atactl.c revision 1.51 1 1.51 dholland /* $NetBSD: atactl.c,v 1.51 2008/07/24 05:21:12 dholland Exp $ */
2 1.1 kenh
3 1.1 kenh /*-
4 1.1 kenh * Copyright (c) 1998 The NetBSD Foundation, Inc.
5 1.1 kenh * All rights reserved.
6 1.1 kenh *
7 1.1 kenh * This code is derived from software contributed to The NetBSD Foundation
8 1.1 kenh * by Ken Hornstein.
9 1.1 kenh *
10 1.1 kenh * Redistribution and use in source and binary forms, with or without
11 1.1 kenh * modification, are permitted provided that the following conditions
12 1.1 kenh * are met:
13 1.1 kenh * 1. Redistributions of source code must retain the above copyright
14 1.1 kenh * notice, this list of conditions and the following disclaimer.
15 1.1 kenh * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 kenh * notice, this list of conditions and the following disclaimer in the
17 1.1 kenh * documentation and/or other materials provided with the distribution.
18 1.1 kenh *
19 1.1 kenh * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.1 kenh * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.1 kenh * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.1 kenh * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.1 kenh * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.1 kenh * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.1 kenh * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.1 kenh * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.1 kenh * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.1 kenh * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.1 kenh * POSSIBILITY OF SUCH DAMAGE.
30 1.1 kenh */
31 1.1 kenh
32 1.1 kenh /*
33 1.4 jwise * atactl(8) - a program to control ATA devices.
34 1.1 kenh */
35 1.21 agc #include <sys/cdefs.h>
36 1.21 agc
37 1.21 agc #ifndef lint
38 1.51 dholland __RCSID("$NetBSD: atactl.c,v 1.51 2008/07/24 05:21:12 dholland Exp $");
39 1.21 agc #endif
40 1.21 agc
41 1.1 kenh
42 1.1 kenh #include <sys/param.h>
43 1.1 kenh #include <sys/ioctl.h>
44 1.1 kenh #include <err.h>
45 1.1 kenh #include <errno.h>
46 1.1 kenh #include <fcntl.h>
47 1.1 kenh #include <stdio.h>
48 1.1 kenh #include <stdlib.h>
49 1.1 kenh #include <string.h>
50 1.1 kenh #include <unistd.h>
51 1.1 kenh #include <util.h>
52 1.1 kenh
53 1.1 kenh #include <dev/ata/atareg.h>
54 1.1 kenh #include <sys/ataio.h>
55 1.1 kenh
56 1.33 mycroft struct ata_smart_error {
57 1.33 mycroft struct {
58 1.33 mycroft u_int8_t device_control;
59 1.33 mycroft u_int8_t features;
60 1.33 mycroft u_int8_t sector_count;
61 1.33 mycroft u_int8_t sector_number;
62 1.33 mycroft u_int8_t cylinder_low;
63 1.33 mycroft u_int8_t cylinder_high;
64 1.33 mycroft u_int8_t device_head;
65 1.33 mycroft u_int8_t command;
66 1.33 mycroft u_int8_t timestamp[4];
67 1.33 mycroft } command[5];
68 1.33 mycroft struct {
69 1.33 mycroft u_int8_t reserved;
70 1.33 mycroft u_int8_t error;
71 1.33 mycroft u_int8_t sector_count;
72 1.33 mycroft u_int8_t sector_number;
73 1.33 mycroft u_int8_t cylinder_low;
74 1.33 mycroft u_int8_t cylinder_high;
75 1.33 mycroft u_int8_t device_head;
76 1.33 mycroft u_int8_t status;
77 1.33 mycroft u_int8_t extended_error[19];
78 1.33 mycroft u_int8_t state;
79 1.33 mycroft u_int8_t lifetime[2];
80 1.33 mycroft } error_data;
81 1.49 perry } __packed;
82 1.33 mycroft
83 1.33 mycroft struct ata_smart_errorlog {
84 1.33 mycroft u_int8_t data_structure_revision;
85 1.33 mycroft u_int8_t mostrecenterror;
86 1.33 mycroft struct ata_smart_error log_entries[5];
87 1.33 mycroft u_int16_t device_error_count;
88 1.33 mycroft u_int8_t reserved[57];
89 1.33 mycroft u_int8_t checksum;
90 1.49 perry } __packed;
91 1.33 mycroft
92 1.1 kenh struct command {
93 1.1 kenh const char *cmd_name;
94 1.5 soren const char *arg_names;
95 1.13 simonb void (*cmd_func)(int, char *[]);
96 1.1 kenh };
97 1.1 kenh
98 1.1 kenh struct bitinfo {
99 1.1 kenh u_int bitmask;
100 1.1 kenh const char *string;
101 1.1 kenh };
102 1.1 kenh
103 1.13 simonb void usage(void);
104 1.13 simonb void ata_command(struct atareq *);
105 1.13 simonb void print_bitinfo(const char *, const char *, u_int, struct bitinfo *);
106 1.33 mycroft void print_bitinfo2(const char *, const char *, u_int, u_int, struct bitinfo *);
107 1.24 lha void print_smart_status(void *, void *);
108 1.33 mycroft void print_error_entry(int, struct ata_smart_error *);
109 1.24 lha void print_selftest_entry(int, struct ata_smart_selftest *);
110 1.24 lha
111 1.33 mycroft void print_error(void *);
112 1.24 lha void print_selftest(void *);
113 1.24 lha
114 1.38 drochner struct ataparams *getataparams(void);
115 1.38 drochner
116 1.20 mycroft int is_smart(void);
117 1.1 kenh
118 1.1 kenh int fd; /* file descriptor for device */
119 1.1 kenh const char *dvname; /* device name */
120 1.1 kenh char dvname_store[MAXPATHLEN]; /* for opendisk(3) */
121 1.1 kenh const char *cmdname; /* command user issued */
122 1.5 soren const char *argnames; /* helpstring: expected arguments */
123 1.1 kenh
124 1.13 simonb void device_identify(int, char *[]);
125 1.13 simonb void device_setidle(int, char *[]);
126 1.13 simonb void device_idle(int, char *[]);
127 1.48 christos void device_apm(int, char *[]);
128 1.13 simonb void device_checkpower(int, char *[]);
129 1.15 soren void device_smart(int, char *[]);
130 1.38 drochner void device_security(int, char *[]);
131 1.1 kenh
132 1.30 bouyer void device_smart_temp(struct ata_smart_attr *, uint64_t);
133 1.24 lha
134 1.30 bouyer struct command device_commands[] = {
135 1.5 soren { "identify", "", device_identify },
136 1.5 soren { "setidle", "idle-timer", device_setidle },
137 1.48 christos { "apm", "disable|set #", device_apm },
138 1.5 soren { "setstandby", "standby-timer", device_setidle },
139 1.5 soren { "idle", "", device_idle },
140 1.5 soren { "standby", "", device_idle },
141 1.5 soren { "sleep", "", device_idle },
142 1.5 soren { "checkpower", "", device_checkpower },
143 1.34 soren { "smart", "enable|disable|status|offline #|error-log|selftest-log",
144 1.34 soren device_smart },
145 1.38 drochner { "security", "freeze|status", device_security },
146 1.5 soren { NULL, NULL, NULL },
147 1.1 kenh };
148 1.1 kenh
149 1.37 xtraeme void bus_reset(int, char *[]);
150 1.30 bouyer
151 1.30 bouyer struct command bus_commands[] = {
152 1.30 bouyer { "reset", "", bus_reset },
153 1.30 bouyer { NULL, NULL, NULL },
154 1.30 bouyer };
155 1.30 bouyer
156 1.1 kenh /*
157 1.1 kenh * Tables containing bitmasks used for error reporting and
158 1.1 kenh * device identification.
