logpage.c revision 1.6 1 1.6 nonaka /* $NetBSD: logpage.c,v 1.6 2018/04/17 08:54:35 nonaka Exp $ */
2 1.1 nonaka
3 1.1 nonaka /*-
4 1.6 nonaka * SPDX-License-Identifier: BSD-2-Clause-FreeBSD
5 1.6 nonaka *
6 1.1 nonaka * Copyright (c) 2013 EMC Corp.
7 1.1 nonaka * All rights reserved.
8 1.1 nonaka *
9 1.1 nonaka * Copyright (C) 2012-2013 Intel Corporation
10 1.1 nonaka * All rights reserved.
11 1.1 nonaka *
12 1.1 nonaka * Redistribution and use in source and binary forms, with or without
13 1.1 nonaka * modification, are permitted provided that the following conditions
14 1.1 nonaka * are met:
15 1.1 nonaka * 1. Redistributions of source code must retain the above copyright
16 1.1 nonaka * notice, this list of conditions and the following disclaimer.
17 1.1 nonaka * 2. Redistributions in binary form must reproduce the above copyright
18 1.1 nonaka * notice, this list of conditions and the following disclaimer in the
19 1.1 nonaka * documentation and/or other materials provided with the distribution.
20 1.1 nonaka *
21 1.1 nonaka * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
22 1.1 nonaka * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
23 1.1 nonaka * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
24 1.1 nonaka * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
25 1.1 nonaka * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
26 1.1 nonaka * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
27 1.1 nonaka * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
28 1.1 nonaka * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
29 1.1 nonaka * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
30 1.1 nonaka * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
31 1.1 nonaka * SUCH DAMAGE.
32 1.1 nonaka */
33 1.1 nonaka
34 1.1 nonaka #include <sys/cdefs.h>
35 1.1 nonaka #ifndef lint
36 1.6 nonaka __RCSID("$NetBSD: logpage.c,v 1.6 2018/04/17 08:54:35 nonaka Exp $");
37 1.1 nonaka #if 0
38 1.6 nonaka __FBSDID("$FreeBSD: head/sbin/nvmecontrol/logpage.c 326276 2017-11-27 15:37:16Z pfg $");
39 1.1 nonaka #endif
40 1.1 nonaka #endif
41 1.1 nonaka
42 1.1 nonaka #include <sys/param.h>
43 1.1 nonaka #include <sys/ioccom.h>
44 1.4 nonaka #include <sys/endian.h>
45 1.1 nonaka
46 1.1 nonaka #include <ctype.h>
47 1.1 nonaka #include <err.h>
48 1.1 nonaka #include <fcntl.h>
49 1.1 nonaka #include <stdbool.h>
50 1.1 nonaka #include <stddef.h>
51 1.1 nonaka #include <stdio.h>
52 1.1 nonaka #include <stdlib.h>
53 1.1 nonaka #include <string.h>
54 1.1 nonaka #include <unistd.h>
55 1.1 nonaka
56 1.1 nonaka #include "nvmectl.h"
57 1.1 nonaka
58 1.1 nonaka #define DEFAULT_SIZE (4096)
59 1.1 nonaka #define MAX_FW_SLOTS (7)
60 1.1 nonaka
61 1.6 nonaka typedef void (*print_fn_t)(const struct nvm_identify_controller *cdata, void *buf,
62 1.6 nonaka uint32_t size);
63 1.1 nonaka
64 1.4 nonaka struct kv_name {
65 1.4 nonaka uint32_t key;
66 1.4 nonaka const char *name;
67 1.4 nonaka };
68 1.4 nonaka
69 1.4 nonaka static const char *
70 1.4 nonaka kv_lookup(const struct kv_name *kv, size_t kv_count, uint32_t key)
71 1.4 nonaka {
72 1.4 nonaka static char bad[32];
73 1.4 nonaka size_t i;
74 1.4 nonaka
75 1.4 nonaka for (i = 0; i < kv_count; i++, kv++)
76 1.4 nonaka if (kv->key == key)
77 1.4 nonaka return kv->name;
78 1.4 nonaka snprintf(bad, sizeof(bad), "Attribute %#x", key);
79 1.4 nonaka return bad;
80 1.4 nonaka }
81 1.4 nonaka
82 1.4 nonaka static void
83 1.6 nonaka print_log_hex(const struct nvm_identify_controller *cdata __unused, void *data,
84 1.6 nonaka uint32_t length)
85 1.4 nonaka {
86 1.6 nonaka print_hex(data, length);
87 1.4 nonaka }
88 1.4 nonaka
89 1.6 nonaka static void
90 1.6 nonaka print_bin(const struct nvm_identify_controller *cdata __unused, void *data,
91 1.6 nonaka uint32_t length)
92 1.4 nonaka {
93 1.6 nonaka write(STDOUT_FILENO, data, length);
94 1.4 nonaka }
95 1.4 nonaka
96 1.1 nonaka static void *
97 1.1 nonaka get_log_buffer(uint32_t size)
98 1.1 nonaka {
99 1.1 nonaka void *buf;
100 1.1 nonaka
101 1.1 nonaka if ((buf = malloc(size)) == NULL)
102 1.1 nonaka errx(1, "unable to malloc %u bytes", size);
103 1.1 nonaka
104 1.1 nonaka memset(buf, 0, size);
105 1.1 nonaka return (buf);
106 1.1 nonaka }
107 1.1 nonaka
108 1.1 nonaka void
109 1.1 nonaka read_logpage(int fd, uint8_t log_page, int nsid, void *payload,
110 1.1 nonaka uint32_t payload_size)
111 1.1 nonaka {
112 1.1 nonaka struct nvme_pt_command pt;
113 1.1 nonaka
114 1.1 nonaka memset(&pt, 0, sizeof(pt));
115 1.1 nonaka pt.cmd.opcode = NVM_ADMIN_GET_LOG_PG;
116 1.1 nonaka pt.cmd.nsid = nsid;
117 1.1 nonaka pt.cmd.cdw10 = ((payload_size/sizeof(uint32_t)) - 1) << 16;
118 1.1 nonaka pt.cmd.cdw10 |= log_page;
119 1.1 nonaka pt.buf = payload;
120 1.1 nonaka pt.len = payload_size;
121 1.1 nonaka pt.is_read = 1;
122 1.1 nonaka
123 1.1 nonaka if (ioctl(fd, NVME_PASSTHROUGH_CMD, &pt) < 0)
124 1.1 nonaka err(1, "get log page request failed");
125 1.1 nonaka
126 1.1 nonaka if (nvme_completion_is_error(&pt.cpl))
127 1.1 nonaka errx(1, "get log page request returned error");
128 1.1 nonaka }
129 1.1 nonaka
130 1.1 nonaka static void
131 1.6 nonaka print_log_error(const struct nvm_identify_controller *cdata __unused, void *buf,
132 1.6 nonaka uint32_t size)
133 1.1 nonaka {
134 1.1 nonaka int i, nentries;
135 1.1 nonaka struct nvme_error_information_entry *entry = buf;
136 1.1 nonaka
137 1.1 nonaka printf("Error Information Log\n");
138 1.1 nonaka printf("=====================\n");
139 1.1 nonaka
140 1.1 nonaka if (entry->error_count == 0) {
141 1.1 nonaka printf("No error entries found\n");
142 1.1 nonaka return;
143 1.1 nonaka }
144 1.1 nonaka
145 1.1 nonaka nentries = size/sizeof(struct nvme_error_information_entry);
146 1.1 nonaka for (i = 0; i < nentries; i++, entry++) {
147 1.1 nonaka if (entry->error_count == 0)
148 1.1 nonaka break;
149 1.1 nonaka
150 1.1 nonaka printf("Entry %02d\n", i + 1);
151 1.1 nonaka printf("=========\n");
152 1.1 nonaka printf(" Error count: %ju\n", entry->error_count);
153 1.1 nonaka printf(" Submission queue ID: %u\n", entry->sqid);
