linux_machdep.c revision 1.89.2.7 1 /* $NetBSD: linux_machdep.c,v 1.89.2.7 2005/03/04 16:39:51 skrll Exp $ */
2
3 /*-
4 * Copyright (c) 1995, 2000 The NetBSD Foundation, Inc.
5 * All rights reserved.
6 *
7 * This code is derived from software contributed to The NetBSD Foundation
8 * by Frank van der Linden.
9 *
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
12 * are met:
13 * 1. Redistributions of source code must retain the above copyright
14 * notice, this list of conditions and the following disclaimer.
15 * 2. Redistributions in binary form must reproduce the above copyright
16 * notice, this list of conditions and the following disclaimer in the
17 * documentation and/or other materials provided with the distribution.
18 * 3. All advertising materials mentioning features or use of this software
19 * must display the following acknowledgement:
20 * This product includes software developed by the NetBSD
21 * Foundation, Inc. and its contributors.
22 * 4. Neither the name of The NetBSD Foundation nor the names of its
23 * contributors may be used to endorse or promote products derived
24 * from this software without specific prior written permission.
25 *
26 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
27 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
28 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
29 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
30 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
32 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
33 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
34 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
35 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
36 * POSSIBILITY OF SUCH DAMAGE.
37 */
38
39 #include <sys/cdefs.h>
40 __KERNEL_RCSID(0, "$NetBSD: linux_machdep.c,v 1.89.2.7 2005/03/04 16:39:51 skrll Exp $");
41
42 #if defined(_KERNEL_OPT)
43 #include "opt_vm86.h"
44 #include "opt_user_ldt.h"
45 #endif
46
47 #include <sys/param.h>
48 #include <sys/systm.h>
49 #include <sys/signalvar.h>
50 #include <sys/kernel.h>
51 #include <sys/proc.h>
52 #include <sys/user.h>
53 #include <sys/buf.h>
54 #include <sys/reboot.h>
55 #include <sys/conf.h>
56 #include <sys/exec.h>
57 #include <sys/file.h>
58 #include <sys/callout.h>
59 #include <sys/malloc.h>
60 #include <sys/mbuf.h>
61 #include <sys/msgbuf.h>
62 #include <sys/mount.h>
63 #include <sys/vnode.h>
64 #include <sys/device.h>
65 #include <sys/sa.h>
66 #include <sys/syscallargs.h>
67 #include <sys/filedesc.h>
68 #include <sys/exec_elf.h>
69 #include <sys/disklabel.h>
70 #include <sys/ioctl.h>
71 #include <miscfs/specfs/specdev.h>
72
73 #include <compat/linux/common/linux_types.h>
74 #include <compat/linux/common/linux_signal.h>
75 #include <compat/linux/common/linux_util.h>
76 #include <compat/linux/common/linux_ioctl.h>
77 #include <compat/linux/common/linux_hdio.h>
78 #include <compat/linux/common/linux_exec.h>
79 #include <compat/linux/common/linux_machdep.h>
80 #include <compat/linux/common/linux_errno.h>
81
82 #include <compat/linux/linux_syscallargs.h>
83
84 #include <machine/cpu.h>
85 #include <machine/cpufunc.h>
86 #include <machine/psl.h>
87 #include <machine/reg.h>
88 #include <machine/segments.h>
89 #include <machine/specialreg.h>
90 #include <machine/sysarch.h>
91 #include <machine/vm86.h>
92 #include <machine/vmparam.h>
93
94 /*
95 * To see whether wscons is configured (for virtual console ioctl calls).
96 */
97 #if defined(_KERNEL_OPT)
98 #include "wsdisplay.h"
99 #endif
100 #if (NWSDISPLAY > 0)
101 #include <dev/wscons/wsconsio.h>
102 #include <dev/wscons/wsdisplay_usl_io.h>
103 #if defined(_KERNEL_OPT)
104 #include "opt_xserver.h"
105 #endif
106 #endif
107
108 #ifdef USER_LDT
109 #include <machine/cpu.h>
110 int linux_read_ldt __P((struct lwp *, struct linux_sys_modify_ldt_args *,
111 register_t *));
112 int linux_write_ldt __P((struct lwp *, struct linux_sys_modify_ldt_args *,
113 register_t *));
114 #endif
115
116 #ifdef DEBUG_LINUX
117 #define DPRINTF(a) uprintf a
118 #else
119 #define DPRINTF(a)
120 #endif
121
122 static struct biosdisk_info *fd2biosinfo __P((struct proc *, struct file *));
123 extern struct disklist *x86_alldisks;
124 static void linux_save_ucontext __P((struct lwp *, struct trapframe *,
125 const sigset_t *, struct sigaltstack *, struct linux_ucontext *));
126 static void linux_save_sigcontext __P((struct lwp *, struct trapframe *,
127 const sigset_t *, struct linux_sigcontext *));
128 static int linux_restore_sigcontext __P((struct lwp *,
129 struct linux_sigcontext *, register_t *));
130 static void linux_rt_sendsig __P((const ksiginfo_t *, const sigset_t *));
131 static void linux_old_sendsig __P((const ksiginfo_t *, const sigset_t *));
132
133 extern char linux_sigcode[], linux_rt_sigcode[];
134 /*
135 * Deal with some i386-specific things in the Linux emulation code.
136 */
137
138 void
139 linux_setregs(l, epp, stack)
140 struct lwp *l;
141 struct exec_package *epp;
142 u_long stack;
143 {
144 struct pcb *pcb = &l->l_addr->u_pcb;
145 struct trapframe *tf;
146
147 #if NNPX > 0
148 /* If we were using the FPU, forget about it. */
149 if (npxproc == l)
150 npxdrop();
151 #endif
152
153 #ifdef USER_LDT
154 pmap_ldt_cleanup(l);
155 #endif
156
157 l->l_md.md_flags &= ~MDL_USEDFPU;
158
159 if (i386_use_fxsave) {
160 pcb->pcb_savefpu.sv_xmm.sv_env.en_cw = __Linux_NPXCW__;
161 pcb->pcb_savefpu.sv_xmm.sv_env.en_mxcsr = __INITIAL_MXCSR__;
162 } else
163 pcb->pcb_savefpu.sv_87.sv_env.en_cw = __Linux_NPXCW__;
164
165 tf = l->l_md.md_regs;
166 tf->tf_gs = GSEL(GUDATA_SEL, SEL_UPL);
167 tf->tf_fs = GSEL(GUDATA_SEL, SEL_UPL);
168 tf->tf_es = GSEL(GUDATA_SEL, SEL_UPL);
169 tf->tf_ds = GSEL(GUDATA_SEL, SEL_UPL);
170 tf->tf_edi = 0;
171 tf->tf_esi = 0;
172 tf->tf_ebp = 0;
173 tf->tf_ebx = (int)l->l_proc->p_psstr;
174 tf->tf_edx = 0;
175 tf->tf_ecx = 0;
176 tf->tf_eax = 0;
177 tf->tf_eip = epp->ep_entry;
178 tf->tf_cs = GSEL(GUCODEBIG_SEL, SEL_UPL);
179 tf->tf_eflags = PSL_USERSET;
180 tf->tf_esp = stack;
181 tf->tf_ss = GSEL(GUDATA_SEL, SEL_UPL);
182 }
183
184 /*
185 * Send an interrupt to process.
