1 /*-
2 * Copyright (c) 2014, Alexander V. Chernikov
3 * Copyright (c) 2020, Ryan Moeller <freqlabs@FreeBSD.org>
4 *
5 * Redistribution and use in source and binary forms, with or without
6 * modification, are permitted provided that the following conditions
7 * are met:
8 * 1. Redistributions of source code must retain the above copyright
9 * notice, this list of conditions and the following disclaimer.
10 * 2. Redistributions in binary form must reproduce the above copyright
11 * notice, this list of conditions and the following disclaimer in the
12 * documentation and/or other materials provided with the distribution.
13 *
14 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
15 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
16 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
17 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
18 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
19 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
20 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
21 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
22 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
23 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
24 * SUCH DAMAGE.
25 */
26
27 #define _WANT_SFF_8024_ID
28
29 #include <sys/types.h>
30 #include <sys/param.h>
31 #include <sys/ioctl.h>
32 #include <sys/socket.h>
33
34 #include <net/if.h>
35 #include <net/sff8436.h>
36 #include <net/sff8472.h>
37
38 #include <math.h>
39 #include <err.h>
40 #include <errno.h>
41 #include <fcntl.h>
42 #include <stdbool.h>
43 #include <stdio.h>
44 #include <stdlib.h>
45 #include <string.h>
46 #include <unistd.h>
47
48 #include <libifconfig.h>
49 #include <libifconfig_internal.h>
50 #include <libifconfig_sfp.h>
51 #include <libifconfig_sfp_tables_internal.h>
52
53 #define SFF_8636_EXT_COMPLIANCE 0x80
54
55 struct i2c_info {
56 struct ifreq ifr;
57 ifconfig_handle_t *h;
58 int error; /* Store first error */
59 enum sfp_id id; /* Module type */
60 };
61
62 static uint8_t
find_zero_bit(const struct sfp_enum_metadata * table,int value,int sz)63 find_zero_bit(const struct sfp_enum_metadata *table, int value, int sz)
64 {
65 int v, m;
66
67 for (v = 1, m = 1 << (8 * sz); v < m; v <<= 1) {
68 if ((value & v) == 0)
69 continue;
70 if (find_metadata(table, value & v) != NULL) {
71 return (value & v);
72 }
73 }
74 return (0);
75 }
76
77 /*
78 * Reads i2c data from opened kernel socket.
79 */
80 static int
read_i2c(struct i2c_info * ii,uint8_t addr,uint8_t off,uint8_t len,uint8_t * buf)81 read_i2c(struct i2c_info *ii, uint8_t addr, uint8_t off, uint8_t len,
82 uint8_t *buf)
83 {
84 struct ifi2creq req;
85 int i, l;
86
87 if (ii->error != 0)
88 return (ii->error);
89
90 ii->ifr.ifr_data = (caddr_t)&req;
91
92 i = 0;
93 l = 0;
94 memset(&req, 0, sizeof(req));
95 req.dev_addr = addr;
96 req.offset = off;
97 req.len = len;
98
99 while (len > 0) {
100 l = MIN(sizeof(req.data), len);
101 req.len = l;
102 if (ifconfig_ioctlwrap(ii->h, AF_LOCAL, SIOCGI2C,
103 &ii->ifr) != 0) {
104 ii->error = errno;
105 return (errno);
106 }
107
108 memcpy(&buf[i], req.data, l);
109 len -= l;
110 i += l;
111 req.offset += l;
112 }
113
114 return (0);
115 }
116
117 static int
i2c_info_init(struct i2c_info * ii,ifconfig_handle_t * h,const char * name)118 i2c_info_init(struct i2c_info *ii, ifconfig_handle_t *h, const char *name)
119 {
120 uint8_t id_byte;
121
122 memset(ii, 0, sizeof(*ii));
123 strlcpy(ii->ifr.ifr_name, name, sizeof(ii->ifr.ifr_name));
124 ii->h = h;
125
126 /*
127 * Try to read byte 0 from i2c:
128 * Both SFF-8472 and SFF-8436 use it as
129 * 'identification byte'.
130 * Stop reading status on zero as value -
131 * this might happen in case of empty transceiver slot.
