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alpha_reloc.c revision 1.31.4.2
      1  1.31.4.2   bouyer /*	$NetBSD: alpha_reloc.c,v 1.31.4.2 2012/03/30 19:23:34 bouyer Exp $	*/
      2       1.1  thorpej 
      3       1.1  thorpej /*
      4       1.1  thorpej  * Copyright (c) 2001 Wasabi Systems, Inc.
      5       1.1  thorpej  * All rights reserved.
      6       1.1  thorpej  *
      7       1.1  thorpej  * Written by Jason R. Thorpe for Wasabi Systems, Inc.
      8       1.1  thorpej  *
      9       1.1  thorpej  * Redistribution and use in source and binary forms, with or without
     10       1.1  thorpej  * modification, are permitted provided that the following conditions
     11       1.1  thorpej  * are met:
     12       1.1  thorpej  * 1. Redistributions of source code must retain the above copyright
     13       1.1  thorpej  *    notice, this list of conditions and the following disclaimer.
     14       1.1  thorpej  * 2. Redistributions in binary form must reproduce the above copyright
     15       1.1  thorpej  *    notice, this list of conditions and the following disclaimer in the
     16       1.1  thorpej  *    documentation and/or other materials provided with the distribution.
     17       1.1  thorpej  * 3. All advertising materials mentioning features or use of this software
     18       1.1  thorpej  *    must display the following acknowledgement:
     19       1.1  thorpej  *	This product includes software developed for the NetBSD Project by
     20       1.1  thorpej  *	Wasabi Systems, Inc.
     21       1.1  thorpej  * 4. The name of Wasabi Systems, Inc. may not be used to endorse
     22       1.1  thorpej  *    or promote products derived from this software without specific prior
     23       1.1  thorpej  *    written permission.
     24       1.1  thorpej  *
     25       1.1  thorpej  * THIS SOFTWARE IS PROVIDED BY WASABI SYSTEMS, INC. ``AS IS'' AND
     26       1.1  thorpej  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     27       1.1  thorpej  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     28       1.1  thorpej  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL WASABI SYSTEMS, INC
     29       1.1  thorpej  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     30       1.1  thorpej  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     31       1.1  thorpej  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     32       1.1  thorpej  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     33       1.1  thorpej  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     34       1.1  thorpej  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     35       1.1  thorpej  * POSSIBILITY OF SUCH DAMAGE.
     36       1.1  thorpej  */
     37       1.1  thorpej 
     38      1.14  thorpej /*
     39      1.14  thorpej  * Copyright 1996, 1997, 1998, 1999 John D. Polstra.
     40      1.14  thorpej  * All rights reserved.
     41      1.14  thorpej  *
     42      1.14  thorpej  * Redistribution and use in source and binary forms, with or without
     43      1.14  thorpej  * modification, are permitted provided that the following conditions
     44      1.14  thorpej  * are met:
     45      1.14  thorpej  * 1. Redistributions of source code must retain the above copyright
     46      1.14  thorpej  *    notice, this list of conditions and the following disclaimer.
     47      1.14  thorpej  * 2. Redistributions in binary form must reproduce the above copyright
     48      1.14  thorpej  *    notice, this list of conditions and the following disclaimer in the
     49      1.14  thorpej  *    documentation and/or other materials provided with the distribution.
