mirror of
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530 lines
16 KiB
C
530 lines
16 KiB
C
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/* Machine-dependent ELF dynamic relocation inline functions. PowerPC version.
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Copyright (C) 1995, 1996, 1997 Free Software Foundation, Inc.
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This file is part of the GNU C Library.
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The GNU C Library is free software; you can redistribute it and/or
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modify it under the terms of the GNU Library General Public License as
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published by the Free Software Foundation; either version 2 of the
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License, or (at your option) any later version.
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The GNU C Library is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
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Library General Public License for more details.
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You should have received a copy of the GNU Library General Public
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License along with the GNU C Library; see the file COPYING.LIB. If not,
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write to the Free Software Foundation, Inc., 59 Temple Place - Suite 330,
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Boston, MA 02111-1307, USA. */
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#define ELF_MACHINE_NAME "powerpc"
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#include <assert.h>
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#include <string.h>
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#include <link.h>
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/* stuff for the PLT */
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#define PLT_INITIAL_ENTRY_WORDS 18
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#define PLT_LONGBRANCH_ENTRY_WORDS 10
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#define OPCODE_ADDI(rd,ra,simm) \
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(0x38000000 | (rd) << 21 | (ra) << 16 | (simm) & 0xffff)
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#define OPCODE_ADDIS(rd,ra,simm) \
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(0x3c000000 | (rd) << 21 | (ra) << 16 | (simm) & 0xffff)
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#define OPCODE_ADD(rd,ra,rb) \
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(0x7c000214 | (rd) << 21 | (ra) << 16 | (rb) << 11)
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#define OPCODE_B(target) (0x48000000 | (target) & 0x03fffffc)
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#define OPCODE_BA(target) (0x48000002 | (target) & 0x03fffffc)
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#define OPCODE_BCTR() 0x4e800420
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#define OPCODE_LWZ(rd,d,ra) \
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(0x80000000 | (rd) << 21 | (ra) << 16 | (d) & 0xffff)
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#define OPCODE_MTCTR(rd) (0x7C0903A6 | (rd) << 21)
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#define OPCODE_RLWINM(ra,rs,sh,mb,me) \
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(0x54000000 | (rs) << 21 | (ra) << 16 | (sh) << 11 | (mb) << 6 | (me) << 1)
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#define OPCODE_LI(rd,simm) OPCODE_ADDI(rd,0,simm)
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#define OPCODE_SLWI(ra,rs,sh) OPCODE_RLWINM(ra,rs,sh,0,31-sh)
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/* Return nonzero iff E_MACHINE is compatible with the running host. */
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static inline int
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elf_machine_matches_host (Elf32_Half e_machine)
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{
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return e_machine == EM_PPC;
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}
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/* Return the link-time address of _DYNAMIC, the first value in the GOT. */
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static inline Elf32_Addr
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elf_machine_dynamic (void)
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{
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Elf32_Addr *got;
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asm (" bl _GLOBAL_OFFSET_TABLE_-4@local"
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: "=l"(got));
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return *got;
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}
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/* Return the run-time load address of the shared object. */
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static inline Elf32_Addr
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elf_machine_load_address (void)
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{
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unsigned *got;
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unsigned *branchaddr;
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/* This is much harder than you'd expect. Possibly I'm missing something.
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The 'obvious' way:
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Apparently, "bcl 20,31,$+4" is what should be used to load LR
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with the address of the next instruction.
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I think this is so that machines that do bl/blr pairing don't
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get confused.
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asm ("bcl 20,31,0f ;"
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"0: mflr 0 ;"
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"lis %0,0b@ha;"
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"addi %0,%0,0b@l;"
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"subf %0,%0,0"
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: "=b" (addr) : : "r0", "lr");
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doesn't work, because the linker doesn't have to (and in fact doesn't)
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update the @ha and @l references; the loader (which runs after this
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code) will do that.
