1 /* SPDX-License-Identifier: GPL-2.0+ */
3 * This file implements recording of each stage of the boot process. It is
4 * intended to implement timing of each stage, reporting this information
5 * to the user and passing it to the OS for logging / further analysis.
6 * Note that it requires timer_get_boot_us() to be defined by the board
8 * Copyright (c) 2011 The Chromium OS Authors.
14 #include <linux/kconfig.h>
16 /* Flags for each bootstage record */
17 enum bootstage_flags {
18 BOOTSTAGEF_ERROR = 1 << 0, /* Error record */
19 BOOTSTAGEF_ALLOC = 1 << 1, /* Allocate an id */
22 /* bootstate sub-IDs used for kernel and ramdisk ranges */
25 BOOTSTAGE_SUB_FORMAT_OK,
26 BOOTSTAGE_SUB_NO_UNIT_NAME,
27 BOOTSTAGE_SUB_UNIT_NAME,
28 BOOTSTAGE_SUB_SUBNODE,
31 BOOTSTAGE_SUB_HASH = 5,
32 BOOTSTAGE_SUB_CHECK_ARCH = 5,
33 BOOTSTAGE_SUB_CHECK_ALL,
34 BOOTSTAGE_SUB_GET_DATA,
35 BOOTSTAGE_SUB_CHECK_ALL_OK = 7,
36 BOOTSTAGE_SUB_GET_DATA_OK,
41 * A list of boot stages that we know about. Each of these indicates the
42 * state that we are at, and the action that we are about to perform. For
43 * errors, we issue an error for an item when it fails. Therefore the
50 * and an error condition where action 3 failed would be:
58 BOOTSTAGE_ID_START = 0,
59 BOOTSTAGE_ID_CHECK_MAGIC, /* Checking image magic */
60 BOOTSTAGE_ID_CHECK_HEADER, /* Checking image header */
61 BOOTSTAGE_ID_CHECK_CHECKSUM, /* Checking image checksum */
62 BOOTSTAGE_ID_CHECK_ARCH, /* Checking architecture */
64 BOOTSTAGE_ID_CHECK_IMAGETYPE = 5,/* Checking image type */
65 BOOTSTAGE_ID_DECOMP_IMAGE, /* Decompressing image */
66 BOOTSTAGE_ID_KERNEL_LOADED, /* Kernel has been loaded */
67 BOOTSTAGE_ID_DECOMP_UNIMPL = 7, /* Odd decompression algorithm */
68 BOOTSTAGE_ID_CHECK_BOOT_OS, /* Calling OS-specific boot function */
69 BOOTSTAGE_ID_BOOT_OS_RETURNED, /* Tried to boot OS, but it returned */
70 BOOTSTAGE_ID_CHECK_RAMDISK = 9, /* Checking ram disk */
72 BOOTSTAGE_ID_RD_MAGIC, /* Checking ram disk magic */
73 BOOTSTAGE_ID_RD_HDR_CHECKSUM, /* Checking ram disk heder checksum */
74 BOOTSTAGE_ID_RD_CHECKSUM, /* Checking ram disk checksum */
75 BOOTSTAGE_ID_COPY_RAMDISK = 12, /* Copying ram disk into place */
76 BOOTSTAGE_ID_RAMDISK, /* Checking for valid ramdisk */
77 BOOTSTAGE_ID_NO_RAMDISK, /* No ram disk found (not an error) */
79 BOOTSTAGE_ID_RUN_OS = 15, /* Exiting U-Boot, entering OS */
81 BOOTSTAGE_ID_NEED_RESET = 30,
82 BOOTSTAGE_ID_POST_FAIL, /* Post failure */
83 BOOTSTAGE_ID_POST_FAIL_R, /* Post failure reported after reloc */
86 * This set is reported only by x86, and the meaning is different. In
87 * this case we are reporting completion of a particular stage.
88 * This should probably change in the x86 code (which doesn't report
89 * errors in any case), but discussion this can perhaps wait until we
90 * have a generic board implementation.
