| 1 | /* |
| 2 | * freediag - Vehicle Diagnostic Utility |
| 3 | * |
| 4 | * |
| 5 | * Copyright (C) 2017, 2023 Adam Goldman |
| 6 | * |
| 7 | * This program is free software; you can redistribute it and/or modify |
| 8 | * it under the terms of the GNU General Public License as published by |
| 9 | * the Free Software Foundation; either version 2 of the License, or |
| 10 | * (at your option) any later version. |
| 11 | * |
| 12 | * This program is distributed in the hope that it will be useful, |
| 13 | * but WITHOUT ANY WARRANTY; without even the implied warranty of |
| 14 | * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the |
| 15 | * GNU General Public License for more details. |
| 16 | * |
| 17 | * You should have received a copy of the GNU General Public License |
| 18 | * along with this program; if not, write to the Free Software |
| 19 | * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. |
| 20 | * |
| 21 | ************************************************************************* |
| 22 | * |
| 23 | * Diag |
| 24 | * |
| 25 | * Volvo D2 protocol application layer |
| 26 | * |
| 27 | * This protocol is used by the engine and chassis ECUs for extended |
| 28 | * diagnostics on the 1996-1998 Volvo 850, S40, C70, S70, V70, XC70, V90 and |
| 29 | * possibly other models. On the aforementioned models, it is used over the |
| 30 | * K-line (diag_l2_d2). It seems that the same protocol is also used over |
| 31 | * CAN bus on more recent models. |
| 32 | * |
| 33 | * Information on this protocol is available at: |
| 34 | * http://jonesrh.info/volvo850/volvo_850_obdii_faq.rtf |
| 35 | * Thanks to Richard H. Jones for sharing this information. |
| 36 | * |
| 37 | */ |
| 38 | |
| 39 | #include <stdint.h> |
| 40 | #include <stdbool.h> |
| 41 | #include <string.h> |
| 42 | #include <stdio.h> |
| 43 | |
| 44 | #include "diag.h" |
| 45 | #include "diag_err.h" |
| 46 | #include "diag_l2.h" |
| 47 | #include "diag_l7_d2.h" |
| 48 | |
| 49 | /* |
| 50 | * Service Identifier hex values are in the manufacturer defined range. |
| 51 | * The service names used here are based on KWP2000. Original service names |
| 52 | * are unknown. Request and response message formats for these services are |
| 53 | * NOT according to KWP2000. |
| 54 | */ |
| 55 | enum { |
| 56 | stopDiagnosticSession = 0xA0, |
| 57 | testerPresent = 0xA1, |
| 58 | readDataByLocalIdentifier = 0xA5, |
| 59 | readDataByLongLocalIdentifier = 0xA6, /* CAN bus only? */ |
| 60 | readMemoryByAddress = 0xA7, |
| 61 | readFreezeFrameByDTC = 0xAD, |
| 62 | readDiagnosticTroubleCodes = 0xAE, |
| 63 | clearDiagnosticInformation = 0xAF, |
| 64 | inputOutputControlByLocalIdentifier = 0xB0, |
| 65 | startRoutineByLocalIdentifier = 0xB2, |
| 66 | readNVByLocalIdentifier = 0xB9 |
| 67 | } service_id; |
| 68 | |
| 69 | /* |
| 70 | * Indicates whether a response was a positive acknowledgement of the request. |
| 71 | */ |
| 72 | static bool success_p(struct diag_msg *req, struct diag_msg *resp) { |
| 73 | if (resp->len < 1) { |
| 74 | return false; |
| 75 | } |
| 76 | |
| 77 | if (resp->data[0] != (req->data[0] ^ 0x40)) { |
| 78 | return false; |
| 79 | } |
| 80 | |
| 81 | if (resp->len > 2 && resp->data[1] != req->data[1]) { |
| 82 | return false; |
| 83 | } |
| 84 | |
| 85 | return true; |
| 86 | } |
| 87 | |
| 88 | /* |
| 89 | * Verify communication with the ECU. |
| 90 | */ |
| 91 | int diag_l7_d2_ping(struct diag_l2_conn *d_l2_conn) { |
