);
1539	*off += roundup2(note.n_namesz, sizeof(Elf_Size));
1540	if (dst != NULL)
1541		bcopy(desc, (char *)dst + *off, note.n_descsz);
1542	*off += roundup2(note.n_descsz, sizeof(Elf_Size));
1543}
1544
1545/*
1546 * Try to find the appropriate ABI-note section for checknote,
1547 * fetch the osreldate for binary from the ELF OSABI-note. Only the
1548 * first page of the image is searched, the same as for headers.
1549 */
1550static boolean_t
1551__elfN(check_note)(struct image_params *imgp, Elf_Brandnote *checknote,
1552    int32_t *osrel)
1553{
1554	const Elf_Note *note, *note0, *note_end;
1555	const Elf_Phdr *phdr, *pnote;
1556	const Elf_Ehdr *hdr;
1557	const char *note_name;
1558	int i;
1559
1560	pnote = NULL;
1561	hdr = (const Elf_Ehdr *)imgp->image_header;
1562	phdr = (const Elf_Phdr *)(imgp->image_header + hdr->e_phoff);
1563
1564	for (i = 0; i < hdr->e_phnum; i++) {
1565		if (phdr[i].p_type == PT_NOTE) {
1566			pnote = &phdr[i];
1567			break;
1568		}
1569	}
1570
1571	if (pnote == NULL || pnote->p_offset >= PAGE_SIZE ||
1572	    pnote->p_offset + pnote->p_filesz >= PAGE_SIZE)
1573		return (FALSE);
1574
1575	note = note0 = (const Elf_Note *)(imgp->image_header + pnote->p_offset);
1576	note_end = (const Elf_Note *)(imgp->image_header +
1577	    pnote->p_offset + pnote->p_filesz);
1578	for (i = 0; i < 100 && note >= note0 && note < note_end; i++) {
1579		if (!aligned(note, Elf32_Addr))
1580			return (FALSE);
1581		if (note->n_namesz != checknote->hdr.n_namesz ||
1582		    note->n_descsz != checknote->hdr.n_descsz ||
1583		    note->n_type != checknote->hdr.n_type)
1584			goto nextnote;
1585		note_name = (const char *)(note + 1);
1586		if (strncmp(checknote->vendor, note_name,
1587		    checknote->hdr.n_namesz) != 0)
1588			goto nextnote;
1589
1590		/*
1591		 * Fetch the osreldate for binary
1592		 * from the ELF OSABI-note if necessary.
1593		 */
1594		if ((checknote->flags & BN_TRANSLATE_OSREL) != 0 &&
1595		    checknote->trans_osrel != NULL)
1596			return (checknote->trans_osrel(note, osrel));
1597		return (TRUE);
1598
1599nextnote:
1600		note = (const Elf_Note *)((const char *)(note + 1) +
1601		    roundup2(note->n_namesz, sizeof(Elf32_Addr)) +
1602		    roundup2(note->n_descsz, sizeof(Elf32_Addr)));
1603	}
1604
1605	return (FALSE);
1606}
1607
1608/*
1609 * Tell kern_execve.c about it, with a little help from the linker.
1610 */
1611static struct execsw __elfN(execsw) = {
1612	__CONCAT(exec_, __elfN(imgact)),
1613	__XSTRING(__CONCAT(ELF, __ELF_WORD_SIZE))
1614};
1615EXEC_SET(__CONCAT(elf, __ELF_WORD_SIZE), __elfN(execsw));
1616
1617#ifdef COMPRESS_USER_CORES
1618/*
1619 * Compress and write out a core segment for a user process.
1620 *
1621 * 'inbuf' is the starting address of a VM segment in the process' address
1622 * space that is to be compressed and written out to the core file.  'dest_buf'
1623 * is a buffer in the kernel's address space.  The segment is copied from
1624 * 'inbuf' to 'dest_buf' first before being processed by the compression
1625 * routine gzwrite().  This copying is necessary because the content of the VM
1626 * segment may change between the compression pass and the crc-computation pass
1627 * in gzwrite().  This is because realtime threads may preempt the UNIX kernel.
1628 */
1629static int
1630compress_core (gzFile file, char *inbuf, char *dest_buf, unsigned int len,
1631    struct thread *td)
1632{
1633	int len_compressed;
1634	int error = 0;
1635	unsigned int chunk_len;
1636
1637	while (len) {
1638		chunk_len = (len > CORE_BUF_SIZE) ? CORE_BUF_SIZE : len;
1639		copyin(inbuf, dest_buf, chunk_len);
1640		len_compressed = gzwrite(file, dest_buf, chunk_len);
1641
1642		EVENTHANDLER_INVOKE(app_coredump_progress, td, len_compressed);
1643
1644		if ((unsigned int)len_compressed != chunk_len) {
1645			log(LOG_WARNING,
1646			    "compress_core: length mismatch (0x%x returned, "
1647			    "0x%x expected)\n", len_compressed, chunk_len);
1648			EVENTHANDLER_INVOKE(app_coredump_error, td,
1649			    "compress_core: length mismatch %x -> %x",
1650			    chunk_len, len_compressed);
1651			error = EFAULT;
1652			break;
1653		}
1654		inbuf += chunk_len;
1655		len -= chunk_len;
1656		maybe_yield();
1657	}
1658
1659	return (error);
1660}
1661#endif /* COMPRESS_USER_CORES */
1662
1663static vm_prot_t
1664__elfN(trans_prot)(Elf_Word flags)
1665{
1666	vm_prot_t prot;
1667
1668	prot = 0;
1669	if (flags & PF_X)
1670		prot |= VM_PROT_EXECUTE;
1671	if (flags & PF_W)
1672		prot |= VM_PROT_WRITE;
1673	if (flags & PF_R)
1674		prot |= VM_PROT_READ;
1675#if __ELF_WORD_SIZE == 32
1676#if defined(__amd64__) || defined(__ia64__)
1677	if (i386_read_exec && (flags & PF_R))
1678		prot |= VM_PROT_EXECUTE;
1679#endif
1680#endif
1681	return (prot);
1682}
1683
1684static Elf_Word
1685__elfN(untrans_prot)(vm_prot_t prot)
1686{
1687	Elf_Word flags;
1688
1689	flags = 0;
1690	if (prot & VM_PROT_EXECUTE)
1691		flags |= PF_X;
1692	if (prot & VM_PROT_READ)
1693		flags |= PF_R;
1694	if (prot & VM_PROT_WRITE)
1695		flags |= PF_W;
1696	return (flags);
1697}
1698