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Instead, we use the following trick:
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The linker puts the _link-time_ address of _DYNAMIC at the first
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word in the GOT. We could branch to that address, if we wanted,
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by using an @local reloc; the linker works this out, so it's safe
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to use now. We can't, of course, actually branch there, because
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we'd cause an illegal instruction exception; so we need to compute
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the address ourselves. That gives us the following code: */
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/* Get address of the 'b _DYNAMIC@local'... */
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asm ("bl 0f ;"
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"b _DYNAMIC@local;"
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"0:"
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: "=l"(branchaddr));
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/* ... and the address of the GOT. */
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asm (" bl _GLOBAL_OFFSET_TABLE_-4@local"
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: "=l"(got));
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/* So now work out the difference between where the branch actually points,
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and the offset of that location in memory from the start of the file. */
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return (Elf32_Addr)branchaddr - *got +
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(*branchaddr & 0x3fffffc |
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(int)(*branchaddr << 6 & 0x80000000) >> 6);
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}
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#define ELF_MACHINE_BEFORE_RTLD_RELOC(dynamic_info) /* nothing */
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/* Perform the relocation specified by RELOC and SYM (which is fully resolved).
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LOADADDR is the load address of the object; INFO is an array indexed
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by DT_* of the .dynamic section info. */
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#ifdef RESOLVE
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static inline void
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elf_machine_rela (struct link_map *map, const Elf32_Rela *reloc,
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const Elf32_Sym *sym, const struct r_found_version *version)
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{
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Elf32_Addr *const reloc_addr = (Elf32_Addr *)(map->l_addr + reloc->r_offset);
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Elf32_Word loadbase, finaladdr;
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const int rinfo = ELF32_R_TYPE (reloc->r_info);
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if (rinfo == R_PPC_NONE)
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return;
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if (sym && ELF32_ST_TYPE (sym->st_info) == STT_SECTION ||
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rinfo == R_PPC_RELATIVE)
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{
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/* Has already been relocated. */
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loadbase = map->l_addr;
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finaladdr = loadbase + reloc->r_addend;
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}
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else
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{
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assert (sym != NULL);
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if (rinfo == R_PPC_JMP_SLOT)
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loadbase = (Elf32_Word) (char *) RESOLVE (&sym,
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version, DL_LOOKUP_NOPLT);
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else
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loadbase = (Elf32_Word) (char *) RESOLVE (&sym, version, 0);
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if (sym == NULL)
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{
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/* Weak symbol that wasn't actually defined anywhere. */
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assert (loadbase == 0);
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finaladdr = reloc->r_addend;
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}
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else
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finaladdr = (loadbase + (Elf32_Word)(char *)sym->st_value
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+ reloc->r_addend);
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}
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switch (rinfo)
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{
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case R_PPC_UADDR16:
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case R_PPC_ADDR16_LO:
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case R_PPC_ADDR16:
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*(Elf32_Half*) reloc_addr = finaladdr;