159 1.1 kenh */
160 1.1 kenh
161 1.1 kenh struct bitinfo ata_caps[] = {
162 1.23 yamt { WDC_CAP_DMA, "DMA" },
163 1.23 yamt { WDC_CAP_LBA, "LBA" },
164 1.1 kenh { ATA_CAP_STBY, "ATA standby timer values" },
165 1.1 kenh { WDC_CAP_IORDY, "IORDY operation" },
166 1.1 kenh { WDC_CAP_IORDY_DSBL, "IORDY disabling" },
167 1.22 fvdl { 0, NULL },
168 1.1 kenh };
169 1.1 kenh
170 1.1 kenh struct bitinfo ata_vers[] = {
171 1.1 kenh { WDC_VER_ATA1, "ATA-1" },
172 1.1 kenh { WDC_VER_ATA2, "ATA-2" },
173 1.1 kenh { WDC_VER_ATA3, "ATA-3" },
174 1.1 kenh { WDC_VER_ATA4, "ATA-4" },
175 1.23 yamt { WDC_VER_ATA5, "ATA-5" },
176 1.23 yamt { WDC_VER_ATA6, "ATA-6" },
177 1.23 yamt { WDC_VER_ATA7, "ATA-7" },
178 1.22 fvdl { 0, NULL },
179 1.1 kenh };
180 1.1 kenh
181 1.1 kenh struct bitinfo ata_cmd_set1[] = {
182 1.1 kenh { WDC_CMD1_NOP, "NOP command" },
183 1.1 kenh { WDC_CMD1_RB, "READ BUFFER command" },
184 1.1 kenh { WDC_CMD1_WB, "WRITE BUFFER command" },
185 1.1 kenh { WDC_CMD1_HPA, "Host Protected Area feature set" },
186 1.1 kenh { WDC_CMD1_DVRST, "DEVICE RESET command" },
187 1.1 kenh { WDC_CMD1_SRV, "SERVICE interrupt" },
188 1.1 kenh { WDC_CMD1_RLSE, "release interrupt" },
189 1.1 kenh { WDC_CMD1_AHEAD, "look-ahead" },
190 1.1 kenh { WDC_CMD1_CACHE, "write cache" },
191 1.1 kenh { WDC_CMD1_PKT, "PACKET command feature set" },
192 1.1 kenh { WDC_CMD1_PM, "Power Management feature set" },
193 1.1 kenh { WDC_CMD1_REMOV, "Removable Media feature set" },
194 1.1 kenh { WDC_CMD1_SEC, "Security Mode feature set" },
195 1.1 kenh { WDC_CMD1_SMART, "SMART feature set" },
196 1.22 fvdl { 0, NULL },
197 1.1 kenh };
198 1.1 kenh
199 1.1 kenh struct bitinfo ata_cmd_set2[] = {
200 1.23 yamt { ATA_CMD2_FCE, "FLUSH CACHE EXT command" },
201 1.23 yamt { WDC_CMD2_FC, "FLUSH CACHE command" },
202 1.23 yamt { WDC_CMD2_DCO, "Device Configuration Overlay feature set" },
203 1.23 yamt { ATA_CMD2_LBA48, "48-bit Address feature set" },
204 1.23 yamt { WDC_CMD2_AAM, "Automatic Acoustic Management feature set" },
205 1.28 wiz { WDC_CMD2_SM, "SET MAX security extension" },
206 1.23 yamt { WDC_CMD2_SFREQ, "SET FEATURES required to spin-up after power-up" },
207 1.23 yamt { WDC_CMD2_PUIS, "Power-Up In Standby feature set" },
208 1.1 kenh { WDC_CMD2_RMSN, "Removable Media Status Notification feature set" },
209 1.1 kenh { ATA_CMD2_APM, "Advanced Power Management feature set" },
210 1.1 kenh { ATA_CMD2_CFA, "CFA feature set" },
211 1.6 soren { ATA_CMD2_RWQ, "READ/WRITE DMA QUEUED commands" },
212 1.1 kenh { WDC_CMD2_DM, "DOWNLOAD MICROCODE command" },
213 1.22 fvdl { 0, NULL },
214 1.1 kenh };
215 1.1 kenh
216 1.23 yamt struct bitinfo ata_cmd_ext[] = {
217 1.23 yamt { ATA_CMDE_TLCONT, "Time-limited R/W feature set R/W Continuous mode" },
218 1.23 yamt { ATA_CMDE_TL, "Time-limited Read/Write" },
219 1.23 yamt { ATA_CMDE_URGW, "URG bit for WRITE STREAM DMA/PIO" },
220 1.23 yamt { ATA_CMDE_URGR, "URG bit for READ STREAM DMA/PIO" },
221 1.23 yamt { ATA_CMDE_WWN, "World Wide name" },
222 1.23 yamt { ATA_CMDE_WQFE, "WRITE DMA QUEUED FUA EXT command" },
223 1.23 yamt { ATA_CMDE_WFE, "WRITE DMA/MULTIPLE FUA EXT commands" },
224 1.23 yamt { ATA_CMDE_GPL, "General Purpose Logging feature set" },
225 1.23 yamt { ATA_CMDE_STREAM, "Streaming feature set" },
226 1.23 yamt { ATA_CMDE_MCPTC, "Media Card Pass Through Command feature set" },
227 1.23 yamt { ATA_CMDE_MS, "Media serial number" },
228 1.23 yamt { ATA_CMDE_SST, "SMART self-test" },
229 1.23 yamt { ATA_CMDE_SEL, "SMART error logging" },
230 1.23 yamt { 0, NULL },
231 1.23 yamt };
232 1.23 yamt
233 1.46 bouyer struct bitinfo ata_sata_caps[] = {
234 1.46 bouyer { SATA_SIGNAL_GEN1, "1.5Gb/s signaling" },
235 1.46 bouyer { SATA_SIGNAL_GEN2, "3.0Gb/s signaling" },
236 1.46 bouyer { SATA_NATIVE_CMDQ, "Native Command Queuing" },
237 1.46 bouyer { SATA_HOST_PWR_MGMT, "Host-Initiated Interface Power Management" },
238 1.46 bouyer { SATA_PHY_EVNT_CNT, "PHY Event Counters" },
239 1.46 bouyer { 0, NULL },
240 1.46 bouyer };
241 1.46 bouyer
242 1.46 bouyer struct bitinfo ata_sata_feat[] = {
243 1.46 bouyer { SATA_NONZERO_OFFSETS, "Non-zero Offset DMA" },
244 1.46 bouyer { SATA_DMA_SETUP_AUTO, "DMA Setup Auto Activate" },
245 1.46 bouyer { SATA_DRIVE_PWR_MGMT, "Device-Initiated Interface Power Managment" },
246 1.46 bouyer { SATA_IN_ORDER_DATA, "In-order Data Delivery" },
247 1.47 xtraeme { SATA_SW_STTNGS_PRS, "Software Settings Preservation" },
248 1.46 bouyer { 0, NULL },
249 1.46 bouyer };
250 1.46 bouyer
251 1.17 soren static const struct {
252 1.17 soren const int id;
253 1.17 soren const char *name;
254 1.29 mycroft void (*special)(struct ata_smart_attr *, uint64_t);
255 1.17 soren } smart_attrs[] = {
256 1.45 christos { 1, "Raw read error rate", NULL },
257 1.45 christos { 2, "Throughput performance", NULL },
258 1.45 christos { 3, "Spin-up time", NULL },
259 1.45 christos { 4, "Start/stop count", NULL },
260 1.45 christos { 5, "Reallocated sector count", NULL },
261 1.45 christos { 6, "Read channel margin", NULL },
262 1.45 christos { 7, "Seek error rate", NULL },
263 1.45 christos { 8, "Seek time performance", NULL },
264 1.45 christos { 9, "Power-on hours count", NULL },
265 1.45 christos { 10, "Spin retry count", NULL },
266 1.45 christos { 11, "Calibration retry count", NULL },
267 1.45 christos { 12, "Device power cycle count", NULL },
268 1.45 christos { 191, "Gsense error rate", NULL },
269 1.45 christos { 192, "Power-off retract count", NULL },
270 1.45 christos { 193, "Load cycle count", NULL },
271 1.30 bouyer { 194, "Temperature", device_smart_temp},
272 1.45 christos { 195, "Hardware ECC Recovered", NULL },
273 1.45 christos { 196, "Reallocated event count", NULL },
274 1.45 christos { 197, "Current pending sector", NULL },
275 1.45 christos { 198, "Offline uncorrectable", NULL },
276 1.45 christos { 199, "Ultra DMA CRC error count", NULL },
277 1.45 christos { 200, "Write error rate", NULL },
278 1.45 christos { 201, "Soft read error rate", NULL },
279 1.45 christos { 202, "Data address mark errors", NULL },
280 1.45 christos { 203, "Run out cancel", NULL },
281 1.45 christos { 204, "Soft ECC correction", NULL },
282 1.45 christos { 205, "Thermal asperity check", NULL },
283 1.45 christos { 206, "Flying height", NULL },
284 1.45 christos { 207, "Spin high current", NULL },
285 1.45 christos { 208, "Spin buzz", NULL },
286 1.45 christos { 209, "Offline seek performance", NULL },
287 1.45 christos { 220, "Disk shift", NULL },
288 1.45 christos { 221, "G-Sense error rate", NULL },
289 1.45 christos { 222, "Loaded hours", NULL },
290 1.45 christos { 223, "Load/unload retry count", NULL },
291 1.45 christos { 224, "Load friction", NULL },
292 1.45 christos { 225, "Load/unload cycle count", NULL },
293 1.45 christos { 226, "Load-in time", NULL },
294 1.45 christos { 227, "Torque amplification count", NULL },
295 1.45 christos { 228, "Power-off retract count", NULL },
296 1.45 christos { 230, "GMR head amplitude", NULL },
297 1.32 atatat { 231, "Temperature", device_smart_temp },
298 1.45 christos { 240, "Head flying hours", NULL },
299 1.45 christos { 250, "Read error retry rate", NULL },
300 1.45 christos { 0, "Unknown", NULL },
301 1.17 soren };
302 1.17 soren
303 1.38 drochner struct bitinfo ata_sec_st[] = {
304 1.38 drochner { WDC_SEC_SUPP, "supported" },
305 1.38 drochner { WDC_SEC_EN, "enabled" },
306 1.38 drochner { WDC_SEC_LOCKED, "locked" },
307 1.38 drochner { WDC_SEC_FROZEN, "frozen" },
308 1.38 drochner { WDC_SEC_EXP, "expired" },
309 1.38 drochner { WDC_SEC_ESE_SUPP, "enhanced erase support" },
310 1.38 drochner { WDC_SEC_LEV_MAX, "maximum level" },
311 1.38 drochner { 0, NULL },
312 1.38 drochner };
313 1.38 drochner
314 1.1 kenh int
315 1.13 simonb main(int argc, char *argv[])
316 1.1 kenh {
317 1.1 kenh int i;
318 1.30 bouyer struct command *commands = NULL;
319 1.1 kenh
320 1.1 kenh /* Must have at least: device command */
321 1.1 kenh if (argc < 3)
322 1.1 kenh usage();
323 1.1 kenh
324 1.1 kenh /* Skip program name, get and skip device name and command. */
325 1.1 kenh dvname = argv[1];
326 1.1 kenh cmdname = argv[2];
327 1.1 kenh argv += 3;
328 1.1 kenh argc -= 3;
329 1.1 kenh
330 1.1 kenh /*
331 1.1 kenh * Open the device
332 1.1 kenh */
333 1.1 kenh fd = opendisk(dvname, O_RDWR, dvname_store, sizeof(dvname_store), 0);
334 1.1 kenh if (fd == -1) {
335 1.1 kenh if (errno == ENOENT) {
336 1.1 kenh /*
337 1.1 kenh * Device doesn't exist. Probably trying to open
338 1.1 kenh * a device which doesn't use disk semantics for
339 1.1 kenh * device name. Try again, specifying "cooked",
340 1.1 kenh * which leaves off the "r" in front of the device's
341 1.1 kenh * name.
