source: mainline/kernel/generic/src/cap/cap.c@ 9675296

lfn serial ticket/834-toolchain-update topic/msim-upgrade topic/simplify-dev-export
Last change on this file since 9675296 was 9675296, checked in by Jiří Zárevúcky <zarevucky.jiri@…>, 6 years ago

Some clang fixes

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File size: 14.6 KB
Line 
1/*
2 * Copyright (c) 2017 Jakub Jermar
3 * All rights reserved.
4 *
5 * Redistribution and use in source and binary forms, with or without
6 * modification, are permitted provided that the following conditions
7 * are met:
8 *
9 * - Redistributions of source code must retain the above copyright
10 * notice, this list of conditions and the following disclaimer.
11 * - Redistributions in binary form must reproduce the above copyright
12 * notice, this list of conditions and the following disclaimer in the
13 * documentation and/or other materials provided with the distribution.
14 * - The name of the author may not be used to endorse or promote products
15 * derived from this software without specific prior written permission.
16 *
17 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
18 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
19 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
20 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
21 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
22 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
23 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
24 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
25 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
26 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
27 */
28
29/** @addtogroup kernel_generic
30 * @{
31 */
32/** @file
33 */
34
35/*
36 * HelenOS capabilities are task-local names for references to kernel objects.
37 * Kernel objects are reference-counted wrappers for a select group of objects
38 * allocated in and by the kernel that can be made accessible to userspace in a
39 * controlled way via integer handles.
40 *
41 * A kernel object (kobject_t) encapsulates one of the following raw objects:
42 *
43 * - IPC call
44 * - IPC phone
45 * - IRQ object
46 *
47 * A capability (cap_t) is either free, allocated or published. Free
48 * capabilities can be allocated, which reserves the capability handle in the
49 * task-local capability space. Allocated capabilities can be published, which
50 * associates them with an existing kernel object. Userspace can only access
51 * published capabilities.
52 *
53 * A published capability may get unpublished, which disassociates it from the
54 * underlying kernel object and puts it back into the allocated state. An
55 * allocated capability can be freed to become available for future use.
56 *
57 * There is a 1:1 correspondence between a kernel object (kobject_t) and the
58 * actual raw object it encapsulates. A kernel object (kobject_t) may have
59 * multiple references, either implicit from one or more capabilities (cap_t),
60 * even from capabilities in different tasks, or explicit as a result of
61 * creating a new reference from a capability handle using kobject_get(), or
62 * creating a new reference from an already existing reference by
63 * kobject_add_ref() or as a result of unpublishing a capability and
64 * disassociating it from its kobject_t using cap_unpublish().
65 *
66 * A holder of an explicit reference to a kernel object may revoke access to it
67 * from all capabilities that point to it by calling cap_revoke().
68 *
69 * As kernel objects are reference-counted, they get automatically destroyed
70 * when their last reference is dropped in kobject_put(). The idea is that
71 * whenever a kernel object is inserted into some sort of a container (e.g. a
72 * list or hash table), its reference count should be incremented via
73 * kobject_get() or kobject_add_ref(). When the kernel object is removed from
74 * the container, the reference count should go down via a call to
75 * kobject_put().
76 */
77
78#include <cap/cap.h>
79#include <abi/cap.h>
80#include <proc/task.h>
81#include <synch/mutex.h>
82#include <abi/errno.h>
83#include <mm/slab.h>
84#include <adt/list.h>
85
86#include <limits.h>
87#include <stdint.h>
88#include <stdlib.h>
89
90#define CAPS_START ((intptr_t) CAP_NIL + 1)
91#define CAPS_SIZE (INT_MAX - (int) CAPS_START)
92#define CAPS_LAST (CAPS_SIZE - 1)
93
94static slab_cache_t *cap_cache;
95static slab_cache_t *kobject_cache;
96
97static size_t caps_hash(const ht_link_t *item)
98{
99 cap_t *cap = hash_table_get_inst(item, cap_t, caps_link);
100 return hash_mix(cap_handle_raw(cap->handle));
101}
102
103static size_t caps_key_hash(const void *key)
104{
105 const cap_handle_t *handle = key;
106 return hash_mix(cap_handle_raw(*handle));
107}
108
109static bool caps_key_equal(const void *key, const ht_link_t *item)
110{
111 const cap_handle_t *handle = key;
112 cap_t *cap = hash_table_get_inst(item, cap_t, caps_link);
113 return *handle == cap->handle;
114}
115
116static hash_table_ops_t caps_ops = {
117 .hash = caps_hash,
118 .key_hash = caps_key_hash,
119 .key_equal = caps_key_equal
120};
121
122void caps_init(void)
123{
124 cap_cache = slab_cache_create("cap_t", sizeof(cap_t), 0, NULL,
125 NULL, 0);
126 kobject_cache = slab_cache_create("kobject_t", sizeof(kobject_t), 0,
127 NULL, NULL, 0);
128}
129
130/** Allocate the capability info structure
131 *
132 * @param task Task for which to allocate the info structure.
