sys_machdep.c revision 1.22 1 1.22 rmind /* $NetBSD: sys_machdep.c,v 1.22 2009/11/21 03:11:02 rmind Exp $ */
2 1.1 ad
3 1.1 ad /*-
4 1.17 ad * Copyright (c) 1998, 2007, 2009 The NetBSD Foundation, Inc.
5 1.1 ad * All rights reserved.
6 1.1 ad *
7 1.1 ad * This code is derived from software contributed to The NetBSD Foundation
8 1.1 ad * by Charles M. Hannum, and by Andrew Doran.
9 1.1 ad *
10 1.1 ad * Redistribution and use in source and binary forms, with or without
11 1.1 ad * modification, are permitted provided that the following conditions
12 1.1 ad * are met:
13 1.1 ad * 1. Redistributions of source code must retain the above copyright
14 1.1 ad * notice, this list of conditions and the following disclaimer.
15 1.1 ad * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 ad * notice, this list of conditions and the following disclaimer in the
17 1.1 ad * documentation and/or other materials provided with the distribution.
18 1.1 ad *
19 1.1 ad * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.1 ad * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.1 ad * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.1 ad * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.1 ad * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.1 ad * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.1 ad * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.1 ad * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.1 ad * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.1 ad * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.1 ad * POSSIBILITY OF SUCH DAMAGE.
30 1.1 ad */
31 1.1 ad
32 1.1 ad #include <sys/cdefs.h>
33 1.22 rmind __KERNEL_RCSID(0, "$NetBSD: sys_machdep.c,v 1.22 2009/11/21 03:11:02 rmind Exp $");
34 1.1 ad
35 1.1 ad #include "opt_mtrr.h"
36 1.1 ad #include "opt_perfctrs.h"
37 1.1 ad #include "opt_user_ldt.h"
38 1.1 ad #include "opt_vm86.h"
39 1.1 ad #include "opt_xen.h"
40 1.1 ad
41 1.1 ad #include <sys/param.h>
42 1.1 ad #include <sys/systm.h>
43 1.1 ad #include <sys/ioctl.h>
44 1.1 ad #include <sys/file.h>
45 1.1 ad #include <sys/time.h>
46 1.1 ad #include <sys/proc.h>
47 1.1 ad #include <sys/uio.h>
48 1.1 ad #include <sys/kernel.h>
49 1.1 ad #include <sys/buf.h>
50 1.1 ad #include <sys/signal.h>
51 1.1 ad #include <sys/malloc.h>
52 1.9 yamt #include <sys/kmem.h>
53 1.1 ad #include <sys/kauth.h>
54 1.17 ad #include <sys/cpu.h>
55 1.1 ad #include <sys/mount.h>
56 1.1 ad #include <sys/syscallargs.h>
57 1.1 ad
58 1.1 ad #include <uvm/uvm_extern.h>
59 1.1 ad
60 1.1 ad #include <machine/cpufunc.h>
61 1.1 ad #include <machine/gdt.h>
62 1.1 ad #include <machine/psl.h>
63 1.1 ad #include <machine/reg.h>
64 1.1 ad #include <machine/sysarch.h>
65 1.1 ad #include <machine/mtrr.h>
66 1.1 ad
67 1.1 ad #ifdef __x86_64__
68 1.1 ad /* Need to be checked. */
69 1.1 ad #undef USER_LDT
70 1.1 ad #undef PERFCTRS
71 1.1 ad #undef VM86
72 1.1 ad #undef IOPERM
73 1.1 ad #else
74 1.9 yamt #if defined(XEN)
75 1.9 yamt #undef IOPERM
76 1.9 yamt #else /* defined(XEN) */
77 1.1 ad #define IOPERM
