snmp.c 29 KB

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  1. #include "snmp.h"
  2. #include "lwip/apps/snmp.h"
  3. #include "lwip/apps/snmp_mib2.h"
  4. #include "lwip/apps/snmp_opts.h"
  5. #include "lwip/apps/snmpv3.h" // 如果使用 SNMP v3
  6. #include "lwip/apps/snmp_opts.h"
  7. #include "lwip/apps/snmp_core.h"
  8. #include "lwip/apps/snmp_table.h"
  9. #include "lwip/apps/snmp_scalar.h"
  10. #include "string.h"
  11. #include "power.h"
  12. #include "datadef.h"
  13. #include "sensor.h"
  14. #define SNMP_SMARTPDU_OID {1,3,6,1,4,1,2024}
  15. #define SNMP_SMARTPDU_DEVICE_OID {1,3,6,1,4,1,2024,1}
  16. //#define SNMP_SMARTPDU_CHANNEL_TABLE {1,3,6,1,4,1,2024,1,3,9}
  17. //#define SNMP_SMARTPDU_ALARM_TABLE_IOD {1,3,6,1,4,1,2024,1,6,1}
  18. #define SNMP_SMARTPDU_THR_TABLE_IOD {1,3,6,1,4,1,2024,1,7}
  19. #define SNMP_SMARTPDU_TOTAL_OID {1,3,6,1,4,1,2024,1,3}
  20. typedef struct
  21. {
  22. uint8_t sysdescr[10];
  23. uint8_t syscontact[5];
  24. uint8_t sysname[3];
  25. uint8_t syslocation[3];
  26. struct snmp_obj_id device_enterprose_oid;
  27. // char *id_manifacture;
  28. // char *id_device;
  29. // char *id_sn;
  30. // char *id_version;
  31. // power_all_t all;
  32. }snmp_smarpdu_t;
  33. static snmp_smarpdu_t snmp_smart={
  34. .sysdescr={"Smart_pdu"},
  35. .syscontact={"KyKy"},
  36. .sysname={"Rt"},
  37. .syslocation={"CN"},
  38. .device_enterprose_oid={
  39. .len = 7,
  40. .id = SNMP_SMARTPDU_OID,
  41. },
  42. // .id_manifacture = "Gowone Industry",
  43. // .id_device = "Smart_PDU",
  44. // .id_sn = "SN123465",
  45. // .id_version = "v1.0.0.0",
  46. };
  47. static s16_t sysinfo_get_value(const struct snmp_scalar_array_node_def *node, void *value)
  48. {
  49. char *var = NULL;
  50. s16_t var_len;
  51. char buff[100]= {0};
  52. switch(node->oid)
  53. {
  54. case 1:
  55. {
  56. sprintf(buff,"%d",0);
  57. }
  58. break;
  59. case 2:
  60. {
  61. sprintf(buff,"%s","smart_pdu");
  62. }
  63. break;
  64. case 3:
  65. {
  66. sprintf(buff,"%s","DC");
  67. }
  68. break;
  69. case 4:
  70. {
  71. sprintf(buff,"%s","SN1235");
  72. }
  73. break;
  74. case 5:
  75. {
  76. sprintf(buff,"%d",12);
  77. }
  78. break;
  79. case 6:
  80. {
  81. sprintf(buff,"%d",7);
  82. }
  83. break;
  84. default:
  85. {
  86. LOGE("sysinfo_get_value(): unknown id: %d\n", node->oid);
  87. return 0;
  88. }
  89. }
  90. var_len = strlen(buff);
  91. memcpy(value, buff, var_len);
  92. return var_len;
  93. }
  94. static s16_t total_get_value(const struct snmp_scalar_array_node_def *node, void *value)
  95. {
  96. char *var = NULL;
  97. s16_t var_len;
  98. char buff[100]= {0};
  99. power_all_t *all = power_get_all();
  100. switch(node->oid)
  101. {
  102. case SCALAR_VOLTAGE:
  103. {
  104. sprintf(buff,"%.2f",all->ttl.total[0].voltage);
  105. }
  106. break;
  107. case SCALAR_CURRENT:
  108. {
  109. sprintf(buff,"%.2f",all->ttl.total[0].current);
  110. }
  111. break;
  112. case SCALAR_CONSUMEPTION:
  113. {
  114. sprintf(buff,"%.2f",all->ttl.total[0].consump);
  115. }
  116. break;