132 */
133 id_byte = 0;
134 read_i2c(ii, SFF_8472_BASE, SFF_8472_ID, 1, &id_byte);
135 if (ii->error != 0)
136 return (-1);
137 if (id_byte == 0) {
138 h->error.errtype = OTHER;
139 h->error.errcode = ENOENT;
140 return (-1);
141 }
142 ii->id = id_byte;
143 return (0);
144 }
145
146 static int
get_sfp_info(struct i2c_info * ii,struct ifconfig_sfp_info * sfp)147 get_sfp_info(struct i2c_info *ii, struct ifconfig_sfp_info *sfp)
148 {
149 uint8_t code;
150
151 read_i2c(ii, SFF_8472_BASE, SFF_8472_ID, 1, &sfp->sfp_id);
152 read_i2c(ii, SFF_8472_BASE, SFF_8472_CONNECTOR, 1, &sfp->sfp_conn);
153
154 /* Use extended compliance code if it's valid */
155 read_i2c(ii, SFF_8472_BASE, SFF_8472_TRANS, 1, &sfp->sfp_eth_ext);
156 if (sfp->sfp_eth_ext == 0) {
157 /* Next, check 10G Ethernet/IB CCs */
158 read_i2c(ii, SFF_8472_BASE, SFF_8472_TRANS_START, 1, &code);
159 sfp->sfp_eth_10g = find_zero_bit(sfp_eth_10g_table, code, 1);
160 if (sfp->sfp_eth_10g == 0) {
161 /* No match. Try Ethernet 1G */
162 read_i2c(ii, SFF_8472_BASE, SFF_8472_TRANS_START + 3,
163 1, &code);
164 sfp->sfp_eth = find_zero_bit(sfp_eth_table, code, 1);
165 }
166 }
167
168 return (ii->error);
169 }
170
171 static int
get_qsfp_info(struct i2c_info * ii,struct ifconfig_sfp_info * sfp)172 get_qsfp_info(struct i2c_info *ii, struct ifconfig_sfp_info *sfp)
173 {
174 uint8_t code;
175
176 read_i2c(ii, SFF_8436_BASE, SFF_8436_ID, 1, &sfp->sfp_id);
177 read_i2c(ii, SFF_8436_BASE, SFF_8436_CONNECTOR, 1, &sfp->sfp_conn);
178
179 read_i2c(ii, SFF_8436_BASE, SFF_8436_STATUS, 1, &sfp->sfp_rev);
180
181 /* Check for extended specification compliance */
182 read_i2c(ii, SFF_8436_BASE, SFF_8436_CODE_E1040100G, 1, &code);
183 if (code & SFF_8636_EXT_COMPLIANCE) {
184 read_i2c(ii, SFF_8436_BASE, SFF_8436_OPTIONS_START, 1,
185 &sfp->sfp_eth_ext);
186 sfp->sfp_eth_1040g = code;
187 } else {
188 /* Check 10/40G Ethernet class only */
189 sfp->sfp_eth_1040g =
190 find_zero_bit(sfp_eth_1040g_table, code, 1);
191 }
192
193 return (ii->error);
194 }
195
196 int
ifconfig_sfp_get_sfp_info(ifconfig_handle_t * h,const char * name,struct ifconfig_sfp_info * sfp)197 ifconfig_sfp_get_sfp_info(ifconfig_handle_t *h,
198 const char *name, struct ifconfig_sfp_info *sfp)
199 {
200 struct i2c_info ii;
201 char buf[8];
202
203 memset(sfp, 0, sizeof(*sfp));
204
205 if (i2c_info_init(&ii, h, name) != 0)
206 return (-1);
207
208 /* Read bytes 3-10 at once */
209 read_i2c(&ii, SFF_8472_BASE, SFF_8472_TRANS_START, 8, buf);
210 if (ii.error != 0)
211 return (ii.error);
212
213 /* Check 10G ethernet first */
214 sfp->sfp_eth_10g = find_zero_bit(sfp_eth_10g_table, buf[0], 1);
215 if (sfp->sfp_eth_10g == 0) {
216 /* No match. Try 1G */
217 sfp->sfp_eth = find_zero_bit(sfp_eth_table, buf[3], 1);
218 }
219 sfp->sfp_fc_len = find_zero_bit(sfp_fc_len_table, buf[4], 1);
220 sfp->sfp_fc_media = find_zero_bit(sfp_fc_media_table, buf[6], 1);
221 sfp->sfp_fc_speed = find_zero_bit(sfp_fc_speed_table, buf[7], 1);
222 sfp->sfp_cab_tech =
223 find_zero_bit(sfp_cab_tech_table, (buf[4] << 8) | buf[5], 2);
224
225 if (ifconfig_sfp_id_is_qsfp(ii.id))
226 return (get_qsfp_info(&ii, sfp));
227 return (get_sfp_info(&ii, sfp));
228 }
229
