1 1.72 riastrad /* $NetBSD: mdreloc.c,v 1.72 2024/08/03 21:59:58 riastradh Exp $ */ 2 1.1 eeh 3 1.1 eeh /*- 4 1.1 eeh * Copyright (c) 2000 Eduardo Horvath. 5 1.23 mycroft * Copyright (c) 1999, 2002 The NetBSD Foundation, Inc. 6 1.1 eeh * All rights reserved. 7 1.1 eeh * 8 1.1 eeh * This code is derived from software contributed to The NetBSD Foundation 9 1.27 mycroft * by Paul Kranenburg and by Charles M. Hannum. 10 1.1 eeh * 11 1.1 eeh * Redistribution and use in source and binary forms, with or without 12 1.1 eeh * modification, are permitted provided that the following conditions 13 1.1 eeh * are met: 14 1.1 eeh * 1. Redistributions of source code must retain the above copyright 15 1.1 eeh * notice, this list of conditions and the following disclaimer. 16 1.1 eeh * 2. Redistributions in binary form must reproduce the above copyright 17 1.1 eeh * notice, this list of conditions and the following disclaimer in the 18 1.1 eeh * documentation and/or other materials provided with the distribution. 19 1.1 eeh * 20 1.1 eeh * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS 21 1.1 eeh * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED 22 1.1 eeh * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR 23 1.1 eeh * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS 24 1.1 eeh * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR 25 1.1 eeh * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF 26 1.1 eeh * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS 27 1.1 eeh * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN 28 1.1 eeh * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) 29 1.1 eeh * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE 30 1.1 eeh * POSSIBILITY OF SUCH DAMAGE. 31 1.1 eeh */ 32 1.1 eeh 33 1.71 uwe /* 34 1.71 uwe * SPARC ELF relocations. 35 1.71 uwe * 36 1.71 uwe * Reference: 37 1.71 uwe * 38 1.71 uwe * SPARC Compliance Definition 2.4.1 39 1.71 uwe * http://sparc.org/wp-content/uploads/2014/01/SCD.2.4.1.pdf.gz 40 1.71 uwe */ 41 1.71 uwe 42 1.37 skrll #include <sys/cdefs.h> 43 1.37 skrll #ifndef lint 44 1.72 riastrad __RCSID("$NetBSD: mdreloc.c,v 1.72 2024/08/03 21:59:58 riastradh Exp $"); 45 1.37 skrll #endif /* not lint */ 46 1.37 skrll 47 1.68 joerg #include <machine/elf_support.h> 48 1.68 joerg 49 1.1 eeh #include <errno.h> 50 1.1 eeh #include <stdio.h> 51 1.1 eeh #include <stdlib.h> 52 1.1 eeh #include <string.h> 53 1.1 eeh #include <unistd.h> 54 1.1 eeh 55 1.1 eeh #include "rtldenv.h" 56 1.1 eeh #include "debug.h" 57 1.1 eeh #include "rtld.h" 58 1.1 eeh 59 1.1 eeh /* 60 1.1 eeh * The following table holds for each relocation type: 61 1.1 eeh * - the width in bits of the memory location the relocation 62 1.1 eeh * applies to (not currently used) 63 1.1 eeh * - the number of bits the relocation value must be shifted to the 64 1.1 eeh * right (i.e. discard least significant bits) to fit into 65 1.1 eeh * the appropriate field in the instruction word. 66 1.1 eeh * - flags indicating whether 67 1.1 eeh * * the relocation involves a symbol 68 1.1 eeh * * the relocation is relative to the current position 69 1.1 eeh * * the relocation is for a GOT entry 70 1.1 eeh * * the relocation is relative to the load address 71 1.1 eeh * 72 1.1 eeh */ 73 1.1 eeh #define _RF_S 0x80000000 /* Resolve symbol */ 74 1.1 eeh #define _RF_A 0x40000000 /* Use addend */ 75 1.1 eeh #define _RF_P 0x20000000 /* Location relative */ 76 1.1 eeh #define _RF_G 0x10000000 /* GOT offset */ 77 1.1 eeh #define _RF_B 0x08000000 /* Load address relative */ 78 1.2 eeh #define _RF_U 0x04000000 /* Unaligned */ 79 1.1 eeh #define _RF_SZ(s) (((s) & 0xff) << 8) /* memory target size */ 80 1.1 eeh #define _RF_RS(s) ( (s) & 0xff) /* right shift */ 81 1.52 martin static const int reloc_target_flags[R_TYPE(TLS_TPOFF64)+1] = { 82 1.1 eeh 0, /* NONE */ 83 1.1 eeh _RF_S|_RF_A| _RF_SZ(8) | _RF_RS(0), /* RELOC_8 */ 84 1.1 eeh _RF_S|_RF_A| _RF_SZ(16) | _RF_RS(0), /* RELOC_16 */ 85 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* RELOC_32 */ 86 1.1 eeh _RF_S|_RF_A|_RF_P| _RF_SZ(8) | _RF_RS(0), /* DISP_8 */ 87 1.1 eeh _RF_S|_RF_A|_RF_P| _RF_SZ(16) | _RF_RS(0), /* DISP_16 */ 88 1.1 eeh _RF_S|_RF_A|_RF_P| _RF_SZ(32) | _RF_RS(0), /* DISP_32 */ 89 1.1 eeh _RF_S|_RF_A|_RF_P| _RF_SZ(32) | _RF_RS(2), /* WDISP_30 */ 90 1.1 eeh _RF_S|_RF_A|_RF_P| _RF_SZ(32) | _RF_RS(2), /* WDISP_22 */ 91 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(10), /* HI22 */ 92 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* 22 */ 93 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* 13 */ 94 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* LO10 */ 95 1.1 eeh _RF_G| _RF_SZ(32) | _RF_RS(0), /* GOT10 */ 96 1.1 eeh _RF_G| _RF_SZ(32) | _RF_RS(0), /* GOT13 */ 97 1.1 eeh _RF_G| _RF_SZ(32) | _RF_RS(10), /* GOT22 */ 98 1.1 eeh _RF_S|_RF_A|_RF_P| _RF_SZ(32) | _RF_RS(0), /* PC10 */ 99 1.1 eeh _RF_S|_RF_A|_RF_P| _RF_SZ(32) | _RF_RS(10), /* PC22 */ 100 1.1 eeh _RF_A|_RF_P| _RF_SZ(32) | _RF_RS(2), /* WPLT30 */ 101 1.1 eeh _RF_SZ(32) | _RF_RS(0), /* COPY */ 102 1.1 eeh _RF_S|_RF_A| _RF_SZ(64) | _RF_RS(0), /* GLOB_DAT */ 103 1.1 eeh _RF_SZ(32) | _RF_RS(0), /* JMP_SLOT */ 104 1.1 eeh _RF_A| _RF_B| _RF_SZ(64) | _RF_RS(0), /* RELATIVE */ 105 1.2 eeh _RF_S|_RF_A| _RF_U| _RF_SZ(32) | _RF_RS(0), /* UA_32 */ 106 1.1 eeh 107 1.1 eeh _RF_A| _RF_SZ(32) | _RF_RS(0), /* PLT32 */ 108 1.1 eeh _RF_A| _RF_SZ(32) | _RF_RS(10), /* HIPLT22 */ 109 1.1 eeh _RF_A| _RF_SZ(32) | _RF_RS(0), /* LOPLT10 */ 110 1.1 eeh _RF_A|_RF_P| _RF_SZ(32) | _RF_RS(0), /* PCPLT32 */ 111 1.1 eeh _RF_A|_RF_P| _RF_SZ(32) | _RF_RS(10), /* PCPLT22 */ 112 1.1 eeh _RF_A|_RF_P| _RF_SZ(32) | _RF_RS(0), /* PCPLT10 */ 113 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* 10 */ 114 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* 11 */ 115 1.1 eeh _RF_S|_RF_A| _RF_SZ(64) | _RF_RS(0), /* 64 */ 116 1.1 eeh _RF_S|_RF_A|/*extra*/ _RF_SZ(32) | _RF_RS(0), /* OLO10 */ 117 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(42), /* HH22 */ 118 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(32), /* HM10 */ 119 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(10), /* LM22 */ 120 1.1 eeh _RF_S|_RF_A|_RF_P| _RF_SZ(32) | _RF_RS(42), /* PC_HH22 */ 121 1.1 eeh _RF_S|_RF_A|_RF_P| _RF_SZ(32) | _RF_RS(32), /* PC_HM10 */ 122 1.1 eeh _RF_S|_RF_A|_RF_P| _RF_SZ(32) | _RF_RS(10), /* PC_LM22 */ 123 1.1 eeh _RF_S|_RF_A|_RF_P| _RF_SZ(32) | _RF_RS(2), /* WDISP16 */ 124 1.1 eeh _RF_S|_RF_A|_RF_P| _RF_SZ(32) | _RF_RS(2), /* WDISP19 */ 125 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* GLOB_JMP */ 126 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* 7 */ 127 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* 5 */ 128 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* 6 */ 129 1.1 eeh _RF_S|_RF_A|_RF_P| _RF_SZ(64) | _RF_RS(0), /* DISP64 */ 130 1.1 eeh _RF_A| _RF_SZ(64) | _RF_RS(0), /* PLT64 */ 131 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(10), /* HIX22 */ 132 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* LOX10 */ 133 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(22), /* H44 */ 134 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(12), /* M44 */ 135 1.1 eeh _RF_S|_RF_A| _RF_SZ(32) | _RF_RS(0), /* L44 */ 136 1.1 eeh _RF_S|_RF_A| _RF_SZ(64) | _RF_RS(0), /* REGISTER */ 137 1.2 eeh _RF_S|_RF_A| _RF_U| _RF_SZ(64) | _RF_RS(0), /* UA64 */ 138 1.2 eeh _RF_S|_RF_A| _RF_U| _RF_SZ(16) | _RF_RS(0), /* UA16 */ 139 1.52 martin /* TLS relocs not represented here! */ 140 1.1 eeh }; 141 1.1 eeh 142 1.1 eeh #ifdef RTLD_DEBUG_RELOC 143 1.1 eeh static const char *reloc_names[] = { 144 1.1 eeh "NONE", "RELOC_8", "RELOC_16", "RELOC_32", "DISP_8", 145 1.1 eeh "DISP_16", "DISP_32", "WDISP_30", "WDISP_22", "HI22", 146 1.1 eeh "22", "13", "LO10", "GOT10", "GOT13", 147 1.1 eeh "GOT22", "PC10", "PC22", "WPLT30", "COPY", 148 1.1 eeh "GLOB_DAT", "JMP_SLOT", "RELATIVE", "UA_32", "PLT32", 149 1.1 eeh "HIPLT22", "LOPLT10", "LOPLT10", "PCPLT22", "PCPLT32", 150 1.1 eeh "10", "11", "64", "OLO10", "HH22", 151 1.72 riastrad "HM10", "LM22", "PC_HH22", "PC_HM10", "PC_LM22", 152 1.1 eeh "WDISP16", "WDISP19", "GLOB_JMP", "7", "5", "6", 153 1.72 riastrad "DISP64", "PLT64", "HIX22", "LOX10", "H44", "M44", 154 1.52 martin "L44", "REGISTER", "UA64", "UA16", 155 1.52 martin "TLS_GD_HI22", "TLS_GD_LO10", "TLS_GD_ADD", "TLS_GD_CALL", 156 1.52 martin "TLS_LDM_HI22", "TLS_LDM_LO10", "TLS_LDM_ADD", "TLS_LDM_CALL", 157 1.72 riastrad "TLS_LDO_HIX22", "TLS_LDO_LOX10", "TLS_LDO_ADD", "TLS_IE_HI22", 158 1.72 riastrad "TLS_IE_LO10", "TLS_IE_LD", "TLS_IE_LDX", "TLS_IE_ADD", "TLS_LE_HIX22", 159 1.72 riastrad "TLS_LE_LOX10", "TLS_DTPMOD32", "TLS_DTPMOD64", "TLS_DTPOFF32", 160 1.52 martin "TLS_DTPOFF64", "TLS_TPOFF32", "TLS_TPOFF64", 161 1.1 eeh }; 162 1.1 eeh #endif 163 1.1 eeh 164 1.1 eeh #define RELOC_RESOLVE_SYMBOL(t) ((reloc_target_flags[t] & _RF_S) != 0) 165 1.1 eeh #define RELOC_PC_RELATIVE(t) ((reloc_target_flags[t] & _RF_P) != 0) 166 1.1 eeh #define RELOC_BASE_RELATIVE(t) ((reloc_target_flags[t] & _RF_B) != 0) 167 1.2 eeh #define RELOC_UNALIGNED(t) ((reloc_target_flags[t] & _RF_U) != 0) 168 1.2 eeh #define RELOC_USE_ADDEND(t) ((reloc_target_flags[t] & _RF_A) != 0) 169 1.1 eeh #define RELOC_TARGET_SIZE(t) ((reloc_target_flags[t] >> 8) & 0xff) 170 1.1 eeh #define RELOC_VALUE_RIGHTSHIFT(t) (reloc_target_flags[t] & 0xff) 171 1.52 martin #define RELOC_TLS(t) (t >= R_TYPE(TLS_GD_HI22)) 172 1.1 eeh 173 1.16 mycroft static const long reloc_target_bitmask[] = { 174 1.1 eeh #define _BM(x) (~(-(1ULL << (x)))) 175 1.1 eeh 0, /* NONE */ 176 1.1 eeh _BM(8), _BM(16), _BM(32), /* RELOC_8, _16, _32 */ 177 1.1 eeh _BM(8), _BM(16), _BM(32), /* DISP8, DISP16, DISP32 */ 178 1.1 eeh _BM(30), _BM(22), /* WDISP30, WDISP22 */ 179 1.1 eeh _BM(22), _BM(22), /* HI22, _22 */ 180 1.1 eeh _BM(13), _BM(10), /* RELOC_13, _LO10 */ 181 1.1 eeh _BM(10), _BM(13), _BM(22), /* GOT10, GOT13, GOT22 */ 182 1.72 riastrad _BM(10), _BM(22), /* _PC10, _PC22 */ 183 1.1 eeh _BM(30), 0, /* _WPLT30, _COPY */ 184 1.56 martin -1, _BM(32), -1, /* _GLOB_DAT, JMP_SLOT, _RELATIVE */ 185 1.1 eeh _BM(32), _BM(32), /* _UA32, PLT32 */ 186 1.1 eeh _BM(22), _BM(10), /* _HIPLT22, LOPLT10 */ 187 1.1 eeh _BM(32), _BM(22), _BM(10), /* _PCPLT32, _PCPLT22, _PCPLT10 */ 188 1.1 eeh _BM(10), _BM(11), -1, /* _10, _11, _64 */ 189 1.59 martin _BM(13), _BM(22), /* _OLO10, _HH22 */ 190 1.1 eeh _BM(10), _BM(22), /* _HM10, _LM22 */ 191 1.1 eeh _BM(22), _BM(10), _BM(22), /* _PC_HH22, _PC_HM10, _PC_LM22 */ 192 1.1 eeh _BM(16), _BM(19), /* _WDISP16, _WDISP19 */ 193 1.1 eeh -1, /* GLOB_JMP */ 194 1.54 martin _BM(7), _BM(5), _BM(6), /* _7, _5, _6 */ 195 1.1 eeh -1, -1, /* DISP64, PLT64 */ 196 1.1 eeh _BM(22), _BM(13), /* HIX22, LOX10 */ 197 1.55 martin _BM(22), _BM(10), _BM(12), /* H44, M44, L44 */ 198 1.1 eeh -1, -1, _BM(16), /* REGISTER, UA64, UA16 */ 199 1.1 eeh #undef _BM 200 1.1 eeh }; 201 1.1 eeh #define RELOC_VALUE_BITMASK(t) (reloc_target_bitmask[t]) 202 1.1 eeh 203 1.1 eeh /* 204 1.1 eeh * Instruction templates: 205 1.1 eeh */ 206 1.1 eeh 207 1.1 eeh 208 1.26 mycroft /* %hi(v)/%lo(v) with variable shift */ 209 1.26 mycroft #define HIVAL(v, s) (((v) >> (s)) & 0x003fffff) 210 1.26 mycroft #define LOVAL(v, s) (((v) >> (s)) & 0x000003ff) 211 1.1 eeh 212 1.20 mycroft void _rtld_bind_start_0(long, long); 213 1.20 mycroft void _rtld_bind_start_1(long, long); 214 1.18 mycroft void _rtld_relocate_nonplt_self(Elf_Dyn *, Elf_Addr); 215 1.34 skrll caddr_t _rtld_bind(const Obj_Entry *, Elf_Word); 216 1.1 eeh 217 1.1 eeh /* 218 1.1 eeh * Install rtld function call into this PLT slot. 219 1.1 eeh */ 220 1.29 mycroft #define SAVE 0x9de3bf50 /* i.e. `save %sp,-176,%sp' */ 221 1.1 eeh #define SETHI_l0 0x21000000 222 1.1 eeh #define SETHI_l1 0x23000000 223 1.1 eeh #define OR_l0_l0 0xa0142000 224 1.1 eeh #define SLLX_l0_32_l0 0xa12c3020 225 1.1 eeh #define OR_l0_l1_l0 0xa0140011 226 1.26 mycroft #define JMPL_l0_o0 0x91c42000 227 1.26 mycroft #define MOV_g1_o1 0x92100001 228 1.1 eeh 229 1.36 skrll void _rtld_install_plt(Elf_Word *, Elf_Addr); 230 1.36 skrll static inline int _rtld_relocate_plt_object(const Obj_Entry *, 231 1.36 skrll const Elf_Rela *, Elf_Addr *); 232 1.1 eeh 233 1.1 eeh void 234 1.34 skrll _rtld_install_plt(Elf_Word *pltgot, Elf_Addr proc) 235 1.1 eeh { 236 1.1 eeh pltgot[0] = SAVE; 237 1.1 eeh pltgot[1] = SETHI_l0 | HIVAL(proc, 42); 238 1.1 eeh pltgot[2] = SETHI_l1 | HIVAL(proc, 10); 239 1.26 mycroft pltgot[3] = OR_l0_l0 | LOVAL(proc, 32); 240 1.1 eeh pltgot[4] = SLLX_l0_32_l0; 241 1.1 eeh pltgot[5] = OR_l0_l1_l0; 242 1.26 mycroft pltgot[6] = JMPL_l0_o0 | LOVAL(proc, 0); 243 1.26 mycroft pltgot[7] = MOV_g1_o1; 244 1.1 eeh } 245 1.2 eeh 246 1.6 mycroft void 247 1.6 mycroft _rtld_setup_pltgot(const Obj_Entry *obj) 248 1.6 mycroft { 249 1.6 mycroft /* 250 1.6 mycroft * On sparc64 we got troubles. 251 1.6 mycroft * 252 1.6 mycroft * Instructions are 4 bytes long. 253 1.6 mycroft * Elf[64]_Addr is 8 bytes long, so are our pltglot[] 254 1.6 mycroft * array entries. 255 1.6 mycroft * Each PLT entry jumps to PLT0 to enter the dynamic 256 1.6 mycroft * linker. 257 1.6 mycroft * Loading an arbitrary 64-bit pointer takes 6 258 1.6 mycroft * instructions and 2 registers. 259 1.6 mycroft * 260 1.6 mycroft * Somehow we need to issue a save to get a new stack 261 1.6 mycroft * frame, load the address of the dynamic linker, and 262 1.6 mycroft * jump there, in 8 instructions or less. 263 1.6 mycroft * 264 1.6 mycroft * Oh, we need to fill out both PLT0 and PLT1. 265 1.6 mycroft */ 266 1.6 mycroft { 267 1.6 mycroft Elf_Word *entry = (Elf_Word *)obj->pltgot; 268 1.6 mycroft 269 1.6 mycroft /* Install in entries 0 and 1 */ 270 1.6 mycroft _rtld_install_plt(&entry[0], (Elf_Addr) &_rtld_bind_start_0); 271 1.6 mycroft _rtld_install_plt(&entry[8], (Elf_Addr) &_rtld_bind_start_1); 272 1.6 mycroft 273 1.72 riastrad /* 274 1.6 mycroft * Install the object reference in first slot 275 1.6 mycroft * of entry 2. 