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	* sysdeps/mips/dl-machine.h (__start): Rewritten for 2.2 startup conventions. (elf_machine_rel): Use R_MIPS_REL32 for RESOLVE. (elf_machine_runtime_setup,elf_machine_got_rel): Move at end of file and make dependend on RESOLVE. (ELF_MACHINE_RUNTIME_TRAMPOLINE): Fix arguments to _dl_lookup_symbol. (RESOLVE_GOTSYM): Fix arguments to _dl_lookup_symbol.
		
			
				
	
	
		
			592 lines
		
	
	
		
			18 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			592 lines
		
	
	
		
			18 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
| /* Machine-dependent ELF dynamic relocation inline functions.  MIPS version.
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|    Copyright (C) 1996, 1997, 1998, 1999, 2000 Free Software Foundation, Inc.
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|    This file is part of the GNU C Library.
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|    Contributed by Kazumoto Kojima <kkojima@info.kanagawa-u.ac.jp>.
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| 
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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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| 
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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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| 
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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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| 
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| #ifndef dl_machine_h
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| #define dl_machine_h
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| 
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| #define ELF_MACHINE_NAME "MIPS"
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| 
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| #define ELF_MACHINE_NO_PLT
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| 
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| #include <entry.h>
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| 
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| #ifndef ENTRY_POINT
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| #error ENTRY_POINT needs to be defined for MIPS.
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| #endif
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| 
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| #ifndef _RTLD_PROLOGUE
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| # define _RTLD_PROLOGUE(entry) "\n\t.globl " #entry \
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| 			       "\n\t.ent " #entry \
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| 			       "\n\t" #entry ":\n\t"
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| #endif
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| 
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| #ifndef _RTLD_EPILOGUE
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| # define _RTLD_EPILOGUE(entry) "\t.end " #entry "\n"
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| #endif
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| 
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| /* A reloc type used for ld.so cmdline arg lookups to reject PLT entries.
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|    This makes no sense on MIPS but we have to define this to R_MIPS_REL32
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|    to avoid the asserts in dl-lookup.c from blowing.  */
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| #define ELF_MACHINE_JMP_SLOT			R_MIPS_REL32
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| #define elf_machine_lookup_noplt_p(type)	(1)
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| #define elf_machine_lookup_noexec_p(type)	(0)
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| 
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| /* Translate a processor specific dynamic tag to the index
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|    in l_info array.  */
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| #define DT_MIPS(x) (DT_MIPS_##x - DT_LOPROC + DT_NUM)
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| 
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| #if 0
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| /* We may need 64k alignment. */
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| #define ELF_MACHINE_ALIGN_MASK 0xffff
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| #endif
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| 
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| /*
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|  * MIPS libraries are usually linked to a non-zero base address.  We
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|  * subtract the base address from the address where we map the object
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|  * to.  This results in more efficient address space usage.
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|  *
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|  * FIXME: By the time when MAP_BASE_ADDR is called we don't have the
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|  * DYNAMIC section read.  Until this is fixed make the assumption that
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|  * libraries have their base address at 0x5ffe0000.  This needs to be
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|  * fixed before we can safely get rid of this MIPSism.