342 1.1 kenh */
343 1.1 kenh fd = opendisk(dvname, O_RDWR, dvname_store,
344 1.1 kenh sizeof(dvname_store), 1);
345 1.1 kenh if (fd == -1)
346 1.1 kenh err(1, "%s", dvname);
347 1.4 jwise } else
348 1.4 jwise err(1, "%s", dvname);
349 1.1 kenh }
350 1.1 kenh
351 1.1 kenh /*
352 1.1 kenh * Point the dvname at the actual device name that opendisk() opened.
353 1.1 kenh */
354 1.1 kenh dvname = dvname_store;
355 1.1 kenh
356 1.1 kenh /* Look up and call the command. */
357 1.30 bouyer for (i = 0; device_commands[i].cmd_name != NULL; i++) {
358 1.30 bouyer if (strcmp(cmdname, device_commands[i].cmd_name) == 0) {
359 1.30 bouyer commands = &device_commands[i];
360 1.1 kenh break;
361 1.30 bouyer }
362 1.30 bouyer }
363 1.30 bouyer if (commands == NULL) {
364 1.30 bouyer for (i = 0; bus_commands[i].cmd_name != NULL; i++) {
365 1.30 bouyer if (strcmp(cmdname, bus_commands[i].cmd_name) == 0) {
366 1.30 bouyer commands = &bus_commands[i];
367 1.30 bouyer break;
368 1.30 bouyer }
369 1.30 bouyer }
370 1.30 bouyer }
371 1.30 bouyer if (commands == NULL)
372 1.12 ad errx(1, "unknown command: %s", cmdname);
373 1.1 kenh
374 1.30 bouyer argnames = commands->arg_names;
375 1.5 soren
376 1.30 bouyer (*commands->cmd_func)(argc, argv);
377 1.1 kenh exit(0);
378 1.1 kenh }
379 1.1 kenh
380 1.1 kenh void
381 1.13 simonb usage(void)
382 1.1 kenh {
383 1.5 soren int i;
384 1.1 kenh
385 1.27 jmmv fprintf(stderr, "usage: %s device command [arg [...]]\n",
386 1.11 cgd getprogname());
387 1.5 soren
388 1.5 soren fprintf(stderr, " Available device commands:\n");
389 1.30 bouyer for (i=0; device_commands[i].cmd_name != NULL; i++)
390 1.30 bouyer fprintf(stderr, "\t%s %s\n", device_commands[i].cmd_name,
391 1.30 bouyer device_commands[i].arg_names);
392 1.30 bouyer
393 1.30 bouyer fprintf(stderr, " Available bus commands:\n");
394 1.30 bouyer for (i=0; bus_commands[i].cmd_name != NULL; i++)
395 1.30 bouyer fprintf(stderr, "\t%s %s\n", bus_commands[i].cmd_name,
396 1.30 bouyer bus_commands[i].arg_names);
397 1.5 soren
398 1.1 kenh exit(1);
399 1.1 kenh }
400 1.1 kenh
401 1.1 kenh /*
402 1.1 kenh * Wrapper that calls ATAIOCCOMMAND and checks for errors
403 1.1 kenh */
404 1.1 kenh
405 1.1 kenh void
406 1.13 simonb ata_command(struct atareq *req)
407 1.1 kenh {
408 1.1 kenh int error;
409 1.1 kenh
410 1.1 kenh error = ioctl(fd, ATAIOCCOMMAND, req);
411 1.1 kenh
412 1.1 kenh if (error == -1)
413 1.1 kenh err(1, "ATAIOCCOMMAND failed");
414 1.1 kenh
415 1.1 kenh switch (req->retsts) {
416 1.1 kenh
417 1.1 kenh case ATACMD_OK:
418 1.1 kenh return;
419 1.1 kenh case ATACMD_TIMEOUT:
420 1.1 kenh fprintf(stderr, "ATA command timed out\n");
421 1.1 kenh exit(1);
422 1.1 kenh case ATACMD_DF:
423 1.1 kenh fprintf(stderr, "ATA device returned a Device Fault\n");
424 1.1 kenh exit(1);
425 1.1 kenh case ATACMD_ERROR:
426 1.1 kenh if (req->error & WDCE_ABRT)
427 1.1 kenh fprintf(stderr, "ATA device returned Aborted "
428 1.1 kenh "Command\n");
429 1.1 kenh else
430 1.1 kenh fprintf(stderr, "ATA device returned error register "
431 1.1 kenh "%0x\n", req->error);
432 1.1 kenh exit(1);
433 1.1 kenh default:
434 1.1 kenh fprintf(stderr, "ATAIOCCOMMAND returned unknown result code "
435 1.1 kenh "%d\n", req->retsts);
436 1.1 kenh exit(1);
437 1.1 kenh }
438 1.1 kenh }
439 1.1 kenh
440 1.1 kenh /*
441 1.1 kenh * Print out strings associated with particular bitmasks
442 1.1 kenh */
443 1.1 kenh
444 1.1 kenh void
445 1.13 simonb print_bitinfo(const char *bf, const char *af, u_int bits, struct bitinfo *binfo)
446 1.1 kenh {
447 1.1 kenh
448 1.22 fvdl for (; binfo->bitmask != 0; binfo++)
449 1.1 kenh if (bits & binfo->bitmask)
450 1.10 is printf("%s%s%s", bf, binfo->string, af);
451 1.1 kenh }
452 1.1 kenh
453 1.33 mycroft void
454 1.33 mycroft print_bitinfo2(const char *bf, const char *af, u_int bits, u_int enables, struct bitinfo *binfo)
455 1.33 mycroft {
456 1.33 mycroft
457 1.33 mycroft for (; binfo->bitmask != 0; binfo++)
458 1.33 mycroft if (bits & binfo->bitmask)
459 1.33 mycroft printf("%s%s (%s)%s", bf, binfo->string,
460 1.33 mycroft (enables & binfo->bitmask) ? "enabled" : "disabled",
461 1.33 mycroft af);
462 1.33 mycroft }
463 1.33 mycroft
464 1.24 lha
465 1.24 lha /*
466 1.24 lha * Try to print SMART temperature field
467 1.24 lha */
468 1.24 lha
469 1.24 lha void
470 1.30 bouyer device_smart_temp(struct ata_smart_attr *attr, uint64_t raw_value)
471 1.24 lha {
472 1.29 mycroft printf("%" PRIu8, attr->raw[0]);
473 1.24 lha if (attr->raw[0] != raw_value)
474 1.29 mycroft printf(" Lifetime max/min %" PRIu8 "/%" PRIu8,
475 1.29 mycroft attr->raw[2], attr->raw[4]);
476 1.24 lha }
477 1.24 lha
478 1.24 lha
479 1.1 kenh /*
480 1.15 soren * Print out SMART attribute thresholds and values
481 1.15 soren */
482 1.15 soren
483 1.15 soren void
484 1.15 soren print_smart_status(void *vbuf, void *tbuf)
485 1.15 soren {
486 1.15 soren struct ata_smart_attributes *value_buf = vbuf;
487 1.15 soren struct ata_smart_thresholds *threshold_buf = tbuf;
488 1.24 lha struct ata_smart_attr *attr;
489 1.29 mycroft uint64_t raw_value;
490 1.24 lha int flags;
491 1.17 soren int i, j;
492 1.24 lha int aid;
493 1.33 mycroft u_int8_t checksum;
494 1.15 soren
495 1.33 mycroft for (i = checksum = 0; i < 512; i++)
496 1.33 mycroft checksum += ((u_int8_t *) value_buf)[i];
497 1.33 mycroft if (checksum != 0) {
498 1.15 soren fprintf(stderr, "SMART attribute values checksum error\n");
499 1.15 soren return;
500 1.15 soren }
501 1.15 soren
502 1.33 mycroft for (i = checksum = 0; i < 512; i++)
503 1.33 mycroft checksum += ((u_int8_t *) threshold_buf)[i];
504 1.33 mycroft if (checksum != 0) {
505 1.15 soren fprintf(stderr, "SMART attribute thresholds checksum error\n");
506 1.15 soren return;
507 1.15 soren }
508 1.15 soren
509 1.24 lha printf("id value thresh crit collect reliability description\t\t\traw\n");
510 1.24 lha for (i = 0; i < 256; i++) {