| 92 | uint8_t req[] = { testerPresent }; |
| 93 | int errval = 0; |
| 94 | struct diag_msg msg = {0}; |
| 95 | struct diag_msg *resp = NULL; |
| 96 | |
| 97 | msg.data = req; |
| 98 | msg.len = sizeof(req); |
| 99 | |
| 100 | resp = diag_l2_request(d_l2_conn, &msg, &errval); |
| 101 | if (resp == NULL) { |
| 102 | return errval; |
| 103 | } |
| 104 | |
| 105 | if (success_p(&msg, resp)) { |
| 106 | diag_freemsg(resp); |
| 107 | return 0; |
| 108 | } |
| 109 | |
| 110 | diag_freemsg(resp); |
| 111 | return DIAG_ERR_ECUSAIDNO; |
| 112 | } |
| 113 | |
| 114 | /* The request message for reading memory */ |
| 115 | static int read_MEMORY_req(uint8_t **msgout, unsigned int *msglen, uint16_t addr, uint8_t count) { |
| 116 | static uint8_t req[] = { readMemoryByAddress, 0, 99, 99, 1, 99 }; |
| 117 | |
| 118 | req[2] = (addr>>8)&0xff; |
| 119 | req[3] = addr&0xff; |
| 120 | req[5] = count; |
| 121 | *msgout = req; |
| 122 | *msglen = sizeof(req); |
| 123 | return 0; |
| 124 | } |
| 125 | |
| 126 | /* The request message for reading live data by 1-byte identifier */ |
| 127 | static int read_LIVEDATA_req(uint8_t **msgout, unsigned int *msglen, uint16_t addr, UNUSED(uint8_t count)) { |
| 128 | static uint8_t req[] = { readDataByLocalIdentifier, 99, 1 }; |
| 129 | |
| 130 | req[1] = addr&0xff; |
| 131 | if (addr > 0xff) { |
| 132 | fprintf(stderr, FLFMT "read_LIVEDATA_req invalid address %x\n", FL, addr); |
| 133 | return DIAG_ERR_GENERAL; |
| 134 | } |
| 135 | |
| 136 | *msgout = req; |
| 137 | *msglen = sizeof(req); |
| 138 | return 0; |
| 139 | } |
| 140 | |
| 141 | /* The request message for reading live data by 2-byte ident (CAN bus only?) */ |
| 142 | static int read_LIVEDATA2_req(uint8_t **msgout, unsigned int *msglen, uint16_t addr, UNUSED(uint8_t count)) { |
| 143 | static uint8_t req[] = { readDataByLongLocalIdentifier, 99, 99, 1 }; |
| 144 | req[1] = (addr>>8)&0xff; |
| 145 | req[2] = addr&0xff; |
| 146 | *msgout = req; |
| 147 | *msglen = sizeof(req); |
| 148 | return 0; |
| 149 | } |
| 150 | |
| 151 | /* The request message for reading non-volatile data */ |
| 152 | static int read_NV_req(uint8_t **msgout, unsigned int *msglen, uint16_t addr, UNUSED(uint8_t count)) { |
| 153 | static uint8_t req[] = { readNVByLocalIdentifier, 99 }; |
| 154 | |
| 155 | req[1] = addr&0xff; |
| 156 | if (addr > 0xff) { |
| 157 | fprintf(stderr, FLFMT "read_NV_req invalid address %x\n", FL, addr); |
| 158 | return DIAG_ERR_GENERAL; |
| 159 | } |
| 160 | |
| 161 | *msgout = req; |
| 162 | *msglen = sizeof(req); |
| 163 | return 0; |
| 164 | } |
| 165 | |
| 166 | /* The request message for reading freeze frames */ |
| 167 | static int read_FREEZE_req(uint8_t **msgout, unsigned int *msglen, uint16_t addr, UNUSED(uint8_t count)) { |
| 168 | static uint8_t req[] = { readFreezeFrameByDTC, 99, 0 }; |
| 169 | |
| 170 | req[1] = addr&0xff; |
| 171 | if (addr > 0xff) { |
| 172 | fprintf(stderr, FLFMT "read_FREEZE_req invalid address %x\n", FL, addr); |
| 173 | return DIAG_ERR_GENERAL; |
| 174 | } |
| 175 | |
| 176 | *msgout = req; |
| 177 | *msglen = sizeof(req); |
| 178 | return 0; |
| 179 | } |
| 180 | |
| 181 | /* |
| 182 | * Read memory, live data or non-volatile data. |
| 183 | * |
| 184 | * Return value is actual byte count received, or negative on failure. |
| 185 | * |
| 186 | * For memory reads, a successful read always copies the exact number of bytes |
| 187 | * requested into the output buffer. |
| 188 | * |