78 1.9 yamt #endif /* defined(XEN) */
79 1.1 ad #endif
80 1.1 ad
81 1.1 ad #ifdef VM86
82 1.1 ad #include <machine/vm86.h>
83 1.1 ad #endif
84 1.1 ad
85 1.1 ad #ifdef PERFCTRS
86 1.1 ad #include <machine/pmc.h>
87 1.1 ad #endif
88 1.1 ad
89 1.1 ad extern struct vm_map *kernel_map;
90 1.1 ad
91 1.1 ad int x86_get_ioperm(struct lwp *, void *, register_t *);
92 1.1 ad int x86_set_ioperm(struct lwp *, void *, register_t *);
93 1.1 ad int x86_get_mtrr(struct lwp *, void *, register_t *);
94 1.1 ad int x86_set_mtrr(struct lwp *, void *, register_t *);
95 1.18 ad int x86_set_sdbase(void *, char, lwp_t *, bool);
96 1.18 ad int x86_get_sdbase(void *, char);
97 1.1 ad
98 1.1 ad #ifdef LDT_DEBUG
99 1.1 ad static void x86_print_ldt(int, const struct segment_descriptor *);
100 1.1 ad
101 1.1 ad static void
102 1.1 ad x86_print_ldt(int i, const struct segment_descriptor *d)
103 1.1 ad {
104 1.1 ad printf("[%d] lolimit=0x%x, lobase=0x%x, type=%u, dpl=%u, p=%u, "
105 1.1 ad "hilimit=0x%x, xx=%x, def32=%u, gran=%u, hibase=0x%x\n",
106 1.1 ad i, d->sd_lolimit, d->sd_lobase, d->sd_type, d->sd_dpl, d->sd_p,
107 1.1 ad d->sd_hilimit, d->sd_xx, d->sd_def32, d->sd_gran, d->sd_hibase);
108 1.1 ad }
109 1.1 ad #endif
110 1.1 ad
111 1.1 ad int
112 1.1 ad x86_get_ldt(struct lwp *l, void *args, register_t *retval)
113 1.1 ad {
114 1.2 dsl #ifndef USER_LDT
115 1.2 dsl return EINVAL;
116 1.2 dsl #else
117 1.2 dsl struct x86_get_ldt_args ua;
118 1.2 dsl union descriptor *cp;
119 1.2 dsl int error;
120 1.2 dsl
121 1.2 dsl if ((error = copyin(args, &ua, sizeof(ua))) != 0)
122 1.2 dsl return error;
123 1.2 dsl
124 1.2 dsl if (ua.num < 0 || ua.num > 8192)
125 1.2 dsl return EINVAL;
126 1.2 dsl
127 1.2 dsl cp = malloc(ua.num * sizeof(union descriptor), M_TEMP, M_WAITOK);
128 1.2 dsl if (cp == NULL)
129 1.2 dsl return ENOMEM;
130 1.2 dsl
131 1.2 dsl error = x86_get_ldt1(l, &ua, cp);
132 1.2 dsl *retval = ua.num;
133 1.2 dsl if (error == 0)
134 1.2 dsl error = copyout(cp, ua.desc, ua.num * sizeof(*cp));
135 1.2 dsl
136 1.2 dsl free(cp, M_TEMP);
137 1.2 dsl return error;
138 1.2 dsl #endif
139 1.2 dsl }
140 1.2 dsl
141 1.2 dsl int
142 1.2 dsl x86_get_ldt1(struct lwp *l, struct x86_get_ldt_args *ua, union descriptor *cp)
143 1.2 dsl {
144 1.2 dsl #ifndef USER_LDT
145 1.2 dsl return EINVAL;
146 1.2 dsl #else
147 1.1 ad int error;
148 1.1 ad struct proc *p = l->l_proc;
149 1.1 ad pmap_t pmap = p->p_vmspace->vm_map.pmap;
150 1.1 ad int nldt, num;
151 1.2 dsl union descriptor *lp;
152 1.1 ad
153 1.1 ad error = kauth_authorize_machdep(l->l_cred, KAUTH_MACHDEP_LDT_GET,
154 1.1 ad NULL, NULL, NULL, NULL);
155 1.1 ad if (error)
156 1.1 ad return (error);
157 1.1 ad
158 1.1 ad #ifdef LDT_DEBUG
159 1.2 dsl printf("x86_get_ldt: start=%d num=%d descs=%p\n", ua->start,
160 1.2 dsl ua->num, ua->desc);
161 1.1 ad #endif
162 1.1 ad
163 1.2 dsl if (ua->start < 0 || ua->num < 0 || ua->start > 8192 || ua->num > 8192 ||
164 1.2 dsl ua->start + ua->num > 8192)
165 1.1 ad return (EINVAL);
166 1.1 ad
167 1.17 ad mutex_enter(&cpu_lock);
168 1.1 ad