186 *
187 * Stack is set up to allow sigcode stored
188 * in u. to call routine, followed by kcall
189 * to sigreturn routine below. After sigreturn
190 * resets the signal mask, the stack, and the
191 * frame pointer, it returns to the user
192 * specified pc, psl.
193 */
194
195 void
196 linux_sendsig(const ksiginfo_t *ksi, const sigset_t *mask)
197 {
198 if (SIGACTION(curproc, ksi->ksi_signo).sa_flags & SA_SIGINFO)
199 linux_rt_sendsig(ksi, mask);
200 else
201 linux_old_sendsig(ksi, mask);
202 }
203
204
205 static void
206 linux_save_ucontext(l, tf, mask, sas, uc)
207 struct lwp *l;
208 struct trapframe *tf;
209 const sigset_t *mask;
210 struct sigaltstack *sas;
211 struct linux_ucontext *uc;
212 {
213 uc->uc_flags = 0;
214 uc->uc_link = NULL;
215 native_to_linux_sigaltstack(&uc->uc_stack, sas);
216 linux_save_sigcontext(l, tf, mask, &uc->uc_mcontext);
217 native_to_linux_sigset(&uc->uc_sigmask, mask);
218 (void)memset(&uc->uc_fpregs_mem, 0, sizeof(uc->uc_fpregs_mem));
219 }
220
221 static void
222 linux_save_sigcontext(l, tf, mask, sc)
223 struct lwp *l;
224 struct trapframe *tf;
225 const sigset_t *mask;
226 struct linux_sigcontext *sc;
227 {
228 /* Save register context. */
229 #ifdef VM86
230 if (tf->tf_eflags & PSL_VM) {
231 sc->sc_gs = tf->tf_vm86_gs;
232 sc->sc_fs = tf->tf_vm86_fs;
233 sc->sc_es = tf->tf_vm86_es;
234 sc->sc_ds = tf->tf_vm86_ds;
235 sc->sc_eflags = get_vflags(l);
236 } else
237 #endif
238 {
239 sc->sc_gs = tf->tf_gs;
240 sc->sc_fs = tf->tf_fs;
241 sc->sc_es = tf->tf_es;
242 sc->sc_ds = tf->tf_ds;
243 sc->sc_eflags = tf->tf_eflags;
244 }
245 sc->sc_edi = tf->tf_edi;
246 sc->sc_esi = tf->tf_esi;
247 sc->sc_esp = tf->tf_esp;
248 sc->sc_ebp = tf->tf_ebp;
249 sc->sc_ebx = tf->tf_ebx;
250 sc->sc_edx = tf->tf_edx;
251 sc->sc_ecx = tf->tf_ecx;
252 sc->sc_eax = tf->tf_eax;
253 sc->sc_eip = tf->tf_eip;
254 sc->sc_cs = tf->tf_cs;
255 sc->sc_esp_at_signal = tf->tf_esp;
256 sc->sc_ss = tf->tf_ss;
257 sc->sc_err = tf->tf_err;
258 sc->sc_trapno = tf->tf_trapno;
259 sc->sc_cr2 = l->l_addr->u_pcb.pcb_cr2;
260 sc->sc_387 = NULL;
261
262 /* Save signal stack. */
263 /* Linux doesn't save the onstack flag in sigframe */
264
265 /* Save signal mask. */
266 native_to_linux_old_sigset(&sc->sc_mask, mask);
267 }
268
269 static void
270 linux_rt_sendsig(const ksiginfo_t *ksi, const sigset_t *mask)
271 {
272 struct lwp *l = curlwp;
273 struct proc *p = l->l_proc;
274 struct trapframe *tf;
275 struct linux_rt_sigframe *fp, frame;
276 int onstack;
277 linux_siginfo_t *lsi;
278 int sig = ksi->ksi_signo;
279 sig_t catcher = SIGACTION(p, sig).sa_handler;
280 struct sigaltstack *sas = &p->p_sigctx.ps_sigstk;
281
282 tf = l->l_md.md_regs;
283 /* Do we need to jump onto the signal stack? */
284 onstack = (sas->ss_flags & (SS_DISABLE | SS_ONSTACK)) == 0 &&
285 (SIGACTION(p, sig).sa_flags & SA_ONSTACK) != 0;
286
287
288 /* Allocate space for the signal handler context. */
289 if (onstack)
290 fp = (struct linux_rt_sigframe *)((caddr_t)sas->ss_sp +
291 sas->ss_size);
292 else
293 fp = (struct linux_rt_sigframe *)tf->tf_esp;
294 fp--;
295
296 DPRINTF(("rt: onstack = %d, fp = %p sig = %d eip = 0x%x cr2 = 0x%x\n",
297 onstack, fp, sig, tf->tf_eip, l->l_addr->u_pcb.pcb_cr2));
298
299 /* Build stack frame for signal trampoline. */
300 frame.sf_handler = catcher;
301 frame.sf_sig = native_to_linux_signo[sig];
302 frame.sf_sip = &fp->sf_si;
303 frame.sf_ucp = &fp->sf_uc;
304
305 /*
306 * XXX: the following code assumes that the constants for
307 * siginfo are the same between linux and NetBSD.