133 */
134errno_t caps_task_alloc(task_t *task)
135{
136 task->cap_info = (cap_info_t *) malloc(sizeof(cap_info_t));
137 if (!task->cap_info)
138 return ENOMEM;
139 task->cap_info->handles = ra_arena_create();
140 if (!task->cap_info->handles)
141 goto error_handles;
142 if (!ra_span_add(task->cap_info->handles, CAPS_START, CAPS_SIZE))
143 goto error_span;
144 if (!hash_table_create(&task->cap_info->caps, 0, 0, &caps_ops))
145 goto error_span;
146 return EOK;
147
148error_span:
149 ra_arena_destroy(task->cap_info->handles);
150error_handles:
151 free(task->cap_info);
152 return ENOMEM;
153}
154
155/** Initialize the capability info structure
156 *
157 * @param task Task for which to initialize the info structure.
158 */
159void caps_task_init(task_t *task)
160{
161 mutex_initialize(&task->cap_info->lock, MUTEX_RECURSIVE);
162
163 for (kobject_type_t t = 0; t < KOBJECT_TYPE_MAX; t++)
164 list_initialize(&task->cap_info->type_list[t]);
165}
166
167/** Deallocate the capability info structure
168 *
169 * @param task Task from which to deallocate the info structure.
170 */
171void caps_task_free(task_t *task)
172{
173 hash_table_destroy(&task->cap_info->caps);
174 ra_arena_destroy(task->cap_info->handles);
175 free(task->cap_info);
176}
177
178/** Invoke callback function on task's capabilites of given type
179 *
180 * @param task Task where the invocation should take place.
181 * @param type Kernel object type of the task's capabilities that will be
182 * subject to the callback invocation.
183 * @param cb Callback function.
184 * @param arg Argument for the callback function.
185 *
186 * @return True if the callback was called on all matching capabilities.
187 * @return False if the callback was applied only partially.
188 */
189bool caps_apply_to_kobject_type(task_t *task, kobject_type_t type,
190 bool (*cb)(cap_t *, void *), void *arg)
191{
192 bool done = true;
193
194 mutex_lock(&task->cap_info->lock);
195 list_foreach_safe(task->cap_info->type_list[type], cur, next) {
196 cap_t *cap = list_get_instance(cur, cap_t, type_link);
197 done = cb(cap, arg);
198 if (!done)
199 break;
200 }
201 mutex_unlock(&task->cap_info->lock);
202
203 return done;
204}
205
206/** Initialize capability and associate it with its handle
207 *
208 * @param cap Address of the capability.
209 * @param task Backling to the owning task.
210 * @param handle Capability handle.
211 */
212static void cap_initialize(cap_t *cap, task_t *task, cap_handle_t handle)
213{
214 cap->state = CAP_STATE_FREE;
215 cap->task = task;
216 cap->handle = handle;
217 link_initialize(&cap->kobj_link);
218 link_initialize(&cap->type_link);
219}
220
221/** Get capability using capability handle
222 *
223 * @param task Task whose capability to get.
224 * @param handle Capability handle of the desired capability.
225 * @param state State in which the capability must be.
226 *
227 * @return Address of the desired capability if it exists and its state matches.
228 * @return NULL if no such capability exists or it's in a different state.
229 */
230static cap_t *cap_get(task_t *task, cap_handle_t handle, cap_state_t state)
231{
232 assert(mutex_locked(&task->cap_info->lock));
233
234 if ((cap_handle_raw(handle) < CAPS_START) ||
235 (cap_handle_raw(handle) > CAPS_LAST))
236 return NULL;
237 ht_link_t *link = hash_table_find(&task->cap_info->caps, &handle);
238 if (!link)
239 return NULL;
240 cap_t *cap = hash_table_get_inst(link, cap_t, caps_link);
241 if (cap->state != state)
242 return NULL;
243 return cap;
244}
245
246/** Allocate new capability
247 *
248 * @param task Task for which to allocate the new capability.
