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subr_kobj.c revision 1.23
      1  1.23        ad /*	$NetBSD: subr_kobj.c,v 1.23 2008/10/20 10:24:18 ad Exp $	*/
      2   1.1        ad 
      3   1.1        ad /*-
      4   1.1        ad  * Copyright (c) 2008 The NetBSD Foundation, Inc.
      5   1.1        ad  * All rights reserved.
      6   1.1        ad  *
      7   1.1        ad  * Redistribution and use in source and binary forms, with or without
      8   1.1        ad  * modification, are permitted provided that the following conditions
      9   1.1        ad  * are met:
     10   1.1        ad  * 1. Redistributions of source code must retain the above copyright
     11   1.1        ad  *    notice, this list of conditions and the following disclaimer.
     12   1.1        ad  * 2. Redistributions in binary form must reproduce the above copyright
     13   1.1        ad  *    notice, this list of conditions and the following disclaimer in the
     14   1.1        ad  *    documentation and/or other materials provided with the distribution.
     15   1.1        ad  *
     16   1.1        ad  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     17   1.1        ad  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     18   1.1        ad  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     19   1.1        ad  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     20   1.1        ad  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     21   1.1        ad  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     22   1.1        ad  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     23   1.1        ad  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     24   1.1        ad  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     25   1.1        ad  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     26   1.1        ad  * POSSIBILITY OF SUCH DAMAGE.
     27   1.1        ad  */
     28   1.1        ad 
     29   1.1        ad /*-
     30   1.1        ad  * Copyright (c) 1998-2000 Doug Rabson
     31   1.1        ad  * Copyright (c) 2004 Peter Wemm
     32   1.1        ad  * All rights reserved.
     33   1.1        ad  *
     34   1.1        ad  * Redistribution and use in source and binary forms, with or without
     35   1.1        ad  * modification, are permitted provided that the following conditions
     36   1.1        ad  * are met:
     37   1.1        ad  * 1. Redistributions of source code must retain the above copyright
     38   1.1        ad  *    notice, this list of conditions and the following disclaimer.
     39   1.1        ad  * 2. Redistributions in binary form must reproduce the above copyright
     40   1.1        ad  *    notice, this list of conditions and the following disclaimer in the
     41   1.1        ad  *    documentation and/or other materials provided with the distribution.
     42   1.1        ad  *
     43   1.1        ad  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
     44   1.1        ad  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     45   1.1        ad  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     46   1.1        ad  * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
     47   1.1        ad  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     48   1.1        ad  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     49   1.1        ad  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     50   1.1        ad  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     51   1.1        ad  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     52   1.1        ad  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     53   1.1        ad  * SUCH DAMAGE.
     54   1.1        ad  */
     55   1.1        ad 
     56   1.1        ad /*
     57   1.1        ad  * Kernel loader for ELF objects.
     58   1.1        ad  *
     59   1.1        ad  * TODO: adjust kmem_alloc() calls to avoid needless fragmentation.
     60   1.1        ad  */
     61   1.1        ad 
     62   1.5        ad #include "opt_modular.h"
     63   1.5        ad 
     64   1.1        ad #include <sys/cdefs.h>
     65  1.23        ad __KERNEL_RCSID(0, "$NetBSD: subr_kobj.c,v 1.23 2008/10/20 10:24:18 ad Exp $");
     66   1.1        ad 
     67   1.1        ad #define	ELFSIZE		ARCH_ELFSIZE
     68   1.1        ad 
     69  1.16        ad #include <sys/systm.h>
     70  1.16        ad #include <sys/kobj.h>
     71  1.16        ad #include <sys/errno.h>
     72  1.16        ad 
     73  1.16        ad #ifdef MODULAR
     74  1.16        ad 
     75   1.1        ad #include <sys/param.h>
     76   1.1        ad #include <sys/kernel.h>
     77   1.1        ad #include <sys/kmem.h>
     78   1.1        ad #include <sys/proc.h>
     79   1.1        ad #include <sys/namei.h>
     80   1.1        ad #include <sys/vnode.h>
     81   1.1        ad #include <sys/fcntl.h>
     82   1.1        ad #include <sys/ksyms.h>
     83   1.1        ad #include <sys/lkm.h>
     84   1.1        ad #include <sys/exec.h>
     85   1.1        ad #include <sys/exec_elf.h>
     86   1.1        ad 
     87   1.1        ad #include <machine/stdarg.h>
     88   1.1        ad 
     89   1.1        ad #include <uvm/uvm_extern.h>
     90   1.1        ad 
     91   1.5        ad 
     92   1.1        ad typedef struct {
     93   1.1        ad 	void		*addr;
     94   1.1        ad 	Elf_Off		size;
     95   1.1        ad 	int		flags;
     96   1.1        ad 	int		sec;		/* Original section */
     97   1.1        ad 	const char	*name;
     98   1.1        ad } progent_t;
     99   1.1        ad 
    100   1.1        ad typedef struct {
    101   1.1        ad 	Elf_Rel		*rel;
    102   1.1        ad 	int 		nrel;
    103   1.1        ad 	int 		sec;
    104   1.1        ad 	size_t		size;
    105   1.1        ad } relent_t;
    106   1.1        ad 
    107   1.1        ad typedef struct {
    108   1.1        ad 	Elf_Rela	*rela;
    109   1.1        ad 	int		nrela;
    110   1.1        ad 	int		sec;
    111   1.1        ad 	size_t		size;
    112   1.1        ad } relaent_t;
    113   1.1        ad 
    114   1.3        ad typedef enum kobjtype {
    115   1.3        ad 	KT_UNSET,
    116   1.3        ad 	KT_VNODE,
    117   1.3        ad 	KT_MEMORY
    118   1.3        ad } kobjtype_t;
    119   1.3        ad 
    120   1.1        ad struct kobj {
    121   1.1        ad 	char		ko_name[MAXLKMNAME];
    122   1.3        ad 	kobjtype_t	ko_type;
    123   1.3        ad 	void		*ko_source;
    124   1.3        ad 	ssize_t		ko_memsize;
    125   1.1        ad 	vaddr_t		ko_address;	/* Relocation address */
    126   1.1        ad 	Elf_Shdr	*ko_shdr;
    127   1.1        ad 	progent_t	*ko_progtab;
    128   1.1        ad 	relaent_t	*ko_relatab;
    129   1.1        ad 	relent_t	*ko_reltab;
    130   1.1        ad 	Elf_Sym		*ko_symtab;	/* Symbol table */
    131   1.1        ad 	char		*ko_strtab;	/* String table */
    132   1.8        ad 	char		*ko_shstrtab;	/* Section name string table */
    133   1.1        ad 	size_t		ko_size;	/* Size of text/data/bss */
    134   1.1        ad 	size_t		ko_symcnt;	/* Number of symbols */
    135   1.1        ad 	size_t		ko_strtabsz;	/* Number of bytes in string table */
    136   1.8        ad 	size_t		ko_shstrtabsz;	/* Number of bytes in scn str table */
    137   1.1        ad 	size_t		ko_shdrsz;
    138   1.1        ad 	int		ko_nrel;
    139   1.1        ad 	int		ko_nrela;
    140   1.1        ad 	int		ko_nprogtab;
    141   1.1        ad 	bool		ko_ksyms;
    142   1.3        ad 	bool		ko_loaded;
    143   1.1        ad };
    144   1.1        ad 
    145  1.18        ad static int	kobj_relocate(kobj_t, bool);
    146  1.23        ad static int	kobj_checkdup(kobj_t);
    147   1.1        ad static void	kobj_error(const char *, ...);
    148  1.12        ad static int	kobj_read(kobj_t, void **, size_t, off_t);
    149  1.12        ad static int	kobj_read_bits(kobj_t, void *, size_t, off_t);
    150  1.18        ad static void	kobj_jettison(kobj_t);
    151  1.12        ad static void	kobj_free(kobj_t, void *, size_t);
    152  1.18        ad static void	kobj_close(kobj_t);
    153  1.18        ad static int	kobj_load(kobj_t);
    154   1.1        ad 
    155   1.1        ad extern struct vm_map *lkm_map;
    156   1.1        ad 
    157   1.1        ad /*
    158  1.18        ad  * kobj_load_file:
    159   1.1        ad  *
    160  1.18        ad  *	Load an object located in the file system.