  117. case SCALAR_POWER_FACTOR:
  118. {
  119. sprintf(buff,"%.2f",all->ttl.total[0].factor);
  120. }
  121. break;
  122. case SCALAR_PACTIVE_POWER:
  123. {
  124. sprintf(buff,"%.2f",all->ttl.total[0].power);
  125. }
  126. break;
  127. case SCALAR_REACTIVE_POWER:
  128. {
  129. sprintf(buff,"%.2f",all->ttl.total[0].reactive);
  130. }
  131. break;
  132. case SCALAR_APPARENT_POWER:
  133. {
  134. sprintf(buff,"%.2f",all->ttl.total[0].active);
  135. }
  136. break;
  137. default:
  138. return 0;
  139. }
  140. var_len = strlen(buff);
  141. memcpy(value, buff, var_len);
  142. return var_len;
  143. }
  144. #define POWER_VALUE 4
  145. typedef struct power_data{
  146. uint8_t id;
  147. char * name;
  148. uint8_t status;
  149. float v;
  150. float i;
  151. float f;
  152. float c;
  153. float fa;
  154. float p;
  155. float r_p;
  156. float a_p;
  157. }p_data_t;
  158. typedef struct alarm_data{
  159. uint8_t id;
  160. uint8_t type;
  161. char * alarm_info;
  162. uint8_t alarm_action;
  163. uint32_t alarm_action_para;
  164. char * date;
  165. char * time;
  166. }p_alarm_t;
  167. typedef struct threshold_data{
  168. uint8_t id;
  169. char *name;
  170. float v_max;
  171. float v_min;
  172. float i_max;
  173. float p_max;
  174. float c_max;
  175. }thr_d_t;
  176. typedef struct thr_sensor_data{
  177. uint8_t id;
  178. char *name;
  179. uint32_t val1_up;
  180. uint32_t val2_up;
  181. uint32_t val1_down;
  182. uint32_t val2_down;
  183. }thr_s_t;
  184. static p_data_t p_data[POWER_VALUE]={
  185. {
  186. .id = 1,
  187. .name = "smart_pdu",
  188. .status = 1,
  189. .v=220.0,
  190. .i = 15.3,
  191. .f = 48.95,
  192. .c = 20.14,
  193. .fa = 0.89,
  194. .p = 480.12,
  195. .r_p = 520.45,
  196. .a_p = 600.12,
  197. },
  198. {
  199. .id = 2,
  200. .name = "smart_pdu",
  201. .status = 1,
  202. .v=218.0,
  203. .i = 15.3,
  204. .f = 49.95,
  205. .c = 20.14,
  206. .fa = 0.89,
  207. .p = 480.12,
  208. .r_p = 520.45,
  209. .a_p = 600.12,
  210. },
  211. {
  212. .id = 3,
  213. .name = "smart_pdu",
  214. .status = 1,
  215. .v=219.0,
  216. .i = 9.3,
  217. .f = 48.95,
  218. .c = 20.14,
  219. .fa = 0.89,
  220. .p = 100.12,
  221. .r_p = 230.45,
  222. .a_p = 460.12,
  223. },
  224. {
  225. .id = 4,
  226. .name = "smart_pdu",
  227. .status = 0,
  228. .v=220.0,
  229. .i = 15.3,
  230. .f = 48.95,
  231. .c = 20.14,
  232. .fa = 0.89,
  233. .p = 480.12,
  234. .r_p = 520.45,
  235. .a_p = 600.12,
  236. },
  237. };
  238. static thr_s_t p_thr_s[POWER_VALUE] = {
  239. {
  240. .id = 1,
  241. .name = "sers_th1",
  242. .val1_up = 23,
  243. .val2_up = 32,
  244. .val1_down = 11,
  245. .val2_down = 12,
  246. },
  247. {
  248. .id = 2,
  249. .name = "sers_th2",
  250. .val1_up = 23,
  251. .val2_up = 32,
  252. .val1_down = 11,
  253. .val2_down = 12,
  254. },
  255. {
  256. .id = 3,
  257. .name = "sers_th3",
  258. .val1_up = 23,
  259. .val2_up = 32,
  260. .val1_down = 11,
  261. .val2_down = 12,
  262. },
  263. {
  264. .id = 4,
  265. .name = "sers_th4",
  266. .val1_up = 23,
