1 /*
2  * Copyright (c) 2010-2014 Wind River Systems, Inc.
3  *
4  * SPDX-License-Identifier: Apache-2.0
5  */
6 
7 /**
8  * @file
9  * @brief Kernel initialization module
10  *
11  * This module contains routines that are used to initialize the kernel.
12  */
13 
14 #include <offsets_short.h>
15 #include <zephyr/kernel.h>
16 #include <zephyr/sys/printk.h>
17 #include <zephyr/debug/stack.h>
18 #include <zephyr/random/random.h>
19 #include <zephyr/linker/sections.h>
20 #include <zephyr/toolchain.h>
21 #include <zephyr/kernel_structs.h>
22 #include <zephyr/device.h>
23 #include <zephyr/init.h>
24 #include <zephyr/linker/linker-defs.h>
25 #include <ksched.h>
26 #include <string.h>
27 #include <zephyr/sys/dlist.h>
28 #include <kernel_internal.h>
29 #include <zephyr/drivers/entropy.h>
30 #include <zephyr/logging/log_ctrl.h>
31 #include <zephyr/tracing/tracing.h>
32 #include <stdbool.h>
33 #include <zephyr/debug/gcov.h>
34 #include <kswap.h>
35 #include <zephyr/timing/timing.h>
36 #include <zephyr/logging/log.h>
37 #include <zephyr/pm/device_runtime.h>
38 LOG_MODULE_REGISTER(os, CONFIG_KERNEL_LOG_LEVEL);
39 
40 BUILD_ASSERT(CONFIG_MP_NUM_CPUS == CONFIG_MP_MAX_NUM_CPUS,
41 	     "CONFIG_MP_NUM_CPUS and CONFIG_MP_MAX_NUM_CPUS need to be set the same");
42 
43 /* the only struct z_kernel instance */
44 __pinned_bss
45 struct z_kernel _kernel;
46 
47 __pinned_bss
48 atomic_t _cpus_active;
49 
50 /* init/main and idle threads */
51 K_THREAD_PINNED_STACK_DEFINE(z_main_stack, CONFIG_MAIN_STACK_SIZE);
52 struct k_thread z_main_thread;
53 
54 #ifdef CONFIG_MULTITHREADING
55 __pinned_bss
56 struct k_thread z_idle_threads[CONFIG_MP_MAX_NUM_CPUS];
57 
58 static K_KERNEL_PINNED_STACK_ARRAY_DEFINE(z_idle_stacks,
59 					  CONFIG_MP_MAX_NUM_CPUS,
60 					  CONFIG_IDLE_STACK_SIZE);
61 #endif /* CONFIG_MULTITHREADING */
62 
63 extern const struct init_entry __init_start[];
64 extern const struct init_entry __init_EARLY_start[];
65 extern const struct init_entry __init_PRE_KERNEL_1_start[];
66 extern const struct init_entry __init_PRE_KERNEL_2_start[];
67 extern const struct init_entry __init_POST_KERNEL_start[];
68 extern const struct init_entry __init_APPLICATION_start[];
69 extern const struct init_entry __init_end[];
70 
71 enum init_level {
72 	INIT_LEVEL_EARLY = 0,
73 	INIT_LEVEL_PRE_KERNEL_1,
74 	INIT_LEVEL_PRE_KERNEL_2,
75 	INIT_LEVEL_POST_KERNEL,
76 	INIT_LEVEL_APPLICATION,
77 #ifdef CONFIG_SMP
78 	INIT_LEVEL_SMP,
79 #endif
80 };
81 
82 #ifdef CONFIG_SMP
83 extern const struct init_entry __init_SMP_start[];
84 #endif
85 
86 /*
87  * storage space for the interrupt stack
88  *
89  * Note: This area is used as the system stack during kernel initialization,
90  * since the kernel hasn't yet set up its own stack areas. The dual purposing
91  * of this area is safe since interrupts are disabled until the kernel context
92  * switches to the init thread.