    161   1.1        ad  */
    162   1.1        ad int
    163  1.21        ad kobj_load_file(kobj_t *kop, const char *filename, const char *base,
    164  1.21        ad 	       bool autoload)
    165   1.1        ad {
    166   1.1        ad 	struct nameidata nd;
    167   1.1        ad 	kauth_cred_t cred;
    168   1.1        ad 	char *path;
    169   1.1        ad 	int error;
    170   1.1        ad 	kobj_t ko;
    171   1.1        ad 
    172   1.1        ad 	cred = kauth_cred_get();
    173   1.1        ad 
    174   1.1        ad 	ko = kmem_zalloc(sizeof(*ko), KM_SLEEP);
    175   1.1        ad 	if (ko == NULL) {
    176   1.1        ad 		return ENOMEM;
    177   1.1        ad 	}
    178   1.1        ad 
    179  1.21        ad 	if (autoload) {
    180  1.19        ad 		error = ENOENT;
    181  1.19        ad 	} else {
    182  1.19        ad 		NDINIT(&nd, LOOKUP, FOLLOW, UIO_SYSSPACE, filename);
    183  1.19        ad 		error = vn_open(&nd, FREAD, 0);
    184  1.19        ad 	}
    185   1.1        ad 	if (error != 0) {
    186   1.2        ad 		if (error != ENOENT) {
    187   1.2        ad 			goto out;
    188   1.2        ad 		}
    189   1.2        ad 		path = PNBUF_GET();
    190  1.19        ad 		snprintf(path, MAXPATHLEN - 1, "%s/%s/%s.kmod", base,
    191  1.19        ad 		    filename, filename);
    192   1.2        ad 		NDINIT(&nd, LOOKUP, FOLLOW, UIO_SYSSPACE, path);
    193   1.2        ad 		error = vn_open(&nd, FREAD, 0);
    194   1.9    rumble 		if (error != 0) {
    195   1.9    rumble 			strlcat(path, ".o", MAXPATHLEN);
    196   1.9    rumble 			NDINIT(&nd, LOOKUP, FOLLOW, UIO_SYSSPACE, path);
    197   1.9    rumble 			error = vn_open(&nd, FREAD, 0);
    198   1.9    rumble 		}
    199   1.2        ad 		PNBUF_PUT(path);
    200   1.2        ad 		if (error != 0) {
    201   1.2        ad 			goto out;
    202   1.2        ad 		}
    203   1.1        ad 	}
    204   1.1        ad 
    205   1.3        ad  out:
    206   1.3        ad  	if (error != 0) {
    207   1.3        ad 	 	kmem_free(ko, sizeof(*ko));
    208  1.18        ad 	 	return error;
    209   1.3        ad 	}
    210  1.18        ad 
    211  1.18        ad 	ko->ko_type = KT_VNODE;
    212  1.18        ad 	ko->ko_source = nd.ni_vp;
    213  1.18        ad 	*kop = ko;
    214  1.18        ad 	return kobj_load(ko);
    215   1.3        ad }
    216   1.3        ad 
    217   1.3        ad /*
    218  1.18        ad  * kobj_load_mem:
    219   1.3        ad  *
    220  1.18        ad  *	Load an object already resident in memory.  If size is not -1,
    221  1.18        ad  *	the complete size of the object is known.
    222   1.3        ad  */
    223   1.3        ad int
    224  1.18        ad kobj_load_mem(kobj_t *kop, void *base, ssize_t size)
    225   1.3        ad {
    226   1.3        ad 	kobj_t ko;
    227   1.3        ad 
    228   1.3        ad 	ko = kmem_zalloc(sizeof(*ko), KM_SLEEP);
    229   1.3        ad 	if (ko == NULL) {
    230   1.3        ad 		return ENOMEM;
    231   1.3        ad 	}
    232   1.3        ad 
    233   1.3        ad 	ko->ko_type = KT_MEMORY;
    234   1.3        ad 	ko->ko_source = base;
    235   1.3        ad 	ko->ko_memsize = size;
    236   1.3        ad 	*kop = ko;
    237  1.18        ad 	return kobj_load(ko);
    238   1.3        ad }
    239   1.3        ad 
    240   1.3        ad /*
    241   1.3        ad  * kobj_close:
    242   1.3        ad  *
    243  1.18        ad  *	Close an open ELF object.
    244   1.3        ad  */
    245  1.18        ad static void
    246   1.3        ad kobj_close(kobj_t ko)
    247   1.3        ad {
    248   1.3        ad 
    249  1.18        ad 	if (ko->ko_source == NULL) {
    250  1.18        ad 		return;
    251  1.18        ad 	}
    252   1.3        ad 
    253   1.3        ad 	switch (ko->ko_type) {
    254   1.3        ad 	case KT_VNODE:
    255   1.3        ad 		VOP_UNLOCK(ko->ko_source, 0);
    256  1.10        ad 		vn_close(ko->ko_source, FREAD, kauth_cred_get());
    257   1.3        ad 		break;
    258   1.3        ad 	case KT_MEMORY:
    259   1.3        ad 		/* nothing */
    260   1.3        ad 		break;
    261   1.3        ad 	default:
    262   1.3        ad 		panic("kobj_close: unknown type");
    263   1.3        ad 		break;
    264   1.3        ad 	}
    265   1.3        ad 
    266   1.3        ad 	ko->ko_source = NULL;
    267   1.3        ad }
    268   1.3        ad 
    269   1.3        ad /*
    270   1.3        ad  * kobj_load:
    271   1.3        ad  *
    272  1.18        ad  *	Load an ELF object and prepare to link into the running kernel
    273  1.18        ad  *	image.
    274   1.3        ad  */
    275  1.18        ad static int
    276   1.3        ad kobj_load(kobj_t ko)
    277   1.3        ad {
    278   1.3        ad 	Elf_Ehdr *hdr;
    279   1.3        ad 	Elf_Shdr *shdr;
    280   1.3        ad 	Elf_Sym *es;
    281   1.3        ad 	vaddr_t mapbase;
    282   1.3        ad 	size_t mapsize;
    283   1.3        ad 	int error;
    284   1.3        ad 	int symtabindex;
    285   1.3        ad 	int symstrindex;
    286   1.3        ad 	int nsym;
    287   1.3        ad 	int pb, rl, ra;
    288   1.3        ad 	int alignmask;
    289   1.3        ad 	int i, j;
    290  1.13        ad 	void *addr;
    291   1.3        ad 
    292   1.3        ad 	KASSERT(ko->ko_type != KT_UNSET);
    293   1.3        ad 	KASSERT(ko->ko_source != NULL);
    294   1.3        ad 
    295   1.3        ad 	shdr = NULL;
    296   1.3        ad 	mapsize = 0;
    297   1.3        ad 	error = 0;
    298   1.3        ad 	hdr = NULL;
    299   1.3        ad 
    300   1.1        ad 	/*
    301   1.1        ad 	 * Read the elf header from the file.
