1 /*-
2 * Copyright (c) 2010 Isilon Systems, Inc.
3 * Copyright (c) 2010 iX Systems, Inc.
4 * Copyright (c) 2010 Panasas, Inc.
5 * Copyright (c) 2013-2021 Mellanox Technologies, Ltd.
6 * All rights reserved.
7 *
8 * Redistribution and use in source and binary forms, with or without
9 * modification, are permitted provided that the following conditions
10 * are met:
11 * 1. Redistributions of source code must retain the above copyright
12 * notice unmodified, this list of conditions, and the following
13 * disclaimer.
14 * 2. Redistributions in binary form must reproduce the above copyright
15 * notice, this list of conditions and the following disclaimer in the
16 * documentation and/or other materials provided with the distribution.
17 *
18 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
19 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
20 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
21 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
22 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
23 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
24 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
25 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
26 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
27 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
28 */
29
30 #include <sys/cdefs.h>
31 #include "opt_global.h"
32 #include "opt_stack.h"
33
34 #include <sys/param.h>
35 #include <sys/systm.h>
36 #include <sys/malloc.h>
37 #include <sys/kernel.h>
38 #include <sys/sysctl.h>
39 #include <sys/proc.h>
40 #include <sys/sglist.h>
41 #include <sys/sleepqueue.h>
42 #include <sys/refcount.h>
43 #include <sys/lock.h>
44 #include <sys/mutex.h>
45 #include <sys/bus.h>
46 #include <sys/eventhandler.h>
47 #include <sys/fcntl.h>
48 #include <sys/file.h>
49 #include <sys/filio.h>
50 #include <sys/rwlock.h>
51 #include <sys/mman.h>
52 #include <sys/stack.h>
53 #include <sys/stdarg.h>
54 #include <sys/syscall.h>
55 #include <sys/sysent.h>
56 #include <sys/time.h>
57 #include <sys/user.h>
58
59 #include <vm/vm.h>
60 #include <vm/pmap.h>
61 #include <vm/vm_object.h>
62 #include <vm/vm_page.h>
63 #include <vm/vm_pager.h>
64 #include <vm/vm_radix.h>
65
66 #if defined(__i386__) || defined(__amd64__)
67 #include <machine/cputypes.h>
68 #include <machine/md_var.h>
69 #endif
70
71 #include <linux/kobject.h>
72 #include <linux/cpu.h>
73 #include <linux/device.h>
74 #include <linux/slab.h>
75 #include <linux/module.h>
76 #include <linux/moduleparam.h>
77 #include <linux/cdev.h>
78 #include <linux/file.h>
79 #include <linux/fs.h>
80 #include <linux/sysfs.h>
81 #include <linux/mm.h>
82 #include <linux/io.h>
83 #include <linux/vmalloc.h>
84 #include <linux/netdevice.h>
85 #include <linux/timer.h>
86 #include <linux/interrupt.h>
87 #include <linux/uaccess.h>
88 #include <linux/utsname.h>
89 #include <linux/list.h>
90 #include <linux/kthread.h>
91 #include <linux/kernel.h>
92 #include <linux/compat.h>
93 #include <linux/io-mapping.h>
94 #include <linux/poll.h>
95 #include <linux/smp.h>
96 #include <linux/wait_bit.h>
97 #include <linux/rcupdate.h>
98 #include <linux/interval_tree.h>
99 #include <linux/interval_tree_generic.h>
100 #include <linux/printk.h>
101 #include <linux/seq_file.h>
102 #include <linux/uuid.h>
103
104 #if defined(__i386__) || defined(__amd64__)
105 #include <asm/smp.h>
106 #include <asm/processor.h>
107 #endif
108
109 #include <xen/xen.h>
110 #ifdef XENHVM
111 #undef xen_pv_domain
112 #undef xen_initial_domain
113 /* xen/xen-os.h redefines __must_check */
114 #undef __must_check
115 #include <xen/xen-os.h>
116 #endif
117
118 SYSCTL_NODE(_compat, OID_AUTO, linuxkpi, CTLFLAG_RW | CTLFLAG_MPSAFE, 0,
119 "LinuxKPI parameters");
120
121 int linuxkpi_debug;
122 SYSCTL_INT(_compat_linuxkpi, OID_AUTO, debug, CTLFLAG_RWTUN,
123 &linuxkpi_debug, 0, "Set to enable pr_debug() prints. Clear to disable.");
124
125 int linuxkpi_rcu_debug;
126 SYSCTL_INT(_compat_linuxkpi, OID_AUTO, rcu_debug, CTLFLAG_RWTUN,
127 &linuxkpi_rcu_debug, 0, "Set to enable RCU warning. Clear to disable.");
128
129 int linuxkpi_warn_dump_stack = 0;
130 SYSCTL_INT(_compat_linuxkpi, OID_AUTO, warn_dump_stack, CTLFLAG_RWTUN,
131 &linuxkpi_warn_dump_stack, 0,
132 "Set to enable stack traces from WARN_ON(). Clear to disable.");
133
134 static struct timeval lkpi_net_lastlog;
135 static int lkpi_net_curpps;
136 static int lkpi_net_maxpps = 99;
137 SYSCTL_INT(_compat_linuxkpi, OID_AUTO, net_ratelimit, CTLFLAG_RWTUN,
138 &lkpi_net_maxpps, 0, "Limit number of LinuxKPI net messages per second.");
139
140 MALLOC_DEFINE(M_KMALLOC, "lkpikmalloc", "Linux kmalloc compat");
141
142 #include <linux/rbtree.h>
143 /* Undo Linux compat changes. */
144 #undef RB_ROOT
145 #undef file
146 #undef cdev
147 #define RB_ROOT(head) (head)->rbh_root
148
149 static void linux_destroy_dev(struct linux_cdev *);
150 static void linux_cdev_deref(struct linux_cdev *ldev);
151 static struct vm_area_struct *linux_cdev_handle_find(void *handle);
152
153 cpumask_t cpu_online_mask;
154 static cpumask_t **static_single_cpu_mask;
155 static cpumask_t *static_single_cpu_mask_lcs;
156 struct kobject linux_class_root;
157 struct device linux_root_device;
158 struct class linux_class_misc;
159 struct list_head pci_drivers;
160 struct list_head pci_devices;
161 spinlock_t pci_lock;
162 struct uts_namespace init_uts_ns;
163
164 unsigned long linux_timer_hz_mask;
165
166 wait_queue_head_t linux_bit_waitq;
167 wait_queue_head_t linux_var_waitq;
168
169 const guid_t guid_null;
170
171 enum system_states system_state = SYSTEM_RUNNING;
172
173 struct task_struct *
__lkpi_current(void)174 __lkpi_current(void)
175 {
176 struct thread *td;
177
178 td = curthread;
179 linux_set_current(td);
180 return ((struct task_struct *)td->td_lkpi_task);
181 }
182
183 int
panic_cmp(struct rb_node * one,struct rb_node * two)184 panic_cmp(struct rb_node *one, struct rb_node *two)
185 {
186 panic("no cmp");
187 }
188
189 RB_GENERATE(linux_root, rb_node, __entry, panic_cmp);
190
191 #define START(node) ((node)->start)
192 #define LAST(node) ((node)->last)
193
194 INTERVAL_TREE_DEFINE(struct interval_tree_node, rb, unsigned long,, START,
195 LAST,, lkpi_interval_tree)
196
197 static void
linux_device_release(struct device * dev)198 linux_device_release(struct device *dev)
199 {
200 pr_debug("linux_device_release: %s\n", dev_name(dev));
201 kfree(dev);
202 }
203
204 static ssize_t
linux_class_show(struct kobject * kobj,struct attribute * attr,char * buf)205 linux_class_show(struct kobject *kobj, struct attribute *attr, char *buf)
206 {
207 struct class_attribute *dattr;
208 ssize_t error;
209
210 dattr = container_of(attr, struct class_attribute, attr);
211 error = -EIO;
212 if (dattr->show)
213 error = dattr->show(container_of(kobj, struct class, kobj),
214 dattr, buf);
215 return (error);
216 }
217
218 static ssize_t
linux_class_store(struct kobject * kobj,struct attribute * attr,const char * buf,size_t count)219 linux_class_store(struct kobject *kobj, struct attribute *attr, const char *buf,
220 size_t count)
221 {
222 struct class_attribute *dattr;
223 ssize_t error;
224
225 dattr = container_of(attr, struct class_attribute, attr);
226 error = -EIO;
227 if (dattr->store)
228 error = dattr->store(container_of(kobj, struct class, kobj),
229 dattr, buf, count);
230 return (error);
231 }
232
233 static void
linux_class_release(struct kobject * kobj)234 linux_class_release(struct kobject *kobj)
235 {
236 struct class *class;
237
238 class = container_of(kobj, struct class, kobj);
239 if (class->class_release)
240 class->class_release(class);
241 }
242
243 static const struct sysfs_ops linux_class_sysfs = {
244 .show = linux_class_show,
245 .store = linux_class_store,
246 };
247
248 const struct kobj_type linux_class_ktype = {
249 .release = linux_class_release,
250 .sysfs_ops = &linux_class_sysfs
251 };
252
253 static void
linux_dev_release(struct kobject * kobj)254 linux_dev_release(struct kobject *kobj)
255 {
256 struct device *dev;
257
258 dev = container_of(kobj, struct device, kobj);
259 /* This is the precedence defined by linux. */
260 if (dev->release)
261 dev->release(dev);
262 else if (dev->class && dev->class->dev_release)
263 dev->class->dev_release(dev);
264 }
265
266 static ssize_t
linux_dev_show(struct kobject * kobj,struct attribute * attr,char * buf)267 linux_dev_show(struct kobject *kobj, struct attribute *attr, char *buf)
268 {
269 struct device_attribute *dattr;
270 ssize_t error;
271
272 dattr = container_of(attr, struct device_attribute, attr);
273 error = -EIO;
274 if (dattr->show)
275 error = dattr->show(container_of(kobj, struct device, kobj),
276 dattr, buf);
277 return (error);
278 }
279
280 static ssize_t
linux_dev_store(struct kobject * kobj,struct attribute * attr,const char * buf,size_t count)281 linux_dev_store(struct kobject *kobj, struct attribute *attr, const char *buf,
282 size_t count)
283 {
284 struct device_attribute *dattr;
285 ssize_t error;
286
287 dattr = container_of(attr, struct device_attribute, attr);
288 error = -EIO;
289 if (dattr->store)
290 error = dattr->store(container_of(kobj, struct device, kobj),
291 dattr, buf, count);
292 return (error);
293 }
294
295 static const struct sysfs_ops linux_dev_sysfs = {
296 .show = linux_dev_show,
297 .store = linux_dev_store,
298 };
299
300 const struct kobj_type linux_dev_ktype = {
301 .release = linux_dev_release,
302 .sysfs_ops = &linux_dev_sysfs
303 };
304
305 struct device *
device_create(struct class * class,struct device * parent,dev_t devt,void * drvdata,const char * fmt,...)306 device_create(struct class *class, struct device *parent, dev_t devt,
307 void *drvdata, const char *fmt, ...)
308 {
309 struct device *dev;
310 va_list args;
311
312 dev = kzalloc(sizeof(*dev), M_WAITOK);
313 dev->parent = parent;
314 dev->class = class;
315 dev->devt = devt;
316 dev->driver_data = drvdata;
317 dev->release = linux_device_release;
318 va_start(args, fmt);
319 kobject_set_name_vargs(&dev->kobj, fmt, args);
320 va_end(args);
321 device_register(dev);
322
323 return (dev);
324 }
325
326 struct device *
device_create_groups_vargs(struct class * class,struct device * parent,dev_t devt,void * drvdata,const struct attribute_group ** groups,const char * fmt,va_list args)327 device_create_groups_vargs(struct class *class, struct device *parent,
328 dev_t devt, void *drvdata, const struct attribute_group **groups,
329 const char *fmt, va_list args)
330 {
331 struct device *dev = NULL;
332 int retval = -ENODEV;
333
334 if (class == NULL || IS_ERR(class))
335 goto error;
336
337 dev = kzalloc(sizeof(*dev), GFP_KERNEL);
338 if (!dev) {
339 retval = -ENOMEM;
340 goto error;
341 }
342
343 dev->devt = devt;
344 dev->class = class;
345 dev->parent = parent;
346 dev->groups = groups;
347 dev->release = device_create_release;
348 /* device_initialize() needs the class and parent to be set */
349 device_initialize(dev);
350 dev_set_drvdata(dev, drvdata);
351
352 retval = kobject_set_name_vargs(&dev->kobj, fmt, args);
353 if (retval)
354 goto error;
355
356 retval = device_add(dev);
357 if (retval)
358 goto error;
359
360 return dev;
361
362 error:
363 put_device(dev);
364 return ERR_PTR(retval);
365 }
366
367 struct class *
lkpi_class_create(const char * name)368 lkpi_class_create(const char *name)
369 {
370 struct class *class;
371 int error;
372
373 class = kzalloc(sizeof(*class), M_WAITOK);
374 class->name = name;
375 class->class_release = linux_class_kfree;
376 error = class_register(class);
377 if (error) {
378 kfree(class);
379 return (NULL);
380 }
381
382 return (class);
383 }
384
385 static void
linux_kq_lock(void * arg)386 linux_kq_lock(void *arg)
387 {
388 spinlock_t *s = arg;
389
390 spin_lock(s);
391 }
392 static void
linux_kq_unlock(void * arg)393 linux_kq_unlock(void *arg)
394 {
395 spinlock_t *s = arg;
396
397 spin_unlock(s);
398 }
399
400 static void
linux_kq_assert_lock(void * arg,int what)401 linux_kq_assert_lock(void *arg, int what)
402 {
403 #ifdef INVARIANTS
404 spinlock_t *s = arg;
405
406 if (what == LA_LOCKED)
407 mtx_assert(s, MA_OWNED);
408 else
409 mtx_assert(s, MA_NOTOWNED);
410 #endif
411 }
412
413 static void
414 linux_file_kqfilter_poll(struct linux_file *, int);
415
416 struct linux_file *
linux_file_alloc(void)417 linux_file_alloc(void)
418 {
419 struct linux_file *filp;
420
421 filp = kzalloc(sizeof(*filp), GFP_KERNEL);
422
423 /* set initial refcount */
424 filp->f_count = 1;
425
426 /* setup fields needed by kqueue support */
427 spin_lock_init(&filp->f_kqlock);
428 knlist_init(&filp->f_selinfo.si_note, &filp->f_kqlock,
429 linux_kq_lock, linux_kq_unlock, linux_kq_assert_lock);
430
431 return (filp);
432 }
433
434 void
linux_file_free(struct linux_file * filp)435 linux_file_free(struct linux_file *filp)
436 {
437 if (filp->_file == NULL) {
438 if (filp->f_op != NULL && filp->f_op->release != NULL)
439 filp->f_op->release(filp->f_vnode, filp);
440 if (filp->f_shmem != NULL)
441 vm_object_deallocate(filp->f_shmem);
442 kfree_rcu(filp, rcu);
443 } else {
444 /*
445 * The close method of the character device or file
446 * will free the linux_file structure:
447 */
448 _fdrop(filp->_file, curthread);
449 }
450 }
451
452 struct linux_cdev *
cdev_alloc(void)453 cdev_alloc(void)
454 {
455 struct linux_cdev *cdev;
456
457 cdev = kzalloc(sizeof(struct linux_cdev), M_WAITOK);
458 kobject_init(&cdev->kobj, &linux_cdev_ktype);
459 cdev->refs = 1;
460 return (cdev);
461 }
462
463 static int
linux_cdev_pager_fault(vm_object_t vm_obj,vm_ooffset_t offset,int prot,vm_page_t * mres)464 linux_cdev_pager_fault(vm_object_t vm_obj, vm_ooffset_t offset, int prot,
465 vm_page_t *mres)
466 {
467 struct vm_area_struct *vmap;
468
469 vmap = linux_cdev_handle_find(vm_obj->handle);
470
471 MPASS(vmap != NULL);
472 MPASS(vmap->vm_private_data == vm_obj->handle);
473
474 if (likely(vmap->vm_ops != NULL && offset < vmap->vm_len)) {
475 vm_paddr_t paddr = IDX_TO_OFF(vmap->vm_pfn) + offset;
476 vm_page_t page;
477
478 if (((*mres)->flags & PG_FICTITIOUS) != 0) {
479 /*
480 * If the passed in result page is a fake
481 * page, update it with the new physical
482 * address.