230 static size_t
channel_count(enum sfp_id id)231 channel_count(enum sfp_id id)
232 {
233 /* TODO: other ids */
234 switch (id) {
235 case SFP_ID_UNKNOWN:
236 return (0);
237 case SFP_ID_QSFP:
238 case SFP_ID_QSFPPLUS:
239 case SFP_ID_QSFP28:
240 return (4);
241 default:
242 return (1);
243 }
244 }
245
246 size_t
ifconfig_sfp_channel_count(const struct ifconfig_sfp_info * sfp)247 ifconfig_sfp_channel_count(const struct ifconfig_sfp_info *sfp)
248 {
249 return (channel_count(sfp->sfp_id));
250 }
251
252 /*
253 * Print SFF-8472/SFF-8436 string to supplied buffer.
254 * All (vendor-specific) strings are padded right with '0x20'.
255 */
256 static void
get_sff_string(struct i2c_info * ii,uint8_t addr,uint8_t off,char * dst)257 get_sff_string(struct i2c_info *ii, uint8_t addr, uint8_t off, char *dst)
258 {
259 read_i2c(ii, addr, off, SFF_VENDOR_STRING_SIZE, dst);
260 dst += SFF_VENDOR_STRING_SIZE;
261 do { *dst-- = '\0'; } while (*dst == 0x20);
262 }
263
264 static void
get_sff_date(struct i2c_info * ii,uint8_t addr,uint8_t off,char * dst)265 get_sff_date(struct i2c_info *ii, uint8_t addr, uint8_t off, char *dst)
266 {
267 char buf[SFF_VENDOR_DATE_SIZE];
268
269 read_i2c(ii, addr, off, SFF_VENDOR_DATE_SIZE, buf);
270 sprintf(dst, "20%c%c-%c%c-%c%c", buf[0], buf[1], buf[2], buf[3],
271 buf[4], buf[5]);
272 }
273
274 static int
get_sfp_vendor_info(struct i2c_info * ii,struct ifconfig_sfp_vendor_info * vi)275 get_sfp_vendor_info(struct i2c_info *ii, struct ifconfig_sfp_vendor_info *vi)
276 {
277 get_sff_string(ii, SFF_8472_BASE, SFF_8472_VENDOR_START, vi->name);
278 get_sff_string(ii, SFF_8472_BASE, SFF_8472_PN_START, vi->pn);
279 get_sff_string(ii, SFF_8472_BASE, SFF_8472_SN_START, vi->sn);
280 get_sff_date(ii, SFF_8472_BASE, SFF_8472_DATE_START, vi->date);
281 return (ii->error);
282 }
283
284 static int
get_qsfp_vendor_info(struct i2c_info * ii,struct ifconfig_sfp_vendor_info * vi)285 get_qsfp_vendor_info(struct i2c_info *ii, struct ifconfig_sfp_vendor_info *vi)
286 {
287 get_sff_string(ii, SFF_8436_BASE, SFF_8436_VENDOR_START, vi->name);
288 get_sff_string(ii, SFF_8436_BASE, SFF_8436_PN_START, vi->pn);
289 get_sff_string(ii, SFF_8436_BASE, SFF_8436_SN_START, vi->sn);
290 get_sff_date(ii, SFF_8436_BASE, SFF_8436_DATE_START, vi->date);
291 return (ii->error);
292 }
293
294 int
ifconfig_sfp_get_sfp_vendor_info(ifconfig_handle_t * h,const char * name,struct ifconfig_sfp_vendor_info * vi)295 ifconfig_sfp_get_sfp_vendor_info(ifconfig_handle_t *h,
296 const char *name, struct ifconfig_sfp_vendor_info *vi)
297 {
298 struct i2c_info ii;
299
300 memset(vi, 0, sizeof(*vi));
301
302 if (i2c_info_init(&ii, h, name) != 0)
303 return (-1);
304
305 if (ifconfig_sfp_id_is_qsfp(ii.id))
306 return (get_qsfp_vendor_info(&ii, vi));
307 return (get_sfp_vendor_info(&ii, vi));
308 }
309
310 /*
311 * Converts internal temperature (SFF-8472, SFF-8436)
312 * 16-bit unsigned value to human-readable representation:
313 *
314 * Internally measured Module temperature are represented
315 * as a 16-bit signed twos complement value in increments of
316 * 1/256 degrees Celsius, yielding a total range of –128C to +128C
317 * that is considered valid between –40 and +125C.