| 189 | * For live data, non-volatile data and freeze frame reads, copies up to the |
| 190 | * number of bytes requested. Returns the actual byte count received, which may |
| 191 | * be more or less than the number of bytes requested. |
| 192 | */ |
| 193 | int diag_l7_d2_read(struct diag_l2_conn *d_l2_conn, enum l7_namespace ns, uint16_t addr, int buflen, uint8_t *out) { |
| 194 | struct diag_msg req = {0}; |
| 195 | struct diag_msg *resp = NULL; |
| 196 | int datalen; |
| 197 | int rv; |
| 198 | |
| 199 | switch (ns) { |
| 200 | case NS_MEMORY: |
| 201 | rv = read_MEMORY_req(&req.data, &req.len, addr, buflen); |
| 202 | break; |
| 203 | case NS_LIVEDATA: |
| 204 | rv = read_LIVEDATA_req(&req.data, &req.len, addr, buflen); |
| 205 | break; |
| 206 | case NS_LIVEDATA2: |
| 207 | rv = read_LIVEDATA2_req(&req.data, &req.len, addr, buflen); |
| 208 | break; |
| 209 | case NS_NV: |
| 210 | rv = read_NV_req(&req.data, &req.len, addr, buflen); |
| 211 | break; |
| 212 | case NS_FREEZE: |
| 213 | rv = read_FREEZE_req(&req.data, &req.len, addr, buflen); |
| 214 | break; |
| 215 | default: |
| 216 | fprintf(stderr, FLFMT "diag_l7_d2_read invalid namespace %d\n", FL, ns); |
| 217 | return DIAG_ERR_GENERAL; |
| 218 | } |
| 219 | |
| 220 | if (rv != 0) { |
| 221 | return rv; |
| 222 | } |
| 223 | |
| 224 | resp = diag_l2_request(d_l2_conn, &req, &rv); |
| 225 | if (resp == NULL) { |
| 226 | return rv; |
| 227 | } |
| 228 | |
| 229 | if (resp->len<2 || !success_p(&req, resp)) { |
| 230 | diag_freemsg(resp); |
| 231 | return DIAG_ERR_ECUSAIDNO; |
| 232 | } |
| 233 | |
| 234 | if (ns==NS_MEMORY) { |
| 235 | if (resp->len!=(unsigned int)buflen+4 || memcmp(req.data+1, resp->data+1, 3)!=0) { |
| 236 | diag_freemsg(resp); |
| 237 | return DIAG_ERR_ECUSAIDNO; |
| 238 | } |
| 239 | memcpy(out, resp->data+4, buflen); |
| 240 | diag_freemsg(resp); |
| 241 | return buflen; |
| 242 | } |
| 243 | |
| 244 | datalen = resp->len - 2; |
| 245 | if (datalen > 0) { |
| 246 | memcpy(out, resp->data + 2, |
| 247 | (datalen > buflen) ? buflen : datalen); |
| 248 | } |
| 249 | diag_freemsg(resp); |
| 250 | return datalen; |
| 251 | } |
| 252 | |
| 253 | /* |
| 254 | * Retrieve list of stored DTCs. |
| 255 | */ |
| 256 | int diag_l7_d2_dtclist(struct diag_l2_conn *d_l2_conn, int buflen, uint8_t *out) { |
| 257 | uint8_t req[] = { readDiagnosticTroubleCodes, 1 }; |
| 258 | int errval = 0; |
| 259 | struct diag_msg msg = {0}; |
| 260 | struct diag_msg *resp = NULL; |
| 261 | int count; |
| 262 | |
| 263 | msg.data = req; |
| 264 | msg.len = sizeof(req); |
| 265 | |
| 266 | resp = diag_l2_request(d_l2_conn, &msg, &errval); |
| 267 | if (resp == NULL) { |
| 268 | return errval; |
| 269 | } |
| 270 | |
| 271 | if (resp->len<2 || !success_p(&msg, resp)) { |
| 272 | diag_freemsg(resp); |
| 273 | return DIAG_ERR_ECUSAIDNO; |
| 274 | } |
| 275 | |
| 276 | count = resp->len - 2; |
| 277 | memcpy(out, resp->data+2, (buflen<count)?buflen:count); |
| 278 | |
| 279 | if (resp->len == 14) { |
| 280 | /* |
| 281 | * If there are more than 12 DTCs, ECU will send multiple |
| 282 | * responses to a single readDiagnosticTroubleCodes request. |
| 283 | * Currently we just try to throw away any additional DTCs |
| 284 | * after the first response message. |
| 285 | */ |
| 286 | (void)diag_l2_recv(d_l2_conn, 1000, NULL, NULL); |
| 287 | fprintf(stderr, "Warning: retrieving only first 12 DTCs\n"); |
| 288 | } |
| 289 | |
| 290 | diag_freemsg(resp); |
| 291 | return count; |
| 292 | } |
| 293 | |