92 BOOTSTAGE_ID_BOARD_INIT_R, /* We have relocated */
93 BOOTSTAGE_ID_BOARD_GLOBAL_DATA, /* Global data is set up */
95 BOOTSTAGE_ID_BOARD_INIT_SEQ, /* We completed the init sequence */
96 BOOTSTAGE_ID_BOARD_FLASH, /* We have configured flash banks */
97 BOOTSTAGE_ID_BOARD_FLASH_37, /* In case you didn't hear... */
98 BOOTSTAGE_ID_BOARD_ENV, /* Environment is relocated & ready */
99 BOOTSTAGE_ID_BOARD_PCI, /* PCI is up */
101 BOOTSTAGE_ID_BOARD_INTERRUPTS, /* Exceptions / interrupts ready */
102 BOOTSTAGE_ID_BOARD_DONE, /* Board init done, off to main loop */
103 /* ^^^ here ends the x86 sequence */
105 /* Boot stages related to loading a kernel from an IDE device */
106 BOOTSTAGE_ID_IDE_START = 41,
107 BOOTSTAGE_ID_IDE_ADDR,
108 BOOTSTAGE_ID_IDE_BOOT_DEVICE,
109 BOOTSTAGE_ID_IDE_TYPE,
111 BOOTSTAGE_ID_IDE_PART,
112 BOOTSTAGE_ID_IDE_PART_INFO,
113 BOOTSTAGE_ID_IDE_PART_TYPE,
114 BOOTSTAGE_ID_IDE_PART_READ,
115 BOOTSTAGE_ID_IDE_FORMAT,
117 BOOTSTAGE_ID_IDE_CHECKSUM, /* 50 */
118 BOOTSTAGE_ID_IDE_READ,
120 /* Boot stages related to loading a kernel from an NAND device */
121 BOOTSTAGE_ID_NAND_PART,
122 BOOTSTAGE_ID_NAND_SUFFIX,
123 BOOTSTAGE_ID_NAND_BOOT_DEVICE,
124 BOOTSTAGE_ID_NAND_HDR_READ = 55,
125 BOOTSTAGE_ID_NAND_AVAILABLE = 55,
126 BOOTSTAGE_ID_NAND_TYPE = 57,
127 BOOTSTAGE_ID_NAND_READ,
129 /* Boot stages related to loading a kernel from an network device */
130 BOOTSTAGE_ID_NET_CHECKSUM = 60,
131 BOOTSTAGE_ID_NET_ETH_START = 64,
132 BOOTSTAGE_ID_NET_ETH_INIT,
134 BOOTSTAGE_ID_NET_START = 80,
135 BOOTSTAGE_ID_NET_NETLOOP_OK,
136 BOOTSTAGE_ID_NET_LOADED,
137 BOOTSTAGE_ID_NET_DONE_ERR,
138 BOOTSTAGE_ID_NET_DONE,
140 BOOTSTAGE_ID_FIT_FDT_START = 90,
142 * Boot stages related to loading a FIT image. Some of these are a
145 BOOTSTAGE_ID_FIT_KERNEL_START = 100,
147 BOOTSTAGE_ID_FIT_CONFIG = 110,
148 BOOTSTAGE_ID_FIT_TYPE,
149 BOOTSTAGE_ID_FIT_KERNEL_INFO,
151 BOOTSTAGE_ID_FIT_COMPRESSION,
153 BOOTSTAGE_ID_FIT_LOADADDR,
154 BOOTSTAGE_ID_OVERWRITTEN,
156 /* Next 10 IDs used by BOOTSTAGE_SUB_... */
157 BOOTSTAGE_ID_FIT_RD_START = 120, /* Ramdisk stages */
159 /* Next 10 IDs used by BOOTSTAGE_SUB_... */
160 BOOTSTAGE_ID_FIT_SETUP_START = 130, /* x86 setup stages */
162 BOOTSTAGE_ID_IDE_FIT_READ = 140,
163 BOOTSTAGE_ID_IDE_FIT_READ_OK,
165 BOOTSTAGE_ID_NAND_FIT_READ = 150,
166 BOOTSTAGE_ID_NAND_FIT_READ_OK,
168 BOOTSTAGE_ID_FIT_LOADABLE_START = 160, /* for Loadable Images */
170 * These boot stages are new, higher level, and not directly related
171 * to the old boot progress numbers. They are useful for recording
172 * rough boot timing information.