249 *
250 * @param[out] handle New capability handle on success.
251 *
252 * @return An error code in case of error.
253 */
254errno_t cap_alloc(task_t *task, cap_handle_t *handle)
255{
256 mutex_lock(&task->cap_info->lock);
257 cap_t *cap = slab_alloc(cap_cache, FRAME_ATOMIC);
258 if (!cap) {
259 mutex_unlock(&task->cap_info->lock);
260 return ENOMEM;
261 }
262 uintptr_t hbase;
263 if (!ra_alloc(task->cap_info->handles, 1, 1, &hbase)) {
264 slab_free(cap_cache, cap);
265 mutex_unlock(&task->cap_info->lock);
266 return ENOMEM;
267 }
268 cap_initialize(cap, task, (cap_handle_t) hbase);
269 hash_table_insert(&task->cap_info->caps, &cap->caps_link);
270
271 cap->state = CAP_STATE_ALLOCATED;
272 *handle = cap->handle;
273 mutex_unlock(&task->cap_info->lock);
274
275 return EOK;
276}
277
278/** Publish allocated capability
279 *
280 * The kernel object is moved into the capability. In other words, its reference
281 * is handed over to the capability. Once published, userspace can access and
282 * manipulate the capability.
283 *
284 * @param task Task in which to publish the capability.
285 * @param handle Capability handle.
286 * @param kobj Kernel object.
287 */
288void
289cap_publish(task_t *task, cap_handle_t handle, kobject_t *kobj)
290{
291 mutex_lock(&kobj->caps_list_lock);
292 mutex_lock(&task->cap_info->lock);
293 cap_t *cap = cap_get(task, handle, CAP_STATE_ALLOCATED);
294 assert(cap);
295 cap->state = CAP_STATE_PUBLISHED;
296 /* Hand over kobj's reference to cap */
297 cap->kobject = kobj;
298 list_append(&cap->kobj_link, &kobj->caps_list);
299 list_append(&cap->type_link, &task->cap_info->type_list[kobj->type]);
300 mutex_unlock(&task->cap_info->lock);
301 mutex_unlock(&kobj->caps_list_lock);
302}
303
304static void cap_unpublish_unsafe(cap_t *cap)
305{
306 cap->kobject = NULL;
307 list_remove(&cap->kobj_link);
308 list_remove(&cap->type_link);
309 cap->state = CAP_STATE_ALLOCATED;
310}
311
312/** Unpublish published capability
313 *
314 * The kernel object is moved out of the capability. In other words, the
315 * capability's reference to the objects is handed over to the kernel object
316 * pointer returned by this function. Once unpublished, the capability does not
317 * refer to any kernel object anymore.
318 *
319 * @param task Task in which to unpublish the capability.
320 * @param handle Capability handle.
321 * @param type Kernel object type of the object associated with the
322 * capability.
323 *
324 * @return Pointer and explicit reference to the kobject that was associated
325 * with the capability.
326 */
327kobject_t *cap_unpublish(task_t *task, cap_handle_t handle, kobject_type_t type)
328{
329 kobject_t *kobj = NULL;
330
331restart:
332 mutex_lock(&task->cap_info->lock);
333 cap_t *cap = cap_get(task, handle, CAP_STATE_PUBLISHED);
334 if (cap) {
335 if (cap->kobject->type == type) {
336 /* Hand over cap's reference to kobj */
337 kobj = cap->kobject;
338 if (!mutex_trylock(&kobj->caps_list_lock)) {
339 mutex_unlock(&task->cap_info->lock);
340 kobj = NULL;
341 goto restart;
342 }
343 cap_unpublish_unsafe(cap);
344 mutex_unlock(&kobj->caps_list_lock);
345 }
346 }
347 mutex_unlock(&task->cap_info->lock);
348
349 return kobj;
350}
351
352/** Revoke access to kobject from all existing capabilities
353 *
354 * All published capabilities associated with the kobject are unpublished (i.e.