    302   1.1        ad 	 */
    303  1.12        ad 	error = kobj_read(ko, (void **)&hdr, sizeof(*hdr), 0);
    304   1.1        ad 	if (error != 0)
    305   1.1        ad 		goto out;
    306   1.1        ad 	if (memcmp(hdr->e_ident, ELFMAG, SELFMAG) != 0) {
    307   1.3        ad 		kobj_error("not an ELF object");
    308   1.1        ad 		error = ENOEXEC;
    309   1.1        ad 		goto out;
    310   1.1        ad 	}
    311   1.1        ad 
    312   1.1        ad 	if (hdr->e_ident[EI_VERSION] != EV_CURRENT ||
    313   1.1        ad 	    hdr->e_version != EV_CURRENT) {
    314   1.1        ad 		kobj_error("unsupported file version");
    315   1.1        ad 		error = ENOEXEC;
    316   1.1        ad 		goto out;
    317   1.1        ad 	}
    318   1.1        ad 	if (hdr->e_type != ET_REL) {
    319   1.1        ad 		kobj_error("unsupported file type");
    320   1.1        ad 		error = ENOEXEC;
    321   1.1        ad 		goto out;
    322   1.1        ad 	}
    323   1.1        ad 	switch (hdr->e_machine) {
    324   1.1        ad #if ELFSIZE == 32
    325   1.1        ad 	ELF32_MACHDEP_ID_CASES
    326   1.1        ad #else
    327   1.1        ad 	ELF64_MACHDEP_ID_CASES
    328   1.1        ad #endif
    329   1.1        ad 	default:
    330   1.1        ad 		kobj_error("unsupported machine");
    331   1.1        ad 		error = ENOEXEC;
    332   1.1        ad 		goto out;
    333   1.1        ad 	}
    334   1.1        ad 
    335   1.1        ad 	ko->ko_nprogtab = 0;
    336   1.1        ad 	ko->ko_shdr = 0;
    337   1.1        ad 	ko->ko_nrel = 0;
    338   1.1        ad 	ko->ko_nrela = 0;
    339   1.1        ad 
    340   1.1        ad 	/*
    341   1.1        ad 	 * Allocate and read in the section header.
    342   1.1        ad 	 */
    343   1.1        ad 	ko->ko_shdrsz = hdr->e_shnum * hdr->e_shentsize;
    344   1.1        ad 	if (ko->ko_shdrsz == 0 || hdr->e_shoff == 0 ||
    345   1.1        ad 	    hdr->e_shentsize != sizeof(Elf_Shdr)) {
    346   1.1        ad 		error = ENOEXEC;
    347   1.1        ad 		goto out;
    348   1.1        ad 	}
    349  1.12        ad 	error = kobj_read(ko, (void **)&shdr, ko->ko_shdrsz, hdr->e_shoff);
    350  1.12        ad 	if (error != 0) {
    351   1.1        ad 		goto out;
    352   1.1        ad 	}
    353   1.1        ad 	ko->ko_shdr = shdr;
    354   1.1        ad 
    355   1.1        ad 	/*
    356   1.1        ad 	 * Scan the section header for information and table sizing.
    357   1.1        ad 	 */
    358   1.1        ad 	nsym = 0;
    359   1.1        ad 	symtabindex = -1;
    360   1.1        ad 	symstrindex = -1;
    361   1.1        ad 	for (i = 0; i < hdr->e_shnum; i++) {
    362   1.1        ad 		switch (shdr[i].sh_type) {
    363   1.1        ad 		case SHT_PROGBITS:
    364   1.1        ad 		case SHT_NOBITS:
    365   1.1        ad 			ko->ko_nprogtab++;
    366   1.1        ad 			break;
    367   1.1        ad 		case SHT_SYMTAB:
    368   1.1        ad 			nsym++;
    369   1.1        ad 			symtabindex = i;
    370   1.1        ad 			symstrindex = shdr[i].sh_link;
    371   1.1        ad 			break;
    372   1.1        ad 		case SHT_REL:
    373   1.1        ad 			ko->ko_nrel++;
    374   1.1        ad 			break;
    375   1.1        ad 		case SHT_RELA:
    376   1.1        ad 			ko->ko_nrela++;
    377   1.1        ad 			break;
    378   1.1        ad 		case SHT_STRTAB:
    379   1.1        ad 			break;
    380   1.1        ad 		}
    381   1.1        ad 	}
    382   1.1        ad 	if (ko->ko_nprogtab == 0) {
    383   1.1        ad 		kobj_error("file has no contents");
    384   1.1        ad 		error = ENOEXEC;
    385   1.1        ad 		goto out;
    386   1.1        ad 	}
    387   1.1        ad 	if (nsym != 1) {
    388   1.1        ad 		/* Only allow one symbol table for now */
    389   1.1        ad 		kobj_error("file has no valid symbol table");
    390   1.1        ad 		error = ENOEXEC;
    391   1.1        ad 		goto out;
    392   1.1        ad 	}
    393   1.1        ad 	if (symstrindex < 0 || symstrindex > hdr->e_shnum ||
    394   1.1        ad 	    shdr[symstrindex].sh_type != SHT_STRTAB) {
    395   1.1        ad 		kobj_error("file has invalid symbol strings");
    396   1.1        ad 		error = ENOEXEC;
    397   1.1        ad 		goto out;
    398   1.1        ad 	}
    399   1.1        ad 
    400   1.1        ad 	/*
    401   1.1        ad 	 * Allocate space for tracking the load chunks.
    402   1.1        ad 	 */
    403   1.1        ad 	if (ko->ko_nprogtab != 0) {
    404   1.1        ad 		ko->ko_progtab = kmem_zalloc(ko->ko_nprogtab *
    405   1.1        ad 		    sizeof(*ko->ko_progtab), KM_SLEEP);
    406   1.1        ad 		if (ko->ko_progtab == NULL) {
    407   1.1        ad 			error = ENOMEM;
    408   1.1        ad 			goto out;
    409   1.1        ad 		}
    410   1.1        ad 	}
    411   1.1        ad 	if (ko->ko_nrel != 0) {
    412   1.1        ad 		ko->ko_reltab = kmem_zalloc(ko->ko_nrel *
    413   1.1        ad 		    sizeof(*ko->ko_reltab), KM_SLEEP);
    414   1.1        ad 		if (ko->ko_reltab == NULL) {
    415   1.1        ad 			error = ENOMEM;
    416   1.1        ad 			goto out;
    417   1.1        ad 		}
    418   1.1        ad 	}
    419   1.1        ad 	if (ko->ko_nrela != 0) {
    420   1.1        ad 		ko->ko_relatab = kmem_zalloc(ko->ko_nrela *
    421   1.1        ad 		    sizeof(*ko->ko_relatab), KM_SLEEP);
    422   1.1        ad 		if (ko->ko_relatab == NULL) {
    423   1.1        ad 			error = ENOMEM;
    424   1.1        ad 			goto out;
    425   1.1        ad 		}
    426   1.1        ad 	}
    427   1.1        ad 	if (symtabindex == -1) {
    428   1.1        ad 		kobj_error("lost symbol table index");
    429   1.1        ad 		goto out;
    430   1.1        ad 	}
    431   1.1        ad 
    432   1.1        ad 	/*
    433   1.1        ad 	 * Allocate space for and load the symbol table.
    434   1.1        ad 	 */
    435   1.1        ad 	ko->ko_symcnt = shdr[symtabindex].sh_size / sizeof(Elf_Sym);
    436   1.1        ad 	if (ko->ko_symcnt == 0) {
    437   1.1        ad 		kobj_error("no symbol table");
    438   1.1        ad 		goto out;
    439   1.1        ad 	}
    440  1.12        ad 	error = kobj_read(ko, (void **)&ko->ko_symtab,
    441  1.12        ad 	    ko->ko_symcnt * sizeof(Elf_Sym),
    442   1.1        ad 	    shdr[symtabindex].sh_offset);
    443   1.1        ad 	if (error != 0) {
    444   1.1        ad 		goto out;
    445   1.1        ad 	}
    446   1.1        ad 
    447   1.1        ad 	/*
    448   1.1        ad 	 * Allocate space for and load the symbol strings.
    449   1.1        ad 	 */
    450   1.1        ad 	ko->ko_strtabsz = shdr[symstrindex].sh_size;
    451   1.1        ad 	if (ko->ko_strtabsz == 0) {
    452   1.1        ad 		kobj_error("no symbol strings");
    453   1.1        ad 		goto out;
    454   1.1        ad 	}
    455  1.12        ad 	error = kobj_read(ko, (void *)&ko->ko_strtab, ko->ko_strtabsz,
    456   1.1        ad 	    shdr[symstrindex].sh_offset);
    457   1.1        ad 	if (error != 0) {
    458   1.1        ad 		goto out;
    459   1.1        ad 	}
    460   1.1        ad 
    461   1.1        ad 	/*
    462   1.8        ad 	 * Do we have a string table for the section names?
