mdreloc.c revision 1.12 1 /* $NetBSD: mdreloc.c,v 1.12 2002/09/05 16:33:58 junyoung Exp $ */
2
3 /*-
4 * Copyright (c) 1999 The NetBSD Foundation, Inc.
5 * All rights reserved.
6 *
7 * This code is derived from software contributed to The NetBSD Foundation
8 * by Paul Kranenburg.
9 *
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
12 * are met:
13 * 1. Redistributions of source code must retain the above copyright
14 * notice, this list of conditions and the following disclaimer.
15 * 2. Redistributions in binary form must reproduce the above copyright
16 * notice, this list of conditions and the following disclaimer in the
17 * documentation and/or other materials provided with the distribution.
18 * 3. All advertising materials mentioning features or use of this software
19 * must display the following acknowledgement:
20 * This product includes software developed by the NetBSD
21 * Foundation, Inc. and its contributors.
22 * 4. Neither the name of The NetBSD Foundation nor the names of its
23 * contributors may be used to endorse or promote products derived
24 * from this software without specific prior written permission.
25 *
26 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
27 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
28 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
29 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
30 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
32 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
33 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
34 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
35 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
36 * POSSIBILITY OF SUCH DAMAGE.
37 */
38
39 #include <errno.h>
40 #include <stdio.h>
41 #include <stdlib.h>
42 #include <string.h>
43 #include <unistd.h>
44 #include <sys/stat.h>
45
46 #include "rtldenv.h"
47 #include "debug.h"
48 #include "rtld.h"
49
50 /*
51 * The following table holds for each relocation type:
52 * - the width in bits of the memory location the relocation
53 * applies to (not currently used)
54 * - the number of bits the relocation value must be shifted to the
55 * right (i.e. discard least significant bits) to fit into
56 * the appropriate field in the instruction word.
57 * - flags indicating whether
58 * * the relocation involves a symbol
59 * * the relocation is relative to the current position
60 * * the relocation is for a GOT entry
61 * * the relocation is relative to the load address
62 *
63 */
64 #define _RF_S 0x80000000 /* Resolve symbol */
65 #define _RF_A 0x40000000 /* Use addend */
66 #define _RF_P 0x20000000 /* Location relative */
67 #define _RF_G 0x10000000 /* GOT offset */
68 #define _RF_B 0x08000000 /* Load address relative */
69 #define _RF_SZ(s) (((s) & 0xff) << 8) /* memory target size */
70 #define _RF_RS(s) ( (s) & 0xff) /* right shift */
71 static int reloc_target_flags[] = {
72 0, /* NONE */
73 _RF_S|_RF_A| _RF_SZ(8) | _RF_RS(0), /* RELOC_8 */
74 _RF_S|_RF_A| _RF_SZ(16) | _RF_RS(0), /* RELOC_16 */