308 */
309 (void)memset(lsi = &frame.sf_si, 0, sizeof(frame.sf_si));
310 lsi->lsi_errno = native_to_linux_errno[ksi->ksi_errno];
311 lsi->lsi_code = ksi->ksi_code;
312 switch (lsi->lsi_signo = frame.sf_sig) {
313 case LINUX_SIGILL:
314 case LINUX_SIGFPE:
315 case LINUX_SIGSEGV:
316 case LINUX_SIGBUS:
317 case LINUX_SIGTRAP:
318 lsi->lsi_addr = ksi->ksi_addr;
319 break;
320 case LINUX_SIGCHLD:
321 lsi->lsi_uid = ksi->ksi_uid;
322 lsi->lsi_pid = ksi->ksi_pid;
323 lsi->lsi_status = ksi->ksi_status;
324 lsi->lsi_utime = ksi->ksi_utime;
325 lsi->lsi_stime = ksi->ksi_stime;
326 break;
327 case LINUX_SIGIO:
328 lsi->lsi_band = ksi->ksi_band;
329 lsi->lsi_fd = ksi->ksi_fd;
330 break;
331 default:
332 lsi->lsi_uid = ksi->ksi_uid;
333 lsi->lsi_pid = ksi->ksi_pid;
334 if (lsi->lsi_signo == LINUX_SIGALRM ||
335 lsi->lsi_signo >= LINUX_SIGRTMIN)
336 lsi->lsi_value.sival_ptr = ksi->ksi_sigval.sival_ptr;
337 break;
338 }
339
340 /* Save register context. */
341 linux_save_ucontext(l, tf, mask, sas, &frame.sf_uc);
342
343 if (copyout(&frame, fp, sizeof(frame)) != 0) {
344 /*
345 * Process has trashed its stack; give it an illegal
346 * instruction to halt it in its tracks.
347 */
348 sigexit(l, SIGILL);
349 /* NOTREACHED */
350 }
351
352 /*
353 * Build context to run handler in.
354 */
355 tf->tf_gs = GSEL(GUDATA_SEL, SEL_UPL);
356 tf->tf_fs = GSEL(GUDATA_SEL, SEL_UPL);
357 tf->tf_es = GSEL(GUDATA_SEL, SEL_UPL);
358 tf->tf_ds = GSEL(GUDATA_SEL, SEL_UPL);
359 tf->tf_eip = ((int)p->p_sigctx.ps_sigcode) +
360 (linux_rt_sigcode - linux_sigcode);
361 tf->tf_cs = GSEL(GUCODE_SEL, SEL_UPL);
362 tf->tf_eflags &= ~(PSL_T|PSL_VM|PSL_AC);
363 tf->tf_esp = (int)fp;
364 tf->tf_ss = GSEL(GUDATA_SEL, SEL_UPL);
365
366 /* Remember that we're now on the signal stack. */
367 if (onstack)
368 sas->ss_flags |= SS_ONSTACK;
369 }
370
371 static void
372 linux_old_sendsig(const ksiginfo_t *ksi, const sigset_t *mask)
373 {
374 struct lwp *l = curlwp;
375 struct proc *p = l->l_proc;
376 struct trapframe *tf;
377 struct linux_sigframe *fp, frame;
378 int onstack;
379 int sig = ksi->ksi_signo;
380 sig_t catcher = SIGACTION(p, sig).sa_handler;
381 struct sigaltstack *sas = &p->p_sigctx.ps_sigstk;
382
383 tf = l->l_md.md_regs;
384
385 /* Do we need to jump onto the signal stack? */
386 onstack = (sas->ss_flags & (SS_DISABLE | SS_ONSTACK)) == 0 &&
387 (SIGACTION(p, sig).sa_flags & SA_ONSTACK) != 0;
388
389 /* Allocate space for the signal handler context. */
390 if (onstack)
391 fp = (struct linux_sigframe *) ((caddr_t)sas->ss_sp +
392 sas->ss_size);
393 else
394 fp = (struct linux_sigframe *)tf->tf_esp;
395 fp--;
396
397 DPRINTF(("old: onstack = %d, fp = %p sig = %d eip = 0x%x cr2 = 0x%x\n",
398 onstack, fp, sig, tf->tf_eip, l->l_addr->u_pcb.pcb_cr2));
399
400 /* Build stack frame for signal trampoline. */
401 frame.sf_handler = catcher;
402 frame.sf_sig = native_to_linux_signo[sig];
403
404 linux_save_sigcontext(l, tf, mask, &frame.sf_sc);
405
406 if (copyout(&frame, fp, sizeof(frame)) != 0) {
407 /*
408 * Process has trashed its stack; give it an illegal
409 * instruction to halt it in its tracks.
410 */
411 sigexit(l, SIGILL);
412 /* NOTREACHED */
413 }
414
415 /*
416 * Build context to run handler in.
417 */
418 tf->tf_gs = GSEL(GUDATA_SEL, SEL_UPL);
419 tf->tf_fs = GSEL(GUDATA_SEL, SEL_UPL);
420 tf->tf_es = GSEL(GUDATA_SEL, SEL_UPL);
421 tf->tf_ds = GSEL(GUDATA_SEL, SEL_UPL);
422 tf->tf_eip = (int)p->p_sigctx.ps_sigcode;
423 tf->tf_cs = GSEL(GUCODEBIG_SEL, SEL_UPL);
424 tf->tf_eflags &= ~(PSL_T|PSL_VM|PSL_AC);
425 tf->tf_esp = (int)fp;
426 tf->tf_ss = GSEL(GUDATA_SEL, SEL_UPL);
427
428 /* Remember that we're now on the signal stack. */
429 if (onstack)
430 sas->ss_flags |= SS_ONSTACK;
431 }
432
433 /*
434 * System call to cleanup state after a signal
435 * has been taken. Reset signal mask and
436 * stack state from context left by sendsig (above).
437 * Return to previous pc and psl as specified by
438 * context left by sendsig. Check carefully to
439 * make sure that the user has not modified the
440 * psl to gain improper privileges or to cause
441 * a machine fault.
442 */
443 int
444 linux_sys_rt_sigreturn(l, v, retval)
445 struct lwp *l;
446 void *v;
447 register_t *retval;
448 {
449 struct linux_sys_rt_sigreturn_args /* {
450 syscallarg(struct linux_ucontext *) ucp;
451 } */ *uap = v;
452 struct linux_ucontext context, *ucp = SCARG(uap, ucp);
453 int error;
454
455 /*
456 * The trampoline code hands us the context.
457 * It is unsafe to keep track of it ourselves, in the event that a
458 * program jumps out of a signal handler.