  267. .val2_up = 32,
  268. .val1_down = 11,
  269. .val2_down = 12,
  270. },
  271. };
  272. static struct snmp_oid_range th_table_oid_ranges[] = {
  273. {1, POWER_VALUE},
  274. };
  275. static struct snmp_oid_range th_sensor_oid_ranges[] = {
  276. {1,MAX_SENSOR},
  277. };
  278. static p_alarm_t p_a_data[POWER_VALUE]={
  279. {
  280. .id = 1,
  281. .type = 3,
  282. .alarm_info="voltage alarm!!!",
  283. .alarm_action = 0,
  284. .alarm_action_para = 4,
  285. .date = "2052.12.20",
  286. .time = "12:30:47",
  287. },
  288. {
  289. .id = 2,
  290. .type = 2,
  291. .alarm_info="current alarm!!!",
  292. .alarm_action = 1,
  293. .alarm_action_para = 2,
  294. .date = "2002-11-20",
  295. .time = "10:30:47",
  296. },
  297. {
  298. .id = 3,
  299. .type = 1,
  300. .alarm_info="power alarm!!!",
  301. .alarm_action = 3,
  302. .alarm_action_para = 6,
  303. .date = "2012-11-20",
  304. .time = "10:59:47",
  305. },
  306. {
  307. .id = 4,
  308. .type = 4,
  309. .alarm_info="consumer alarm!!!",
  310. .alarm_action = 3,
  311. .alarm_action_para = 6,
  312. .date = "2012-11-20",
  313. .time = "10:59:47",
  314. },
  315. };
  316. static thr_d_t p_t_data[POWER_VALUE]=
  317. {
  318. {
  319. .id = 1,
  320. .name="thrould",
  321. .v_max = 250.00,
  322. .v_min = 180.00,
  323. .i_max = 50.00,
  324. .p_max = 20000.00,
  325. .c_max = 10000,
  326. },
  327. {
  328. .id = 2,
  329. .name="thrould",
  330. .v_max = 250.00,
  331. .v_min = 180.00,
  332. .i_max = 50.00,
  333. .p_max = 20000.00,
  334. .c_max = 10000,
  335. },
  336. {
  337. .id = 3,
  338. .name="thrould",
  339. .v_max = 250.00,
  340. .v_min = 180.00,
  341. .i_max = 50.00,
  342. .p_max = 20000.00,
  343. .c_max = 10000,
  344. },
  345. {
  346. .id = 4,
  347. .name="thrould",
  348. .v_max = 250.00,
  349. .v_min = 180.00,
  350. .i_max = 50.00,
  351. .p_max = 20000.00,
  352. .c_max = 10000,
  353. },
  354. };
  355. static snmp_err_t thr_s_set_value(struct snmp_node_instance *instance,u16_t len, void *value)
  356. {
  357. u32_t row = instance->reference.u32;
  358. u32_t col = SNMP_TABLE_GET_COLUMN_FROM_OID(instance->instance_oid.id);
  359. sensor_all_t * sensor = sensor_get_data();
  360. if(sensor->data == 0)
  361. {
  362. return SNMP_ERR_NOTWRITABLE;
  363. }
  364. switch(col)
  365. {
  366. case COLUMN_PDUSENSORLIMITVALUE1UP:
  367. {
  368. p_thr_s[row-1].val1_up = *(uint32_t *)value;
  369. }
  370. break;
  371. case COLUMN_PDUSENSORLIMITVALUE2UP:
  372. {
  373. p_thr_s[row-1].val2_up = *(uint32_t *)value;
  374. }
  375. break;
  376. case COLUMN_PDUSENSORLIMITVALUE1DOWN:
  377. {
  378. p_thr_s[row-1].val1_down = *(uint32_t *)value;
  379. }
  380. break;
  381. case COLUMN_PDUSENSORLIMITVALUE2DOWN:
  382. {
  383. p_thr_s[row-1].val2_down = *(uint32_t *)value;
  384. }
  385. break;
  386. default:
  387. return SNMP_ERR_NOTWRITABLE;
  388. }
  389. return SNMP_ERR_NOERROR;
  390. }
  391. static s16_t thr_s_get_value(struct snmp_node_instance *instance, void *value)
  392. {
  393. u32_t row = instance->reference.u32;