318 */
319 static double
get_sff_temp(struct i2c_info * ii,uint8_t addr,uint8_t off)320 get_sff_temp(struct i2c_info *ii, uint8_t addr, uint8_t off)
321 {
322 double d;
323 uint8_t buf[2];
324
325 read_i2c(ii, addr, off, 2, buf);
326 d = (double)buf[0];
327 d += (double)buf[1] / 256;
328 return (d);
329 }
330
331 /*
332 * Retrieves supplied voltage (SFF-8472, SFF-8436).
333 * 16-bit usigned value, treated as range 0..+6.55 Volts
334 */
335 static double
get_sff_voltage(struct i2c_info * ii,uint8_t addr,uint8_t off)336 get_sff_voltage(struct i2c_info *ii, uint8_t addr, uint8_t off)
337 {
338 double d;
339 uint8_t buf[2];
340
341 read_i2c(ii, addr, off, 2, buf);
342 d = (double)((buf[0] << 8) | buf[1]);
343 return (d / 10000);
344 }
345
346 /*
347 * The following conversions assume internally-calibrated data.
348 * This is always true for SFF-8346, and explicitly checked for SFF-8472.
349 */
350
351 double
power_mW(uint16_t power)352 power_mW(uint16_t power)
353 {
354 /* Power is specified in units of 0.1 uW. */
355 return (1.0 * power / 10000);
356 }
357
358 double
power_dBm(uint16_t power)359 power_dBm(uint16_t power)
360 {
361 return (10.0 * log10(power_mW(power)));
362 }
363
364 double
bias_mA(uint16_t bias)365 bias_mA(uint16_t bias)
366 {
367 /* Bias current is specified in units of 2 uA. */
368 return (1.0 * bias / 500);
369 }
370
371 static uint16_t
get_sff_channel(struct i2c_info * ii,uint8_t addr,uint8_t off)372 get_sff_channel(struct i2c_info *ii, uint8_t addr, uint8_t off)
373 {
374 uint8_t buf[2];
375
376 read_i2c(ii, addr, off, 2, buf);
377 if (ii->error != 0)
378 return (0);
379
380 return ((buf[0] << 8) + buf[1]);
381 }
382
383 static int
get_sfp_status(struct i2c_info * ii,struct ifconfig_sfp_status * ss)384 get_sfp_status(struct i2c_info *ii, struct ifconfig_sfp_status *ss)
385 {
386 uint8_t diag_type, flags;
387
388 /* Read diagnostic monitoring type */
389 read_i2c(ii, SFF_8472_BASE, SFF_8472_DIAG_TYPE, 1, (caddr_t)&diag_type);
390 if (ii->error != 0)
391 return (-1);
392
393 /*
394 * Read monitoring data IFF it is supplied AND is
395 * internally calibrated
396 */
397 flags = SFF_8472_DDM_DONE | SFF_8472_DDM_INTERNAL;
398 if ((diag_type & flags) != flags) {
399 ii->h->error.errtype = OTHER;
400 ii->h->error.errcode = ENXIO;
401 return (-1);
402 }
403
404 ss->temp = get_sff_temp(ii, SFF_8472_DIAG, SFF_8472_TEMP);
405 ss->voltage = get_sff_voltage(ii, SFF_8472_DIAG, SFF_8472_VCC);
406 ss->channel = calloc(channel_count(ii->id), sizeof(*ss->channel));
407 if (ss->channel == NULL) {
408 ii->h->error.errtype = OTHER;
409 ii->h->error.errcode = ENOMEM;
410 return (-1);
411 }
412 ss->channel[0].rx = get_sff_channel(ii, SFF_8472_DIAG, SFF_8472_RX_POWER);