     50      1.14  thorpej  *
     51      1.14  thorpej  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     52      1.14  thorpej  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     53      1.14  thorpej  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     54      1.14  thorpej  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
     55      1.14  thorpej  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
     56      1.14  thorpej  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
     57      1.14  thorpej  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
     58      1.14  thorpej  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
     59      1.14  thorpej  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
     60      1.14  thorpej  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     61      1.14  thorpej  */
     62      1.14  thorpej 
     63      1.28    skrll #include <sys/cdefs.h>
     64      1.28    skrll #ifndef lint
     65  1.31.4.2   bouyer __RCSID("$NetBSD: alpha_reloc.c,v 1.31.4.2 2012/03/30 19:23:34 bouyer Exp $");
     66      1.28    skrll #endif /* not lint */
     67      1.28    skrll 
     68       1.1  thorpej #include <sys/types.h>
     69       1.1  thorpej #include <sys/stat.h>
     70      1.19  thorpej #include <string.h>
     71       1.1  thorpej 
     72       1.1  thorpej #include "rtld.h"
     73       1.2  thorpej #include "debug.h"
     74       1.2  thorpej 
     75       1.2  thorpej #ifdef RTLD_DEBUG_ALPHA
     76      1.17  mycroft #define	adbg(x)		xprintf x
     77       1.2  thorpej #else
     78       1.2  thorpej #define	adbg(x)		/* nothing */
     79       1.2  thorpej #endif
     80       1.1  thorpej 
     81      1.16  mycroft void _rtld_bind_start(void);
     82      1.16  mycroft void _rtld_bind_start_old(void);
     83      1.15  mycroft void _rtld_relocate_nonplt_self(Elf_Dyn *, Elf_Addr);
     84      1.24    skrll caddr_t _rtld_bind(const Obj_Entry *, Elf_Word);
     85      1.25    skrll static inline int _rtld_relocate_plt_object(const Obj_Entry *,
     86      1.27    skrll     const Elf_Rela *, Elf_Addr *);
     87      1.15  mycroft 
     88       1.1  thorpej void
     89       1.4  mycroft _rtld_setup_pltgot(const Obj_Entry *obj)
     90       1.1  thorpej {
     91       1.2  thorpej 	uint32_t word0;
     92       1.1  thorpej 
     93       1.1  thorpej 	/*
     94       1.2  thorpej 	 * The PLTGOT on the Alpha looks like this:
     95       1.2  thorpej 	 *
     96       1.2  thorpej 	 *	PLT HEADER
     97       1.2  thorpej 	 *	.
     98       1.2  thorpej 	 *	. 32 bytes
     99       1.2  thorpej 	 *	.
    100       1.2  thorpej 	 *	PLT ENTRY #0
    101       1.2  thorpej 	 *	.
    102       1.2  thorpej 	 *	. 12 bytes
    103       1.2  thorpej 	 *	.
    104       1.2  thorpej 	 *	PLT ENTRY #1
    105       1.2  thorpej 	 *	.
    106       1.2  thorpej 	 *	. 12 bytes
    107       1.2  thorpej 	 *	.
    108       1.2  thorpej 	 *	etc.
    109       1.2  thorpej 	 *
    110       1.2  thorpej 	 * The old-format entries look like (displacements filled in
    111       1.2  thorpej 	 * by the linker):
    112       1.2  thorpej 	 *
    113       1.2  thorpej 	 *	ldah	$28, 0($31)		# 0x279f0000
    114       1.2  thorpej 	 *	lda	$28, 0($28)		# 0x239c0000
    115       1.2  thorpej 	 *	br	$31, plt0		# 0xc3e00000
    116       1.2  thorpej 	 *
    117       1.2  thorpej 	 * The new-format entries look like:
    118       1.2  thorpej 	 *
    119       1.2  thorpej 	 *	br	$28, plt0		# 0xc3800000
    120       1.2  thorpej 	 *					# 0x00000000
    121       1.2  thorpej 	 *					# 0x00000000
    122       1.2  thorpej 	 *
    123       1.2  thorpej 	 * What we do is fetch the first PLT entry and check to
    124       1.2  thorpej 	 * see the first word of it matches the first word of the
    125       1.2  thorpej 	 * old format.  If so, we use a binding routine that can
    126       1.2  thorpej 	 * handle the old format, otherwise we use a binding routine
    127       1.2  thorpej 	 * that handles the new format.
    128       1.2  thorpej 	 *
    129       1.2  thorpej 	 * Note that this is done on a per-object basis, we can mix
    130       1.2  thorpej 	 * and match shared objects build with both the old and new
    131       1.2  thorpej 	 * linker.