  394. u32_t col = SNMP_TABLE_GET_COLUMN_FROM_OID(instance->instance_oid.id);
  395. sensor_all_t *sensor = sensor_get_data();
  396. char buff[50]= {0};
  397. switch(col)
  398. {
  399. case COLUMN_PDUSENSORLIMITID:
  400. {
  401. *(s32_t *)value = row-1;
  402. return 4;
  403. }
  404. break;
  405. case COLUMN_PDUSENSORLIMITNAME:
  406. {
  407. sprintf(buff,"%s",sensor->data[row-1].info.name);
  408. }
  409. break;
  410. case COLUMN_PDUSENSORLIMITVALUE1UP:
  411. {
  412. *(s32_t *)value = (sensor->data[row-1].val[0].thr.max * 100);
  413. return 4;
  414. }
  415. break;
  416. case COLUMN_PDUSENSORLIMITVALUE2UP:
  417. {
  418. *(s32_t *)value = (sensor->data[row-1].val[1].thr.max * 100);
  419. return 4;
  420. }
  421. break;
  422. case COLUMN_PDUSENSORLIMITVALUE1DOWN:
  423. {
  424. *(s32_t *)value = (sensor->data[row-1].val[0].thr.min * 100);
  425. return 4;
  426. }
  427. break;
  428. case COLUMN_PDUSENSORLIMITVALUE2DOWN:
  429. {
  430. *(s32_t *)value = (sensor->data[row-1].val[1].thr.min * 100);
  431. return 4;
  432. }
  433. break;
  434. default:
  435. return 0;
  436. }
  437. memcpy(value,buff,strlen(buff));
  438. return strlen(buff);
  439. }
  440. static s16_t thr_get_value(struct snmp_node_instance *instance, void *value)
  441. {
  442. power_all_t *all = power_get_all();
  443. u32_t row = instance->reference.u32;
  444. u32_t col = SNMP_TABLE_GET_COLUMN_FROM_OID(instance->instance_oid.id);
  445. char buff[50]= {0};
  446. switch (col)
  447. {
  448. case COLUMN_PDUCHANNELLIMITID:
  449. {
  450. *(s32_t *)value = row-1;
  451. return 4;
  452. }
  453. break;
  454. case COLUMN_PDUCHANNELLIMITNAME:
  455. {
  456. sprintf(buff,"%s",all->pch[row-1].info.name);
  457. }
  458. break;
  459. case COLUMN_PDUCHANNELCURRENTLIMITUP:
  460. {
  461. sprintf(buff,"%.2f",((float)all->pch[row-1].thr.c_upper/10.0));
  462. }
  463. break;
  464. case COLUMN_PDUCHANNELVOLTAGELIMITUP:
  465. {
  466. sprintf(buff,"%.2f",((float)all->pch[row-1].thr.v_upper/10.0));
  467. }
  468. break;
  469. case COLUMN_PDUCHANNELVOLTAGELIMITDOWN:
  470. {
  471. sprintf(buff,"%.2f",((float)all->pch[row-1].thr.v_lower/10.0));
  472. }
  473. break;
  474. case COLUMN_PDUCHANNELPOWERLIMITUP:
  475. {
  476. sprintf(buff,"%.2f",((float)all->pch[row-1].thr.p_upper/10.0));
  477. }
  478. break;
  479. case COLUMN_PDUCHANNELCONSUMPTIONLIMITUP:
  480. {
  481. sprintf(buff,"%.2f",((float)all->pch[row-1].thr.w_upper/10.0));
  482. }
  483. break;
  484. default:
  485. return 0;
  486. }
  487. memcpy(value,buff,strlen(buff));
  488. return strlen(buff);
  489. }
  490. static s16_t alarm_get_value(struct snmp_node_instance *instance, void *value)
  491. {
  492. u32_t row = instance->reference.u32;
  493. u32_t col = SNMP_TABLE_GET_COLUMN_FROM_OID(instance->instance_oid.id);
  494. char buff[50]= {0};
  495. switch (col)
  496. {
  497. case COLUMN_PDUALARMID:
  498. {
  499. *(s32_t *)value = p_a_data[row-1].id;
  500. return 4;
  501. }
  502. break;
  503. case COLUMN_PDUALARMTYPE:
  504. {
  505. *(s32_t *)value = p_a_data[row-1].type;