413 ss->channel[0].tx = get_sff_channel(ii, SFF_8472_DIAG, SFF_8472_TX_BIAS);
414 return (ii->error);
415 }
416
417 static uint32_t
get_qsfp_bitrate(struct i2c_info * ii)418 get_qsfp_bitrate(struct i2c_info *ii)
419 {
420 uint8_t code;
421 uint32_t rate;
422
423 code = 0;
424 read_i2c(ii, SFF_8436_BASE, SFF_8436_BITRATE, 1, &code);
425 rate = code * 100;
426 if (code == 0xFF) {
427 read_i2c(ii, SFF_8436_BASE, SFF_8636_BITRATE, 1, &code);
428 rate = code * 250;
429 }
430
431 return (rate);
432 }
433
434 static int
get_qsfp_status(struct i2c_info * ii,struct ifconfig_sfp_status * ss)435 get_qsfp_status(struct i2c_info *ii, struct ifconfig_sfp_status *ss)
436 {
437 size_t channels;
438
439 ss->temp = get_sff_temp(ii, SFF_8436_BASE, SFF_8436_TEMP);
440 ss->voltage = get_sff_voltage(ii, SFF_8436_BASE, SFF_8436_VCC);
441 channels = channel_count(ii->id);
442 ss->channel = calloc(channels, sizeof(*ss->channel));
443 if (ss->channel == NULL) {
444 ii->h->error.errtype = OTHER;
445 ii->h->error.errcode = ENOMEM;
446 return (-1);
447 }
448 for (size_t chan = 0; chan < channels; ++chan) {
449 uint8_t rxoffs = SFF_8436_RX_CH1_MSB + chan * sizeof(uint16_t);
450 uint8_t txoffs = SFF_8436_TX_CH1_MSB + chan * sizeof(uint16_t);
451 ss->channel[chan].rx =
452 get_sff_channel(ii, SFF_8436_BASE, rxoffs);
453 ss->channel[chan].tx =
454 get_sff_channel(ii, SFF_8436_BASE, txoffs);
455 }
456 ss->bitrate = get_qsfp_bitrate(ii);
457 return (ii->error);
458 }
459
460 int
ifconfig_sfp_get_sfp_status(ifconfig_handle_t * h,const char * name,struct ifconfig_sfp_status * ss)461 ifconfig_sfp_get_sfp_status(ifconfig_handle_t *h, const char *name,
462 struct ifconfig_sfp_status *ss)
463 {
464 struct i2c_info ii;
465
466 memset(ss, 0, sizeof(*ss));
467
468 if (i2c_info_init(&ii, h, name) != 0)
469 return (-1);
470
471 if (ifconfig_sfp_id_is_qsfp(ii.id))
472 return (get_qsfp_status(&ii, ss));
473 return (get_sfp_status(&ii, ss));
474 }
475
476 void
ifconfig_sfp_free_sfp_status(struct ifconfig_sfp_status * ss)477 ifconfig_sfp_free_sfp_status(struct ifconfig_sfp_status *ss)
478 {
479 if (ss != NULL)
480 free(ss->channel);
481 }
482
483 static const char *
sfp_id_string_alt(uint8_t value)484 sfp_id_string_alt(uint8_t value)
485 {
486 const char *id;
487
488 if (value <= SFF_8024_ID_LAST)
489 id = sff_8024_id[value];
490 else if (value > 0x80)
491 id = "Vendor specific";
492 else
493 id = "Reserved";
494
495 return (id);
496 }
497
498 static const char *
sfp_conn_string_alt(uint8_t value)499 sfp_conn_string_alt(uint8_t value)
500 {
501 const char *conn;
502
503 if (value >= 0x0D && value <= 0x1F)
504 conn = "Unallocated";
