1 /*
2 * Copyright (c) 2020 Intel Corporation
3 *
4 * SPDX-License-Identifier: Apache-2.0
5 */
6 #ifndef ZEPHYR_INCLUDE_SYS_KOBJECT_H
7 #define ZEPHYR_INCLUDE_SYS_KOBJECT_H
8
9 #include <stdint.h>
10 #include <stddef.h>
11
12 #ifdef __cplusplus
13 extern "C" {
14 #endif
15
16 struct k_thread;
17 struct k_mutex;
18 struct z_futex_data;
19
20 /**
21 * @brief Kernel Object Types
22 *
23 * This enumeration needs to be kept in sync with the lists of kernel objects
24 * and subsystems in scripts/gen_kobject_list.py, as well as the otype_to_str()
25 * function in kernel/userspace.c
26 */
27 enum k_objects {
28 K_OBJ_ANY,
29
30 /** @cond
31 * Doxygen should ignore this build-time generated include file
32 * when genrating API documentation. Enumeration values are
33 * generated during build by gen_kobject_list.py. It includes
34 * basic kernel objects (e.g. pipes and mutexes) and driver types.
35 */
36 #include <kobj-types-enum.h>
37 /** @endcond
38 */
39
40 K_OBJ_LAST
41 };
42 /**
43 * @defgroup usermode_apis User Mode APIs
44 * @ingroup kernel_apis
45 * @{
46 */
47
48 #ifdef CONFIG_USERSPACE
49 #ifdef CONFIG_GEN_PRIV_STACKS
50 /* Metadata struct for K_OBJ_THREAD_STACK_ELEMENT */
51 struct z_stack_data {
52 /* Size of the entire stack object, including reserved areas */
53 size_t size;
54
55 /* Stack buffer for privilege mode elevations */
56 uint8_t *priv;
57 };
58 #endif /* CONFIG_GEN_PRIV_STACKS */
59
60 /* Object extra data. Only some objects use this, determined by object type */
61 union z_object_data {
62 /* Backing mutex for K_OBJ_SYS_MUTEX */
63 struct k_mutex *mutex;
64
65 /* Numerical thread ID for K_OBJ_THREAD */
66 unsigned int thread_id;
67
68 #ifdef CONFIG_GEN_PRIV_STACKS
69 /* Metadata for K_OBJ_THREAD_STACK_ELEMENT */
70 const struct z_stack_data *stack_data;
71 #else
72 /* Stack buffer size for K_OBJ_THREAD_STACK_ELEMENT */
73 size_t stack_size;
74 #endif /* CONFIG_GEN_PRIV_STACKS */
75
76 /* Futex wait queue and spinlock for K_OBJ_FUTEX */
77 struct z_futex_data *futex_data;
78
79 /* All other objects */
80 int unused;
81 };
82
83 /* Table generated by gperf, these objects are retrieved via
84 * z_object_find() */
85 struct z_object {
86 void *name;
87 uint8_t perms[CONFIG_MAX_THREAD_BYTES];
88 uint8_t type;
89 uint8_t flags;
90 union z_object_data data;
91 } __packed __aligned(4);
92
93 struct z_object_assignment {
94 struct k_thread *thread;
95 void * const *objects;
96 };
97
98 /**
99 * @brief Grant a static thread access to a list of kernel objects
100 *
101 * For threads declared with K_THREAD_DEFINE(), grant the thread access to
102 * a set of kernel objects. These objects do not need to be in an initialized
103 * state. The permissions will be granted when the threads are initialized
104 * in the early boot sequence.
105 *
106 * All arguments beyond the first must be pointers to kernel objects.
