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go32-nat.c revision 1.12
      1 /* Native debugging support for Intel x86 running DJGPP.
      2    Copyright (C) 1997-2024 Free Software Foundation, Inc.
      3    Written by Robert Hoehne.
      4 
      5    This file is part of GDB.
      6 
      7    This program is free software; you can redistribute it and/or modify
      8    it under the terms of the GNU General Public License as published by
      9    the Free Software Foundation; either version 3 of the License, or
     10    (at your option) any later version.
     11 
     12    This program is distributed in the hope that it will be useful,
     13    but WITHOUT ANY WARRANTY; without even the implied warranty of
     14    MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
     15    GNU General Public License for more details.
     16 
     17    You should have received a copy of the GNU General Public License
     18    along with this program.  If not, see <http://www.gnu.org/licenses/>.  */
     19 
     20 /* To whomever it may concern, here's a general description of how
     21    debugging in DJGPP works, and the special quirks GDB does to
     22    support that.
     23 
     24    When the DJGPP port of GDB is debugging a DJGPP program natively,
     25    there aren't 2 separate processes, the debuggee and GDB itself, as
     26    on other systems.  (This is DOS, where there can only be one active
     27    process at any given time, remember?)  Instead, GDB and the
     28    debuggee live in the same process.  So when GDB calls
     29    go32_create_inferior below, and that function calls edi_init from
     30    the DJGPP debug support library libdbg.a, we load the debuggee's
     31    executable file into GDB's address space, set it up for execution
     32    as the stub loader (a short real-mode program prepended to each
     33    DJGPP executable) normally would, and do a lot of preparations for
     34    swapping between GDB's and debuggee's internal state, primarily wrt
     35    the exception handlers.  This swapping happens every time we resume
     36    the debuggee or switch back to GDB's code, and it includes:
     37 
     38     . swapping all the segment registers
     39     . swapping the PSP (the Program Segment Prefix)
     40     . swapping the signal handlers
     41     . swapping the exception handlers
     42     . swapping the FPU status
     43     . swapping the 3 standard file handles (more about this below)
     44 
     45    Then running the debuggee simply means longjmp into it where its PC
     46    is and let it run until it stops for some reason.  When it stops,
     47    GDB catches the exception that stopped it and longjmp's back into
     48    its own code.  All the possible exit points of the debuggee are
     49    watched; for example, the normal exit point is recognized because a
     50    DOS program issues a special system call to exit.  If one of those
     51    exit points is hit, we mourn the inferior and clean up after it.
     52    Cleaning up is very important, even if the process exits normally,
     53    because otherwise we might leave behind traces of previous
     54    execution, and in several cases GDB itself might be left hosed,
     55    because all the exception handlers were not restored.
     56 
     57    Swapping of the standard handles (in redir_to_child and
     58    redir_to_debugger) is needed because, since both GDB and the
     59    debuggee live in the same process, as far as the OS is concerned,
     60    the share the same file table.  This means that the standard
     61    handles 0, 1, and 2 point to the same file table entries, and thus
     62    are connected to the same devices.  Therefore, if the debugger
     63    redirects its standard output, the standard output of the debuggee
     64    is also automagically redirected to the same file/device!
     65    Similarly, if the debuggee redirects its stdout to a file, you
     66    won't be able to see debugger's output (it will go to the same file
     67    where the debuggee has its output); and if the debuggee closes its
     68    standard input, you will lose the ability to talk to debugger!
     69 
     70    For this reason, every time the debuggee is about to be resumed, we
     71    call redir_to_child, which redirects the standard handles to where
     72    the debuggee expects them to be.  When the debuggee stops and GDB
     73    regains control, we call redir_to_debugger, which redirects those 3
     74    handles back to where GDB expects.
     75 
     76    Note that only the first 3 handles are swapped, so if the debuggee
     77    redirects or closes any other handles, GDB will not notice.  In
     78    particular, the exit code of a DJGPP program forcibly closes all
     79    file handles beyond the first 3 ones, so when the debuggee exits,
     80    GDB currently loses its stdaux and stdprn streams.  Fortunately,
     81    GDB does not use those as of this writing, and will never need
     82    to.  */
     83 
     84 
     85 #include <fcntl.h>
     86 
     87 #include "x86-nat.h"
     88 #include "inferior.h"
     89 #include "infrun.h"
     90 #include "gdbthread.h"
     91 #include "gdbsupport/gdb_wait.h"
     92 #include "gdbcore.h"
     93 #include "command.h"
     94 #include "cli/cli-cmds.h"
     95 #include "floatformat.h"
     96 #include "buildsym-legacy.h"
     97 #include "i387-tdep.h"
     98 #include "i386-tdep.h"
     99 #include "nat/x86-cpuid.h"
    100 #include "value.h"
    101 #include "regcache.h"
    102 #include "top.h"
    103 #include "cli/cli-utils.h"
    104 #include "inf-child.h"
    105 
    106 #include <ctype.h>
    107 #include <unistd.h>
    108 #include <sys/utsname.h>
    109 #include <io.h>
    110 #include <dos.h>
    111 #include <dpmi.h>
    112 #include <go32.h>
    113 #include <sys/farptr.h>
    114 #include <debug/v2load.h>
    115 #include <debug/dbgcom.h>
    116 #if __DJGPP_MINOR__ > 2
    117 #include <debug/redir.h>
    118 #endif
    119 
    120 #include <langinfo.h>
    121 
    122 #if __DJGPP_MINOR__ < 3
    123 /* This code will be provided from DJGPP 2.03 on.  Until then I code it
    124    here.  */
    125 typedef struct
    126   {
    127     unsigned short sig0;
    128     unsigned short sig1;
    129     unsigned short sig2;
    130     unsigned short sig3;
    131     unsigned short exponent:15;
    132     unsigned short sign:1;
    133   }
    134 NPXREG;
    135 
    136 typedef struct
    137   {
    138     unsigned int control;
    139     unsigned int status;
    140     unsigned int tag;
    141     unsigned int eip;
    142     unsigned int cs;
    143     unsigned int dataptr;
    144     unsigned int datasel;
    145     NPXREG reg[8];
    146   }
    147 NPX;
    148 
    149 static NPX npx;
    150 
    151 static void save_npx (void);	/* Save the FPU of the debugged program.  */
    152 static void load_npx (void);	/* Restore the FPU of the debugged program.  */
    153 
    154 /* ------------------------------------------------------------------------- */
    155 /* Store the contents of the NPX in the global variable `npx'.  */
    156 
    157 static void
    158 save_npx (void)
    159 {
    160   asm ("inb    $0xa0, %%al  \n\
    161        testb $0x20, %%al    \n\
    162        jz 1f 	    	    \n\
    163        xorb %%al, %%al	    \n\
    164        outb %%al, $0xf0     \n\
    165        movb $0x20, %%al	    \n\
    166        outb %%al, $0xa0     \n\
    167        outb %%al, $0x20     \n\
    168 1:     	       	   	    \n\
    169        fnsave %0	    \n\
    170        fwait "
    171 :     "=m" (npx)
    172 :				/* No input */
    173 :     "%eax");
    174 }
    175 
    176 
    177 
    178 /* ------------------------------------------------------------------------- */
    179 /* Reload the contents of the NPX from the global variable `npx'.  */
    180 
    181 static void
    182 load_npx (void)
    183 {
    184   asm ("frstor %0":"=m" (npx));
    185 }
    186 /* ------------------------------------------------------------------------- */
    187 /* Stubs for the missing redirection functions.  */
    188 typedef struct {
    189   char *command;
    190   int redirected;
    191 } cmdline_t;
    192 
    193 void
    194 redir_cmdline_delete (cmdline_t *ptr)
    195 {
    196   ptr->redirected = 0;
    197 }
    198 
    199 int
    200 redir_cmdline_parse (const char *args, cmdline_t *ptr)
    201 {
    202   return -1;
    203 }
    204 
    205 int
    206 redir_to_child (cmdline_t *ptr)
    207 {
    208   return 1;
    209 }
    210 
    211 int
    212 redir_to_debugger (cmdline_t *ptr)
    213 {
    214   return 1;
    215 }
    216 
    217 int
    218 redir_debug_init (cmdline_t *ptr)
    219 {
    220   return 0;
    221 }
    222 #endif /* __DJGPP_MINOR < 3 */
    223 
    224 typedef enum { wp_insert, wp_remove, wp_count } wp_op;
    225 
    226 /* This holds the current reference counts for each debug register.  */
    227 static int dr_ref_count[4];
    228 
    229 #define SOME_PID 42
    230 
    231 static int prog_has_started = 0;
    232 
    233 #define r_ofs(x) (offsetof(TSS,x))
    234 
    235 static struct
    236 {
    237   size_t tss_ofs;
    238   size_t size;
    239 }
    240 regno_mapping[] =
    241 {
    242   {r_ofs (tss_eax), 4},	/* normal registers, from a_tss */
    243   {r_ofs (tss_ecx), 4},
    244   {r_ofs (tss_edx), 4},
    245   {r_ofs (tss_ebx), 4},
    246   {r_ofs (tss_esp), 4},
    247   {r_ofs (tss_ebp), 4},
    248   {r_ofs (tss_esi), 4},
    249   {r_ofs (tss_edi), 4},
    250   {r_ofs (tss_eip), 4},
    251   {r_ofs (tss_eflags), 4},
    252   {r_ofs (tss_cs), 2},
    253   {r_ofs (tss_ss), 2},
    254   {r_ofs (tss_ds), 2},
    255   {r_ofs (tss_es), 2},
    256   {r_ofs (tss_fs), 2},
    257   {r_ofs (tss_gs), 2},
    258   {0, 10},		/* 8 FP registers, from npx.reg[] */
    259   {1, 10},
    260   {2, 10},
    261   {3, 10},
    262   {4, 10},
    263   {5, 10},
    264   {6, 10},
    265   {7, 10},
    266 	/* The order of the next 7 registers must be consistent
    267 	   with their numbering in config/i386/tm-i386.h, which see.  */
    268   {0, 2},		/* control word, from npx */
    269   {4, 2},		/* status word, from npx */
    270   {8, 2},		/* tag word, from npx */
    271   {16, 2},		/* last FP exception CS from npx */
    272   {12, 4},		/* last FP exception EIP from npx */
    273   {24, 2},		/* last FP exception operand selector from npx */
    274   {20, 4},		/* last FP exception operand offset from npx */
    275   {18, 2}		/* last FP opcode from npx */
    276 };
    277 
    278 static struct
    279   {
    280     int go32_sig;
    281     enum gdb_signal gdb_sig;
    282   }
    283 sig_map[] =
    284 {
    285   {0, GDB_SIGNAL_FPE},
    286   {1, GDB_SIGNAL_TRAP},
    287   /* Exception 2 is triggered by the NMI.  DJGPP handles it as SIGILL,
    288      but I think SIGBUS is better, since the NMI is usually activated
    289      as a result of a memory parity check failure.  */
    290   {2, GDB_SIGNAL_BUS},
    291   {3, GDB_SIGNAL_TRAP},
    292   {4, GDB_SIGNAL_FPE},
    293   {5, GDB_SIGNAL_SEGV},
    294   {6, GDB_SIGNAL_ILL},
    295   {7, GDB_SIGNAL_EMT},	/* no-coprocessor exception */