  506. return 4;
  507. }
  508. break;
  509. case COLUMN_PDUALARMCONTEXT:
  510. {
  511. sprintf(buff,"%s",p_a_data[row-1].alarm_info);
  512. }
  513. break;
  514. case COLUMN_PDUALARMACTION:
  515. {
  516. *(s32_t *)value = p_a_data[row-1].alarm_action;
  517. return 4;
  518. }
  519. break;
  520. case COLUMN_PDUALARMACTIONPARA:
  521. {
  522. *(s32_t *)value = p_a_data[row-1].alarm_action_para;
  523. return 4;
  524. }
  525. break;
  526. case COLUMN_PDUALARMDATE:
  527. {
  528. sprintf(buff,"%s",p_a_data[row-1].date);
  529. }
  530. break;
  531. case COLUMN_PDUALARMTIME:
  532. {
  533. sprintf(buff,"%s",p_a_data[row-1].time);
  534. }
  535. break;
  536. default:
  537. return 0;
  538. }
  539. memcpy(value,buff,strlen(buff));
  540. return strlen(buff);
  541. }
  542. static snmp_err_t power_get_instance(const u32_t *column, const u32_t *row_oid, u8_t row_oid_len, struct snmp_node_instance *cell_instance)
  543. {
  544. power_all_t *all = power_get_all();
  545. th_table_oid_ranges[0].max = all->chs-1;
  546. if (!snmp_oid_in_range(row_oid, row_oid_len, th_table_oid_ranges, LWIP_ARRAYSIZE(th_table_oid_ranges)))
  547. return SNMP_ERR_NOSUCHINSTANCE;
  548. cell_instance->reference.u32 = row_oid[0];
  549. return SNMP_ERR_NOERROR;
  550. }
  551. static snmp_err_t get_instance(const u32_t *column, const u32_t *row_oid, u8_t row_oid_len, struct snmp_node_instance *cell_instance)
  552. {
  553. if (!snmp_oid_in_range(row_oid, row_oid_len, th_table_oid_ranges, LWIP_ARRAYSIZE(th_table_oid_ranges)))
  554. return SNMP_ERR_NOSUCHINSTANCE;
  555. cell_instance->reference.u32 = row_oid[0];
  556. return SNMP_ERR_NOERROR;
  557. }
  558. static snmp_err_t get_sensor_instance(const u32_t *column, const u32_t *row_oid, u8_t row_oid_len, struct snmp_node_instance *cell_instance)
  559. {
  560. if (!snmp_oid_in_range(row_oid, row_oid_len, th_sensor_oid_ranges, LWIP_ARRAYSIZE(th_sensor_oid_ranges)))
  561. return SNMP_ERR_NOSUCHINSTANCE;
  562. cell_instance->reference.u32 = row_oid[0];
  563. return SNMP_ERR_NOERROR;
  564. }
  565. static snmp_err_t get_sensor_next_instance(const u32_t *column, struct snmp_obj_id *row_oid, struct snmp_node_instance *cell_instance)
  566. {
  567. u8_t i = 0;
  568. struct snmp_next_oid_state state;
  569. u32_t next_oid = 0;
  570. snmp_next_oid_init(&state, row_oid->id, row_oid->len, &next_oid, 1);
  571. for (i = 0; i < th_sensor_oid_ranges[0].max; i++)
  572. {
  573. u32_t test_oid = i + 1;
  574. snmp_next_oid_check(&state, &test_oid, 1, NULL);
  575. }
  576. if (state.status == SNMP_NEXT_OID_STATUS_SUCCESS)
  577. {
  578. snmp_oid_assign(row_oid, state.next_oid, state.next_oid_len);
  579. cell_instance->reference.u32 = *state.next_oid; /* 下个节点行OID */
  580. cell_instance->reference.u32++;
  581. return SNMP_ERR_NOERROR;
  582. }
  583. return SNMP_ERR_NOSUCHINSTANCE;
  584. }
  585. static snmp_err_t power_get_next_instance(const u32_t *column, struct snmp_obj_id *row_oid, struct snmp_node_instance *cell_instance)
  586. {
  587. u8_t i = 0;
  588. struct snmp_next_oid_state state;