276 1.6 mycroft */ 277 1.6 mycroft obj->pltgot[8] = (Elf_Addr) obj; 278 1.6 mycroft } 279 1.8 mycroft } 280 1.8 mycroft 281 1.18 mycroft void 282 1.34 skrll _rtld_relocate_nonplt_self(Elf_Dyn *dynp, Elf_Addr relocbase) 283 1.18 mycroft { 284 1.18 mycroft const Elf_Rela *rela = 0, *relalim; 285 1.18 mycroft Elf_Addr relasz = 0; 286 1.18 mycroft Elf_Addr *where; 287 1.18 mycroft 288 1.18 mycroft for (; dynp->d_tag != DT_NULL; dynp++) { 289 1.18 mycroft switch (dynp->d_tag) { 290 1.18 mycroft case DT_RELA: 291 1.18 mycroft rela = (const Elf_Rela *)(relocbase + dynp->d_un.d_ptr); 292 1.18 mycroft break; 293 1.18 mycroft case DT_RELASZ: 294 1.18 mycroft relasz = dynp->d_un.d_val; 295 1.18 mycroft break; 296 1.18 mycroft } 297 1.18 mycroft } 298 1.44 lukem relalim = (const Elf_Rela *)((const uint8_t *)rela + relasz); 299 1.18 mycroft for (; rela < relalim; rela++) { 300 1.18 mycroft where = (Elf_Addr *)(relocbase + rela->r_offset); 301 1.18 mycroft *where = (Elf_Addr)(relocbase + rela->r_addend); 302 1.18 mycroft } 303 1.18 mycroft } 304 1.18 mycroft 305 1.8 mycroft int 306 1.47 joerg _rtld_relocate_nonplt_objects(Obj_Entry *obj) 307 1.8 mycroft { 308 1.9 mycroft const Elf_Rela *rela; 309 1.40 martin const Elf_Sym *def = NULL; 310 1.40 martin const Obj_Entry *defobj = NULL; 311 1.61 joerg unsigned long last_symnum = ULONG_MAX; 312 1.18 mycroft 313 1.9 mycroft for (rela = obj->rela; rela < obj->relalim; rela++) { 314 1.9 mycroft Elf_Addr *where; 315 1.9 mycroft Elf_Word type; 316 1.9 mycroft Elf_Addr value = 0, mask; 317 1.61 joerg unsigned long symnum; 318 1.9 mycroft 319 1.9 mycroft where = (Elf_Addr *) (obj->relocbase + rela->r_offset); 320 1.9 mycroft 321 1.9 mycroft type = ELF_R_TYPE(rela->r_info); 322 1.9 mycroft if (type == R_TYPE(NONE)) 323 1.12 mycroft continue; 324 1.9 mycroft 325 1.53 martin /* OLO10 relocations have extra info */ 326 1.53 martin if ((type & 0x00ff) == R_SPARC_OLO10) 327 1.53 martin type = R_SPARC_OLO10; 328 1.53 martin 329 1.23 mycroft /* We do JMP_SLOTs in _rtld_bind() below */ 330 1.9 mycroft if (type == R_TYPE(JMP_SLOT)) 331 1.12 mycroft continue; 332 1.9 mycroft 333 1.65 joerg /* IFUNC relocations are handled in _rtld_call_ifunc */ 334 1.65 joerg if (type == R_TYPE(IRELATIVE)) { 335 1.69 joerg if (obj->ifunc_remaining_nonplt == 0) { 336 1.69 joerg obj->ifunc_remaining_nonplt = 337 1.69 joerg obj->relalim - rela; 338 1.69 joerg } 339 1.65 joerg continue; 340 1.65 joerg } 341 1.65 joerg 342 1.9 mycroft /* COPY relocs are also handled elsewhere */ 343 1.9 mycroft if (type == R_TYPE(COPY)) 344 1.12 mycroft continue; 345 1.8 mycroft 346 1.9 mycroft /* 347 1.9 mycroft * We use the fact that relocation types are an `enum' 348 1.52 martin * Note: R_SPARC_TLS_TPOFF64 is currently numerically largest. 349 1.9 mycroft */ 350 1.53 martin if (type > R_TYPE(TLS_TPOFF64)) { 351 1.53 martin dbg(("unknown relocation type %x at %p", type, rela)); 352 1.53 martin return -1; 353 1.53 martin } 354 1.8 mycroft 355 1.9 mycroft value = rela->r_addend; 356 1.8 mycroft 357 1.61 joerg if (RELOC_RESOLVE_SYMBOL(type) || RELOC_TLS(type)) { 358 1.61 joerg symnum = ELF_R_SYM(rela->r_info); 359 1.61 joerg if (last_symnum != symnum) { 360 1.61 joerg last_symnum = symnum; 361 1.61 joerg def = _rtld_find_symdef(symnum, obj, &defobj, 362 1.61 joerg false); 363 1.61 joerg if (def == NULL) 364 1.61 joerg return -1; 365 1.61 joerg } 366 1.61 joerg } 367 1.61 joerg 368 1.9 mycroft /* 369 1.52 martin * Handle TLS relocations here, they are different. 