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|  */
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| #if 0
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| #define MAP_BASE_ADDR(l) ((l)->l_info[DT_MIPS(BASE_ADDRESS)] ? \
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| 			  (l)->l_info[DT_MIPS(BASE_ADDRESS)]->d_un.d_ptr : 0)
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| #else
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| #define MAP_BASE_ADDR(l) 0x5ffe0000
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| #endif
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| 
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| /* If there is a DT_MIPS_RLD_MAP entry in the dynamic section, fill it in
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|    with the run-time address of the r_debug structure  */
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| #define ELF_MACHINE_DEBUG_SETUP(l,r) \
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| do { if ((l)->l_info[DT_MIPS (RLD_MAP)]) \
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|        *(ElfW(Addr) *)((l)->l_info[DT_MIPS (RLD_MAP)]->d_un.d_ptr) = \
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|        (ElfW(Addr)) (r); \
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|    } while (0)
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| 
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| /* Return nonzero iff E_MACHINE is compatible with the running host.  */
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| static inline int __attribute__ ((unused))
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| elf_machine_matches_host (ElfW(Half) e_machine)
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| {
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|   switch (e_machine)
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|     {
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|     case EM_MIPS:
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|     case EM_MIPS_RS3_LE:
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|       return 1;
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|     default:
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|       return 0;
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|     }
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| }
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| 
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| static inline ElfW(Addr) *
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| elf_mips_got_from_gpreg (ElfW(Addr) gpreg)
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| {
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|   /* FIXME: the offset of gp from GOT may be system-dependent. */
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|   return (ElfW(Addr) *) (gpreg - 0x7ff0);
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| }
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| 
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| /* Return the link-time address of _DYNAMIC.  Conveniently, this is the
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|    first element of the GOT.  This must be inlined in a function which
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|    uses global data.  */
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| static inline ElfW(Addr)
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| elf_machine_dynamic (void)
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| {
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|   register ElfW(Addr) gp __asm__ ("$28");
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|   return *elf_mips_got_from_gpreg (gp);
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| }
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| 
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| 
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| /* Return the run-time load address of the shared object.  */
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| static inline ElfW(Addr)
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| elf_machine_load_address (void)
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| {
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|   ElfW(Addr) addr;
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|   asm ("	.set noreorder\n"
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|        "	la %0, here\n"
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|        "	bltzal $0, here\n"
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|        "	nop\n"
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|        "here:	subu %0, $31, %0\n"
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|        "	.set reorder\n"
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|        :	"=r" (addr)
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|        :	/* No inputs */
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|        :	"$31");
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|   return addr;
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| }
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| 
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| 
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| /* Get link map for callers object containing STUB_PC.  */
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| static inline struct link_map *
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| elf_machine_runtime_link_map (ElfW(Addr) gpreg, ElfW(Addr) stub_pc)
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| {
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|   extern int _dl_mips_gnu_objects;
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| 
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|   /* got[1] is reserved to keep its link map address for the shared
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|      object generated by gnu linker. If all are such object, we can