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break;
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case R_PPC_ADDR16_HI:
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*(Elf32_Half*) reloc_addr = finaladdr >> 16;
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break;
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case R_PPC_ADDR16_HA:
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*(Elf32_Half*) reloc_addr = finaladdr + 0x8000 >> 16;
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break;
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case R_PPC_REL24:
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{
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Elf32_Sword delta = finaladdr - (Elf32_Word) (char *) reloc_addr;
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assert (delta << 6 >> 6 == delta);
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*reloc_addr = *reloc_addr & 0xfc000003 | delta & 0x3fffffc;
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}
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break;
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case R_PPC_UADDR32:
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case R_PPC_GLOB_DAT:
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case R_PPC_ADDR32:
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case R_PPC_RELATIVE:
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*reloc_addr = finaladdr;
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break;
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case R_PPC_ADDR24:
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*reloc_addr = *reloc_addr & 0xfc000003 | finaladdr & 0x3fffffc;
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break;
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case R_PPC_REL14_BRTAKEN:
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case R_PPC_REL14_BRNTAKEN:
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case R_PPC_REL14:
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{
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Elf32_Sword delta = finaladdr - (Elf32_Word) (char *) reloc_addr;
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*reloc_addr = *reloc_addr & 0xffdf0003 | delta & 0xfffc;
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if (rinfo == R_PPC_REL14_BRTAKEN && delta >= 0 ||
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rinfo == R_PPC_REL14_BRNTAKEN && delta < 0)
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*reloc_addr |= 0x00200000;
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}
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break;
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case R_PPC_COPY:
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{
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/* Can't use memcpy (because we can't call any functions here). */
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int i;
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for (i = 0; i < sym->st_size; ++i)
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((unsigned char *) reloc_addr)[i] =
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((unsigned char *)finaladdr)[i];
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}
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break;
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case R_PPC_REL32:
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*reloc_addr = finaladdr - (Elf32_Word) (char *) reloc_addr;
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break;
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case R_PPC_JMP_SLOT:
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if (finaladdr <= 0x01fffffc || finaladdr >= 0xfe000000)
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*reloc_addr = OPCODE_BA (finaladdr);
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else
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{
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Elf32_Sword delta = finaladdr - (Elf32_Word) (char *) reloc_addr;
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if (delta <= 0x01fffffc && delta >= 0xfe000000)
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*reloc_addr = OPCODE_B (delta);
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else
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{
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Elf32_Word *plt =
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(Elf32_Word *) ((char *) map->l_addr
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+ map->l_info[DT_PLTGOT]->d_un.d_val);
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Elf32_Word index =((reloc_addr - plt - PLT_INITIAL_ENTRY_WORDS)
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/ 2);
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int num_plt_entries = (map->l_info[DT_PLTRELSZ]->d_un.d_val
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/ sizeof (Elf32_Rela));
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int rel_offset_words = (PLT_INITIAL_ENTRY_WORDS
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+ num_plt_entries * 2);
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if (index >= (1 << 13))
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{
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/* Indexes greater than or equal to 2^13 have 4
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words available instead of two. */
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plt[index * 2 + PLT_INITIAL_ENTRY_WORDS] =
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OPCODE_LI (11, finaladdr);