75 _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* RELOC_32 */
76 _RF_S|_RF_A|_RF_P| _RF_SZ(8) | _RF_RS(0), /* DISP_8 */
77 _RF_S|_RF_A|_RF_P| _RF_SZ(16) | _RF_RS(0), /* DISP_16 */
78 _RF_S|_RF_A|_RF_P| _RF_SZ(32) | _RF_RS(0), /* DISP_32 */
79 _RF_S|_RF_A|_RF_P| _RF_SZ(32) | _RF_RS(2), /* WDISP_30 */
80 _RF_S|_RF_A|_RF_P| _RF_SZ(32) | _RF_RS(2), /* WDISP_22 */
81 _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(10), /* HI22 */
82 _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* 22 */
83 _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* 13 */
84 _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* LO10 */
85 _RF_G| _RF_SZ(32) | _RF_RS(0), /* GOT10 */
86 _RF_G| _RF_SZ(32) | _RF_RS(0), /* GOT13 */
87 _RF_G| _RF_SZ(32) | _RF_RS(10), /* GOT22 */
88 _RF_S|_RF_A|_RF_P| _RF_SZ(32) | _RF_RS(0), /* PC10 */
89 _RF_S|_RF_A|_RF_P| _RF_SZ(32) | _RF_RS(10), /* PC22 */
90 _RF_A|_RF_P| _RF_SZ(32) | _RF_RS(2), /* WPLT30 */
91 _RF_SZ(32) | _RF_RS(0), /* COPY */
92 _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* GLOB_DAT */
93 _RF_SZ(32) | _RF_RS(0), /* JMP_SLOT */
94 _RF_A| _RF_B| _RF_SZ(32) | _RF_RS(0), /* RELATIVE */
95 _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* UA_32 */
96
97 /*unknown*/ _RF_SZ(32) | _RF_RS(0), /* PLT32 */
98 /*unknown*/ _RF_SZ(32) | _RF_RS(0), /* HIPLT22 */
99 /*unknown*/ _RF_SZ(32) | _RF_RS(0), /* LOPLT10 */
100 /*unknown*/ _RF_SZ(32) | _RF_RS(0), /* LOPLT10 */
101 /*unknown*/ _RF_SZ(32) | _RF_RS(0), /* PCPLT22 */
102 /*unknown*/ _RF_SZ(32) | _RF_RS(0), /* PCPLT32 */
103 _RF_S|_RF_A|/*unknown*/ _RF_SZ(32) | _RF_RS(0), /* 10 */
104 _RF_S|_RF_A|/*unknown*/ _RF_SZ(32) | _RF_RS(0), /* 11 */
105 _RF_S|_RF_A|/*unknown*/ _RF_SZ(32) | _RF_RS(0), /* 64 */
106 _RF_S|_RF_A|/*unknown*/ _RF_SZ(32) | _RF_RS(0), /* OLO10 */
107 _RF_S|_RF_A|/*unknown*/ _RF_SZ(32) | _RF_RS(0), /* HH22 */
108 _RF_S|_RF_A|/*unknown*/ _RF_SZ(32) | _RF_RS(0), /* HM10 */
109 _RF_S|_RF_A|/*unknown*/ _RF_SZ(32) | _RF_RS(0), /* LM22 */
110 _RF_S|_RF_A|_RF_P|/*unknown*/ _RF_SZ(32) | _RF_RS(0), /* WDISP16 */
111 _RF_S|_RF_A|_RF_P|/*unknown*/ _RF_SZ(32) | _RF_RS(0), /* WDISP19 */
112 /*unknown*/ _RF_SZ(32) | _RF_RS(0), /* GLOB_JMP */
113 /*unknown*/ _RF_SZ(32) | _RF_RS(0), /* 7 */
114 /*unknown*/ _RF_SZ(32) | _RF_RS(0), /* 5 */
115 /*unknown*/ _RF_SZ(32) | _RF_RS(0), /* 6 */
116 };
117
118 #ifdef RTLD_DEBUG_RELOC
119 static const char *reloc_names[] = {
120 "NONE", "RELOC_8", "RELOC_16", "RELOC_32", "DISP_8",
121 "DISP_16", "DISP_32", "WDISP_30", "WDISP_22", "HI22",
122 "22", "13", "LO10", "GOT10", "GOT13",
123 "GOT22", "PC10", "PC22", "WPLT30", "COPY",
124 "GLOB_DAT", "JMP_SLOT", "RELATIVE", "UA_32", "PLT32",
125 "HIPLT22", "LOPLT10", "LOPLT10", "PCPLT22", "PCPLT32",
126 "10", "11", "64", "OLO10", "HH22",
127 "HM10", "LM22", "WDISP16", "WDISP19", "GLOB_JMP",
128 "7", "5", "6"
129 };
130 #endif
131
132 #define RELOC_RESOLVE_SYMBOL(t) ((reloc_target_flags[t] & _RF_S) != 0)
133 #define RELOC_PC_RELATIVE(t) ((reloc_target_flags[t] & _RF_P) != 0)
134 #define RELOC_BASE_RELATIVE(t) ((reloc_target_flags[t] & _RF_B) != 0)