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|      find link map from current GPREG simply. If not so, get link map
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|      for callers object containing STUB_PC.  */
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| 
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|   if (_dl_mips_gnu_objects)
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|     {
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|       ElfW(Addr) *got = elf_mips_got_from_gpreg (gpreg);
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|       ElfW(Word) g1;
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| 
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|       g1 = ((ElfW(Word) *) got)[1];
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| 
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|       if ((g1 & ELF_MIPS_GNU_GOT1_MASK) != 0)
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| 	return (struct link_map *) (g1 & ~ELF_MIPS_GNU_GOT1_MASK);
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|     }
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| 
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|     {
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|       struct link_map *l = _dl_loaded;
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|       struct link_map *ret = 0;
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|       ElfW(Addr) candidate = 0;
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| 
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|       while (l)
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| 	{
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| 	  ElfW(Addr) base = 0;
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| 	  const ElfW(Phdr) *p = l->l_phdr;
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| 	  ElfW(Half) this, nent = l->l_phnum;
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| 
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| 	  /* Get the base. */
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| 	  for (this = 0; this < nent; this++)
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| 	    if (p[this].p_type == PT_LOAD)
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| 	      {
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| 		base = p[this].p_vaddr + l->l_addr;
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| 		break;
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| 	      }
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| 	  if (! base)
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| 	    {
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| 	      l = l->l_next;
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| 	      continue;
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| 	    }
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| 
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| 	  /* Find closest link base addr. */
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| 	  if ((base < stub_pc) && (candidate < base))
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| 	    {
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| 	      candidate = base;
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| 	      ret = l;
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| 	    }
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| 	  l = l->l_next;
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| 	}
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|       if (candidate && ret && (candidate < stub_pc))
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| 	return ret;
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|       else if (!candidate)
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| 	return _dl_loaded;
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|     }
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| 
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|   _dl_signal_error (0, NULL, "cannot find runtime link map");
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|   return NULL;
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| }
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| 
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| /* Mips has no PLT but define elf_machine_relplt to be elf_machine_rel. */
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| #define elf_machine_relplt elf_machine_rel
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| 
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| /* Define mips specific runtime resolver. The function __dl_runtime_resolve
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|    is called from assembler function _dl_runtime_resolve which converts
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|    special argument registers t7 ($15) and t8 ($24):
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|      t7  address to return to the caller of the function
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|      t8  index for this function symbol in .dynsym
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|    to usual c arguments.  */
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| 
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| #define ELF_MACHINE_RUNTIME_TRAMPOLINE					      \
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| /* The flag _dl_mips_gnu_objects is set if all dynamic objects are	      \
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|    generated by the gnu linker. */					      \
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| int _dl_mips_gnu_objects = 1;						      \
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| 									      \
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| /* This is called from assembly stubs below which the compiler can't see.  */ \
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| static ElfW(Addr)							      \