483 */
484 page = *mres;
485 vm_page_updatefake(page, paddr, vm_obj->memattr);
486 } else {
487 /*
488 * Replace the passed in "mres" page with our
489 * own fake page and free up the all of the
490 * original pages.
491 */
492 VM_OBJECT_WUNLOCK(vm_obj);
493 page = vm_page_getfake(paddr, vm_obj->memattr);
494 VM_OBJECT_WLOCK(vm_obj);
495
496 vm_page_replace(page, vm_obj, (*mres)->pindex, *mres);
497 *mres = page;
498 }
499 vm_page_valid(page);
500 return (VM_PAGER_OK);
501 }
502 return (VM_PAGER_FAIL);
503 }
504
505 static int
linux_cdev_pager_populate(vm_object_t vm_obj,vm_pindex_t pidx,int fault_type,vm_prot_t max_prot,vm_pindex_t * first,vm_pindex_t * last)506 linux_cdev_pager_populate(vm_object_t vm_obj, vm_pindex_t pidx, int fault_type,
507 vm_prot_t max_prot, vm_pindex_t *first, vm_pindex_t *last)
508 {
509 struct vm_area_struct *vmap;
510 int err;
511
512 /* get VM area structure */
513 vmap = linux_cdev_handle_find(vm_obj->handle);
514 MPASS(vmap != NULL);
515 MPASS(vmap->vm_private_data == vm_obj->handle);
516
517 VM_OBJECT_WUNLOCK(vm_obj);
518
519 linux_set_current(curthread);
520
521 down_write(&vmap->vm_mm->mmap_sem);
522 if (unlikely(vmap->vm_ops == NULL)) {
523 err = VM_FAULT_SIGBUS;
524 } else {
525 struct vm_fault vmf;
526
527 /* fill out VM fault structure */
528 vmf.virtual_address = (void *)(uintptr_t)IDX_TO_OFF(pidx);
529 vmf.flags = (fault_type & VM_PROT_WRITE) ? FAULT_FLAG_WRITE : 0;
530 vmf.pgoff = 0;
531 vmf.page = NULL;
532 vmf.vma = vmap;
533
534 vmap->vm_pfn_count = 0;
535 vmap->vm_pfn_pcount = &vmap->vm_pfn_count;
536 vmap->vm_obj = vm_obj;
537
538 err = vmap->vm_ops->fault(&vmf);
539
540 while (vmap->vm_pfn_count == 0 && err == VM_FAULT_NOPAGE) {
541 kern_yield(PRI_USER);
542 err = vmap->vm_ops->fault(&vmf);
543 }
544 }
545
546 /* translate return code */
547 switch (err) {
548 case VM_FAULT_OOM:
549 err = VM_PAGER_AGAIN;
550 break;
551 case VM_FAULT_SIGBUS:
552 err = VM_PAGER_BAD;
553 break;
554 case VM_FAULT_NOPAGE:
555 /*
556 * By contract the fault handler will return having
557 * busied all the pages itself. If pidx is already
558 * found in the object, it will simply xbusy the first
559 * page and return with vm_pfn_count set to 1.
560 */
561 *first = vmap->vm_pfn_first;
562 *last = *first + vmap->vm_pfn_count - 1;
563 err = VM_PAGER_OK;
564 break;
565 default:
566 err = VM_PAGER_ERROR;
567 break;
568 }
569 up_write(&vmap->vm_mm->mmap_sem);
570 VM_OBJECT_WLOCK(vm_obj);
571 return (err);
572 }
573
574 static struct rwlock linux_vma_lock;
575 static TAILQ_HEAD(, vm_area_struct) linux_vma_head =
576 TAILQ_HEAD_INITIALIZER(linux_vma_head);
577
578 static void
linux_cdev_handle_free(struct vm_area_struct * vmap)579 linux_cdev_handle_free(struct vm_area_struct *vmap)
580 {
581 /* Drop reference on vm_file */
582 if (vmap->vm_file != NULL)
583 fput(vmap->vm_file);
584
585 /* Drop reference on mm_struct */
586 mmput(vmap->vm_mm);
587
588 kfree(vmap);
589 }
590
591 static void
linux_cdev_handle_remove(struct vm_area_struct * vmap)592 linux_cdev_handle_remove(struct vm_area_struct *vmap)
593 {
594 rw_wlock(&linux_vma_lock);
595 TAILQ_REMOVE(&linux_vma_head, vmap, vm_entry);
596 rw_wunlock(&linux_vma_lock);
597 }
598
599 static struct vm_area_struct *
linux_cdev_handle_find(void * handle)600 linux_cdev_handle_find(void *handle)
601 {
602 struct vm_area_struct *vmap;
603
604 rw_rlock(&linux_vma_lock);
605 TAILQ_FOREACH(vmap, &linux_vma_head, vm_entry) {
606 if (vmap->vm_private_data == handle)
607 break;
608 }
609 rw_runlock(&linux_vma_lock);
610 return (vmap);
611 }
612
613 static int
linux_cdev_pager_ctor(void * handle,vm_ooffset_t size,vm_prot_t prot,vm_ooffset_t foff,struct ucred * cred,u_short * color)614 linux_cdev_pager_ctor(void *handle, vm_ooffset_t size, vm_prot_t prot,
615 vm_ooffset_t foff, struct ucred *cred, u_short *color)
616 {
617
618 MPASS(linux_cdev_handle_find(handle) != NULL);
619 *color = 0;
620 return (0);
621 }
622
623 static void
linux_cdev_pager_dtor(void * handle)624 linux_cdev_pager_dtor(void *handle)
625 {
626 const struct vm_operations_struct *vm_ops;
627 struct vm_area_struct *vmap;
628
629 vmap = linux_cdev_handle_find(handle);
630 MPASS(vmap != NULL);
631
632 /*
633 * Remove handle before calling close operation to prevent
634 * other threads from reusing the handle pointer.
635 */
636 linux_cdev_handle_remove(vmap);
637
638 down_write(&vmap->vm_mm->mmap_sem);
639 vm_ops = vmap->vm_ops;
640 if (likely(vm_ops != NULL))
641 vm_ops->close(vmap);
642 up_write(&vmap->vm_mm->mmap_sem);
643
644 linux_cdev_handle_free(vmap);
645 }
646
647 static struct cdev_pager_ops linux_cdev_pager_ops[2] = {
648 {
649 /* OBJT_MGTDEVICE */
650 .cdev_pg_populate = linux_cdev_pager_populate,
651 .cdev_pg_ctor = linux_cdev_pager_ctor,
652 .cdev_pg_dtor = linux_cdev_pager_dtor
653 },
654 {
655 /* OBJT_DEVICE */
656 .cdev_pg_fault = linux_cdev_pager_fault,
657 .cdev_pg_ctor = linux_cdev_pager_ctor,
658 .cdev_pg_dtor = linux_cdev_pager_dtor
659 },
660 };
661
662 int
zap_vma_ptes(struct vm_area_struct * vma,unsigned long address,unsigned long size)663 zap_vma_ptes(struct vm_area_struct *vma, unsigned long address,
664 unsigned long size)
665 {
666 struct pctrie_iter pages;
667 vm_object_t obj;
668 vm_page_t m;
669
670 obj = vma->vm_obj;
671 if (obj == NULL || (obj->flags & OBJ_UNMANAGED) != 0)
672 return (-ENOTSUP);
673 VM_OBJECT_RLOCK(obj);
674 vm_page_iter_limit_init(&pages, obj, OFF_TO_IDX(address + size));
675 VM_RADIX_FOREACH_FROM(m, &pages, OFF_TO_IDX(address))
676 pmap_remove_all(m);
677 VM_OBJECT_RUNLOCK(obj);
678 return (0);
679 }
680
681 void
vma_set_file(struct vm_area_struct * vma,struct linux_file * file)682 vma_set_file(struct vm_area_struct *vma, struct linux_file *file)
683 {
684 struct linux_file *tmp;
685
686 /* Changing an anonymous vma with this is illegal */
687 get_file(file);
688 tmp = vma->vm_file;
689 vma->vm_file = file;
690 fput(tmp);
691 }
692
693 static struct file_operations dummy_ldev_ops = {
694 /* XXXKIB */
695 };
696
697 static struct linux_cdev dummy_ldev = {
698 .ops = &dummy_ldev_ops,
699 };
700
701 #define LDEV_SI_DTR 0x0001
702 #define LDEV_SI_REF 0x0002
703
704 static void
linux_get_fop(struct linux_file * filp,const struct file_operations ** fop,struct linux_cdev ** dev)705 linux_get_fop(struct linux_file *filp, const struct file_operations **fop,
706 struct linux_cdev **dev)
707 {
708 struct linux_cdev *ldev;
709 u_int siref;
710
711 ldev = filp->f_cdev;
712 *fop = filp->f_op;
713 if (ldev != NULL) {
714 if (ldev->kobj.ktype == &linux_cdev_static_ktype) {
715 refcount_acquire(&ldev->refs);
716 } else {
717 for (siref = ldev->siref;;) {
718 if ((siref & LDEV_SI_DTR) != 0) {
719 ldev = &dummy_ldev;
720 *fop = ldev->ops;
721 siref = ldev->siref;
722 MPASS((ldev->siref & LDEV_SI_DTR) == 0);
723 } else if (atomic_fcmpset_int(&ldev->siref,
724 &siref, siref + LDEV_SI_REF)) {
725 break;
726 }
727 }
728 }
729 }
730 *dev = ldev;
731 }
732
733 static void
linux_drop_fop(struct linux_cdev * ldev)734 linux_drop_fop(struct linux_cdev *ldev)
735 {
736
737 if (ldev == NULL)
738 return;
739 if (ldev->kobj.ktype == &linux_cdev_static_ktype) {
740 linux_cdev_deref(ldev);
741 } else {
742 MPASS(ldev->kobj.ktype == &linux_cdev_ktype);
743 MPASS((ldev->siref & ~LDEV_SI_DTR) != 0);
744 atomic_subtract_int(&ldev->siref, LDEV_SI_REF);
745 }
746 }
747
748 #define OPW(fp,td,code) ({ \
749 struct file *__fpop; \
750 __typeof(code) __retval; \
751 \
752 __fpop = (td)->td_fpop; \
753 (td)->td_fpop = (fp); \
754 __retval = (code); \
755 (td)->td_fpop = __fpop; \
756 __retval; \
757 })
758
759 static int
linux_dev_fdopen(struct cdev * dev,int fflags,struct thread * td,struct file * file)760 linux_dev_fdopen(struct cdev *dev, int fflags, struct thread *td,
761 struct file *file)
762 {
763 struct linux_cdev *ldev;
764 struct linux_file *filp;
765 const struct file_operations *fop;
766 int error;
767
768 ldev = dev->si_drv1;
769
770 filp = linux_file_alloc();
771 filp->f_dentry = &filp->f_dentry_store;
772 filp->f_op = ldev->ops;
773 filp->f_mode = file->f_flag;
774 filp->f_flags = file->f_flag;
775 filp->f_vnode = file->f_vnode;
776 filp->_file = file;
777 refcount_acquire(&ldev->refs);
778 filp->f_cdev = ldev;
779
780 linux_set_current(td);
781 linux_get_fop(filp, &fop, &ldev);
782
783 if (fop->open != NULL) {
784 error = -fop->open(file->f_vnode, filp);
785 if (error != 0) {
786 linux_drop_fop(ldev);
787 linux_cdev_deref(filp->f_cdev);
788 kfree(filp);
789 return (error);
790 }
791 }
792
793 /* hold on to the vnode - used for fstat() */
794 vref(filp->f_vnode);
795
796 /* release the file from devfs */
797 finit(file, filp->f_mode, DTYPE_DEV, filp, &linuxfileops);
798 linux_drop_fop(ldev);
799 return (ENXIO);
800 }
801
802 #define LINUX_IOCTL_MIN_PTR 0x10000UL
803 #define LINUX_IOCTL_MAX_PTR (LINUX_IOCTL_MIN_PTR + IOCPARM_MAX)
804
805 static inline int
linux_remap_address(void ** uaddr,size_t len)806 linux_remap_address(void **uaddr, size_t len)
807 {
808 uintptr_t uaddr_val = (uintptr_t)(*uaddr);
809
810 if (unlikely(uaddr_val >= LINUX_IOCTL_MIN_PTR &&
811 uaddr_val < LINUX_IOCTL_MAX_PTR)) {
812 struct task_struct *pts = current;
813 if (pts == NULL) {
814 *uaddr = NULL;
815 return (1);
816 }
817
818 /* compute data offset */
819 uaddr_val -= LINUX_IOCTL_MIN_PTR;
820
821 /* check that length is within bounds */
822 if ((len > IOCPARM_MAX) ||
823 (uaddr_val + len) > pts->bsd_ioctl_len) {
824 *uaddr = NULL;
825 return (1);
826 }
827
828 /* re-add kernel buffer address */
829 uaddr_val += (uintptr_t)pts->bsd_ioctl_data;
830
831 /* update address location */
832 *uaddr = (void *)uaddr_val;
833 return (1);
834 }
835 return (0);
836 }
837
838 int
linux_copyin(const void * uaddr,void * kaddr,size_t len)839 linux_copyin(const void *uaddr, void *kaddr, size_t len)
840 {
841 if (linux_remap_address(__DECONST(void **, &uaddr), len)) {
842 if (uaddr == NULL)
843 return (-EFAULT);
844 memcpy(kaddr, uaddr, len);
845 return (0);
846 }
847 return (-copyin(uaddr, kaddr, len));
848 }
849
850 int
linux_copyout(const void * kaddr,void * uaddr,size_t len)851 linux_copyout(const void *kaddr, void *uaddr, size_t len)
852 {
853 if (linux_remap_address(&uaddr, len)) {
854 if (uaddr == NULL)
855 return (-EFAULT);
856 memcpy(uaddr, kaddr, len);
857 return (0);
858 }
859 return (-copyout(kaddr, uaddr, len));
860 }
861
862 size_t
linux_clear_user(void * _uaddr,size_t _len)863 linux_clear_user(void *_uaddr, size_t _len)
864 {
865 uint8_t *uaddr = _uaddr;
866 size_t len = _len;
867
868 /* make sure uaddr is aligned before going into the fast loop */
869 while (((uintptr_t)uaddr & 7) != 0 && len > 7) {
870 if (subyte(uaddr, 0))
871 return (_len);
872 uaddr++;
873 len--;
874 }
875
876 /* zero 8 bytes at a time */
877 while (len > 7) {
878 #ifdef __LP64__
879 if (suword64(uaddr, 0))
880 return (_len);
881 #else
882 if (suword32(uaddr, 0))
883 return (_len);
884 if (suword32(uaddr + 4, 0))
885 return (_len);
886 #endif
887 uaddr += 8;
888 len -= 8;
889 }
890
891 /* zero fill end, if any */
892 while (len > 0) {
893 if (subyte(uaddr, 0))
894 return (_len);
895 uaddr++;
896 len--;
897 }
898 return (0);
899 }
900
901 int
linux_access_ok(const void * uaddr,size_t len)902 linux_access_ok(const void *uaddr, size_t len)
903 {
904 uintptr_t saddr;
905 uintptr_t eaddr;
906
907 /* get start and end address */
908 saddr = (uintptr_t)uaddr;
909 eaddr = (uintptr_t)uaddr + len;
910
911 /* verify addresses are valid for userspace */
912 return ((saddr == eaddr) ||
913 (eaddr > saddr && eaddr <= VM_MAXUSER_ADDRESS));
914 }
915
916 /*
917 * This function should return either EINTR or ERESTART depending on
918 * the signal type sent to this thread:
919 */
920 static int
linux_get_error(struct task_struct * task,int error)921 linux_get_error(struct task_struct *task, int error)
922 {
923 /* check for signal type interrupt code */
924 if (error == EINTR || error == ERESTARTSYS || error == ERESTART) {
925 error = -linux_schedule_get_interrupt_value(task);
926 if (error == 0)
927 error = EINTR;
928 }
929 return (error);
930 }
931
932 static int
linux_file_ioctl_sub(struct file * fp,struct linux_file * filp,const struct file_operations * fop,u_long cmd,caddr_t data,struct thread * td)933 linux_file_ioctl_sub(struct file *fp, struct linux_file *filp,
934 const struct file_operations *fop, u_long cmd, caddr_t data,
935 struct thread *td)
936 {
937 struct task_struct *task = current;
938 unsigned size;
939 int error;
940 bool direct;
941
942 size = IOCPARM_LEN(cmd);
943 /* refer to logic in sys_ioctl() */
944 direct = false;
945 if (size > 0) {
946 /*
947 * Setup hint for linux_copyin() and linux_copyout().