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plt[index * 2 + 1 + PLT_INITIAL_ENTRY_WORDS] =
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OPCODE_ADDIS (11, 11, finaladdr + 0x8000 >> 16);
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plt[index * 2 + 2 + PLT_INITIAL_ENTRY_WORDS] =
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OPCODE_MTCTR (11);
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plt[index * 2 + 2 + PLT_INITIAL_ENTRY_WORDS] =
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OPCODE_BCTR ();
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}
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else
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{
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plt[index * 2 + PLT_INITIAL_ENTRY_WORDS] =
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OPCODE_LI (11, index * 4);
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plt[index * 2 + 1 + PLT_INITIAL_ENTRY_WORDS] =
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OPCODE_B(-(4 * (index * 2 + 1 + PLT_INITIAL_ENTRY_WORDS
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+ PLT_LONGBRANCH_ENTRY_WORDS)));
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plt[index + rel_offset_words] = finaladdr;
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}
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}
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}
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break;
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default:
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assert (! "unexpected dynamic reloc type");
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}
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}
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#define ELF_MACHINE_NO_REL 1
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#endif
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/* Nonzero iff TYPE describes relocation of a PLT entry, so
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PLT entries should not be allowed to define the value. */
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#define elf_machine_pltrel_p(type) ((type) == R_PPC_JMP_SLOT)
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/* Set up the loaded object described by L so its unrelocated PLT
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entries will jump to the on-demand fixup code in dl-runtime.c. */
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/* This code does not presently work if there are more than 2^13 PLT
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entries. */
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static inline void
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elf_machine_runtime_setup (struct link_map *map, int lazy)
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{
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Elf32_Word *plt;
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int i;
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Elf32_Word num_plt_entries;
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Elf32_Word rel_offset_words;
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extern void _dl_runtime_resolve (void);
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if (map->l_info[DT_JMPREL])
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{
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/* Fill in the PLT. Its initial contents are directed to a
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function earlier in the PLT which arranges for the dynamic
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linker to be called back. */
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plt = (Elf32_Word *) ((char *) map->l_addr +
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map->l_info[DT_PLTGOT]->d_un.d_val);
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num_plt_entries = (map->l_info[DT_PLTRELSZ]->d_un.d_val
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/ sizeof (Elf32_Rela));
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rel_offset_words = PLT_INITIAL_ENTRY_WORDS + num_plt_entries * 2;
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if (lazy)
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for (i = 0; i < num_plt_entries; i++)
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if (i >= (1 << 13))
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{
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plt[i * 2 + (i - (1 << 13)) * 2 + PLT_INITIAL_ENTRY_WORDS] =
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OPCODE_LI (11, i * 4);
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plt[i * 2 + (i - (1 << 13)) * 2 + 1 + PLT_INITIAL_ENTRY_WORDS] =
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OPCODE_ADDIS (11, 11, i * 4 + 0x8000 >> 16);
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plt[i * 2 + (i - (1 << 13)) * 2 + 2 + PLT_INITIAL_ENTRY_WORDS] =
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OPCODE_B (-(4 * ( i * 2 + 1 + PLT_INITIAL_ENTRY_WORDS)));
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}
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else
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{
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plt[i * 2 + PLT_INITIAL_ENTRY_WORDS] = OPCODE_LI (11, i * 4);
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plt[i * 2 + 1 + PLT_INITIAL_ENTRY_WORDS] =
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OPCODE_B (-(4 * (i * 2 + 1 + PLT_INITIAL_ENTRY_WORDS)));
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}