175 BOOTSTAGE_ID_START_TPL,
176 BOOTSTAGE_ID_END_TPL,
177 BOOTSTAGE_ID_START_SPL,
178 BOOTSTAGE_ID_END_SPL,
179 BOOTSTAGE_ID_START_VPL,
180 BOOTSTAGE_ID_END_VPL,
181 BOOTSTAGE_ID_START_UBOOT_F,
182 BOOTSTAGE_ID_START_UBOOT_R,
183 BOOTSTAGE_ID_USB_START,
184 BOOTSTAGE_ID_ETH_START,
185 BOOTSTAGE_ID_BOOTP_START,
186 BOOTSTAGE_ID_BOOTP_STOP,
187 BOOTSTAGE_ID_BOOTM_START,
188 BOOTSTAGE_ID_BOOTM_HANDOFF,
189 BOOTSTAGE_ID_MAIN_LOOP,
190 BOOTSTAGE_ID_ENTER_CLI_LOOP,
191 BOOTSTAGE_KERNELREAD_START,
192 BOOTSTAGE_KERNELREAD_STOP,
193 BOOTSTAGE_ID_BOARD_INIT,
194 BOOTSTAGE_ID_BOARD_INIT_DONE,
196 BOOTSTAGE_ID_CPU_AWAKE,
197 BOOTSTAGE_ID_MAIN_CPU_AWAKE,
198 BOOTSTAGE_ID_MAIN_CPU_READY,
200 BOOTSTAGE_ID_ACCUM_LCD,
201 BOOTSTAGE_ID_ACCUM_SCSI,
202 BOOTSTAGE_ID_ACCUM_SPI,
203 BOOTSTAGE_ID_ACCUM_DECOMP,
204 BOOTSTAGE_ID_ACCUM_OF_LIVE,
205 BOOTSTAGE_ID_FPGA_INIT,
206 BOOTSTAGE_ID_ACCUM_DM_SPL,
207 BOOTSTAGE_ID_ACCUM_DM_F,
208 BOOTSTAGE_ID_ACCUM_DM_R,
209 BOOTSTAGE_ID_ACCUM_FSP_M,
210 BOOTSTAGE_ID_ACCUM_FSP_S,
211 BOOTSTAGE_ID_ACCUM_MMAP_SPI,
213 /* a few spare for the user, from here */
219 * Return the time since boot in microseconds, This is needed for bootstage
220 * and should be defined in CPU- or board-specific code. If undefined then
221 * you will get a link error.
223 ulong timer_get_boot_us(void);
225 #if defined(USE_HOSTCC) || !CONFIG_IS_ENABLED(SHOW_BOOT_PROGRESS)
226 #define show_boot_progress(val) do {} while (0)
229 * Board code can implement show_boot_progress() if needed.
231 * @param val Progress state (enum bootstage_id), or -id if an error
234 void show_boot_progress(int val);
237 #if !defined(USE_HOSTCC)
238 #if CONFIG_IS_ENABLED(BOOTSTAGE)
239 #define ENABLE_BOOTSTAGE
243 #ifdef ENABLE_BOOTSTAGE
245 /* This is the full bootstage implementation */
248 * Relocate existing bootstage records
250 * Call this after relocation has happened and after malloc has been initted.
251 * We need to copy any pointers in bootstage records that were added pre-
252 * relocation, since memory can be overwritten later.
253 * Return: Always returns 0, to indicate success
255 int bootstage_relocate(void);
258 * Add a new bootstage record
260 * @param id Bootstage ID to use (ignored if flags & BOOTSTAGEF_ALLOC)
261 * @param name Name of record, or NULL for none
262 * @param flags Flags (BOOTSTAGEF_...)
263 * @param mark Time to record in this record, in microseconds
265 ulong bootstage_add_record(enum bootstage_id id, const char *name,
266 int flags, ulong mark);
269 * Mark a time stamp for the current boot stage.