948 *
949 * Background: Linux kernel code expects to operate on
950 * userspace addresses, but FreeBSD's kern_ioctl()
951 * will generally provide a kernel address. For the
952 * native process ABI, where we know how to find the
953 * original address, we reach directly into the system
954 * call args to get it. Then, if the Linux driver
955 * copied out to that address, we copy the whole block
956 * back into the kernel buffer allocated by
957 * kern_ioctl() so that kern_ioctl() itself doesn't
958 * clobber the driver's data.
959 *
960 * Otherwise, fall back to the LINUX_IOCTL_MIN_PTR
961 * hack.
962 */
963 task->bsd_ioctl_data = data;
964 task->bsd_ioctl_len = size;
965 if ((td->td_pflags & TDP_KTHREAD) == 0 &&
966 SV_PROC_ABI(td->td_proc) == SV_ABI_FREEBSD &&
967 td->td_sa.code == SYS_ioctl) {
968 direct = true;
969 data = (void *)(uintptr_t)td->td_sa.args[2];
970 } else {
971 data = (void *)LINUX_IOCTL_MIN_PTR;
972 }
973 } else {
974 /* fetch user-space pointer */
975 data = *(void **)data;
976 }
977 #ifdef COMPAT_FREEBSD32
978 if (SV_PROC_FLAG(td->td_proc, SV_ILP32)) {
979 /* try the compat IOCTL handler first */
980 if (fop->compat_ioctl != NULL) {
981 error = -OPW(fp, td, fop->compat_ioctl(filp,
982 cmd, (u_long)data));
983 } else {
984 error = ENOTTY;
985 }
986
987 /* fallback to the regular IOCTL handler, if any */
988 if (error == ENOTTY && fop->unlocked_ioctl != NULL) {
989 error = -OPW(fp, td, fop->unlocked_ioctl(filp,
990 cmd, (u_long)data));
991 }
992 } else
993 #endif
994 {
995 if (fop->unlocked_ioctl != NULL) {
996 error = -OPW(fp, td, fop->unlocked_ioctl(filp,
997 cmd, (u_long)data));
998 } else {
999 error = ENOTTY;
1000 }
1001 }
1002 if (error == 0 && size > 0 && (cmd & IOC_OUT) != 0 && direct) {
1003 void *xdata;
1004 int error1;
1005
1006 /*
1007 * Ensure that the copyout in sys_generic.c copies
1008 * over the data which is possibly modified by the
1009 * driver. A possible error from the copyin() is
1010 * ignored since it is formally possible for the memory
1011 * to become unaccessible in the meantime. Do the copying
1012 * through the intermediate buffer instead of copying
1013 * directly to bsd_ioctl_data, to ensure atomicity of
1014 * the change with respect to the error.
1015 */
1016 xdata = malloc(size, M_TEMP, M_WAITOK);
1017 error1 = copyin(data, xdata, size);
1018 if (error1 == 0)
1019 memcpy(task->bsd_ioctl_data, xdata, size);
1020 free(xdata, M_TEMP);
1021 }
1022 if (size > 0) {
1023 task->bsd_ioctl_data = NULL;
1024 task->bsd_ioctl_len = 0;
1025 }
1026 if (error == EWOULDBLOCK) {
1027 /* update kqfilter status, if any */
1028 linux_file_kqfilter_poll(filp,
1029 LINUX_KQ_FLAG_HAS_READ | LINUX_KQ_FLAG_HAS_WRITE);
1030 } else {
1031 error = linux_get_error(task, error);
1032 }
1033 return (error);
1034 }
1035
1036 #define LINUX_POLL_TABLE_NORMAL ((poll_table *)1)
1037
1038 /*
1039 * This function atomically updates the poll wakeup state and returns
1040 * the previous state at the time of update.
1041 */
1042 static uint8_t
linux_poll_wakeup_state(atomic_t * v,const uint8_t * pstate)1043 linux_poll_wakeup_state(atomic_t *v, const uint8_t *pstate)
1044 {
1045 int c, old;
1046
1047 c = v->counter;
1048
1049 while ((old = atomic_cmpxchg(v, c, pstate[c])) != c)
1050 c = old;
1051
1052 return (c);
1053 }
1054
1055 static int
linux_poll_wakeup_callback(wait_queue_t * wq,unsigned int wq_state,int flags,void * key)1056 linux_poll_wakeup_callback(wait_queue_t *wq, unsigned int wq_state, int flags, void *key)
1057 {
1058 static const uint8_t state[LINUX_FWQ_STATE_MAX] = {
1059 [LINUX_FWQ_STATE_INIT] = LINUX_FWQ_STATE_INIT, /* NOP */
1060 [LINUX_FWQ_STATE_NOT_READY] = LINUX_FWQ_STATE_NOT_READY, /* NOP */
1061 [LINUX_FWQ_STATE_QUEUED] = LINUX_FWQ_STATE_READY,
1062 [LINUX_FWQ_STATE_READY] = LINUX_FWQ_STATE_READY, /* NOP */
1063 };
1064 struct linux_file *filp = container_of(wq, struct linux_file, f_wait_queue.wq);
1065
1066 switch (linux_poll_wakeup_state(&filp->f_wait_queue.state, state)) {
1067 case LINUX_FWQ_STATE_QUEUED:
1068 linux_poll_wakeup(filp);
1069 return (1);
1070 default:
1071 return (0);
1072 }
1073 }
1074
1075 void
linux_poll_wait(struct linux_file * filp,wait_queue_head_t * wqh,poll_table * p)1076 linux_poll_wait(struct linux_file *filp, wait_queue_head_t *wqh, poll_table *p)
1077 {
1078 static const uint8_t state[LINUX_FWQ_STATE_MAX] = {
1079 [LINUX_FWQ_STATE_INIT] = LINUX_FWQ_STATE_NOT_READY,
1080 [LINUX_FWQ_STATE_NOT_READY] = LINUX_FWQ_STATE_NOT_READY, /* NOP */
1081 [LINUX_FWQ_STATE_QUEUED] = LINUX_FWQ_STATE_QUEUED, /* NOP */
1082 [LINUX_FWQ_STATE_READY] = LINUX_FWQ_STATE_QUEUED,
1083 };
1084
1085 /* check if we are called inside the select system call */
1086 if (p == LINUX_POLL_TABLE_NORMAL)
1087 selrecord(curthread, &filp->f_selinfo);
1088
1089 switch (linux_poll_wakeup_state(&filp->f_wait_queue.state, state)) {
1090 case LINUX_FWQ_STATE_INIT:
1091 /* NOTE: file handles can only belong to one wait-queue */
1092 filp->f_wait_queue.wqh = wqh;
1093 filp->f_wait_queue.wq.func = &linux_poll_wakeup_callback;
1094 add_wait_queue(wqh, &filp->f_wait_queue.wq);
1095 atomic_set(&filp->f_wait_queue.state, LINUX_FWQ_STATE_QUEUED);
1096 break;
1097 default:
1098 break;
1099 }
1100 }
1101
1102 static void
linux_poll_wait_dequeue(struct linux_file * filp)1103 linux_poll_wait_dequeue(struct linux_file *filp)
1104 {
1105 static const uint8_t state[LINUX_FWQ_STATE_MAX] = {
1106 [LINUX_FWQ_STATE_INIT] = LINUX_FWQ_STATE_INIT, /* NOP */
1107 [LINUX_FWQ_STATE_NOT_READY] = LINUX_FWQ_STATE_INIT,
1108 [LINUX_FWQ_STATE_QUEUED] = LINUX_FWQ_STATE_INIT,
1109 [LINUX_FWQ_STATE_READY] = LINUX_FWQ_STATE_INIT,
1110 };
1111
1112 seldrain(&filp->f_selinfo);
1113
1114 switch (linux_poll_wakeup_state(&filp->f_wait_queue.state, state)) {
1115 case LINUX_FWQ_STATE_NOT_READY:
1116 case LINUX_FWQ_STATE_QUEUED:
1117 case LINUX_FWQ_STATE_READY:
1118 remove_wait_queue(filp->f_wait_queue.wqh, &filp->f_wait_queue.wq);
1119 break;
1120 default:
1121 break;
1122 }
1123 }
1124
1125 void
linux_poll_wakeup(struct linux_file * filp)1126 linux_poll_wakeup(struct linux_file *filp)
1127 {
1128 /* this function should be NULL-safe */
1129 if (filp == NULL)
1130 return;
1131
1132 selwakeup(&filp->f_selinfo);
1133
1134 spin_lock(&filp->f_kqlock);
1135 filp->f_kqflags |= LINUX_KQ_FLAG_NEED_READ |
1136 LINUX_KQ_FLAG_NEED_WRITE;
1137
1138 /* make sure the "knote" gets woken up */
1139 KNOTE_LOCKED(&filp->f_selinfo.si_note, 1);
1140 spin_unlock(&filp->f_kqlock);
1141 }
1142
1143 static struct linux_file *
__get_file_rcu(struct linux_file ** f)1144 __get_file_rcu(struct linux_file **f)
1145 {
1146 struct linux_file *file1, *file2;
1147
1148 file1 = READ_ONCE(*f);
1149 if (file1 == NULL)
1150 return (NULL);
1151
1152 if (!refcount_acquire_if_not_zero(
1153 file1->_file == NULL ? &file1->f_count : &file1->_file->f_count))
1154 return (ERR_PTR(-EAGAIN));
1155
1156 file2 = READ_ONCE(*f);
1157 if (file2 == file1)
1158 return (file2);
1159
1160 fput(file1);
1161 return (ERR_PTR(-EAGAIN));
1162 }
1163
1164 struct linux_file *
linux_get_file_rcu(struct linux_file ** f)1165 linux_get_file_rcu(struct linux_file **f)
1166 {
1167 struct linux_file *file1;
1168
1169 for (;;) {
1170 file1 = __get_file_rcu(f);
1171 if (file1 == NULL)
1172 return (NULL);
1173
1174 if (IS_ERR(file1))
1175 continue;
1176
1177 return (file1);
1178 }
1179 }
1180
1181 struct linux_file *
get_file_active(struct linux_file ** f)1182 get_file_active(struct linux_file **f)
1183 {
1184 struct linux_file *file1;
1185
1186 rcu_read_lock();
1187 file1 = __get_file_rcu(f);
1188 rcu_read_unlock();
1189 if (IS_ERR(file1))
1190 file1 = NULL;
1191
1192 return (file1);
1193 }
1194
1195 static void
linux_file_kqfilter_detach(struct knote * kn)1196 linux_file_kqfilter_detach(struct knote *kn)
1197 {
1198 struct linux_file *filp = kn->kn_hook;
1199
1200 spin_lock(&filp->f_kqlock);
1201 knlist_remove(&filp->f_selinfo.si_note, kn, 1);
1202 spin_unlock(&filp->f_kqlock);
1203 }
1204
1205 static int
linux_file_kqfilter_read_event(struct knote * kn,long hint)1206 linux_file_kqfilter_read_event(struct knote *kn, long hint)
1207 {
1208 struct linux_file *filp = kn->kn_hook;
1209
1210 mtx_assert(&filp->f_kqlock, MA_OWNED);
1211
1212 return ((filp->f_kqflags & LINUX_KQ_FLAG_NEED_READ) ? 1 : 0);
1213 }
1214
1215 static int
linux_file_kqfilter_write_event(struct knote * kn,long hint)1216 linux_file_kqfilter_write_event(struct knote *kn, long hint)
1217 {
1218 struct linux_file *filp = kn->kn_hook;
1219
1220 mtx_assert(&filp->f_kqlock, MA_OWNED);
1221
1222 return ((filp->f_kqflags & LINUX_KQ_FLAG_NEED_WRITE) ? 1 : 0);
1223 }
1224
1225 static const struct filterops linux_dev_kqfiltops_read = {
1226 .f_isfd = 1,
1227 .f_detach = linux_file_kqfilter_detach,
1228 .f_event = linux_file_kqfilter_read_event,
1229 .f_copy = knote_triv_copy,
1230 };
1231
1232 static const struct filterops linux_dev_kqfiltops_write = {
1233 .f_isfd = 1,
1234 .f_detach = linux_file_kqfilter_detach,
1235 .f_event = linux_file_kqfilter_write_event,
1236 .f_copy = knote_triv_copy,
1237 };
1238
1239 static void
linux_file_kqfilter_poll(struct linux_file * filp,int kqflags)1240 linux_file_kqfilter_poll(struct linux_file *filp, int kqflags)
1241 {
1242 struct thread *td;
1243 const struct file_operations *fop;
1244 struct linux_cdev *ldev;
1245 int temp;
1246
1247 if ((filp->f_kqflags & kqflags) == 0)
1248 return;
1249
1250 td = curthread;
1251
1252 linux_get_fop(filp, &fop, &ldev);
1253 /* get the latest polling state */
1254 temp = OPW(filp->_file, td, fop->poll(filp, NULL));
1255 linux_drop_fop(ldev);
1256
1257 spin_lock(&filp->f_kqlock);
1258 /* clear kqflags */
1259 filp->f_kqflags &= ~(LINUX_KQ_FLAG_NEED_READ |
1260 LINUX_KQ_FLAG_NEED_WRITE);
1261 /* update kqflags */
1262 if ((temp & (POLLIN | POLLOUT)) != 0) {
1263 if ((temp & POLLIN) != 0)