    463   1.8        ad 	 */
    464   1.8        ad 	if (hdr->e_shstrndx != 0 && shdr[hdr->e_shstrndx].sh_size != 0 &&
    465   1.8        ad 	    shdr[hdr->e_shstrndx].sh_type == SHT_STRTAB) {
    466   1.8        ad 		ko->ko_shstrtabsz = shdr[hdr->e_shstrndx].sh_size;
    467  1.12        ad 		error = kobj_read(ko, (void *)&ko->ko_shstrtab,
    468   1.8        ad 		    shdr[hdr->e_shstrndx].sh_size,
    469   1.8        ad 		    shdr[hdr->e_shstrndx].sh_offset);
    470   1.8        ad 		if (error != 0) {
    471   1.8        ad 			goto out;
    472   1.8        ad 		}
    473   1.8        ad 	}
    474   1.8        ad 
    475   1.8        ad 	/*
    476   1.1        ad 	 * Size up code/data(progbits) and bss(nobits).
    477   1.1        ad 	 */
    478   1.1        ad 	alignmask = 0;
    479  1.12        ad 	mapbase = 0;
    480   1.1        ad 	for (i = 0; i < hdr->e_shnum; i++) {
    481   1.1        ad 		switch (shdr[i].sh_type) {
    482   1.1        ad 		case SHT_PROGBITS:
    483   1.1        ad 		case SHT_NOBITS:
    484  1.12        ad 			if (mapbase == 0)
    485  1.12        ad 				mapbase = shdr[i].sh_offset;
    486   1.1        ad 			alignmask = shdr[i].sh_addralign - 1;
    487   1.1        ad 			mapsize += alignmask;
    488   1.1        ad 			mapsize &= ~alignmask;
    489   1.1        ad 			mapsize += shdr[i].sh_size;
    490   1.1        ad 			break;
    491   1.1        ad 		}
    492   1.1        ad 	}
    493   1.1        ad 
    494   1.1        ad 	/*
    495   1.1        ad 	 * We know how much space we need for the text/data/bss/etc.
    496   1.1        ad 	 * This stuff needs to be in a single chunk so that profiling etc
    497   1.1        ad 	 * can get the bounds and gdb can associate offsets with modules.
    498   1.1        ad 	 */
    499   1.1        ad 	if (mapsize == 0) {
    500   1.1        ad 		kobj_error("no text/data/bss");
    501   1.1        ad 		goto out;
    502   1.1        ad 	}
    503  1.12        ad 	if (ko->ko_type == KT_MEMORY) {
    504  1.12        ad 		mapbase += (vaddr_t)ko->ko_source;
    505  1.12        ad 	} else {
    506  1.13        ad 		mapbase = uvm_km_alloc(lkm_map, round_page(mapsize),
    507  1.13        ad 		    0, UVM_KMF_WIRED | UVM_KMF_EXEC);
    508  1.12        ad 		if (mapbase == 0) {
    509  1.12        ad 			error = ENOMEM;
    510  1.12        ad 			goto out;
    511  1.12        ad 		}
    512   1.1        ad 	}
    513   1.1        ad 	ko->ko_address = mapbase;
    514   1.1        ad 	ko->ko_size = mapsize;
    515   1.1        ad 
    516   1.1        ad 	/*
    517   1.1        ad 	 * Now load code/data(progbits), zero bss(nobits), allocate space
    518   1.1        ad 	 * for and load relocs
    519   1.1        ad 	 */
    520   1.1        ad 	pb = 0;
    521   1.1        ad 	rl = 0;
    522   1.1        ad 	ra = 0;
    523   1.1        ad 	alignmask = 0;
    524   1.1        ad 	for (i = 0; i < hdr->e_shnum; i++) {
    525   1.1        ad 		switch (shdr[i].sh_type) {
    526   1.1        ad 		case SHT_PROGBITS:
    527   1.1        ad 		case SHT_NOBITS:
    528   1.1        ad 			alignmask = shdr[i].sh_addralign - 1;
    529  1.13        ad 			if (ko->ko_type == KT_MEMORY) {
    530  1.13        ad 				addr = (void *)(shdr[i].sh_offset +
    531  1.13        ad 				    (vaddr_t)ko->ko_source);
    532  1.13        ad 				if (((vaddr_t)addr & alignmask) != 0) {
    533  1.13        ad 					kobj_error("section %d not aligned\n",
    534  1.13        ad 					    i);
    535  1.13        ad 					goto out;
    536  1.13        ad 				}
    537  1.13        ad 			} else {
    538  1.13        ad 				mapbase += alignmask;
    539  1.13        ad 				mapbase &= ~alignmask;
    540  1.13        ad 				addr = (void *)mapbase;
    541  1.13        ad 				mapbase += shdr[i].sh_size;
    542  1.13        ad 			}
    543  1.13        ad 			ko->ko_progtab[pb].addr = addr;
    544   1.1        ad 			if (shdr[i].sh_type == SHT_PROGBITS) {
    545   1.1        ad 				ko->ko_progtab[pb].name = "<<PROGBITS>>";
    546  1.13        ad 				error = kobj_read_bits(ko, addr,
    547  1.13        ad 				    shdr[i].sh_size, shdr[i].sh_offset);
    548   1.1        ad 				if (error != 0) {
    549   1.1        ad 					goto out;
    550   1.1        ad 				}
    551  1.13        ad 			} else if (ko->ko_type == KT_MEMORY &&
    552  1.13        ad 			    shdr[i].sh_size != 0) {
    553  1.13        ad 			    	kobj_error("non-loadable BSS section in "
    554  1.13        ad 			    	    "pre-loaded module");
    555  1.17  jmcneill 				error = EINVAL;
    556  1.13        ad 			    	goto out;
    557   1.1        ad 			} else {
    558   1.1        ad 				ko->ko_progtab[pb].name = "<<NOBITS>>";
    559  1.13        ad 				memset(addr, 0, shdr[i].sh_size);
    560   1.1        ad 			}
    561   1.1        ad 			ko->ko_progtab[pb].size = shdr[i].sh_size;
    562   1.1        ad 			ko->ko_progtab[pb].sec = i;
    563   1.8        ad 			if (ko->ko_shstrtab != NULL && shdr[i].sh_name != 0) {
    564   1.8        ad 				ko->ko_progtab[pb].name =
    565   1.8        ad 				    ko->ko_shstrtab + shdr[i].sh_name;
    566   1.8        ad 			}
    567   1.1        ad 
    568   1.1        ad 			/* Update all symbol values with the offset. */
    569   1.1        ad 			for (j = 0; j < ko->ko_symcnt; j++) {
    570   1.1        ad 				es = &ko->ko_symtab[j];
    571   1.1        ad 				if (es->st_shndx != i) {
    572   1.1        ad 					continue;
    573   1.1        ad 				}
    574  1.13        ad 				es->st_value += (Elf_Addr)addr;
    575   1.1        ad 			}
    576   1.1        ad 			pb++;
    577   1.1        ad 			break;
    578   1.1        ad 		case SHT_REL:
    579   1.1        ad 			ko->ko_reltab[rl].size = shdr[i].sh_size;
    580   1.1        ad 			ko->ko_reltab[rl].size -=
    581   1.1        ad 			    shdr[i].sh_size % sizeof(Elf_Rel);
    582   1.1        ad 			if (ko->ko_reltab[rl].size != 0) {
    583   1.1        ad 				ko->ko_reltab[rl].nrel =
    584   1.1        ad 				    shdr[i].sh_size / sizeof(Elf_Rel);
    585   1.1        ad 				ko->ko_reltab[rl].sec = shdr[i].sh_info;
    586   1.3        ad 				error = kobj_read(ko,
    587  1.12        ad 				    (void **)&ko->ko_reltab[rl].rel,
    588   1.1        ad 				    ko->ko_reltab[rl].size,
    589   1.1        ad 				    shdr[i].sh_offset);
    590   1.1        ad 				if (error != 0) {
    591   1.1        ad 					goto out;
    592   1.1        ad 				}
    593   1.1        ad 			}
    594   1.1        ad 			rl++;
    595   1.1        ad 			break;
    596   1.1        ad 		case SHT_RELA:
    597   1.1        ad 			ko->ko_relatab[ra].size = shdr[i].sh_size;
    598   1.1        ad 			ko->ko_relatab[ra].size -=
    599   1.1        ad 			    shdr[i].sh_size % sizeof(Elf_Rela);
    600   1.1        ad 			if (ko->ko_relatab[ra].size != 0) {
    601   1.1        ad 				ko->ko_relatab[ra].nrela =
    602   1.1        ad 				    shdr[i].sh_size / sizeof(Elf_Rela);
    603   1.1        ad 				ko->ko_relatab[ra].sec = shdr[i].sh_info;
    604   1.3        ad 				error = kobj_read(ko,
    605  1.12        ad 				    (void **)&ko->ko_relatab[ra].rela,
    606   1.1        ad 				    shdr[i].sh_size,
    607   1.1        ad 				    shdr[i].sh_offset);
    608   1.1        ad 				if (error != 0) {
    609   1.1        ad 					goto out;
    610   1.1        ad 				}
    611   1.1        ad 			}
    612   1.1        ad 			ra++;
    613   1.1        ad 			break;
    614  1.13        ad 		default:
    615  1.13        ad 			break;
    616   1.1        ad 		}
    617   1.1        ad 	}
    618   1.1        ad 	if (pb != ko->ko_nprogtab) {
    619   1.1        ad 		panic("lost progbits");
    620   1.1        ad 	}
    621   1.1        ad 	if (rl != ko->ko_nrel) {
    622   1.1        ad 		panic("lost rel");
    623   1.1        ad 	}
    624   1.1        ad 	if (ra != ko->ko_nrela) {
    625   1.1        ad 		panic("lost rela");
    626   1.1        ad 	}
    627  1.13        ad 	if (ko->ko_type != KT_MEMORY && mapbase != ko->ko_address + mapsize) {
    628  1.13        ad 		panic("mapbase 0x%lx != address %lx + mapsize %ld (0x%lx)\n",
    629   1.1        ad 		    (long)mapbase, (long)ko->ko_address, (long)mapsize,
    630   1.1        ad 		    (long)ko->ko_address + mapsize);
    631   1.1        ad 	}
    632   1.1        ad 
    633   1.1        ad 	/*
    634  1.18        ad 	 * Perform local relocations only.  Relocations relating to global
    635  1.18        ad 	 * symbols will be done by kobj_affix().