511 1.24 lha int thresh = 0;
512 1.24 lha
513 1.24 lha attr = NULL;
514 1.24 lha
515 1.24 lha for (j = 0; j < 30; j++) {
516 1.24 lha if (value_buf->attributes[j].id == i)
517 1.24 lha attr = &value_buf->attributes[j];
518 1.24 lha if (threshold_buf->thresholds[j].id == i)
519 1.24 lha thresh = threshold_buf->thresholds[j].value;
520 1.31 atatat }
521 1.15 soren
522 1.24 lha if (thresh && attr == NULL)
523 1.24 lha errx(1, "threshold but not attr %d", i);
524 1.24 lha if (attr == NULL)
525 1.24 lha continue;
526 1.24 lha
527 1.24 lha if (attr->value == 0||attr->value == 0xFE||attr->value == 0xFF)
528 1.24 lha continue;
529 1.24 lha
530 1.24 lha for (aid = 0;
531 1.24 lha smart_attrs[aid].id != i && smart_attrs[aid].id != 0;
532 1.24 lha aid++)
533 1.24 lha ;
534 1.24 lha
535 1.35 fvdl flags = le16toh(attr->flags);
536 1.24 lha
537 1.29 mycroft printf("%3d %3d %3d %-3s %-7s %stive %-24s\t",
538 1.24 lha i, attr->value, thresh,
539 1.24 lha flags & WDSM_ATTR_ADVISORY ? "yes" : "no",
540 1.24 lha flags & WDSM_ATTR_COLLECTIVE ? "online" : "offline",
541 1.24 lha attr->value > thresh ? "posi" : "nega",
542 1.24 lha smart_attrs[aid].name);
543 1.24 lha
544 1.24 lha for (j = 0, raw_value = 0; j < 6; j++)
545 1.29 mycroft raw_value += ((uint64_t)attr->raw[j]) << (8*j);
546 1.24 lha
547 1.24 lha if (smart_attrs[aid].special)
548 1.24 lha (*smart_attrs[aid].special)(attr, raw_value);
549 1.29 mycroft else
550 1.29 mycroft printf("%" PRIu64, raw_value);
551 1.24 lha printf("\n");
552 1.15 soren }
553 1.15 soren }
554 1.24 lha
555 1.24 lha struct {
556 1.24 lha int number;
557 1.24 lha const char *name;
558 1.24 lha } selftest_name[] = {
559 1.24 lha { 0, "Off-line" },
560 1.24 lha { 1, "Short off-line" },
561 1.24 lha { 2, "Extended off-line" },
562 1.24 lha { 127, "Abort off-line test" },
563 1.24 lha { 129, "Short captive" },
564 1.24 lha { 130, "Extended captive" },
565 1.24 lha { 256, "Unknown test" }, /* larger then u_int8_t */
566 1.24 lha { 0, NULL }
567 1.24 lha };
568 1.24 lha
569 1.24 lha const char *selftest_status[] = {
570 1.24 lha "No error",
571 1.24 lha "Aborted by the host",
572 1.42 wiz "Interrupted by the host by reset",
573 1.24 lha "Fatal error or unknown test error",
574 1.24 lha "Unknown test element failed",
575 1.24 lha "Electrical test element failed",
576 1.24 lha "The Servo (and/or seek) test element failed",
577 1.24 lha "Read element of test failed",
578 1.24 lha "Reserved",
579 1.24 lha "Reserved",
580 1.24 lha "Reserved",
581 1.24 lha "Reserved",
582 1.24 lha "Reserved",
583 1.24 lha "Reserved",
584 1.24 lha "Reserved",
585 1.24 lha "Self-test in progress"
586 1.24 lha };
587 1.24 lha
588 1.24 lha void
589 1.33 mycroft print_error_entry(int num, struct ata_smart_error *le)
590 1.33 mycroft {
591 1.33 mycroft int i;
592 1.33 mycroft
593 1.33 mycroft printf("Log entry: %d\n", num);
594 1.33 mycroft
595 1.33 mycroft for (i = 0; i < 5; i++)
596 1.33 mycroft printf("\tCommand %d: dc=%02x sf=%02x sc=%02x sn=%02x cl=%02x ch=%02x dh=%02x cmd=%02x time=%02x%02x%02x%02x\n", i,
597 1.33 mycroft le->command[i].device_control,
598 1.33 mycroft le->command[i].features,
599 1.33 mycroft le->command[i].sector_count,
600 1.33 mycroft le->command[i].sector_number,
601 1.33 mycroft le->command[i].cylinder_low,
602 1.33 mycroft le->command[i].cylinder_high,
603 1.33 mycroft le->command[i].device_head,
604 1.33 mycroft le->command[i].command,
605 1.33 mycroft le->command[i].timestamp[3],
606 1.33 mycroft le->command[i].timestamp[2],
607 1.33 mycroft le->command[i].timestamp[1],
608 1.33 mycroft le->command[i].timestamp[0]);
609 1.33 mycroft printf("\tError: err=%02x sc=%02x sn=%02x cl=%02x ch=%02x dh=%02x status=%02x state=%02x lifetime=%02x%02x\n",
610 1.33 mycroft le->error_data.error,
611 1.33 mycroft le->error_data.sector_count,
612 1.33 mycroft le->error_data.sector_number,
613 1.33 mycroft le->error_data.cylinder_low,
614 1.33 mycroft le->error_data.cylinder_high,
615 1.33 mycroft le->error_data.device_head,
616 1.33 mycroft le->error_data.status,
617 1.33 mycroft le->error_data.state,
618 1.33 mycroft le->error_data.lifetime[1],
619 1.33 mycroft le->error_data.lifetime[0]);
620 1.33 mycroft printf("\tExtended: %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x\n",
621 1.33 mycroft le->error_data.extended_error[0],
622 1.33 mycroft le->error_data.extended_error[1],
623 1.33 mycroft le->error_data.extended_error[2],
624 1.33 mycroft le->error_data.extended_error[3],
625 1.33 mycroft le->error_data.extended_error[4],
626 1.33 mycroft le->error_data.extended_error[5],
627 1.33 mycroft le->error_data.extended_error[6],
628 1.33 mycroft le->error_data.extended_error[7],
629 1.33 mycroft le->error_data.extended_error[8],
630 1.33 mycroft le->error_data.extended_error[9],
631 1.33 mycroft le->error_data.extended_error[10],
632 1.33 mycroft le->error_data.extended_error[11],
633 1.33 mycroft le->error_data.extended_error[12],
634 1.33 mycroft le->error_data.extended_error[13],
635 1.33 mycroft le->error_data.extended_error[14],
636 1.33 mycroft le->error_data.extended_error[15],
637 1.33 mycroft le->error_data.extended_error[15],
638 1.33 mycroft le->error_data.extended_error[17],
639 1.33 mycroft le->error_data.extended_error[18]);
640 1.33 mycroft }
641 1.33 mycroft
642 1.33 mycroft void
643 1.33 mycroft print_error(void *buf)
644 1.33 mycroft {
645 1.33 mycroft struct ata_smart_errorlog *erlog = buf;
646 1.33 mycroft u_int8_t checksum;
647 1.33 mycroft int i;
648 1.33 mycroft
649 1.33 mycroft for (i = checksum = 0; i < 512; i++)
650 1.33 mycroft checksum += ((u_int8_t *) buf)[i];
651 1.33 mycroft if (checksum != 0) {
652 1.33 mycroft fprintf(stderr, "SMART error log checksum error\n");
653 1.33 mycroft return;
654 1.33 mycroft }
655 1.33 mycroft
656 1.33 mycroft if (erlog->data_structure_revision != 1) {