93  */
94 K_KERNEL_PINNED_STACK_ARRAY_DEFINE(z_interrupt_stacks,
95 				   CONFIG_MP_MAX_NUM_CPUS,
96 				   CONFIG_ISR_STACK_SIZE);
97 
98 extern void idle(void *unused1, void *unused2, void *unused3);
99 
100 #ifdef CONFIG_OBJ_CORE_SYSTEM
101 static struct k_obj_type obj_type_cpu;
102 static struct k_obj_type obj_type_kernel;
103 
104 #ifdef CONFIG_OBJ_CORE_STATS_SYSTEM
105 static struct k_obj_core_stats_desc  cpu_stats_desc = {
106 	.raw_size = sizeof(struct k_cycle_stats),
107 	.query_size = sizeof(struct k_thread_runtime_stats),
108 	.raw   = z_cpu_stats_raw,
109 	.query = z_cpu_stats_query,
110 	.reset = NULL,
111 	.disable = NULL,
112 	.enable  = NULL,
113 };
114 
115 static struct k_obj_core_stats_desc  kernel_stats_desc = {
116 	.raw_size = sizeof(struct k_cycle_stats) * CONFIG_MP_MAX_NUM_CPUS,
117 	.query_size = sizeof(struct k_thread_runtime_stats),
118 	.raw   = z_kernel_stats_raw,
119 	.query = z_kernel_stats_query,
120 	.reset = NULL,
121 	.disable = NULL,
122 	.enable  = NULL,
123 };
124 #endif
125 #endif
126 
127 /* LCOV_EXCL_START
128  *
129  * This code is called so early in the boot process that code coverage
130  * doesn't work properly. In addition, not all arches call this code,
131  * some like x86 do this with optimized assembly
132  */
133 
134 /**
135  * @brief equivalent of memset() for early boot usage
136  *
137  * Architectures that can't safely use the regular (optimized) memset very
138  * early during boot because e.g. hardware isn't yet sufficiently initialized
139  * may override this with their own safe implementation.
140  */
141 __boot_func
z_early_memset(void * dst,int c,size_t n)142 void __weak z_early_memset(void *dst, int c, size_t n)
143 {
144 	(void) memset(dst, c, n);
145 }
146 
147 /**
148  * @brief equivalent of memcpy() for early boot usage
149  *
150  * Architectures that can't safely use the regular (optimized) memcpy very
151  * early during boot because e.g. hardware isn't yet sufficiently initialized
152  * may override this with their own safe implementation.
153  */
154 __boot_func
z_early_memcpy(void * dst,const void * src,size_t n)155 void __weak z_early_memcpy(void *dst, const void *src, size_t n)
156 {
157 	(void) memcpy(dst, src, n);
158 }
159 
160 /**
161  * @brief Clear BSS
162  *
163  * This routine clears the BSS region, so all bytes are 0.
164  */
165 __boot_func
z_bss_zero(void)166 void z_bss_zero(void)
167 {
168 	if (IS_ENABLED(CONFIG_SKIP_BSS_CLEAR)) {
169 		return;
170 	}
171 
172 	z_early_memset(__bss_start, 0, __bss_end - __bss_start);
173 #if DT_NODE_HAS_STATUS(DT_CHOSEN(zephyr_ccm), okay)
174 	z_early_memset(&__ccm_bss_start, 0,
175 		       (uintptr_t) &__ccm_bss_end
176 		       - (uintptr_t) &__ccm_bss_start);
177 #endif
178 #if DT_NODE_HAS_STATUS(DT_CHOSEN(zephyr_dtcm), okay)
179 	z_early_memset(&__dtcm_bss_start, 0,
180 		       (uintptr_t) &__dtcm_bss_end
181 		       - (uintptr_t) &__dtcm_bss_start);
182 #endif
183 #if DT_NODE_HAS_STATUS(DT_CHOSEN(zephyr_ocm), okay)
184 	z_early_memset(&__ocm_bss_start, 0,
185 		       (uintptr_t) &__ocm_bss_end
186 		       - (uintptr_t) &__ocm_bss_start);
187 #endif
188 #ifdef CONFIG_CODE_DATA_RELOCATION
189 	extern void bss_zeroing_relocation(void);
190 
191 	bss_zeroing_relocation();
192 #endif	/* CONFIG_CODE_DATA_RELOCATION */
193 #ifdef CONFIG_COVERAGE_GCOV
194 	z_early_memset(&__gcov_bss_start, 0,
195 		       ((uintptr_t) &__gcov_bss_end - (uintptr_t) &__gcov_bss_start));
196 #endif
197 }
198 
199 #ifdef CONFIG_LINKER_USE_BOOT_SECTION
200 /**
201  * @brief Clear BSS within the bot region
202  *
203  * This routine clears the BSS within the boot region.
204  * This is separate from z_bss_zero() as boot region may
205  * contain symbols required for the boot process before
206  * paging is initialized.