    636   1.1        ad 	 */
    637  1.23        ad 	error = kobj_checkdup(ko);
    638  1.23        ad 	if (error == 0) {
    639  1.23        ad 		error = kobj_relocate(ko, true);
    640  1.23        ad 	}
    641   1.1        ad  out:
    642   1.3        ad 	if (hdr != NULL) {
    643  1.12        ad 		kobj_free(ko, hdr, sizeof(*hdr));
    644   1.1        ad 	}
    645  1.18        ad 	kobj_close(ko);
    646  1.18        ad 	if (error != 0) {
    647  1.18        ad 		kobj_unload(ko);
    648  1.18        ad 	}
    649   1.1        ad 
    650   1.1        ad 	return error;
    651   1.1        ad }
    652   1.1        ad 
    653   1.1        ad /*
    654   1.1        ad  * kobj_unload:
    655   1.1        ad  *
    656   1.1        ad  *	Unload an object previously loaded by kobj_load().
    657   1.1        ad  */
    658   1.1        ad void
    659   1.1        ad kobj_unload(kobj_t ko)
    660   1.1        ad {
    661   1.1        ad 	int error;
    662   1.1        ad 
    663  1.18        ad 	kobj_close(ko);
    664  1.18        ad 	kobj_jettison(ko);
    665  1.18        ad 
    666  1.18        ad 	/*
    667  1.18        ad 	 * Notify MD code that a module has been unloaded.
    668  1.18        ad 	 */
    669  1.18        ad 	if (ko->ko_loaded) {
    670  1.18        ad 		error = kobj_machdep(ko, (void *)ko->ko_address, ko->ko_size,
    671  1.18        ad 		    false);
    672  1.18        ad 		if (error != 0) {
    673  1.18        ad 			kobj_error("machine dependent deinit failed");
    674  1.18        ad 		}
    675  1.18        ad 	}
    676  1.12        ad 	if (ko->ko_address != 0 && ko->ko_type != KT_MEMORY) {
    677   1.1        ad 		uvm_km_free(lkm_map, ko->ko_address, round_page(ko->ko_size),
    678   1.1        ad 		    UVM_KMF_WIRED);
    679   1.1        ad 	}
    680   1.1        ad 	if (ko->ko_ksyms == true) {
    681  1.23        ad 		ksyms_modunload(ko->ko_name);
    682   1.1        ad 	}
    683   1.1        ad 	if (ko->ko_symtab != NULL) {
    684  1.12        ad 		kobj_free(ko, ko->ko_symtab, ko->ko_symcnt * sizeof(Elf_Sym));
    685   1.1        ad 	}
    686   1.1        ad 	if (ko->ko_strtab != NULL) {
    687  1.12        ad 		kobj_free(ko, ko->ko_strtab, ko->ko_strtabsz);
    688   1.1        ad 	}
    689  1.14        ad 	if (ko->ko_progtab != NULL) {
    690  1.14        ad 		kobj_free(ko, ko->ko_progtab, ko->ko_nprogtab *
    691  1.14        ad 		    sizeof(*ko->ko_progtab));
    692  1.14        ad 		ko->ko_progtab = NULL;
    693  1.14        ad 	}
    694  1.14        ad 	if (ko->ko_shstrtab) {
    695  1.14        ad 		kobj_free(ko, ko->ko_shstrtab, ko->ko_shstrtabsz);
    696  1.14        ad 		ko->ko_shstrtab = NULL;
    697  1.14        ad 	}
    698   1.1        ad 
    699   1.3        ad 	kmem_free(ko, sizeof(*ko));
    700   1.1        ad }
    701   1.1        ad 
    702   1.1        ad /*
    703   1.2        ad  * kobj_stat:
    704   1.2        ad  *
    705   1.2        ad  *	Return size and load address of an object.
    706   1.2        ad  */
    707   1.2        ad void
    708   1.8        ad kobj_stat(kobj_t ko, vaddr_t *address, size_t *size)
    709   1.2        ad {
    710   1.2        ad 
    711   1.2        ad 	if (address != NULL) {
    712   1.2        ad 		*address = ko->ko_address;
    713   1.2        ad 	}
    714   1.2        ad 	if (size != NULL) {
    715   1.2        ad 		*size = ko->ko_size;
    716   1.2        ad 	}
    717   1.2        ad }
    718   1.2        ad 
    719   1.2        ad /*
    720  1.18        ad  * kobj_affix:
    721   1.3        ad  *
    722  1.18        ad  *	Set an object's name and perform global relocs.  May only be
    723  1.18        ad  *	called after the module and any requisite modules are loaded.
    724   1.3        ad  */
    725   1.6        ad int
    726  1.18        ad kobj_affix(kobj_t ko, const char *name)
    727   1.3        ad {
    728   1.6        ad 	int error;
    729   1.3        ad 
    730  1.18        ad 	KASSERT(ko->ko_ksyms == false);
    731  1.18        ad 	KASSERT(ko->ko_loaded == false);
    732   1.3        ad 
    733   1.3        ad 	strlcpy(ko->ko_name, name, sizeof(ko->ko_name));
    734   1.6        ad 
    735  1.23        ad 	/* Now do global relocations. */
    736  1.23        ad 	error = kobj_relocate(ko, false);
    737  1.23        ad 
    738  1.23        ad 	/*
    739  1.23        ad 	 * Now that we know the name, register the symbol table.
    740  1.23        ad 	 * Do after global relocations because ksyms will pack it.