355 * their new state is set to CAP_STATE_ALLOCATED) and no longer point to the
356 * kobject. Kobject's reference count is decreased accordingly.
357 *
358 * Note that the caller is supposed to hold an explicit reference to the kobject
359 * so that the kobject is guaranteed to exist when this function returns.
360 *
361 * @param kobj Pointer and explicit reference to the kobject capabilities of
362 * which are about to be unpublished.
363 */
364void cap_revoke(kobject_t *kobj)
365{
366 mutex_lock(&kobj->caps_list_lock);
367 list_foreach_safe(kobj->caps_list, cur, hlp) {
368 cap_t *cap = list_get_instance(cur, cap_t, kobj_link);
369 mutex_lock(&cap->task->cap_info->lock);
370 cap_unpublish_unsafe(cap);
371 /* Drop the reference for the unpublished capability */
372 kobject_put(kobj);
373 mutex_unlock(&cap->task->cap_info->lock);
374 }
375 mutex_unlock(&kobj->caps_list_lock);
376}
377
378/** Free allocated capability
379 *
380 * @param task Task in which to free the capability.
381 * @param handle Capability handle.
382 */
383void cap_free(task_t *task, cap_handle_t handle)
384{
385 assert(cap_handle_raw(handle) >= CAPS_START);
386 assert(cap_handle_raw(handle) <= CAPS_LAST);
387
388 mutex_lock(&task->cap_info->lock);
389 cap_t *cap = cap_get(task, handle, CAP_STATE_ALLOCATED);
390
391 assert(cap);
392
393 hash_table_remove_item(&task->cap_info->caps, &cap->caps_link);
394 ra_free(task->cap_info->handles, cap_handle_raw(handle), 1);
395 slab_free(cap_cache, cap);
396 mutex_unlock(&task->cap_info->lock);
397}
398
399kobject_t *kobject_alloc(unsigned int flags)
400{
401 return slab_alloc(kobject_cache, flags);
402}
403
404void kobject_free(kobject_t *kobj)
405{
406 slab_free(kobject_cache, kobj);
407}
408
409/** Initialize kernel object
410 *
411 * @param kobj Kernel object to initialize.
412 * @param type Type of the kernel object.
413 * @param raw Raw pointer to the encapsulated object.
414 * @param ops Pointer to kernel object operations for the respective type.
415 */
416void kobject_initialize(kobject_t *kobj, kobject_type_t type, void *raw,
417 kobject_ops_t *ops)
418{
419 atomic_store(&kobj->refcnt, 1);
420
421 mutex_initialize(&kobj->caps_list_lock, MUTEX_PASSIVE);
422 list_initialize(&kobj->caps_list);
423
424 kobj->type = type;
425 kobj->raw = raw;
426 kobj->ops = ops;
427}
428
429/** Get new reference to kernel object from capability
430 *
431 * @param task Task from which to get the reference.
432 * @param handle Capability handle.
433 * @param type Kernel object type of the object associated with the
434 * capability referenced by handle.
435 *
436 * @return Kernel object with incremented reference count on success.
437 * @return NULL if there is no matching capability or kernel object.
438 */
439kobject_t *
440kobject_get(struct task *task, cap_handle_t handle, kobject_type_t type)
441{
442 kobject_t *kobj = NULL;
443
444 mutex_lock(&task->cap_info->lock);
445 cap_t *cap = cap_get(task, handle, CAP_STATE_PUBLISHED);
446 if (cap) {
447 if (cap->kobject->type == type) {
448 kobj = cap->kobject;
449 atomic_inc(&kobj->refcnt);
450 }
451 }
452 mutex_unlock(&task->cap_info->lock);
453
454 return kobj;
455}
456
457/** Record new reference
458 *
459 * @param kobj Kernel object from which the new reference is created.
460 */
461void kobject_add_ref(kobject_t *kobj)
462{
463 atomic_inc(&kobj->refcnt);
464}
465
466/** Drop reference to kernel object
467 *
468 * The encapsulated object and the kobject_t wrapper are both destroyed when the
469 * last reference is dropped.
470 *
471 * @param kobj Kernel object whose reference to drop.
472 */
473void kobject_put(kobject_t *kobj)
474{
475 if (atomic_postdec(&kobj->refcnt) == 1) {
476 kobj->ops->destroy(kobj->raw);
477 kobject_free(kobj);
478 }
479}
480
481/** @}
482 */
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