657 1.41 dbj fprintf(stderr, "Error log revision not 1 (found 0x%04x)\n",
658 1.41 dbj erlog->data_structure_revision);
659 1.33 mycroft return;
660 1.33 mycroft }
661 1.33 mycroft
662 1.33 mycroft if (erlog->mostrecenterror == 0) {
663 1.33 mycroft printf("No errors have been logged\n");
664 1.33 mycroft return;
665 1.33 mycroft }
666 1.33 mycroft
667 1.33 mycroft if (erlog->mostrecenterror > 5) {
668 1.33 mycroft fprintf(stderr, "Most recent error is too large\n");
669 1.33 mycroft return;
670 1.33 mycroft }
671 1.33 mycroft
672 1.33 mycroft for (i = erlog->mostrecenterror; i < 5; i++)
673 1.33 mycroft print_error_entry(i, &erlog->log_entries[i]);
674 1.33 mycroft for (i = 0; i < erlog->mostrecenterror; i++)
675 1.33 mycroft print_error_entry(i, &erlog->log_entries[i]);
676 1.33 mycroft printf("device error count: %d\n", erlog->device_error_count);
677 1.33 mycroft }
678 1.33 mycroft
679 1.33 mycroft void
680 1.24 lha print_selftest_entry(int num, struct ata_smart_selftest *le)
681 1.24 lha {
682 1.24 lha unsigned char *p;
683 1.24 lha int i;
684 1.24 lha
685 1.24 lha /* check if all zero */
686 1.24 lha for (p = (void *)le, i = 0; i < sizeof(*le); i++)
687 1.24 lha if (p[i] != 0)
688 1.24 lha break;
689 1.24 lha if (i == sizeof(*le))
690 1.24 lha return;
691 1.24 lha
692 1.24 lha printf("Log entry: %d\n", num);
693 1.24 lha
694 1.24 lha /* Get test name */
695 1.24 lha for (i = 0; selftest_name[i].name != NULL; i++)
696 1.24 lha if (selftest_name[i].number == le->number)
697 1.24 lha break;
698 1.24 lha
699 1.33 mycroft if (selftest_name[i].name == NULL)
700 1.33 mycroft printf("\tName: (%d)\n", le->number);
701 1.33 mycroft else
702 1.33 mycroft printf("\tName: %s\n", selftest_name[i].name);
703 1.24 lha printf("\tStatus: %s\n", selftest_status[le->status >> 4]);
704 1.33 mycroft /* XXX This generally should not be set when a self-test is completed,
705 1.33 mycroft and at any rate is useless. - mycroft */
706 1.24 lha if (le->status >> 4 == 15)
707 1.33 mycroft printf("\tPercent of test remaining: %1d0\n", le->status & 0xf);
708 1.33 mycroft else if (le->status >> 4 != 0)
709 1.35 fvdl printf("\tLBA first error: %d\n", le32toh(le->lba_first_error));
710 1.24 lha }
711 1.24 lha
712 1.24 lha void
713 1.24 lha print_selftest(void *buf)
714 1.24 lha {
715 1.24 lha struct ata_smart_selftestlog *stlog = buf;
716 1.33 mycroft u_int8_t checksum;
717 1.24 lha int i;
718 1.24 lha
719 1.33 mycroft for (i = checksum = 0; i < 512; i++)
720 1.33 mycroft checksum += ((u_int8_t *) buf)[i];
721 1.33 mycroft if (checksum != 0) {
722 1.24 lha fprintf(stderr, "SMART selftest log checksum error\n");
723 1.24 lha return;
724 1.24 lha }
725 1.24 lha
726 1.41 dbj if (le16toh(stlog->data_structure_revision) != 1) {
727 1.41 dbj fprintf(stderr, "Self-test log revision not 1 (found 0x%04x)\n",
728 1.41 dbj le16toh(stlog->data_structure_revision));
729 1.24 lha return;
730 1.24 lha }
731 1.24 lha
732 1.24 lha if (stlog->mostrecenttest == 0) {
733 1.24 lha printf("No self-tests have been logged\n");
734 1.24 lha return;
735 1.24 lha }
736 1.24 lha
737 1.24 lha if (stlog->mostrecenttest > 22) {
738 1.24 lha fprintf(stderr, "Most recent test is too large\n");
739 1.24 lha return;
740 1.24 lha }
741 1.24 lha
742 1.24 lha for (i = stlog->mostrecenttest; i < 22; i++)
743 1.24 lha print_selftest_entry(i, &stlog->log_entries[i]);
744 1.24 lha for (i = 0; i < stlog->mostrecenttest; i++)
745 1.24 lha print_selftest_entry(i, &stlog->log_entries[i]);
746 1.15 soren }
747 1.15 soren
748 1.38 drochner struct ataparams *
749 1.38 drochner getataparams()
750 1.38 drochner {
751 1.38 drochner struct atareq req;
752 1.38 drochner static union {
753 1.38 drochner unsigned char inbuf[DEV_BSIZE];
754 1.38 drochner struct ataparams inqbuf;
755 1.38 drochner } inbuf;
756 1.38 drochner
757 1.38 drochner memset(&inbuf, 0, sizeof(inbuf));
758 1.38 drochner memset(&req, 0, sizeof(req));
759 1.38 drochner
760 1.38 drochner req.flags = ATACMD_READ;
761 1.38 drochner req.command = WDCC_IDENTIFY;
762 1.38 drochner req.databuf = (caddr_t)&inbuf;
763 1.38 drochner req.datalen = sizeof(inbuf);
764 1.38 drochner req.timeout = 1000;
765 1.38 drochner
766 1.38 drochner ata_command(&req);
767 1.38 drochner
768 1.38 drochner return (&inbuf.inqbuf);
769 1.38 drochner }
770 1.38 drochner
771 1.15 soren /*
772 1.15 soren * is_smart:
773 1.15 soren *
774 1.15 soren * Detect whether device supports SMART and SMART is enabled.
775 1.15 soren */
776 1.15 soren
777 1.15 soren int
778 1.20 mycroft is_smart(void)
779 1.15 soren {
780 1.15 soren int retval = 0;
781 1.15 soren struct ataparams *inqbuf;
782 1.39 christos const char *status;
783 1.15 soren
784 1.38 drochner inqbuf = getataparams();
785 1.15 soren
786 1.15 soren if (inqbuf->atap_cmd_def != 0 && inqbuf->atap_cmd_def != 0xffff) {
787 1.15 soren if (!(inqbuf->atap_cmd_set1 & WDC_CMD1_SMART)) {
788 1.15 soren fprintf(stderr, "SMART unsupported\n");
789 1.15 soren } else {
790 1.15 soren if (inqbuf->atap_ata_major <= WDC_VER_ATA5 ||
791 1.15 soren inqbuf->atap_cmd_set2 == 0xffff ||
792 1.15 soren inqbuf->atap_cmd_set2 == 0x0000) {
793 1.15 soren status = "status unknown";
794 1.15 soren retval = 2;
795 1.15 soren } else {
796 1.18 mycroft if (inqbuf->atap_cmd1_en & WDC_CMD1_SMART) {
797 1.15 soren status = "enabled";
798 1.15 soren retval = 1;
799 1.15 soren } else {
800 1.15 soren status = "disabled";
801 1.43 xtraeme retval = 3;
802 1.15 soren }
803 1.15 soren }
804 1.20 mycroft printf("SMART supported, SMART %s\n", status);
805 1.15 soren }
806 1.15 soren }
807 1.15 soren return retval;
808 1.15 soren }
809 1.51 dholland
810 1.51 dholland /*
811 1.51 dholland * extract_string: copy a block of bytes out of ataparams and make
812 1.51 dholland * a proper string out of it, truncating trailing spaces and preserving
813 1.51 dholland * strict typing. And also, not doing unaligned accesses.