154 1.1 nonaka printf(" Command ID: %u\n", entry->cid);
155 1.1 nonaka /* TODO: Export nvme_status_string structures from kernel? */
156 1.1 nonaka printf(" Status:\n");
157 1.1 nonaka printf(" Phase tag: %d\n",
158 1.1 nonaka (uint16_t)__SHIFTOUT(entry->status, NVME_CQE_PHASE));
159 1.1 nonaka printf(" Status code: %d\n",
160 1.1 nonaka (uint16_t)__SHIFTOUT(entry->status, NVME_CQE_SC_MASK));
161 1.1 nonaka printf(" Status code type: %d\n",
162 1.1 nonaka (uint16_t)__SHIFTOUT(entry->status, NVME_CQE_SCT_MASK));
163 1.1 nonaka printf(" More: %d\n",
164 1.1 nonaka (uint16_t)__SHIFTOUT(entry->status, NVME_CQE_M));
165 1.1 nonaka printf(" DNR: %d\n",
166 1.1 nonaka (uint16_t)__SHIFTOUT(entry->status, NVME_CQE_DNR));
167 1.1 nonaka printf(" Error location: %u\n", entry->error_location);
168 1.1 nonaka printf(" LBA: %ju\n", entry->lba);
169 1.1 nonaka printf(" Namespace ID: %u\n", entry->nsid);
170 1.1 nonaka printf(" Vendor specific info: %u\n", entry->vendor_specific);
171 1.1 nonaka printf(" Command specific info: %ju\n",
172 1.1 nonaka entry->command_specific);
173 1.1 nonaka }
174 1.1 nonaka }
175 1.1 nonaka
176 1.1 nonaka static void
177 1.4 nonaka print_temp(uint16_t t)
178 1.4 nonaka {
179 1.4 nonaka printf("%u K, %2.2f C, %3.2f F\n", t, (float)t - 273.15,
180 1.4 nonaka (float)t * 9 / 5 - 459.67);
181 1.4 nonaka }
182 1.4 nonaka
183 1.4 nonaka static void
184 1.6 nonaka print_log_health(const struct nvm_identify_controller *cdata __unused, void *buf,
185 1.6 nonaka uint32_t size __unused)
186 1.1 nonaka {
187 1.1 nonaka struct nvme_health_information_page *health = buf;
188 1.4 nonaka int i;
189 1.1 nonaka
190 1.1 nonaka printf("SMART/Health Information Log\n");
191 1.1 nonaka printf("============================\n");
192 1.1 nonaka
193 1.1 nonaka printf("Critical Warning State: 0x%02x\n",
194 1.1 nonaka health->critical_warning);
195 1.1 nonaka printf(" Available spare: %d\n",
196 1.1 nonaka (uint8_t)__SHIFTOUT(health->critical_warning,
197 1.1 nonaka NVME_HEALTH_PAGE_CW_AVAIL_SPARE));
198 1.1 nonaka printf(" Temperature: %d\n",
199 1.1 nonaka (uint8_t)__SHIFTOUT(health->critical_warning,
200 1.1 nonaka NVME_HEALTH_PAGE_CW_TEMPERTURE));
201 1.1 nonaka printf(" Device reliability: %d\n",
202 1.1 nonaka (uint8_t)__SHIFTOUT(health->critical_warning,
203 1.1 nonaka NVME_HEALTH_PAGE_CW_DEVICE_RELIABLITY));
204 1.1 nonaka printf(" Read only: %d\n",
205 1.1 nonaka (uint8_t)__SHIFTOUT(health->critical_warning,
206 1.1 nonaka NVME_HEALTH_PAGE_CW_READ_ONLY));
207 1.1 nonaka printf(" Volatile memory backup: %d\n",
208 1.1 nonaka (uint8_t)__SHIFTOUT(health->critical_warning,
209 1.1 nonaka NVME_HEALTH_PAGE_CW_VOLATILE_MEMORY_BACKUP));
210 1.4 nonaka printf("Temperature: ");
211 1.4 nonaka print_temp(health->composite_temperature);
212 1.1 nonaka printf("Available spare: %u\n",
213 1.1 nonaka health->available_spare);
214 1.1 nonaka printf("Available spare threshold: %u\n",
215 1.1 nonaka health->available_spare_threshold);
216 1.1 nonaka printf("Percentage used: %u\n",
217 1.1 nonaka health->percentage_used);
218 1.1 nonaka
219 1.4 nonaka print_bignum("Data units (512 byte) read:", health->data_units_read, "");
220 1.4 nonaka print_bignum("Data units (512 byte) written:", health->data_units_written,
221 1.4 nonaka "");
222 1.4 nonaka print_bignum("Host read commands:", health->host_read_commands, "");
223 1.4 nonaka print_bignum("Host write commands:", health->host_write_commands, "");
224 1.4 nonaka print_bignum("Controller busy time (minutes):", health->controller_busy_time,
225 1.4 nonaka "");
226 1.4 nonaka print_bignum("Power cycles:", health->power_cycles, "");
227 1.4 nonaka print_bignum("Power on hours:", health->power_on_hours, "");
228 1.4 nonaka print_bignum("Unsafe shutdowns:", health->unsafe_shutdowns, "");
229 1.4 nonaka print_bignum("Media errors:", health->media_errors, "");
230 1.3 nonaka print_bignum("No. error info log entries:",
231 1.3 nonaka health->num_error_info_log_entries, "");
232 1.4 nonaka
233 1.4 nonaka printf("Warning Temp Composite Time: %d\n", health->warning_temp_time);
234 1.4 nonaka printf("Error Temp Composite Time: %d\n", health->error_temp_time);
235 1.4 nonaka for (i = 0; i < 7; i++) {
236 1.4 nonaka if (health->temp_sensor[i] == 0)
237 1.4 nonaka continue;
238 1.4 nonaka printf("Temperature Sensor %d: ", i + 1);
239 1.4 nonaka print_temp(health->temp_sensor[i]);
240 1.4 nonaka }
241 1.1 nonaka }
242 1.1 nonaka
243 1.1 nonaka static void
244 1.6 nonaka print_log_firmware(const struct nvm_identify_controller *cdata, void *buf,
245 1.6 nonaka uint32_t size __unused)
246 1.1 nonaka {
247 1.6 nonaka u_int i, slots;
248 1.1 nonaka const char *status;
249 1.1 nonaka struct nvme_firmware_page *fw = buf;
250 1.1 nonaka
251 1.1 nonaka printf("Firmware Slot Log\n");
252 1.1 nonaka printf("=================\n");
253 1.1 nonaka
254 1.6 nonaka if (!(cdata->oacs & NVME_ID_CTRLR_OACS_FW))
255 1.6 nonaka slots = 1;
256 1.6 nonaka else
257 1.6 nonaka slots = MIN(__SHIFTOUT(cdata->frmw, NVME_ID_CTRLR_FRMW_NSLOT),
258 1.6 nonaka MAX_FW_SLOTS);
259 1.6 nonaka
260 1.6 nonaka for (i = 0; i < slots; i++) {
261 1.1 nonaka printf("Slot %d: ", i + 1);
262 1.1 nonaka if (__SHIFTOUT(fw->afi, NVME_FW_PAGE_AFI_SLOT) == i + 1)
263 1.1 nonaka status = " Active";
264 1.1 nonaka else
265 1.1 nonaka status = "Inactive";
266 1.1 nonaka
267 1.1 nonaka if (fw->revision[i] == 0LLU)
268 1.1 nonaka printf("Empty\n");
269 1.1 nonaka else
270 1.1 nonaka if (isprint(*(uint8_t *)&fw->revision[i]))
271 1.1 nonaka printf("[%s] %.8s\n", status,
272 1.1 nonaka (char *)&fw->revision[i]);
273 1.1 nonaka else
274 1.1 nonaka printf("[%s] %016jx\n", status,
275 1.1 nonaka fw->revision[i]);
276 1.1 nonaka }
277 1.1 nonaka }
278 1.1 nonaka
279 1.4 nonaka /*
280 1.4 nonaka * Intel specific log pages from
281 1.4 nonaka * http://www.intel.com/content/dam/www/public/us/en/documents/product-specifications/ssd-dc-p3700-spec.pdf
282 1.4 nonaka *
283 1.4 nonaka * Though the version as of this date has a typo for the size of log page 0xca,
284 1.4 nonaka * offset 147: it is only 1 byte, not 6.