    132       1.1  thorpej 	 */
    133       1.2  thorpej 	word0 = *(uint32_t *)(((char *) obj->pltgot) + 32);
    134       1.2  thorpej 	if ((word0 & 0xffff0000) == 0x279f0000) {
    135       1.1  thorpej 		/* Old PLT entry format. */
    136       1.2  thorpej 		adbg(("ALPHA: object %p has old PLT format\n", obj));
    137       1.1  thorpej 		obj->pltgot[2] = (Elf_Addr) &_rtld_bind_start_old;
    138       1.1  thorpej 		obj->pltgot[3] = (Elf_Addr) obj;
    139       1.3  mycroft 	} else {
    140       1.3  mycroft 		/* New PLT entry format. */
    141       1.3  mycroft 		adbg(("ALPHA: object %p has new PLT format\n", obj));
    142       1.3  mycroft 		obj->pltgot[2] = (Elf_Addr) &_rtld_bind_start;
    143       1.3  mycroft 		obj->pltgot[3] = (Elf_Addr) obj;
    144       1.1  thorpej 	}
    145       1.1  thorpej 
    146      1.29    perry 	__asm volatile("imb");
    147       1.5  mycroft }
    148       1.5  mycroft 
    149      1.19  thorpej /*
    150      1.19  thorpej  * It is possible for the compiler to emit relocations for unaligned data.
    151      1.19  thorpej  * We handle this situation with these inlines.
    152      1.19  thorpej  */
    153      1.19  thorpej #define	RELOC_ALIGNED_P(x) \
    154      1.19  thorpej 	(((uintptr_t)(x) & (sizeof(void *) - 1)) == 0)
    155      1.19  thorpej 
    156      1.29    perry static inline Elf_Addr
    157      1.19  thorpej load_ptr(void *where)
    158      1.19  thorpej {
    159      1.19  thorpej 	Elf_Addr res;
    160      1.19  thorpej 
    161      1.19  thorpej 	memcpy(&res, where, sizeof(res));
    162      1.19  thorpej 
    163      1.19  thorpej 	return (res);
    164      1.19  thorpej }
    165      1.19  thorpej 
    166      1.29    perry static inline void
    167      1.19  thorpej store_ptr(void *where, Elf_Addr val)
    168      1.19  thorpej {
    169      1.19  thorpej 
    170      1.19  thorpej 	memcpy(where, &val, sizeof(val));
    171      1.19  thorpej }
    172      1.19  thorpej 
    173      1.15  mycroft void
    174      1.24    skrll _rtld_relocate_nonplt_self(Elf_Dyn *dynp, Elf_Addr relocbase)
    175      1.15  mycroft {
    176      1.15  mycroft 	const Elf_Rela *rela = 0, *relalim;
    177      1.15  mycroft 	Elf_Addr relasz = 0;
    178      1.15  mycroft 	Elf_Addr *where;
    179      1.15  mycroft 
    180      1.15  mycroft 	for (; dynp->d_tag != DT_NULL; dynp++) {
    181      1.15  mycroft 		switch (dynp->d_tag) {
    182      1.15  mycroft 		case DT_RELA:
    183      1.15  mycroft 			rela = (const Elf_Rela *)(relocbase + dynp->d_un.d_ptr);
    184      1.15  mycroft 			break;
    185      1.15  mycroft 		case DT_RELASZ:
    186      1.15  mycroft 			relasz = dynp->d_un.d_val;
    187      1.15  mycroft 			break;
    188      1.15  mycroft 		}
    189      1.15  mycroft 	}
    190      1.15  mycroft 	relalim = (const Elf_Rela *)((caddr_t)rela + relasz);
    191      1.15  mycroft 	for (; rela < relalim; rela++) {
    192      1.15  mycroft 		where = (Elf_Addr *)(relocbase + rela->r_offset);
    193      1.15  mycroft 		/* XXX For some reason I see a few GLOB_DAT relocs here. */
    194      1.15  mycroft 		*where += (Elf_Addr)relocbase;