370 1.52 martin */ 371 1.52 martin if (RELOC_TLS(type)) { 372 1.52 martin switch (type) { 373 1.60 joerg case R_TYPE(TLS_DTPMOD64): 374 1.60 joerg *where = (Elf64_Addr)defobj->tlsindex; 375 1.60 joerg 376 1.60 joerg rdbg(("TLS_DTPMOD64 %s in %s --> %p", 377 1.60 joerg obj->strtab + 378 1.60 joerg obj->symtab[symnum].st_name, 379 1.60 joerg obj->path, (void *)*where)); 380 1.60 joerg 381 1.60 joerg break; 382 1.60 joerg 383 1.60 joerg case R_TYPE(TLS_DTPOFF64): 384 1.60 joerg *where = (Elf64_Addr)(def->st_value 385 1.60 joerg + rela->r_addend); 386 1.60 joerg 387 1.60 joerg rdbg(("DTPOFF64 %s in %s --> %p", 388 1.60 joerg obj->strtab + 389 1.60 joerg obj->symtab[symnum].st_name, 390 1.60 joerg obj->path, (void *)*where)); 391 1.60 joerg 392 1.60 joerg break; 393 1.60 joerg 394 1.60 joerg case R_TYPE(TLS_TPOFF64): 395 1.70 joerg if (!defobj->tls_static && 396 1.70 joerg _rtld_tls_offset_allocate(__UNCONST(defobj))) 397 1.70 joerg return -1; 398 1.60 joerg 399 1.60 joerg *where = (Elf64_Addr)(def->st_value - 400 1.60 joerg defobj->tlsoffset + rela->r_addend); 401 1.60 joerg 402 1.60 joerg rdbg(("TLS_TPOFF64 %s in %s --> %p", 403 1.60 joerg obj->strtab + obj->symtab[symnum].st_name, 404 1.60 joerg obj->path, (void *)*where)); 405 1.52 martin 406 1.60 joerg break; 407 1.52 martin } 408 1.52 martin continue; 409 1.52 martin } 410 1.52 martin 411 1.52 martin /* 412 1.18 mycroft * Handle relative relocs here, as an optimization. 413 1.9 mycroft */ 414 1.17 mycroft if (type == R_TYPE(RELATIVE)) { 415 1.9 mycroft *where = (Elf_Addr)(obj->relocbase + value); 416 1.21 mycroft rdbg(("RELATIVE in %s --> %p", obj->path, 417 1.18 mycroft (void *)*where)); 418 1.12 mycroft continue; 419 1.9 mycroft } 420 1.8 mycroft 421 1.9 mycroft if (RELOC_RESOLVE_SYMBOL(type)) { 422 1.9 mycroft /* Add in the symbol's absolute address */ 423 1.9 mycroft value += (Elf_Addr)(defobj->relocbase + def->st_value); 424 1.9 mycroft } 425 1.8 mycroft 426 1.53 martin if (type == R_SPARC_OLO10) { 427 1.53 martin value = (value & 0x3ff) 428 1.53 martin + (((Elf64_Xword)rela->r_info<<32)>>40); 429 1.53 martin } 430 1.53 martin 431 1.9 mycroft if (RELOC_PC_RELATIVE(type)) { 432 1.9 mycroft value -= (Elf_Addr)where; 433 1.9 mycroft } 434 1.8 mycroft 435 1.9 mycroft if (RELOC_BASE_RELATIVE(type)) { 436 1.9 mycroft /* 437 1.9 mycroft * Note that even though sparcs use `Elf_rela' 438 1.9 mycroft * exclusively we still need the implicit memory addend 439 1.9 mycroft * in relocations referring to GOT entries. 440 1.9 mycroft * Undoubtedly, someone f*cked this up in the distant 441 1.9 mycroft * past, and now we're stuck with it in the name of 442 1.9 mycroft * compatibility for all eternity.. 443 1.9 mycroft * 444 1.9 mycroft * In any case, the implicit and explicit should be 445 1.9 mycroft * mutually exclusive. We provide a check for that 446 1.9 mycroft * here. 447 1.9 mycroft */ 448 1.8 mycroft #ifdef DIAGNOSTIC 449 1.9 mycroft if (value != 0 && *where != 0) { 450 1.9 mycroft xprintf("BASE_REL(%s): where=%p, *where 0x%lx, " 451 1.9 mycroft "addend=0x%lx, base %p\n", 452 1.9 mycroft obj->path, where, *where, 453 1.9 mycroft rela->r_addend, obj->relocbase); 454 1.9 mycroft } 455 1.9 mycroft #endif 456 1.9 mycroft /* XXXX -- apparently we ignore the preexisting value */ 457 1.9 mycroft value += (Elf_Addr)(obj->relocbase); 458 1.8 mycroft } 459 1.8 mycroft 460 1.9 mycroft mask = RELOC_VALUE_BITMASK(type); 461 1.9 mycroft value >>= RELOC_VALUE_RIGHTSHIFT(type); 462 1.9 mycroft value &= mask; 463 1.9 mycroft 464 1.9 mycroft if (RELOC_UNALIGNED(type)) { 465 1.9 mycroft /* Handle