    296   {8, GDB_SIGNAL_SEGV},
    297   {9, GDB_SIGNAL_SEGV},
    298   {10, GDB_SIGNAL_BUS},
    299   {11, GDB_SIGNAL_SEGV},
    300   {12, GDB_SIGNAL_SEGV},
    301   {13, GDB_SIGNAL_SEGV},
    302   {14, GDB_SIGNAL_SEGV},
    303   {16, GDB_SIGNAL_FPE},
    304   {17, GDB_SIGNAL_BUS},
    305   {31, GDB_SIGNAL_ILL},
    306   {0x1b, GDB_SIGNAL_INT},
    307   {0x75, GDB_SIGNAL_FPE},
    308   {0x78, GDB_SIGNAL_ALRM},
    309   {0x79, GDB_SIGNAL_INT},
    310   {0x7a, GDB_SIGNAL_QUIT},
    311   {-1, GDB_SIGNAL_LAST}
    312 };
    313 
    314 static struct {
    315   enum gdb_signal gdb_sig;
    316   int djgpp_excepno;
    317 } excepn_map[] = {
    318   {GDB_SIGNAL_0, -1},
    319   {GDB_SIGNAL_ILL, 6},	/* Invalid Opcode */
    320   {GDB_SIGNAL_EMT, 7},	/* triggers SIGNOFP */
    321   {GDB_SIGNAL_SEGV, 13},	/* GPF */
    322   {GDB_SIGNAL_BUS, 17},	/* Alignment Check */
    323   /* The rest are fake exceptions, see dpmiexcp.c in djlsr*.zip for
    324      details.  */
    325   {GDB_SIGNAL_TERM, 0x1b},	/* triggers Ctrl-Break type of SIGINT */
    326   {GDB_SIGNAL_FPE, 0x75},
    327   {GDB_SIGNAL_INT, 0x79},
    328   {GDB_SIGNAL_QUIT, 0x7a},
    329   {GDB_SIGNAL_ALRM, 0x78},	/* triggers SIGTIMR */
    330   {GDB_SIGNAL_PROF, 0x78},
    331   {GDB_SIGNAL_LAST, -1}
    332 };
    333 
    334 /* The go32 target.  */
    335 
    336 struct go32_nat_target final : public x86_nat_target<inf_child_target>
    337 {
    338   void attach (const char *, int) override;
    339 
    340   void resume (ptid_t, int, enum gdb_signal) override;
    341 
    342   ptid_t wait (ptid_t, struct target_waitstatus *, target_wait_flags) override;
    343 
    344   void fetch_registers (struct regcache *, int) override;
    345   void store_registers (struct regcache *, int) override;
    346 
    347   enum target_xfer_status xfer_partial (enum target_object object,
    348 					const char *annex,
    349 					gdb_byte *readbuf,
    350 					const gdb_byte *writebuf,
    351 					ULONGEST offset, ULONGEST len,
    352 					ULONGEST *xfered_len) override;
    353 
    354   void files_info () override;
    355 
    356   void terminal_init () override;
    357 
    358   void terminal_inferior () override;
    359 
    360   void terminal_ours_for_output () override;
    361 
    362   void terminal_ours () override;
    363 
    364   void terminal_info (const char *, int) override;
    365 
    366   void pass_ctrlc () override;
    367 
    368   void kill () override;
    369 
    370   void create_inferior (const char *, const std::string &,
    371 			char **, int) override;
    372 
    373   void mourn_inferior () override;
    374 
    375   bool thread_alive (ptid_t ptid) override;
    376 
    377   std::string pid_to_str (ptid_t) override;
    378 };
    379 
    380 static go32_nat_target the_go32_nat_target;
    381 
    382 void
    383 go32_nat_target::attach (const char *args, int from_tty)
    384 {
    385   error (_("\
    386 You cannot attach to a running program on this platform.\n\
    387 Use the `run' command to run DJGPP programs."));
    388 }
    389 
    390 static int resume_is_step;
    391 static int resume_signal = -1;
    392 
    393 void
    394 go32_nat_target::resume (ptid_t ptid, int step, enum gdb_signal siggnal)
    395 {
    396   int i;
    397 
    398   resume_is_step = step;
    399 
    400   if (siggnal != GDB_SIGNAL_0 && siggnal != GDB_SIGNAL_TRAP)
    401     {
    402       for (i = 0, resume_signal = -1;
    403 	   excepn_map[i].gdb_sig != GDB_SIGNAL_LAST; i++)
    404 	if (excepn_map[i].gdb_sig == siggnal)
    405 	  {
    406 	    resume_signal = excepn_map[i].djgpp_excepno;
    407 	    break;
    408 	  }
    409       if (resume_signal == -1)
    410 	printf_unfiltered ("Cannot deliver signal %s on this platform.\n",
    411 			   gdb_signal_to_name (siggnal));
    412     }
    413 }
    414 
    415 static char child_cwd[FILENAME_MAX];
    416 
    417 ptid_t
    418 go32_nat_target::wait (ptid_t ptid, struct target_waitstatus *status,
    419 		       target_wait_flags options)
    420 {
    421   int i;
    422   unsigned char saved_opcode;
    423   unsigned long INT3_addr = 0;
    424   int stepping_over_INT = 0;
    425 
    426   a_tss.tss_eflags &= 0xfeff;	/* Reset the single-step flag (TF).  */
    427   if (resume_is_step)
    428     {
    429       /* If the next instruction is INT xx or INTO, we need to handle
    430 	 them specially.  Intel manuals say that these instructions
    431 	 reset the single-step flag (a.k.a. TF).  However, it seems
    432 	 that, at least in the DPMI environment, and at least when
    433 	 stepping over the DPMI interrupt 31h, the problem is having
    434 	 TF set at all when INT 31h is executed: the debuggee either
    435 	 crashes (and takes the system with it) or is killed by a
    436 	 SIGTRAP.
    437 
    438 	 So we need to emulate single-step mode: we put an INT3 opcode
    439 	 right after the INT xx instruction, let the debuggee run
    440 	 until it hits INT3 and stops, then restore the original
    441 	 instruction which we overwrote with the INT3 opcode, and back
    442 	 up the debuggee's EIP to that instruction.  */
    443       read_child (a_tss.tss_eip, &saved_opcode, 1);
    444       if (saved_opcode == 0xCD || saved_opcode == 0xCE)
    445 	{
    446 	  unsigned char INT3_opcode = 0xCC;
    447 
    448 	  INT3_addr
    449 	    = saved_opcode == 0xCD ? a_tss.tss_eip + 2 : a_tss.tss_eip + 1;
    450 	  stepping_over_INT = 1;
    451 	  read_child (INT3_addr, &saved_opcode, 1);
    452 	  write_child (INT3_addr, &INT3_opcode, 1);
    453 	}
    454       else
    455 	a_tss.tss_eflags |= 0x0100; /* normal instruction: set TF */
    456     }
    457 
    458   /* The special value FFFFh in tss_trap indicates to run_child that
    459      tss_irqn holds a signal to be delivered to the debuggee.  */
    460   if (resume_signal <= -1)
    461     {
    462       a_tss.tss_trap = 0;
    463       a_tss.tss_irqn = 0xff;
    464     }
    465   else
    466     {
    467       a_tss.tss_trap = 0xffff;	/* run_child looks for this.  */
    468       a_tss.tss_irqn = resume_signal;
    469     }
    470 
    471   /* The child might change working directory behind our back.  The
    472      GDB users won't like the side effects of that when they work with
    473      relative file names, and GDB might be confused by its current
    474      directory not being in sync with the truth.  So we always make a
    475      point of changing back to where GDB thinks is its cwd, when we
    476      return control to the debugger, but restore child's cwd before we
    477      run it.  */
    478   /* Initialize child_cwd, before the first call to run_child and not
    479      in the initialization, so the child get also the changed directory
    480      set with the gdb-command "cd ..."  */
    481   if (!*child_cwd)
    482     /* Initialize child's cwd with the current one.  */
    483     getcwd (child_cwd, sizeof (child_cwd));
    484 
    485   chdir (child_cwd);
    486 
    487 #if __DJGPP_MINOR__ < 3
    488   load_npx ();
    489 #endif
    490   run_child ();
    491 #if __DJGPP_MINOR__ < 3
    492   save_npx ();
    493 #endif
    494 
    495   /* Did we step over an INT xx instruction?  */
    496   if (stepping_over_INT && a_tss.tss_eip == INT3_addr + 1)
    497     {
    498       /* Restore the original opcode.  */
    499       a_tss.tss_eip--;	/* EIP points *after* the INT3 instruction.  */
    500       write_child (a_tss.tss_eip, &saved_opcode, 1);
    501       /* Simulate a TRAP exception.  */
    502       a_tss.tss_irqn = 1;
    503       a_tss.tss_eflags |= 0x0100;
    504     }
    505 
    506   getcwd (child_cwd, sizeof (child_cwd)); /* in case it has changed */
    507   if (current_directory != NULL)
    508     chdir (current_directory);
    509 
    510   if (a_tss.tss_irqn == 0x21)
    511     status->set_exited (a_tss.tss_eax & 0xff);
    512   else
    513     {
    514       status->set_stopped (GDB_SIGNAL_UNKNOWN);
    515       for (i = 0; sig_map[i].go32_sig != -1; i++)
    516 	{
    517 	  if (a_tss.tss_irqn == sig_map[i].go32_sig)
    518 	    {
    519 #if __DJGPP_MINOR__ < 3
    520 	      status->set_stopped (sig_map[i].gdb_sig);
    521 	      if (status->sig () != GDB_SIGNAL_TRAP)
    522 		status->set_signalled (status->sig ());
    523 #else
    524 	      status->set_stopped (sig_map[i].gdb_sig);
    525 #endif
    526 	      break;
    527 	    }
    528 	}
    529     }
    530   return ptid_t (SOME_PID);
    531 }
    532 
    533 static void
    534 fetch_register (struct regcache *regcache, int regno)
    535 {
    536   struct gdbarch *gdbarch = regcache->arch ();
    537   if (regno < gdbarch_fp0_regnum (gdbarch))
    538     regcache->raw_supply (regno,
    539 			  (char *) &a_tss + regno_mapping[regno].tss_ofs);
    540   else if (i386_fp_regnum_p (gdbarch, regno) || i386_fpc_regnum_p (gdbarch,
    541 								   regno))
    542     i387_supply_fsave (regcache, regno, &npx);
    543   else
    544     internal_error (_("Invalid register no. %d in fetch_register."), regno);
    545 }
    546 
    547 void
    548 go32_nat_target::fetch_registers (struct regcache *regcache, int regno)
    549 {
    550   if (regno >= 0)
    551     fetch_register (regcache, regno);
    552   else
    553     {
    554       for (regno = 0;
    555 	   regno < gdbarch_fp0_regnum (regcache->arch ());
    556 	   regno++)
    557 	fetch_register (regcache, regno);
    558       i387_supply_fsave (regcache, -1, &npx);
    559     }
    560 }
    561 
    562 static void
    563 store_register (const struct regcache *regcache, int regno)
    564 {
    565   struct gdbarch *gdbarch = regcache->arch ();
    566   if (regno < gdbarch_fp0_regnum (gdbarch))
    567     regcache->raw_collect (regno,
    568 			   (char *) &a_tss + regno_mapping[regno].tss_ofs);
    569   else if (i386_fp_regnum_p (gdbarch, regno) || i386_fpc_regnum_p (gdbarch,
    570 								   regno))
    571     i387_collect_fsave (regcache, regno, &npx);
    572   else
    573     internal_error (_("Invalid register no. %d in store_register."), regno);
    574 }
    575 
    576 void
    577 go32_nat_target::store_registers (struct regcache *regcache, int regno)
    578 {
    579   unsigned r;
    580 
    581   if (regno >= 0)
    582     store_register (regcache, regno);
    583   else
    584     {
    585       for (r = 0; r < gdbarch_fp0_regnum (regcache->arch ()); r++)
    586 	store_register (regcache, r);
    587       i387_collect_fsave (regcache, -1, &npx);
    588     }
    589 }
    590 
    591 /* Const-correct version of DJGPP's write_child, which unfortunately
    592    takes a non-const buffer pointer.  */
    593 
    594 static int
    595 my_write_child (unsigned child_addr, const void *buf, unsigned len)
    596 {
    597   static void *buffer = NULL;
    598   static unsigned buffer_len = 0;
    599   int res;
    600 
    601   if (buffer_len < len)
    602     {
    603       buffer = xrealloc (buffer, len);
    604       buffer_len = len;
    605     }
    606 
    607   memcpy (buffer, buf, len);
    608   res = write_child (child_addr, buffer, len);
    609   return res;
    610 }
    611 
    612 /* Helper for go32_xfer_partial that handles memory transfers.