| 294 | /* |
| 295 | * Attempt to clear stored DTCs. |
| 296 | * |
| 297 | * Returns 0 if there were no DTCs, 1 if there was at least one DTC and the |
| 298 | * ECU returned positive acknowledgement for the clear request, <0 for errors. |
| 299 | */ |
| 300 | int diag_l7_d2_cleardtc(struct diag_l2_conn *d_l2_conn) { |
| 301 | uint8_t req[] = { clearDiagnosticInformation, 1 }; |
| 302 | uint8_t buf[1]; |
| 303 | struct diag_msg msg = {0}; |
| 304 | struct diag_msg *resp = NULL; |
| 305 | int rv; |
| 306 | |
| 307 | /* |
| 308 | * ECU will reject clearDiagnosticInformation unless preceded by |
| 309 | * readDiagnosticTroubleCodes. |
| 310 | */ |
| 311 | rv = diag_l7_d2_dtclist(d_l2_conn, sizeof(buf), buf); |
| 312 | if (rv < 0) { |
| 313 | return rv; |
| 314 | } |
| 315 | if (rv == 0) { |
| 316 | return 0; |
| 317 | } |
| 318 | |
| 319 | msg.data = req; |
| 320 | msg.len = sizeof(req); |
| 321 | resp = diag_l2_request(d_l2_conn, &msg, &rv); |
| 322 | if (resp == NULL) { |
| 323 | return rv; |
| 324 | } |
| 325 | |
| 326 | if (resp->len==2 && success_p(&msg, resp)) { |
| 327 | diag_freemsg(resp); |
| 328 | return 1; |
| 329 | } |
| 330 | |
| 331 | diag_freemsg(resp); |
| 332 | return DIAG_ERR_ECUSAIDNO; |
| 333 | } |
| 334 | |
| 335 | /* |
| 336 | * Activate an output or substitute an input or internal value. |
| 337 | * |
| 338 | * The ECU will activate the specified output the requested number of times, |
| 339 | * or until the diagnostic session is stopped. The duration of each activation |
| 340 | * cycle depends on which output is specified. |
| 341 | */ |
| 342 | int diag_l7_d2_io_control(struct diag_l2_conn *d_l2_conn, uint8_t id, uint8_t reps) { |
| 343 | uint8_t long_req[] = { inputOutputControlByLocalIdentifier, id, 0x32, reps }; |
| 344 | uint8_t short_req[] = { inputOutputControlByLocalIdentifier, id }; |
| 345 | struct diag_msg msg = {0}; |
| 346 | struct diag_msg *resp = NULL; |
| 347 | int rv; |
| 348 | |
| 349 | if (reps > 0) { |
| 350 | msg.data = long_req; |
| 351 | msg.len = sizeof(long_req); |
| 352 | } else { |
| 353 | msg.data = short_req; |
| 354 | msg.len = sizeof(short_req); |
| 355 | } |
| 356 | |
| 357 | resp = diag_l2_request(d_l2_conn, &msg, &rv); |
| 358 | if (resp == NULL) { |
| 359 | return rv; |
| 360 | } |
| 361 | |
| 362 | if (resp->len==2 && success_p(&msg, resp)) { |
| 363 | diag_freemsg(resp); |
| 364 | return 0; |
| 365 | } |
| 366 | |
| 367 | /* |
| 368 | * ECU returns 7F B0 11 for invalid ID, or 7F B0 21 if a |
| 369 | * previous inputOutputControlByLocalIdentifier is still in |
| 370 | * progress. For now we return DIAG_ERR_ECUSAIDNO for any |
| 371 | * error code. |
| 372 | */ |
| 373 | diag_freemsg(resp); |
| 374 | return DIAG_ERR_ECUSAIDNO; |
| 375 | } |
| 376 | |
| 377 | /* |
| 378 | * Start a routine. |
| 379 | */ |
| 380 | int diag_l7_d2_run_routine(struct diag_l2_conn *d_l2_conn, uint8_t id) { |
| 381 | uint8_t req[] = { startRoutineByLocalIdentifier, id }; |
| 382 | struct diag_msg msg = {0}; |
| 383 | struct diag_msg *resp = NULL; |
| 384 | int rv; |
| 385 | |
| 386 | msg.data = req; |
| 387 | msg.len = sizeof(req); |
| 388 | resp = diag_l2_request(d_l2_conn, &msg, &rv); |
| 389 | if (resp == NULL) { |
| 390 | return rv; |
| 391 | } |
| 392 | |
| 393 | if (resp->len==2 && success_p(&msg, resp)) { |
| 394 | diag_freemsg(resp); |
| 395 | return 0; |
| 396 | } |
| 397 | |
| 398 | diag_freemsg(resp); |
| 399 | return DIAG_ERR_ECUSAIDNO; |
| 400 | } |
| 401 | |