285 1.4 nonaka */
286 1.4 nonaka static void
287 1.6 nonaka print_intel_temp_stats(const struct nvm_identify_controller *cdata __unused,
288 1.6 nonaka void *buf, uint32_t size __unused)
289 1.4 nonaka {
290 1.4 nonaka struct intel_log_temp_stats *temp = buf;
291 1.4 nonaka
292 1.4 nonaka printf("Intel Temperature Log\n");
293 1.4 nonaka printf("=====================\n");
294 1.4 nonaka
295 1.4 nonaka printf("Current: ");
296 1.4 nonaka print_temp(temp->current);
297 1.4 nonaka printf("Overtemp Last Flags %#jx\n",
298 1.4 nonaka (uintmax_t)temp->overtemp_flag_last);
299 1.4 nonaka printf("Overtemp Lifetime Flags %#jx\n",
300 1.4 nonaka (uintmax_t)temp->overtemp_flag_life);
301 1.4 nonaka printf("Max Temperature ");
302 1.4 nonaka print_temp(temp->max_temp);
303 1.4 nonaka printf("Min Temperature ");
304 1.4 nonaka print_temp(temp->min_temp);
305 1.4 nonaka printf("Max Operating Temperature ");
306 1.4 nonaka print_temp(temp->max_oper_temp);
307 1.4 nonaka printf("Min Operating Temperature ");
308 1.4 nonaka print_temp(temp->min_oper_temp);
309 1.4 nonaka printf("Estimated Temperature Offset: %ju C/K\n",
310 1.4 nonaka (uintmax_t)temp->est_offset);
311 1.4 nonaka }
312 1.4 nonaka
313 1.4 nonaka /*
314 1.4 nonaka * Format from Table 22, section 5.7 IO Command Latency Statistics.
315 1.4 nonaka * Read and write stats pages have identical encoding.
316 1.4 nonaka */
317 1.4 nonaka static void
318 1.6 nonaka print_intel_read_write_lat_log(const struct nvm_identify_controller *cdata __unused,
319 1.6 nonaka void *buf, uint32_t size __unused)
320 1.4 nonaka {
321 1.4 nonaka const char *walker = buf;
322 1.4 nonaka int i;
323 1.4 nonaka
324 1.4 nonaka printf("Major: %d\n", le16dec(walker + 0));
325 1.4 nonaka printf("Minor: %d\n", le16dec(walker + 2));
326 1.4 nonaka for (i = 0; i < 32; i++)
327 1.4 nonaka printf("%4dus-%4dus: %ju\n", i * 32, (i + 1) * 32,
328 1.4 nonaka (uintmax_t)le32dec(walker + 4 + i * 4));
329 1.4 nonaka for (i = 1; i < 32; i++)
330 1.4 nonaka printf("%4dms-%4dms: %ju\n", i, i + 1,
331 1.4 nonaka (uintmax_t)le32dec(walker + 132 + i * 4));
332 1.4 nonaka for (i = 1; i < 32; i++)
333 1.4 nonaka printf("%4dms-%4dms: %ju\n", i * 32, (i + 1) * 32,
334 1.4 nonaka (uintmax_t)le32dec(walker + 256 + i * 4));
335 1.4 nonaka }
336 1.4 nonaka
337 1.4 nonaka static void
338 1.6 nonaka print_intel_read_lat_log(const struct nvm_identify_controller *cdata, void *buf,
339 1.6 nonaka uint32_t size)
340 1.4 nonaka {
341 1.4 nonaka
342 1.4 nonaka printf("Intel Read Latency Log\n");
343 1.4 nonaka printf("======================\n");
344 1.6 nonaka print_intel_read_write_lat_log(cdata, buf, size);
345 1.4 nonaka }
346 1.4 nonaka
347 1.4 nonaka static void
348 1.6 nonaka print_intel_write_lat_log(const struct nvm_identify_controller *cdata, void *buf,
349 1.6 nonaka uint32_t size)
350 1.4 nonaka {
351 1.4 nonaka
352 1.4 nonaka printf("Intel Write Latency Log\n");
353 1.4 nonaka printf("=======================\n");
354 1.6 nonaka print_intel_read_write_lat_log(cdata, buf, size);
355 1.4 nonaka }
356 1.4 nonaka
357 1.4 nonaka /*
358 1.4 nonaka * Table 19. 5.4 SMART Attributes.
359 1.4 nonaka * Samsung also implements this and some extra data not documented.