459 */
460 if ((error = copyin(ucp, &context, sizeof(*ucp))) != 0)
461 return error;
462
463 /* XXX XAX we can do better here by using more of the ucontext */
464 return linux_restore_sigcontext(l, &context.uc_mcontext, retval);
465 }
466
467 int
468 linux_sys_sigreturn(l, v, retval)
469 struct lwp *l;
470 void *v;
471 register_t *retval;
472 {
473 struct linux_sys_sigreturn_args /* {
474 syscallarg(struct linux_sigcontext *) scp;
475 } */ *uap = v;
476 struct linux_sigcontext context, *scp = SCARG(uap, scp);
477 int error;
478
479 /*
480 * The trampoline code hands us the context.
481 * It is unsafe to keep track of it ourselves, in the event that a
482 * program jumps out of a signal handler.
483 */
484 if ((error = copyin((caddr_t)scp, &context, sizeof(*scp))) != 0)
485 return error;
486 return linux_restore_sigcontext(l, &context, retval);
487 }
488
489 static int
490 linux_restore_sigcontext(l, scp, retval)
491 struct lwp *l;
492 struct linux_sigcontext *scp;
493 register_t *retval;
494 {
495 struct proc *p = l->l_proc;
496 struct sigaltstack *sas = &p->p_sigctx.ps_sigstk;
497 struct trapframe *tf;
498 sigset_t mask;
499 ssize_t ss_gap;
500 /* Restore register context. */
501 tf = l->l_md.md_regs;
502
503 DPRINTF(("sigreturn enter esp=%x eip=%x\n", tf->tf_esp, tf->tf_eip));
504 #ifdef VM86
505 if (scp->sc_eflags & PSL_VM) {
506 void syscall_vm86 __P((struct trapframe *));
507
508 tf->tf_vm86_gs = scp->sc_gs;
509 tf->tf_vm86_fs = scp->sc_fs;
510 tf->tf_vm86_es = scp->sc_es;
511 tf->tf_vm86_ds = scp->sc_ds;
512 set_vflags(l, scp->sc_eflags);
513 p->p_md.md_syscall = syscall_vm86;
514 } else
515 #endif
516 {
517 /*
518 * Check for security violations. If we're returning to
519 * protected mode, the CPU will validate the segment registers
520 * automatically and generate a trap on violations. We handle
521 * the trap, rather than doing all of the checking here.
522 */
523 if (((scp->sc_eflags ^ tf->tf_eflags) & PSL_USERSTATIC) != 0 ||
524 !USERMODE(scp->sc_cs, scp->sc_eflags))
525 return EINVAL;
526
527 tf->tf_gs = scp->sc_gs;
528 tf->tf_fs = scp->sc_fs;
529 tf->tf_es = scp->sc_es;
530 tf->tf_ds = scp->sc_ds;
531 #ifdef VM86
532 if (tf->tf_eflags & PSL_VM)
533 (*p->p_emul->e_syscall_intern)(p);
534 #endif
535 tf->tf_eflags = scp->sc_eflags;
536 }
537 tf->tf_edi = scp->sc_edi;
538 tf->tf_esi = scp->sc_esi;
539 tf->tf_ebp = scp->sc_ebp;
540 tf->tf_ebx = scp->sc_ebx;
541 tf->tf_edx = scp->sc_edx;
542 tf->tf_ecx = scp->sc_ecx;
543 tf->tf_eax = scp->sc_eax;
544 tf->tf_eip = scp->sc_eip;
545 tf->tf_cs = scp->sc_cs;
546 tf->tf_esp = scp->sc_esp_at_signal;
547 tf->tf_ss = scp->sc_ss;
548
549 /* Restore signal stack. */
550 /*
551 * Linux really does it this way; it doesn't have space in sigframe
552 * to save the onstack flag.
553 */
554 ss_gap = (ssize_t)
555 ((caddr_t) scp->sc_esp_at_signal - (caddr_t) sas->ss_sp);
556 if (ss_gap >= 0 && ss_gap < sas->ss_size)
557 sas->ss_flags |= SS_ONSTACK;
558 else
559 sas->ss_flags &= ~SS_ONSTACK;
560
561 /* Restore signal mask. */
562 linux_old_to_native_sigset(&mask, &scp->sc_mask);
563 (void) sigprocmask1(p, SIG_SETMASK, &mask, 0);
564 DPRINTF(("sigreturn exit esp=%x eip=%x\n", tf->tf_esp, tf->tf_eip));
565 return EJUSTRETURN;
566 }
567
568 #ifdef USER_LDT
569
570 int
571 linux_read_ldt(l, uap, retval)
572 struct lwp *l;
573 struct linux_sys_modify_ldt_args /* {
574 syscallarg(int) func;
575 syscallarg(void *) ptr;
576 syscallarg(size_t) bytecount;
577 } */ *uap;
578 register_t *retval;
579 {
580 struct proc *p = l->l_proc;
581 struct i386_get_ldt_args gl;
582 int error;
583 caddr_t sg;
584 char *parms;
585
586 DPRINTF(("linux_read_ldt!"));
587 sg = stackgap_init(p, 0);
588
589 gl.start = 0;
590 gl.desc = SCARG(uap, ptr);
591 gl.num = SCARG(uap, bytecount) / sizeof(union descriptor);
592
593 parms = stackgap_alloc(p, &sg, sizeof(gl));
594
595 if ((error = copyout(&gl, parms, sizeof(gl))) != 0)
596 return (error);
597
598 if ((error = i386_get_ldt(l, parms, retval)) != 0)
599 return (error);
600
601 *retval *= sizeof(union descriptor);
602 return (0);
603 }
604
605 struct linux_ldt_info {
606 u_int entry_number;
607 u_long base_addr;
608 u_int limit;
609 u_int seg_32bit:1;