207  */
208 __boot_func
z_bss_zero_boot(void)209 void z_bss_zero_boot(void)
210 {
211 	z_early_memset(&lnkr_boot_bss_start, 0,
212 		       (uintptr_t)&lnkr_boot_bss_end
213 		       - (uintptr_t)&lnkr_boot_bss_start);
214 }
215 #endif /* CONFIG_LINKER_USE_BOOT_SECTION */
216 
217 #ifdef CONFIG_LINKER_USE_PINNED_SECTION
218 /**
219  * @brief Clear BSS within the pinned region
220  *
221  * This routine clears the BSS within the pinned region.
222  * This is separate from z_bss_zero() as pinned region may
223  * contain symbols required for the boot process before
224  * paging is initialized.
225  */
226 #ifdef CONFIG_LINKER_USE_BOOT_SECTION
227 __boot_func
228 #else
229 __pinned_func
230 #endif
z_bss_zero_pinned(void)231 void z_bss_zero_pinned(void)
232 {
233 	z_early_memset(&lnkr_pinned_bss_start, 0,
234 		       (uintptr_t)&lnkr_pinned_bss_end
235 		       - (uintptr_t)&lnkr_pinned_bss_start);
236 }
237 #endif /* CONFIG_LINKER_USE_PINNED_SECTION */
238 
239 #ifdef CONFIG_STACK_CANARIES
240 #ifdef CONFIG_STACK_CANARIES_TLS
241 extern __thread volatile uintptr_t __stack_chk_guard;
242 #else
243 extern volatile uintptr_t __stack_chk_guard;
244 #endif
245 #endif /* CONFIG_STACK_CANARIES */
246 
247 /* LCOV_EXCL_STOP */
248 
249 __pinned_bss
250 bool z_sys_post_kernel;
251 
252 /**
253  * @brief Execute all the init entry initialization functions at a given level
254  *
255  * @details Invokes the initialization routine for each init entry object
256  * created by the INIT_ENTRY_DEFINE() macro using the specified level.
257  * The linker script places the init entry objects in memory in the order
258  * they need to be invoked, with symbols indicating where one level leaves
259  * off and the next one begins.
260  *
261  * @param level init level to run.
262  */
z_sys_init_run_level(enum init_level level)263 static void z_sys_init_run_level(enum init_level level)
264 {
265 	static const struct init_entry *levels[] = {
266 		__init_EARLY_start,
267 		__init_PRE_KERNEL_1_start,
268 		__init_PRE_KERNEL_2_start,
269 		__init_POST_KERNEL_start,
270 		__init_APPLICATION_start,
271 #ifdef CONFIG_SMP
272 		__init_SMP_start,
273 #endif
274 		/* End marker */
275 		__init_end,
276 	};
277 	const struct init_entry *entry;
278 
279 	for (entry = levels[level]; entry < levels[level+1]; entry++) {
280 		const struct device *dev = entry->dev;
281 
282 		if (dev != NULL) {
283 			int rc = 0;
284 
285 			if (entry->init_fn.dev != NULL) {
286 				rc = entry->init_fn.dev(dev);
287 				/* Mark device initialized. If initialization
288 				 * failed, record the error condition.
289 				 */
290 				if (rc != 0) {
291 					if (rc < 0) {
292 						rc = -rc;
293 					}
294 					if (rc > UINT8_MAX) {
295 						rc = UINT8_MAX;
296 					}
297 					dev->state->init_res = rc;
298 				}
299 			}
300 
301 			dev->state->initialized = true;
302 
303 			if (rc == 0) {
304 				/* Run automatic device runtime enablement */
305 				(void)pm_device_runtime_auto_enable(dev);
306 			}
307 		} else {
308 			(void)entry->init_fn.sys();
309 		}
310 	}
311 }
312 
313 extern void boot_banner(void);
314 
315 /**
316  * @brief Mainline for kernel's background thread
317  *
318  * This routine completes kernel initialization by invoking the remaining
319  * init functions, then invokes application's main() routine.