135 #define RELOC_TARGET_SIZE(t) ((reloc_target_flags[t] >> 8) & 0xff)
136 #define RELOC_VALUE_RIGHTSHIFT(t) (reloc_target_flags[t] & 0xff)
137
138 static int reloc_target_bitmask[] = {
139 #define _BM(x) (~(-(1ULL << (x))))
140 0, /* NONE */
141 _BM(8), _BM(16), _BM(32), /* RELOC_8, _16, _32 */
142 _BM(8), _BM(16), _BM(32), /* DISP8, DISP16, DISP32 */
143 _BM(30), _BM(22), /* WDISP30, WDISP22 */
144 _BM(22), _BM(22), /* HI22, _22 */
145 _BM(13), _BM(10), /* RELOC_13, _LO10 */
146 _BM(10), _BM(13), _BM(22), /* GOT10, GOT13, GOT22 */
147 _BM(10), _BM(22), /* _PC10, _PC22 */
148 _BM(30), 0, /* _WPLT30, _COPY */
149 -1, -1, -1, /* _GLOB_DAT, JMP_SLOT, _RELATIVE */
150 _BM(32), _BM(32), /* _UA32, PLT32 */
151 _BM(22), _BM(10), /* _HIPLT22, LOPLT10 */
152 _BM(32), _BM(22), _BM(10), /* _PCPLT32, _PCPLT22, _PCPLT10 */
153 _BM(10), _BM(11), -1, /* _10, _11, _64 */
154 _BM(10), _BM(22), /* _OLO10, _HH22 */
155 _BM(10), _BM(22), /* _HM10, _LM22 */
156 _BM(16), _BM(19), /* _WDISP16, _WDISP19 */
157 -1, /* GLOB_JMP */
158 _BM(7), _BM(5), _BM(6) /* _7, _5, _6 */
159 #undef _BM
160 };
161 #define RELOC_VALUE_BITMASK(t) (reloc_target_bitmask[t])
162
163 int
164 _rtld_relocate_nonplt_object(obj, rela, dodebug)
165 Obj_Entry *obj;
166 const Elf_Rela *rela;
167 bool dodebug;
168 {
169 Elf_Addr *where = (Elf_Addr *) (obj->relocbase + rela->r_offset);
170 Elf_Word type, value, mask;
171 const Elf_Sym *def = NULL;
172 const Obj_Entry *defobj = NULL;
173
174 type = ELF_R_TYPE(rela->r_info);
175 if (type == R_TYPE(NONE))
176 return (0);
177
178 /* We do JMP_SLOTs in relocate_plt_object() below */
179 if (type == R_TYPE(JMP_SLOT))
180 return (0);
181
182 /* COPY relocs are also handled elsewhere */
183 if (type == R_TYPE(COPY))
184 return (0);
185
186 /*
187 * We use the fact that relocation types are an `enum'
188 * Note: R_SPARC_6 is currently numerically largest.
189 */
190 if (type > R_TYPE(6))
191 return (-1);
192
193 value = rela->r_addend;
194
195 /*
196 * Handle relative relocs here, because we might not
197 * be able to access globals yet.
198 */
199 if (!dodebug && type == R_TYPE(RELATIVE)) {
200 *where += (Elf_Addr)(obj->relocbase + value);
201 return (0);
202 }
203
204 if (RELOC_RESOLVE_SYMBOL(type)) {
205
206 /* Find the symbol */
207 def = _rtld_find_symdef(rela->r_info, obj, &defobj, false);
208 if (def == NULL)
209 return (-1);
210
211 /* Add in the symbol's absolute address */
212 value += (Elf_Word)(defobj->relocbase + def->st_value);
213 }
214
215 if (RELOC_PC_RELATIVE(type)) {
216 value -= (Elf_Word)where;
217 }
218
219 if (RELOC_BASE_RELATIVE(type)) {
220 /*
221 * Note that even though sparcs use `Elf_rela' exclusively
222 * we still need the implicit memory addend in relocations
223 * referring to GOT entries. Undoubtedly, someone f*cked
224 * this up in the distant past, and now we're stuck with
225 * it in the name of compatibility for all eternity..
226 *
227 * In any case, the implicit and explicit should be mutually
228 * exclusive. We provide a check for that here.