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| __dl_runtime_resolve (ElfW(Word), ElfW(Word), ElfW(Addr), ElfW(Addr))	      \
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|                   __attribute__ ((unused));				      \
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| 									      \
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| static ElfW(Addr)							      \
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| __dl_runtime_resolve (ElfW(Word) sym_index,				      \
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| 		      ElfW(Word) return_address,			      \
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| 		      ElfW(Addr) old_gpreg,				      \
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| 		      ElfW(Addr) stub_pc)				      \
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| {									      \
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|   struct link_map *l = elf_machine_runtime_link_map (old_gpreg, stub_pc);     \
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|   const ElfW(Sym) *const symtab						      \
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|     = (const void *) l->l_info[DT_SYMTAB]->d_un.d_ptr;			      \
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|   const char *strtab							      \
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|     = (const void *) l->l_info[DT_STRTAB]->d_un.d_ptr;			      \
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|   const ElfW(Addr) *got							      \
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|     = (const ElfW(Addr) *) l->l_info[DT_PLTGOT]->d_un.d_ptr;		      \
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|   const ElfW(Word) local_gotno						      \
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|     = (const ElfW(Word)) l->l_info[DT_MIPS (LOCAL_GOTNO)]->d_un.d_val;	      \
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|   const ElfW(Word) gotsym						      \
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|     = (const ElfW(Word)) l->l_info[DT_MIPS (GOTSYM)]->d_un.d_val;	      \
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|   const ElfW(Sym) *definer;						      \
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|   ElfW(Addr) loadbase;							      \
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|   ElfW(Addr) funcaddr;							      \
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| 									      \
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|   /* Look up the symbol's run-time value.  */				      \
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|   definer = &symtab[sym_index];						      \
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| 									      \
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|   loadbase = _dl_lookup_symbol (strtab + definer->st_name, l, &definer,	      \
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| 				l->l_scope, R_MIPS_REL32);		      \
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| 									      \
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|   /* Apply the relocation with that value.  */				      \
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|   funcaddr = loadbase + definer->st_value;				      \
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|   *(got + local_gotno + sym_index - gotsym) = funcaddr;			      \
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| 									      \
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|   return funcaddr;							      \
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| }									      \
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| 									      \
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| asm ("\n								      \
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| 	.text\n								      \
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| 	.align	2\n							      \
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| 	.globl	_dl_runtime_resolve\n					      \
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| 	.type	_dl_runtime_resolve,@function\n				      \
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| 	.ent	_dl_runtime_resolve\n					      \
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| _dl_runtime_resolve:\n							      \
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| 	.set noreorder\n						      \
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| 	# Save slot call pc.\n						      \
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| 	move	$3, $31\n						      \
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| 	# Modify t9 ($25) so as to point .cpload instruction.\n		      \
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| 	addu	$25,8\n							      \
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| 	# Compute GP.\n							      \
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| 	.cpload $25\n							      \
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| 	.set reorder\n							      \
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| 	# Save slot call pc.\n						      \
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|         move	$2, $31\n						      \
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| 	# Save arguments and sp value in stack.\n			      \
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| 	subu	$29, 40\n						      \
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| 	.cprestore 32\n							      \
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| 	sw	$15, 36($29)\n						      \
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| 	sw	$4, 12($29)\n						      \
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| 	sw	$5, 16($29)\n						      \
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| 	sw	$6, 20($29)\n						      \
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| 	sw	$7, 24($29)\n						      \
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| 	sw	$16, 28($29)\n						      \