169 1.17 ad if (pmap->pm_ldt != NULL) {
170 1.17 ad nldt = pmap->pm_ldt_len / sizeof(*lp);
171 1.1 ad lp = pmap->pm_ldt;
172 1.1 ad } else {
173 1.1 ad nldt = NLDT;
174 1.1 ad lp = ldt;
175 1.1 ad }
176 1.1 ad
177 1.2 dsl if (ua->start > nldt) {
178 1.17 ad mutex_exit(&cpu_lock);
179 1.1 ad return (EINVAL);
180 1.1 ad }
181 1.1 ad
182 1.2 dsl lp += ua->start;
183 1.2 dsl num = min(ua->num, nldt - ua->start);
184 1.2 dsl ua->num = num;
185 1.1 ad #ifdef LDT_DEBUG
186 1.1 ad {
187 1.1 ad int i;
188 1.1 ad for (i = 0; i < num; i++)
189 1.1 ad x86_print_ldt(i, &lp[i].sd);
190 1.1 ad }
191 1.1 ad #endif
192 1.1 ad
193 1.1 ad memcpy(cp, lp, num * sizeof(union descriptor));
194 1.17 ad mutex_exit(&cpu_lock);
195 1.1 ad
196 1.2 dsl return 0;
197 1.2 dsl #endif
198 1.2 dsl }
199 1.2 dsl
200 1.2 dsl int
201 1.2 dsl x86_set_ldt(struct lwp *l, void *args, register_t *retval)
202 1.2 dsl {
203 1.2 dsl #ifndef USER_LDT
204 1.2 dsl return EINVAL;
205 1.2 dsl #else
206 1.2 dsl struct x86_set_ldt_args ua;
207 1.2 dsl union descriptor *descv;
208 1.2 dsl int error;
209 1.2 dsl
210 1.2 dsl if ((error = copyin(args, &ua, sizeof(ua))) != 0)
211 1.2 dsl return (error);
212 1.2 dsl
213 1.2 dsl if (ua.num < 0 || ua.num > 8192)
214 1.2 dsl return EINVAL;
215 1.2 dsl
216 1.2 dsl descv = malloc(sizeof (*descv) * ua.num, M_TEMP, M_NOWAIT);
217 1.2 dsl if (descv == NULL)
218 1.2 dsl return ENOMEM;
219 1.2 dsl
220 1.2 dsl error = copyin(ua.desc, descv, sizeof (*descv) * ua.num);
221 1.1 ad if (error == 0)
222 1.2 dsl error = x86_set_ldt1(l, &ua, descv);
223 1.2 dsl *retval = ua.start;
224 1.1 ad
225 1.2 dsl free(descv, M_TEMP);
226 1.2 dsl return error;
227 1.1 ad #endif
228 1.1 ad }
229 1.1 ad
230 1.1 ad int
231 1.2 dsl x86_set_ldt1(struct lwp *l, struct x86_set_ldt_args *ua,
232 1.2 dsl union descriptor *descv)
233 1.1 ad {
234 1.2 dsl #ifndef USER_LDT
235 1.2 dsl return EINVAL;
236 1.2 dsl #else
237 1.17 ad int error, i, n, old_sel, new_sel;
238 1.1 ad struct proc *p = l->l_proc;
239 1.1 ad pmap_t pmap = p->p_vmspace->vm_map.pmap;
240 1.17 ad size_t old_len, new_len;
241 1.17 ad union descriptor *old_ldt, *new_ldt;
242 1.1 ad
243 1.1 ad error = kauth_authorize_machdep(l->l_cred, KAUTH_MACHDEP_LDT_SET,
244 1.1 ad NULL, NULL, NULL, NULL);
245 1.1 ad if (error)
246 1.1 ad return (error);
247 1.1 ad
248 1.2 dsl if (ua->start < 0 || ua->num < 0 || ua->start > 8192 || ua->num > 8192 ||
249 1.2 dsl ua->start + ua->num > 8192)
250 1.1 ad return (EINVAL);
251 1.1 ad
252 1.1 ad /* Check descriptors for access violations. */
253 1.2 dsl for (i = 0; i < ua->num; i++) {
254 1.1 ad union descriptor *desc = &descv[i];
255 1.1 ad
256 1.1 ad switch (desc->sd.sd_type) {
257 1.1 ad case SDT_SYSNULL:
258 1.1 ad desc->sd.sd_p = 0;
259 1.1 ad break;
260 1.1 ad case SDT_SYS286CGT:
261 1.1 ad case SDT_SYS386CGT:
262 1.1 ad /*
263 1.1 ad * Only allow call gates targeting a segment
264 1.1 ad * in the LDT or a user segment in the fixed
265 1.1 ad * part of the gdt. Segments in the LDT are
266 1.1 ad * constrained (below) to be user segments.