610 u_int contents:2;
611 u_int read_exec_only:1;
612 u_int limit_in_pages:1;
613 u_int seg_not_present:1;
614 u_int useable:1;
615 };
616
617 int
618 linux_write_ldt(l, uap, retval)
619 struct lwp *l;
620 struct linux_sys_modify_ldt_args /* {
621 syscallarg(int) func;
622 syscallarg(void *) ptr;
623 syscallarg(size_t) bytecount;
624 } */ *uap;
625 register_t *retval;
626 {
627 struct proc *p = l->l_proc;
628 struct linux_ldt_info ldt_info;
629 struct segment_descriptor sd;
630 struct i386_set_ldt_args sl;
631 int error;
632 caddr_t sg;
633 char *parms;
634 int oldmode = (int)retval[0];
635
636 DPRINTF(("linux_write_ldt %d\n", oldmode));
637 if (SCARG(uap, bytecount) != sizeof(ldt_info))
638 return (EINVAL);
639 if ((error = copyin(SCARG(uap, ptr), &ldt_info, sizeof(ldt_info))) != 0)
640 return error;
641 if (ldt_info.entry_number >= 8192)
642 return (EINVAL);
643 if (ldt_info.contents == 3) {
644 if (oldmode)
645 return (EINVAL);
646 if (ldt_info.seg_not_present)
647 return (EINVAL);
648 }
649
650 if (ldt_info.base_addr == 0 && ldt_info.limit == 0 &&
651 (oldmode || (ldt_info.contents == 0 &&
652 ldt_info.read_exec_only == 1 && ldt_info.seg_32bit == 0 &&
653 ldt_info.limit_in_pages == 0 && ldt_info.seg_not_present == 1 &&
654 ldt_info.useable == 0))) {
655 /* this means you should zero the ldt */
656 (void)memset(&sd, 0, sizeof(sd));
657 } else {
658 sd.sd_lobase = ldt_info.base_addr & 0xffffff;
659 sd.sd_hibase = (ldt_info.base_addr >> 24) & 0xff;
660 sd.sd_lolimit = ldt_info.limit & 0xffff;
661 sd.sd_hilimit = (ldt_info.limit >> 16) & 0xf;
662 sd.sd_type = 16 | (ldt_info.contents << 2) |
663 (!ldt_info.read_exec_only << 1);
664 sd.sd_dpl = SEL_UPL;
665 sd.sd_p = !ldt_info.seg_not_present;
666 sd.sd_def32 = ldt_info.seg_32bit;
667 sd.sd_gran = ldt_info.limit_in_pages;
668 if (!oldmode)
669 sd.sd_xx = ldt_info.useable;
670 else
671 sd.sd_xx = 0;
672 }
673 sg = stackgap_init(p, 0);
674 sl.start = ldt_info.entry_number;
675 sl.desc = stackgap_alloc(p, &sg, sizeof(sd));
676 sl.num = 1;
677
678 DPRINTF(("linux_write_ldt: idx=%d, base=0x%lx, limit=0x%x\n",
679 ldt_info.entry_number, ldt_info.base_addr, ldt_info.limit));
680
681 parms = stackgap_alloc(p, &sg, sizeof(sl));
682
683 if ((error = copyout(&sd, sl.desc, sizeof(sd))) != 0)
684 return (error);
685 if ((error = copyout(&sl, parms, sizeof(sl))) != 0)
686 return (error);
687
688 if ((error = i386_set_ldt(l, parms, retval)) != 0)
689 return (error);
690
691 *retval = 0;
692 return (0);
693 }
694
695 #endif /* USER_LDT */
696
697 int
698 linux_sys_modify_ldt(l, v, retval)
699 struct lwp *l;
700 void *v;
701 register_t *retval;
702 {
703 struct linux_sys_modify_ldt_args /* {
704 syscallarg(int) func;
705 syscallarg(void *) ptr;
706 syscallarg(size_t) bytecount;
707 } */ *uap = v;
708
709 switch (SCARG(uap, func)) {
710 #ifdef USER_LDT
711 case 0:
712 return linux_read_ldt(l, uap, retval);
713 case 1:
714 retval[0] = 1;
715 return linux_write_ldt(l, uap, retval);
716 case 2:
717 #ifdef notyet
718 return (linux_read_default_ldt(l, uap, retval);
719 #else
720 return (ENOSYS);
721 #endif
722 case 0x11:
723 retval[0] = 0;
724 return linux_write_ldt(l, uap, retval);
725 #endif /* USER_LDT */
726
727 default:
728 return (ENOSYS);
729 }
730 }
731
732 /*
733 * XXX Pathetic hack to make svgalib work. This will fake the major
734 * device number of an opened VT so that svgalib likes it. grmbl.
735 * Should probably do it 'wrong the right way' and use a mapping
736 * array for all major device numbers, and map linux_mknod too.
737 */
738 dev_t
739 linux_fakedev(dev, raw)
740 dev_t dev;
741 int raw;
742 {
743 extern const struct cdevsw ptc_cdevsw, pts_cdevsw;
744 const struct cdevsw *cd = cdevsw_lookup(dev);
745
746 if (raw) {
747 #if (NWSDISPLAY > 0)
748 extern const struct cdevsw wsdisplay_cdevsw;
749 if (cd == &wsdisplay_cdevsw)
750 return makedev(LINUX_CONS_MAJOR, (minor(dev) + 1));
751 #endif
752 }
753
754 if (cd == &ptc_cdevsw)
755 return makedev(LINUX_PTC_MAJOR, minor(dev));
756 if (cd == &pts_cdevsw)
757 return makedev(LINUX_PTS_MAJOR, minor(dev));
758
759 return dev;
760 }
761
762 #if (NWSDISPLAY > 0)
763 /*
764 * That's not complete, but enough to get an X server running.