360 1.4 nonaka */
361 1.4 nonaka static void
362 1.6 nonaka print_intel_add_smart(const struct nvm_identify_controller *cdata __unused,
363 1.6 nonaka void *buf, uint32_t size __unused)
364 1.4 nonaka {
365 1.4 nonaka uint8_t *walker = buf;
366 1.4 nonaka uint8_t *end = walker + 150;
367 1.4 nonaka const char *name;
368 1.4 nonaka uint64_t raw;
369 1.4 nonaka uint8_t normalized;
370 1.4 nonaka
371 1.4 nonaka static struct kv_name kv[] = {
372 1.4 nonaka { 0xab, "Program Fail Count" },
373 1.4 nonaka { 0xac, "Erase Fail Count" },
374 1.4 nonaka { 0xad, "Wear Leveling Count" },
375 1.4 nonaka { 0xb8, "End to End Error Count" },
376 1.4 nonaka { 0xc7, "CRC Error Count" },
377 1.4 nonaka { 0xe2, "Timed: Media Wear" },
378 1.4 nonaka { 0xe3, "Timed: Host Read %" },
379 1.4 nonaka { 0xe4, "Timed: Elapsed Time" },
380 1.4 nonaka { 0xea, "Thermal Throttle Status" },
381 1.4 nonaka { 0xf0, "Retry Buffer Overflows" },
382 1.4 nonaka { 0xf3, "PLL Lock Loss Count" },
383 1.4 nonaka { 0xf4, "NAND Bytes Written" },
384 1.4 nonaka { 0xf5, "Host Bytes Written" },
385 1.4 nonaka };
386 1.4 nonaka
387 1.4 nonaka printf("Additional SMART Data Log\n");
388 1.4 nonaka printf("=========================\n");
389 1.4 nonaka /*
390 1.4 nonaka * walker[0] = Key
391 1.4 nonaka * walker[1,2] = reserved
392 1.4 nonaka * walker[3] = Normalized Value
393 1.4 nonaka * walker[4] = reserved
394 1.4 nonaka * walker[5..10] = Little Endian Raw value
395 1.4 nonaka * (or other represenations)
396 1.4 nonaka * walker[11] = reserved
397 1.4 nonaka */
398 1.4 nonaka while (walker < end) {
399 1.4 nonaka name = kv_lookup(kv, __arraycount(kv), *walker);
400 1.4 nonaka normalized = walker[3];
401 1.4 nonaka raw = le48dec(walker + 5);
402 1.4 nonaka switch (*walker){
403 1.4 nonaka case 0:
404 1.4 nonaka break;
405 1.4 nonaka case 0xad:
406 1.4 nonaka printf("%-32s: %3d min: %u max: %u ave: %u\n", name,
407 1.4 nonaka normalized, le16dec(walker + 5), le16dec(walker + 7),
408 1.4 nonaka le16dec(walker + 9));
409 1.4 nonaka break;
410 1.4 nonaka case 0xe2:
411 1.4 nonaka printf("%-32s: %3d %.3f%%\n", name, normalized, raw / 1024.0);
412 1.4 nonaka break;
413 1.4 nonaka case 0xea:
414 1.4 nonaka printf("%-32s: %3d %d%% %d times\n", name, normalized,
415 1.4 nonaka walker[5], le32dec(walker+6));
416 1.4 nonaka break;
417 1.4 nonaka default:
418 1.4 nonaka printf("%-32s: %3d %ju\n", name, normalized, (uintmax_t)raw);
419 1.4 nonaka break;
420 1.4 nonaka }
421 1.4 nonaka walker += 12;
422 1.4 nonaka }
423 1.4 nonaka }
424 1.4 nonaka
425 1.4 nonaka /*
426 1.4 nonaka * HGST's 0xc1 page. This is a grab bag of additional data. Please see
427 1.4 nonaka * https://www.hgst.com/sites/default/files/resources/US_SN150_ProdManual.pdf
428 1.4 nonaka * https://www.hgst.com/sites/default/files/resources/US_SN100_ProdManual.pdf
429 1.4 nonaka * Appendix A for details
430 1.4 nonaka */
431 1.4 nonaka
432 1.6 nonaka typedef void (*subprint_fn_t)(void *buf, uint16_t subtype, uint8_t res,
433 1.6 nonaka uint32_t size);
434 1.4 nonaka
435 1.4 nonaka struct subpage_print {
436 1.4 nonaka uint16_t key;
437 1.4 nonaka subprint_fn_t fn;
438 1.4 nonaka };
439 1.4 nonaka
440 1.4 nonaka static void print_hgst_info_write_errors(void *, uint16_t, uint8_t, uint32_t);
441 1.4 nonaka static void print_hgst_info_read_errors(void *, uint16_t, uint8_t, uint32_t);
442 1.4 nonaka static void print_hgst_info_verify_errors(void *, uint16_t, uint8_t, uint32_t);
443 1.4 nonaka static void print_hgst_info_self_test(void *, uint16_t, uint8_t, uint32_t);
444 1.4 nonaka static void print_hgst_info_background_scan(void *, uint16_t, uint8_t, uint32_t);
445 1.4 nonaka static void print_hgst_info_erase_errors(void *, uint16_t, uint8_t, uint32_t);
446 1.4 nonaka static void print_hgst_info_erase_counts(void *, uint16_t, uint8_t, uint32_t);
447 1.4 nonaka static void print_hgst_info_temp_history(void *, uint16_t, uint8_t, uint32_t);
448 1.4 nonaka static void print_hgst_info_ssd_perf(void *, uint16_t, uint8_t, uint32_t);
449 1.4 nonaka static void print_hgst_info_firmware_load(void *, uint16_t, uint8_t, uint32_t);
450 1.4 nonaka
451 1.4 nonaka static struct subpage_print hgst_subpage[] = {
452 1.4 nonaka { 0x02, print_hgst_info_write_errors },
453 1.4 nonaka { 0x03, print_hgst_info_read_errors },
454 1.4 nonaka { 0x05, print_hgst_info_verify_errors },
455 1.4 nonaka { 0x10, print_hgst_info_self_test },
456 1.4 nonaka { 0x15, print_hgst_info_background_scan },
457 1.4 nonaka { 0x30, print_hgst_info_erase_errors },
458 1.4 nonaka { 0x31, print_hgst_info_erase_counts },
459 1.4 nonaka { 0x32, print_hgst_info_temp_history },
460 1.4 nonaka { 0x37, print_hgst_info_ssd_perf },
461 1.4 nonaka { 0x38, print_hgst_info_firmware_load },
462 1.4 nonaka };
463 1.4 nonaka
464 1.4 nonaka /* Print a subpage that is basically just key value pairs */
465 1.4 nonaka static void
466 1.4 nonaka print_hgst_info_subpage_gen(void *buf, uint16_t subtype __unused, uint32_t size,
467 1.4 nonaka const struct kv_name *kv, size_t kv_count)
468 1.4 nonaka {
469 1.4 nonaka uint8_t *wsp, *esp;
470 1.4 nonaka uint16_t ptype;
471 1.4 nonaka uint8_t plen;
472 1.4 nonaka uint64_t param;
473 1.4 nonaka int i;
474 1.4 nonaka
475 1.4 nonaka wsp = buf;
476 1.4 nonaka esp = wsp + size;
477 1.4 nonaka while (wsp < esp) {
478 1.4 nonaka ptype = le16dec(wsp);
479 1.4 nonaka wsp += 2;
480 1.4 nonaka wsp++; /* Flags, just ignore */
481 1.4 nonaka plen = *wsp++;
482 1.4 nonaka param = 0;
483 1.4 nonaka for (i = 0; i < plen; i++)
484 1.4 nonaka param |= (uint64_t)*wsp++ << (i * 8);
485 1.4 nonaka printf(" %-30s: %jd\n", kv_lookup(kv, kv_count, ptype),
486 1.4 nonaka (uintmax_t)param);
487 1.4 nonaka }
488 1.4 nonaka }
489 1.4 nonaka
490 1.4 nonaka static void
491 1.4 nonaka print_hgst_info_write_errors(void *buf, uint16_t subtype, uint8_t res __unused,
492 1.4 nonaka uint32_t size)
493 1.4 nonaka {
494 1.4 nonaka static const struct kv_name kv[] = {
495 1.4 nonaka { 0x0000, "Corrected Without Delay" },
496 1.4 nonaka { 0x0001, "Corrected Maybe Delayed" },
497 1.4 nonaka { 0x0002, "Re-Writes" },
498 1.4 nonaka { 0x0003, "Errors Corrected" },
499 1.4 nonaka { 0x0004, "Correct Algorithm Used" },