505 else if (value >= 0x24 && value <= 0x7F)
506 conn = "Unallocated";
507 else
508 conn = "Vendor specific";
509
510 return (conn);
511 }
512
513 void
ifconfig_sfp_get_sfp_info_strings(const struct ifconfig_sfp_info * sfp,struct ifconfig_sfp_info_strings * strings)514 ifconfig_sfp_get_sfp_info_strings(const struct ifconfig_sfp_info *sfp,
515 struct ifconfig_sfp_info_strings *strings)
516 {
517 get_sfp_info_strings(sfp, strings);
518 if (strings->sfp_id == NULL)
519 strings->sfp_id = sfp_id_string_alt(sfp->sfp_id);
520 if (strings->sfp_conn == NULL)
521 strings->sfp_conn = sfp_conn_string_alt(sfp->sfp_conn);
522 if (strings->sfp_rev == NULL)
523 strings->sfp_rev = "Unallocated";
524 }
525
526 const char *
ifconfig_sfp_physical_spec(const struct ifconfig_sfp_info * sfp,const struct ifconfig_sfp_info_strings * strings)527 ifconfig_sfp_physical_spec(const struct ifconfig_sfp_info *sfp,
528 const struct ifconfig_sfp_info_strings *strings)
529 {
530 switch (sfp->sfp_id) {
531 case SFP_ID_UNKNOWN:
532 break;
533 case SFP_ID_QSFP:
534 case SFP_ID_QSFPPLUS:
535 case SFP_ID_QSFP28:
536 if (sfp->sfp_eth_1040g & SFP_ETH_1040G_EXTENDED)
537 return (strings->sfp_eth_ext);
538 else if (sfp->sfp_eth_1040g)
539 return (strings->sfp_eth_1040g);
540 break;
541 default:
542 if (sfp->sfp_eth_ext)
543 return (strings->sfp_eth_ext);
544 else if (sfp->sfp_eth_10g)
545 return (strings->sfp_eth_10g);
546 else if (sfp->sfp_eth)
547 return (strings->sfp_eth);
548 break;
549 }
550 return ("Unknown");
551 }
552
553 int
ifconfig_sfp_get_sfp_dump(ifconfig_handle_t * h,const char * name,struct ifconfig_sfp_dump * dump)554 ifconfig_sfp_get_sfp_dump(ifconfig_handle_t *h, const char *name,
555 struct ifconfig_sfp_dump *dump)
556 {
557 struct i2c_info ii;
558 uint8_t *buf = dump->data;
559
560 memset(dump->data, 0, sizeof(dump->data));
561
562 if (i2c_info_init(&ii, h, name) != 0)
563 return (-1);
564
565 if (ifconfig_sfp_id_is_qsfp(ii.id)) {
566 read_i2c(&ii, SFF_8436_BASE, QSFP_DUMP0_START, QSFP_DUMP0_SIZE,
567 buf + QSFP_DUMP0_START);
568 read_i2c(&ii, SFF_8436_BASE, QSFP_DUMP1_START, QSFP_DUMP1_SIZE,
569 buf + QSFP_DUMP1_START);
570 } else {
571 read_i2c(&ii, SFF_8472_BASE, SFP_DUMP_START, SFP_DUMP_SIZE,
572 buf + SFP_DUMP_START);
573 }
574
575 return (ii.error != 0 ? -1 : 0);
576 }
577
578 size_t
ifconfig_sfp_dump_region_count(const struct ifconfig_sfp_dump * dp)579 ifconfig_sfp_dump_region_count(const struct ifconfig_sfp_dump *dp)
580 {
581 uint8_t id_byte = dp->data[0];
582
583 switch ((enum sfp_id)id_byte) {
584 case SFP_ID_UNKNOWN:
585 return (0);
586 case SFP_ID_QSFP:
587 case SFP_ID_QSFPPLUS:
588 case SFP_ID_QSFP28:
589 return (2);
590 default:
591 return (1);
592 }
593 }
594