1264 filp->f_kqflags |= LINUX_KQ_FLAG_NEED_READ;
1265 if ((temp & POLLOUT) != 0)
1266 filp->f_kqflags |= LINUX_KQ_FLAG_NEED_WRITE;
1267
1268 /* make sure the "knote" gets woken up */
1269 KNOTE_LOCKED(&filp->f_selinfo.si_note, 0);
1270 }
1271 spin_unlock(&filp->f_kqlock);
1272 }
1273
1274 static int
linux_file_kqfilter(struct file * file,struct knote * kn)1275 linux_file_kqfilter(struct file *file, struct knote *kn)
1276 {
1277 struct linux_file *filp;
1278 struct thread *td;
1279 int error;
1280
1281 td = curthread;
1282 filp = (struct linux_file *)file->f_data;
1283 filp->f_flags = file->f_flag;
1284 if (filp->f_op->poll == NULL)
1285 return (EINVAL);
1286
1287 spin_lock(&filp->f_kqlock);
1288 switch (kn->kn_filter) {
1289 case EVFILT_READ:
1290 filp->f_kqflags |= LINUX_KQ_FLAG_HAS_READ;
1291 kn->kn_fop = &linux_dev_kqfiltops_read;
1292 kn->kn_hook = filp;
1293 knlist_add(&filp->f_selinfo.si_note, kn, 1);
1294 error = 0;
1295 break;
1296 case EVFILT_WRITE:
1297 filp->f_kqflags |= LINUX_KQ_FLAG_HAS_WRITE;
1298 kn->kn_fop = &linux_dev_kqfiltops_write;
1299 kn->kn_hook = filp;
1300 knlist_add(&filp->f_selinfo.si_note, kn, 1);
1301 error = 0;
1302 break;
1303 default:
1304 error = EINVAL;
1305 break;
1306 }
1307 spin_unlock(&filp->f_kqlock);
1308
1309 if (error == 0) {
1310 linux_set_current(td);
1311
1312 /* update kqfilter status, if any */
1313 linux_file_kqfilter_poll(filp,
1314 LINUX_KQ_FLAG_HAS_READ | LINUX_KQ_FLAG_HAS_WRITE);
1315 }
1316 return (error);
1317 }
1318
1319 static int
linux_file_mmap_single(struct file * fp,const struct file_operations * fop,vm_ooffset_t * offset,vm_size_t size,struct vm_object ** object,int nprot,bool is_shared,struct thread * td)1320 linux_file_mmap_single(struct file *fp, const struct file_operations *fop,
1321 vm_ooffset_t *offset, vm_size_t size, struct vm_object **object,
1322 int nprot, bool is_shared, struct thread *td)
1323 {
1324 struct task_struct *task;
1325 struct vm_area_struct *vmap;
1326 struct mm_struct *mm;
1327 struct linux_file *filp;
1328 vm_memattr_t attr;
1329 int error;
1330
1331 filp = (struct linux_file *)fp->f_data;
1332 filp->f_flags = fp->f_flag;
1333
1334 if (fop->mmap == NULL)
1335 return (EOPNOTSUPP);
1336
1337 linux_set_current(td);
1338
1339 /*
1340 * The same VM object might be shared by multiple processes
1341 * and the mm_struct is usually freed when a process exits.
1342 *
1343 * The atomic reference below makes sure the mm_struct is
1344 * available as long as the vmap is in the linux_vma_head.
1345 */
1346 task = current;
1347 mm = task->mm;
1348 if (atomic_inc_not_zero(&mm->mm_users) == 0)
1349 return (EINVAL);
1350
1351 vmap = kzalloc(sizeof(*vmap), GFP_KERNEL);
1352 vmap->vm_start = 0;
1353 vmap->vm_end = size;
1354 vmap->vm_pgoff = *offset / PAGE_SIZE;
1355 vmap->vm_pfn = 0;
1356 vmap->vm_flags = vmap->vm_page_prot = (nprot & VM_PROT_ALL);
1357 if (is_shared)
1358 vmap->vm_flags |= VM_SHARED;
1359 vmap->vm_ops = NULL;
1360 vmap->vm_file = get_file(filp);
1361 vmap->vm_mm = mm;
1362
1363 if (unlikely(down_write_killable(&vmap->vm_mm->mmap_sem))) {
1364 error = linux_get_error(task, EINTR);
1365 } else {
1366 error = -OPW(fp, td, fop->mmap(filp, vmap));
1367 error = linux_get_error(task, error);
1368 up_write(&vmap->vm_mm->mmap_sem);
1369 }
1370
1371 if (error != 0) {
1372 linux_cdev_handle_free(vmap);
1373 return (error);
1374 }
1375
1376 attr = pgprot2cachemode(vmap->vm_page_prot);
1377
1378 if (vmap->vm_ops != NULL) {
1379 struct vm_area_struct *ptr;
1380 void *vm_private_data;
1381 bool vm_no_fault;
1382
1383 if (vmap->vm_ops->open == NULL ||
1384 vmap->vm_ops->close == NULL ||
1385 vmap->vm_private_data == NULL) {
1386 /* free allocated VM area struct */
1387 linux_cdev_handle_free(vmap);
1388 return (EINVAL);
1389 }
1390
1391 vm_private_data = vmap->vm_private_data;
1392
1393 rw_wlock(&linux_vma_lock);
1394 TAILQ_FOREACH(ptr, &linux_vma_head, vm_entry) {
1395 if (ptr->vm_private_data == vm_private_data)
1396 break;
1397 }
1398 /* check if there is an existing VM area struct */
1399 if (ptr != NULL) {
1400 /* check if the VM area structure is invalid */
1401 if (ptr->vm_ops == NULL ||
1402 ptr->vm_ops->open == NULL ||
1403 ptr->vm_ops->close == NULL) {
1404 error = ESTALE;
1405 vm_no_fault = 1;
1406 } else {
1407 error = EEXIST;
1408 vm_no_fault = (ptr->vm_ops->fault == NULL);
1409 }
1410 } else {
1411 /* insert VM area structure into list */
1412 TAILQ_INSERT_TAIL(&linux_vma_head, vmap, vm_entry);
1413 error = 0;
1414 vm_no_fault = (vmap->vm_ops->fault == NULL);
1415 }
1416 rw_wunlock(&linux_vma_lock);
1417
1418 if (error != 0) {
1419 /* free allocated VM area struct */
1420 linux_cdev_handle_free(vmap);
1421 /* check for stale VM area struct */
1422 if (error != EEXIST)
1423 return (error);
1424 }
1425
1426 /* check if there is no fault handler */
1427 if (vm_no_fault) {
1428 *object = cdev_pager_allocate(vm_private_data, OBJT_DEVICE,
1429 &linux_cdev_pager_ops[1], size, nprot, *offset,
1430 td->td_ucred);
1431 } else {
1432 *object = cdev_pager_allocate(vm_private_data, OBJT_MGTDEVICE,
1433 &linux_cdev_pager_ops[0], size, nprot, *offset,
1434 td->td_ucred);
1435 }
1436
1437 /* check if allocating the VM object failed */
1438 if (*object == NULL) {
1439 if (error == 0) {
1440 /* remove VM area struct from list */
1441 linux_cdev_handle_remove(vmap);
1442 /* free allocated VM area struct */
1443 linux_cdev_handle_free(vmap);
1444 }
1445 return (EINVAL);
1446 }
1447 } else {
1448 struct sglist *sg;
1449
1450 sg = sglist_alloc(1, M_WAITOK);
1451 sglist_append_phys(sg,
1452 (vm_paddr_t)vmap->vm_pfn << PAGE_SHIFT, vmap->vm_len);
1453
1454 *object = vm_pager_allocate(OBJT_SG, sg, vmap->vm_len,
1455 nprot, 0, td->td_ucred);
1456
1457 linux_cdev_handle_free(vmap);
1458
1459 if (*object == NULL) {
1460 sglist_free(sg);
1461 return (EINVAL);
1462 }
1463 }
1464
1465 if (attr != VM_MEMATTR_DEFAULT) {
1466 VM_OBJECT_WLOCK(*object);
1467 vm_object_set_memattr(*object, attr);
1468 VM_OBJECT_WUNLOCK(*object);
1469 }
1470 *offset = 0;
1471 return (0);
1472 }
1473
1474 struct cdevsw linuxcdevsw = {
1475 .d_version = D_VERSION,
1476 .d_fdopen = linux_dev_fdopen,
1477 .d_name = "lkpidev",
1478 };
1479
1480 static int
linux_file_read(struct file * file,struct uio * uio,struct ucred * active_cred,int flags,struct thread * td)1481 linux_file_read(struct file *file, struct uio *uio, struct ucred *active_cred,
1482 int flags, struct thread *td)
1483 {
1484 struct linux_file *filp;
1485 const struct file_operations *fop;
1486 struct linux_cdev *ldev;
1487 ssize_t bytes;
1488 int error;
1489
1490 error = 0;
1491 filp = (struct linux_file *)file->f_data;
1492 filp->f_flags = file->f_flag;
1493 /* XXX no support for I/O vectors currently */
1494 if (uio->uio_iovcnt != 1)
1495 return (EOPNOTSUPP);
1496 if (uio->uio_resid > DEVFS_IOSIZE_MAX)
1497 return (EINVAL);
1498 linux_set_current(td);
1499 linux_get_fop(filp, &fop, &ldev);
1500 if (fop->read != NULL) {
1501 bytes = OPW(file, td, fop->read(filp,
1502 uio->uio_iov->iov_base,
1503 uio->uio_iov->iov_len, &uio->uio_offset));
1504 if (bytes >= 0) {
1505 uio->uio_iov->iov_base =
1506 ((uint8_t *)uio->uio_iov->iov_base) + bytes;
1507 uio->uio_iov->iov_len -= bytes;
1508 uio->uio_resid -= bytes;
1509 } else {
1510 error = linux_get_error(current, -bytes);
1511 }
1512 } else
1513 error = ENXIO;
1514
1515 /* update kqfilter status, if any */
1516 linux_file_kqfilter_poll(filp, LINUX_KQ_FLAG_HAS_READ);
1517 linux_drop_fop(ldev);
1518
1519 return (error);
1520 }
1521
1522 static int
linux_file_write(struct file * file,struct uio * uio,struct ucred * active_cred,int flags,struct thread * td)1523 linux_file_write(struct file *file, struct uio *uio, struct ucred *active_cred,
1524 int flags, struct thread *td)
1525 {
1526 struct linux_file *filp;
1527 const struct file_operations *fop;
1528 struct linux_cdev *ldev;
1529 ssize_t bytes;
1530 int error;
1531
1532 filp = (struct linux_file *)file->f_data;
1533 filp->f_flags = file->f_flag;
1534 /* XXX no support for I/O vectors currently */
1535 if (uio->uio_iovcnt != 1)
1536 return (EOPNOTSUPP);
1537 if (uio->uio_resid > DEVFS_IOSIZE_MAX)
1538 return (EINVAL);
1539 linux_set_current(td);
1540 linux_get_fop(filp, &fop, &ldev);
1541 if (fop->write != NULL) {
1542 bytes = OPW(file, td, fop->write(filp,
1543 uio->uio_iov->iov_base,
1544 uio->uio_iov->iov_len, &uio->uio_offset));
1545 if (bytes >= 0) {
1546 uio->uio_iov->iov_base =
1547 ((uint8_t *)uio->uio_iov->iov_base) + bytes;
1548 uio->uio_iov->iov_len -= bytes;
1549 uio->uio_resid -= bytes;
1550 error = 0;
1551 } else {
1552 error = linux_get_error(current, -bytes);
1553 }
1554 } else
1555 error = ENXIO;
1556
1557 /* update kqfilter status, if any */
1558 linux_file_kqfilter_poll(filp, LINUX_KQ_FLAG_HAS_WRITE);
1559
1560 linux_drop_fop(ldev);
1561
1562 return (error);
1563 }
1564
1565 static int
linux_file_poll(struct file * file,int events,struct ucred * active_cred,struct thread * td)1566 linux_file_poll(struct file *file, int events, struct ucred *active_cred,
1567 struct thread *td)
1568 {
1569 struct linux_file *filp;
1570 const struct file_operations *fop;
1571 struct linux_cdev *ldev;
1572 int revents;
1573
1574 filp = (struct linux_file *)file->f_data;
1575 filp->f_flags = file->f_flag;
1576 linux_set_current(td);
1577 linux_get_fop(filp, &fop, &ldev);
1578 if (fop->poll != NULL) {
1579 revents = OPW(file, td, fop->poll(filp,
1580 LINUX_POLL_TABLE_NORMAL)) & events;
1581 } else {
1582 revents = 0;
1583 }
1584 linux_drop_fop(ldev);
1585 return (revents);
1586 }
1587
1588 static int
linux_file_close(struct file * file,struct thread * td)1589 linux_file_close(struct file *file, struct thread *td)
1590 {
1591 struct linux_file *filp;
1592 int (*release)(struct inode *, struct linux_file *);
1593 const struct file_operations *fop;