320  */
321 __boot_func
bg_thread_main(void * unused1,void * unused2,void * unused3)322 static void bg_thread_main(void *unused1, void *unused2, void *unused3)
323 {
324 	ARG_UNUSED(unused1);
325 	ARG_UNUSED(unused2);
326 	ARG_UNUSED(unused3);
327 
328 #ifdef CONFIG_MMU
329 	/* Invoked here such that backing store or eviction algorithms may
330 	 * initialize kernel objects, and that all POST_KERNEL and later tasks
331 	 * may perform memory management tasks (except for z_phys_map() which
332 	 * is allowed at any time)
333 	 */
334 	z_mem_manage_init();
335 #endif /* CONFIG_MMU */
336 	z_sys_post_kernel = true;
337 
338 	z_sys_init_run_level(INIT_LEVEL_POST_KERNEL);
339 #if CONFIG_STACK_POINTER_RANDOM
340 	z_stack_adjust_initialized = 1;
341 #endif
342 	boot_banner();
343 
344 #if defined(CONFIG_CPP)
345 	void z_cpp_init_static(void);
346 	z_cpp_init_static();
347 #endif
348 
349 	/* Final init level before app starts */
350 	z_sys_init_run_level(INIT_LEVEL_APPLICATION);
351 
352 	z_init_static_threads();
353 
354 #ifdef CONFIG_KERNEL_COHERENCE
355 	__ASSERT_NO_MSG(arch_mem_coherent(&_kernel));
356 #endif
357 
358 #ifdef CONFIG_SMP
359 	if (!IS_ENABLED(CONFIG_SMP_BOOT_DELAY)) {
360 		z_smp_init();
361 	}
362 	z_sys_init_run_level(INIT_LEVEL_SMP);
363 #endif
364 
365 #ifdef CONFIG_MMU
366 	z_mem_manage_boot_finish();
367 #endif /* CONFIG_MMU */
368 
369 	extern int main(void);
370 
371 	(void)main();
372 
373 	/* Mark nonessential since main() has no more work to do */
374 	z_main_thread.base.user_options &= ~K_ESSENTIAL;
375 
376 #ifdef CONFIG_COVERAGE_DUMP
377 	/* Dump coverage data once the main() has exited. */
378 	gcov_coverage_dump();
379 #endif
380 } /* LCOV_EXCL_LINE ... because we just dumped final coverage data */
381 
382 #if defined(CONFIG_MULTITHREADING)
383 __boot_func
init_idle_thread(int i)384 static void init_idle_thread(int i)
385 {
386 	struct k_thread *thread = &z_idle_threads[i];
387 	k_thread_stack_t *stack = z_idle_stacks[i];
388 
389 #ifdef CONFIG_THREAD_NAME
390 
391 #if CONFIG_MP_MAX_NUM_CPUS > 1
392 	char tname[8];
393 	snprintk(tname, 8, "idle %02d", i);
394 #else
395 	char *tname = "idle";
396 #endif
397 
398 #else
399 	char *tname = NULL;
400 #endif /* CONFIG_THREAD_NAME */
401 
402 	z_setup_new_thread(thread, stack,
403 			  CONFIG_IDLE_STACK_SIZE, idle, &_kernel.cpus[i],
404 			  NULL, NULL, K_IDLE_PRIO, K_ESSENTIAL,
405 			  tname);
406 	z_mark_thread_as_started(thread);
407 
408 #ifdef CONFIG_SMP
409 	thread->base.is_idle = 1U;
410 #endif
411 }
412 
z_init_cpu(int id)413 void z_init_cpu(int id)
414 {
415 	init_idle_thread(id);
416 	_kernel.cpus[id].idle_thread = &z_idle_threads[id];
417 	_kernel.cpus[id].id = id;
418 	_kernel.cpus[id].irq_stack =
419 		(Z_KERNEL_STACK_BUFFER(z_interrupt_stacks[id]) +
420 		 K_KERNEL_STACK_SIZEOF(z_interrupt_stacks[id]));
421 #ifdef CONFIG_SCHED_THREAD_USAGE_ALL
422 	_kernel.cpus[id].usage = &_kernel.usage[id];
423 	_kernel.cpus[id].usage->track_usage =
424 		CONFIG_SCHED_THREAD_USAGE_AUTO_ENABLE;
425 #endif
426 
427 	/*
428 	 * Increment number of CPUs active. The pm subsystem
429 	 * will keep track of this from here.
430 	 */
431 	atomic_inc(&_cpus_active);
432 
433 #ifdef CONFIG_OBJ_CORE_SYSTEM
434 	k_obj_core_init_and_link(K_OBJ_CORE(&_kernel.cpus[id]), &obj_type_cpu);
435 #ifdef CONFIG_OBJ_CORE_STATS_SYSTEM
436 	k_obj_core_stats_register(K_OBJ_CORE(&_kernel.cpus[id]),
437 				  _kernel.cpus[id].usage,
438 				  sizeof(struct k_cycle_stats));
439 #endif
440 #endif
441 }
442 
443 /**
444  *
445  * @brief Initializes kernel data structures
446  *
447  * This routine initializes various kernel data structures, including
448  * the init and idle threads and any architecture-specific initialization.