unaligned relocations. */ 466 1.9 mycroft Elf_Addr tmp = 0; 467 1.9 mycroft char *ptr = (char *)where; 468 1.9 mycroft int i, size = RELOC_TARGET_SIZE(type)/8; 469 1.9 mycroft 470 1.9 mycroft /* Read it in one byte at a time. */ 471 1.9 mycroft for (i=0; i<size; i++) 472 1.9 mycroft tmp = (tmp << 8) | ptr[i]; 473 1.9 mycroft 474 1.9 mycroft tmp &= ~mask; 475 1.9 mycroft tmp |= value; 476 1.9 mycroft 477 1.9 mycroft /* Write it back out. */ 478 1.9 mycroft for (i=0; i<size; i++) 479 1.9 mycroft ptr[i] = ((tmp >> (8*i)) & 0xff); 480 1.8 mycroft #ifdef RTLD_DEBUG_RELOC 481 1.9 mycroft value = (Elf_Addr)tmp; 482 1.8 mycroft #endif 483 1.8 mycroft 484 1.9 mycroft } else if (RELOC_TARGET_SIZE(type) > 32) { 485 1.9 mycroft *where &= ~mask; 486 1.9 mycroft *where |= value; 487 1.8 mycroft #ifdef RTLD_DEBUG_RELOC 488 1.9 mycroft value = (Elf_Addr)*where; 489 1.8 mycroft #endif 490 1.9 mycroft } else { 491 1.9 mycroft Elf32_Addr *where32 = (Elf32_Addr *)where; 492 1.8 mycroft 493 1.9 mycroft *where32 &= ~mask; 494 1.9 mycroft *where32 |= value; 495 1.8 mycroft #ifdef RTLD_DEBUG_RELOC 496 1.9 mycroft value = (Elf_Addr)*where32; 497 1.8 mycroft #endif 498 1.9 mycroft } 499 1.8 mycroft 500 1.8 mycroft #ifdef RTLD_DEBUG_RELOC 501 1.9 mycroft if (RELOC_RESOLVE_SYMBOL(type)) { 502 1.21 mycroft rdbg(("%s %s in %s --> %p in %s", reloc_names[type], 503 1.11 mycroft obj->strtab + obj->symtab[symnum].st_name, 504 1.33 petrov obj->path, (void *)value, defobj->path)); 505 1.11 mycroft } else { 506 1.21 mycroft rdbg(("%s in %s --> %p", reloc_names[type], 507 1.33 petrov obj->path, (void *)value)); 508 1.9 mycroft } 509 1.9 mycroft #endif 510 1.8 mycroft } 511 1.13 mycroft return (0); 512 1.13 mycroft } 513 1.13 mycroft 514 1.13 mycroft int 515 1.64 joerg _rtld_relocate_plt_lazy(Obj_Entry *obj) 516 1.13 mycroft { 517 1.65 joerg const Elf_Rela *rela; 518 1.65 joerg 519 1.65 joerg for (rela = obj->pltrelalim; rela-- > obj->pltrela; ) { 520 1.65 joerg if (ELF_R_TYPE(rela->r_info) == R_TYPE(JMP_IREL)) 521 1.65 joerg obj->ifunc_remaining = obj->pltrelalim - rela + 1; 522 1.65 joerg } 523 1.65 joerg 524 1.65 joerg return 0; 525 1.23 mycroft } 526 1.23 mycroft 527 1.23 mycroft caddr_t 528 1.34 skrll _rtld_bind(const Obj_Entry *obj, Elf_Word reloff) 529 1.23 mycroft { 530 1.24 mycroft const Elf_Rela *rela = obj->pltrela + reloff; 531 1.35 martin Elf_Addr result; 532 1.35 martin int err; 533 1.23 mycroft 534 1.39 mrg result = 0; /* XXX gcc */ 535 1.39 mrg 536 1.67 joerg if (ELF_R_TYPE(obj->pltrela->r_info) == R_TYPE(JMP_SLOT) || 537 1.67 joerg ELF_R_TYPE(obj->pltrela->r_info) == R_TYPE(JMP_IREL)) { 538 1.23 mycroft /* 539 1.23 mycroft * XXXX 540 1.23 mycroft * 541 1.23 mycroft * The first four PLT entries are reserved. There is some 542 1.23 mycroft * disagreement whether they should have associated relocation 543 1.23 mycroft * entries. Both the SPARC 32-bit and 64-bit ELF 544 1.23 mycroft * specifications say that they should have relocation entries, 545 1.23 mycroft * but the 32-bit SPARC binutils do not generate them, and now 546 1.23 mycroft * the 64-bit SPARC binutils have stopped generating them too. 547 1.72 riastrad * 548 1.23 mycroft * So, to provide binary compatibility, we will check the first 549 1.23 mycroft * entry, if it is reserved it should not be of the type 550 1.67 joerg * JMP_SLOT or JMP_REL. If it is either of those, then 551 1.67 joerg * the 4 reserved entries were not generated and our index 552 1.67 joerg * is 4 entries too far. 553 1.23 mycroft */ 554 1.23 mycroft rela -= 4; 555 1.23 mycroft } 556 1.32 thorpej 557 1.51 joerg _rtld_shared_enter(); 558 1.35 martin err = _rtld_relocate_plt_object(obj, rela, &result); 559 1.46 christos if (err) 560 1.35 martin _rtld_die(); 561 1.51 joerg _rtld_shared_exit(); 562 1.35 martin 563 1.35 martin return (caddr_t)result; 564 1.35 martin } 565 1.35 martin 566 1.35 martin int 567 1.35 martin _rtld_relocate_plt_objects(const Obj_Entry *obj) 568 1.35 martin { 569 1.35 martin const Elf_Rela *rela; 570 1.35 martin 571 1.35 martin rela = obj->pltrela; 572 1.35 martin 573 1.35 martin /* 574 1.35 martin * Check for first four reserved entries - and skip them. 575 1.35 martin * See above for details. 576 1.35 martin */ 577 1.67 joerg if (ELF_R_TYPE(obj->pltrela->r_info) != R_TYPE(JMP_SLOT) && 578 1.67 joerg ELF_R_TYPE(obj->pltrela->r_info) != R_TYPE(JMP_IREL)) 579 1.35 martin rela += 4; 580 1.35 martin 581 1.35 martin for (; rela < obj->pltrelalim; rela++) 582 1.35 martin if (_rtld_relocate_plt_object(obj, rela, NULL) < 0) 583 1.35 martin return -1; 584 1.35 martin 585 1.35 martin return 0; 586 1.35 martin } 587 1.35 martin 588 1.65 joerg static inline void 589 1.65 joerg _rtld_write_plt(Elf_Word *where, Elf_Addr value, const Elf_Rela *rela, 590 1.65 joerg const Obj_Entry *obj) 591 1.35 martin { 592 1.65 joerg if (rela && rela->r_addend) { 593 1.23 mycroft Elf_Addr *ptr = (Elf_Addr *)where; 594 1.23 mycroft /* 595 1.48 skrll * This entry is >= 32768. The relocations points to a 596 1.28 mycroft * PC-relative pointer to the bind_0 stub at the top of the 597 1.28 mycroft * PLT section. Update it to point to the target function. 598 1.23 mycroft */ 599 1.27 mycroft ptr[0] += value - (Elf_Addr)obj->pltgot; 600 1.23 mycroft } else { 601 1.68 joerg sparc_write_branch(where + 1, (void *)value); 602 1.65 joerg } 603 1.65 joerg } 604 1.65 joerg 605 1.65 joerg /* 606 1.65 joerg * New inline function that is called by _rtld_relocate_plt_object and 607 1.65 joerg * _rtld_bind 608 1.65 joerg */ 609 1.65 joerg static inline int 610 1.65 joerg _rtld_relocate_plt_object(const Obj_Entry *obj, const Elf_Rela *rela, 611 1.65 joerg Elf_Addr *tp) 612 1.65 joerg { 613 1.65 joerg Elf_Word *where = (Elf_Word *)(obj->relocbase + rela->r_offset); 614 1.65 joerg const Elf_Sym *def; 615 1.65 joerg const Obj_Entry *defobj; 616 1.65 joerg Elf_Addr value; 617 1.65 joerg unsigned long info = rela->r_info; 618 1.65 joerg 619 1.65 joerg if (ELF_R_TYPE(info) == R_TYPE(JMP_IREL)) 620 1.65 joerg return 0; 621 1.65 joerg 622 1.65 joerg assert(ELF_R_TYPE(info) == R_TYPE(JMP_SLOT)); 623 1.65 joerg 624 1.65 joerg def = _rtld_find_plt_symdef(ELF_R_SYM(info), obj, &defobj, tp != NULL); 625 1.65 joerg if (__predict_false(def == NULL)) 626 1.65 joerg return -1; 627 1.65 joerg if (__predict_false(def == &_rtld_sym_zero)) 628 1.65 joerg return 0; 629 1.23 mycroft 630 1.65 joerg if (ELF_ST_TYPE(def->st_info) == STT_GNU_IFUNC) { 631 1.65 joerg if (tp == NULL) 632 1.65 joerg return 0; 633 1.65 joerg value = _rtld_resolve_ifunc(defobj, def); 634 1.65 joerg } else { 635 1.65 joerg value = (Elf_Addr)(defobj->relocbase + def->st_value); 636 1.23 mycroft } 637 1.72 riastrad rdbg(("bind now/fixup in %s at %p --> new=%p", 638 1.65 joerg defobj->strtab + def->st_name, (void*)where, (void *)value)); 639 1.65 joerg 640 1.65 joerg _rtld_write_plt(where, value, rela, obj); 641 1.23 mycroft 642 1.35 martin if (tp) 643 1.35 martin *tp = value; 644 1.35 martin 645 1.35 martin return 0; 646 1.6 mycroft } 647