500 1.4 nonaka { 0x0005, "Bytes Processed" },
501 1.4 nonaka { 0x0006, "Uncorrected Errors" },
502 1.4 nonaka { 0x8000, "Flash Write Commands" },
503 1.4 nonaka { 0x8001, "HGST Special" },
504 1.4 nonaka };
505 1.4 nonaka
506 1.4 nonaka printf("Write Errors Subpage:\n");
507 1.4 nonaka print_hgst_info_subpage_gen(buf, subtype, size, kv, __arraycount(kv));
508 1.4 nonaka }
509 1.4 nonaka
510 1.4 nonaka static void
511 1.4 nonaka print_hgst_info_read_errors(void *buf, uint16_t subtype, uint8_t res __unused,
512 1.4 nonaka uint32_t size)
513 1.4 nonaka {
514 1.4 nonaka static const struct kv_name kv[] = {
515 1.4 nonaka { 0x0000, "Corrected Without Delay" },
516 1.4 nonaka { 0x0001, "Corrected Maybe Delayed" },
517 1.4 nonaka { 0x0002, "Re-Reads" },
518 1.4 nonaka { 0x0003, "Errors Corrected" },
519 1.4 nonaka { 0x0004, "Correct Algorithm Used" },
520 1.4 nonaka { 0x0005, "Bytes Processed" },
521 1.4 nonaka { 0x0006, "Uncorrected Errors" },
522 1.4 nonaka { 0x8000, "Flash Read Commands" },
523 1.4 nonaka { 0x8001, "XOR Recovered" },
524 1.4 nonaka { 0x8002, "Total Corrected Bits" },
525 1.4 nonaka };
526 1.4 nonaka
527 1.4 nonaka printf("Read Errors Subpage:\n");
528 1.4 nonaka print_hgst_info_subpage_gen(buf, subtype, size, kv, __arraycount(kv));
529 1.4 nonaka }
530 1.4 nonaka
531 1.4 nonaka static void
532 1.4 nonaka print_hgst_info_verify_errors(void *buf, uint16_t subtype, uint8_t res __unused,
533 1.4 nonaka uint32_t size)
534 1.4 nonaka {
535 1.4 nonaka static const struct kv_name kv[] = {
536 1.4 nonaka { 0x0000, "Corrected Without Delay" },
537 1.4 nonaka { 0x0001, "Corrected Maybe Delayed" },
538 1.4 nonaka { 0x0002, "Re-Reads" },
539 1.4 nonaka { 0x0003, "Errors Corrected" },
540 1.4 nonaka { 0x0004, "Correct Algorithm Used" },
541 1.4 nonaka { 0x0005, "Bytes Processed" },
542 1.4 nonaka { 0x0006, "Uncorrected Errors" },
543 1.4 nonaka { 0x8000, "Commands Processed" },
544 1.4 nonaka };
545 1.4 nonaka
546 1.4 nonaka printf("Verify Errors Subpage:\n");
547 1.4 nonaka print_hgst_info_subpage_gen(buf, subtype, size, kv, __arraycount(kv));
548 1.4 nonaka }
549 1.4 nonaka
550 1.4 nonaka static void
551 1.4 nonaka print_hgst_info_self_test(void *buf, uint16_t subtype __unused, uint8_t res __unused,
552 1.4 nonaka uint32_t size)
553 1.4 nonaka {
554 1.4 nonaka size_t i;
555 1.4 nonaka uint8_t *walker = buf;
556 1.4 nonaka uint16_t code, hrs;
557 1.4 nonaka uint32_t lba;
558 1.4 nonaka
559 1.4 nonaka printf("Self Test Subpage:\n");
560 1.4 nonaka for (i = 0; i < size / 20; i++) { /* Each entry is 20 bytes */
561 1.4 nonaka code = le16dec(walker);
562 1.4 nonaka walker += 2;
563 1.4 nonaka walker++; /* Ignore fixed flags */
564 1.4 nonaka if (*walker == 0) /* Last entry is zero length */
565 1.4 nonaka break;
566 1.4 nonaka if (*walker++ != 0x10) {
567 1.4 nonaka printf("Bad length for self test report\n");
568 1.4 nonaka return;
569 1.4 nonaka }
570 1.4 nonaka printf(" %-30s: %d\n", "Recent Test", code);
571 1.4 nonaka printf(" %-28s: %#x\n", "Self-Test Results", *walker & 0xf);
572 1.4 nonaka printf(" %-28s: %#x\n", "Self-Test Code", (*walker >> 5) & 0x7);
573 1.4 nonaka walker++;
574 1.4 nonaka printf(" %-28s: %#x\n", "Self-Test Number", *walker++);
575 1.4 nonaka hrs = le16dec(walker);
576 1.4 nonaka walker += 2;
577 1.4 nonaka lba = le32dec(walker);
578 1.4 nonaka walker += 4;
579 1.4 nonaka printf(" %-28s: %u\n", "Total Power On Hrs", hrs);
580 1.4 nonaka printf(" %-28s: %#jx (%jd)\n", "LBA", (uintmax_t)lba,
581 1.4 nonaka (uintmax_t)lba);
582 1.4 nonaka printf(" %-28s: %#x\n", "Sense Key", *walker++ & 0xf);
583 1.4 nonaka printf(" %-28s: %#x\n", "Additional Sense Code", *walker++);
584 1.4 nonaka printf(" %-28s: %#x\n", "Additional Sense Qualifier", *walker++);
585 1.4 nonaka printf(" %-28s: %#x\n", "Vendor Specific Detail", *walker++);
586 1.4 nonaka }
587 1.4 nonaka }
588 1.4 nonaka
589 1.4 nonaka static void
590 1.4 nonaka print_hgst_info_background_scan(void *buf, uint16_t subtype __unused,
591 1.4 nonaka uint8_t res __unused, uint32_t size)
592 1.4 nonaka {
593 1.4 nonaka uint8_t *walker = buf;
594 1.4 nonaka uint8_t status;
595 1.4 nonaka uint16_t code, nscan, progress;
596 1.4 nonaka uint32_t pom, nand;
597 1.4 nonaka
598 1.4 nonaka printf("Background Media Scan Subpage:\n");
599 1.4 nonaka /* Decode the header */
600 1.4 nonaka code = le16dec(walker);
601 1.4 nonaka walker += 2;
602 1.4 nonaka walker++; /* Ignore fixed flags */
603 1.4 nonaka if (*walker++ != 0x10) {
604 1.4 nonaka printf("Bad length for background scan header\n");
605 1.4 nonaka return;
606 1.4 nonaka }
607 1.4 nonaka if (code != 0) {
608 1.4 nonaka printf("Expceted code 0, found code %#x\n", code);
609 1.4 nonaka return;
610 1.4 nonaka }
611 1.4 nonaka pom = le32dec(walker);
612 1.4 nonaka walker += 4;
613 1.4 nonaka walker++; /* Reserved */
614 1.4 nonaka status = *walker++;
615 1.4 nonaka nscan = le16dec(walker);
616 1.4 nonaka walker += 2;
617 1.4 nonaka progress = le16dec(walker);
618 1.4 nonaka walker += 2;
619 1.4 nonaka walker += 6; /* Reserved */
620 1.4 nonaka printf(" %-30s: %d\n", "Power On Minutes", pom);
621 1.4 nonaka printf(" %-30s: %x (%s)\n", "BMS Status", status,
622 1.4 nonaka status == 0 ? "idle" : (status == 1 ? "active" :
623 1.4 nonaka (status == 8 ? "suspended" : "unknown")));
624 1.4 nonaka printf(" %-30s: %d\n", "Number of BMS", nscan);
625 1.4 nonaka printf(" %-30s: %d\n", "Progress Current BMS", progress);
626 1.4 nonaka /* Report retirements */
627 1.4 nonaka if (walker - (uint8_t *)buf != 20) {
628 1.4 nonaka printf("Coding error, offset not 20\n");
629 1.4 nonaka return;
630 1.4 nonaka }
631 1.4 nonaka size -= 20;
632 1.4 nonaka printf(" %-30s: %d\n", "BMS retirements", size / 0x18);
633 1.4 nonaka while (size > 0) {
634 1.4 nonaka code = le16dec(walker);
635 1.4 nonaka walker += 2;
636 1.4 nonaka walker++;
637 1.4 nonaka if (*walker++ != 0x14) {
638 1.4 nonaka printf("Bad length parameter\n");
639 1.4 nonaka return;
640 1.4 nonaka }
641 1.4 nonaka pom = le32dec(walker);
642 1.4 nonaka walker += 4;
643 1.4 nonaka /*
644 1.4 nonaka * Spec sheet says the following are hard coded, if true, just
645 1.4 nonaka * print the NAND retirement.