1594 struct linux_cdev *ldev;
1595 int error;
1596
1597 filp = (struct linux_file *)file->f_data;
1598
1599 KASSERT(file_count(filp) == 0,
1600 ("File refcount(%d) is not zero", file_count(filp)));
1601
1602 if (td == NULL)
1603 td = curthread;
1604
1605 error = 0;
1606 filp->f_flags = file->f_flag;
1607 linux_set_current(td);
1608 linux_poll_wait_dequeue(filp);
1609 linux_get_fop(filp, &fop, &ldev);
1610 /*
1611 * Always use the real release function, if any, to avoid
1612 * leaking device resources:
1613 */
1614 release = filp->f_op->release;
1615 if (release != NULL)
1616 error = -OPW(file, td, release(filp->f_vnode, filp));
1617 funsetown(&filp->f_sigio);
1618 if (filp->f_vnode != NULL)
1619 vrele(filp->f_vnode);
1620 linux_drop_fop(ldev);
1621 ldev = filp->f_cdev;
1622 if (ldev != NULL)
1623 linux_cdev_deref(ldev);
1624 linux_synchronize_rcu(RCU_TYPE_REGULAR);
1625 kfree(filp);
1626
1627 return (error);
1628 }
1629
1630 static int
linux_file_ioctl(struct file * fp,u_long cmd,void * data,struct ucred * cred,struct thread * td)1631 linux_file_ioctl(struct file *fp, u_long cmd, void *data, struct ucred *cred,
1632 struct thread *td)
1633 {
1634 struct linux_file *filp;
1635 const struct file_operations *fop;
1636 struct linux_cdev *ldev;
1637 struct fiodgname_arg *fgn;
1638 const char *p;
1639 int error, i;
1640
1641 error = 0;
1642 filp = (struct linux_file *)fp->f_data;
1643 filp->f_flags = fp->f_flag;
1644 linux_get_fop(filp, &fop, &ldev);
1645
1646 linux_set_current(td);
1647 switch (cmd) {
1648 case FIONBIO:
1649 break;
1650 case FIOASYNC:
1651 if (fop->fasync == NULL)
1652 break;
1653 error = -OPW(fp, td, fop->fasync(0, filp, fp->f_flag & FASYNC));
1654 break;
1655 case FIOSETOWN:
1656 error = fsetown(*(int *)data, &filp->f_sigio);
1657 if (error == 0) {
1658 if (fop->fasync == NULL)
1659 break;
1660 error = -OPW(fp, td, fop->fasync(0, filp,
1661 fp->f_flag & FASYNC));
1662 }
1663 break;
1664 case FIOGETOWN:
1665 *(int *)data = fgetown(&filp->f_sigio);
1666 break;
1667 case FIODGNAME:
1668 #ifdef COMPAT_FREEBSD32
1669 case FIODGNAME_32:
1670 #endif
1671 if (filp->f_cdev == NULL || filp->f_cdev->cdev == NULL) {
1672 error = ENXIO;
1673 break;
1674 }
1675 fgn = data;
1676 p = devtoname(filp->f_cdev->cdev);
1677 i = strlen(p) + 1;
1678 if (i > fgn->len) {
1679 error = EINVAL;
1680 break;
1681 }
1682 error = copyout(p, fiodgname_buf_get_ptr(fgn, cmd), i);
1683 break;
1684 default:
1685 error = linux_file_ioctl_sub(fp, filp, fop, cmd, data, td);
1686 break;
1687 }
1688 linux_drop_fop(ldev);
1689 return (error);
1690 }
1691
1692 static int
linux_file_mmap_sub(struct thread * td,vm_size_t objsize,vm_prot_t prot,vm_prot_t maxprot,int flags,struct file * fp,vm_ooffset_t * foff,const struct file_operations * fop,vm_object_t * objp)1693 linux_file_mmap_sub(struct thread *td, vm_size_t objsize, vm_prot_t prot,
1694 vm_prot_t maxprot, int flags, struct file *fp,
1695 vm_ooffset_t *foff, const struct file_operations *fop, vm_object_t *objp)
1696 {
1697 /*
1698 * Character devices do not provide private mappings
1699 * of any kind:
1700 */
1701 if ((maxprot & VM_PROT_WRITE) == 0 &&
1702 (prot & VM_PROT_WRITE) != 0)
1703 return (EACCES);
1704 if ((flags & (MAP_PRIVATE | MAP_COPY)) != 0)
1705 return (EINVAL);
1706
1707 return (linux_file_mmap_single(fp, fop, foff, objsize, objp,
1708 (int)prot, (flags & MAP_SHARED) ? true : false, td));
1709 }
1710
1711 static int
linux_file_mmap(struct file * fp,vm_map_t map,vm_offset_t * addr,vm_size_t size,vm_prot_t prot,vm_prot_t cap_maxprot,int flags,vm_ooffset_t foff,struct thread * td)1712 linux_file_mmap(struct file *fp, vm_map_t map, vm_offset_t *addr, vm_size_t size,
1713 vm_prot_t prot, vm_prot_t cap_maxprot, int flags, vm_ooffset_t foff,
1714 struct thread *td)
1715 {
1716 struct linux_file *filp;
1717 const struct file_operations *fop;
1718 struct linux_cdev *ldev;
1719 struct mount *mp;
1720 struct vnode *vp;
1721 vm_object_t object;
1722 vm_prot_t maxprot;
1723 int error;
1724
1725 filp = (struct linux_file *)fp->f_data;
1726
1727 vp = filp->f_vnode;
1728 if (vp == NULL)
1729 return (EOPNOTSUPP);
1730
1731 /*
1732 * Ensure that file and memory protections are
1733 * compatible.
1734 */
1735 mp = vp->v_mount;
1736 if (mp != NULL && (mp->mnt_flag & MNT_NOEXEC) != 0) {
1737 maxprot = VM_PROT_NONE;
1738 if ((prot & VM_PROT_EXECUTE) != 0)
1739 return (EACCES);
1740 } else
1741 maxprot = VM_PROT_EXECUTE;
1742 if ((fp->f_flag & FREAD) != 0)
1743 maxprot |= VM_PROT_READ;
1744 else if ((prot & VM_PROT_READ) != 0)
1745 return (EACCES);
1746
1747 /*
1748 * If we are sharing potential changes via MAP_SHARED and we
1749 * are trying to get write permission although we opened it
1750 * without asking for it, bail out.
1751 *
1752 * Note that most character devices always share mappings.
1753 *
1754 * Rely on linux_file_mmap_sub() to fail invalid MAP_PRIVATE
1755 * requests rather than doing it here.
1756 */
1757 if ((flags & MAP_SHARED) != 0) {
1758 if ((fp->f_flag & FWRITE) != 0)
1759 maxprot |= VM_PROT_WRITE;
1760 else if ((prot & VM_PROT_WRITE) != 0)
1761 return (EACCES);
1762 }
1763 maxprot &= cap_maxprot;
1764
1765 linux_get_fop(filp, &fop, &ldev);
1766 error = linux_file_mmap_sub(td, size, prot, maxprot, flags, fp,
1767 &foff, fop, &object);
1768 if (error != 0)
1769 goto out;
1770
1771 error = vm_mmap_object(map, addr, size, prot, maxprot, flags, object,
1772 foff, FALSE, td);
1773 if (error != 0)
1774 vm_object_deallocate(object);
1775 out:
1776 linux_drop_fop(ldev);
1777 return (error);
1778 }
1779
1780 static int
linux_file_stat(struct file * fp,struct stat * sb,struct ucred * active_cred)1781 linux_file_stat(struct file *fp, struct stat *sb, struct ucred *active_cred)
1782 {
1783 struct linux_file *filp;
1784 struct vnode *vp;
1785 int error;
1786
1787 filp = (struct linux_file *)fp->f_data;
1788 if (filp->f_vnode == NULL)
1789 return (EOPNOTSUPP);
1790
1791 vp = filp->f_vnode;
1792
1793 vn_lock(vp, LK_SHARED | LK_RETRY);
1794 error = VOP_STAT(vp, sb, curthread->td_ucred, NOCRED);
1795 VOP_UNLOCK(vp);
1796
1797 return (error);
1798 }
1799
1800 static int
linux_file_fill_kinfo(struct file * fp,struct kinfo_file * kif,struct filedesc * fdp)1801 linux_file_fill_kinfo(struct file *fp, struct kinfo_file *kif,
1802 struct filedesc *fdp)
1803 {
1804 struct linux_file *filp;
1805 struct vnode *vp;
1806 int error;
1807
1808 filp = fp->f_data;
1809 vp = filp->f_vnode;
1810 if (vp == NULL) {
1811 error = 0;
1812 kif->kf_type = KF_TYPE_DEV;
1813 } else {
1814 vref(vp);
1815 FILEDESC_SUNLOCK(fdp);
1816 error = vn_fill_kinfo_vnode(vp, kif);
1817 vrele(vp);
1818 kif->kf_type = KF_TYPE_VNODE;
1819 FILEDESC_SLOCK(fdp);
1820 }
1821 return (error);
1822 }
1823
1824 unsigned int
linux_iminor(struct inode * inode)1825 linux_iminor(struct inode *inode)
1826 {
1827 struct linux_cdev *ldev;
1828
1829 if (inode == NULL || inode->v_rdev == NULL ||
1830 inode->v_rdev->si_devsw != &linuxcdevsw)
1831 return (-1U);
1832 ldev = inode->v_rdev->si_drv1;
1833 if (ldev == NULL)
1834 return (-1U);
1835
1836 return (minor(ldev->dev));
1837 }
1838
1839 static int
linux_file_kcmp(struct file * fp1,struct file * fp2,struct thread * td)1840 linux_file_kcmp(struct file *fp1, struct file *fp2, struct thread *td)
1841 {
1842 struct linux_file *filp1, *filp2;
1843
1844 if (fp2->f_type != DTYPE_DEV)
1845 return (3);
1846
1847 filp1 = fp1->f_data;
1848 filp2 = fp2->f_data;
1849 return (kcmp_cmp((uintptr_t)filp1->f_cdev, (uintptr_t)filp2->f_cdev));
1850 }
1851
1852 const struct fileops linuxfileops = {
1853 .fo_read = linux_file_read,
1854 .fo_write = linux_file_write,
1855 .fo_truncate = invfo_truncate,
1856 .fo_kqfilter = linux_file_kqfilter,
1857 .fo_stat = linux_file_stat,
1858 .fo_fill_kinfo = linux_file_fill_kinfo,
1859 .fo_poll = linux_file_poll,
1860 .fo_close = linux_file_close,
1861 .fo_ioctl = linux_file_ioctl,
1862 .fo_mmap = linux_file_mmap,
1863 .fo_chmod = invfo_chmod,
1864 .fo_chown = invfo_chown,
1865 .fo_sendfile = invfo_sendfile,
1866 .fo_cmp = linux_file_kcmp,
1867 .fo_flags = DFLAG_PASSABLE,
1868 };
1869
1870 static char *
devm_kvasprintf(struct device * dev,gfp_t gfp,const char * fmt,va_list ap)1871 devm_kvasprintf(struct device *dev, gfp_t gfp, const char *fmt, va_list ap)
1872 {
1873 unsigned int len;
1874 char *p;
1875 va_list aq;
1876
1877 va_copy(aq, ap);
1878 len = vsnprintf(NULL, 0, fmt, aq);
1879 va_end(aq);
1880
1881 if (dev != NULL)
1882 p = devm_kmalloc(dev, len + 1, gfp);
1883 else
1884 p = kmalloc(len + 1, gfp);
1885 if (p != NULL)
1886 vsnprintf(p, len + 1, fmt, ap);
1887
1888 return (p);
1889 }
1890
1891 char *
kvasprintf(gfp_t gfp,const char * fmt,va_list ap)1892 kvasprintf(gfp_t gfp, const char *fmt, va_list ap)
1893 {
1894
1895 return (devm_kvasprintf(NULL, gfp, fmt, ap));
1896 }
1897
1898 char *
lkpi_devm_kasprintf(struct device * dev,gfp_t gfp,const char * fmt,...)1899 lkpi_devm_kasprintf(struct device *dev, gfp_t gfp, const char *fmt, ...)
1900 {
1901 va_list ap;
1902 char *p;
1903
1904 va_start(ap, fmt);
1905 p = devm_kvasprintf(dev, gfp, fmt, ap);
1906 va_end(ap);
1907
1908 return (p);
1909 }
1910
1911 char *
kasprintf(gfp_t gfp,const char * fmt,...)1912 kasprintf(gfp_t gfp, const char *fmt, ...)
1913 {
1914 va_list ap;
1915 char *p;
1916
1917 va_start(ap, fmt);
1918 p = kvasprintf(gfp, fmt, ap);
1919 va_end(ap);
1920
1921 return (p);
1922 }
1923
1924 int
__lkpi_hexdump_printf(void * arg1 __unused,const char * fmt,...)1925 __lkpi_hexdump_printf(void *arg1 __unused, const char *fmt, ...)
1926 {
1927 va_list ap;
1928 int result;
1929
1930 va_start(ap, fmt);
1931 result = vprintf(fmt, ap);
1932 va_end(ap);
1933 return (result);
1934 }
1935
1936 int
__lkpi_hexdump_sbuf_printf(void * arg1,const char * fmt,...)1937 __lkpi_hexdump_sbuf_printf(void *arg1, const char *fmt, ...)