    741  1.23        ad 	 */
    742  1.23        ad 	ksyms_modload(ko->ko_name, ko->ko_symtab, ko->ko_symcnt *
    743   1.6        ad 	    sizeof(Elf_Sym), ko->ko_strtab, ko->ko_strtabsz);
    744  1.23        ad 	ko->ko_ksyms = true;
    745  1.18        ad 
    746  1.18        ad 	/* Jettison unneeded memory post-link. */
    747  1.18        ad 	kobj_jettison(ko);
    748  1.18        ad 
    749  1.18        ad 	/* Notify MD code that a module has been loaded. */
    750  1.18        ad 	if (error == 0) {
    751  1.18        ad 		error = kobj_machdep(ko, (void *)ko->ko_address, ko->ko_size,
    752  1.18        ad 		    true);
    753  1.18        ad 		if (error != 0) {
    754  1.18        ad 			kobj_error("machine dependent init failed");
    755  1.18        ad 		}
    756  1.18        ad 		ko->ko_loaded = true;
    757  1.18        ad 	}
    758  1.18        ad 
    759  1.18        ad 	/* If there was an error, destroy the whole object. */
    760  1.18        ad 	if (error != 0) {
    761  1.18        ad 		kobj_unload(ko);
    762   1.6        ad 	}
    763   1.6        ad 
    764   1.6        ad 	return error;
    765   1.3        ad }
    766   1.3        ad 
    767   1.3        ad /*
    768   1.8        ad  * kobj_find_section:
    769   1.8        ad  *
    770   1.8        ad  *	Given a section name, search the loaded object and return
    771   1.8        ad  *	virtual address if present and loaded.
    772   1.8        ad  */
    773   1.8        ad int
    774   1.8        ad kobj_find_section(kobj_t ko, const char *name, void **addr, size_t *size)
    775   1.8        ad {
    776   1.8        ad 	int i;
    777   1.8        ad 
    778   1.8        ad 	KASSERT(ko->ko_progtab != NULL);
    779   1.8        ad 
    780   1.8        ad 	for (i = 0; i < ko->ko_nprogtab; i++) {
    781   1.8        ad 		if (strcmp(ko->ko_progtab[i].name, name) == 0) {
    782   1.8        ad 			if (addr != NULL) {
    783   1.8        ad 				*addr = ko->ko_progtab[i].addr;
    784   1.8        ad 			}
    785   1.8        ad 			if (size != NULL) {
    786   1.8        ad 				*size = ko->ko_progtab[i].size;
    787   1.8        ad 			}
    788   1.8        ad 			return 0;
    789   1.8        ad 		}
    790   1.8        ad 	}
    791   1.8        ad 
    792   1.8        ad 	return ENOENT;
    793   1.8        ad }
    794   1.8        ad 
    795   1.8        ad /*
    796  1.18        ad  * kobj_jettison:
    797   1.1        ad  *
    798  1.18        ad  *	Release object data not needed after performing relocations.
    799   1.1        ad  */
    800   1.1        ad static void
    801  1.18        ad kobj_jettison(kobj_t ko)
    802   1.1        ad {
    803   1.1        ad 	int i;
    804   1.1        ad 
    805   1.1        ad 	for (i = 0; i < ko->ko_nrel; i++) {
    806   1.1        ad 		if (ko->ko_reltab[i].rel) {
    807  1.12        ad 			kobj_free(ko, ko->ko_reltab[i].rel,
    808   1.1        ad 			    ko->ko_reltab[i].size);
    809   1.1        ad 		}
    810   1.1        ad 	}
    811   1.1        ad 	for (i = 0; i < ko->ko_nrela; i++) {
    812   1.1        ad 		if (ko->ko_relatab[i].rela) {
    813  1.12        ad 			kobj_free(ko, ko->ko_relatab[i].rela,
    814   1.1        ad 			    ko->ko_relatab[i].size);
    815   1.1        ad 		}
    816   1.1        ad 	}
    817   1.1        ad 	if (ko->ko_reltab != NULL) {
    818  1.12        ad 		kobj_free(ko, ko->ko_reltab, ko->ko_nrel *
    819   1.1        ad 		    sizeof(*ko->ko_reltab));
    820   1.1        ad 		ko->ko_reltab = NULL;
    821   1.1        ad 		ko->ko_nrel = 0;
    822   1.1        ad 	}
    823   1.1        ad 	if (ko->ko_relatab != NULL) {
    824  1.12        ad 		kobj_free(ko, ko->ko_relatab, ko->ko_nrela *
    825   1.1        ad 		    sizeof(*ko->ko_relatab));
    826   1.1        ad 		ko->ko_relatab = NULL;
    827   1.1        ad 		ko->ko_nrela = 0;
    828   1.1        ad 	}
    829   1.1        ad 	if (ko->ko_shdr != NULL) {
    830  1.12        ad 		kobj_free(ko, ko->ko_shdr, ko->ko_shdrsz);
    831   1.1        ad 		ko->ko_shdr = NULL;
    832   1.1        ad 	}
    833   1.1        ad }
    834   1.1        ad 
    835   1.1        ad /*
    836   1.1        ad  * kobj_sym_lookup:
    837   1.1        ad  *
    838   1.1        ad  *	Symbol lookup function to be used when the symbol index
    839   1.1        ad  *	is known (ie during relocation).
    840   1.1        ad  */
    841   1.1        ad uintptr_t
    842   1.1        ad kobj_sym_lookup(kobj_t ko, uintptr_t symidx)
    843   1.1        ad {
    844   1.1        ad 	const Elf_Sym *sym;
    845   1.1        ad 	const char *symbol;
    846   1.1        ad 	int error;
    847   1.1        ad 	u_long addr;
    848   1.1        ad 
    849   1.1        ad 	/* Don't even try to lookup the symbol if the index is bogus. */
    850   1.1        ad 	if (symidx >= ko->ko_symcnt)
    851   1.1        ad 		return 0;
    852   1.1        ad 
    853   1.1        ad 	sym = ko->ko_symtab + symidx;
    854   1.1        ad 
    855   1.1        ad 	/* Quick answer if there is a definition included. */
    856   1.1        ad 	if (sym->st_shndx != SHN_UNDEF) {
    857   1.1        ad 		return sym->st_value;
    858   1.1        ad 	}
    859   1.1        ad 
    860   1.1        ad 	/* If we get here, then it is undefined and needs a lookup. */
    861   1.1        ad 	switch (ELF_ST_BIND(sym->st_info)) {
    862   1.1        ad 	case STB_LOCAL:
    863   1.1        ad 		/* Local, but undefined? huh? */
    864   1.1        ad 		kobj_error("local symbol undefined");
    865   1.1        ad 		return 0;
    866   1.1        ad 
    867   1.1        ad 	case STB_GLOBAL:
    868   1.1        ad 		/* Relative to Data or Function name */
    869   1.1        ad 		symbol = ko->ko_strtab + sym->st_name;
    870   1.1        ad 
    871   1.1        ad 		/* Force a lookup failure if the symbol name is bogus. */
    872   1.1        ad 		if (*symbol == 0) {
    873   1.1        ad 			kobj_error("bad symbol name");
    874   1.1        ad 			return 0;
    875   1.1        ad 		}
    876   1.1        ad 
    877  1.23        ad 		/*
    878  1.23        ad 		 * Don't need to lock, as it is known that the symbol
    879  1.23        ad 		 * tables aren't going to change (we hold module_lock).
    880  1.23        ad 		 */
    881   1.1        ad 		error = ksyms_getval(NULL, symbol, &addr, KSYMS_ANY);
    882   1.1        ad 		if (error != 0) {
    883  1.18        ad 			kobj_error("symbol `%s' not found", symbol);
    884   1.1        ad 			return (uintptr_t)0;
    885   1.1        ad 		}
    886   1.1        ad 		return (uintptr_t)addr;
    887   1.1        ad 
    888   1.1        ad 	case STB_WEAK:
    889   1.1        ad 		kobj_error("weak symbols not supported\n");
    890   1.1        ad 		return 0;
    891   1.1        ad 
    892   1.1        ad 	default:
    893   1.1        ad 		return 0;
    894   1.1        ad 	}
    895   1.1        ad }
    896   1.1        ad 
    897   1.1        ad /*
    898   1.1        ad  * kobj_findbase:
    899   1.1        ad  *
    900   1.1        ad  *	Return base address of the given section.
