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#include "EXTERN.h"
#include "perl.h"
#include "XSUB.h"

/* set by scan_fat, used by next */
short *fat = NULL;
char *fat_flag_map = NULL;
unsigned int *fat_remap = NULL;
int fat_remap_size;
int type_size, nb_clusters, bad_cluster_value;

void free_all() {
#define FREE(p) if (p) free(p), p = NULL;
  FREE(fat);
  FREE(fat_flag_map);
  FREE(fat_remap);
#undef FREE
}

unsigned int next(unsigned int cluster) {
  short *p = fat + type_size * cluster;
  if (!fat) {
    free_all();
    croak("fat::next: trying to use null pointer");
  }
  if (cluster >= nb_clusters + 2) {
    free_all();
    croak("fat::next: cluster %d outside filesystem", cluster);
  }
  return type_size == 1 ? *p : *((unsigned int *) p);
}

void set_next(unsigned int cluster, unsigned int val) {
  short *p = fat + type_size * cluster;
  if (!fat) {
    free_all();
    croak("fat::set_next: trying to use null pointer");
  }
  if (cluster >= nb_clusters + 2) {
    free_all();
    croak("fat::set_next: cluster %d outside filesystem", cluster);
  }
  type_size == 1 ? *p : *((unsigned int *) p) = val;
}

MODULE = resize_fat::c_rewritten PACKAGE = resize_fat::c_rewritten

void 
read_fat(fd, offset, size, magic)
  int fd
  int offset
  int size
  unsigned char magic
  PPCODE:
{
  fat = (short *) malloc(size);
  if (!fat) {
    free_all();
    croak("read_fat: not enough memory");
  }
  if (lseek(fd, offset, SEEK_SET) != offset ||
      read(fd, fat, size) != size) {
    free_all();
    croak("read_fat: reading FAT failed");
  }
  if (magic != *(unsigned char *) fat) {
    free_all();
    croak("read_fat: FAT has invalid signature");
  }
}

void
write_fat(fd, size)
  int fd
  int size
  PPCODE:
{
  if (write(fd, fat, size) != size) {
    free_all();
    croak("write_fat: write failed");
  }
}

void
free_all()
  PPCODE:
  free_all();

void
scan_fat(nb_clusters_, type_size_)
  int nb_clusters_
  int type_size_
  PPCODE:
{
  unsigned int v;  
  int free = 0, bad = 0, used = 0;
  short *p;
  
  type_size = type_size_; nb_clusters = nb_clusters_;
  bad_cluster_value = type_size == 32 ? 0x0ffffff7 : 0xfff7;

  if (type_size % 16) {
    free_all();
    croak("scan_fat: unable to handle FAT%d", type_size);
  }
  type_size /= 16;

  for (p = fat + 2 * type_size; p < fat + type_size * (nb_clusters + 2); p += type_size) {
    v = type_size == 1 ? *p : *((unsigned int *) p);

    if (v == 0) free++;
    else if (v == bad_cluster_value) bad++;
  }
  used = nb_clusters - free - bad;
  EXTEND(SP, 3);
  PUSHs(sv_2mortal(newSViv(free)));
  PUSHs(sv_2mortal(newSViv(bad)));
  PUSHs(sv_2mortal(newSViv(used)));
}

unsigned int
next(unused, cluster)
  void *unused
  unsigned int cluster
  CODE:
  RETVAL = next(cluster);
  OUTPUT:
  RETVAL

void
set_next(unused, cluster, val)
  void *unused
  unsigned int cluster
  unsigned int val
  CODE:
  set_next(cluster, val);

void
allocate_fat_flag(size)
  int size
  CODE:
  fat_flag_map = calloc(size, 1);
  if (!fat_flag_map) {
    free_all();
    croak("allocate_fat_flag: not enough memory");
  }

int
checkFat(cluster, type, name)
  unsigned int cluster
  int type
  char *name
  CODE:
  int nb = 0;