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/* Multiply index of entry, by 0xC. */
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plt[0] = OPCODE_SLWI (12, 11, 1);
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plt[1] = OPCODE_ADD (11, 12, 11);
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if ((Elf32_Word) (char *) _dl_runtime_resolve <= 0x01fffffc ||
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(Elf32_Word) (char *) _dl_runtime_resolve >= 0xfe000000)
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{
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plt[2] = OPCODE_LI (12, (Elf32_Word) (char *) map);
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plt[3] = OPCODE_ADDIS (12, 12,
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(Elf32_Word) (char *) map + 0x8000 >> 16);
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plt[4] = OPCODE_BA ((Elf32_Word) (char *) _dl_runtime_resolve);
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}
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else
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{
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plt[2] = OPCODE_LI (12, (Elf32_Word) (char *) _dl_runtime_resolve);
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plt[3] = OPCODE_ADDIS (12, 12, 0x8000 +
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((Elf32_Word) (char *) _dl_runtime_resolve
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>> 16));
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plt[4] = OPCODE_MTCTR (12);
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plt[5] = OPCODE_LI (12, (Elf32_Word) (char *) map);
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plt[6] = OPCODE_ADDIS (12, 12, ((Elf32_Word) (char *) map
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+ 0x8000 >> 16));
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plt[7] = OPCODE_BCTR ();
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}
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plt[PLT_LONGBRANCH_ENTRY_WORDS] =
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OPCODE_ADDIS (11, 11, ((Elf32_Word) (char*) (plt+rel_offset_words)
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+ 0x8000 >> 16));
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plt[PLT_LONGBRANCH_ENTRY_WORDS+1] =
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OPCODE_LWZ (11, (Elf32_Word) (char*) (plt + rel_offset_words), 11);
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plt[PLT_LONGBRANCH_ENTRY_WORDS+2] = OPCODE_MTCTR (11);
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plt[PLT_LONGBRANCH_ENTRY_WORDS+3] = OPCODE_BCTR ();
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}
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}
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static inline void
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elf_machine_lazy_rel (struct link_map *map, const Elf32_Rela *reloc)
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{
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if (ELF32_R_TYPE (reloc->r_info) != R_PPC_JMP_SLOT)
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assert (! "unexpected PLT reloc type");
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/* elf_machine_runtime_setup handles this. */
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}
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/* The PLT uses Elf32_Rela relocs. */
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#define elf_machine_relplt elf_machine_rela
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/* This code is used in dl-runtime.c to call the `fixup' function
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and then redirect to the address it returns. */
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#define ELF_MACHINE_RUNTIME_TRAMPOLINE asm ("\
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.section \".text\"
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.globl _dl_runtime_resolve
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_dl_runtime_resolve:
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stwu 1,-48(1)
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mflr 0
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stw 3,16(1)
|
||
|
stw 4,20(1)
|
||
|
stw 0,52(1)
|
||
|
stw 5,24(1)
|
||
|
mfcr 0
|
||
|
stw 6,28(1)
|
||
|
stw 7,32(1)
|
||
|
stw 8,36(1)
|
||
|
stw 9,40(1)
|
||
|
stw 10,44(1)
|
||
|
stw 0,12(1)
|
||
|
mr 3,12
|
||
|
mr 4,11
|
||
|
bl fixup
|
||
|
mtctr 3
|
||
|
lwz 0,52(1)
|
||
|
lwz 10,44(1)
|
||
|
lwz 9,40(1)
|
||
|
mtlr 0
|
||
|
lwz 0,12(1)
|
||
|
lwz 8,36(1)
|
||
|
lwz 7,32(1)
|
||
|
lwz 6,28(1)
|
||
|
mtcrf 0xFF,0
|
||
|
lwz 5,24(1)
|
||
|
lwz 4,20(1)
|
||
|
lwz 3,16(1)
|
||
|
addi 1,1,48
|
||
|
bctr
|
||
|
");
|
||
|
|
||
|
/* Initial entry point code for the dynamic linker.
|
||
|
The C function `_dl_start' is the real entry point;
|
||
|
its return value is the user program's entry point. */
|
||
|
|
||
|
/* FIXME! We don't make provision for calling _dl_fini,
|
||
|
because Linux/PPC is somewhat broken. */
|
||
|
#define RTLD_START \
|
||
|
asm ("\
|
||
|
.text
|
||
|
.align 2
|
||
|
.globl _start
|
||
|
.type _start,@function
|
||
|
_start:
|
||
|
# We start with the following on the stack, from top:
|
||
|
# argc (4 bytes)
|
||
|
# arguments for program (terminated by NULL)
|
||
|
# environment variables (terminated by NULL)
|
||
|
# arguments for the program loader
|
||
|
|
||
|
# Call _dl_start with one parameter pointing at argc
|
||
|
mr 3,1
|
||
|
# (we have to frob the stack pointer a bit to allow room for
|
||
|
# _dl_start to save the link register)
|
||
|
li 4,0
|
||
|
addi 1,1,-16
|
||
|
stw 4,0(1)