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| 	move	$16, $29\n						      \
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| 	move	$4, $24\n						      \
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| 	move	$5, $15\n						      \
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| 	move	$6, $3\n						      \
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| 	move	$7, $2\n						      \
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| 	jal	__dl_runtime_resolve\n					      \
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| 	move	$29, $16\n						      \
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| 	lw	$31, 36($29)\n						      \
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| 	lw	$4, 12($29)\n						      \
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| 	lw	$5, 16($29)\n						      \
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| 	lw	$6, 20($29)\n						      \
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| 	lw	$7, 24($29)\n						      \
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| 	lw	$16, 28($29)\n						      \
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| 	addu	$29, 40\n						      \
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| 	move	$25, $2\n						      \
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| 	jr	$25\n							      \
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| 	.end	_dl_runtime_resolve\n					      \
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| 	.previous\n							      \
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| ");
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| 
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| /* Mask identifying addresses reserved for the user program,
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|    where the dynamic linker should not map anything.  */
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| #define ELF_MACHINE_USER_ADDRESS_MASK	0x80000000UL
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| 
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| 
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| 
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| /* Initial entry point code for the dynamic linker.
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|    The C function `_dl_start' is the real entry point;
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|    its return value is the user program's entry point.
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|    Note how we have to be careful about two things:
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| 
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|    1) That we allocate a minimal stack of 24 bytes for
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|       every function call, the MIPS ABI states that even
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|       if all arguments are passed in registers the procedure
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|       called can use the 16 byte area pointed to by $sp
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|       when it is called to store away the arguments passed
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|       to it.
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| 
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|    2) That under Linux the entry is named __start
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|       and not just plain _start.  */
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| 
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| #define RTLD_START asm ("\
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| 	.text\n"\
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| _RTLD_PROLOGUE(ENTRY_POINT)\
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| "	.globl _dl_start_user\n\
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| 	.set noreorder\n\
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| 	bltzal $0, 0f\n\
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| 	nop\n\
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| 0:	.cpload $31\n\
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| 	.set reorder\n\
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| 	# i386 ABI book says that the first entry of GOT holds\n\
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| 	# the address of the dynamic structure. Though MIPS ABI\n\
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| 	# doesn't say nothing about this, I emulate this here.\n\
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| 	la $4, _DYNAMIC\n\
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| 	sw $4, -0x7ff0($28)\n\
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| 	move $4, $29\n\
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| 	subu $29, 16\n\
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| 	jal _dl_start\n\
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| 	addiu $29, 16\n\
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| 	# Get the value of label '_dl_start_user' in t9 ($25).\n\
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| 	la $25, _dl_start_user\n\
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| _dl_start_user:\n\
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| 	.set noreorder\n\
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| 	.cpload $25\n\
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| 	.set reorder\n\
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| 	move $16, $28\n\
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| 	# Save the user entry point address in saved register.\n\
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| 	move $17, $2\n\
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| 	# See if we were run as a command with the executable file\n\
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| 	# name as an extra leading argument.\n\
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| 	lw $2, _dl_skip_args\n\