267 1.1 ad */
268 1.1 ad if (desc->gd.gd_p != 0 &&
269 1.1 ad !ISLDT(desc->gd.gd_selector) &&
270 1.1 ad ((IDXSEL(desc->gd.gd_selector) >= NGDT) ||
271 1.1 ad (gdt[IDXSEL(desc->gd.gd_selector)].sd.sd_dpl !=
272 1.1 ad SEL_UPL))) {
273 1.2 dsl return EACCES;
274 1.1 ad }
275 1.1 ad break;
276 1.1 ad case SDT_MEMEC:
277 1.1 ad case SDT_MEMEAC:
278 1.1 ad case SDT_MEMERC:
279 1.1 ad case SDT_MEMERAC:
280 1.1 ad /* Must be "present" if executable and conforming. */
281 1.2 dsl if (desc->sd.sd_p == 0)
282 1.2 dsl return EACCES;
283 1.1 ad break;
284 1.1 ad case SDT_MEMRO:
285 1.1 ad case SDT_MEMROA:
286 1.1 ad case SDT_MEMRW:
287 1.1 ad case SDT_MEMRWA:
288 1.1 ad case SDT_MEMROD:
289 1.1 ad case SDT_MEMRODA:
290 1.1 ad case SDT_MEMRWD:
291 1.1 ad case SDT_MEMRWDA:
292 1.1 ad case SDT_MEME:
293 1.1 ad case SDT_MEMEA:
294 1.1 ad case SDT_MEMER:
295 1.1 ad case SDT_MEMERA:
296 1.1 ad break;
297 1.1 ad default:
298 1.1 ad /*
299 1.1 ad * Make sure that unknown descriptor types are
300 1.1 ad * not marked present.
301 1.1 ad */
302 1.2 dsl if (desc->sd.sd_p != 0)
303 1.2 dsl return EACCES;
304 1.1 ad break;
305 1.1 ad }
306 1.1 ad
307 1.1 ad if (desc->sd.sd_p != 0) {
308 1.1 ad /* Only user (ring-3) descriptors may be present. */
309 1.2 dsl if (desc->sd.sd_dpl != SEL_UPL)
310 1.2 dsl return EACCES;
311 1.1 ad }
312 1.1 ad }
313 1.1 ad
314 1.17 ad /*
315 1.17 ad * Install selected changes. We perform a copy, write, swap dance
316 1.17 ad * here to ensure that all updates happen atomically.
317 1.17 ad */
318 1.17 ad
319 1.17 ad /* Allocate a new LDT. */
320 1.17 ad for (;;) {
321 1.17 ad new_len = (ua->start + ua->num) * sizeof(union descriptor);
322 1.17 ad new_len = max(new_len, pmap->pm_ldt_len);
323 1.17 ad new_len = max(new_len, NLDT * sizeof(union descriptor));
324 1.17 ad new_len = round_page(new_len);
325 1.1 ad new_ldt = (union descriptor *)uvm_km_alloc(kernel_map,
326 1.17 ad new_len, 0, UVM_KMF_WIRED | UVM_KMF_ZERO);
327 1.17 ad mutex_enter(&cpu_lock);
328 1.17 ad if (pmap->pm_ldt_len <= new_len) {
329 1.17 ad break;
330 1.1 ad }
331 1.17 ad mutex_exit(&cpu_lock);
332 1.17 ad uvm_km_free(kernel_map, (vaddr_t)new_ldt, new_len,
333 1.17 ad UVM_KMF_WIRED);
334 1.17 ad }
335 1.1 ad
336 1.17 ad /* Copy existing entries, if any. */
337 1.17 ad if (pmap->pm_ldt != NULL) {
338 1.1 ad old_ldt = pmap->pm_ldt;
339 1.17 ad old_len = pmap->pm_ldt_len;
340 1.17 ad old_sel = pmap->pm_ldt_sel;
341 1.1 ad memcpy(new_ldt, old_ldt, old_len);
342 1.17 ad } else {
343 1.17 ad old_ldt = NULL;
344 1.17 ad old_len = 0;
345 1.17 ad old_sel = -1;
346 1.17 ad memcpy(new_ldt, ldt, NLDT * sizeof(union descriptor));
347 1.17 ad }
348 1.1 ad
349 1.17 ad /* Apply requested changes. */
350 1.17 ad for (i = 0, n = ua->start; i < ua->num; i++, n++) {
351 1.17 ad new_ldt[n] = descv[i];
352 1.17 ad }
353 1.1 ad
354 1.17 ad /* Allocate LDT selector. */
355 1.17 ad new_sel = ldt_alloc(new_ldt, new_len);
356 1.17 ad if (new_sel == -1) {