107 *
108 * @param name_ Name of the thread, as passed to K_THREAD_DEFINE()
109 */
110 #define K_THREAD_ACCESS_GRANT(name_, ...) \
111 static void * const _CONCAT(_object_list_, name_)[] = \
112 { __VA_ARGS__, NULL }; \
113 static const STRUCT_SECTION_ITERABLE(z_object_assignment, \
114 _CONCAT(_object_access_, name_)) = \
115 { (&_k_thread_obj_ ## name_), \
116 (_CONCAT(_object_list_, name_)) }
117
118 /** Object initialized */
119 #define K_OBJ_FLAG_INITIALIZED BIT(0)
120 /** Object is Public */
121 #define K_OBJ_FLAG_PUBLIC BIT(1)
122 /** Object allocated */
123 #define K_OBJ_FLAG_ALLOC BIT(2)
124 /** Driver Object */
125 #define K_OBJ_FLAG_DRIVER BIT(3)
126
127 /**
128 * Lookup a kernel object and init its metadata if it exists
129 *
130 * Calling this on an object will make it usable from userspace.
131 * Intended to be called as the last statement in kernel object init
132 * functions.
133 *
134 * @param obj Address of the kernel object
135 */
136 void z_object_init(const void *obj);
137 #else
138 /* LCOV_EXCL_START */
139 #define K_THREAD_ACCESS_GRANT(thread, ...)
140
141 /**
142 * @internal
143 */
z_object_init(const void * obj)144 static inline void z_object_init(const void *obj)
145 {
146 ARG_UNUSED(obj);
147 }
148
149 /**
150 * @internal
151 */
z_impl_k_object_access_grant(const void * object,struct k_thread * thread)152 static inline void z_impl_k_object_access_grant(const void *object,
153 struct k_thread *thread)
154 {
155 ARG_UNUSED(object);
156 ARG_UNUSED(thread);
157 }
158
159 /**
160 * @internal
161 */
k_object_access_revoke(const void * object,struct k_thread * thread)162 static inline void k_object_access_revoke(const void *object,
163 struct k_thread *thread)
164 {
165 ARG_UNUSED(object);
166 ARG_UNUSED(thread);
167 }
168
169 /**
170 * @internal
171 */
z_impl_k_object_release(const void * object)172 static inline void z_impl_k_object_release(const void *object)
173 {
174 ARG_UNUSED(object);
175 }
176
k_object_access_all_grant(const void * object)177 static inline void k_object_access_all_grant(const void *object)
178 {
179 ARG_UNUSED(object);
180 }
181 /* LCOV_EXCL_STOP */
182 #endif /* !CONFIG_USERSPACE */
183
184 /**
185 * Grant a thread access to a kernel object
186 *
187 * The thread will be granted access to the object if the caller is from
188 * supervisor mode, or the caller is from user mode AND has permissions
189 * on both the object and the thread whose access is being granted.
190 *
191 * @param object Address of kernel object
192 * @param thread Thread to grant access to the object
193 */
194 __syscall void k_object_access_grant(const void *object,
195 struct k_thread *thread);
196
197 /**
198 * Revoke a thread's access to a kernel object
199 *
200 * The thread will lose access to the object if the caller is from
201 * supervisor mode, or the caller is from user mode AND has permissions
202 * on both the object and the thread whose access is being revoked.
203 *
204 * @param object Address of kernel object
205 * @param thread Thread to remove access to the object
206 */
207 void k_object_access_revoke(const void *object, struct k_thread *thread);
208
209 /**
210 * @brief Release an object
211 *
212 * Allows user threads to drop their own permission on an object
213 * Their permissions are automatically cleared when a thread terminates.
214 *
215 * @param object The object to be released
216 *
217 */
218 __syscall void k_object_release(const void *object);
219
220 /**
221 * Grant all present and future threads access to an object
222 *
223 * If the caller is from supervisor mode, or the caller is from user mode and
224 * have sufficient permissions on the object, then that object will have
225 * permissions granted to it for *all* current and future threads running in
226 * the system, effectively becoming a public kernel object.
227 *
228 * Use of this API should be avoided on systems that are running untrusted code
229 * as it is possible for such code to derive the addresses of kernel objects
230 * and perform unwanted operations on them.
231 *
232 * It is not possible to revoke permissions on public objects; once public,
233 * any thread may use it.