    901   1.1        ad  */
    902   1.1        ad static uintptr_t
    903   1.1        ad kobj_findbase(kobj_t ko, int sec)
    904   1.1        ad {
    905   1.1        ad 	int i;
    906   1.1        ad 
    907   1.1        ad 	for (i = 0; i < ko->ko_nprogtab; i++) {
    908   1.1        ad 		if (sec == ko->ko_progtab[i].sec) {
    909   1.1        ad 			return (uintptr_t)ko->ko_progtab[i].addr;
    910   1.1        ad 		}
    911   1.1        ad 	}
    912   1.1        ad 	return 0;
    913   1.1        ad }
    914   1.1        ad 
    915   1.1        ad /*
    916  1.23        ad  * kobj_checkdup:
    917  1.23        ad  *
    918  1.23        ad  *	Scan symbol table for duplicates.
    919  1.23        ad  */
    920  1.23        ad static int
    921  1.23        ad kobj_checkdup(kobj_t ko)
    922  1.23        ad {
    923  1.23        ad 	unsigned long rval;
    924  1.23        ad 	Elf_Sym *sym, *ms;
    925  1.23        ad 	const char *name;
    926  1.23        ad 	bool dup;
    927  1.23        ad 
    928  1.23        ad 	dup = false;
    929  1.23        ad 	for (ms = (sym = ko->ko_symtab) + ko->ko_symcnt; sym < ms; sym++) {
    930  1.23        ad 		/* Check validity of the symbol. */
    931  1.23        ad 		if (ELF_ST_BIND(sym->st_info) != STB_GLOBAL ||
    932  1.23        ad 		    sym->st_name == 0)
    933  1.23        ad 			continue;
    934  1.23        ad 
    935  1.23        ad 		/* Check if the symbol already exists */
    936  1.23        ad 		name = ko->ko_strtab + sym->st_name;
    937  1.23        ad 		if (ksyms_getval(NULL, name, &rval, KSYMS_EXTERN) != 0) {
    938  1.23        ad 			continue;
    939  1.23        ad 		}
    940  1.23        ad 
    941  1.23        ad 		/* Check (and complain) about differing values */
    942  1.23        ad 		if (sym->st_value == rval || sym->st_shndx == SHN_UNDEF) {
    943  1.23        ad 			continue;
    944  1.23        ad 		}
    945  1.23        ad 		if (strcmp(name, "_bss_start") == 0 ||
    946  1.23        ad 		    strcmp(name, "__bss_start") == 0 ||
    947  1.23        ad 		    strcmp(name, "_bss_end__") == 0 ||
    948  1.23        ad 		    strcmp(name, "__bss_end__") == 0 ||
    949  1.23        ad 		    strcmp(name, "_edata") == 0 ||
    950  1.23        ad 		    strcmp(name, "_end") == 0 ||
    951  1.23        ad 		    strcmp(name, "__end") == 0 ||
    952  1.23        ad 		    strcmp(name, "__end__") == 0 ||
    953  1.23        ad 		    strncmp(name, "__start_link_set_", 17) == 0 ||
    954  1.23        ad 		    strncmp(name, "__stop_link_set_", 16)) {
    955  1.23        ad 		    	continue;
    956  1.23        ad 		}
    957  1.23        ad 		kobj_error("symbol `%s' redeclared\n", name);
    958  1.23        ad 		dup = true;
    959  1.23        ad 	}
    960  1.23        ad 
    961  1.23        ad 	return dup ? EEXIST : 0;
    962  1.23        ad }
    963  1.23        ad 
    964  1.23        ad /*
    965   1.1        ad  * kobj_relocate:
    966   1.1        ad  *
    967  1.18        ad  *	Resolve relocations for the loaded object.
    968   1.1        ad  */
    969   1.1        ad static int
    970  1.18        ad kobj_relocate(kobj_t ko, bool local)
    971   1.1        ad {
    972   1.1        ad 	const Elf_Rel *rellim;
    973   1.1        ad 	const Elf_Rel *rel;
    974   1.1        ad 	const Elf_Rela *relalim;
    975   1.1        ad 	const Elf_Rela *rela;
    976   1.1        ad 	const Elf_Sym *sym;
    977   1.1        ad 	uintptr_t base;
    978   1.8        ad 	int i, error;
    979   1.1        ad 	uintptr_t symidx;
    980   1.1        ad 
    981   1.1        ad 	/*
    982   1.1        ad 	 * Perform relocations without addend if there are any.
    983   1.1        ad 	 */
    984   1.1        ad 	for (i = 0; i < ko->ko_nrel; i++) {
    985   1.1        ad 		rel = ko->ko_reltab[i].rel;
    986   1.1        ad 		if (rel == NULL) {
    987   1.1        ad 			continue;
    988   1.1        ad 		}
    989   1.1        ad 		rellim = rel + ko->ko_reltab[i].nrel;
    990   1.1        ad 		base = kobj_findbase(ko, ko->ko_reltab[i].sec);
    991   1.1        ad 		if (base == 0) {
    992   1.1        ad 			panic("lost base for e_reltab");
    993   1.1        ad 		}
    994   1.1        ad 		for (; rel < rellim; rel++) {
    995   1.1        ad 			symidx = ELF_R_SYM(rel->r_info);
    996   1.1        ad 			if (symidx >= ko->ko_symcnt) {
    997   1.1        ad 				continue;
    998   1.1        ad 			}
    999   1.1        ad 			sym = ko->ko_symtab + symidx;
   1000  1.18        ad 			if (local != (ELF_ST_BIND(sym->st_info) == STB_LOCAL)) {
   1001  1.18        ad 				continue;
   1002  1.18        ad 			}
   1003  1.18        ad 			error = kobj_reloc(ko, base, rel, false, local);
   1004   1.8        ad 			if (error != 0) {
   1005   1.1        ad 				return ENOENT;
   1006   1.1        ad 			}
   1007   1.1        ad 		}
   1008   1.1        ad 	}
   1009   1.1        ad 
   1010   1.1        ad 	/*
   1011   1.1        ad 	 * Perform relocations with addend if there are any.
   1012   1.1        ad 	 */
   1013   1.1        ad 	for (i = 0; i < ko->ko_nrela; i++) {
   1014   1.1        ad 		rela = ko->ko_relatab[i].rela;
   1015   1.1        ad 		if (rela == NULL) {
   1016   1.1        ad 			continue;
   1017   1.1        ad 		}
   1018   1.1        ad 		relalim = rela + ko->ko_relatab[i].nrela;
   1019   1.1        ad 		base = kobj_findbase(ko, ko->ko_relatab[i].sec);
   1020   1.1        ad 		if (base == 0) {
   1021   1.1        ad 			panic("lost base for e_relatab");
   1022   1.1        ad 		}
   1023   1.1        ad 		for (; rela < relalim; rela++) {
   1024   1.1        ad 			symidx = ELF_R_SYM(rela->r_info);
   1025   1.1        ad 			if (symidx >= ko->ko_symcnt) {
   1026   1.1        ad 				continue;
   1027   1.1        ad 			}
   1028   1.1        ad 			sym = ko->ko_symtab + symidx;
   1029  1.18        ad 			if (local != (ELF_ST_BIND(sym->st_info) == STB_LOCAL)) {
   1030  1.18        ad 				continue;
   1031  1.18        ad 			}
   1032  1.18        ad 			error = kobj_reloc(ko, base, rela, true, local);
   1033   1.8        ad 			if (error != 0) {
   1034   1.1        ad 				return ENOENT;
   1035   1.1        ad 			}
   1036   1.1        ad 		}
   1037   1.1        ad 	}
   1038   1.1        ad 
   1039   1.1        ad 	return 0;
   1040   1.1        ad }
   1041   1.1        ad 
   1042   1.1        ad /*
   1043   1.1        ad  * kobj_error:
   1044   1.1        ad  *
   1045   1.1        ad  *	Utility function: log an error.
   1046   1.1        ad  */
   1047   1.1        ad static void
   1048   1.1        ad kobj_error(const char *fmt, ...)