1938 {
1939 va_list ap;
1940 int result;
1941
1942 va_start(ap, fmt);
1943 result = sbuf_vprintf(arg1, fmt, ap);
1944 va_end(ap);
1945 return (result);
1946 }
1947
1948 void
lkpi_hex_dump(int (* _fpf)(void *,const char *,...),void * arg1,const char * level,const char * prefix_str,const int prefix_type,const int rowsize,const int groupsize,const void * buf,size_t len,const bool ascii,const bool trailing_newline)1949 lkpi_hex_dump(int(*_fpf)(void *, const char *, ...), void *arg1,
1950 const char *level, const char *prefix_str,
1951 const int prefix_type, const int rowsize, const int groupsize,
1952 const void *buf, size_t len, const bool ascii, const bool trailing_newline)
1953 {
1954 typedef const struct { long long value; } __packed *print_64p_t;
1955 typedef const struct { uint32_t value; } __packed *print_32p_t;
1956 typedef const struct { uint16_t value; } __packed *print_16p_t;
1957 const void *buf_old = buf;
1958 int row, linelen, ret;
1959
1960 while (len > 0) {
1961 linelen = 0;
1962 if (level != NULL) {
1963 ret = _fpf(arg1, "%s", level);
1964 if (ret < 0)
1965 break;
1966 linelen += ret;
1967 }
1968 if (prefix_str != NULL) {
1969 ret = _fpf(
1970 arg1, "%s%s", linelen ? " " : "", prefix_str);
1971 if (ret < 0)
1972 break;
1973 linelen += ret;
1974 }
1975
1976 switch (prefix_type) {
1977 case DUMP_PREFIX_ADDRESS:
1978 ret = _fpf(
1979 arg1, "%s[%p]", linelen ? " " : "", buf);
1980 if (ret < 0)
1981 return;
1982 linelen += ret;
1983 break;
1984 case DUMP_PREFIX_OFFSET:
1985 ret = _fpf(
1986 arg1, "%s[%#tx]", linelen ? " " : "",
1987 ((const char *)buf - (const char *)buf_old));
1988 if (ret < 0)
1989 return;
1990 linelen += ret;
1991 break;
1992 default:
1993 break;
1994 }
1995 for (row = 0; row != rowsize; row++) {
1996 if (groupsize == 8 && len > 7) {
1997 ret = _fpf(
1998 arg1, "%s%016llx", linelen ? " " : "",
1999 ((print_64p_t)buf)->value);
2000 if (ret < 0)
2001 return;
2002 linelen += ret;
2003 buf = (const uint8_t *)buf + 8;
2004 len -= 8;
2005 } else if (groupsize == 4 && len > 3) {
2006 ret = _fpf(
2007 arg1, "%s%08x", linelen ? " " : "",
2008 ((print_32p_t)buf)->value);
2009 if (ret < 0)
2010 return;
2011 linelen += ret;
2012 buf = (const uint8_t *)buf + 4;
2013 len -= 4;
2014 } else if (groupsize == 2 && len > 1) {
2015 ret = _fpf(
2016 arg1, "%s%04x", linelen ? " " : "",
2017 ((print_16p_t)buf)->value);
2018 if (ret < 0)
2019 return;
2020 linelen += ret;
2021 buf = (const uint8_t *)buf + 2;
2022 len -= 2;
2023 } else if (len > 0) {
2024 ret = _fpf(
2025 arg1, "%s%02x", linelen ? " " : "",
2026 *(const uint8_t *)buf);
2027 if (ret < 0)
2028 return;
2029 linelen += ret;
2030 buf = (const uint8_t *)buf + 1;
2031 len--;
2032 } else {
2033 break;
2034 }
2035 }
2036 if (len > 0 && trailing_newline) {
2037 ret = _fpf(arg1, "\n");
2038 if (ret < 0)
2039 break;
2040 }
2041 }
2042 }
2043
2044 struct hdtb_context {
2045 char *linebuf;
2046 size_t linebuflen;
2047 int written;
2048 };
2049
2050 static int
hdtb_cb(void * arg,const char * format,...)2051 hdtb_cb(void *arg, const char *format, ...)
2052 {
2053 struct hdtb_context *context;
2054 int written;
2055 va_list args;
2056
2057 context = arg;
2058
2059 va_start(args, format);
2060 written = vsnprintf(
2061 context->linebuf, context->linebuflen, format, args);
2062 va_end(args);
2063
2064 if (written < 0)
2065 return (written);
2066
2067 /*
2068 * Linux' hex_dump_to_buffer() function has the same behaviour as
2069 * snprintf() basically. Therefore, it returns the number of bytes it
2070 * would have written if the destination buffer was large enough.
2071 *
2072 * If the destination buffer was exhausted, lkpi_hex_dump() will
2073 * continue to call this callback but it will only compute the bytes it
2074 * would have written but write nothing to that buffer.
2075 */
2076 context->written += written;
2077
2078 if (written < context->linebuflen) {
2079 context->linebuf += written;
2080 context->linebuflen -= written;
2081 } else {
2082 context->linebuf += context->linebuflen;
2083 context->linebuflen = 0;
2084 }
2085
2086 return (written);
2087 }
2088
2089 int
lkpi_hex_dump_to_buffer(const void * buf,size_t len,int rowsize,int groupsize,char * linebuf,size_t linebuflen,bool ascii)2090 lkpi_hex_dump_to_buffer(const void *buf, size_t len, int rowsize,
2091 int groupsize, char *linebuf, size_t linebuflen, bool ascii)
2092 {
2093 int written;
2094 struct hdtb_context context;
2095
2096 context.linebuf = linebuf;
2097 context.linebuflen = linebuflen;
2098 context.written = 0;
2099
2100 if (rowsize != 16 && rowsize != 32)
2101 rowsize = 16;
2102
2103 len = min(len, rowsize);
2104
2105 lkpi_hex_dump(
2106 hdtb_cb, &context, NULL, NULL, DUMP_PREFIX_NONE,
2107 rowsize, groupsize, buf, len, ascii, false);
2108
2109 written = context.written;
2110
2111 return (written);
2112 }
2113
2114 static void
linux_timer_callback_wrapper(void * context)2115 linux_timer_callback_wrapper(void *context)
2116 {
2117 struct timer_list *timer;
2118
2119 timer = context;
2120
2121 /* the timer is about to be shutdown permanently */
2122 if (timer->function == NULL)
2123 return;
2124
2125 if (linux_set_current_flags(curthread, M_NOWAIT)) {
2126 /* try again later */
2127 callout_reset(&timer->callout, 1,
2128 &linux_timer_callback_wrapper, timer);
2129 return;
2130 }
2131
2132 timer->function(timer->data);
2133 }
2134
2135 static int
linux_timer_jiffies_until(unsigned long expires)2136 linux_timer_jiffies_until(unsigned long expires)
2137 {
2138 unsigned long delta = expires - jiffies;
2139
2140 /*
2141 * Guard against already expired values and make sure that the value can
2142 * be used as a tick count, rather than a jiffies count.
2143 */
2144 if ((long)delta < 1)
2145 delta = 1;
2146 else if (delta > INT_MAX)
2147 delta = INT_MAX;
2148 return ((int)delta);
2149 }
2150
2151 int
mod_timer(struct timer_list * timer,unsigned long expires)2152 mod_timer(struct timer_list *timer, unsigned long expires)
2153 {
2154 int ret;
2155
2156 timer->expires = expires;
2157 ret = callout_reset(&timer->callout,
2158 linux_timer_jiffies_until(expires),
2159 &linux_timer_callback_wrapper, timer);
2160
2161 MPASS(ret == 0 || ret == 1);
2162
2163 return (ret == 1);
2164 }
2165
2166 void
add_timer(struct timer_list * timer)2167 add_timer(struct timer_list *timer)
2168 {
2169
2170 callout_reset(&timer->callout,
2171 linux_timer_jiffies_until(timer->expires),
2172 &linux_timer_callback_wrapper, timer);
2173 }
2174
2175 void
add_timer_on(struct timer_list * timer,int cpu)2176 add_timer_on(struct timer_list *timer, int cpu)
2177 {
2178
2179 callout_reset_on(&timer->callout,
2180 linux_timer_jiffies_until(timer->expires),
2181 &linux_timer_callback_wrapper, timer, cpu);
2182 }
2183
2184 int
timer_delete(struct timer_list * timer)2185 timer_delete(struct timer_list *timer)
2186 {
2187
2188 if (callout_stop(&(timer)->callout) == -1)
2189 return (0);
2190 return (1);
2191 }
2192
2193 int
timer_delete_sync(struct timer_list * timer)2194 timer_delete_sync(struct timer_list *timer)
2195 {
2196
2197 if (callout_drain(&(timer)->callout) == -1)
2198 return (0);
2199 return (1);
2200 }
2201
2202 int
timer_shutdown_sync(struct timer_list * timer)2203 timer_shutdown_sync(struct timer_list *timer)
2204 {
2205
2206 timer->function = NULL;
2207 return (del_timer_sync(timer));
2208 }
2209
2210 /* greatest common divisor, Euclid equation */
2211 static uint64_t
lkpi_gcd_64(uint64_t a,uint64_t b)2212 lkpi_gcd_64(uint64_t a, uint64_t b)
2213 {
2214 uint64_t an;
2215 uint64_t bn;
2216
2217 while (b != 0) {
2218 an = b;
2219 bn = a % b;
2220 a = an;
2221 b = bn;
2222 }
2223 return (a);
2224 }
2225
2226 uint64_t lkpi_nsec2hz_rem;
2227 uint64_t lkpi_nsec2hz_div = 1000000000ULL;
2228 uint64_t lkpi_nsec2hz_max;
2229
2230 uint64_t lkpi_usec2hz_rem;
2231 uint64_t lkpi_usec2hz_div = 1000000ULL;
2232 uint64_t lkpi_usec2hz_max;
2233
2234 uint64_t lkpi_msec2hz_rem;
2235 uint64_t lkpi_msec2hz_div = 1000ULL;
2236 uint64_t lkpi_msec2hz_max;
2237
2238 static void
linux_timer_init(void * arg)2239 linux_timer_init(void *arg)
2240 {
2241 uint64_t gcd;
2242
2243 /*
2244 * Compute an internal HZ value which can divide 2**32 to
2245 * avoid timer rounding problems when the tick value wraps
2246 * around 2**32:
2247 */
2248 linux_timer_hz_mask = 1;
2249 while (linux_timer_hz_mask < (unsigned long)hz)
2250 linux_timer_hz_mask *= 2;
2251 linux_timer_hz_mask--;
2252
2253 /* compute some internal constants */
2254
2255 lkpi_nsec2hz_rem = hz;
2256 lkpi_usec2hz_rem = hz;
2257 lkpi_msec2hz_rem = hz;
2258
2259 gcd = lkpi_gcd_64(lkpi_nsec2hz_rem, lkpi_nsec2hz_div);
2260 lkpi_nsec2hz_rem /= gcd;
2261 lkpi_nsec2hz_div /= gcd;
2262 lkpi_nsec2hz_max = -1ULL / lkpi_nsec2hz_rem;
2263
2264 gcd = lkpi_gcd_64(lkpi_usec2hz_rem, lkpi_usec2hz_div);
2265 lkpi_usec2hz_rem /= gcd;
2266 lkpi_usec2hz_div /= gcd;
2267 lkpi_usec2hz_max = -1ULL / lkpi_usec2hz_rem;
2268
2269 gcd = lkpi_gcd_64(lkpi_msec2hz_rem, lkpi_msec2hz_div);
2270 lkpi_msec2hz_rem /= gcd;
2271 lkpi_msec2hz_div /= gcd;
2272 lkpi_msec2hz_max = -1ULL / lkpi_msec2hz_rem;
2273 }
2274 SYSINIT(linux_timer, SI_SUB_DRIVERS, SI_ORDER_FIRST, linux_timer_init, NULL);
2275
2276 void
linux_complete_common(struct completion * c,int all)2277 linux_complete_common(struct completion *c, int all)
2278 {
2279 sleepq_lock(c);
2280 if (all) {
2281 c->done = UINT_MAX;
2282 sleepq_broadcast(c, SLEEPQ_SLEEP, 0, 0);
2283 } else {
2284 if (c->done != UINT_MAX)
2285 c->done++;
2286 sleepq_signal(c, SLEEPQ_SLEEP, 0, 0);
2287 }
2288 sleepq_release(c);
2289 }
2290
2291 /*
2292 * Indefinite wait for done != 0 with or without signals.
2293 */
2294 int
linux_wait_for_common(struct completion * c,int flags)2295 linux_wait_for_common(struct completion *c, int flags)
2296 {
2297 struct task_struct *task;
2298 int error;
2299
2300 if (SCHEDULER_STOPPED())
2301 return (0);
2302
2303 task = current;
2304
2305 if (flags != 0)
2306 flags = SLEEPQ_INTERRUPTIBLE | SLEEPQ_SLEEP;
2307 else
2308 flags = SLEEPQ_SLEEP;
2309 error = 0;
2310 for (;;) {
2311 sleepq_lock(c);
2312 if (c->done)
2313 break;
2314 sleepq_add(c, NULL, "completion", flags, 0);
2315 if (flags & SLEEPQ_INTERRUPTIBLE) {
2316 DROP_GIANT();
2317 error = -sleepq_wait_sig(c, 0);
2318 PICKUP_GIANT();
2319 if (error != 0) {
2320 linux_schedule_save_interrupt_value(task, error);
2321 error = -ERESTARTSYS;
2322 goto intr;
2323 }
2324 } else {
2325 DROP_GIANT();
2326 sleepq_wait(c, 0);
2327 PICKUP_GIANT();
2328 }
2329 }
2330 if (c->done != UINT_MAX)
2331 c->done--;
2332 sleepq_release(c);
2333
2334 intr:
2335 return (error);
2336 }
2337
2338 /*
2339 * Time limited wait for done != 0 with or without signals.