449  *
450  * Note that all fields of "_kernel" are set to zero on entry, which may
451  * be all the initialization many of them require.
452  *
453  * @return initial stack pointer for the main thread
454  */
455 __boot_func
prepare_multithreading(void)456 static char *prepare_multithreading(void)
457 {
458 	char *stack_ptr;
459 
460 	/* _kernel.ready_q is all zeroes */
461 	z_sched_init();
462 
463 #ifndef CONFIG_SMP
464 	/*
465 	 * prime the cache with the main thread since:
466 	 *
467 	 * - the cache can never be NULL
468 	 * - the main thread will be the one to run first
469 	 * - no other thread is initialized yet and thus their priority fields
470 	 *   contain garbage, which would prevent the cache loading algorithm
471 	 *   to work as intended
472 	 */
473 	_kernel.ready_q.cache = &z_main_thread;
474 #endif
475 	stack_ptr = z_setup_new_thread(&z_main_thread, z_main_stack,
476 				       CONFIG_MAIN_STACK_SIZE, bg_thread_main,
477 				       NULL, NULL, NULL,
478 				       CONFIG_MAIN_THREAD_PRIORITY,
479 				       K_ESSENTIAL, "main");
480 	z_mark_thread_as_started(&z_main_thread);
481 	z_ready_thread(&z_main_thread);
482 
483 	z_init_cpu(0);
484 
485 	return stack_ptr;
486 }
487 
488 __boot_func
switch_to_main_thread(char * stack_ptr)489 static FUNC_NORETURN void switch_to_main_thread(char *stack_ptr)
490 {
491 #ifdef CONFIG_ARCH_HAS_CUSTOM_SWAP_TO_MAIN
492 	arch_switch_to_main_thread(&z_main_thread, stack_ptr, bg_thread_main);
493 #else
494 	ARG_UNUSED(stack_ptr);
495 	/*
496 	 * Context switch to main task (entry function is _main()): the
497 	 * current fake thread is not on a wait queue or ready queue, so it
498 	 * will never be rescheduled in.
499 	 */
500 	z_swap_unlocked();
501 #endif
502 	CODE_UNREACHABLE; /* LCOV_EXCL_LINE */
503 }
504 #endif /* CONFIG_MULTITHREADING */
505 
506 __boot_func
z_early_rand_get(uint8_t * buf,size_t length)507 void __weak z_early_rand_get(uint8_t *buf, size_t length)
508 {
509 	static uint64_t state = (uint64_t)CONFIG_TIMER_RANDOM_INITIAL_STATE;
510 	int rc;
511 
512 #ifdef CONFIG_ENTROPY_HAS_DRIVER
513 	const struct device *const entropy = DEVICE_DT_GET_OR_NULL(DT_CHOSEN(zephyr_entropy));
514 
515 	if ((entropy != NULL) && device_is_ready(entropy)) {
516 		/* Try to see if driver provides an ISR-specific API */
517 		rc = entropy_get_entropy_isr(entropy, buf, length, ENTROPY_BUSYWAIT);
518 		if (rc > 0) {
519 			length -= rc;
520 			buf += rc;
521 		}
522 	}
523 #endif
524 
525 	while (length > 0) {
526 		uint32_t val;
527 
528 		state = state + k_cycle_get_32();
529 		state = state * 2862933555777941757ULL + 3037000493ULL;
530 		val = (uint32_t)(state >> 32);
531 		rc = MIN(length, sizeof(val));
532 		z_early_memcpy((void *)buf, &val, rc);
533 
534 		length -= rc;
535 		buf += rc;
536 	}
537 }
538 
539 /**
540  *
541  * @brief Initialize kernel
542  *
543  * This routine is invoked when the system is ready to run C code. The
544  * processor must be running in 32-bit mode, and the BSS must have been
545  * cleared/zeroed.