    195      1.15  mycroft 	}
    196      1.15  mycroft }
    197      1.15  mycroft 
    198       1.5  mycroft int
    199      1.24    skrll _rtld_relocate_nonplt_objects(const Obj_Entry *obj)
    200       1.5  mycroft {
    201       1.6  mycroft 	const Elf_Rela *rela;
    202      1.26     fair 	Elf_Addr target = -1;
    203      1.15  mycroft 
    204       1.6  mycroft 	for (rela = obj->rela; rela < obj->relalim; rela++) {
    205       1.6  mycroft 		Elf_Addr        *where;
    206       1.6  mycroft 		const Elf_Sym   *def;
    207       1.6  mycroft 		const Obj_Entry *defobj;
    208       1.6  mycroft 		Elf_Addr         tmp;
    209       1.8  mycroft 		unsigned long	 symnum;
    210       1.6  mycroft 
    211       1.6  mycroft 		where = (Elf_Addr *)(obj->relocbase + rela->r_offset);
    212       1.8  mycroft 		symnum = ELF_R_SYM(rela->r_info);
    213       1.6  mycroft 
    214       1.6  mycroft 		switch (ELF_R_TYPE(rela->r_info)) {
    215       1.6  mycroft 		case R_TYPE(NONE):
    216       1.6  mycroft 			break;
    217       1.6  mycroft 
    218       1.6  mycroft 		case R_TYPE(REFQUAD):
    219       1.6  mycroft 		case R_TYPE(GLOB_DAT):
    220      1.30     matt 			def = _rtld_find_symdef(symnum, obj, &defobj, false);
    221      1.30     matt 			if (def == NULL)
    222      1.30     matt 				return -1;
    223      1.30     matt 			target = (Elf_Addr)(defobj->relocbase +
    224      1.30     matt 			    def->st_value);
    225       1.6  mycroft 
    226      1.20  mycroft 			tmp = target + rela->r_addend;
    227      1.19  thorpej 			if (__predict_true(RELOC_ALIGNED_P(where))) {
    228      1.19  thorpej 				if (*where != tmp)
    229      1.19  thorpej 					*where = tmp;
    230      1.19  thorpej 			} else {
    231      1.19  thorpej 				if (load_ptr(where) != tmp)
    232      1.19  thorpej 					store_ptr(where, tmp);
    233      1.19  thorpej 			}
    234      1.18  mycroft 			rdbg(("REFQUAD/GLOB_DAT %s in %s --> %p in %s",
    235       1.9  mycroft 			    obj->strtab + obj->symtab[symnum].st_name,
    236      1.19  thorpej 			    obj->path, (void *)tmp, defobj->path));
    237       1.6  mycroft 			break;
    238       1.6  mycroft 
    239       1.6  mycroft 		case R_TYPE(RELATIVE):
    240      1.19  thorpej 			if (__predict_true(RELOC_ALIGNED_P(where)))
    241      1.19  thorpej 				*where += (Elf_Addr)obj->relocbase;
    242      1.19  thorpej 			else
    243      1.19  thorpej 				store_ptr(where,
    244      1.19  thorpej 				    load_ptr(where) + (Elf_Addr)obj->relocbase);
    245      1.18  mycroft 			rdbg(("RELATIVE in %s --> %p", obj->path,
    246      1.18  mycroft 			    (void *)*where));
    247       1.6  mycroft 			break;
    248       1.6  mycroft 
    249       1.6  mycroft 		case R_TYPE(COPY):
    250       1.6  mycroft 			/*
    251       1.6  mycroft 			 * These are deferred until all other relocations have
    252       1.6  mycroft 			 * been done.  All we do here is make sure that the
    253       1.6  mycroft 			 * COPY relocation is not in a shared library.  They
    254       1.6  mycroft 			 * are allowed only in executable files.