|
||
|
bl _dl_start@local
|
||
|
|
||
|
# Now, we do our main work of calling initialisation procedures.
|
||
|
# The ELF ABI doesn't say anything about parameters for these,
|
||
|
# so we just pass argc, argv, and the environment.
|
||
|
# Changing these is strongly discouraged (not least because argc is
|
||
|
# passed by value!).
|
||
|
|
||
|
# put our GOT pointer in r31
|
||
|
bl _GLOBAL_OFFSET_TABLE_-4@local
|
||
|
mflr 31
|
||
|
# the address of _start in r30
|
||
|
mr 30,3
|
||
|
# &_dl_argc in 29, &_dl_argv in 27, and _dl_default_scope in 28
|
||
|
lwz 28,_dl_default_scope@got(31)
|
||
|
lwz 29,_dl_argc@got(31)
|
||
|
lwz 27,_dl_argv@got(31)
|
||
|
0:
|
||
|
# call initfunc = _dl_init_next(_dl_default_scope[2])
|
||
|
lwz 3,8(28)
|
||
|
bl _dl_init_next@plt
|
||
|
# if initfunc is NULL, we exit the loop
|
||
|
mr. 0,3
|
||
|
beq 1f
|
||
|
# call initfunc(_dl_argc, _dl_argv, _dl_argv+_dl_argc+1)
|
||
|
mtlr 0
|
||
|
lwz 3,0(29)
|
||
|
lwz 4,0(27)
|
||
|
slwi 5,3,2
|
||
|
add 5,4,5
|
||
|
addi 5,5,4
|
||
|
blrl
|
||
|
# and loop.
|
||
|
b 0b
|
||
|
1:
|
||
|
# Now, to conform to the ELF ABI, we have to:
|
||
|
# pass argv (actually _dl_argv) in r4
|
||
|
lwz 4,0(27)
|
||
|
# pass argc (actually _dl_argc) in r3
|
||
|
lwz 3,0(29)
|
||
|
# pass envp (actually _dl_argv+_dl_argc+1) in r5
|
||
|
slwi 5,3,2
|
||
|
add 5,4,5
|
||
|
addi 5,5,4
|
||
|
# pass the auxilary vector in r6. This is passed just after _envp.
|
||
|
addi 6,5,-4
|
||
|
2: lwzu 0,4(6)
|
||
|
cmpwi 1,0,0
|
||
|
bne 2b
|
||
|
addi 6,6,4
|
||
|
# pass a termination function pointer (in this case _dl_fini) in r7
|
||
|
lwz 7,_dl_fini@got(31)
|
||
|
# now, call the start function in r30...
|
||
|
mtctr 30
|
||
|
# pass the stack pointer in r1 (so far so good), pointing to a NULL value
|
||
|
# (this lets our startup code distinguish between a program linked statically,
|
||
|
# which linux will call with argc on top of the stack which will hopefully
|
||
|
# never be zero, and a dynamically linked program which will always have
|
||
|
# a NULL on the top of the stack).
|
||
|
# Take the opportunity to clear LR, so anyone who accidentally returns
|
||
|
# from _start gets SEGV.
|
||
|
li 0,0
|
||
|
stw 0,0(1)
|
||
|
mtlr 0
|
||
|
# and also clear _dl_starting_up
|
||
|
lwz 26,_dl_starting_up@got(31)
|
||
|
stw 0,0(3)
|
||
|
# go do it!
|
||
|
bctr
|
||
|
");
|
||
|
|
||
|
#define ELF_PREFERRED_ADDRESS_DATA static ElfW(Addr) _dl_preferred_address = 0;
|
||
|
#define ELF_PREFERRED_ADDRESS(loader, maplength, mapstartpref) \
|
||
|
( { \
|
||
|
ElfW(Addr) prefd; \
|
||
|
if (mapstartpref != 0 && _dl_preferred_address == 0) \
|
||
|
_dl_preferred_address = mapstartpref; \
|
||
|
if (mapstartpref != 0) \
|
||
|
prefd = mapstartpref; \
|
||
|
else if (_dl_preferred_address < maplength + 0x50000) \
|
||
|
prefd = 0; \
|
||
|
else \
|
||
|
prefd = _dl_preferred_address = \
|
||
|
(_dl_preferred_address - maplength - 0x10000) & \
|
||
|
~(_dl_pagesize - 1); \
|
||
|
prefd; \
|
||
|
} )
|
||
|
#define ELF_FIXED_ADDRESS(loader, mapstart) \
|
||
|
( { \
|
||
|
if (mapstart != 0 && _dl_preferred_address == 0) \
|
||
|
_dl_preferred_address = mapstart; \
|
||
|
} )
|
||
|
|
||
|
#define ELF_FIXUP_RETURNS_ADDRESS 1
|