    613    Arguments are like target_xfer_partial.  */
    614 
    615 static enum target_xfer_status
    616 go32_xfer_memory (gdb_byte *readbuf, const gdb_byte *writebuf,
    617 		  ULONGEST memaddr, ULONGEST len, ULONGEST *xfered_len)
    618 {
    619   int res;
    620 
    621   if (writebuf != NULL)
    622     res = my_write_child (memaddr, writebuf, len);
    623   else
    624     res = read_child (memaddr, readbuf, len);
    625 
    626   /* read_child and write_child return zero on success, non-zero on
    627      failure.  */
    628   if (res != 0)
    629     return TARGET_XFER_E_IO;
    630 
    631   *xfered_len = len;
    632   return TARGET_XFER_OK;
    633 }
    634 
    635 /* Target to_xfer_partial implementation.  */
    636 
    637 enum target_xfer_status
    638 go32_nat_target::xfer_partial (enum target_object object,
    639 			       const char *annex, gdb_byte *readbuf,
    640 			       const gdb_byte *writebuf, ULONGEST offset,
    641 			       ULONGEST len,
    642 			       ULONGEST *xfered_len)
    643 {
    644   switch (object)
    645     {
    646     case TARGET_OBJECT_MEMORY:
    647       return go32_xfer_memory (readbuf, writebuf, offset, len, xfered_len);
    648 
    649     default:
    650       return this->beneath ()->xfer_partial (object, annex,
    651 					     readbuf, writebuf, offset, len,
    652 					     xfered_len);
    653     }
    654 }
    655 
    656 static cmdline_t child_cmd;	/* Parsed child's command line kept here.  */
    657 
    658 void
    659 go32_nat_target::files_info ()
    660 {
    661   gdb_printf ("You are running a DJGPP V2 program.\n");
    662 }
    663 
    664 void
    665 go32_nat_target::kill_inferior ()
    666 {
    667   mourn_inferior ();
    668 }
    669 
    670 void
    671 go32_nat_target::create_inferior (const char *exec_file,
    672 				  const std::string &allargs,
    673 				  char **env, int from_tty)
    674 {
    675   extern char **environ;
    676   jmp_buf start_state;
    677   char *cmdline;
    678   char **env_save = environ;
    679   size_t cmdlen;
    680   struct inferior *inf;
    681   int result;
    682   const char *args = allargs.c_str ();
    683 
    684   if (exec_file == nullptr)
    685     no_executable_specified_error ();
    686 
    687   resume_signal = -1;
    688   resume_is_step = 0;
    689 
    690   /* Initialize child's cwd as empty to be initialized when starting
    691      the child.  */
    692   *child_cwd = 0;
    693 
    694   /* Init command line storage.  */
    695   if (redir_debug_init (&child_cmd) == -1)
    696     internal_error (_("Cannot allocate redirection storage: "
    697 		      "not enough memory.\n"));
    698 
    699   /* Parse the command line and create redirections.  */
    700   if (strpbrk (args, "<>"))
    701     {
    702       if (redir_cmdline_parse (args, &child_cmd) == 0)
    703 	args = child_cmd.command;
    704       else
    705 	error (_("Syntax error in command line."));
    706     }
    707   else
    708     child_cmd.command = xstrdup (args);
    709 
    710   cmdlen = strlen (args);
    711   /* v2loadimage passes command lines via DOS memory, so it cannot
    712      possibly handle commands longer than 1MB.  */
    713   if (cmdlen > 1024*1024)
    714     error (_("Command line too long."));
    715 
    716   cmdline = (char *) xmalloc (cmdlen + 4);
    717   strcpy (cmdline + 1, args);
    718   /* If the command-line length fits into DOS 126-char limits, use the
    719      DOS command tail format; otherwise, tell v2loadimage to pass it
    720      through a buffer in conventional memory.  */
    721   if (cmdlen < 127)
    722     {
    723       cmdline[0] = strlen (args);
    724       cmdline[cmdlen + 1] = 13;
    725     }
    726   else
    727     cmdline[0] = 0xff;	/* Signal v2loadimage it's a long command.  */
    728 
    729   environ = env;
    730 
    731   result = v2loadimage (exec_file, cmdline, start_state);
    732 
    733   environ = env_save;
    734   xfree (cmdline);
    735 
    736   if (result != 0)
    737     error (_("Load failed for image %s"), exec_file);
    738 
    739   edi_init (start_state);
    740 #if __DJGPP_MINOR__ < 3
    741   save_npx ();
    742 #endif
    743 
    744   inf = current_inferior ();
    745   inferior_appeared (inf, SOME_PID);
    746 
    747   if (!inf->target_is_pushed (this))
    748     inf->push_target (this);
    749 
    750   thread_info *thr = add_thread_silent (ptid_t (SOME_PID));
    751   switch_to_thread (thr);
    752 
    753   clear_proceed_status (0);
    754   insert_breakpoints ();
    755   prog_has_started = 1;
    756 }
    757 
    758 void
    759 go32_nat_target::mourn_inferior ()
    760 {
    761   redir_cmdline_delete (&child_cmd);
    762   resume_signal = -1;
    763   resume_is_step = 0;
    764 
    765   cleanup_client ();
    766 
    767   /* We need to make sure all the breakpoint enable bits in the DR7
    768      register are reset when the inferior exits.  Otherwise, if they
    769      rerun the inferior, the uncleared bits may cause random SIGTRAPs,
    770      failure to set more watchpoints, and other calamities.  It would
    771      be nice if GDB itself would take care to remove all breakpoints
    772      at all times, but it doesn't, probably under an assumption that
    773      the OS cleans up when the debuggee exits.  */
    774   x86_cleanup_dregs ();
    775 
    776   prog_has_started = 0;
    777 
    778   generic_mourn_inferior ();
    779   maybe_unpush_target ();
    780 }
    781 
    782 /* Hardware watchpoint support.  */
    783 
    784 #define D_REGS edi.dr
    785 #define CONTROL D_REGS[7]
    786 #define STATUS D_REGS[6]
    787 
    788 /* Pass the address ADDR to the inferior in the I'th debug register.
    789    Here we just store the address in D_REGS, the watchpoint will be
    790    actually set up when go32_wait runs the debuggee.  */
    791 static void
    792 go32_set_dr (int i, CORE_ADDR addr)
    793 {
    794   if (i < 0 || i > 3)
    795     internal_error (_("Invalid register %d in go32_set_dr.\n"), i);
    796   D_REGS[i] = addr;
    797 }
    798 
    799 /* Pass the value VAL to the inferior in the DR7 debug control
    800    register.  Here we just store the address in D_REGS, the watchpoint
    801    will be actually set up when go32_wait runs the debuggee.  */
    802 static void
    803 go32_set_dr7 (unsigned long val)
    804 {
    805   CONTROL = val;
    806 }
    807 
    808 /* Get the value of the DR6 debug status register from the inferior.
    809    Here we just return the value stored in D_REGS, as we've got it
    810    from the last go32_wait call.  */
    811 static unsigned long
    812 go32_get_dr6 (void)
    813 {
    814   return STATUS;
    815 }
    816 
    817 /* Get the value of the DR7 debug status register from the inferior.
    818    Here we just return the value stored in D_REGS, as we've got it
    819    from the last go32_wait call.  */
    820 
    821 static unsigned long
    822 go32_get_dr7 (void)
    823 {
    824   return CONTROL;
    825 }
    826 
    827 /* Get the value of the DR debug register I from the inferior.  Here
    828    we just return the value stored in D_REGS, as we've got it from the
    829    last go32_wait call.  */
    830 
    831 static CORE_ADDR
    832 go32_get_dr (int i)
    833 {
    834   if (i < 0 || i > 3)
    835     internal_error (_("Invalid register %d in go32_get_dr.\n"), i);
    836   return D_REGS[i];
    837 }
    838 
    839 /* Put the device open on handle FD into either raw or cooked
    840    mode, return 1 if it was in raw mode, zero otherwise.  */
    841 
    842 static int
    843 device_mode (int fd, int raw_p)
    844 {
    845   int oldmode, newmode;
    846   __dpmi_regs regs;
    847 
    848   regs.x.ax = 0x4400;
    849   regs.x.bx = fd;
    850   __dpmi_int (0x21, &regs);
    851   if (regs.x.flags & 1)
    852     return -1;
    853   newmode = oldmode = regs.x.dx;
    854 
    855   if (raw_p)
    856     newmode |= 0x20;
    857   else
    858     newmode &= ~0x20;
    859 
    860   if (oldmode & 0x80)	/* Only for character dev.  */
    861     {
    862       regs.x.ax = 0x4401;
    863       regs.x.bx = fd;
    864       regs.x.dx = newmode & 0xff;   /* Force upper byte zero, else it fails.  */
    865       __dpmi_int (0x21, &regs);
    866       if (regs.x.flags & 1)
    867 	return -1;
    868     }
    869   return (oldmode & 0x20) == 0x20;
    870 }
    871 
    872 
    873 static int inf_mode_valid = 0;
    874 static int inf_terminal_mode;
    875 
    876 /* This semaphore is needed because, amazingly enough, GDB calls
    877    target.to_terminal_ours more than once after the inferior stops.