  if (!fat_flag_map) {
    free_all();
    croak("Bad FAT: trying to use null pointer");
  }
  for (; cluster < bad_cluster_value; cluster = next(cluster)) {
    if (cluster == 0) {
      free_all();
      croak("Bad FAT: unterminated chain for %s\n", name);
    }
    if (cluster >= nb_clusters + 2) {
      free_all();
      croak("Bad FAT: chain outside filesystem for %s\n", name);
    }
    if (fat_flag_map[cluster]) {
      free_all();
      croak("Bad FAT: cluster %d is cross-linked for %s\n", cluster, name);
    }
    fat_flag_map[cluster] = type;
    nb++;
  }
  RETVAL = nb;
  OUTPUT:
  RETVAL

unsigned int
flag(cluster)
  unsigned int cluster
  CODE:
  if (!fat_flag_map) {
    free_all();
    croak("Bad FAT: trying to use null pointer");
  }
  if (cluster >= nb_clusters + 2) {
    free_all();
    croak("Bad FAT: going outside filesystem");
  }
  RETVAL = fat_flag_map[cluster];
  OUTPUT:
  RETVAL

void
set_flag(cluster, flag)
  unsigned int cluster
  int flag
  CODE:
  if (!fat_flag_map) {
    free_all();
    croak("Bad FAT: trying to use null pointer");
  }
  if (cluster >= nb_clusters + 2) {
    free_all();
    croak("Bad FAT: going outside filesystem");
  }
  fat_flag_map[cluster] = flag;

void
allocate_fat_remap(size)
  int size
  CODE:
  fat_remap_size = size;
  fat_remap = (unsigned int *) calloc(size, sizeof(unsigned int *));
  if (!fat_remap) {
    free_all();
    croak("allocate_fat_remap: not enough memory");
  }

unsigned int
fat_remap(cluster)
  unsigned int cluster
  CODE:
  if (!fat_remap) {
    free_all();
    croak("fat_remap: trying to use null pointer");
  }
  if (cluster >= bad_cluster_value) {
    RETVAL = cluster; /* special cases */
  } else {
    if (cluster >= fat_remap_size) {
      free_all();
      croak("fat_remap: cluster %d >= %d in fat_remap", cluster, fat_remap_size);
    }
    RETVAL = fat_remap[cluster];
  }
  OUTPUT:
  RETVAL