546  *
547  * @return Does not return
548  */
549 __boot_func
550 FUNC_NO_STACK_PROTECTOR
z_cstart(void)551 FUNC_NORETURN void z_cstart(void)
552 {
553 	/* gcov hook needed to get the coverage report.*/
554 	gcov_static_init();
555 
556 	/* initialize early init calls */
557 	z_sys_init_run_level(INIT_LEVEL_EARLY);
558 
559 	/* perform any architecture-specific initialization */
560 	arch_kernel_init();
561 
562 	LOG_CORE_INIT();
563 
564 #if defined(CONFIG_MULTITHREADING)
565 	/* Note: The z_ready_thread() call in prepare_multithreading() requires
566 	 * a dummy thread even if CONFIG_ARCH_HAS_CUSTOM_SWAP_TO_MAIN=y
567 	 */
568 	struct k_thread dummy_thread;
569 
570 	z_dummy_thread_init(&dummy_thread);
571 #endif
572 	/* do any necessary initialization of static devices */
573 	z_device_state_init();
574 
575 	/* perform basic hardware initialization */
576 	z_sys_init_run_level(INIT_LEVEL_PRE_KERNEL_1);
577 	z_sys_init_run_level(INIT_LEVEL_PRE_KERNEL_2);
578 
579 #ifdef CONFIG_STACK_CANARIES
580 	uintptr_t stack_guard;
581 
582 	z_early_rand_get((uint8_t *)&stack_guard, sizeof(stack_guard));
583 	__stack_chk_guard = stack_guard;
584 	__stack_chk_guard <<= 8;
585 #endif	/* CONFIG_STACK_CANARIES */
586 
587 #ifdef CONFIG_TIMING_FUNCTIONS_NEED_AT_BOOT
588 	timing_init();
589 	timing_start();
590 #endif
591 
592 #ifdef CONFIG_MULTITHREADING
593 	switch_to_main_thread(prepare_multithreading());
594 #else
595 #ifdef ARCH_SWITCH_TO_MAIN_NO_MULTITHREADING
596 	/* Custom ARCH-specific routine to switch to main()
597 	 * in the case of no multi-threading.
598 	 */
599 	ARCH_SWITCH_TO_MAIN_NO_MULTITHREADING(bg_thread_main,
600 		NULL, NULL, NULL);
601 #else
602 	bg_thread_main(NULL, NULL, NULL);
603 
604 	/* LCOV_EXCL_START
605 	 * We've already dumped coverage data at this point.
606 	 */
607 	irq_lock();
608 	while (true) {
609 	}
610 	/* LCOV_EXCL_STOP */
611 #endif
612 #endif /* CONFIG_MULTITHREADING */
613 
614 	/*
615 	 * Compiler can't tell that the above routines won't return and issues
616 	 * a warning unless we explicitly tell it that control never gets this
617 	 * far.
618 	 */
619 
620 	CODE_UNREACHABLE; /* LCOV_EXCL_LINE */
621 }
622 
623 #ifdef CONFIG_OBJ_CORE_SYSTEM
init_cpu_obj_core_list(void)624 static int init_cpu_obj_core_list(void)
625 {
626 	/* Initialize CPU object type */
627 
628 	z_obj_type_init(&obj_type_cpu, K_OBJ_TYPE_CPU_ID,
629 			offsetof(struct _cpu, obj_core));
630 
631 #ifdef CONFIG_OBJ_CORE_STATS_SYSTEM
632 	k_obj_type_stats_init(&obj_type_cpu, &cpu_stats_desc);
633 #endif
634 
635 	return 0;
636 }
637 
init_kernel_obj_core_list(void)638 static int init_kernel_obj_core_list(void)
639 {
640 	/* Initialize kernel object type */
641 
642 	z_obj_type_init(&obj_type_kernel, K_OBJ_TYPE_KERNEL_ID,
643 			offsetof(struct z_kernel, obj_core));
644 
645 #ifdef CONFIG_OBJ_CORE_STATS_SYSTEM
646 	k_obj_type_stats_init(&obj_type_kernel, &kernel_stats_desc);
647 #endif
648 
649 	k_obj_core_init_and_link(K_OBJ_CORE(&_kernel), &obj_type_kernel);
650 #ifdef CONFIG_OBJ_CORE_STATS_SYSTEM
651 	k_obj_core_stats_register(K_OBJ_CORE(&_kernel), _kernel.usage,
652 				  sizeof(_kernel.usage));
653 #endif
654 
655 	return 0;
656 }
657 
658 SYS_INIT(init_cpu_obj_core_list, PRE_KERNEL_1,
659 	 CONFIG_KERNEL_INIT_PRIORITY_OBJECTS);
660 
661 SYS_INIT(init_kernel_obj_core_list, PRE_KERNEL_1,
662 	 CONFIG_KERNEL_INIT_PRIORITY_OBJECTS);
663 #endif
664