    255       1.6  mycroft 			 */
    256      1.12  mycroft 			if (obj->isdynamic) {
    257       1.6  mycroft 				_rtld_error(
    258       1.5  mycroft 			"%s: Unexpected R_COPY relocation in shared library",
    259       1.6  mycroft 				    obj->path);
    260       1.6  mycroft 				return -1;
    261       1.6  mycroft 			}
    262      1.17  mycroft 			rdbg(("COPY (avoid in main)"));
    263       1.6  mycroft 			break;
    264       1.6  mycroft 
    265       1.6  mycroft 		default:
    266      1.17  mycroft 			rdbg(("sym = %lu, type = %lu, offset = %p, "
    267       1.6  mycroft 			    "addend = %p, contents = %p, symbol = %s",
    268       1.8  mycroft 			    symnum, (u_long)ELF_R_TYPE(rela->r_info),
    269       1.6  mycroft 			    (void *)rela->r_offset, (void *)rela->r_addend,
    270      1.19  thorpej 			    (void *)load_ptr(where),
    271       1.8  mycroft 			    obj->strtab + obj->symtab[symnum].st_name));
    272       1.6  mycroft 			_rtld_error("%s: Unsupported relocation type %ld "
    273       1.6  mycroft 			    "in non-PLT relocations\n",
    274       1.6  mycroft 			    obj->path, (u_long) ELF_R_TYPE(rela->r_info));
    275       1.5  mycroft 			return -1;
    276       1.5  mycroft 		}
    277       1.5  mycroft 	}
    278      1.10  mycroft 	return 0;
    279      1.10  mycroft }
    280      1.10  mycroft 
    281      1.10  mycroft int
    282      1.24    skrll _rtld_relocate_plt_lazy(const Obj_Entry *obj)
    283      1.10  mycroft {
    284      1.10  mycroft 	const Elf_Rela *rela;
    285      1.10  mycroft 
    286      1.23  mycroft 	if (!obj->relocbase)
    287      1.10  mycroft 		return 0;
    288      1.10  mycroft 
    289      1.10  mycroft 	for (rela = obj->pltrela; rela < obj->pltrelalim; rela++) {
    290      1.10  mycroft 		Elf_Addr *where = (Elf_Addr *)(obj->relocbase + rela->r_offset);
    291      1.10  mycroft 
    292      1.10  mycroft 		assert(ELF_R_TYPE(rela->r_info) == R_TYPE(JMP_SLOT));
    293      1.10  mycroft 
    294      1.10  mycroft 		/* Just relocate the GOT slots pointing into the PLT */
    295      1.10  mycroft 		*where += (Elf_Addr)obj->relocbase;
    296      1.17  mycroft 		rdbg(("fixup !main in %s --> %p", obj->path, (void *)*where));
    297      1.10  mycroft 	}
    298      1.10  mycroft 
    299      1.10  mycroft 	return 0;
    300      1.10  mycroft }
    301      1.10  mycroft 
    302      1.25    skrll static inline int
    303      1.25    skrll _rtld_relocate_plt_object(const Obj_Entry *obj, const Elf_Rela *rela, Elf_Addr *tp)
    304      1.10  mycroft {
    305      1.10  mycroft 	Elf_Addr *where = (Elf_Addr *)(obj->relocbase + rela->r_offset);
    306      1.10  mycroft 	Elf_Addr new_value;
    307  1.31.4.1   bouyer 	const Elf_Sym *def;
    308      1.10  mycroft 	const Obj_Entry *defobj;
    309      1.14  thorpej 	Elf_Addr stubaddr;
    310  1.31.4.1   bouyer 	unsigned long info = rela->r_info;
    311      1.10  mycroft 
    312  1.31.4.1   bouyer 	assert(ELF_R_TYPE(info) == R_TYPE(JMP_SLOT));
    313      1.10  mycroft 
    314  1.31.4.1   bouyer 	def = _rtld_find_plt_symdef(ELF_R_SYM(info), obj, &defobj, tp != NULL);
    315  1.31.4.1   bouyer 	if (__predict_false(def == NULL))
    316      1.25    skrll 		return -1;
    317  1.31.4.1   bouyer 	if (__predict_false(def == &_rtld_sym_zero))
    318  1.31.4.1   bouyer 		return 0;