2340 */
2341 unsigned long
linux_wait_for_timeout_common(struct completion * c,unsigned long timeout,int flags)2342 linux_wait_for_timeout_common(struct completion *c, unsigned long timeout,
2343 int flags)
2344 {
2345 struct task_struct *task;
2346 unsigned long end = jiffies + timeout, error;
2347
2348 if (SCHEDULER_STOPPED())
2349 return (0);
2350
2351 task = current;
2352
2353 if (flags != 0)
2354 flags = SLEEPQ_INTERRUPTIBLE | SLEEPQ_SLEEP;
2355 else
2356 flags = SLEEPQ_SLEEP;
2357
2358 for (;;) {
2359 sleepq_lock(c);
2360 if (c->done)
2361 break;
2362 sleepq_add(c, NULL, "completion", flags, 0);
2363 sleepq_set_timeout(c, linux_timer_jiffies_until(end));
2364
2365 DROP_GIANT();
2366 if (flags & SLEEPQ_INTERRUPTIBLE)
2367 error = -sleepq_timedwait_sig(c, 0);
2368 else
2369 error = -sleepq_timedwait(c, 0);
2370 PICKUP_GIANT();
2371
2372 if (error != 0) {
2373 /* check for timeout */
2374 if (error == -EWOULDBLOCK) {
2375 error = 0; /* timeout */
2376 } else {
2377 /* signal happened */
2378 linux_schedule_save_interrupt_value(task, error);
2379 error = -ERESTARTSYS;
2380 }
2381 goto done;
2382 }
2383 }
2384 if (c->done != UINT_MAX)
2385 c->done--;
2386 sleepq_release(c);
2387
2388 /* return how many jiffies are left */
2389 error = linux_timer_jiffies_until(end);
2390 done:
2391 return (error);
2392 }
2393
2394 int
linux_try_wait_for_completion(struct completion * c)2395 linux_try_wait_for_completion(struct completion *c)
2396 {
2397 int isdone;
2398
2399 sleepq_lock(c);
2400 isdone = (c->done != 0);
2401 if (c->done != 0 && c->done != UINT_MAX)
2402 c->done--;
2403 sleepq_release(c);
2404 return (isdone);
2405 }
2406
2407 int
linux_completion_done(struct completion * c)2408 linux_completion_done(struct completion *c)
2409 {
2410 int isdone;
2411
2412 sleepq_lock(c);
2413 isdone = (c->done != 0);
2414 sleepq_release(c);
2415 return (isdone);
2416 }
2417
2418 static void
linux_cdev_deref(struct linux_cdev * ldev)2419 linux_cdev_deref(struct linux_cdev *ldev)
2420 {
2421 if (refcount_release(&ldev->refs) &&
2422 ldev->kobj.ktype == &linux_cdev_ktype)
2423 kfree(ldev);
2424 }
2425
2426 static void
linux_cdev_release(struct kobject * kobj)2427 linux_cdev_release(struct kobject *kobj)
2428 {
2429 struct linux_cdev *cdev;
2430 struct kobject *parent;
2431
2432 cdev = container_of(kobj, struct linux_cdev, kobj);
2433 parent = kobj->parent;
2434 linux_destroy_dev(cdev);
2435 linux_cdev_deref(cdev);
2436 kobject_put(parent);
2437 }
2438
2439 static void
linux_cdev_static_release(struct kobject * kobj)2440 linux_cdev_static_release(struct kobject *kobj)
2441 {
2442 struct cdev *cdev;
2443 struct linux_cdev *ldev;
2444
2445 ldev = container_of(kobj, struct linux_cdev, kobj);
2446 cdev = ldev->cdev;
2447 if (cdev != NULL) {
2448 destroy_dev(cdev);
2449 ldev->cdev = NULL;
2450 }
2451 kobject_put(kobj->parent);
2452 }
2453
2454 int
linux_cdev_device_add(struct linux_cdev * ldev,struct device * dev)2455 linux_cdev_device_add(struct linux_cdev *ldev, struct device *dev)
2456 {
2457 int ret;
2458
2459 if (dev->devt != 0) {
2460 /* Set parent kernel object. */
2461 ldev->kobj.parent = &dev->kobj;
2462
2463 /*
2464 * Unlike Linux we require the kobject of the
2465 * character device structure to have a valid name
2466 * before calling this function:
2467 */
2468 if (ldev->kobj.name == NULL)
2469 return (-EINVAL);
2470
2471 ret = cdev_add(ldev, dev->devt, 1);
2472 if (ret)
2473 return (ret);
2474 }
2475 ret = device_add(dev);
2476 if (ret != 0 && dev->devt != 0)
2477 cdev_del(ldev);
2478 return (ret);
2479 }
2480
2481 void
linux_cdev_device_del(struct linux_cdev * ldev,struct device * dev)2482 linux_cdev_device_del(struct linux_cdev *ldev, struct device *dev)
2483 {
2484 device_del(dev);
2485
2486 if (dev->devt != 0)
2487 cdev_del(ldev);
2488 }
2489
2490 static void
linux_destroy_dev(struct linux_cdev * ldev)2491 linux_destroy_dev(struct linux_cdev *ldev)
2492 {
2493
2494 if (ldev->cdev == NULL)
2495 return;
2496
2497 MPASS((ldev->siref & LDEV_SI_DTR) == 0);
2498 MPASS(ldev->kobj.ktype == &linux_cdev_ktype);
2499
2500 atomic_set_int(&ldev->siref, LDEV_SI_DTR);
2501 while ((atomic_load_int(&ldev->siref) & ~LDEV_SI_DTR) != 0)
2502 pause("ldevdtr", hz / 4);
2503
2504 destroy_dev(ldev->cdev);
2505 ldev->cdev = NULL;
2506 }
2507
2508 const struct kobj_type linux_cdev_ktype = {
2509 .release = linux_cdev_release,
2510 };
2511
2512 const struct kobj_type linux_cdev_static_ktype = {
2513 .release = linux_cdev_static_release,
2514 };
2515
2516 static void
linux_handle_ifnet_link_event(void * arg,struct ifnet * ifp,int linkstate)2517 linux_handle_ifnet_link_event(void *arg, struct ifnet *ifp, int linkstate)
2518 {
2519 struct notifier_block *nb;
2520 struct netdev_notifier_info ni;
2521
2522 nb = arg;
2523 ni.ifp = ifp;
2524 ni.dev = (struct net_device *)ifp;
2525 if (linkstate == LINK_STATE_UP)
2526 nb->notifier_call(nb, NETDEV_UP, &ni);
2527 else
2528 nb->notifier_call(nb, NETDEV_DOWN, &ni);
2529 }
2530
2531 static void
linux_handle_ifnet_arrival_event(void * arg,struct ifnet * ifp)2532 linux_handle_ifnet_arrival_event(void *arg, struct ifnet *ifp)
2533 {
2534 struct notifier_block *nb;
2535 struct netdev_notifier_info ni;
2536
2537 nb = arg;
2538 ni.ifp = ifp;
2539 ni.dev = (struct net_device *)ifp;
2540 nb->notifier_call(nb, NETDEV_REGISTER, &ni);
2541 }
2542
2543 static void
linux_handle_ifnet_departure_event(void * arg,struct ifnet * ifp)2544 linux_handle_ifnet_departure_event(void *arg, struct ifnet *ifp)
2545 {
2546 struct notifier_block *nb;
2547 struct netdev_notifier_info ni;
2548
2549 nb = arg;
2550 ni.ifp = ifp;
2551 ni.dev = (struct net_device *)ifp;
2552 nb->notifier_call(nb, NETDEV_UNREGISTER, &ni);
2553 }
2554
2555 static void
linux_handle_iflladdr_event(void * arg,struct ifnet * ifp)2556 linux_handle_iflladdr_event(void *arg, struct ifnet *ifp)
2557 {
2558 struct notifier_block *nb;
2559 struct netdev_notifier_info ni;
2560
2561 nb = arg;
2562 ni.ifp = ifp;
2563 ni.dev = (struct net_device *)ifp;
2564 nb->notifier_call(nb, NETDEV_CHANGEADDR, &ni);
2565 }
2566
2567 static void
linux_handle_ifaddr_event(void * arg,struct ifnet * ifp)2568 linux_handle_ifaddr_event(void *arg, struct ifnet *ifp)
2569 {
2570 struct notifier_block *nb;
2571 struct netdev_notifier_info ni;
2572
2573 nb = arg;
2574 ni.ifp = ifp;
2575 ni.dev = (struct net_device *)ifp;
2576 nb->notifier_call(nb, NETDEV_CHANGEIFADDR, &ni);
2577 }
2578
2579 int
register_netdevice_notifier(struct notifier_block * nb)2580 register_netdevice_notifier(struct notifier_block *nb)
2581 {
2582
2583 nb->tags[NETDEV_UP] = EVENTHANDLER_REGISTER(
2584 ifnet_link_event, linux_handle_ifnet_link_event, nb, 0);
2585 nb->tags[NETDEV_REGISTER] = EVENTHANDLER_REGISTER(
2586 ifnet_arrival_event, linux_handle_ifnet_arrival_event, nb, 0);
2587 nb->tags[NETDEV_UNREGISTER] = EVENTHANDLER_REGISTER(
2588 ifnet_departure_event, linux_handle_ifnet_departure_event, nb, 0);
2589 nb->tags[NETDEV_CHANGEADDR] = EVENTHANDLER_REGISTER(
2590 iflladdr_event, linux_handle_iflladdr_event, nb, 0);
2591
2592 return (0);
2593 }
2594
2595 int
register_inetaddr_notifier(struct notifier_block * nb)2596 register_inetaddr_notifier(struct notifier_block *nb)
2597 {
2598
2599 nb->tags[NETDEV_CHANGEIFADDR] = EVENTHANDLER_REGISTER(
2600 ifaddr_event, linux_handle_ifaddr_event, nb, 0);
2601 return (0);
2602 }
2603
2604 int
unregister_netdevice_notifier(struct notifier_block * nb)2605 unregister_netdevice_notifier(struct notifier_block *nb)
2606 {
2607
2608 EVENTHANDLER_DEREGISTER(ifnet_link_event,
2609 nb->tags[NETDEV_UP]);
2610 EVENTHANDLER_DEREGISTER(ifnet_arrival_event,
2611 nb->tags[NETDEV_REGISTER]);
2612 EVENTHANDLER_DEREGISTER(ifnet_departure_event,
2613 nb->tags[NETDEV_UNREGISTER]);
2614 EVENTHANDLER_DEREGISTER(iflladdr_event,
2615 nb->tags[NETDEV_CHANGEADDR]);
2616
2617 return (0);
2618 }
2619
2620 int
unregister_inetaddr_notifier(struct notifier_block * nb)2621 unregister_inetaddr_notifier(struct notifier_block *nb)
2622 {
2623
2624 EVENTHANDLER_DEREGISTER(ifaddr_event,
2625 nb->tags[NETDEV_CHANGEIFADDR]);
2626
2627 return (0);
2628 }
2629
2630 struct list_sort_thunk {
2631 int (*cmp)(void *, struct list_head *, struct list_head *);
2632 void *priv;
2633 };
2634
2635 static inline int
linux_le_cmp(const void * d1,const void * d2,void * priv)2636 linux_le_cmp(const void *d1, const void *d2, void *priv)
2637 {
2638 struct list_head *le1, *le2;
2639 struct list_sort_thunk *thunk;
2640
2641 thunk = priv;
2642 le1 = *(__DECONST(struct list_head **, d1));
2643 le2 = *(__DECONST(struct list_head **, d2));
2644 return ((thunk->cmp)(thunk->priv, le1, le2));
2645 }
2646
2647 void
list_sort(void * priv,struct list_head * head,int (* cmp)(void * priv,struct list_head * a,struct list_head * b))2648 list_sort(void *priv, struct list_head *head, int (*cmp)(void *priv,
2649 struct list_head *a, struct list_head *b))
2650 {
2651 struct list_sort_thunk thunk;
2652 struct list_head **ar, *le;
2653 size_t count, i;
2654
2655 count = 0;
2656 list_for_each(le, head)
2657 count++;
2658 ar = malloc(sizeof(struct list_head *) * count, M_KMALLOC, M_WAITOK);
2659 i = 0;
2660 list_for_each(le, head)
2661 ar[i++] = le;
2662 thunk.cmp = cmp;
2663 thunk.priv = priv;
2664 qsort_r(ar, count, sizeof(struct list_head *), linux_le_cmp, &thunk);
2665 INIT_LIST_HEAD(head);
2666 for (i = 0; i < count; i++)
2667 list_add_tail(ar[i], head);
2668 free(ar, M_KMALLOC);
2669 }
2670
2671 #if defined(__i386__) || defined(__amd64__)
2672 int
linux_wbinvd_on_all_cpus(void)2673 linux_wbinvd_on_all_cpus(void)
2674 {
2675
2676 pmap_invalidate_cache();
2677 return (0);
2678 }
2679 #endif
2680
2681 int
linux_on_each_cpu(void callback (void *),void * data)2682 linux_on_each_cpu(void callback(void *), void *data)
2683 {
2684
2685 smp_rendezvous(smp_no_rendezvous_barrier, callback,
2686 smp_no_rendezvous_barrier, data);
2687 return (0);
2688 }
2689
2690 int
linux_in_atomic(void)2691 linux_in_atomic(void)
2692 {
2693
2694 return ((curthread->td_pflags & TDP_NOFAULTING) != 0);
2695 }
2696
2697 struct linux_cdev *
linux_find_cdev(const char * name,unsigned major,unsigned minor)2698 linux_find_cdev(const char *name, unsigned major, unsigned minor)
2699 {
2700 dev_t dev = MKDEV(major, minor);
2701 struct cdev *cdev;
2702
2703 dev_lock();
2704 LIST_FOREACH(cdev, &linuxcdevsw.d_devs, si_list) {
2705 struct linux_cdev *ldev = cdev->si_drv1;
2706 if (ldev->dev == dev &&
2707 strcmp(kobject_name(&ldev->kobj), name) == 0) {
2708 break;
2709 }
2710 }
2711 dev_unlock();
2712
2713 return (cdev != NULL ? cdev->si_drv1 : NULL);
2714 }
2715
2716 int
__register_chrdev(unsigned int major,unsigned int baseminor,unsigned int count,const char * name,const struct file_operations * fops)2717 __register_chrdev(unsigned int major, unsigned int baseminor,
2718 unsigned int count, const char *name,
2719 const struct file_operations *fops)
2720 {
2721 struct linux_cdev *cdev;
2722 int ret = 0;
2723 int i;
2724
2725 for (i = baseminor; i < baseminor + count; i++) {
2726 cdev = cdev_alloc();
2727 cdev->ops = fops;
2728 kobject_set_name(&cdev->kobj, name);
2729
2730 ret = cdev_add(cdev, makedev(major, i), 1);
2731 if (ret != 0)
2732 break;
2733 }
2734 return (ret);
2735 }
2736
2737 int
__register_chrdev_p(unsigned int major,unsigned int baseminor,unsigned int count,const char * name,const struct file_operations * fops,uid_t uid,gid_t gid,int mode)2738 __register_chrdev_p(unsigned int major, unsigned int baseminor,
2739 unsigned int count, const char *name,
2740 const struct file_operations *fops, uid_t uid,
2741 gid_t gid, int mode)
2742 {
2743 struct linux_cdev *cdev;
2744 int ret = 0;
2745 int i;
2746
2747 for (i = baseminor; i < baseminor + count; i++) {
2748 cdev = cdev_alloc();
2749 cdev->ops = fops;
2750 kobject_set_name(&cdev->kobj, name);
2751
2752 ret = cdev_add_ext(cdev, makedev(major, i), uid, gid, mode);
2753 if (ret != 0)
2754 break;
2755 }
2756 return (ret);
2757 }
2758
2759 void
__unregister_chrdev(unsigned int major,unsigned int baseminor,unsigned int count,const char * name)2760 __unregister_chrdev(unsigned int major, unsigned int baseminor,
2761 unsigned int count, const char *name)
2762 {
2763 struct linux_cdev *cdevp;
2764 int i;
2765
2766 for (i = baseminor; i < baseminor + count; i++) {
2767 cdevp = linux_find_cdev(name, major, i);
2768 if (cdevp != NULL)
2769 cdev_del(cdevp);
2770 }
2771 }
2772
2773 void
linux_dump_stack(void)2774 linux_dump_stack(void)
2775 {
2776 #ifdef STACK
2777 struct stack st;
2778
2779 stack_save(&st);
2780 stack_print(&st);
2781 #endif
2782 }
2783
2784 int
linuxkpi_net_ratelimit(void)2785 linuxkpi_net_ratelimit(void)
2786 {
2787
2788 return (ppsratecheck(&lkpi_net_lastlog, &lkpi_net_curpps,
2789 lkpi_net_maxpps));
2790 }
2791
2792 struct io_mapping *
io_mapping_create_wc(resource_size_t base,unsigned long size)2793 io_mapping_create_wc(resource_size_t base, unsigned long size)
2794 {
2795 struct io_mapping *mapping;
2796
2797 mapping = kmalloc(sizeof(*mapping), GFP_KERNEL);
2798 if (mapping == NULL)
2799 return (NULL);
2800 return (io_mapping_init_wc(mapping, base, size));
2801 }
2802
2803 /* We likely want a linuxkpi_device.c at some point. */
2804 bool
device_can_wakeup(struct device * dev)2805 device_can_wakeup(struct device *dev)
2806 {
2807
2808 if (dev == NULL)
2809 return (false);
2810 /*
2811 * XXX-BZ iwlwifi queries it as part of enabling WoWLAN.