   1049   1.1        ad {
   1050   1.1        ad 	va_list ap;
   1051   1.1        ad 
   1052   1.1        ad 	va_start(ap, fmt);
   1053   1.1        ad 	printf("WARNING: linker error: ");
   1054   1.1        ad 	vprintf(fmt, ap);
   1055   1.1        ad 	printf("\n");
   1056   1.1        ad 	va_end(ap);
   1057   1.1        ad }
   1058   1.1        ad 
   1059   1.1        ad /*
   1060   1.1        ad  * kobj_read:
   1061   1.1        ad  *
   1062   1.1        ad  *	Utility function: read from the object.
   1063   1.1        ad  */
   1064   1.1        ad static int
   1065  1.12        ad kobj_read(kobj_t ko, void **basep, size_t size, off_t off)
   1066   1.1        ad {
   1067   1.1        ad 	size_t resid;
   1068  1.12        ad 	void *base;
   1069   1.1        ad 	int error;
   1070   1.1        ad 
   1071   1.3        ad 	KASSERT(ko->ko_source != NULL);
   1072   1.3        ad 
   1073   1.3        ad 	switch (ko->ko_type) {
   1074   1.3        ad 	case KT_VNODE:
   1075  1.12        ad 		base = kmem_alloc(size, KM_SLEEP);
   1076  1.12        ad 		if (base == NULL) {
   1077  1.12        ad 			error = ENOMEM;
   1078  1.12        ad 			break;
   1079  1.12        ad 		}
   1080   1.3        ad 		error = vn_rdwr(UIO_READ, ko->ko_source, base, size, off,
   1081   1.3        ad 		    UIO_SYSSPACE, IO_NODELOCKED, curlwp->l_cred, &resid,
   1082   1.3        ad 		    curlwp);
   1083   1.3        ad 		if (error == 0 && resid != 0) {
   1084  1.22        ad 			error = EINVAL;
   1085  1.22        ad 		}
   1086  1.22        ad 		if (error != 0) {
   1087  1.12        ad 			kmem_free(base, size);
   1088  1.22        ad 			base = NULL;
   1089   1.3        ad 		}
   1090   1.3        ad 		break;
   1091   1.3        ad 	case KT_MEMORY:
   1092   1.4  jmcneill 		if (ko->ko_memsize != -1 && off + size > ko->ko_memsize) {
   1093   1.3        ad 			kobj_error("kobj_read: preloaded object short");
   1094   1.3        ad 			error = EINVAL;
   1095  1.12        ad 			base = NULL;
   1096  1.12        ad 		} else {
   1097  1.12        ad 			base = (uint8_t *)ko->ko_source + off;
   1098  1.12        ad 			error = 0;
   1099  1.12        ad 		}
   1100  1.12        ad 		break;
   1101  1.12        ad 	default:
   1102  1.12        ad 		panic("kobj_read: invalid type");
   1103  1.12        ad 	}
   1104  1.12        ad 
   1105  1.12        ad 	*basep = base;
   1106  1.12        ad 	return error;
   1107  1.12        ad }
   1108  1.12        ad 
   1109  1.12        ad /*
   1110  1.12        ad  * kobj_read_bits:
   1111  1.12        ad  *
   1112  1.12        ad  *	Utility function: load a section from the object.
   1113  1.12        ad  */
   1114  1.12        ad static int
   1115  1.12        ad kobj_read_bits(kobj_t ko, void *base, size_t size, off_t off)
   1116  1.12        ad {
   1117  1.12        ad 	size_t resid;
   1118  1.12        ad 	int error;
   1119  1.12        ad 
   1120  1.12        ad 	KASSERT(ko->ko_source != NULL);
   1121  1.12        ad 
   1122  1.12        ad 	switch (ko->ko_type) {
   1123  1.12        ad 	case KT_VNODE:
   1124  1.18        ad 		KASSERT((uintptr_t)base >= (uintptr_t)ko->ko_address);
   1125  1.18        ad 		KASSERT((uintptr_t)base + size <=
   1126  1.18        ad 		    (uintptr_t)ko->ko_address + ko->ko_size);
   1127  1.12        ad 		error = vn_rdwr(UIO_READ, ko->ko_source, base, size, off,
   1128  1.12        ad 		    UIO_SYSSPACE, IO_NODELOCKED, curlwp->l_cred, &resid,
   1129  1.12        ad 		    curlwp);
   1130  1.12        ad 		if (error == 0 && resid != 0) {
   1131  1.12        ad 			error = EINVAL;
   1132  1.12        ad 		}
   1133  1.12        ad 		break;
   1134  1.12        ad 	case KT_MEMORY:
   1135  1.12        ad 		if (ko->ko_memsize != -1 && off + size > ko->ko_memsize) {
   1136  1.12        ad 			kobj_error("kobj_read_bits: preloaded object short");
   1137  1.12        ad 			error = EINVAL;
   1138  1.12        ad 		} else if ((uint8_t *)base != (uint8_t *)ko->ko_source + off) {
   1139  1.12        ad 			kobj_error("kobj_read_bits: object not aligned");
   1140  1.12        ad 			kobj_error("source=%p base=%p off=%d size=%zd",
   1141  1.12        ad 			    ko->ko_source, base, (int)off, size);
   1142  1.12        ad 			error = EINVAL;
   1143   1.3        ad 		} else {
   1144  1.12        ad 			/* Nothing to do.  Loading in-situ. */
   1145   1.3        ad 			error = 0;
   1146   1.3        ad 		}
   1147   1.3        ad 		break;
   1148   1.3        ad 	default:
   1149   1.3        ad 		panic("kobj_read: invalid type");
   1150   1.3        ad 	}
   1151   1.3        ad 
   1152   1.1        ad 	return error;
   1153   1.1        ad }
   1154   1.5        ad 
   1155  1.12        ad /*
   1156  1.12        ad  * kobj_free:
   1157  1.12        ad  *
   1158  1.12        ad  *	Utility function: free memory if it was allocated from the heap.
   1159  1.12        ad  */
   1160  1.12        ad static void
   1161  1.12        ad kobj_free(kobj_t ko, void *base, size_t size)
   1162  1.12        ad {
   1163  1.12        ad 
   1164  1.12        ad 	if (ko->ko_type != KT_MEMORY)
   1165  1.12        ad 		kmem_free(base, size);
   1166  1.12        ad }
   1167  1.12        ad 
   1168   1.5        ad #else	/* MODULAR */
   1169   1.5        ad 
   1170   1.5        ad int
   1171  1.21        ad kobj_load_file(kobj_t *kop, const char *name, const char *base, bool autoload)
   1172   1.5        ad {
   1173   1.5        ad 
   1174   1.5        ad 	return ENOSYS;
   1175   1.5        ad }
   1176   1.5        ad 
   1177   1.5        ad int
   1178  1.18        ad kobj_load_mem(kobj_t *kop, void *base, ssize_t size)
   1179   1.5        ad {
   1180   1.5        ad 
   1181   1.5        ad 	return ENOSYS;
   1182   1.5        ad }
   1183   1.5        ad 
   1184   1.5        ad void
   1185   1.5        ad kobj_unload(kobj_t ko)
   1186   1.5        ad {
   1187   1.5        ad 
   1188   1.5        ad 	panic("not modular");
   1189   1.5        ad }
   1190   1.5        ad 
   1191   1.5        ad void
   1192   1.8        ad kobj_stat(kobj_t ko, vaddr_t *base, size_t *size)
   1193   1.5        ad {
   1194   1.5        ad 
   1195   1.5        ad 	panic("not modular");
   1196   1.5        ad }
   1197   1.5        ad 
   1198   1.7        ad int
   1199  1.18        ad kobj_affix(kobj_t ko, const char *name)
   1200   1.5        ad {
   1201   1.5        ad 
   1202   1.5        ad 	panic("not modular");
   1203   1.5        ad }
   1204   1.5        ad 
   1205   1.8        ad int
   1206   1.8        ad kobj_find_section(kobj_t ko, const char *name, void **addr, size_t *size)
   1207   1.8        ad {
   1208   1.8        ad 
   1209   1.8        ad 	panic("not modular");
   1210   1.8        ad }
   1211   1.8        ad 
   1212   1.5        ad #endif	/* MODULAR */
   1213