765 */
766 #define NR_KEYS 128
767 static const u_short plain_map[NR_KEYS] = {
768 0x0200, 0x001b, 0x0031, 0x0032, 0x0033, 0x0034, 0x0035, 0x0036,
769 0x0037, 0x0038, 0x0039, 0x0030, 0x002d, 0x003d, 0x007f, 0x0009,
770 0x0b71, 0x0b77, 0x0b65, 0x0b72, 0x0b74, 0x0b79, 0x0b75, 0x0b69,
771 0x0b6f, 0x0b70, 0x005b, 0x005d, 0x0201, 0x0702, 0x0b61, 0x0b73,
772 0x0b64, 0x0b66, 0x0b67, 0x0b68, 0x0b6a, 0x0b6b, 0x0b6c, 0x003b,
773 0x0027, 0x0060, 0x0700, 0x005c, 0x0b7a, 0x0b78, 0x0b63, 0x0b76,
774 0x0b62, 0x0b6e, 0x0b6d, 0x002c, 0x002e, 0x002f, 0x0700, 0x030c,
775 0x0703, 0x0020, 0x0207, 0x0100, 0x0101, 0x0102, 0x0103, 0x0104,
776 0x0105, 0x0106, 0x0107, 0x0108, 0x0109, 0x0208, 0x0209, 0x0307,
777 0x0308, 0x0309, 0x030b, 0x0304, 0x0305, 0x0306, 0x030a, 0x0301,
778 0x0302, 0x0303, 0x0300, 0x0310, 0x0206, 0x0200, 0x003c, 0x010a,
779 0x010b, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200,
780 0x030e, 0x0702, 0x030d, 0x001c, 0x0701, 0x0205, 0x0114, 0x0603,
781 0x0118, 0x0601, 0x0602, 0x0117, 0x0600, 0x0119, 0x0115, 0x0116,
782 0x011a, 0x010c, 0x010d, 0x011b, 0x011c, 0x0110, 0x0311, 0x011d,
783 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200,
784 }, shift_map[NR_KEYS] = {
785 0x0200, 0x001b, 0x0021, 0x0040, 0x0023, 0x0024, 0x0025, 0x005e,
786 0x0026, 0x002a, 0x0028, 0x0029, 0x005f, 0x002b, 0x007f, 0x0009,
787 0x0b51, 0x0b57, 0x0b45, 0x0b52, 0x0b54, 0x0b59, 0x0b55, 0x0b49,
788 0x0b4f, 0x0b50, 0x007b, 0x007d, 0x0201, 0x0702, 0x0b41, 0x0b53,
789 0x0b44, 0x0b46, 0x0b47, 0x0b48, 0x0b4a, 0x0b4b, 0x0b4c, 0x003a,
790 0x0022, 0x007e, 0x0700, 0x007c, 0x0b5a, 0x0b58, 0x0b43, 0x0b56,
791 0x0b42, 0x0b4e, 0x0b4d, 0x003c, 0x003e, 0x003f, 0x0700, 0x030c,
792 0x0703, 0x0020, 0x0207, 0x010a, 0x010b, 0x010c, 0x010d, 0x010e,
793 0x010f, 0x0110, 0x0111, 0x0112, 0x0113, 0x0213, 0x0203, 0x0307,
794 0x0308, 0x0309, 0x030b, 0x0304, 0x0305, 0x0306, 0x030a, 0x0301,
795 0x0302, 0x0303, 0x0300, 0x0310, 0x0206, 0x0200, 0x003e, 0x010a,
796 0x010b, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200,
797 0x030e, 0x0702, 0x030d, 0x0200, 0x0701, 0x0205, 0x0114, 0x0603,
798 0x020b, 0x0601, 0x0602, 0x0117, 0x0600, 0x020a, 0x0115, 0x0116,
799 0x011a, 0x010c, 0x010d, 0x011b, 0x011c, 0x0110, 0x0311, 0x011d,
800 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200,
801 }, altgr_map[NR_KEYS] = {
802 0x0200, 0x0200, 0x0200, 0x0040, 0x0200, 0x0024, 0x0200, 0x0200,
803 0x007b, 0x005b, 0x005d, 0x007d, 0x005c, 0x0200, 0x0200, 0x0200,
804 0x0b71, 0x0b77, 0x0918, 0x0b72, 0x0b74, 0x0b79, 0x0b75, 0x0b69,
805 0x0b6f, 0x0b70, 0x0200, 0x007e, 0x0201, 0x0702, 0x0914, 0x0b73,
806 0x0917, 0x0919, 0x0b67, 0x0b68, 0x0b6a, 0x0b6b, 0x0b6c, 0x0200,
807 0x0200, 0x0200, 0x0700, 0x0200, 0x0b7a, 0x0b78, 0x0916, 0x0b76,
808 0x0915, 0x0b6e, 0x0b6d, 0x0200, 0x0200, 0x0200, 0x0700, 0x030c,
809 0x0703, 0x0200, 0x0207, 0x050c, 0x050d, 0x050e, 0x050f, 0x0510,
810 0x0511, 0x0512, 0x0513, 0x0514, 0x0515, 0x0208, 0x0202, 0x0911,
811 0x0912, 0x0913, 0x030b, 0x090e, 0x090f, 0x0910, 0x030a, 0x090b,
812 0x090c, 0x090d, 0x090a, 0x0310, 0x0206, 0x0200, 0x007c, 0x0516,
813 0x0517, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200,
814 0x030e, 0x0702, 0x030d, 0x0200, 0x0701, 0x0205, 0x0114, 0x0603,
815 0x0118, 0x0601, 0x0602, 0x0117, 0x0600, 0x0119, 0x0115, 0x0116,
816 0x011a, 0x010c, 0x010d, 0x011b, 0x011c, 0x0110, 0x0311, 0x011d,
817 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200,
818 }, ctrl_map[NR_KEYS] = {
819 0x0200, 0x0200, 0x0200, 0x0000, 0x001b, 0x001c, 0x001d, 0x001e,
820 0x001f, 0x007f, 0x0200, 0x0200, 0x001f, 0x0200, 0x0008, 0x0200,
821 0x0011, 0x0017, 0x0005, 0x0012, 0x0014, 0x0019, 0x0015, 0x0009,
822 0x000f, 0x0010, 0x001b, 0x001d, 0x0201, 0x0702, 0x0001, 0x0013,
823 0x0004, 0x0006, 0x0007, 0x0008, 0x000a, 0x000b, 0x000c, 0x0200,
824 0x0007, 0x0000, 0x0700, 0x001c, 0x001a, 0x0018, 0x0003, 0x0016,
825 0x0002, 0x000e, 0x000d, 0x0200, 0x020e, 0x007f, 0x0700, 0x030c,
826 0x0703, 0x0000, 0x0207, 0x0100, 0x0101, 0x0102, 0x0103, 0x0104,
827 0x0105, 0x0106, 0x0107, 0x0108, 0x0109, 0x0208, 0x0204, 0x0307,
828 0x0308, 0x0309, 0x030b, 0x0304, 0x0305, 0x0306, 0x030a, 0x0301,
829 0x0302, 0x0303, 0x0300, 0x0310, 0x0206, 0x0200, 0x0200, 0x010a,
830 0x010b, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200,
831 0x030e, 0x0702, 0x030d, 0x001c, 0x0701, 0x0205, 0x0114, 0x0603,
832 0x0118, 0x0601, 0x0602, 0x0117, 0x0600, 0x0119, 0x0115, 0x0116,
833 0x011a, 0x010c, 0x010d, 0x011b, 0x011c, 0x0110, 0x0311, 0x011d,
834 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200, 0x0200,
835 };
836
837 const u_short * const linux_keytabs[] = {
838 plain_map, shift_map, altgr_map, altgr_map, ctrl_map
839 };