357 1.17 ad mutex_exit(&cpu_lock);
358 1.1 ad uvm_km_free(kernel_map, (vaddr_t)new_ldt, new_len,
359 1.1 ad UVM_KMF_WIRED);
360 1.17 ad return ENOMEM;
361 1.17 ad }
362 1.17 ad
363 1.17 ad /* All changes are now globally visible. Swap in the new LDT. */
364 1.17 ad pmap->pm_ldt = new_ldt;
365 1.17 ad pmap->pm_ldt_len = new_len;
366 1.17 ad pmap->pm_ldt_sel = new_sel;
367 1.17 ad
368 1.17 ad /* Switch existing users onto new LDT. */
369 1.17 ad pmap_ldt_sync(pmap);
370 1.17 ad
371 1.17 ad /* Free existing LDT (if any). */
372 1.17 ad if (old_ldt != NULL) {
373 1.17 ad ldt_free(old_sel);
374 1.17 ad uvm_km_free(kernel_map, (vaddr_t)old_ldt, old_len,
375 1.1 ad UVM_KMF_WIRED);
376 1.17 ad }
377 1.17 ad mutex_exit(&cpu_lock);
378 1.2 dsl
379 1.17 ad return error;
380 1.1 ad #endif
381 1.1 ad }
382 1.1 ad
383 1.1 ad int
384 1.1 ad x86_iopl(struct lwp *l, void *args, register_t *retval)
385 1.1 ad {
386 1.1 ad int error;
387 1.1 ad struct x86_iopl_args ua;
388 1.1 ad #ifdef XEN
389 1.9 yamt int iopl;
390 1.1 ad #else
391 1.1 ad struct trapframe *tf = l->l_md.md_regs;
392 1.1 ad #endif
393 1.1 ad
394 1.1 ad error = kauth_authorize_machdep(l->l_cred, KAUTH_MACHDEP_IOPL,
395 1.1 ad NULL, NULL, NULL, NULL);
396 1.1 ad if (error)
397 1.1 ad return (error);
398 1.1 ad
399 1.1 ad if ((error = copyin(args, &ua, sizeof(ua))) != 0)
400 1.1 ad return error;
401 1.1 ad
402 1.1 ad #ifdef XEN
403 1.9 yamt if (ua.iopl)
404 1.9 yamt iopl = SEL_UPL;
405 1.9 yamt else
406 1.9 yamt iopl = SEL_KPL;
407 1.22 rmind
408 1.22 rmind {
409 1.22 rmind struct physdev_op physop;
410 1.22 rmind struct pcb *pcb;
411 1.22 rmind
412 1.22 rmind pcb = lwp_getpcb(l);
413 1.22 rmind pcb->pcb_iopl = iopl;
414 1.22 rmind
415 1.1 ad /* Force the change at ring 0. */
416 1.22 rmind physop.cmd = PHYSDEVOP_SET_IOPL;
417 1.22 rmind physop.u.set_iopl.iopl = iopl;
418 1.22 rmind HYPERVISOR_physdev_op(&physop);
419 1.22 rmind }
420 1.1 ad #elif defined(__x86_64__)
421 1.1 ad if (ua.iopl)
422 1.1 ad tf->tf_rflags |= PSL_IOPL;
423 1.1 ad else
424 1.1 ad tf->tf_rflags &= ~PSL_IOPL;
425 1.1 ad #else
426 1.1 ad if (ua.iopl)
427 1.1 ad tf->tf_eflags |= PSL_IOPL;
428 1.1 ad else
429 1.1 ad tf->tf_eflags &= ~PSL_IOPL;
430 1.1 ad #endif
431 1.1 ad
432 1.1 ad return 0;
433 1.1 ad }
434 1.1 ad
435 1.1 ad int
436 1.1 ad x86_get_ioperm(struct lwp *l, void *args, register_t *retval)
437 1.1 ad {
438 1.1 ad #ifdef IOPERM
439 1.1 ad int error;
440 1.22 rmind struct pcb *pcb = lwp_getpcb(l);
441 1.1 ad struct x86_get_ioperm_args ua;
442 1.9 yamt void *dummymap = NULL;
443 1.9 yamt void *iomap;
444 1.1 ad
445 1.1 ad error = kauth_authorize_machdep(l->l_cred, KAUTH_MACHDEP_IOPERM_GET,
446 1.1 ad NULL, NULL, NULL, NULL);
447 1.1 ad if (error)
448 1.1 ad return (error);
449 1.1 ad
450 1.1 ad if ((error = copyin(args, &ua, sizeof(ua))) != 0)
451 1.1 ad return (error);
452 1.1 ad
453 1.9 yamt iomap = pcb->pcb_iomap;
454 1.9 yamt if (iomap == NULL) {
455 1.9 yamt iomap = dummymap = kmem_alloc(IOMAPSIZE, KM_SLEEP);