229 */
230 #define DIAGNOSTIC
231 #ifdef DIAGNOSTIC
232 if (value != 0 && *where != 0) {
233 xprintf("BASE_REL(%s): where=%p, *where 0x%x, "
234 "addend=0x%x, base %p\n",
235 obj->path, where, *where,
236 rela->r_addend, obj->relocbase);
237 }
238 #endif
239 value += (Elf_Word)(obj->relocbase + *where);
240 }
241
242 mask = RELOC_VALUE_BITMASK(type);
243 value >>= RELOC_VALUE_RIGHTSHIFT(type);
244 value &= mask;
245
246 /* We ignore alignment restrictions here */
247 *where &= ~mask;
248 *where |= value;
249 #ifdef RTLD_DEBUG_RELOC
250 if (RELOC_RESOLVE_SYMBOL(type)) {
251 rdbg(dodebug, ("%s %s in %s --> %p %s",
252 reloc_names[type],
253 defobj->strtab + def->st_name, obj->path,
254 (void *)*where, defobj->path));
255 }
256 else {
257 rdbg(dodebug, ("%s --> %p", reloc_names[type],
258 (void *)*where));
259 }
260 #endif
261 return (0);
262 }
263
264 int
265 _rtld_relocate_plt_object(obj, rela, addrp, bind_now, dodebug)
266 Obj_Entry *obj;
267 const Elf_Rela *rela;
268 caddr_t *addrp;
269 bool bind_now;
270 bool dodebug;
271 {
272 const Elf_Sym *def;
273 const Obj_Entry *defobj;
274 Elf_Addr *where = (Elf_Addr *) (obj->relocbase + rela->r_offset);
275 Elf_Addr value;
276
277 if (bind_now == 0 && obj->pltgot != NULL)
278 return (0);
279
280 /* Fully resolve procedure addresses now */
281
282 assert(ELF_R_TYPE(rela->r_info) == R_TYPE(JMP_SLOT));
283
284 def = _rtld_find_symdef(rela->r_info, obj, &defobj, true);
285 if (def == NULL)
286 return (-1);
287
288 value = (Elf_Addr) (defobj->relocbase + def->st_value);
289
290 rdbg(dodebug, ("bind now %d/fixup in %s --> old=%p new=%p",
291 (int)bind_now, defobj->strtab + def->st_name,
292 (void *)*where, (void *)value));
293
294 /*
295 * At the PLT entry pointed at by `where', we now construct
296 * a direct transfer to the now fully resolved function
297 * address. The resulting code in the jump slot is:
298 *
299 * sethi %hi(roffset), %g1
300 * sethi %hi(addr), %g1
301 * jmp %g1+%lo(addr)
302 *
303 * We write the third instruction first, since that leaves the
304 * previous `b,a' at the second word in place. Hence the whole
305 * PLT slot can be atomically change to the new sequence by
306 * writing the `sethi' instruction at word 2.
307 */
308 #define SETHI 0x03000000
309 #define JMP 0x81c06000
310 #define NOP 0x01000000
311 where[2] = JMP | (value & 0x000003ff);
312 where[1] = SETHI | ((value >> 10) & 0x003fffff);
313 __asm __volatile("iflush %0+8" : : "r" (where));
314 __asm __volatile("iflush %0+4" : : "r" (where));
315
316 if (addrp != NULL)
317 *addrp = (caddr_t)value;
318
319 return (0);
320 }
321
322 void
323 _rtld_setup_pltgot(const Obj_Entry *obj)
324 {
325 /*
326 * PLTGOT is the PLT on the sparc.
327 * The first entry holds the call the dynamic linker.
328 * We construct a `call' sequence that transfers
329 * to `_rtld_bind_start()'.
330 * The second entry holds the object identification.
331 * Note: each PLT entry is three words long.
332 */
333 #define SAVE 0x9de3bfc0 /* i.e. `save %sp,-64,%sp' */
334 #define CALL 0x40000000
335 #define NOP 0x01000000
336 obj->pltgot[0] = SAVE;
337 obj->pltgot[1] = CALL |
338 ((Elf_Addr) &_rtld_bind_start - (Elf_Addr) &obj->pltgot[1]) >> 2;
339 obj->pltgot[2] = NOP;
340 obj->pltgot[3] = (Elf_Addr) obj;
341 }
342