    319      1.10  mycroft 
    320      1.10  mycroft 	new_value = (Elf_Addr)(defobj->relocbase + def->st_value);
    321      1.17  mycroft 	rdbg(("bind now/fixup in %s --> old=%p new=%p",
    322      1.10  mycroft 	    defobj->strtab + def->st_name, (void *)*where, (void *)new_value));
    323      1.14  thorpej 
    324      1.14  thorpej 	if ((stubaddr = *where) != new_value) {
    325      1.14  thorpej 		int64_t delta, idisp;
    326      1.14  thorpej 		uint32_t insn[3], *stubptr;
    327      1.14  thorpej 		int insncnt;
    328      1.14  thorpej 		Elf_Addr pc;
    329      1.14  thorpej 
    330      1.14  thorpej 		/* Point this GOT entry at the target. */
    331      1.10  mycroft 		*where = new_value;
    332      1.10  mycroft 
    333      1.14  thorpej 		/*
    334      1.14  thorpej 		 * Alpha shared objects may have multiple GOTs, each
    335      1.14  thorpej 		 * of which may point to this entry in the PLT.  But,
    336      1.14  thorpej 		 * we only have a reference to the first GOT entry which
    337      1.14  thorpej 		 * points to this PLT entry.  In order to avoid having to
    338      1.14  thorpej 		 * re-bind this call every time a non-first GOT entry is
    339      1.14  thorpej 		 * used, we will attempt to patch up the PLT entry to
    340      1.14  thorpej 		 * reference the target, rather than the binder.
    341      1.14  thorpej 		 *
    342      1.14  thorpej 		 * When the PLT stub gets control, PV contains the address
    343      1.14  thorpej 		 * of the PLT entry.  Each PLT entry has room for 3 insns.
    344      1.14  thorpej 		 * If the displacement of the target from PV fits in a signed
    345      1.14  thorpej 		 * 32-bit integer, we can simply add it to PV.  Otherwise,
    346      1.14  thorpej 		 * we must load the GOT entry itself into PV.
    347      1.14  thorpej 		 *
    348      1.14  thorpej 		 * Note if the shared object uses the old PLT format, then
    349      1.14  thorpej 		 * we cannot patch up the PLT safely, and so we skip it
    350      1.14  thorpej 		 * in that case[*].
    351      1.14  thorpej 		 *
    352      1.14  thorpej 		 * [*] Actually, if we're not doing lazy-binding, then
    353      1.14  thorpej 		 * we *can* (and do) patch up this PLT entry; the PLTGOT
    354      1.14  thorpej 		 * thunk won't yet point to any binder entry point, and
    355      1.14  thorpej 		 * so this test will fail as it would for the new PLT
    356      1.14  thorpej 		 * entry format.
    357      1.14  thorpej 		 */
    358      1.14  thorpej 		if (obj->pltgot[2] == (Elf_Addr) &_rtld_bind_start_old) {
    359      1.17  mycroft 			rdbg(("  old PLT format"));
    360      1.14  thorpej 			goto out;
    361      1.14  thorpej 		}
    362      1.14  thorpej 
    363      1.14  thorpej 		delta = new_value - stubaddr;
    364      1.17  mycroft 		rdbg(("  stubaddr=%p, where-stubaddr=%ld, delta=%ld",
    365      1.14  thorpej 		    (void *)stubaddr, (long)where - (long)stubaddr,
    366      1.14  thorpej 		    (long)delta));
    367      1.14  thorpej 		insncnt = 0;
    368      1.14  thorpej 		if ((int32_t)delta == delta) {
    369      1.14  thorpej 			/*
    370      1.14  thorpej 			 * We can adjust PV with an LDA, LDAH sequence.
    371      1.14  thorpej 			 *
    372      1.14  thorpej 			 * First, build an LDA insn to adjust the low 16
    373      1.14  thorpej 			 * bits.