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| 	beq $2, $0, 1f\n\
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| 	# Load the original argument count.\n\
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| 	lw $4, 0($29)\n\
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| 	# Subtract _dl_skip_args from it.\n\
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| 	subu $4, $2\n\
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| 	# Adjust the stack pointer to skip _dl_skip_args words.\n\
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| 	sll $2,2\n\
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| 	addu $29, $2\n\
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| 	# Save back the modified argument count.\n\
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| 	sw $4, 0($29)\n\
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| 1:	subu $29, 16\n\
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| 2:	# Push the searchlist of the main object as argument in\n\
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| 	# the _dl_preinit_next and _dl_init_next calls below.\n\
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| 	lw $4, _dl_main_searchlist\n\
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| 	# First run the pre-initializers.\n\
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| 	# Call _dl_preinit_next to return the address of an initializer\n\
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| 	# function to run.\n\
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| 	jal _dl_preinit_next
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| 	move $28, $16\n\
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| 	# Check for zero return, when out of initializers.\n\
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| 	beq $2, $0, 4f\n\
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| 	# Call the pre-initializer.\n\
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| 	move $25, $2\n\
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| 	jalr $25\n\
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| 	move $28, $16\n
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| 	# Loop to call _dl_preinit_next for the next initializer.\n\
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| 	b 2b\n
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| 4:	lw $4, _dl_main_searchlist\n\
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| 	# Call _dl_init_next to return the address of an initializer\n\
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| 	# function to run.\n\
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| 	jal _dl_init_next\n\
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| 	move $28, $16\n\
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| 	# Check for zero return,  when out of initializers.\n\
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| 	beq $2, $0, 2f\n\
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| 	# Call the shared object initializer function.\n\
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| 	move $25, $2\n\
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| 	# XXX This looks broken ###.\n\
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| 	lw $4, 0($29)\n\
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| 	lw $5, 4($29)\n\
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| 	lw $6, 8($29)\n\
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| 	lw $7, 12($29)\n\
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| 	jalr $25\n\
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| 	move $28, $16\n\
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| 	# Loop to call _dl_init_next for the next initializer.\n\
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| 	b 4b\n\
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| 2:	addiu $29, 16\n\
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| 	# Clear the startup flag.  Assumes 32 bit ints.\n\
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| 	sw $0, _dl_starting_up\n\
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| 	# Pass our finalizer function to the user in ra.\n\
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| 	la $31, _dl_fini\n\
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| 	# Jump to the user entry point.\n\
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| 	move $25, $17\n\
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| 	lw $4, 0($29)\n\
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| 	lw $5, 4($29)\n\
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| 	lw $6, 8($29)\n\
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| 	lw $7, 12($29)\n\
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| 	jr $25\n"\
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| _RTLD_EPILOGUE(ENTRY_POINT)\
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| 	"\n.previous"\
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| );
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| 
 | |
| /* The MIPS never uses Elfxx_Rela relocations.  */
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| #define ELF_MACHINE_NO_RELA 1
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| 
 | |
| #endif /* !dl_machine_h */
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| 
 | |
| #ifdef RESOLVE
 | |
| 
 | |
| /* Perform the relocation specified by RELOC and SYM (which is fully resolved).
 | |
|    MAP is the object containing the reloc.  */
 | |
| 
 | |
| static inline void
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| elf_machine_rel (struct link_map *map, const ElfW(Rel) *reloc,
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| 		 const ElfW(Sym) *sym, const struct r_found_version *version,
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| 		 ElfW(Addr) *const reloc_addr)
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| {
 | |
|   ElfW(Addr) loadbase;
 | |
|   ElfW(Addr) undo __attribute__ ((unused));