646 1.4 nonaka */
647 1.4 nonaka if (walker[0] == 0x41 &&
648 1.4 nonaka walker[1] == 0x0b &&
649 1.4 nonaka walker[2] == 0x01 &&
650 1.4 nonaka walker[3] == 0x00 &&
651 1.4 nonaka walker[4] == 0x00 &&
652 1.4 nonaka walker[5] == 0x00 &&
653 1.4 nonaka walker[6] == 0x00 &&
654 1.4 nonaka walker[7] == 0x00) {
655 1.4 nonaka walker += 8;
656 1.4 nonaka walker += 4; /* Skip reserved */
657 1.4 nonaka nand = le32dec(walker);
658 1.4 nonaka walker += 4;
659 1.4 nonaka printf(" %-30s: %d\n", "Retirement number", code);
660 1.4 nonaka printf(" %-28s: %#x\n", "NAND (C/T)BBBPPP", nand);
661 1.4 nonaka } else {
662 1.4 nonaka printf("Parameter %#x entry corrupt\n", code);
663 1.4 nonaka walker += 16;
664 1.4 nonaka }
665 1.4 nonaka }
666 1.4 nonaka }
667 1.4 nonaka
668 1.4 nonaka static void
669 1.4 nonaka print_hgst_info_erase_errors(void *buf, uint16_t subtype __unused,
670 1.4 nonaka uint8_t res __unused, uint32_t size)
671 1.4 nonaka {
672 1.4 nonaka static const struct kv_name kv[] = {
673 1.4 nonaka { 0x0000, "Corrected Without Delay" },
674 1.4 nonaka { 0x0001, "Corrected Maybe Delayed" },
675 1.4 nonaka { 0x0002, "Re-Erase" },
676 1.4 nonaka { 0x0003, "Errors Corrected" },
677 1.4 nonaka { 0x0004, "Correct Algorithm Used" },
678 1.4 nonaka { 0x0005, "Bytes Processed" },
679 1.4 nonaka { 0x0006, "Uncorrected Errors" },
680 1.4 nonaka { 0x8000, "Flash Erase Commands" },
681 1.4 nonaka { 0x8001, "Mfg Defect Count" },
682 1.4 nonaka { 0x8002, "Grown Defect Count" },
683 1.4 nonaka { 0x8003, "Erase Count -- User" },
684 1.4 nonaka { 0x8004, "Erase Count -- System" },
685 1.4 nonaka };
686 1.4 nonaka
687 1.4 nonaka printf("Erase Errors Subpage:\n");
688 1.4 nonaka print_hgst_info_subpage_gen(buf, subtype, size, kv, __arraycount(kv));
689 1.4 nonaka }
690 1.4 nonaka
691 1.4 nonaka static void
692 1.4 nonaka print_hgst_info_erase_counts(void *buf, uint16_t subtype, uint8_t res __unused,
693 1.4 nonaka uint32_t size)
694 1.4 nonaka {
695 1.4 nonaka /* My drive doesn't export this -- so not coding up */
696 1.4 nonaka printf("XXX: Erase counts subpage: %p, %#x %d\n", buf, subtype, size);
697 1.4 nonaka }
698 1.4 nonaka
699 1.4 nonaka static void
700 1.4 nonaka print_hgst_info_temp_history(void *buf, uint16_t subtype __unused,
701 1.4 nonaka uint8_t res __unused, uint32_t size __unused)
702 1.4 nonaka {
703 1.4 nonaka uint8_t *walker = buf;
704 1.4 nonaka uint32_t min;
705 1.4 nonaka
706 1.4 nonaka printf("Temperature History:\n");
707 1.4 nonaka printf(" %-30s: %d C\n", "Current Temperature", *walker++);
708 1.4 nonaka printf(" %-30s: %d C\n", "Reference Temperature", *walker++);
709 1.4 nonaka printf(" %-30s: %d C\n", "Maximum Temperature", *walker++);
710 1.4 nonaka printf(" %-30s: %d C\n", "Minimum Temperature", *walker++);
711 1.4 nonaka min = le32dec(walker);
712 1.4 nonaka walker += 4;
713 1.4 nonaka printf(" %-30s: %d:%02d:00\n", "Max Temperature Time", min / 60, min % 60);
714 1.4 nonaka min = le32dec(walker);
715 1.4 nonaka walker += 4;
716 1.4 nonaka printf(" %-30s: %d:%02d:00\n", "Over Temperature Duration", min / 60,
717 1.4 nonaka min % 60);
718 1.4 nonaka min = le32dec(walker);
719 1.4 nonaka walker += 4;
720 1.4 nonaka printf(" %-30s: %d:%02d:00\n", "Min Temperature Time", min / 60, min % 60);
721 1.4 nonaka }
722 1.4 nonaka
723 1.4 nonaka static void
724 1.4 nonaka print_hgst_info_ssd_perf(void *buf, uint16_t subtype __unused, uint8_t res,
725 1.4 nonaka uint32_t size __unused)
726 1.4 nonaka {
727 1.4 nonaka uint8_t *walker = buf;
728 1.4 nonaka uint64_t val;
729 1.4 nonaka
730 1.4 nonaka printf("SSD Performance Subpage Type %d:\n", res);
731 1.4 nonaka val = le64dec(walker);
732 1.4 nonaka walker += 8;
733 1.4 nonaka printf(" %-30s: %ju\n", "Host Read Commands", val);
734 1.4 nonaka val = le64dec(walker);
735 1.4 nonaka walker += 8;
736 1.4 nonaka printf(" %-30s: %ju\n", "Host Read Blocks", val);
737 1.4 nonaka val = le64dec(walker);
738 1.4 nonaka walker += 8;
739 1.4 nonaka printf(" %-30s: %ju\n", "Host Cache Read Hits Commands", val);
740 1.4 nonaka val = le64dec(walker);
741 1.4 nonaka walker += 8;
742 1.4 nonaka printf(" %-30s: %ju\n", "Host Cache Read Hits Blocks", val);
743 1.4 nonaka val = le64dec(walker);
744 1.4 nonaka walker += 8;
745 1.4 nonaka printf(" %-30s: %ju\n", "Host Read Commands Stalled", val);
746 1.4 nonaka val = le64dec(walker);
747 1.4 nonaka walker += 8;
748 1.4 nonaka printf(" %-30s: %ju\n", "Host Write Commands", val);
749 1.4 nonaka val = le64dec(walker);
750 1.4 nonaka walker += 8;
751 1.4 nonaka printf(" %-30s: %ju\n", "Host Write Blocks", val);
752 1.4 nonaka val = le64dec(walker);
753 1.4 nonaka walker += 8;
754 1.4 nonaka printf(" %-30s: %ju\n", "Host Write Odd Start Commands", val);
755 1.4 nonaka val = le64dec(walker);
756 1.4 nonaka walker += 8;
757 1.4 nonaka printf(" %-30s: %ju\n", "Host Write Odd End Commands", val);
758 1.4 nonaka val = le64dec(walker);
759 1.4 nonaka walker += 8;
760 1.4 nonaka printf(" %-30s: %ju\n", "Host Write Commands Stalled", val);