    374      1.14  thorpej 			 */
    375      1.14  thorpej 			insn[insncnt++] = 0x08 << 26 | 27 << 21 | 27 << 16 |
    376      1.14  thorpej 			    (delta & 0xffff);
    377      1.17  mycroft 			rdbg(("  LDA  $27,%d($27)", (int16_t)delta));
    378      1.14  thorpej 			/*
    379      1.14  thorpej 			 * Adjust the delta to account for the effects of
    380      1.14  thorpej 			 * the LDA, including sign-extension.
    381      1.14  thorpej 			 */
    382      1.14  thorpej 			delta -= (int16_t)delta;
    383      1.14  thorpej 			if (delta != 0) {
    384      1.14  thorpej 				/*
    385      1.14  thorpej 				 * Build an LDAH instruction to adjust the
    386      1.14  thorpej 				 * high 16 bits.
    387      1.14  thorpej 				 */
    388      1.14  thorpej 				insn[insncnt++] = 0x09 << 26 | 27 << 21 |
    389      1.14  thorpej 				    27 << 16 | ((delta >> 16) & 0xffff);
    390      1.17  mycroft 				rdbg(("  LDAH $27,%d($27)",
    391      1.14  thorpej 				    (int16_t)(delta >> 16)));
    392      1.14  thorpej 			}
    393      1.14  thorpej 		} else {
    394      1.14  thorpej 			int64_t dhigh;
    395      1.14  thorpej 
    396      1.14  thorpej 			/* We must load the GOT entry. */
    397      1.14  thorpej 			delta = (Elf_Addr)where - stubaddr;
    398      1.14  thorpej 
    399      1.14  thorpej 			/*
    400      1.14  thorpej 			 * If the GOT entry is too far away from the PLT
    401      1.14  thorpej 			 * entry, then we can't patch up the PLT entry.
    402      1.14  thorpej 			 * This PLT entry will have to be bound for each
    403      1.14  thorpej 			 * GOT entry except for the first one.  This program
    404      1.14  thorpej 			 * will still run, albeit very slowly.  It is very
    405      1.14  thorpej 			 * unlikely that this case will ever happen in
    406      1.14  thorpej 			 * practice.
    407      1.14  thorpej 			 */
    408      1.14  thorpej 			if ((int32_t)delta != delta) {
    409      1.17  mycroft 				rdbg(("  PLT stub too far from GOT to relocate"));
    410      1.14  thorpej 				goto out;
    411      1.14  thorpej 			}
    412      1.14  thorpej 			dhigh = delta - (int16_t)delta;
    413      1.14  thorpej 			if (dhigh != 0) {
    414      1.14  thorpej 				/*
    415      1.14  thorpej 				 * Build an LDAH instruction to adjust the
    416      1.14  thorpej 				 * high 16 bits.
    417      1.14  thorpej 				 */
    418      1.14  thorpej 				insn[insncnt++] = 0x09 << 26 | 27 << 21 |
    419      1.14  thorpej 				    27 << 16 | ((dhigh >> 16) & 0xffff);
    420      1.17  mycroft 				rdbg(("  LDAH $27,%d($27)",
    421      1.14  thorpej 				    (int16_t)(dhigh >> 16)));
    422      1.14  thorpej 			}
    423      1.14  thorpej 			/* Build an LDQ to load the GOT entry. */
    424      1.14  thorpej 			insn[insncnt++] = 0x29 << 26 | 27 << 21 |
    425      1.14  thorpej 			    27 << 16 | (delta & 0xffff);
    426      1.17  mycroft 			rdbg(("  LDQ  $27,%d($27)",
    427      1.14  thorpej 			    (int16_t)delta));
    428      1.14  thorpej 		}
    429      1.14  thorpej 
    430      1.14  thorpej 		/*
    431      1.14  thorpej 		 * Now, build a JMP or BR insn to jump to the target.  If
    432      1.14  thorpej 		 * the displacement fits in a sign-extended 21-bit field,
    433      1.14  thorpej 		 * we can use the more efficient BR insn.  Otherwise, we
    434      1.14  thorpej 		 * have to jump indirect through PV.