 | |
| 
 | |
|   switch (ELFW(R_TYPE) (reloc->r_info))
 | |
|     {
 | |
|     case R_MIPS_REL32:
 | |
|       {
 | |
| 	ElfW(Addr) undo = 0;
 | |
| 
 | |
| 	if (ELFW(ST_BIND) (sym->st_info) == STB_LOCAL
 | |
| 	    && (ELFW(ST_TYPE) (sym->st_info) == STT_SECTION
 | |
| 		|| ELFW(ST_TYPE) (sym->st_info) == STT_NOTYPE))
 | |
| 	  {
 | |
| 	    *reloc_addr += map->l_addr;
 | |
| 	    break;
 | |
| 	  }
 | |
| #ifndef RTLD_BOOTSTRAP
 | |
| 	/* This is defined in rtld.c, but nowhere in the static libc.a;
 | |
| 	   make the reference weak so static programs can still link.  This
 | |
| 	   declaration cannot be done when compiling rtld.c (i.e.  #ifdef
 | |
| 	   RTLD_BOOTSTRAP) because rtld.c contains the common defn for
 | |
| 	   _dl_rtld_map, which is incompatible with a weak decl in the same
 | |
| 	   file.  */
 | |
| 	weak_extern (_dl_rtld_map);
 | |
| 	if (map == &_dl_rtld_map)
 | |
| 	  /* Undo the relocation done here during bootstrapping.  Now we will
 | |
| 	     relocate it anew, possibly using a binding found in the user
 | |
| 	     program or a loaded library rather than the dynamic linker's
 | |
| 	     built-in definitions used while loading those libraries.  */
 | |
| 	  undo = map->l_addr + sym->st_value;
 | |
| #endif
 | |
| 	  loadbase = RESOLVE (&sym, version, R_MIPS_REL32);
 | |
| 	  *reloc_addr += (sym ? (loadbase + sym->st_value) : 0) - undo;
 | |
| 	}
 | |
|       break;
 | |
|     case R_MIPS_NONE:		/* Alright, Wilbur.  */
 | |
|       break;
 | |
|     default:
 | |
|       _dl_reloc_bad_type (map, ELFW(R_TYPE) (reloc->r_info), 0);
 | |
|       break;
 | |
|     }
 | |
| }
 | |
| 
 | |
| static inline void
 | |
| elf_machine_lazy_rel (struct link_map *map,
 | |
| 		      ElfW(Addr) l_addr, const ElfW(Rel) *reloc)
 | |
| {
 | |
|   /* Do nothing.  */
 | |
| }
 | |
| 
 | |
| /* The MSB of got[1] of a gnu object is set to identify gnu objects. */
 | |
| #define ELF_MIPS_GNU_GOT1_MASK 0x80000000
 | |
| 
 | |
| /* Relocate GOT. */
 | |
| static inline void
 | |
| elf_machine_got_rel (struct link_map *map, int lazy)
 | |
| {
 | |
|   ElfW(Addr) *got;
 | |
|   ElfW(Sym) *sym;
 | |
|   int i, n;
 | |
|   const char *strtab = (const void *) map->l_info[DT_STRTAB]->d_un.d_ptr;
 | |
| 
 | |
| #define RESOLVE_GOTSYM(sym)						\
 | |
|     ({									\
 | |
|       const ElfW(Sym) *ref = sym;					\
 | |
|       ElfW(Addr) sym_loadaddr;						\
 | |
|       sym_loadaddr = _dl_lookup_symbol (strtab + sym->st_name, map,	\
 | |
| 					&ref, map->l_scope,            	\
 | |
| 					R_MIPS_REL32);			\
 | |
|       (ref)? sym_loadaddr + ref->st_value: 0;				\
 | |
|     })
 | |
| 
 | |
|   got = (ElfW(Addr) *) map->l_info[DT_PLTGOT]->d_un.d_ptr;
 | |
| 
 | |
|   /* got[0] is reserved. got[1] is also reserved for the dynamic object
 | |
|      generated by gnu ld. Skip these reserved entries from relocation.  */
 | |
|   i = (got[1] & ELF_MIPS_GNU_GOT1_MASK)? 2: 1;
 | |
|   n = map->l_info[DT_MIPS (LOCAL_GOTNO)]->d_un.d_val;
 | |
|   /* Add the run-time display to all local got entries. */
 | |
|   while (i < n)
 | |
|     got[i++] += map->l_addr;
 | |
| 
 | |
|   /* Handle global got entries. */
 | |
|   got += n;
 | |
|   sym = (void *) map->l_info[DT_SYMTAB]->d_un.d_ptr;
 | |
|   sym += map->l_info[DT_MIPS (GOTSYM)]->d_un.d_val;
 | |
|   i = (map->l_info[DT_MIPS (SYMTABNO)]->d_un.d_val
 | |
|        - map->l_info[DT_MIPS (GOTSYM)]->d_un.d_val);
 | |
| 
 | |
|   while (i--)
 | |
|     {
 | |
|       if (sym->st_shndx == SHN_UNDEF)
 | |
| 	{
 | |
| 	  if (ELFW(ST_TYPE) (sym->st_info) == STT_FUNC)
 | |
| 	    {
 | |
| 	      if (sym->st_value && lazy)
 | |
| 		*got = sym->st_value + map->l_addr;
 | |
| 	      else
 | |
| 		*got = RESOLVE_GOTSYM (sym);
 | |
| 	    }
 | |
| 	  else /* if (*got == 0 || *got == QS) */
 | |
| 	    *got = RESOLVE_GOTSYM (sym);
 | |
| 	}
 | |
|       else if (sym->st_shndx == SHN_COMMON)
 | |
| 	*got = RESOLVE_GOTSYM (sym);
 | |
|       else if (ELFW(ST_TYPE) (sym->st_info) == STT_FUNC
 | |
| 	       && *got != sym->st_value
 | |
| 	       && lazy)
 | |
| 	*got += map->l_addr;
 | |
|       else if (ELFW(ST_TYPE) (sym->st_info) == STT_SECTION)
 | |
| 	{
 | |
| 	  if (sym->st_other == 0)
 | |
| 	    *got += map->l_addr;
 | |
| 	}
 | |
|       else
 | |
| 	*got = RESOLVE_GOTSYM (sym);
 | |
| 
 | |
|       got++;
 | |
|       sym++;
 | |
|     }
 | |
| 
 | |
| #undef RESOLVE_GOTSYM
 | |
| 
 | |
|   return;
 | |
| }
 | |
| 
 | |
| /* Set up the loaded object described by L so its stub function
 | |
|    will jump to the on-demand fixup code in dl-runtime.c.  */
 | |
| 
 | |
| static inline int
 | |
| elf_machine_runtime_setup (struct link_map *l, int lazy, int profile)
 | |
| {
 | |
| # ifndef RTLD_BOOTSTRAP
 | |
|   ElfW(Addr) *got;
 | |
|   extern void _dl_runtime_resolve (ElfW(Word));
 | |
|   extern int _dl_mips_gnu_objects;
 | |
| 
 | |
|   if (lazy)
 | |
|     {
 | |
|       /* The GOT entries for functions have not yet been filled in.
 | |
| 	 Their initial contents will arrange when called to put an
 | |
| 	 offset into the .dynsym section in t8, the return address
 | |
| 	 in t7 and then jump to _GLOBAL_OFFSET_TABLE[0].  */
 | |
|       got = (ElfW(Addr) *) l->l_info[DT_PLTGOT]->d_un.d_ptr;
 | |
| 
 | |
|       /* This function will get called to fix up the GOT entry indicated by
 | |
| 	 the register t8, and then jump to the resolved address.  */
 | |
|       got[0] = (ElfW(Addr)) &_dl_runtime_resolve;
 | |
| 
 | |
|       /* Store l to _GLOBAL_OFFSET_TABLE[1] for gnu object. The MSB
 | |
| 	 of got[1] of a gnu object is set to identify gnu objects.
 | |
| 	 Where we can store l for non gnu objects? XXX  */
 | |
|       if ((got[1] & ELF_MIPS_GNU_GOT1_MASK) != 0)
 | |
| 	got[1] = (ElfW(Addr)) ((unsigned) l | ELF_MIPS_GNU_GOT1_MASK);
 | |
|       else
 | |
| 	_dl_mips_gnu_objects = 0;
 | |
|     }
 | |
| 
 | |
|   /* Relocate global offset table.  */
 | |
|   elf_machine_got_rel (l, lazy);
 | |
| 
 | |
| # endif
 | |
|   return lazy;
 | |
| }
 | |
| 
 | |
| #endif /* RESOLVE */
 |