456 1.9 yamt memset(dummymap, 0xff, IOMAPSIZE);
457 1.9 yamt }
458 1.9 yamt error = copyout(iomap, ua.iomap, IOMAPSIZE);
459 1.9 yamt if (dummymap != NULL) {
460 1.9 yamt kmem_free(dummymap, IOMAPSIZE);
461 1.9 yamt }
462 1.9 yamt return error;
463 1.1 ad #else
464 1.1 ad return EINVAL;
465 1.1 ad #endif
466 1.1 ad }
467 1.1 ad
468 1.1 ad int
469 1.1 ad x86_set_ioperm(struct lwp *l, void *args, register_t *retval)
470 1.1 ad {
471 1.1 ad #ifdef IOPERM
472 1.9 yamt struct cpu_info *ci;
473 1.1 ad int error;
474 1.22 rmind struct pcb *pcb = lwp_getpcb(l);
475 1.1 ad struct x86_set_ioperm_args ua;
476 1.9 yamt void *new;
477 1.9 yamt void *old;
478 1.1 ad
479 1.1 ad error = kauth_authorize_machdep(l->l_cred, KAUTH_MACHDEP_IOPERM_SET,
480 1.1 ad NULL, NULL, NULL, NULL);
481 1.1 ad if (error)
482 1.1 ad return (error);
483 1.1 ad
484 1.1 ad if ((error = copyin(args, &ua, sizeof(ua))) != 0)
485 1.1 ad return (error);
486 1.1 ad
487 1.9 yamt new = kmem_alloc(IOMAPSIZE, KM_SLEEP);
488 1.9 yamt error = copyin(ua.iomap, new, IOMAPSIZE);
489 1.9 yamt if (error) {
490 1.9 yamt kmem_free(new, IOMAPSIZE);
491 1.9 yamt return error;
492 1.9 yamt }
493 1.9 yamt old = pcb->pcb_iomap;
494 1.9 yamt pcb->pcb_iomap = new;
495 1.9 yamt if (old != NULL) {
496 1.9 yamt kmem_free(old, IOMAPSIZE);
497 1.9 yamt }
498 1.9 yamt
499 1.13 ad kpreempt_disable();
500 1.9 yamt ci = curcpu();
501 1.9 yamt memcpy(ci->ci_iomap, pcb->pcb_iomap, sizeof(ci->ci_iomap));
502 1.9 yamt ci->ci_tss.tss_iobase =
503 1.9 yamt ((uintptr_t)ci->ci_iomap - (uintptr_t)&ci->ci_tss) << 16;
504 1.13 ad kpreempt_enable();
505 1.9 yamt
506 1.9 yamt return error;
507 1.1 ad #else
508 1.1 ad return EINVAL;
509 1.1 ad #endif
510 1.1 ad }
511 1.1 ad
512 1.1 ad int
513 1.1 ad x86_get_mtrr(struct lwp *l, void *args, register_t *retval)
514 1.1 ad {
515 1.1 ad #ifdef MTRR
516 1.1 ad struct x86_get_mtrr_args ua;
517 1.1 ad int error, n;
518 1.1 ad
519 1.1 ad if (mtrr_funcs == NULL)
520 1.1 ad return ENOSYS;
521 1.1 ad
522 1.1 ad error = kauth_authorize_machdep(l->l_cred, KAUTH_MACHDEP_MTRR_GET,
523 1.1 ad NULL, NULL, NULL, NULL);
524 1.1 ad if (error)
525 1.1 ad return (error);
526 1.1 ad
527 1.1 ad error = copyin(args, &ua, sizeof ua);
528 1.1 ad if (error != 0)
529 1.1 ad return error;
530 1.1 ad
531 1.1 ad error = copyin(ua.n, &n, sizeof n);
532 1.1 ad if (error != 0)
533 1.1 ad return error;
534 1.1 ad
535 1.12 ad KERNEL_LOCK(1, NULL);
536 1.1 ad error = mtrr_get(ua.mtrrp, &n, l->l_proc, MTRR_GETSET_USER);
537 1.12 ad KERNEL_UNLOCK_ONE(NULL);
538 1.1 ad
539 1.1 ad copyout(&n, ua.n, sizeof (int));
540 1.1 ad
541 1.1 ad return error;
542 1.1 ad #else
543 1.1 ad return EINVAL;
544 1.1 ad #endif
545 1.1 ad }
546 1.1 ad
547 1.1 ad int
548 1.1 ad x86_set_mtrr(struct lwp *l, void *args, register_t *retval)
549 1.1 ad {
550 1.1 ad #ifdef MTRR
551 1.1 ad int error, n;
552 1.1 ad struct x86_set_mtrr_args ua;
553 1.1 ad
554 1.1 ad if (mtrr_funcs == NULL)