814 1.51 dholland */
815 1.51 dholland static void
816 1.51 dholland extract_string(char *buf, size_t bufmax,
817 1.51 dholland uint8_t *bytes, unsigned numbytes,
818 1.51 dholland int needswap)
819 1.51 dholland {
820 1.51 dholland unsigned i;
821 1.51 dholland size_t j;
822 1.51 dholland unsigned char ch1, ch2;
823 1.51 dholland
824 1.51 dholland for (i = 0, j = 0; i < numbytes; i += 2) {
825 1.51 dholland ch1 = bytes[i];
826 1.51 dholland ch2 = bytes[i+1];
827 1.51 dholland if (needswap && j < bufmax-1) {
828 1.51 dholland buf[j++] = ch2;
829 1.51 dholland }
830 1.51 dholland if (j < bufmax-1) {
831 1.51 dholland buf[j++] = ch1;
832 1.51 dholland }
833 1.51 dholland if (!needswap && j < bufmax-1) {
834 1.51 dholland buf[j++] = ch2;
835 1.51 dholland }
836 1.51 dholland }
837 1.51 dholland while (j > 0 && buf[j-1] == ' ') {
838 1.51 dholland j--;
839 1.51 dholland }
840 1.51 dholland buf[j] = '\0';
841 1.51 dholland }
842 1.51 dholland
843 1.15 soren /*
844 1.1 kenh * DEVICE COMMANDS
845 1.1 kenh */
846 1.1 kenh
847 1.1 kenh /*
848 1.1 kenh * device_identify:
849 1.1 kenh *
850 1.1 kenh * Display the identity of the device
851 1.1 kenh */
852 1.1 kenh void
853 1.13 simonb device_identify(int argc, char *argv[])
854 1.1 kenh {
855 1.1 kenh struct ataparams *inqbuf;
856 1.51 dholland char model[sizeof(inqbuf->atap_model)];
857 1.51 dholland char revision[sizeof(inqbuf->atap_revision)];
858 1.51 dholland char serial[sizeof(inqbuf->atap_serial)];
859 1.51 dholland int needswap = 0;
860 1.1 kenh
861 1.1 kenh /* No arguments. */
862 1.1 kenh if (argc != 0)
863 1.5 soren usage();
864 1.1 kenh
865 1.38 drochner inqbuf = getataparams();
866 1.1 kenh
867 1.1 kenh #if BYTE_ORDER == LITTLE_ENDIAN
868 1.1 kenh /*
869 1.1 kenh * On little endian machines, we need to shuffle the string
870 1.1 kenh * byte order. However, we don't have to do this for NEC or
871 1.1 kenh * Mitsumi ATAPI devices
872 1.1 kenh */
873 1.1 kenh
874 1.1 kenh if (!((inqbuf->atap_config & WDC_CFG_ATAPI_MASK) == WDC_CFG_ATAPI &&
875 1.1 kenh ((inqbuf->atap_model[0] == 'N' &&
876 1.1 kenh inqbuf->atap_model[1] == 'E') ||
877 1.1 kenh (inqbuf->atap_model[0] == 'F' &&
878 1.1 kenh inqbuf->atap_model[1] == 'X')))) {
879 1.51 dholland needswap = 1;
880 1.1 kenh }
881 1.1 kenh #endif
882 1.1 kenh
883 1.1 kenh /*
884 1.51 dholland * Copy the info strings out, stripping off blanks.
885 1.1 kenh */
886 1.51 dholland extract_string(model, sizeof(model),
887 1.51 dholland inqbuf->atap_model, sizeof(inqbuf->atap_model),
888 1.51 dholland needswap);
889 1.51 dholland extract_string(revision, sizeof(revision),
890 1.51 dholland inqbuf->atap_revision, sizeof(inqbuf->atap_revision),
891 1.51 dholland needswap);
892 1.51 dholland extract_string(serial, sizeof(serial),
893 1.51 dholland inqbuf->atap_serial, sizeof(inqbuf->atap_serial),
894 1.51 dholland needswap);
895 1.1 kenh
896 1.51 dholland printf("Model: %s, Rev: %s, Serial #: %s\n",
897 1.51 dholland model, revision, serial);
898 1.1 kenh
899 1.1 kenh printf("Device type: %s, %s\n", inqbuf->atap_config & WDC_CFG_ATAPI ?
900 1.1 kenh "ATAPI" : "ATA", inqbuf->atap_config & ATA_CFG_FIXED ? "fixed" :
901 1.1 kenh "removable");
902 1.1 kenh
903 1.1 kenh if ((inqbuf->atap_config & WDC_CFG_ATAPI_MASK) == 0)
904 1.1 kenh printf("Cylinders: %d, heads: %d, sec/track: %d, total "
905 1.1 kenh "sectors: %d\n", inqbuf->atap_cylinders,
906 1.1 kenh inqbuf->atap_heads, inqbuf->atap_sectors,
907 1.1 kenh (inqbuf->atap_capacity[1] << 16) |
908 1.1 kenh inqbuf->atap_capacity[0]);
909 1.1 kenh
910 1.1 kenh if (inqbuf->atap_queuedepth & WDC_QUEUE_DEPTH_MASK)
911 1.1 kenh printf("Device supports command queue depth of %d\n",
912 1.46 bouyer inqbuf->atap_queuedepth & WDC_QUEUE_DEPTH_MASK);
913 1.1 kenh
914 1.1 kenh printf("Device capabilities:\n");
915 1.10 is print_bitinfo("\t", "\n", inqbuf->atap_capabilities1, ata_caps);
916 1.1 kenh
917 1.1 kenh if (inqbuf->atap_ata_major != 0 && inqbuf->atap_ata_major != 0xffff) {
918 1.1 kenh printf("Device supports following standards:\n");
919 1.10 is print_bitinfo("", " ", inqbuf->atap_ata_major, ata_vers);
920 1.1 kenh printf("\n");
921 1.1 kenh }
922 1.1 kenh
923 1.1 kenh if (inqbuf->atap_cmd_set1 != 0 && inqbuf->atap_cmd_set1 != 0xffff &&
924 1.1 kenh inqbuf->atap_cmd_set2 != 0 && inqbuf->atap_cmd_set2 != 0xffff) {
925 1.1 kenh printf("Command set support:\n");
926 1.33 mycroft if (inqbuf->atap_cmd1_en != 0 && inqbuf->atap_cmd1_en != 0xffff)
927 1.33 mycroft print_bitinfo2("\t", "\n", inqbuf->atap_cmd_set1,
928 1.33 mycroft inqbuf->atap_cmd1_en, ata_cmd_set1);
929 1.33 mycroft else
930 1.33 mycroft print_bitinfo("\t", "\n", inqbuf->atap_cmd_set1,
931 1.33 mycroft ata_cmd_set1);
932 1.33 mycroft if (inqbuf->atap_cmd2_en != 0 && inqbuf->atap_cmd2_en != 0xffff)
933 1.33 mycroft print_bitinfo2("\t", "\n", inqbuf->atap_cmd_set2,
934 1.33 mycroft inqbuf->atap_cmd2_en, ata_cmd_set2);
935 1.33 mycroft else
936 1.33 mycroft print_bitinfo("\t", "\n", inqbuf->atap_cmd_set2,
937 1.33 mycroft ata_cmd_set2);
938 1.23 yamt if (inqbuf->atap_cmd_ext != 0 && inqbuf->atap_cmd_ext != 0xffff)
939 1.23 yamt print_bitinfo("\t", "\n", inqbuf->atap_cmd_ext,
940 1.23 yamt ata_cmd_ext);
941 1.1 kenh }
942 1.1 kenh
943 1.46 bouyer if (inqbuf->atap_sata_caps != 0 && inqbuf->atap_sata_caps != 0xffff) {
944 1.46 bouyer printf("Serial ATA capabilities:\n");
945 1.46 bouyer print_bitinfo("\t", "\n", inqbuf->atap_sata_caps, ata_sata_caps);
946 1.46 bouyer }
947 1.46 bouyer
948 1.46 bouyer if (inqbuf->atap_sata_features_supp != 0 && inqbuf->atap_sata_features_supp != 0xffff) {
949 1.46 bouyer printf("Serial ATA features:\n");
950 1.46 bouyer if (inqbuf->atap_sata_features_en != 0 && inqbuf->atap_sata_features_en != 0xffff)
951 1.46 bouyer print_bitinfo2("\t", "\n", inqbuf->atap_sata_features_supp, inqbuf->atap_sata_features_en, ata_sata_feat);
952 1.46 bouyer else
953 1.46 bouyer print_bitinfo("\t", "\n", inqbuf->atap_sata_features_supp, ata_sata_feat);
954 1.46 bouyer }
955 1.46 bouyer
956 1.1 kenh return;
957 1.1 kenh }
958 1.1 kenh
959 1.1 kenh /*
960 1.1 kenh * device idle:
961 1.1 kenh *
962 1.1 kenh * issue the IDLE IMMEDIATE command to the drive
963 1.1 kenh */
964 1.1 kenh void
965 1.13 simonb device_idle(int argc, char *argv[])
966 1.1 kenh {
967 1.1 kenh struct atareq req;
968 1.1 kenh
969 1.1 kenh /* No arguments. */
970 1.1 kenh if (argc != 0)
971 1.5 soren usage();
972 1.1 kenh
973 1.1 kenh memset(&req, 0, sizeof(req));