840 #endif
841
842 static struct biosdisk_info *
843 fd2biosinfo(p, fp)
844 struct proc *p;
845 struct file *fp;
846 {
847 struct vnode *vp;
848 const char *blkname;
849 char diskname[16];
850 int i;
851 struct nativedisk_info *nip;
852 struct disklist *dl = x86_alldisks;
853
854 if (fp->f_type != DTYPE_VNODE)
855 return NULL;
856 vp = (struct vnode *)fp->f_data;
857
858 if (vp->v_type != VBLK)
859 return NULL;
860
861 blkname = devsw_blk2name(major(vp->v_rdev));
862 snprintf(diskname, sizeof diskname, "%s%u", blkname,
863 DISKUNIT(vp->v_rdev));
864
865 for (i = 0; i < dl->dl_nnativedisks; i++) {
866 nip = &dl->dl_nativedisks[i];
867 if (strcmp(diskname, nip->ni_devname))
868 continue;
869 if (nip->ni_nmatches != 0)
870 return &dl->dl_biosdisks[nip->ni_biosmatches[0]];
871 }
872
873 return NULL;
874 }
875
876
877 /*
878 * We come here in a last attempt to satisfy a Linux ioctl() call
879 */
880 int
881 linux_machdepioctl(l, v, retval)
882 struct lwp *l;
883 void *v;
884 register_t *retval;
885 {
886 struct linux_sys_ioctl_args /* {
887 syscallarg(int) fd;
888 syscallarg(u_long) com;
889 syscallarg(caddr_t) data;
890 } */ *uap = v;
891 struct sys_ioctl_args bia;
892 u_long com;
893 int error, error1;
894 #if (NWSDISPLAY > 0)
895 struct vt_mode lvt;
896 caddr_t bvtp, sg;
897 struct kbentry kbe;
898 #endif
899 struct linux_hd_geometry hdg;
900 struct linux_hd_big_geometry hdg_big;
901 struct biosdisk_info *bip;
902 struct filedesc *fdp;
903 struct file *fp;
904 int fd;
905 struct disklabel label, *labp;
906 struct partinfo partp;
907 int (*ioctlf)(struct file *, u_long, void *, struct lwp *);
908 u_long start, biostotal, realtotal;
909 u_char heads, sectors;
910 u_int cylinders;
911 struct ioctl_pt pt;
912 struct proc *p = l->l_proc;
913
914 fd = SCARG(uap, fd);
915 SCARG(&bia, fd) = fd;
916 SCARG(&bia, data) = SCARG(uap, data);
917 com = SCARG(uap, com);
918
919 fdp = p->p_fd;
920
921 if ((fp = fd_getfile(fdp, fd)) == NULL)
922 return (EBADF);
923
924 FILE_USE(fp);
925
926 switch (com) {
927 #if (NWSDISPLAY > 0)
928 case LINUX_KDGKBMODE:
929 com = KDGKBMODE;
930 break;
931 case LINUX_KDSKBMODE:
932 com = KDSKBMODE;
933 if ((unsigned)SCARG(uap, data) == LINUX_K_MEDIUMRAW)
934 SCARG(&bia, data) = (caddr_t)K_RAW;
935 break;
936 case LINUX_KIOCSOUND:
937 SCARG(&bia, data) =
938 (caddr_t)(((unsigned long)SCARG(&bia, data)) & 0xffff);
939 /* fall through */
940 case LINUX_KDMKTONE:
941 com = KDMKTONE;
942 break;
943 case LINUX_KDSETMODE:
944 com = KDSETMODE;
945 break;
946 case LINUX_KDGETMODE:
947 /* KD_* values are equal to the wscons numbers */
948 com = WSDISPLAYIO_GMODE;
949 break;
950 case LINUX_KDENABIO:
951 com = KDENABIO;
952 break;
953 case LINUX_KDDISABIO:
954 com = KDDISABIO;
955 break;
956 case LINUX_KDGETLED:
957 com = KDGETLED;
958 break;
959 case LINUX_KDSETLED:
960 com = KDSETLED;
961 break;
962 case LINUX_VT_OPENQRY:
963 com = VT_OPENQRY;
964 break;
965 case LINUX_VT_GETMODE:
966 SCARG(&bia, com) = VT_GETMODE;
967 /* XXX NJWLWP */
968 if ((error = sys_ioctl(curlwp, &bia, retval)))
969 goto out;
970 if ((error = copyin(SCARG(uap, data), (caddr_t)&lvt,
971 sizeof (struct vt_mode))))
972 goto out;
973 lvt.relsig = native_to_linux_signo[lvt.relsig];
974 lvt.acqsig = native_to_linux_signo[lvt.acqsig];
975 lvt.frsig = native_to_linux_signo[lvt.frsig];
976 error = copyout((caddr_t)&lvt, SCARG(uap, data),
977 sizeof (struct vt_mode));
978 goto out;
979 case LINUX_VT_SETMODE:
980 com = VT_SETMODE;
981 if ((error = copyin(SCARG(uap, data), (caddr_t)&lvt,
982 sizeof (struct vt_mode))))
983 goto out;
984 lvt.relsig = linux_to_native_signo[lvt.relsig];
985 lvt.acqsig = linux_to_native_signo[lvt.acqsig];
986 lvt.frsig = linux_to_native_signo[lvt.frsig];
987 sg = stackgap_init(p, 0);
988 bvtp = stackgap_alloc(p, &sg, sizeof (struct vt_mode));
989 if ((error = copyout(&lvt, bvtp, sizeof (struct vt_mode))))
990 goto out;
991 SCARG(&bia, data) = bvtp;
992 break;
993 case LINUX_VT_DISALLOCATE:
994 /* XXX should use WSDISPLAYIO_DELSCREEN */
995 error = 0;
996 goto out;
997 case LINUX_VT_RELDISP:
998 com = VT_RELDISP;
999 break;
1000 case LINUX_VT_ACTIVATE:
1001 com = VT_ACTIVATE;
1002 break;
1003 case LINUX_VT_WAITACTIVE:
1004 com = VT_WAITACTIVE;
1005 break;
1006 case LINUX_VT_GETSTATE:
1007 com = VT_GETSTATE;
1008 break;
1009 case LINUX_KDGKBTYPE:
1010 {
1011 static const u_int8_t kb101 = KB_101;
1012
1013 /* This is what Linux does. */
1014 error = copyout(&kb101, SCARG(uap, data), 1);
1015 goto out;
1016 }
1017 case LINUX_KDGKBENT:
1018 /*
1019 * The Linux KDGKBENT ioctl is different from the
1020 * SYSV original. So we handle it in machdep code.