    435      1.14  thorpej 		 */
    436      1.14  thorpej 		pc = stubaddr + (4 * (insncnt + 1));
    437      1.14  thorpej 		idisp = (int64_t)(new_value - pc) >> 2;
    438      1.14  thorpej 		if (-0x100000 <= idisp && idisp < 0x100000) {
    439      1.14  thorpej 			insn[insncnt++] = 0x30 << 26 | 31 << 21 |
    440      1.14  thorpej 			    (idisp & 0x1fffff);
    441      1.17  mycroft 			rdbg(("  BR   $31,%p", (void *)new_value));
    442      1.14  thorpej 		} else {
    443      1.14  thorpej 			insn[insncnt++] = 0x1a << 26 | 31 << 21 |
    444      1.14  thorpej 			    27 << 16 | (idisp & 0x3fff);
    445      1.17  mycroft 			rdbg(("  JMP  $31,($27),%d",
    446      1.14  thorpej 			    (int)(idisp & 0x3fff)));
    447      1.14  thorpej 		}
    448      1.14  thorpej 
    449      1.14  thorpej 		/*
    450      1.14  thorpej 		 * Fill in the tail of the PLT entry first, for reentrancy.
    451      1.14  thorpej 		 * Until we have overwritten the first insn (an unconditional
    452      1.14  thorpej 		 * branch), the remaining insns have no effect.
    453      1.14  thorpej 		 */
    454      1.14  thorpej 		stubptr = (uint32_t *)stubaddr;
    455      1.14  thorpej 		while (insncnt > 1) {
    456      1.14  thorpej 			insncnt--;
    457      1.14  thorpej 			stubptr[insncnt] = insn[insncnt];
    458      1.14  thorpej 		}
    459      1.14  thorpej 		/*
    460      1.14  thorpej 		 * Commit the tail of the insn sequence to memory
    461      1.14  thorpej 		 * before overwriting the first insn.
    462      1.14  thorpej 		 */
    463      1.29    perry 		__asm volatile("wmb" ::: "memory");
    464      1.14  thorpej 		stubptr[0] = insn[0];
    465      1.14  thorpej 		/*
    466      1.14  thorpej 		 * I-stream will be sync'd when we either return from
    467      1.14  thorpej 		 * the binder (lazy bind case) or when the PLTGOT thunk
    468      1.14  thorpej 		 * is patched up (bind-now case).
    469      1.14  thorpej 		 */
    470      1.14  thorpej 	}
    471      1.25    skrll out:
    472      1.25    skrll 	if (tp)
    473      1.25    skrll 		*tp = new_value;
    474      1.25    skrll 
    475      1.25    skrll 	return 0;
    476      1.25    skrll }
    477      1.25    skrll 
    478      1.25    skrll caddr_t
    479      1.25    skrll _rtld_bind(const Obj_Entry *obj, Elf_Word reloff)
    480      1.25    skrll {
    481      1.25    skrll 	const Elf_Rela *rela = (const Elf_Rela *)((caddr_t)obj->pltrela + reloff);
    482  1.31.4.2   bouyer 	Elf_Addr result = 0; /* XXX gcc */
    483      1.25    skrll 	int err;
    484      1.25    skrll 
    485      1.25    skrll 	err = _rtld_relocate_plt_object(obj, rela, &result);
    486  1.31.4.1   bouyer 	if (err)
    487      1.25    skrll 		_rtld_die();
    488      1.25    skrll 
    489      1.25    skrll 	return (caddr_t)result;
    490      1.25    skrll }
    491      1.25    skrll 
    492      1.25    skrll int
    493      1.25    skrll _rtld_relocate_plt_objects(const Obj_Entry *obj)
    494      1.25    skrll {
    495      1.25    skrll 	const Elf_Rela *rela;
    496      1.14  thorpej 
    497      1.25    skrll 	for (rela = obj->pltrela; rela < obj->pltrelalim; rela++)
    498      1.25    skrll 		if (_rtld_relocate_plt_object(obj, rela, NULL) < 0)
    499      1.25    skrll 			return -1;
    500      1.25    skrll 
    501      1.25    skrll 	return 0;
    502       1.1  thorpej }
    503