    878    But we need the information from the first call only, since the
    879    second call will always see GDB's own cooked terminal.  */
    880 static int terminal_is_ours = 1;
    881 
    882 void
    883 go32_nat_target::terminal_init ()
    884 {
    885   inf_mode_valid = 0;	/* Reinitialize, in case they are restarting child.  */
    886   terminal_is_ours = 1;
    887 }
    888 
    889 void
    890 go32_nat_target::terminal_info (const char *args, int from_tty)
    891 {
    892   gdb_printf ("Inferior's terminal is in %s mode.\n",
    893 	      !inf_mode_valid
    894 	      ? "default" : inf_terminal_mode ? "raw" : "cooked");
    895 
    896 #if __DJGPP_MINOR__ > 2
    897   if (child_cmd.redirection)
    898     {
    899       int i;
    900 
    901       for (i = 0; i < DBG_HANDLES; i++)
    902 	{
    903 	  if (child_cmd.redirection[i]->file_name)
    904 	    gdb_printf ("\tFile handle %d is redirected to `%s'.\n",
    905 			i, child_cmd.redirection[i]->file_name);
    906 	  else if (_get_dev_info (child_cmd.redirection[i]->inf_handle) == -1)
    907 	    gdb_printf
    908 	      ("\tFile handle %d appears to be closed by inferior.\n", i);
    909 	  /* Mask off the raw/cooked bit when comparing device info words.  */
    910 	  else if ((_get_dev_info (child_cmd.redirection[i]->inf_handle) & 0xdf)
    911 		   != (_get_dev_info (i) & 0xdf))
    912 	    gdb_printf
    913 	      ("\tFile handle %d appears to be redirected by inferior.\n", i);
    914 	}
    915     }
    916 #endif
    917 }
    918 
    919 void
    920 go32_nat_target::terminal_inferior ()
    921 {
    922   /* Redirect standard handles as child wants them.  */
    923   errno = 0;
    924   if (redir_to_child (&child_cmd) == -1)
    925     {
    926       redir_to_debugger (&child_cmd);
    927       error (_("Cannot redirect standard handles for program: %s."),
    928 	     safe_strerror (errno));
    929     }
    930   /* Set the console device of the inferior to whatever mode
    931      (raw or cooked) we found it last time.  */
    932   if (terminal_is_ours)
    933     {
    934       if (inf_mode_valid)
    935 	device_mode (0, inf_terminal_mode);
    936       terminal_is_ours = 0;
    937     }
    938 }
    939 
    940 void
    941 go32_nat_target::terminal_ours ()
    942 {
    943   /* Switch to cooked mode on the gdb terminal and save the inferior
    944      terminal mode to be restored when it is resumed.  */
    945   if (!terminal_is_ours)
    946     {
    947       inf_terminal_mode = device_mode (0, 0);
    948       if (inf_terminal_mode != -1)
    949 	inf_mode_valid = 1;
    950       else
    951 	/* If device_mode returned -1, we don't know what happens with
    952 	   handle 0 anymore, so make the info invalid.  */
    953 	inf_mode_valid = 0;
    954       terminal_is_ours = 1;
    955 
    956       /* Restore debugger's standard handles.  */
    957       errno = 0;
    958       if (redir_to_debugger (&child_cmd) == -1)
    959 	{
    960 	  redir_to_child (&child_cmd);
    961 	  error (_("Cannot redirect standard handles for debugger: %s."),
    962 		 safe_strerror (errno));
    963 	}
    964     }
    965 }
    966 
    967 void
    968 go32_nat_target::pass_ctrlc ()
    969 {
    970 }
    971 
    972 bool
    973 go32_nat_target::thread_alive (ptid_t ptid)
    974 {
    975   return ptid != null_ptid;
    976 }
    977 
    978 std::string
    979 go32_nat_target::pid_to_str (ptid_t ptid)
    980 {
    981   return normal_pid_to_str (ptid);
    982 }
    983 
    984 /* Return the current DOS codepage number.  */
    985 static int
    986 dos_codepage (void)
    987 {
    988   __dpmi_regs regs;
    989 
    990   regs.x.ax = 0x6601;
    991   __dpmi_int (0x21, &regs);
    992   if (!(regs.x.flags & 1))
    993     return regs.x.bx & 0xffff;
    994   else
    995     return 437;	/* default */
    996 }
    997 
    998 /* Limited emulation of `nl_langinfo', for charset.c.  */
    999 char *
   1000 nl_langinfo (nl_item item)
   1001 {
   1002   char *retval;
   1003 
   1004   switch (item)
   1005     {
   1006       case CODESET:
   1007 	{
   1008 	  /* 8 is enough for SHORT_MAX + "CP" + null.  */
   1009 	  char buf[8];
   1010 	  int blen = sizeof (buf);
   1011 	  int needed = snprintf (buf, blen, "CP%d", dos_codepage ());
   1012 
   1013 	  if (needed > blen)	/* Should never happen.  */
   1014 	    buf[0] = 0;
   1015 	  retval = xstrdup (buf);
   1016 	}
   1017 	break;
   1018       default:
   1019 	retval = xstrdup ("");
   1020 	break;
   1021     }
   1022   return retval;
   1023 }
   1024 
   1025 unsigned short windows_major, windows_minor;
   1026 
   1027 /* Compute the version Windows reports via Int 2Fh/AX=1600h.  */
   1028 static void
   1029 go32_get_windows_version(void)
   1030 {
   1031   __dpmi_regs r;
   1032 
   1033   r.x.ax = 0x1600;
   1034   __dpmi_int(0x2f, &r);
   1035   if (r.h.al > 2 && r.h.al != 0x80 && r.h.al != 0xff
   1036       && (r.h.al > 3 || r.h.ah > 0))
   1037     {
   1038       windows_major = r.h.al;
   1039       windows_minor = r.h.ah;
   1040     }
   1041   else
   1042     windows_major = 0xff;	/* meaning no Windows */
   1043 }
   1044 
   1045 /* A subroutine of go32_sysinfo to display memory info.  */
   1046 static void
   1047 print_mem (unsigned long datum, const char *header, int in_pages_p)
   1048 {
   1049   if (datum != 0xffffffffUL)
   1050     {
   1051       if (in_pages_p)
   1052 	datum <<= 12;
   1053       gdb_puts (header);
   1054       if (datum > 1024)
   1055 	{
   1056 	  gdb_printf ("%lu KB", datum >> 10);
   1057 	  if (datum > 1024 * 1024)
   1058 	    gdb_printf (" (%lu MB)", datum >> 20);
   1059 	}
   1060       else
   1061 	gdb_printf ("%lu Bytes", datum);
   1062       gdb_puts ("\n");
   1063     }
   1064 }
   1065 
   1066 /* Display assorted information about the underlying OS.  */
   1067 static void
   1068 go32_sysinfo (const char *arg, int from_tty)
   1069 {
   1070   static const char test_pattern[] =
   1071     "deadbeafdeadbeafdeadbeafdeadbeafdeadbeaf"
   1072     "deadbeafdeadbeafdeadbeafdeadbeafdeadbeaf"
   1073     "deadbeafdeadbeafdeadbeafdeadbeafdeadbeafdeadbeaf";
   1074   struct utsname u;
   1075   char cpuid_vendor[13];
   1076   unsigned cpuid_max = 0, cpuid_eax, cpuid_ebx, cpuid_ecx, cpuid_edx;
   1077   unsigned true_dos_version = _get_dos_version (1);
   1078   unsigned advertized_dos_version = ((unsigned int)_osmajor << 8) | _osminor;
   1079   int dpmi_flags;
   1080   char dpmi_vendor_info[129];
   1081   int dpmi_vendor_available;
   1082   __dpmi_version_ret dpmi_version_data;
   1083   long eflags;
   1084   __dpmi_free_mem_info mem_info;
   1085   __dpmi_regs regs;
   1086 
   1087   cpuid_vendor[0] = '\0';
   1088   if (uname (&u))
   1089     strcpy (u.machine, "Unknown x86");
   1090   else if (u.machine[0] == 'i' && u.machine[1] > 4)
   1091     {
   1092       /* CPUID with EAX = 0 returns the Vendor ID.  */
   1093 #if 0
   1094       /* Ideally we would use x86_cpuid(), but it needs someone to run
   1095 	 native tests first to make sure things actually work.  They should.