761 1.4 nonaka val = le64dec(walker);
762 1.4 nonaka walker += 8;
763 1.4 nonaka printf(" %-30s: %ju\n", "NAND Read Commands", val);
764 1.4 nonaka val = le64dec(walker);
765 1.4 nonaka walker += 8;
766 1.4 nonaka printf(" %-30s: %ju\n", "NAND Read Blocks", val);
767 1.4 nonaka val = le64dec(walker);
768 1.4 nonaka walker += 8;
769 1.4 nonaka printf(" %-30s: %ju\n", "NAND Write Commands", val);
770 1.4 nonaka val = le64dec(walker);
771 1.4 nonaka walker += 8;
772 1.4 nonaka printf(" %-30s: %ju\n", "NAND Write Blocks", val);
773 1.4 nonaka val = le64dec(walker);
774 1.4 nonaka walker += 8;
775 1.4 nonaka printf(" %-30s: %ju\n", "NAND Read Before Writes", val);
776 1.4 nonaka }
777 1.4 nonaka
778 1.4 nonaka static void
779 1.4 nonaka print_hgst_info_firmware_load(void *buf, uint16_t subtype __unused,
780 1.4 nonaka uint8_t res __unused, uint32_t size __unused)
781 1.4 nonaka {
782 1.4 nonaka uint8_t *walker = buf;
783 1.4 nonaka
784 1.4 nonaka printf("Firmware Load Subpage:\n");
785 1.4 nonaka printf(" %-30s: %d\n", "Firmware Downloads", le32dec(walker));
786 1.4 nonaka }
787 1.4 nonaka
788 1.4 nonaka static void
789 1.4 nonaka kv_indirect(void *buf, uint32_t subtype, uint8_t res, uint32_t size,
790 1.4 nonaka struct subpage_print *sp, size_t nsp)
791 1.4 nonaka {
792 1.4 nonaka size_t i;
793 1.4 nonaka
794 1.4 nonaka for (i = 0; i < nsp; i++, sp++) {
795 1.4 nonaka if (sp->key == subtype) {
796 1.4 nonaka sp->fn(buf, subtype, res, size);
797 1.4 nonaka return;
798 1.4 nonaka }
799 1.4 nonaka }
800 1.4 nonaka printf("No handler for page type %x\n", subtype);
801 1.4 nonaka }
802 1.4 nonaka
803 1.4 nonaka static void
804 1.6 nonaka print_hgst_info_log(const struct nvm_identify_controller *cdata __unused, void *buf,
805 1.6 nonaka uint32_t size __unused)
806 1.4 nonaka {
807 1.4 nonaka uint8_t *walker, *end, *subpage;
808 1.4 nonaka int pages __unused;
809 1.4 nonaka uint16_t len;
810 1.4 nonaka uint8_t subtype, res;
811 1.4 nonaka
812 1.4 nonaka printf("HGST Extra Info Log\n");
813 1.4 nonaka printf("===================\n");
814 1.4 nonaka
815 1.4 nonaka walker = buf;
816 1.4 nonaka pages = *walker++;
817 1.4 nonaka walker++;
818 1.4 nonaka len = le16dec(walker);
819 1.4 nonaka walker += 2;
820 1.4 nonaka end = walker + len; /* Length is exclusive of this header */
821 1.4 nonaka
822 1.4 nonaka while (walker < end) {
823 1.4 nonaka subpage = walker + 4;
824 1.4 nonaka subtype = *walker++ & 0x3f; /* subtype */
825 1.4 nonaka res = *walker++; /* Reserved */
826 1.4 nonaka len = le16dec(walker);
827 1.4 nonaka walker += len + 2; /* Length, not incl header */
828 1.4 nonaka if (walker > end) {
829 1.4 nonaka printf("Ooops! Off the end of the list\n");
830 1.4 nonaka break;
831 1.4 nonaka }
832 1.4 nonaka kv_indirect(subpage, subtype, res, len, hgst_subpage,
833 1.4 nonaka __arraycount(hgst_subpage));
834 1.4 nonaka }
835 1.4 nonaka }
836 1.4 nonaka
837 1.4 nonaka /*
838 1.4 nonaka * Table of log page printer / sizing.
839 1.4 nonaka *
840 1.4 nonaka * This includes Intel specific pages that are widely implemented.
841 1.4 nonaka * Make sure you keep all the pages of one vendor together so -v help
842 1.4 nonaka * lists all the vendors pages.
843 1.4 nonaka */
844 1.1 nonaka static struct logpage_function {
845 1.1 nonaka uint8_t log_page;
846 1.4 nonaka const char *vendor;
847 1.4 nonaka const char *name;
848 1.4 nonaka print_fn_t print_fn;
849 1.4 nonaka size_t size;
850 1.1 nonaka } logfuncs[] = {
851 1.4 nonaka {NVME_LOG_ERROR, NULL, "Drive Error Log",
852 1.4 nonaka print_log_error, 0},
853 1.4 nonaka {NVME_LOG_HEALTH_INFORMATION, NULL, "Health/SMART Data",
854 1.4 nonaka print_log_health, sizeof(struct nvme_health_information_page)},
855 1.4 nonaka {NVME_LOG_FIRMWARE_SLOT, NULL, "Firmware Information",
856 1.4 nonaka print_log_firmware, sizeof(struct nvme_firmware_page)},
857 1.4 nonaka {HGST_INFO_LOG, "hgst", "Detailed Health/SMART",
858 1.4 nonaka print_hgst_info_log, DEFAULT_SIZE},
859 1.4 nonaka {HGST_INFO_LOG, "wds", "Detailed Health/SMART",
860 1.4 nonaka print_hgst_info_log, DEFAULT_SIZE},
861 1.4 nonaka {INTEL_LOG_TEMP_STATS, "intel", "Temperature Stats",
862 1.4 nonaka print_intel_temp_stats, sizeof(struct intel_log_temp_stats)},
863 1.4 nonaka {INTEL_LOG_READ_LAT_LOG, "intel", "Read Latencies",
864 1.4 nonaka print_intel_read_lat_log, DEFAULT_SIZE},
865 1.4 nonaka {INTEL_LOG_WRITE_LAT_LOG, "intel", "Write Latencies",
866 1.4 nonaka print_intel_write_lat_log, DEFAULT_SIZE},
867 1.4 nonaka {INTEL_LOG_ADD_SMART, "intel", "Extra Health/SMART Data",
868 1.4 nonaka print_intel_add_smart, DEFAULT_SIZE},
869 1.4 nonaka {INTEL_LOG_ADD_SMART, "samsung", "Extra Health/SMART Data",
870 1.4 nonaka print_intel_add_smart, DEFAULT_SIZE},
871 1.4 nonaka
872 1.4 nonaka {0, NULL, NULL, NULL, 0},
873 1.1 nonaka };
874 1.1 nonaka
875 1.2 joerg __dead static void
876 1.1 nonaka logpage_usage(void)
877 1.1 nonaka {
878 1.1 nonaka fprintf(stderr, "usage:\n");
879 1.5 jdolecek fprintf(stderr, "\t%s " LOGPAGE_USAGE, getprogname());
880 1.1 nonaka exit(1);