271 ulong bootstage_mark(enum bootstage_id id);
273 ulong bootstage_error(enum bootstage_id id);
275 ulong bootstage_mark_name(enum bootstage_id id, const char *name);
278 * Mark a time stamp in the given function and line number
280 * See BOOTSTAGE_MARKER() for a convenient macro.
282 * @param file Filename to record (NULL if none)
283 * @param func Function name to record
284 * @param linenum Line number to record
285 * Return: recorded time stamp
287 ulong bootstage_mark_code(const char *file, const char *func,
291 * Mark the start of a bootstage activity. The end will be marked later with
292 * bootstage_accum() and at that point we accumulate the time taken. Calling
293 * this function turns the given id into a accumulator rather than and
294 * absolute mark in time. Accumulators record the total amount of time spent
295 * in an activty during boot.
297 * @param id Bootstage id to record this timestamp against
298 * @param name Textual name to display for this id in the report (maybe NULL)
299 * Return: start timestamp in microseconds
301 uint32_t bootstage_start(enum bootstage_id id, const char *name);
304 * Mark the end of a bootstage activity
306 * After previously marking the start of an activity with bootstage_start(),
307 * call this function to mark the end. You can call these functions in pairs
308 * as many times as you like.
310 * @param id Bootstage id to record this timestamp against
311 * Return: time spent in this iteration of the activity (i.e. the time now
312 * less the start time recorded in the last bootstage_start() call
315 uint32_t bootstage_accum(enum bootstage_id id);
317 /* Print a report about boot time */
318 void bootstage_report(void);
321 * Add bootstage information to the device tree
323 * Return: 0 if ok, -ve on error
325 int bootstage_fdt_add_report(void);
328 * Stash bootstage data into memory
330 * @param base Base address of memory buffer
331 * @param size Size of memory buffer
332 * Return: 0 if stashed ok, -1 if out of space
334 int bootstage_stash(void *base, int size);
337 * Read bootstage data from memory
339 * Bootstage data is read from memory and placed in the bootstage table
340 * in the user records.
342 * @param base Base address of memory buffer
343 * @param size Size of memory buffer (-1 if unknown)
344 * Return: 0 if unstashed ok, -ENOENT if bootstage info not found, -ENOSPC if
345 * there is not space for read the stashed data, or other error if
346 * something else went wrong
348 int bootstage_unstash(const void *base, int size);
351 * bootstage_get_size() - Get the size of the bootstage data
353 * Return: size of boostage data in bytes
355 int bootstage_get_size(void);
358 * bootstage_init() - Prepare bootstage for use
360 * @first: true if this is the first time bootstage is set up. This causes it
361 * to add a 'reset' record with a time of 0.
363 int bootstage_init(bool first);
366 static inline ulong bootstage_add_record(enum bootstage_id id,
367 const char *name, int flags, ulong mark)
373 * This is a dummy implementation which just calls show_boot_progress(),
374 * and won't even do that unless CONFIG_SHOW_BOOT_PROGRESS is defined
377 static inline int bootstage_relocate(void)
382 static inline ulong bootstage_mark(enum bootstage_id id)
384 show_boot_progress(id);
388 static inline ulong bootstage_error(enum bootstage_id id)
390 show_boot_progress(-id);
394 static inline ulong bootstage_mark_name(enum bootstage_id id, const char *name)
396 show_boot_progress(id);
400 static inline ulong bootstage_mark_code(const char *file, const char *func,
406 static inline uint32_t bootstage_start(enum bootstage_id id, const char *name)
411 static inline uint32_t bootstage_accum(enum bootstage_id id)
416 static inline int bootstage_stash(void *base, int size)
418 return 0; /* Pretend to succeed */
421 static inline int bootstage_unstash(const void *base, int size)
423 return 0; /* Pretend to succeed */
426 static inline int bootstage_get_size(void)
431 static inline int bootstage_init(bool first)
436 #endif /* ENABLE_BOOTSTAGE */
438 /* Helper macro for adding a bootstage to a line of code */
439 #define BOOTSTAGE_MARKER() \
440 bootstage_mark_code(__FILE__, __func__, __LINE__)