1021 * XXX We should use keyboard mapping information
1022 * from wsdisplay, but this would be expensive.
1023 */
1024 if ((error = copyin(SCARG(uap, data), &kbe,
1025 sizeof(struct kbentry))))
1026 goto out;
1027 if (kbe.kb_table >= sizeof(linux_keytabs) / sizeof(u_short *)
1028 || kbe.kb_index >= NR_KEYS) {
1029 error = EINVAL;
1030 goto out;
1031 }
1032 kbe.kb_value = linux_keytabs[kbe.kb_table][kbe.kb_index];
1033 error = copyout(&kbe, SCARG(uap, data),
1034 sizeof(struct kbentry));
1035 goto out;
1036 #endif
1037 case LINUX_HDIO_GETGEO:
1038 case LINUX_HDIO_GETGEO_BIG:
1039 /*
1040 * Try to mimic Linux behaviour: return the BIOS geometry
1041 * if possible (extending its # of cylinders if it's beyond
1042 * the 1023 limit), fall back to the MI geometry (i.e.
1043 * the real geometry) if not found, by returning an
1044 * error. See common/linux_hdio.c
1045 */
1046 bip = fd2biosinfo(p, fp);
1047 ioctlf = fp->f_ops->fo_ioctl;
1048 error = ioctlf(fp, DIOCGDEFLABEL, (caddr_t)&label, l);
1049 error1 = ioctlf(fp, DIOCGPART, (caddr_t)&partp, l);
1050 if (error != 0 && error1 != 0) {
1051 error = error1;
1052 goto out;
1053 }
1054 labp = error != 0 ? &label : partp.disklab;
1055 start = error1 != 0 ? partp.part->p_offset : 0;
1056 if (bip != NULL && bip->bi_head != 0 && bip->bi_sec != 0
1057 && bip->bi_cyl != 0) {
1058 heads = bip->bi_head;
1059 sectors = bip->bi_sec;
1060 cylinders = bip->bi_cyl;
1061 biostotal = heads * sectors * cylinders;
1062 realtotal = labp->d_ntracks * labp->d_nsectors *
1063 labp->d_ncylinders;
1064 if (realtotal > biostotal)
1065 cylinders = realtotal / (heads * sectors);
1066 } else {
1067 heads = labp->d_ntracks;
1068 cylinders = labp->d_ncylinders;
1069 sectors = labp->d_nsectors;
1070 }
1071 if (com == LINUX_HDIO_GETGEO) {
1072 hdg.start = start;
1073 hdg.heads = heads;
1074 hdg.cylinders = cylinders;
1075 hdg.sectors = sectors;
1076 error = copyout(&hdg, SCARG(uap, data), sizeof hdg);
1077 goto out;
1078 } else {
1079 hdg_big.start = start;
1080 hdg_big.heads = heads;
1081 hdg_big.cylinders = cylinders;
1082 hdg_big.sectors = sectors;
1083 error = copyout(&hdg_big, SCARG(uap, data),
1084 sizeof hdg_big);
1085 goto out;
1086 }
1087
1088 default:
1089 /*
1090 * Unknown to us. If it's on a device, just pass it through
1091 * using PTIOCLINUX, the device itself might be able to
1092 * make some sense of it.
1093 * XXX hack: if the function returns EJUSTRETURN,
1094 * it has stuffed a sysctl return value in pt.data.
1095 */
1096 FILE_USE(fp);
1097 ioctlf = fp->f_ops->fo_ioctl;
1098 pt.com = SCARG(uap, com);
1099 pt.data = SCARG(uap, data);
1100 error = ioctlf(fp, PTIOCLINUX, (caddr_t)&pt, l);
1101 FILE_UNUSE(fp, l);
1102 if (error == EJUSTRETURN) {
1103 retval[0] = (register_t)pt.data;
1104 error = 0;
1105 }
1106
1107 if (error == ENOTTY)
1108 DPRINTF(("linux_machdepioctl: invalid ioctl %08lx\n",
1109 com));
1110 goto out;
1111 }
1112 SCARG(&bia, com) = com;
1113 /* XXX NJWLWP */
1114 error = sys_ioctl(curlwp, &bia, retval);
1115 out:
1116 FILE_UNUSE(fp ,l);
1117 return error;
1118 }
1119
1120 /*
1121 * Set I/O permissions for a process. Just set the maximum level
1122 * right away (ignoring the argument), otherwise we would have
1123 * to rely on I/O permission maps, which are not implemented.
1124 */
1125 int
1126 linux_sys_iopl(l, v, retval)
1127 struct lwp *l;
1128 void *v;
1129 register_t *retval;
1130 {
1131 #if 0
1132 struct linux_sys_iopl_args /* {
1133 syscallarg(int) level;
1134 } */ *uap = v;
1135 #endif
1136 struct proc *p = l->l_proc;
1137 struct trapframe *fp = l->l_md.md_regs;
1138
1139 if (suser(p->p_ucred, &p->p_acflag) != 0)
1140 return EPERM;
1141 fp->tf_eflags |= PSL_IOPL;
1142 *retval = 0;
1143 return 0;
1144 }
1145
1146 /*
1147 * See above. If a root process tries to set access to an I/O port,
1148 * just let it have the whole range.
1149 */
1150 int
1151 linux_sys_ioperm(l, v, retval)
1152 struct lwp *l;
1153 void *v;
1154 register_t *retval;
1155 {
1156 struct linux_sys_ioperm_args /* {
1157 syscallarg(unsigned int) lo;
1158 syscallarg(unsigned int) hi;
1159 syscallarg(int) val;
1160 } */ *uap = v;
1161 struct proc *p = l->l_proc;
1162 struct trapframe *fp = l->l_md.md_regs;
1163
1164 if (suser(p->p_ucred, &p->p_acflag) != 0)
1165 return EPERM;
1166 if (SCARG(uap, val))
1167 fp->tf_eflags |= PSL_IOPL;
1168 *retval = 0;
1169 return 0;
1170 }
1171