   1096 	 http://sourceware.org/ml/gdb-patches/2013-05/msg00164.html  */
   1097       unsigned int eax, ebx, ecx, edx;
   1098 
   1099       if (x86_cpuid (0, &eax, &ebx, &ecx, &edx))
   1100 	{
   1101 	  cpuid_max = eax;
   1102 	  memcpy (&vendor[0], &ebx, 4);
   1103 	  memcpy (&vendor[4], &ecx, 4);
   1104 	  memcpy (&vendor[8], &edx, 4);
   1105 	  cpuid_vendor[12] = '\0';
   1106 	}
   1107 #else
   1108       __asm__ __volatile__ ("xorl   %%ebx, %%ebx;"
   1109 			    "xorl   %%ecx, %%ecx;"
   1110 			    "xorl   %%edx, %%edx;"
   1111 			    "movl   $0,    %%eax;"
   1112 			    "cpuid;"
   1113 			    "movl   %%ebx,  %0;"
   1114 			    "movl   %%edx,  %1;"
   1115 			    "movl   %%ecx,  %2;"
   1116 			    "movl   %%eax,  %3;"
   1117 			    : "=m" (cpuid_vendor[0]),
   1118 			      "=m" (cpuid_vendor[4]),
   1119 			      "=m" (cpuid_vendor[8]),
   1120 			      "=m" (cpuid_max)
   1121 			    :
   1122 			    : "%eax", "%ebx", "%ecx", "%edx");
   1123       cpuid_vendor[12] = '\0';
   1124 #endif
   1125     }
   1126 
   1127   gdb_printf ("CPU Type.......................%s", u.machine);
   1128   if (cpuid_vendor[0])
   1129     gdb_printf (" (%s)", cpuid_vendor);
   1130   gdb_puts ("\n");
   1131 
   1132   /* CPUID with EAX = 1 returns processor signature and features.  */
   1133   if (cpuid_max >= 1)
   1134     {
   1135       static const char *brand_name[] = {
   1136 	"",
   1137 	" Celeron",
   1138 	" III",
   1139 	" III Xeon",
   1140 	"", "", "", "",
   1141 	" 4"
   1142       };
   1143       char cpu_string[80];
   1144       char cpu_brand[20];
   1145       unsigned brand_idx;
   1146       int intel_p = strcmp (cpuid_vendor, "GenuineIntel") == 0;
   1147       int amd_p = strcmp (cpuid_vendor, "AuthenticAMD") == 0;
   1148       int hygon_p = strcmp (cpuid_vendor, "HygonGenuine") == 0;
   1149       unsigned cpu_family, cpu_model;
   1150 
   1151 #if 0
   1152       /* See comment above about cpuid usage.  */
   1153       x86_cpuid (1, &cpuid_eax, &cpuid_ebx, NULL, &cpuid_edx);
   1154 #else
   1155       __asm__ __volatile__ ("movl   $1, %%eax;"
   1156 			    "cpuid;"
   1157 			    : "=a" (cpuid_eax),
   1158 			      "=b" (cpuid_ebx),
   1159 			      "=d" (cpuid_edx)
   1160 			    :
   1161 			    : "%ecx");
   1162 #endif
   1163       brand_idx = cpuid_ebx & 0xff;
   1164       cpu_family = (cpuid_eax >> 8) & 0xf;
   1165       cpu_model  = (cpuid_eax >> 4) & 0xf;
   1166       cpu_brand[0] = '\0';
   1167       if (intel_p)
   1168 	{
   1169 	  if (brand_idx > 0
   1170 	      && brand_idx < sizeof(brand_name)/sizeof(brand_name[0])
   1171 	      && *brand_name[brand_idx])
   1172 	    strcpy (cpu_brand, brand_name[brand_idx]);
   1173 	  else if (cpu_family == 5)
   1174 	    {
   1175 	      if (((cpuid_eax >> 12) & 3) == 0 && cpu_model == 4)
   1176 		strcpy (cpu_brand, " MMX");
   1177 	      else if (cpu_model > 1 && ((cpuid_eax >> 12) & 3) == 1)
   1178 		strcpy (cpu_brand, " OverDrive");
   1179 	      else if (cpu_model > 1 && ((cpuid_eax >> 12) & 3) == 2)
   1180 		strcpy (cpu_brand, " Dual");
   1181 	    }
   1182 	  else if (cpu_family == 6 && cpu_model < 8)
   1183 	    {
   1184 	      switch (cpu_model)
   1185 		{
   1186 		  case 1:
   1187 		    strcpy (cpu_brand, " Pro");
   1188 		    break;
   1189 		  case 3:
   1190 		    strcpy (cpu_brand, " II");
   1191 		    break;
   1192 		  case 5:
   1193 		    strcpy (cpu_brand, " II Xeon");
   1194 		    break;
   1195 		  case 6:
   1196 		    strcpy (cpu_brand, " Celeron");
   1197 		    break;
   1198 		  case 7:
   1199 		    strcpy (cpu_brand, " III");
   1200 		    break;
   1201 		}
   1202 	    }
   1203 	}
   1204       else if (amd_p)
   1205 	{
   1206 	  switch (cpu_family)
   1207 	    {
   1208 	      case 4:
   1209 		strcpy (cpu_brand, "486/5x86");
   1210 		break;
   1211 	      case 5:
   1212 		switch (cpu_model)
   1213 		  {
   1214 		    case 0:
   1215 		    case 1:
   1216 		    case 2:
   1217 		    case 3:
   1218 		      strcpy (cpu_brand, "-K5");
   1219 		      break;
   1220 		    case 6:
   1221 		    case 7:
   1222 		      strcpy (cpu_brand, "-K6");
   1223 		      break;
   1224 		    case 8:
   1225 		      strcpy (cpu_brand, "-K6-2");
   1226 		      break;
   1227 		    case 9:
   1228 		      strcpy (cpu_brand, "-K6-III");
   1229 		      break;
   1230 		  }
   1231 		break;
   1232 	      case 6:
   1233 		switch (cpu_model)
   1234 		  {
   1235 		    case 1:
   1236 		    case 2:
   1237 		    case 4:
   1238 		      strcpy (cpu_brand, " Athlon");
   1239 		      break;
   1240 		    case 3:
   1241 		      strcpy (cpu_brand, " Duron");
   1242 		      break;
   1243 		  }
   1244 		break;
   1245 	    }
   1246 	}
   1247       xsnprintf (cpu_string, sizeof (cpu_string), "%s%s Model %d Stepping %d",
   1248 		 intel_p ? "Pentium" : (amd_p ? "AMD" : (hygon_p ? "Hygon" : "ix86")),
   1249 		 cpu_brand, cpu_model, cpuid_eax & 0xf);
   1250       gdb_printf ("%*s%s\n", 31, "", cpu_string);
   1251       if (((cpuid_edx & (6 | (0x0d << 23))) != 0)
   1252 	  || ((cpuid_edx & 1) == 0)
   1253 	  || ((amd_p || hygon_p) && (cpuid_edx & (3 << 30)) != 0))
   1254 	{
   1255 	  gdb_puts ("CPU Features...................");
   1256 	  /* We only list features which might be useful in the DPMI
   1257 	     environment.  */
   1258 	  if ((cpuid_edx & 1) == 0)
   1259 	    gdb_puts ("No FPU "); /* It's unusual to not have an FPU.  */
   1260 	  if ((cpuid_edx & (1 << 1)) != 0)
   1261 	    gdb_puts ("VME ");
   1262 	  if ((cpuid_edx & (1 << 2)) != 0)
   1263 	    gdb_puts ("DE ");
   1264 	  if ((cpuid_edx & (1 << 4)) != 0)
   1265 	    gdb_puts ("TSC ");
   1266 	  if ((cpuid_edx & (1 << 23)) != 0)
   1267 	    gdb_puts ("MMX ");
   1268 	  if ((cpuid_edx & (1 << 25)) != 0)
   1269 	    gdb_puts ("SSE ");
   1270 	  if ((cpuid_edx & (1 << 26)) != 0)
   1271 	    gdb_puts ("SSE2 ");
   1272 	  if (amd_p || hygon_p)
   1273 	    {
   1274 	      if ((cpuid_edx & (1 << 31)) != 0)
   1275 		gdb_puts ("3DNow! ");
   1276 	      if ((cpuid_edx & (1 << 30)) != 0)
   1277 		gdb_puts ("3DNow!Ext");
   1278 	    }
   1279 	  gdb_puts ("\n");
   1280 	}
   1281     }
   1282   gdb_puts ("\n");
   1283   gdb_printf ("DOS Version....................%s %s.%s",
   1284 	      _os_flavor, u.release, u.version);
   1285   if (true_dos_version != advertized_dos_version)
   1286     gdb_printf (" (disguised as v%d.%d)", _osmajor, _osminor);
   1287   gdb_puts ("\n");
   1288   if (!windows_major)
   1289     go32_get_windows_version ();
   1290   if (windows_major != 0xff)
   1291     {
   1292       const char *windows_flavor;
   1293 
   1294       gdb_printf ("Windows Version................%d.%02d (Windows ",
   1295 		  windows_major, windows_minor);
   1296       switch (windows_major)
   1297 	{
   1298 	  case 3:
   1299 	    windows_flavor = "3.X";
   1300 	    break;
   1301 	  case 4:
   1302 	    switch (windows_minor)
   1303 	      {
   1304 		case 0:
   1305 		  windows_flavor = "95, 95A, or 95B";
   1306 		  break;
   1307 		case 3:
   1308 		  windows_flavor = "95B OSR2.1 or 95C OSR2.5";
   1309 		  break;
   1310 		case 10:
   1311 		  windows_flavor = "98 or 98 SE";
   1312 		  break;
   1313 		case 90:
   1314 		  windows_flavor = "ME";
   1315 		  break;
   1316 		default:
   1317 		  windows_flavor = "9X";
   1318 		  break;
   1319 	      }
   1320 	    break;
   1321 	  default:
   1322 	    windows_flavor = "??";
   1323 	    break;
   1324 	}
   1325       gdb_printf ("%s)\n", windows_flavor);
   1326     }
   1327   else if (true_dos_version == 0x532 && advertized_dos_version == 0x500)
   1328     gdb_printf ("Windows Version................"
   1329 		"Windows NT family (W2K/XP/W2K3/Vista/W2K8)\n");
   1330   gdb_puts ("\n");
   1331   /* On some versions of Windows, __dpmi_get_capabilities returns
   1332      zero, but the buffer is not filled with info, so we fill the
   1333      buffer with a known pattern and test for it afterwards.  */
   1334   memcpy (dpmi_vendor_info, test_pattern, sizeof(dpmi_vendor_info));
   1335   dpmi_vendor_available =
   1336     __dpmi_get_capabilities (&dpmi_flags, dpmi_vendor_info);
   1337   if (dpmi_vendor_available == 0
   1338       && memcmp (dpmi_vendor_info, test_pattern,
   1339 		 sizeof(dpmi_vendor_info)) != 0)
   1340     {
   1341       /* The DPMI spec says the vendor string should be ASCIIZ, but
   1342 	 I don't trust the vendors to follow that...  */
   1343       if (!memchr (&dpmi_vendor_info[2], 0, 126))
   1344 	dpmi_vendor_info[128] = '\0';
   1345       gdb_printf ("DPMI Host......................"
   1346 		  "%s v%d.%d (capabilities: %#x)\n",
   1347 		  &dpmi_vendor_info[2],
   1348 		  (unsigned)dpmi_vendor_info[0],
   1349 		  (unsigned)dpmi_vendor_info[1],
   1350 		  ((unsigned)dpmi_flags & 0x7f));
   1351     }
   1352   else
   1353     gdb_printf ("DPMI Host......................(Info not available)\n");
   1354   __dpmi_get_version (&dpmi_version_data);
   1355   gdb_printf ("DPMI Version...................%d.%02d\n",
   1356 	      dpmi_version_data.major, dpmi_version_data.minor);
   1357   gdb_printf ("DPMI Info......................"
   1358 	      "%s-bit DPMI, with%s Virtual Memory support\n",
   1359 	      (dpmi_version_data.flags & 1) ? "32" : "16",
   1360 	      (dpmi_version_data.flags & 4) ? "" : "out");
   1361   gdb_printf ("%*sInterrupts reflected to %s mode\n", 31, "",
   1362 	      (dpmi_version_data.flags & 2) ? "V86" : "Real");
   1363   gdb_printf ("%*sProcessor type: i%d86\n", 31, "",
   1364 	      dpmi_version_data.cpu);
   1365   gdb_printf ("%*sPIC base interrupt: Master: %#x  Slave: %#x\n", 31, "",
   1366 	      dpmi_version_data.master_pic, dpmi_version_data.slave_pic);
   1367 
   1368   /* a_tss is only initialized when the debuggee is first run.  */
   1369   if (prog_has_started)
   1370     {
   1371       __asm__ __volatile__ ("pushfl ; popl %0" : "=g" (eflags));
   1372       gdb_printf ("Protection....................."