881 1.1 nonaka }
882 1.1 nonaka
883 1.4 nonaka __dead static void
884 1.4 nonaka logpage_help(void)
885 1.4 nonaka {
886 1.4 nonaka struct logpage_function *f;
887 1.4 nonaka const char *v;
888 1.4 nonaka
889 1.4 nonaka fprintf(stderr, "\n");
890 1.4 nonaka fprintf(stderr, "%-8s %-10s %s\n", "Page", "Vendor","Page Name");
891 1.4 nonaka fprintf(stderr, "-------- ---------- ----------\n");
892 1.4 nonaka for (f = logfuncs; f->log_page > 0; f++) {
893 1.4 nonaka v = f->vendor == NULL ? "-" : f->vendor;
894 1.4 nonaka fprintf(stderr, "0x%02x %-10s %s\n", f->log_page, v, f->name);
895 1.4 nonaka }
896 1.4 nonaka
897 1.4 nonaka exit(1);
898 1.4 nonaka }
899 1.4 nonaka
900 1.1 nonaka void
901 1.1 nonaka logpage(int argc, char *argv[])
902 1.1 nonaka {
903 1.1 nonaka int fd, nsid;
904 1.1 nonaka int log_page = 0, pageflag = false;
905 1.4 nonaka int binflag = false, hexflag = false, ns_specified;
906 1.1 nonaka int ch;
907 1.1 nonaka char *p;
908 1.1 nonaka char cname[64];
909 1.1 nonaka uint32_t size;
910 1.1 nonaka void *buf;
911 1.4 nonaka const char *vendor = NULL;
912 1.1 nonaka struct logpage_function *f;
913 1.1 nonaka struct nvm_identify_controller cdata;
914 1.1 nonaka print_fn_t print_fn;
915 1.1 nonaka
916 1.4 nonaka while ((ch = getopt(argc, argv, "bp:xv:")) != -1) {
917 1.1 nonaka switch (ch) {
918 1.4 nonaka case 'b':
919 1.4 nonaka binflag = true;
920 1.4 nonaka break;
921 1.1 nonaka case 'p':
922 1.4 nonaka if (strcmp(optarg, "help") == 0)
923 1.4 nonaka logpage_help();
924 1.4 nonaka
925 1.1 nonaka /* TODO: Add human-readable ASCII page IDs */
926 1.1 nonaka log_page = strtol(optarg, &p, 0);
927 1.1 nonaka if (p != NULL && *p != '\0') {
928 1.1 nonaka fprintf(stderr,
929 1.1 nonaka "\"%s\" not valid log page id.\n",
930 1.1 nonaka optarg);
931 1.1 nonaka logpage_usage();
932 1.1 nonaka }
933 1.1 nonaka pageflag = true;
934 1.1 nonaka break;
935 1.1 nonaka case 'x':
936 1.1 nonaka hexflag = true;
937 1.1 nonaka break;
938 1.4 nonaka case 'v':
939 1.4 nonaka if (strcmp(optarg, "help") == 0)
940 1.4 nonaka logpage_help();
941 1.4 nonaka vendor = optarg;
942 1.4 nonaka break;
943 1.1 nonaka }
944 1.1 nonaka }
945 1.1 nonaka
946 1.1 nonaka if (!pageflag) {
947 1.1 nonaka printf("Missing page_id (-p).\n");
948 1.1 nonaka logpage_usage();
949 1.1 nonaka }
950 1.1 nonaka
951 1.1 nonaka /* Check that a controller and/or namespace was specified. */
952 1.1 nonaka if (optind >= argc)
953 1.1 nonaka logpage_usage();
954 1.1 nonaka
955 1.1 nonaka if (strstr(argv[optind], NVME_NS_PREFIX) != NULL) {
956 1.1 nonaka ns_specified = true;
957 1.1 nonaka parse_ns_str(argv[optind], cname, &nsid);
958 1.1 nonaka open_dev(cname, &fd, 1, 1);
959 1.1 nonaka } else {
960 1.1 nonaka ns_specified = false;
961 1.1 nonaka nsid = 0xffffffff;
962 1.1 nonaka open_dev(argv[optind], &fd, 1, 1);
963 1.1 nonaka }
964 1.1 nonaka
965 1.1 nonaka read_controller_data(fd, &cdata);
966 1.1 nonaka
967 1.1 nonaka /*
968 1.1 nonaka * The log page attribtues indicate whether or not the controller
969 1.1 nonaka * supports the SMART/Health information log page on a per
970 1.1 nonaka * namespace basis.
971 1.1 nonaka */
972 1.1 nonaka if (ns_specified) {
973 1.1 nonaka if (log_page != NVME_LOG_HEALTH_INFORMATION)
974 1.1 nonaka errx(1, "log page %d valid only at controller level",
975 1.1 nonaka log_page);
976 1.1 nonaka if (!(cdata.lpa & NVME_ID_CTRLR_LPA_NS_SMART))
977 1.1 nonaka errx(1,
978 1.1 nonaka "controller does not support per namespace "
979 1.1 nonaka "smart/health information");
980 1.1 nonaka }
981 1.1 nonaka
982 1.6 nonaka print_fn = print_log_hex;
983 1.4 nonaka size = DEFAULT_SIZE;
984 1.4 nonaka if (binflag)
985 1.4 nonaka print_fn = print_bin;
986 1.4 nonaka if (!binflag && !hexflag) {
987 1.1 nonaka /*
988 1.4 nonaka * See if there is a pretty print function for the specified log
989 1.4 nonaka * page. If one isn't found, we just revert to the default
990 1.4 nonaka * (print_hex). If there was a vendor specified bt the user, and
991 1.4 nonaka * the page is vendor specific, don't match the print function
992 1.4 nonaka * unless the vendors match.
993 1.1 nonaka */
994 1.4 nonaka for (f = logfuncs; f->log_page > 0; f++) {
995 1.4 nonaka if (f->vendor != NULL && vendor != NULL &&
996 1.4 nonaka strcmp(f->vendor, vendor) != 0)
997 1.4 nonaka continue;
998 1.4 nonaka if (log_page != f->log_page)
999 1.4 nonaka continue;
1000 1.4 nonaka print_fn = f->print_fn;
1001 1.4 nonaka size = f->size;
1002 1.4 nonaka break;
1003 1.1 nonaka }
1004 1.1 nonaka }
1005 1.1 nonaka
1006 1.4 nonaka if (log_page == NVME_LOG_ERROR) {
1007 1.1 nonaka size = sizeof(struct nvme_error_information_entry);
1008 1.1 nonaka size *= (cdata.elpe + 1);
1009 1.1 nonaka }
1010 1.1 nonaka
1011 1.4 nonaka /* Read the log page */
1012 1.1 nonaka buf = get_log_buffer(size);
1013 1.1 nonaka read_logpage(fd, log_page, nsid, buf, size);
1014 1.6 nonaka print_fn(&cdata, buf, size);
1015 1.1 nonaka
1016 1.1 nonaka close(fd);
1017 1.1 nonaka exit(0);
1018 1.1 nonaka }
1019