void
set_fat_remap(cluster, val)
  unsigned int cluster
  unsigned int val
  CODE:
  if (!fat_remap) {
    free_all();
    croak("set_fat_remap: trying to use null pointer");
  }
  if (cluster >= fat_remap_size) {
    free_all();
    croak("set_fat_remap: cluster %d >= %d in set_fat_remap", cluster, fat_remap_size);
  }
  if (val < bad_cluster_value && val >= fat_remap_size) {
    free_all();
    croak("set_fat_remap: remapping cluster %d to cluster %d >= %d in set_fat_remap", cluster, val, fat_remap_size);
  }
  fat_remap[cluster] = val;
ass="hl opt">(void) { return xmalloc(sizeof(struct obj_symbol)); } #ifdef BROKEN_SPARC64_RELOCS #undef R_SPARC_PLT32 #undef R_SPARC_HIPLT22 #undef R_SPARC_LOPLT10 #undef R_SPARC_PCPLT32 #undef R_SPARC_PCPLT22 #undef R_SPARC_PCPLT10 #undef R_SPARC_10 #undef R_SPARC_11 #undef R_SPARC_64 #undef R_SPARC_OLO10 #undef R_SPARC_HH22 #undef R_SPARC_HM10 #undef R_SPARC_LM22 #undef R_SPARC_PC_HH22 #undef R_SPARC_PC_HM10 #undef R_SPARC_PC_LM22 #undef R_SPARC_WDISP16 #undef R_SPARC_WDISP19 #undef R_SPARC_GLOB_JMP #undef R_SPARC_7 #undef R_SPARC_5 #undef R_SPARC_6 #define R_SPARC_10 24 #define R_SPARC_11 25 #define R_SPARC_64 26 #define R_SPARC_OLO10 27 #define R_SPARC_HH22 28 #define R_SPARC_HM10 29 #define R_SPARC_LM22 30 #define R_SPARC_PC_HH22 31 #define R_SPARC_PC_HM10 32 #define R_SPARC_PC_LM22 33 #define R_SPARC_WDISP16 34 #define R_SPARC_WDISP19 35 #define R_SPARC_GLOB_JMP 36 #define R_SPARC_7 37 #define R_SPARC_5 38 #define R_SPARC_6 39 #else #ifndef R_SPARC_64 #define R_SPARC_64 32 #define R_SPARC_OLO10 33 #define R_SPARC_HH22 34 #define R_SPARC_HM10 35 #define R_SPARC_LM22 36 #define R_SPARC_PC_HH22 37 #define R_SPARC_PC_HM10 38 #define R_SPARC_PC_LM22 39 #endif #endif int arch_load_proc_section(struct obj_section *sec, int fp) { /* Assume it's just a debugging section that we can safely ignore ... */ sec->contents = NULL; return 0; } #define ELF64_R_TYPE_ID(info) ((info) & 0xff) #define ELF64_R_TYPE_DATA(info) ((info) >> 8) enum obj_reloc arch_apply_relocation (struct obj_file *ef, struct obj_section *targsec, struct obj_section *symsec, struct obj_symbol *sym, Elf64_Rela *rel, Elf64_Addr v) { unsigned int *loc = (unsigned int *)(targsec->contents + rel->r_offset); unsigned int dot = targsec->header.sh_addr + rel->r_offset; enum obj_reloc ret = obj_reloc_ok; switch (ELF64_R_TYPE_ID(rel->r_info)) { case R_SPARC_NONE: break; case R_SPARC_64: case R_SPARC_UA64: if (! ((long) loc & 3)) { /* Common in .eh_frame */ ((unsigned int *) loc) [0] = v >> 32; ((unsigned int *) loc) [1] = v; break; } ((unsigned char *) loc) [0] = v >> 56; ((unsigned char *) loc) [1] = v >> 48; ((unsigned char *) loc) [2] = v >> 40; ((unsigned char *) loc) [3] = v >> 32; ((unsigned char *) loc) [4] = v >> 24; ((unsigned char *) loc) [5] = v >> 16; ((unsigned char *) loc) [6] = v >> 8; ((unsigned char *) loc) [7] = v; break; case R_SPARC_32: case R_SPARC_UA32: if (! ((long) loc & 3)) { *loc = v; break; } ((unsigned char *) loc) [0] = v >> 24; ((unsigned char *) loc) [1] = v >> 16; ((unsigned char *) loc) [2] = v >> 8; ((unsigned char *) loc) [3] = v; break; case R_SPARC_16: if (v > 0xffff) ret = obj_reloc_overflow; *loc = (*loc & ~0xffff) | (v & 0xffff); break; case R_SPARC_8: if (v > 0xff) ret = obj_reloc_overflow; *loc = (*loc & ~0xff) | (v & 0xff); break; case R_SPARC_DISP32: v -= dot; *loc = v; break; case R_SPARC_DISP16: v -= dot; if (v > 0xffff) ret = obj_reloc_overflow; *loc = (*loc & ~0xffff) | (v & 0xffff); break; case R_SPARC_DISP8: v -= dot; if (v > 0xff) ret = obj_reloc_overflow; *loc = (*loc & ~0xff) | (v & 0xff); break; case R_SPARC_WDISP30: v -= dot; if (v % 4) ret = obj_reloc_dangerous; *loc = (*loc & ~0x3fffffff) | ((v >> 2) & 0x3fffffff); break; /* MEDLOW code model relocs */ case R_SPARC_LO10: *loc = (*loc & ~0x3ff) | (v & 0x3ff); break; case R_SPARC_HI22: *loc = (*loc & ~0x3fffff) | (v >> 10); break; case R_SPARC_OLO10: *loc = (*loc & ~0x1fff) | (((v & 0x3ff) + ELF64_R_TYPE_DATA (rel->r_info)) & 0x1fff); break; /* MEDMID code model relocs */ case R_SPARC_H44: *loc = (*loc & ~0x3fffff) | (v >> 22); break; case R_SPARC_M44: *loc = (*loc & ~0x3ff) | ((v >> 12) & 0x3ff); break; case R_SPARC_L44: *loc = (*loc & ~0xfff) | (v & 0xfff); break; /* MEDANY code model relocs */ case R_SPARC_HH22: *loc = (*loc & ~0x3fffff) | (v >> 42); break; case R_SPARC_HM10: *loc = (*loc & ~0x3ff) | ((v >> 32) & 0x3ff); break; case R_SPARC_LM22: *loc = (*loc & ~0x3fffff) | ((v >> 10) & 0x3fffff); break; case R_SPARC_WDISP22: v -= dot; if (v % 4) ret = obj_reloc_dangerous; *loc = (*loc & ~0x3fffff) | ((v >> 2) & 0x3fffff); break; case R_SPARC_22: if (v > 0x3fffff) ret = obj_reloc_overflow; *loc = (*loc & ~0x3fffff) | (v & 0x3fffff); break; case R_SPARC_13: if (v > 0x1fff) ret = obj_reloc_overflow; *loc = (*loc & ~0x1fff) | (v & 0x1fff); break; case R_SPARC_PC10: v -= dot; *loc = (*loc & ~0x3ff) | (v & 0x3ff); break; case R_SPARC_PC22: v -= dot; *loc = (*loc & ~0x3fffff) | ((v >> 10) & 0x3fffff); break; #ifdef R_SPARC_10 case R_SPARC_10: if (v > 0x3ff) ret = obj_reloc_overflow; *loc = (*loc & ~0x3ff) | (v & 0x3ff); break; case R_SPARC_11: if (v > 0x7ff) ret = obj_reloc_overflow; *loc = (*loc & ~0x7ff) | (v & 0x7ff); break; #ifdef R_SPARC_64 case R_SPARC_PC_HH22: v -= dot; *loc = (*loc & ~0x3fffff) | (v >> 42); break; case R_SPARC_PC_HM10: v -= dot; *loc = (*loc & ~0x3ff) | ((v >> 32) & 0x3ff); break; case R_SPARC_PC_LM22: v -= dot; *loc = (*loc & ~0x3fffff) | ((v >> 10) & 0x3fffff); break; #endif case R_SPARC_WDISP16: v -= dot; if (v % 4) ret = obj_reloc_dangerous; *loc = (*loc & ~0x303fff) | ((v << 4) & 0x300000) | ((v >> 2) & 0x3fff); break; case R_SPARC_WDISP19: v -= dot; if (v % 4) ret = obj_reloc_dangerous; *loc = (*loc & ~0x7ffff) | ((v >> 2) & 0x7ffff); break; case R_SPARC_7: if (v > 0x7f) ret = obj_reloc_overflow; *loc = (*loc & ~0x7f) | (v & 0x7f); break; case R_SPARC_5: if (v > 0x1f) ret = obj_reloc_overflow; *loc = (*loc & ~0x1f) | (v & 0x1f); break; case R_SPARC_6: if (v > 0x3f) ret = obj_reloc_overflow; *loc = (*loc & ~0x3f) | (v & 0x3f); break; #endif /* R_SPARC_10 */ default: ret = obj_reloc_unhandled; break; } return ret; } int arch_create_got (struct obj_file *ef) { return 1; } int arch_init_module (struct obj_file *f, struct module *mod) { return 1; } int arch_finalize_section_address(struct obj_file *f, Elf64_Addr base) { int i, n = f->header.e_shnum; f->baseaddr = base; for (i = 0; i < n; ++i) f->sections[i]->header.sh_addr += base; return 1; } int arch_archdata (struct obj_file *fin, struct obj_section *sec) { return 0; }