   1373 		  "Ring %d (in %s), with%s I/O protection\n",
   1374 		  a_tss.tss_cs & 3, (a_tss.tss_cs & 4) ? "LDT" : "GDT",
   1375 		  (a_tss.tss_cs & 3) > ((eflags >> 12) & 3) ? "" : "out");
   1376     }
   1377   gdb_puts ("\n");
   1378   __dpmi_get_free_memory_information (&mem_info);
   1379   print_mem (mem_info.total_number_of_physical_pages,
   1380 	     "DPMI Total Physical Memory.....", 1);
   1381   print_mem (mem_info.total_number_of_free_pages,
   1382 	     "DPMI Free Physical Memory......", 1);
   1383   print_mem (mem_info.size_of_paging_file_partition_in_pages,
   1384 	     "DPMI Swap Space................", 1);
   1385   print_mem (mem_info.linear_address_space_size_in_pages,
   1386 	     "DPMI Total Linear Address Size.", 1);
   1387   print_mem (mem_info.free_linear_address_space_in_pages,
   1388 	     "DPMI Free Linear Address Size..", 1);
   1389   print_mem (mem_info.largest_available_free_block_in_bytes,
   1390 	     "DPMI Largest Free Memory Block.", 0);
   1391 
   1392   regs.h.ah = 0x48;
   1393   regs.x.bx = 0xffff;
   1394   __dpmi_int (0x21, &regs);
   1395   print_mem (regs.x.bx << 4, "Free DOS Memory................", 0);
   1396   regs.x.ax = 0x5800;
   1397   __dpmi_int (0x21, &regs);
   1398   if ((regs.x.flags & 1) == 0)
   1399     {
   1400       static const char *dos_hilo[] = {
   1401 	"Low", "", "", "", "High", "", "", "", "High, then Low"
   1402       };
   1403       static const char *dos_fit[] = {
   1404 	"First", "Best", "Last"
   1405       };
   1406       int hilo_idx = (regs.x.ax >> 4) & 0x0f;
   1407       int fit_idx  = regs.x.ax & 0x0f;
   1408 
   1409       if (hilo_idx > 8)
   1410 	hilo_idx = 0;
   1411       if (fit_idx > 2)
   1412 	fit_idx = 0;
   1413       gdb_printf ("DOS Memory Allocation..........%s memory, %s fit\n",
   1414 		  dos_hilo[hilo_idx], dos_fit[fit_idx]);
   1415       regs.x.ax = 0x5802;
   1416       __dpmi_int (0x21, &regs);
   1417       if ((regs.x.flags & 1) != 0)
   1418 	regs.h.al = 0;
   1419       gdb_printf ("%*sUMBs %sin DOS memory chain\n", 31, "",
   1420 		  regs.h.al == 0 ? "not " : "");
   1421     }
   1422 }
   1423 
   1424 struct seg_descr {
   1425   unsigned short limit0;
   1426   unsigned short base0;
   1427   unsigned char  base1;
   1428   unsigned       stype:5;
   1429   unsigned       dpl:2;
   1430   unsigned       present:1;
   1431   unsigned       limit1:4;
   1432   unsigned       available:1;
   1433   unsigned       dummy:1;
   1434   unsigned       bit32:1;
   1435   unsigned       page_granular:1;
   1436   unsigned char  base2;
   1437 } __attribute__ ((packed));
   1438 
   1439 struct gate_descr {
   1440   unsigned short offset0;
   1441   unsigned short selector;
   1442   unsigned       param_count:5;
   1443   unsigned       dummy:3;
   1444   unsigned       stype:5;
   1445   unsigned       dpl:2;
   1446   unsigned       present:1;
   1447   unsigned short offset1;
   1448 } __attribute__ ((packed));
   1449 
   1450 /* Read LEN bytes starting at logical address ADDR, and put the result
   1451    into DEST.  Return 1 if success, zero if not.  */
   1452 static int
   1453 read_memory_region (unsigned long addr, void *dest, size_t len)
   1454 {
   1455   unsigned long dos_ds_limit = __dpmi_get_segment_limit (_dos_ds);
   1456   int retval = 1;
   1457 
   1458   /* For the low memory, we can simply use _dos_ds.  */
   1459   if (addr <= dos_ds_limit - len)
   1460     dosmemget (addr, len, dest);
   1461   else
   1462     {
   1463       /* For memory above 1MB we need to set up a special segment to
   1464 	 be able to access that memory.  */
   1465       int sel = __dpmi_allocate_ldt_descriptors (1);
   1466 
   1467       if (sel <= 0)
   1468 	retval = 0;
   1469       else
   1470 	{
   1471 	  int access_rights = __dpmi_get_descriptor_access_rights (sel);
   1472 	  size_t segment_limit = len - 1;
   1473 
   1474 	  /* Make sure the crucial bits in the descriptor access
   1475 	     rights are set correctly.  Some DPMI providers might barf
   1476 	     if we set the segment limit to something that is not an
   1477 	     integral multiple of 4KB pages if the granularity bit is
   1478 	     not set to byte-granular, even though the DPMI spec says
   1479 	     it's the host's responsibility to set that bit correctly.  */
   1480 	  if (len > 1024 * 1024)
   1481 	    {
   1482 	      access_rights |= 0x8000;
   1483 	      /* Page-granular segments should have the low 12 bits of
   1484 		 the limit set.  */
   1485 	      segment_limit |= 0xfff;
   1486 	    }
   1487 	  else
   1488 	    access_rights &= ~0x8000;
   1489 
   1490 	  if (__dpmi_set_segment_base_address (sel, addr) != -1
   1491 	      && __dpmi_set_descriptor_access_rights (sel, access_rights) != -1
   1492 	      && __dpmi_set_segment_limit (sel, segment_limit) != -1
   1493 	      /* W2K silently fails to set the segment limit, leaving
   1494 		 it at zero; this test avoids the resulting crash.  */
   1495 	      && __dpmi_get_segment_limit (sel) >= segment_limit)
   1496 	    movedata (sel, 0, _my_ds (), (unsigned)dest, len);
   1497 	  else
   1498 	    retval = 0;
   1499 
   1500 	  __dpmi_free_ldt_descriptor (sel);
   1501 	}
   1502     }
   1503   return retval;
   1504 }
   1505 
   1506 /* Get a segment descriptor stored at index IDX in the descriptor
   1507    table whose base address is TABLE_BASE.  Return the descriptor
   1508    type, or -1 if failure.  */
   1509 static int
   1510 get_descriptor (unsigned long table_base, int idx, void *descr)
   1511 {
   1512   unsigned long addr = table_base + idx * 8; /* 8 bytes per entry */
   1513 
   1514   if (read_memory_region (addr, descr, 8))
   1515     return (int)((struct seg_descr *)descr)->stype;
   1516   return -1;
   1517 }
   1518 
   1519 struct dtr_reg {
   1520   unsigned short limit __attribute__((packed));
   1521   unsigned long  base  __attribute__((packed));
   1522 };
   1523 
   1524 /* Display a segment descriptor stored at index IDX in a descriptor
   1525    table whose type is TYPE and whose base address is BASE_ADDR.  If
   1526    FORCE is non-zero, display even invalid descriptors.  */
   1527 static void
   1528 display_descriptor (unsigned type, unsigned long base_addr, int idx, int force)
   1529 {
   1530   struct seg_descr descr;
   1531   struct gate_descr gate;
   1532 
   1533   /* Get the descriptor from the table.  */
   1534   if (idx == 0 && type == 0)
   1535     gdb_puts ("0x000: null descriptor\n");
   1536   else if (get_descriptor (base_addr, idx, &descr) != -1)
   1537     {
   1538       /* For each type of descriptor table, this has a bit set if the
   1539 	 corresponding type of selectors is valid in that table.  */
   1540       static unsigned allowed_descriptors[] = {
   1541 	  0xffffdafeL,   /* GDT */
   1542 	  0x0000c0e0L,   /* IDT */
   1543 	  0xffffdafaL    /* LDT */
   1544       };
   1545 
   1546       /* If the program hasn't started yet, assume the debuggee will
   1547 	 have the same CPL as the debugger.  */
   1548       int cpl = prog_has_started ? (a_tss.tss_cs & 3) : _my_cs () & 3;
   1549       unsigned long limit = (descr.limit1 << 16) | descr.limit0;
   1550 
   1551       if (descr.present
   1552 	  && (allowed_descriptors[type] & (1 << descr.stype)) != 0)
   1553 	{
   1554 	  gdb_printf ("0x%03x: ",
   1555 		      type == 1
   1556 		      ? idx : (idx * 8) | (type ? (cpl | 4) : 0));
   1557 	  if (descr.page_granular)
   1558 	    limit = (limit << 12) | 0xfff; /* big segment: low 12 bit set */
   1559 	  if (descr.stype == 1 || descr.stype == 2 || descr.stype == 3
   1560 	      || descr.stype == 9 || descr.stype == 11
   1561 	      || (descr.stype >= 16 && descr.stype < 32))
   1562 	    gdb_printf ("base=0x%02x%02x%04x limit=0x%08lx",
   1563 			descr.base2, descr.base1, descr.base0, limit);
   1564 
   1565 	  switch (descr.stype)
   1566 	    {
   1567 	      case 1:
   1568 	      case 3:
   1569 		gdb_printf (" 16-bit TSS  (task %sactive)",
   1570 			    descr.stype == 3 ? "" : "in");
   1571 		break;
   1572 	      case 2:
   1573 		gdb_puts (" LDT");
   1574 		break;
   1575 	      case 4:
   1576 		memcpy (&gate, &descr, sizeof gate);
   1577 		gdb_printf ("selector=0x%04x  offs=0x%04x%04x",
   1578 			    gate.selector, gate.offset1, gate.offset0);
   1579 		gdb_printf (" 16-bit Call Gate (params=%d)",
   1580 			    gate.param_count);
   1581 		break;
   1582 	      case 5:
   1583 		gdb_printf ("TSS selector=0x%04x", descr.base0);
   1584 		gdb_printf ("%*sTask Gate", 16, "");
   1585 		break;
   1586 	      case 6:
   1587 	      case 7:
   1588 		memcpy (&gate, &descr, sizeof gate);
   1589 		gdb_printf ("selector=0x%04x  offs=0x%04x%04x",
   1590 			    gate.selector, gate.offset1, gate.offset0);
   1591 		gdb_printf (" 16-bit %s Gate",
   1592 			    descr.stype == 6 ? "Interrupt" : "Trap");
   1593 		break;
   1594 	      case 9:
   1595 	      case 11:
   1596 		gdb_printf (" 32-bit TSS (task %sactive)",
   1597 			    descr.stype == 3 ? "" : "in");
   1598 		break;
   1599 	      case 12:
   1600 		memcpy (&gate, &descr, sizeof gate);
   1601 		gdb_printf ("selector=0x%04x  offs=0x%04x%04x",
   1602 			    gate.selector, gate.offset1, gate.offset0);
   1603 		gdb_printf (" 32-bit Call Gate (params=%d)",
   1604 			    gate.param_count);
   1605 		break;
   1606 	      case 14:
   1607 	      case 15:
   1608 		memcpy (&gate, &descr, sizeof gate);
   1609 		gdb_printf ("selector=0x%04x  offs=0x%04x%04x",
   1610 			    gate.selector, gate.offset1, gate.offset0);
   1611 		gdb_printf (" 32-bit %s Gate",
   1612 			    descr.stype == 14 ? "Interrupt" : "Trap");
   1613 		break;
   1614 	      case 16:		/* data segments */
   1615 	      case 17:
   1616 	      case 18:
   1617 	      case 19:
   1618 	      case 20:
   1619 	      case 21:
   1620 	      case 22:
   1621 	      case 23:
   1622 		gdb_printf (" %s-bit Data (%s Exp-%s%s)",
   1623 			    descr.bit32 ? "32" : "16",
   1624 			    descr.stype & 2
   1625 			    ? "Read/Write," : "Read-Only, ",
   1626 			    descr.stype & 4 ? "down" : "up",
   1627 			    descr.stype & 1 ? "" : ", N.Acc");
   1628 		break;
   1629 	      case 24:		/* code segments */
   1630 	      case 25:
   1631 	      case 26:
   1632 	      case 27:
   1633 	      case 28:
   1634 	      case 29:
   1635 	      case 30:
   1636 	      case 31:
   1637 		gdb_printf (" %s-bit Code (%s,  %sConf%s)",
   1638 			    descr.bit32 ? "32" : "16",
   1639 			    descr.stype & 2 ? "Exec/Read" : "Exec-Only",
   1640 			    descr.stype & 4 ? "" : "N.",
   1641 			    descr.stype & 1 ? "" : ", N.Acc");
   1642 		break;
   1643 	      default:
   1644 		gdb_printf ("Unknown type 0x%02x", descr.stype);
   1645 		break;
   1646 	    }
   1647 	  gdb_puts ("\n");
   1648 	}
   1649       else if (force)
   1650 	{
   1651 	  gdb_printf ("0x%03x: ",
   1652 		      type == 1
   1653 		      ? idx : (idx * 8) | (type ? (cpl | 4) : 0));
   1654 	  if (!descr.present)
   1655 	    gdb_puts ("Segment not present\n");
   1656 	  else
   1657 	    gdb_printf ("Segment type 0x%02x is invalid in this table\n",
   1658 			descr.stype);
   1659 	}
   1660     }
   1661   else if (force)
   1662     gdb_printf ("0x%03x: Cannot read this descriptor\n", idx);
   1663 }
   1664 
   1665 static void
   1666 go32_sldt (const char *arg, int from_tty)
   1667 {
   1668   struct dtr_reg gdtr;
   1669   unsigned short ldtr = 0;
   1670   int ldt_idx;
   1671   struct seg_descr ldt_descr;
   1672   long ldt_entry = -1L;
   1673   int cpl = (prog_has_started ? a_tss.tss_cs : _my_cs ()) & 3;
   1674 
   1675   if (arg && *arg)
   1676     {
   1677       arg = skip_spaces (arg);
   1678 
   1679       if (*arg)
   1680 	{
   1681 	  ldt_entry = parse_and_eval_long (arg);
   1682 	  if (ldt_entry < 0
   1683 	      || (ldt_entry & 4) == 0
   1684 	      || (ldt_entry & 3) != (cpl & 3))
   1685 	    error (_("Invalid LDT entry 0x%03lx."), (unsigned long)ldt_entry);
   1686 	}
   1687     }
   1688 
   1689   __asm__ __volatile__ ("sgdt   %0" : "=m" (gdtr) : /* no inputs */ );
   1690   __asm__ __volatile__ ("sldt   %0" : "=m" (ldtr) : /* no inputs */ );
   1691   ldt_idx = ldtr / 8;
   1692   if (ldt_idx == 0)
   1693     gdb_puts ("There is no LDT.\n");
   1694   /* LDT's entry in the GDT must have the type LDT, which is 2.  */
   1695   else if (get_descriptor (gdtr.base, ldt_idx, &ldt_descr) != 2)
   1696     gdb_printf ("LDT is present (at %#x), but unreadable by GDB.\n",
   1697 		ldt_descr.base0
   1698 		| (ldt_descr.base1 << 16)
   1699 		| (ldt_descr.base2 << 24));
   1700   else
   1701     {
   1702       unsigned base =
   1703 	ldt_descr.base0
   1704 	| (ldt_descr.base1 << 16)
   1705 	| (ldt_descr.base2 << 24);
   1706       unsigned limit = ldt_descr.limit0 | (ldt_descr.limit1 << 16);
   1707       int max_entry;
   1708 
   1709       if (ldt_descr.page_granular)
   1710 	/* Page-granular segments must have the low 12 bits of their
   1711 	   limit set.  */
   1712 	limit = (limit << 12) | 0xfff;
   1713       /* LDT cannot have more than 8K 8-byte entries, i.e. more than
   1714 	 64KB.  */
   1715       if (limit > 0xffff)
   1716 	limit = 0xffff;
   1717 
   1718       max_entry = (limit + 1) / 8;
   1719 
   1720       if (ldt_entry >= 0)
   1721 	{
   1722 	  if (ldt_entry > limit)
   1723 	    error (_("Invalid LDT entry %#lx: outside valid limits [0..%#x]"),
   1724 		   (unsigned long)ldt_entry, limit);
   1725 
   1726 	  display_descriptor (ldt_descr.stype, base, ldt_entry / 8, 1);
   1727 	}
   1728       else
   1729 	{
   1730 	  int i;
   1731 
   1732 	  for (i = 0; i < max_entry; i++)
   1733 	    display_descriptor (ldt_descr.stype, base, i, 0);
   1734 	}
   1735     }
   1736 }
   1737 
   1738 static void
   1739 go32_sgdt (const char *arg, int from_tty)
   1740 {
   1741   struct dtr_reg gdtr;
   1742   long gdt_entry = -1L;
   1743   int max_entry;
   1744 
   1745   if (arg && *arg)
   1746     {
   1747       arg = skip_spaces (arg);
   1748 
   1749       if (*arg)
   1750 	{
   1751 	  gdt_entry = parse_and_eval_long (arg);
   1752 	  if (gdt_entry < 0 || (gdt_entry & 7) != 0)
   1753 	    error (_("Invalid GDT entry 0x%03lx: "
   1754 		     "not an integral multiple of 8."),
   1755 		   (unsigned long)gdt_entry);
   1756 	}
   1757     }
   1758 
   1759   __asm__ __volatile__ ("sgdt   %0" : "=m" (gdtr) : /* no inputs */ );
   1760   max_entry = (gdtr.limit + 1) / 8;
   1761 
   1762   if (gdt_entry >= 0)
   1763     {
   1764       if (gdt_entry > gdtr.limit)
   1765 	error (_("Invalid GDT entry %#lx: outside valid limits [0..%#x]"),
   1766 	       (unsigned long)gdt_entry, gdtr.limit);
   1767 
   1768       display_descriptor (0, gdtr.base, gdt_entry / 8, 1);
   1769     }
   1770   else
   1771     {
   1772       int i;
   1773 
   1774       for (i = 0; i < max_entry; i++)
   1775 	display_descriptor (0, gdtr.base, i, 0);
   1776     }
   1777 }
   1778 
   1779 static void
   1780 go32_sidt (const char *arg, int from_tty)
   1781 {
   1782   struct dtr_reg idtr;
   1783   long idt_entry = -1L;
   1784   int max_entry;
   1785 
   1786   if (arg && *arg)
   1787     {
   1788       arg = skip_spaces (arg);
   1789 
   1790       if (*arg)
   1791 	{
   1792 	  idt_entry = parse_and_eval_long (arg);
   1793 	  if (idt_entry < 0)
   1794 	    error (_("Invalid (negative) IDT entry %ld."), idt_entry);
   1795 	}
   1796     }
   1797 
   1798   __asm__ __volatile__ ("sidt   %0" : "=m" (idtr) : /* no inputs */ );
   1799   max_entry = (idtr.limit + 1) / 8;
   1800   if (max_entry > 0x100)	/* No more than 256 entries.  */
   1801     max_entry = 0x100;
   1802 
   1803   if (idt_entry >= 0)
   1804     {
   1805       if (idt_entry > idtr.limit)
   1806 	error (_("Invalid IDT entry %#lx: outside valid limits [0..%#x]"),
   1807 	       (unsigned long)idt_entry, idtr.limit);
   1808 
   1809       display_descriptor (1, idtr.base, idt_entry, 1);
   1810     }
   1811   else
   1812     {
   1813       int i;
   1814 
   1815       for (i = 0; i < max_entry; i++)
   1816 	display_descriptor (1, idtr.base, i, 0);
   1817     }
   1818 }
   1819 
   1820 /* Cached linear address of the base of the page directory.  For
   1821    now, available only under CWSDPMI.  Code based on ideas and
   1822    suggestions from Charles Sandmann <sandmann (at) clio.rice.edu>.  */
   1823 static unsigned long pdbr;
   1824 
   1825 static unsigned long
   1826 get_cr3 (void)
   1827 {
   1828   unsigned offset;
   1829   unsigned taskreg;
   1830   unsigned long taskbase, cr3;
   1831   struct dtr_reg gdtr;
   1832 
   1833   if (pdbr > 0 && pdbr <= 0xfffff)
   1834     return pdbr;
   1835 
   1836   /* Get the linear address of GDT and the Task Register.  */
   1837   __asm__ __volatile__ ("sgdt   %0" : "=m" (gdtr) : /* no inputs */ );
   1838   __asm__ __volatile__ ("str    %0" : "=m" (taskreg) : /* no inputs */ );
   1839 
   1840   /* Task Register is a segment selector for the TSS of the current
   1841      task.  Therefore, it can be used as an index into the GDT to get
   1842      at the segment descriptor for the TSS.  To get the index, reset
   1843      the low 3 bits of the selector (which give the CPL).  Add 2 to the
   1844      offset to point to the 3 low bytes of the base address.  */
   1845   offset = gdtr.base + (taskreg & 0xfff8) + 2;
   1846 
   1847 
   1848   /* CWSDPMI's task base is always under the 1MB mark.  */
   1849   if (offset > 0xfffff)
   1850     return 0;
   1851 
   1852   _farsetsel (_dos_ds);
   1853   taskbase  = _farnspeekl (offset) & 0xffffffU;
   1854   taskbase += _farnspeekl (offset + 2) & 0xff000000U;
   1855   if (taskbase > 0xfffff)
   1856     return 0;
   1857 
   1858   /* CR3 (a.k.a. PDBR, the Page Directory Base Register) is stored at
   1859      offset 1Ch in the TSS.  */
   1860   cr3 = _farnspeekl (taskbase + 0x1c) & ~0xfff;
   1861   if (cr3 > 0xfffff)
   1862     {
   1863 #if 0  /* Not fully supported yet.  */
   1864       /* The Page Directory is in UMBs.  In that case, CWSDPMI puts
   1865 	 the first Page Table right below the Page Directory.  Thus,
   1866 	 the first Page Table's entry for its own address and the Page
   1867 	 Directory entry for that Page Table will hold the same
   1868 	 physical address.  The loop below searches the entire UMB
   1869 	 range of addresses for such an occurrence.  */
   1870       unsigned long addr, pte_idx;
   1871 
   1872       for (addr = 0xb0000, pte_idx = 0xb0;
   1873 	   pte_idx < 0xff;
   1874 	   addr += 0x1000, pte_idx++)
   1875 	{
   1876 	  if (((_farnspeekl (addr + 4 * pte_idx) & 0xfffff027) ==
   1877 	       (_farnspeekl (addr + 0x1000) & 0xfffff027))