2812 * Normally this would be based on a bool in dev->power.XXX.
2813 * Check such as PCI PCIM_PCAP_*PME. We have no way to enable this yet.
2814 * We may get away by directly calling into bsddev for as long as
2815 * we can assume PCI only avoiding changing struct device breaking KBI.
2816 */
2817 pr_debug("%s:%d: not enabled; see comment.\n", __func__, __LINE__);
2818 return (false);
2819 }
2820
2821 static void
devm_device_group_remove(struct device * dev,void * p)2822 devm_device_group_remove(struct device *dev, void *p)
2823 {
2824 const struct attribute_group **dr = p;
2825 const struct attribute_group *group = *dr;
2826
2827 sysfs_remove_group(&dev->kobj, group);
2828 }
2829
2830 int
lkpi_devm_device_add_group(struct device * dev,const struct attribute_group * group)2831 lkpi_devm_device_add_group(struct device *dev,
2832 const struct attribute_group *group)
2833 {
2834 const struct attribute_group **dr;
2835 int ret;
2836
2837 dr = devres_alloc(devm_device_group_remove, sizeof(*dr), GFP_KERNEL);
2838 if (dr == NULL)
2839 return (-ENOMEM);
2840
2841 ret = sysfs_create_group(&dev->kobj, group);
2842 if (ret == 0) {
2843 *dr = group;
2844 devres_add(dev, dr);
2845 } else
2846 devres_free(dr);
2847
2848 return (ret);
2849 }
2850
2851 #if defined(__i386__) || defined(__amd64__)
2852 bool linux_cpu_has_clflush;
2853 struct cpuinfo_x86 boot_cpu_data;
2854 struct cpuinfo_x86 *__cpu_data;
2855 #endif
2856
2857 cpumask_t *
lkpi_get_static_single_cpu_mask(int cpuid)2858 lkpi_get_static_single_cpu_mask(int cpuid)
2859 {
2860
2861 KASSERT((cpuid >= 0 && cpuid <= mp_maxid), ("%s: invalid cpuid %d\n",
2862 __func__, cpuid));
2863 KASSERT(!CPU_ABSENT(cpuid), ("%s: cpu with cpuid %d is absent\n",
2864 __func__, cpuid));
2865
2866 return (static_single_cpu_mask[cpuid]);
2867 }
2868
2869 bool
lkpi_xen_initial_domain(void)2870 lkpi_xen_initial_domain(void)
2871 {
2872 #ifdef XENHVM
2873 return (xen_initial_domain());
2874 #else
2875 return (false);
2876 #endif
2877 }
2878
2879 bool
lkpi_xen_pv_domain(void)2880 lkpi_xen_pv_domain(void)
2881 {
2882 #ifdef XENHVM
2883 return (xen_pv_domain());
2884 #else
2885 return (false);
2886 #endif
2887 }
2888
2889 static void
linux_compat_init(void * arg)2890 linux_compat_init(void *arg)
2891 {
2892 struct sysctl_oid *rootoid;
2893 int i;
2894
2895 #if defined(__i386__) || defined(__amd64__)
2896 static const uint32_t x86_vendors[X86_VENDOR_NUM] = {
2897 [X86_VENDOR_INTEL] = CPU_VENDOR_INTEL,
2898 [X86_VENDOR_CYRIX] = CPU_VENDOR_CYRIX,
2899 [X86_VENDOR_AMD] = CPU_VENDOR_AMD,
2900 [X86_VENDOR_UMC] = CPU_VENDOR_UMC,
2901 [X86_VENDOR_CENTAUR] = CPU_VENDOR_CENTAUR,
2902 [X86_VENDOR_TRANSMETA] = CPU_VENDOR_TRANSMETA,
2903 [X86_VENDOR_NSC] = CPU_VENDOR_NSC,
2904 [X86_VENDOR_HYGON] = CPU_VENDOR_HYGON,
2905 };
2906 uint8_t x86_vendor = X86_VENDOR_UNKNOWN;
2907
2908 for (i = 0; i < X86_VENDOR_NUM; i++) {
2909 if (cpu_vendor_id != 0 && cpu_vendor_id == x86_vendors[i]) {
2910 x86_vendor = i;
2911 break;
2912 }
2913 }
2914 linux_cpu_has_clflush = (cpu_feature & CPUID_CLFSH);
2915 boot_cpu_data.x86_clflush_size = cpu_clflush_line_size;
2916 boot_cpu_data.x86_max_cores = mp_ncpus;
2917 boot_cpu_data.x86 = CPUID_TO_FAMILY(cpu_id);
2918 boot_cpu_data.x86_model = CPUID_TO_MODEL(cpu_id);
2919 boot_cpu_data.x86_vendor = x86_vendor;
2920 boot_cpu_data.x86_stepping = CPUID_TO_STEPPING(cpu_id);
2921
2922 __cpu_data = kmalloc_array(mp_maxid + 1,
2923 sizeof(*__cpu_data), M_WAITOK | M_ZERO);
2924 CPU_FOREACH(i) {
2925 __cpu_data[i].x86_clflush_size = cpu_clflush_line_size;
2926 __cpu_data[i].x86_max_cores = mp_ncpus;
2927 __cpu_data[i].x86 = CPUID_TO_FAMILY(cpu_id);
2928 __cpu_data[i].x86_model = CPUID_TO_MODEL(cpu_id);
2929 __cpu_data[i].x86_vendor = x86_vendor;
2930 }
2931 #endif
2932 rw_init(&linux_vma_lock, "lkpi-vma-lock");
2933
2934 rootoid = SYSCTL_ADD_ROOT_NODE(NULL,
2935 OID_AUTO, "sys", CTLFLAG_RD|CTLFLAG_MPSAFE, NULL, "sys");
2936 kobject_init(&linux_class_root, &linux_class_ktype);
2937 kobject_set_name(&linux_class_root, "class");
2938 linux_class_root.oidp = SYSCTL_ADD_NODE(NULL, SYSCTL_CHILDREN(rootoid),
2939 OID_AUTO, "class", CTLFLAG_RD|CTLFLAG_MPSAFE, NULL, "class");
2940 kobject_init(&linux_root_device.kobj, &linux_dev_ktype);
2941 kobject_set_name(&linux_root_device.kobj, "device");
2942 linux_root_device.kobj.oidp = SYSCTL_ADD_NODE(NULL,
2943 SYSCTL_CHILDREN(rootoid), OID_AUTO, "device",
2944 CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, "device");
2945 linux_root_device.bsddev = root_bus;
2946 linux_class_misc.name = "misc";
2947 class_register(&linux_class_misc);
2948 INIT_LIST_HEAD(&pci_drivers);
2949 INIT_LIST_HEAD(&pci_devices);
2950 spin_lock_init(&pci_lock);
2951 init_waitqueue_head(&linux_bit_waitq);
2952 init_waitqueue_head(&linux_var_waitq);
2953
2954 CPU_COPY(&all_cpus, &cpu_online_mask);
2955 /*
2956 * Generate a single-CPU cpumask_t for each CPU (possibly) in the system.
2957 * CPUs are indexed from 0..(mp_maxid). The entry for cpuid 0 will only
2958 * have itself in the cpumask, cupid 1 only itself on entry 1, and so on.
2959 * This is used by cpumask_of() (and possibly others in the future) for,
2960 * e.g., drivers to pass hints to irq_set_affinity_hint().
2961 */
2962 static_single_cpu_mask = kmalloc_array(mp_maxid + 1,
2963 sizeof(static_single_cpu_mask), M_WAITOK | M_ZERO);
2964
2965 /*
2966 * When the number of CPUs reach a threshold, we start to save memory
2967 * given the sets are static by overlapping those having their single
2968 * bit set at same position in a bitset word. Asymptotically, this
2969 * regular scheme is in O(n²) whereas the overlapping one is in O(n)
2970 * only with n being the maximum number of CPUs, so the gain will become
2971 * huge quite quickly. The threshold for 64-bit architectures is 128
2972 * CPUs.
2973 */
2974 if (mp_ncpus < (2 * _BITSET_BITS)) {
2975 cpumask_t *sscm_ptr;
2976
2977 /*
2978 * This represents 'mp_ncpus * __bitset_words(CPU_SETSIZE) *
2979 * (_BITSET_BITS / 8)' bytes (for comparison with the
2980 * overlapping scheme).
2981 */
2982 static_single_cpu_mask_lcs = kmalloc_array(mp_ncpus,
2983 sizeof(*static_single_cpu_mask_lcs),
2984 M_WAITOK | M_ZERO);
2985
2986 sscm_ptr = static_single_cpu_mask_lcs;
2987 CPU_FOREACH(i) {
2988 static_single_cpu_mask[i] = sscm_ptr++;
2989 CPU_SET(i, static_single_cpu_mask[i]);
2990 }
2991 } else {
2992 /* Pointer to a bitset word. */
2993 __typeof(((cpuset_t *)NULL)->__bits[0]) *bwp;
2994
2995 /*
2996 * Allocate memory for (static) spans of 'cpumask_t' ('cpuset_t'
2997 * really) with a single bit set that can be reused for all
2998 * single CPU masks by making them start at different offsets.
2999 * We need '__bitset_words(CPU_SETSIZE) - 1' bitset words before
3000 * the word having its single bit set, and the same amount
3001 * after.
3002 */
3003 static_single_cpu_mask_lcs = mallocarray(_BITSET_BITS,
3004 (2 * __bitset_words(CPU_SETSIZE) - 1) * (_BITSET_BITS / 8),
3005 M_KMALLOC, M_WAITOK | M_ZERO);
3006
3007 /*
3008 * We rely below on cpuset_t and the bitset generic
3009 * implementation assigning words in the '__bits' array in the
3010 * same order of bits (i.e., little-endian ordering, not to be
3011 * confused with machine endianness, which concerns bits in
3012 * words and other integers). This is an imperfect test, but it
3013 * will detect a change to big-endian ordering.
3014 */
3015 _Static_assert(
3016 __bitset_word(_BITSET_BITS + 1, _BITSET_BITS) == 1,
3017 "Assumes a bitset implementation that is little-endian "
3018 "on its words");
3019
3020 /* Initialize the single bit of each static span. */
3021 bwp = (__typeof(bwp))static_single_cpu_mask_lcs +
3022 (__bitset_words(CPU_SETSIZE) - 1);
3023 for (i = 0; i < _BITSET_BITS; i++) {
3024 CPU_SET(i, (cpuset_t *)bwp);
3025 bwp += (2 * __bitset_words(CPU_SETSIZE) - 1);
3026 }
3027
3028 /*
3029 * Finally set all CPU masks to the proper word in their
3030 * relevant span.
3031 */
3032 CPU_FOREACH(i) {
3033 bwp = (__typeof(bwp))static_single_cpu_mask_lcs;
3034 /* Find the non-zero word of the relevant span. */
3035 bwp += (2 * __bitset_words(CPU_SETSIZE) - 1) *
3036 (i % _BITSET_BITS) +
3037 __bitset_words(CPU_SETSIZE) - 1;
3038 /* Shift to find the CPU mask start. */
3039 bwp -= (i / _BITSET_BITS);
3040 static_single_cpu_mask[i] = (cpuset_t *)bwp;
3041 }
3042 }
3043
3044 strlcpy(init_uts_ns.name.release, osrelease, sizeof(init_uts_ns.name.release));
3045 }
3046 SYSINIT(linux_compat, SI_SUB_DRIVERS, SI_ORDER_SECOND, linux_compat_init, NULL);
3047
3048 static void
linux_compat_uninit(void * arg)3049 linux_compat_uninit(void *arg)
3050 {
3051 linux_kobject_kfree_name(&linux_class_root);
3052 linux_kobject_kfree_name(&linux_root_device.kobj);
3053 linux_kobject_kfree_name(&linux_class_misc.kobj);
3054
3055 free(static_single_cpu_mask_lcs, M_KMALLOC);
3056 free(static_single_cpu_mask, M_KMALLOC);
3057 #if defined(__i386__) || defined(__amd64__)
3058 free(__cpu_data, M_KMALLOC);
3059 #endif
3060
3061 spin_lock_destroy(&pci_lock);
3062 rw_destroy(&linux_vma_lock);
3063 }
3064 SYSUNINIT(linux_compat, SI_SUB_DRIVERS, SI_ORDER_SECOND, linux_compat_uninit, NULL);
3065
3066 /*
3067 * NOTE: Linux frequently uses "unsigned long" for pointer to integer
3068 * conversion and vice versa, where in FreeBSD "uintptr_t" would be
3069 * used. Assert these types have the same size, else some parts of the
3070 * LinuxKPI may not work like expected:
3071 */
3072 CTASSERT(sizeof(unsigned long) == sizeof(uintptr_t));
3073