555 1.1 ad return ENOSYS;
556 1.1 ad
557 1.1 ad error = kauth_authorize_machdep(l->l_cred, KAUTH_MACHDEP_MTRR_SET,
558 1.1 ad NULL, NULL, NULL, NULL);
559 1.1 ad if (error)
560 1.1 ad return (error);
561 1.1 ad
562 1.1 ad error = copyin(args, &ua, sizeof ua);
563 1.1 ad if (error != 0)
564 1.1 ad return error;
565 1.1 ad
566 1.1 ad error = copyin(ua.n, &n, sizeof n);
567 1.1 ad if (error != 0)
568 1.1 ad return error;
569 1.1 ad
570 1.12 ad KERNEL_LOCK(1, NULL);
571 1.1 ad error = mtrr_set(ua.mtrrp, &n, l->l_proc, MTRR_GETSET_USER);
572 1.1 ad if (n != 0)
573 1.1 ad mtrr_commit();
574 1.12 ad KERNEL_UNLOCK_ONE(NULL);
575 1.1 ad
576 1.1 ad copyout(&n, ua.n, sizeof n);
577 1.1 ad
578 1.1 ad return error;
579 1.1 ad #else
580 1.1 ad return EINVAL;
581 1.1 ad #endif
582 1.1 ad }
583 1.1 ad
584 1.1 ad int
585 1.18 ad x86_set_sdbase(void *arg, char which, lwp_t *l, bool direct)
586 1.5 ad {
587 1.5 ad #ifdef i386
588 1.19 bouyer union descriptor usd;
589 1.18 ad struct pcb *pcb;
590 1.5 ad vaddr_t base;
591 1.6 ad int error;
592 1.5 ad
593 1.18 ad if (direct) {
594 1.18 ad base = (vaddr_t)arg;
595 1.18 ad } else {
596 1.18 ad error = copyin(arg, &base, sizeof(base));
597 1.18 ad if (error != 0)
598 1.18 ad return error;
599 1.18 ad }
600 1.5 ad
601 1.19 bouyer usd.sd.sd_lobase = base & 0xffffff;
602 1.19 bouyer usd.sd.sd_hibase = (base >> 24) & 0xff;
603 1.19 bouyer usd.sd.sd_lolimit = 0xffff;
604 1.19 bouyer usd.sd.sd_hilimit = 0xf;
605 1.19 bouyer usd.sd.sd_type = SDT_MEMRWA;
606 1.19 bouyer usd.sd.sd_dpl = SEL_UPL;
607 1.19 bouyer usd.sd.sd_p = 1;
608 1.19 bouyer usd.sd.sd_xx = 0;
609 1.19 bouyer usd.sd.sd_def32 = 1;
610 1.19 bouyer usd.sd.sd_gran = 1;
611 1.6 ad
612 1.13 ad kpreempt_disable();
613 1.22 rmind pcb = lwp_getpcb(l);
614 1.6 ad if (which == 'f') {
615 1.19 bouyer memcpy(&pcb->pcb_fsd, &usd.sd,
616 1.19 bouyer sizeof(struct segment_descriptor));
617 1.18 ad if (l == curlwp) {
618 1.19 bouyer update_descriptor(&curcpu()->ci_gdt[GUFS_SEL], &usd);
619 1.18 ad }
620 1.6 ad } else /* which == 'g' */ {
621 1.19 bouyer memcpy(&pcb->pcb_gsd, &usd.sd,
622 1.19 bouyer sizeof(struct segment_descriptor));
623 1.18 ad if (l == curlwp) {
624 1.19 bouyer update_descriptor(&curcpu()->ci_gdt[GUGS_SEL], &usd);
625 1.18 ad }
626 1.6 ad }
627 1.13 ad kpreempt_enable();
628 1.5 ad
629 1.5 ad return 0;
630 1.5 ad #else
631 1.5 ad return EINVAL;
632 1.5 ad #endif
633 1.5 ad }
634 1.5 ad
635 1.5 ad int
636 1.5 ad x86_get_sdbase(void *arg, char which)
637 1.5 ad {
638 1.5 ad #ifdef i386
639 1.5 ad struct segment_descriptor *sd;
640 1.5 ad vaddr_t base;
641 1.5 ad
642 1.5 ad switch (which) {
643 1.5 ad case 'f':
644 1.6 ad sd = (struct segment_descriptor *)&curpcb->pcb_fsd;
645 1.5 ad break;
646 1.5 ad case 'g':
647 1.6 ad sd = (struct segment_descriptor *)&curpcb->pcb_gsd;
648 1.5 ad break;
649 1.5 ad default:
650 1.5 ad panic("x86_get_sdbase");
651 1.5 ad }
652 1.5 ad
653 1.5 ad base = sd->sd_hibase << 24 | sd->sd_lobase;