974 1.1 kenh
975 1.1 kenh if (strcmp(cmdname, "idle") == 0)
976 1.1 kenh req.command = WDCC_IDLE_IMMED;
977 1.1 kenh else if (strcmp(cmdname, "standby") == 0)
978 1.1 kenh req.command = WDCC_STANDBY_IMMED;
979 1.1 kenh else
980 1.1 kenh req.command = WDCC_SLEEP;
981 1.1 kenh
982 1.1 kenh req.timeout = 1000;
983 1.1 kenh
984 1.1 kenh ata_command(&req);
985 1.1 kenh
986 1.1 kenh return;
987 1.1 kenh }
988 1.1 kenh
989 1.1 kenh /*
990 1.48 christos * device apm:
991 1.48 christos *
992 1.48 christos * enable/disable/control the APM feature of the drive
993 1.48 christos */
994 1.48 christos void
995 1.48 christos device_apm(int argc, char *argv[])
996 1.48 christos {
997 1.48 christos struct atareq req;
998 1.48 christos long l;
999 1.48 christos
1000 1.48 christos memset(&req, 0, sizeof(req));
1001 1.48 christos if (argc >= 1) {
1002 1.48 christos req.command = SET_FEATURES;
1003 1.48 christos req.timeout = 1000;
1004 1.48 christos
1005 1.48 christos if (strcmp(argv[0], "disable") == 0)
1006 1.48 christos req.features = WDSF_APM_DS;
1007 1.48 christos else if (strcmp(argv[0], "set") == 0 && argc >= 2 &&
1008 1.48 christos (l = strtol(argv[1], NULL, 0)) >= 0 && l <= 253) {
1009 1.48 christos
1010 1.48 christos req.features = WDSF_APM_EN;
1011 1.48 christos req.sec_count = l + 1;
1012 1.48 christos } else
1013 1.48 christos usage();
1014 1.48 christos } else
1015 1.48 christos usage();
1016 1.48 christos
1017 1.48 christos ata_command(&req);
1018 1.48 christos }
1019 1.48 christos
1020 1.48 christos
1021 1.48 christos /*
1022 1.1 kenh * Set the idle timer on the disk. Set it for either idle mode or
1023 1.1 kenh * standby mode, depending on how we were invoked.
1024 1.1 kenh */
1025 1.1 kenh
1026 1.1 kenh void
1027 1.13 simonb device_setidle(int argc, char *argv[])
1028 1.1 kenh {
1029 1.1 kenh unsigned long idle;
1030 1.1 kenh struct atareq req;
1031 1.1 kenh char *end;
1032 1.1 kenh
1033 1.1 kenh /* Only one argument */
1034 1.1 kenh if (argc != 1)
1035 1.5 soren usage();
1036 1.1 kenh
1037 1.1 kenh idle = strtoul(argv[0], &end, 0);
1038 1.1 kenh
1039 1.1 kenh if (*end != '\0') {
1040 1.1 kenh fprintf(stderr, "Invalid idle time: \"%s\"\n", argv[0]);
1041 1.1 kenh exit(1);
1042 1.1 kenh }
1043 1.1 kenh
1044 1.1 kenh if (idle > 19800) {
1045 1.1 kenh fprintf(stderr, "Idle time has a maximum value of 5.5 "
1046 1.1 kenh "hours\n");
1047 1.1 kenh exit(1);
1048 1.1 kenh }
1049 1.1 kenh
1050 1.1 kenh if (idle != 0 && idle < 5) {
1051 1.1 kenh fprintf(stderr, "Idle timer must be at least 5 seconds\n");
1052 1.1 kenh exit(1);
1053 1.1 kenh }
1054 1.1 kenh
1055 1.1 kenh memset(&req, 0, sizeof(req));
1056 1.1 kenh
1057 1.1 kenh if (idle <= 240*5)
1058 1.1 kenh req.sec_count = idle / 5;
1059 1.1 kenh else
1060 1.1 kenh req.sec_count = idle / (30*60) + 240;
1061 1.1 kenh
1062 1.1 kenh req.command = cmdname[3] == 's' ? WDCC_STANDBY : WDCC_IDLE;
1063 1.1 kenh req.timeout = 1000;
1064 1.1 kenh
1065 1.1 kenh ata_command(&req);
1066 1.1 kenh
1067 1.1 kenh return;
1068 1.3 kenh }
1069 1.3 kenh
1070 1.3 kenh /*
1071 1.3 kenh * Query the device for the current power mode
1072 1.3 kenh */
1073 1.3 kenh
1074 1.3 kenh void
1075 1.13 simonb device_checkpower(int argc, char *argv[])
1076 1.3 kenh {
1077 1.3 kenh struct atareq req;
1078 1.3 kenh
1079 1.3 kenh /* No arguments. */
1080 1.3 kenh if (argc != 0)
1081 1.5 soren usage();
1082 1.3 kenh
1083 1.3 kenh memset(&req, 0, sizeof(req));
1084 1.3 kenh
1085 1.3 kenh req.command = WDCC_CHECK_PWR;
1086 1.3 kenh req.timeout = 1000;
1087 1.3 kenh req.flags = ATACMD_READREG;
1088 1.3 kenh
1089 1.3 kenh ata_command(&req);
1090 1.3 kenh
1091 1.3 kenh printf("Current power status: ");
1092 1.3 kenh
1093 1.3 kenh switch (req.sec_count) {
1094 1.3 kenh case 0x00:
1095 1.3 kenh printf("Standby mode\n");
1096 1.3 kenh break;
1097 1.3 kenh case 0x80:
1098 1.3 kenh printf("Idle mode\n");
1099 1.3 kenh break;
1100 1.3 kenh case 0xff:
1101 1.3 kenh printf("Active mode\n");
1102 1.3 kenh break;
1103 1.3 kenh default:
1104 1.3 kenh printf("Unknown power code (%02x)\n", req.sec_count);
1105 1.3 kenh }
1106 1.3 kenh
1107 1.15 soren return;
1108 1.15 soren }
1109 1.15 soren
1110 1.15 soren /*
1111 1.15 soren * device_smart:
1112 1.15 soren *
1113 1.15 soren * Display SMART status
1114 1.15 soren */
1115 1.15 soren void
1116 1.15 soren device_smart(int argc, char *argv[])
1117 1.15 soren {
1118 1.15 soren struct atareq req;
1119 1.15 soren unsigned char inbuf[DEV_BSIZE];
1120 1.15 soren unsigned char inbuf2[DEV_BSIZE];
1121 1.15 soren
1122 1.33 mycroft if (argc < 1)
1123 1.15 soren usage();
1124 1.15 soren
1125 1.15 soren if (strcmp(argv[0], "enable") == 0) {
1126 1.20 mycroft memset(&req, 0, sizeof(req));
1127 1.15 soren
1128 1.20 mycroft req.features = WDSM_ENABLE_OPS;
1129 1.20 mycroft req.command = WDCC_SMART;
1130 1.35 fvdl req.cylinder = WDSMART_CYL;
1131 1.20 mycroft req.timeout = 1000;
1132 1.15 soren
1133 1.20 mycroft ata_command(&req);
1134 1.15 soren
1135 1.20 mycroft is_smart();
1136 1.15 soren } else if (strcmp(argv[0], "disable") == 0) {
1137 1.20 mycroft memset(&req, 0, sizeof(req));
1138 1.15 soren
1139 1.20 mycroft req.features = WDSM_DISABLE_OPS;
1140 1.20 mycroft req.command = WDCC_SMART;
1141 1.35 fvdl req.cylinder = WDSMART_CYL;
1142 1.20 mycroft req.timeout = 1000;
1143 1.15 soren
1144 1.20 mycroft ata_command(&req);
1145 1.15 soren
1146 1.20 mycroft is_smart();
1147 1.16 soren } else if (strcmp(argv[0], "status") == 0) {
1148 1.43 xtraeme int rv;
1149 1.43 xtraeme
1150 1.43 xtraeme rv = is_smart();
1151 1.43 xtraeme
1152 1.43 xtraeme if (!rv) {
1153 1.24 lha fprintf(stderr, "SMART not supported\n");
1154 1.24 lha return;
1155 1.43 xtraeme } else if (rv == 3)
1156 1.43 xtraeme return;
1157 1.24 lha
1158 1.43 xtraeme memset(&inbuf, 0, sizeof(inbuf));
1159 1.43 xtraeme memset(&req, 0, sizeof(req));
1160 1.15 soren
1161 1.43 xtraeme req.features = WDSM_STATUS;
1162 1.43 xtraeme req.command = WDCC_SMART;
1163 1.43 xtraeme req.cylinder = WDSMART_CYL;
1164 1.43 xtraeme req.timeout = 1000;
1165 1.15 soren
1166 1.43 xtraeme ata_command(&req);
1167 1.15 soren
1168 1.43 xtraeme if (req.cylinder != WDSMART_CYL) {
1169 1.43 xtraeme fprintf(stderr, "Threshold exceeds condition\n");
1170 1.43 xtraeme }
1171 1.15 soren
1172 1.43 xtraeme /* WDSM_RD_DATA and WDSM_RD_THRESHOLDS are optional
1173 1.43 xtraeme * features, the following ata_command()'s may error
1174 1.43 xtraeme * and exit().