   1878 	      && ((_farnspeekl (addr + 4 * pte_idx + 4) & 0xfffff000) == cr3))
   1879 	    {
   1880 	      cr3 = addr + 0x1000;
   1881 	      break;
   1882 	    }
   1883 	}
   1884 #endif
   1885 
   1886       if (cr3 > 0xfffff)
   1887 	cr3 = 0;
   1888     }
   1889 
   1890   return cr3;
   1891 }
   1892 
   1893 /* Return the N'th Page Directory entry.  */
   1894 static unsigned long
   1895 get_pde (int n)
   1896 {
   1897   unsigned long pde = 0;
   1898 
   1899   if (pdbr && n >= 0 && n < 1024)
   1900     {
   1901       pde = _farpeekl (_dos_ds, pdbr + 4*n);
   1902     }
   1903   return pde;
   1904 }
   1905 
   1906 /* Return the N'th entry of the Page Table whose Page Directory entry
   1907    is PDE.  */
   1908 static unsigned long
   1909 get_pte (unsigned long pde, int n)
   1910 {
   1911   unsigned long pte = 0;
   1912 
   1913   /* pde & 0x80 tests the 4MB page bit.  We don't support 4MB
   1914      page tables, for now.  */
   1915   if ((pde & 1) && !(pde & 0x80) && n >= 0 && n < 1024)
   1916     {
   1917       pde &= ~0xfff;	/* Clear non-address bits.  */
   1918       pte = _farpeekl (_dos_ds, pde + 4*n);
   1919     }
   1920   return pte;
   1921 }
   1922 
   1923 /* Display a Page Directory or Page Table entry.  IS_DIR, if non-zero,
   1924    says this is a Page Directory entry.  If FORCE is non-zero, display
   1925    the entry even if its Present flag is off.  OFF is the offset of the
   1926    address from the page's base address.  */
   1927 static void
   1928 display_ptable_entry (unsigned long entry, int is_dir, int force, unsigned off)
   1929 {
   1930   if ((entry & 1) != 0)
   1931     {
   1932       gdb_printf ("Base=0x%05lx000", entry >> 12);
   1933       if ((entry & 0x100) && !is_dir)
   1934 	gdb_puts (" Global");
   1935       if ((entry & 0x40) && !is_dir)
   1936 	gdb_puts (" Dirty");
   1937       gdb_printf (" %sAcc.", (entry & 0x20) ? "" : "Not-");
   1938       gdb_printf (" %sCached", (entry & 0x10) ? "" : "Not-");
   1939       gdb_printf (" Write-%s", (entry & 8) ? "Thru" : "Back");
   1940       gdb_printf (" %s", (entry & 4) ? "Usr" : "Sup");
   1941       gdb_printf (" Read-%s", (entry & 2) ? "Write" : "Only");
   1942       if (off)
   1943 	gdb_printf (" +0x%x", off);
   1944       gdb_puts ("\n");
   1945     }
   1946   else if (force)
   1947     gdb_printf ("Page%s not present or not supported; value=0x%lx.\n",
   1948 		is_dir ? " Table" : "", entry >> 1);
   1949 }
   1950 
   1951 static void
   1952 go32_pde (const char *arg, int from_tty)
   1953 {
   1954   long pde_idx = -1, i;
   1955 
   1956   if (arg && *arg)
   1957     {
   1958       arg = skip_spaces (arg);
   1959 
   1960       if (*arg)
   1961 	{
   1962 	  pde_idx = parse_and_eval_long (arg);
   1963 	  if (pde_idx < 0 || pde_idx >= 1024)
   1964 	    error (_("Entry %ld is outside valid limits [0..1023]."), pde_idx);
   1965 	}
   1966     }
   1967 
   1968   pdbr = get_cr3 ();
   1969   if (!pdbr)
   1970     gdb_puts ("Access to Page Directories is "
   1971 	      "not supported on this system.\n");
   1972   else if (pde_idx >= 0)
   1973     display_ptable_entry (get_pde (pde_idx), 1, 1, 0);
   1974   else
   1975     for (i = 0; i < 1024; i++)
   1976       display_ptable_entry (get_pde (i), 1, 0, 0);
   1977 }
   1978 
   1979 /* A helper function to display entries in a Page Table pointed to by
   1980    the N'th entry in the Page Directory.  If FORCE is non-zero, say
   1981    something even if the Page Table is not accessible.  */
   1982 static void
   1983 display_page_table (long n, int force)
   1984 {
   1985   unsigned long pde = get_pde (n);
   1986 
   1987   if ((pde & 1) != 0)
   1988     {
   1989       int i;
   1990 
   1991       gdb_printf ("Page Table pointed to by "
   1992 		  "Page Directory entry 0x%lx:\n", n);
   1993       for (i = 0; i < 1024; i++)
   1994 	display_ptable_entry (get_pte (pde, i), 0, 0, 0);
   1995       gdb_puts ("\n");
   1996     }
   1997   else if (force)
   1998     gdb_printf ("Page Table not present; value=0x%lx.\n", pde >> 1);
   1999 }
   2000 
   2001 static void
   2002 go32_pte (const char *arg, int from_tty)
   2003 {
   2004   long pde_idx = -1L, i;
   2005 
   2006   if (arg && *arg)
   2007     {
   2008       arg = skip_spaces (arg);
   2009 
   2010       if (*arg)
   2011 	{
   2012 	  pde_idx = parse_and_eval_long (arg);
   2013 	  if (pde_idx < 0 || pde_idx >= 1024)
   2014 	    error (_("Entry %ld is outside valid limits [0..1023]."), pde_idx);
   2015 	}
   2016     }
   2017 
   2018   pdbr = get_cr3 ();
   2019   if (!pdbr)
   2020     gdb_puts ("Access to Page Tables is not supported on this system.\n");
   2021   else if (pde_idx >= 0)
   2022     display_page_table (pde_idx, 1);
   2023   else
   2024     for (i = 0; i < 1024; i++)
   2025       display_page_table (i, 0);
   2026 }
   2027 
   2028 static void
   2029 go32_pte_for_address (const char *arg, int from_tty)
   2030 {
   2031   CORE_ADDR addr = 0, i;
   2032 
   2033   if (arg && *arg)
   2034     {
   2035       arg = skip_spaces (arg);
   2036 
   2037       if (*arg)
   2038 	addr = parse_and_eval_address (arg);
   2039     }
   2040   if (!addr)
   2041     error_no_arg (_("linear address"));
   2042 
   2043   pdbr = get_cr3 ();
   2044   if (!pdbr)
   2045     gdb_puts ("Access to Page Tables is not supported on this system.\n");
   2046   else
   2047     {
   2048       int pde_idx = (addr >> 22) & 0x3ff;
   2049       int pte_idx = (addr >> 12) & 0x3ff;
   2050       unsigned offs = addr & 0xfff;
   2051 
   2052       gdb_printf ("Page Table entry for address %s:\n",
   2053 		  hex_string(addr));
   2054       display_ptable_entry (get_pte (get_pde (pde_idx), pte_idx), 0, 1, offs);
   2055     }
   2056 }
   2057 
   2058 static struct cmd_list_element *info_dos_cmdlist = NULL;
   2059 
   2060 void _initialize_go32_nat ();
   2061 void
   2062 _initialize_go32_nat ()
   2063 {
   2064   x86_dr_low.set_control = go32_set_dr7;
   2065   x86_dr_low.set_addr = go32_set_dr;
   2066   x86_dr_low.get_status = go32_get_dr6;
   2067   x86_dr_low.get_control = go32_get_dr7;
   2068   x86_dr_low.get_addr = go32_get_dr;
   2069   x86_set_debug_register_length (4);
   2070 
   2071   add_inf_child_target (&the_go32_nat_target);
   2072 
   2073   /* Initialize child's cwd as empty to be initialized when starting
   2074      the child.  */
   2075   *child_cwd = 0;
   2076 
   2077   /* Initialize child's command line storage.  */
   2078   if (redir_debug_init (&child_cmd) == -1)
   2079     internal_error (_("Cannot allocate redirection storage: "
   2080 		      "not enough memory.\n"));
   2081 
   2082   /* We are always processing GCC-compiled programs.  */
   2083   processing_gcc_compilation = 2;
   2084 
   2085   add_basic_prefix_cmd ("dos", class_info, _("\
   2086 Print information specific to DJGPP (aka MS-DOS) debugging."),
   2087 			&info_dos_cmdlist, 0, &infolist);
   2088 
   2089   add_cmd ("sysinfo", class_info, go32_sysinfo, _("\
   2090 Display information about the target system, including CPU, OS, DPMI, etc."),
   2091 	   &info_dos_cmdlist);
   2092   add_cmd ("ldt", class_info, go32_sldt, _("\
   2093 Display entries in the LDT (Local Descriptor Table).\n\
   2094 Entry number (an expression) as an argument means display only that entry."),
   2095 	   &info_dos_cmdlist);
   2096   add_cmd ("gdt", class_info, go32_sgdt, _("\
   2097 Display entries in the GDT (Global Descriptor Table).\n\
   2098 Entry number (an expression) as an argument means display only that entry."),
   2099 	   &info_dos_cmdlist);
   2100   add_cmd ("idt", class_info, go32_sidt, _("\
   2101 Display entries in the IDT (Interrupt Descriptor Table).\n\
   2102 Entry number (an expression) as an argument means display only that entry."),
   2103 	   &info_dos_cmdlist);
   2104   add_cmd ("pde", class_info, go32_pde, _("\
   2105 Display entries in the Page Directory.\n\
   2106 Entry number (an expression) as an argument means display only that entry."),
   2107 	   &info_dos_cmdlist);
   2108   add_cmd ("pte", class_info, go32_pte, _("\
   2109 Display entries in Page Tables.\n\
   2110 Entry number (an expression) as an argument means display only entries\n\
   2111 from the Page Table pointed to by the specified Page Directory entry."),
   2112 	   &info_dos_cmdlist);
   2113   add_cmd ("address-pte", class_info, go32_pte_for_address, _("\
   2114 Display a Page Table entry for a linear address.\n\
   2115 The address argument must be a linear address, after adding to\n\
   2116 it the base address of the appropriate segment.\n\
   2117 The base address of variables and functions in the debuggee's data\n\
   2118 or code segment is stored in the variable __djgpp_base_address,\n\
   2119 so use `__djgpp_base_address + (char *)&var' as the argument.\n\
   2120 For other segments, look up their base address in the output of\n\
   2121 the `info dos ldt' command."),
   2122 	   &info_dos_cmdlist);
   2123 }
   2124 
   2125 pid_t
   2126 tcgetpgrp (int fd)
   2127 {
   2128   if (isatty (fd))
   2129     return SOME_PID;
   2130   errno = ENOTTY;
   2131   return -1;
   2132 }
   2133 
   2134 int
   2135 tcsetpgrp (int fd, pid_t pgid)
   2136 {
   2137   if (isatty (fd) && pgid == SOME_PID)
   2138     return 0;
   2139   errno = pgid == SOME_PID ? ENOTTY : ENOSYS;
   2140   return -1;
   2141 }
   2142