654 1.21 yamt return copyout(&base, arg, sizeof(base));
655 1.5 ad #else
656 1.5 ad return EINVAL;
657 1.5 ad #endif
658 1.5 ad }
659 1.5 ad
660 1.5 ad int
661 1.8 dsl sys_sysarch(struct lwp *l, const struct sys_sysarch_args *uap, register_t *retval)
662 1.1 ad {
663 1.8 dsl /* {
664 1.1 ad syscallarg(int) op;
665 1.1 ad syscallarg(void *) parms;
666 1.8 dsl } */
667 1.1 ad int error = 0;
668 1.1 ad
669 1.1 ad switch(SCARG(uap, op)) {
670 1.1 ad case X86_IOPL:
671 1.1 ad error = x86_iopl(l, SCARG(uap, parms), retval);
672 1.1 ad break;
673 1.1 ad
674 1.1 ad case X86_GET_LDT:
675 1.1 ad error = x86_get_ldt(l, SCARG(uap, parms), retval);
676 1.1 ad break;
677 1.1 ad
678 1.1 ad case X86_SET_LDT:
679 1.1 ad error = x86_set_ldt(l, SCARG(uap, parms), retval);
680 1.1 ad break;
681 1.1 ad
682 1.1 ad case X86_GET_IOPERM:
683 1.1 ad error = x86_get_ioperm(l, SCARG(uap, parms), retval);
684 1.1 ad break;
685 1.1 ad
686 1.1 ad case X86_SET_IOPERM:
687 1.1 ad error = x86_set_ioperm(l, SCARG(uap, parms), retval);
688 1.1 ad break;
689 1.1 ad
690 1.1 ad case X86_GET_MTRR:
691 1.1 ad error = x86_get_mtrr(l, SCARG(uap, parms), retval);
692 1.1 ad break;
693 1.1 ad case X86_SET_MTRR:
694 1.1 ad error = x86_set_mtrr(l, SCARG(uap, parms), retval);
695 1.1 ad break;
696 1.1 ad
697 1.1 ad #ifdef VM86
698 1.1 ad case X86_VM86:
699 1.1 ad error = x86_vm86(l, SCARG(uap, parms), retval);
700 1.1 ad break;
701 1.1 ad case X86_OLD_VM86:
702 1.1 ad error = compat_16_x86_vm86(l, SCARG(uap, parms), retval);
703 1.1 ad break;
704 1.1 ad #endif
705 1.1 ad
706 1.1 ad #ifdef PERFCTRS
707 1.1 ad case X86_PMC_INFO:
708 1.12 ad KERNEL_LOCK(1, NULL);
709 1.1 ad error = pmc_info(l, SCARG(uap, parms), retval);
710 1.12 ad KERNEL_UNLOCK_ONE(NULL);
711 1.1 ad break;
712 1.1 ad
713 1.1 ad case X86_PMC_STARTSTOP:
714 1.12 ad KERNEL_LOCK(1, NULL);
715 1.1 ad error = pmc_startstop(l, SCARG(uap, parms), retval);
716 1.12 ad KERNEL_UNLOCK_ONE(NULL);
717 1.1 ad break;
718 1.1 ad
719 1.1 ad case X86_PMC_READ:
720 1.12 ad KERNEL_LOCK(1, NULL);
721 1.1 ad error = pmc_read(l, SCARG(uap, parms), retval);
722 1.12 ad KERNEL_UNLOCK_ONE(NULL);
723 1.1 ad break;
724 1.1 ad #endif
725 1.1 ad
726 1.5 ad case X86_SET_FSBASE:
727 1.18 ad error = x86_set_sdbase(SCARG(uap, parms), 'f', curlwp, false);
728 1.5 ad break;
729 1.5 ad
730 1.5 ad case X86_SET_GSBASE:
731 1.18 ad error = x86_set_sdbase(SCARG(uap, parms), 'g', curlwp, false);
732 1.5 ad break;
733 1.5 ad
734 1.5 ad case X86_GET_FSBASE:
735 1.5 ad error = x86_get_sdbase(SCARG(uap, parms), 'f');
736 1.5 ad break;
737 1.5 ad
738 1.5 ad case X86_GET_GSBASE:
739 1.5 ad error = x86_get_sdbase(SCARG(uap, parms), 'g');
740 1.5 ad break;
741 1.5 ad
742 1.1 ad default:
743 1.1 ad error = EINVAL;
744 1.1 ad break;
745 1.1 ad }
746 1.1 ad return (error);
747 1.1 ad }
748 1.18 ad
749 1.18 ad int
750 1.18 ad cpu_lwp_setprivate(lwp_t *l, void *addr)
751 1.18 ad {
752 1.18 ad
753 1.18 ad return x86_set_sdbase(addr, 'g', l, true);
754 1.18 ad }
755