1175 1.43 xtraeme */
1176 1.15 soren
1177 1.43 xtraeme memset(&inbuf, 0, sizeof(inbuf));
1178 1.43 xtraeme memset(&req, 0, sizeof(req));
1179 1.15 soren
1180 1.43 xtraeme req.flags = ATACMD_READ;
1181 1.43 xtraeme req.features = WDSM_RD_DATA;
1182 1.43 xtraeme req.command = WDCC_SMART;
1183 1.43 xtraeme req.databuf = (caddr_t) inbuf;
1184 1.43 xtraeme req.datalen = sizeof(inbuf);
1185 1.43 xtraeme req.cylinder = WDSMART_CYL;
1186 1.43 xtraeme req.timeout = 1000;
1187 1.15 soren
1188 1.43 xtraeme ata_command(&req);
1189 1.15 soren
1190 1.43 xtraeme memset(&inbuf2, 0, sizeof(inbuf2));
1191 1.43 xtraeme memset(&req, 0, sizeof(req));
1192 1.15 soren
1193 1.43 xtraeme req.flags = ATACMD_READ;
1194 1.43 xtraeme req.features = WDSM_RD_THRESHOLDS;
1195 1.43 xtraeme req.command = WDCC_SMART;
1196 1.43 xtraeme req.databuf = (caddr_t) inbuf2;
1197 1.43 xtraeme req.datalen = sizeof(inbuf2);
1198 1.43 xtraeme req.cylinder = WDSMART_CYL;
1199 1.43 xtraeme req.timeout = 1000;
1200 1.15 soren
1201 1.43 xtraeme ata_command(&req);
1202 1.15 soren
1203 1.43 xtraeme print_smart_status(inbuf, inbuf2);
1204 1.24 lha
1205 1.33 mycroft } else if (strcmp(argv[0], "offline") == 0) {
1206 1.34 soren if (argc != 2)
1207 1.34 soren usage();
1208 1.33 mycroft if (!is_smart()) {
1209 1.33 mycroft fprintf(stderr, "SMART not supported\n");
1210 1.33 mycroft return;
1211 1.33 mycroft }
1212 1.33 mycroft
1213 1.33 mycroft memset(&req, 0, sizeof(req));
1214 1.33 mycroft
1215 1.33 mycroft req.features = WDSM_EXEC_OFFL_IMM;
1216 1.33 mycroft req.command = WDCC_SMART;
1217 1.35 fvdl req.cylinder = WDSMART_CYL;
1218 1.33 mycroft req.sec_num = atol(argv[1]);
1219 1.33 mycroft req.timeout = 10000;
1220 1.33 mycroft
1221 1.33 mycroft ata_command(&req);
1222 1.33 mycroft } else if (strcmp(argv[0], "error-log") == 0) {
1223 1.33 mycroft if (!is_smart()) {
1224 1.33 mycroft fprintf(stderr, "SMART not supported\n");
1225 1.33 mycroft return;
1226 1.33 mycroft }
1227 1.33 mycroft
1228 1.33 mycroft memset(&inbuf, 0, sizeof(inbuf));
1229 1.33 mycroft memset(&req, 0, sizeof(req));
1230 1.33 mycroft
1231 1.33 mycroft req.flags = ATACMD_READ;
1232 1.33 mycroft req.features = WDSM_RD_LOG;
1233 1.33 mycroft req.sec_count = 1;
1234 1.33 mycroft req.sec_num = 1;
1235 1.33 mycroft req.command = WDCC_SMART;
1236 1.33 mycroft req.databuf = (caddr_t) inbuf;
1237 1.33 mycroft req.datalen = sizeof(inbuf);
1238 1.35 fvdl req.cylinder = WDSMART_CYL;
1239 1.33 mycroft req.timeout = 1000;
1240 1.33 mycroft
1241 1.33 mycroft ata_command(&req);
1242 1.33 mycroft
1243 1.33 mycroft print_error(inbuf);
1244 1.24 lha } else if (strcmp(argv[0], "selftest-log") == 0) {
1245 1.24 lha if (!is_smart()) {
1246 1.15 soren fprintf(stderr, "SMART not supported\n");
1247 1.24 lha return;
1248 1.15 soren }
1249 1.24 lha
1250 1.24 lha memset(&inbuf, 0, sizeof(inbuf));
1251 1.24 lha memset(&req, 0, sizeof(req));
1252 1.24 lha
1253 1.24 lha req.flags = ATACMD_READ;
1254 1.24 lha req.features = WDSM_RD_LOG;
1255 1.24 lha req.sec_count = 1;
1256 1.24 lha req.sec_num = 6;
1257 1.24 lha req.command = WDCC_SMART;
1258 1.24 lha req.databuf = (caddr_t) inbuf;
1259 1.24 lha req.datalen = sizeof(inbuf);
1260 1.35 fvdl req.cylinder = WDSMART_CYL;
1261 1.24 lha req.timeout = 1000;
1262 1.24 lha
1263 1.24 lha ata_command(&req);
1264 1.24 lha
1265 1.24 lha print_selftest(inbuf);
1266 1.24 lha
1267 1.15 soren } else {
1268 1.15 soren usage();
1269 1.15 soren }
1270 1.3 kenh return;
1271 1.1 kenh }
1272 1.30 bouyer
1273 1.38 drochner void
1274 1.38 drochner device_security(int argc, char *argv[])
1275 1.38 drochner {
1276 1.38 drochner struct atareq req;
1277 1.38 drochner struct ataparams *inqbuf;
1278 1.38 drochner
1279 1.38 drochner /* need subcommand */
1280 1.38 drochner if (argc < 1)
1281 1.38 drochner usage();
1282 1.38 drochner
1283 1.38 drochner if (strcmp(argv[0], "freeze") == 0) {
1284 1.38 drochner memset(&req, 0, sizeof(req));
1285 1.44 xtraeme req.command = WDCC_SECURITY_FREEZE;
1286 1.38 drochner req.timeout = 1000;
1287 1.38 drochner ata_command(&req);
1288 1.38 drochner } else if (strcmp(argv[0], "status") == 0) {
1289 1.38 drochner inqbuf = getataparams();
1290 1.38 drochner print_bitinfo("\t", "\n", inqbuf->atap_sec_st, ata_sec_st);
1291 1.38 drochner } else
1292 1.38 drochner usage();
1293 1.38 drochner
1294 1.38 drochner return;
1295 1.38 drochner }
1296 1.38 drochner
1297 1.30 bouyer /*
1298 1.30 bouyer * bus_reset:
1299 1.30 bouyer * Reset an ATA bus (will reset all devices on the bus)
1300 1.30 bouyer */
1301 1.30 bouyer void
1302 1.30 bouyer bus_reset(int argc, char *argv[])
1303 1.30 bouyer {
1304 1.30 bouyer int error;
1305 1.30 bouyer
1306 1.30 bouyer /* no args */
1307 1.30 bouyer if (argc != 0)
1308 1.30 bouyer usage();
1309 1.30 bouyer
1310 1.30 bouyer error = ioctl(fd, ATABUSIORESET, NULL);
1311 1.30 bouyer
1312 1.30 bouyer if (error == -1)
1313 1.30 bouyer err(1, "ATABUSIORESET failed");
1314 1.30 bouyer }
1315