234 *
235 * @param object Address of kernel object
236 */
237 void k_object_access_all_grant(const void *object);
238
239 /**
240 * Allocate a kernel object of a designated type
241 *
242 * This will instantiate at runtime a kernel object of the specified type,
243 * returning a pointer to it. The object will be returned in an uninitialized
244 * state, with the calling thread being granted permission on it. The memory
245 * for the object will be allocated out of the calling thread's resource pool.
246 *
247 * Currently, allocation of thread stacks is not supported.
248 *
249 * @param otype Requested kernel object type
250 * @return A pointer to the allocated kernel object, or NULL if memory wasn't
251 * available
252 */
253 __syscall void *k_object_alloc(enum k_objects otype);
254
255 #ifdef CONFIG_DYNAMIC_OBJECTS
256 /**
257 * Allocate memory and install as a generic kernel object
258 *
259 * This is a low-level function to allocate some memory, and register that
260 * allocated memory in the kernel object lookup tables with type K_OBJ_ANY.
261 * Initialization state and thread permissions will be cleared. The
262 * returned z_object's data value will be uninitialized.
263 *
264 * Most users will want to use k_object_alloc() instead.
265 *
266 * Memory allocated will be drawn from the calling thread's reasource pool
267 * and may be freed later by passing the actual object pointer (found
268 * in the returned z_object's 'name' member) to k_object_free().
269 *
270 * @param align Required memory alignment for the allocated object
271 * @param size Size of the allocated object
272 * @return NULL on insufficient memory
273 * @return A pointer to the associated z_object that is installed in the
274 * kernel object tables
275 */
276 struct z_object *z_dynamic_object_aligned_create(size_t align, size_t size);
277
278 /**
279 * Allocate memory and install as a generic kernel object
280 *
281 * This is a low-level function to allocate some memory, and register that
282 * allocated memory in the kernel object lookup tables with type K_OBJ_ANY.
283 * Initialization state and thread permissions will be cleared. The
284 * returned z_object's data value will be uninitialized.
285 *
286 * Most users will want to use k_object_alloc() instead.
287 *
288 * Memory allocated will be drawn from the calling thread's reasource pool
289 * and may be freed later by passing the actual object pointer (found
290 * in the returned z_object's 'name' member) to k_object_free().
291 *
292 * @param size Size of the allocated object
293 * @return NULL on insufficient memory
294 * @return A pointer to the associated z_object that is installed in the
295 * kernel object tables
296 */
z_dynamic_object_create(size_t size)297 static inline struct z_object *z_dynamic_object_create(size_t size)
298 {
299 return z_dynamic_object_aligned_create(0, size);
300 }
301
302 /**
303 * Free a kernel object previously allocated with k_object_alloc()
304 *
305 * This will return memory for a kernel object back to resource pool it was
306 * allocated from. Care must be exercised that the object will not be used
307 * during or after when this call is made.
308 *
309 * @param obj Pointer to the kernel object memory address.
310 */
311 void k_object_free(void *obj);
312 #else
313 /* LCOV_EXCL_START */
z_impl_k_object_alloc(enum k_objects otype)314 static inline void *z_impl_k_object_alloc(enum k_objects otype)
315 {
316 ARG_UNUSED(otype);
317
318 return NULL;
319 }
320
z_dynamic_object_aligned_create(size_t align,size_t size)321 static inline struct z_object *z_dynamic_object_aligned_create(size_t align,
322 size_t size)
323 {
324 ARG_UNUSED(align);
325 ARG_UNUSED(size);
326
327 return NULL;
328 }
329
z_dynamic_object_create(size_t size)330 static inline struct z_object *z_dynamic_object_create(size_t size)
331 {
332 ARG_UNUSED(size);
333
334 return NULL;
335 }
336
337 /**
338 * @brief Free an object
339 *
340 * @param obj
341 */
k_object_free(void * obj)342 static inline void k_object_free(void *obj)
343 {
344 ARG_UNUSED(obj);
345 }
346 /* LCOV_EXCL_STOP */
347 #endif /* CONFIG_DYNAMIC_OBJECTS */
348
349 /** @} */
350
351 #include <syscalls/kobject.h>
352 #ifdef __cplusplus
353 }
354 #endif
355
356 #endif
357