  589. u32_t next_oid = 0;
  590. snmp_next_oid_init(&state, row_oid->id, row_oid->len, &next_oid, 1);
  591. //power_data_get(&snmp_smart.all);
  592. power_all_t *all = power_get_all();
  593. for (i = 0; i < all->chs-1; i++)
  594. {
  595. u32_t test_oid = i + 1;
  596. snmp_next_oid_check(&state, &test_oid, 1, NULL);
  597. }
  598. if (state.status == SNMP_NEXT_OID_STATUS_SUCCESS)
  599. {
  600. snmp_oid_assign(row_oid, state.next_oid, state.next_oid_len);
  601. cell_instance->reference.u32 = *state.next_oid; /* 下个节点行OID */
  602. cell_instance->reference.u32++;
  603. return SNMP_ERR_NOERROR;
  604. }
  605. return SNMP_ERR_NOSUCHINSTANCE;
  606. }
  607. static snmp_err_t get_next_instance(const u32_t *column, struct snmp_obj_id *row_oid, struct snmp_node_instance *cell_instance)
  608. {
  609. u8_t i = 0;
  610. struct snmp_next_oid_state state;
  611. u32_t next_oid = 0;
  612. snmp_next_oid_init(&state, row_oid->id, row_oid->len, &next_oid, 1);
  613. power_all_t *all = power_get_all();
  614. //power_data_get(&snmp_smart.all);
  615. for (i = 0; i < POWER_VALUE; i++)
  616. {
  617. u32_t test_oid = i + 1;
  618. snmp_next_oid_check(&state, &test_oid, 1, NULL);
  619. }
  620. if (state.status == SNMP_NEXT_OID_STATUS_SUCCESS)
  621. {
  622. snmp_oid_assign(row_oid, state.next_oid, state.next_oid_len);
  623. cell_instance->reference.u32 = *state.next_oid; /* 下个节点行OID */
  624. return SNMP_ERR_NOERROR;
  625. }
  626. return SNMP_ERR_NOSUCHINSTANCE;
  627. }
  628. static s16_t power_get_value(struct snmp_node_instance *instance, void *value)
  629. {
  630. power_all_t *all = power_get_all();
  631. u32_t row = instance->reference.u32;
  632. u32_t col = SNMP_TABLE_GET_COLUMN_FROM_OID(instance->instance_oid.id);
  633. char buff[100]= {0};
  634. switch (col)
  635. {
  636. case COLUMN_PDUCHANNELID:
  637. {
  638. *(s32_t *)value = row-1;
  639. return 4;
  640. }
  641. break;
  642. case COLUMN_PDUCHANNELNAME:
  643. {
  644. sprintf(buff,"%s",all->pch[row-1].info.name);
  645. }
  646. break;
  647. case COLUMN_PDUCHANNELSTATUS:
  648. {
  649. //sprintf(buff,"%d",p_data[row].status);
  650. //*(s32_t *)value = p_data[row-1].status;
  651. *(s32_t *)value = all->pch[row-1].status;
  652. return 4;
  653. }
  654. break;
  655. case COLUMN_PDUCHANNELVOLTAGE:
  656. {
  657. sprintf(buff,"%.2f",((float)all->pch[row-1].power[0].voltage)/10.0);
  658. }
  659. break;
  660. case COLUMN_PDUCHANNELCURRENT:
  661. {
  662. sprintf(buff,"%.2f",((float)all->pch[row-1].power[0].current)/10.0);
  663. }
  664. break;
  665. case COLUMN_PDUCHANNELFREQUENCY:
  666. {
  667. sprintf(buff,"%.2f",((float)all->pch[row-1].power[0].freq)/100.0);
  668. }
  669. break;
  670. case COLUMN_PDUCHANNELCONSUMPTION:
  671. {
  672. sprintf(buff,"%.2f",((float)all->pch[row-1].power[0].consump)/1000.0);
  673. }
  674. break;
  675. case COLUMN_PDUCHANNELPOWERFACTOR:
  676. {
  677. sprintf(buff,"%.2f",((float)all->pch[row-1].power[0].factor)/100.0);
  678. }
  679. break;
  680. case COLUMN_PDUCHANNELPACTIVEPOWER:
  681. {
  682. sprintf(buff,"%.2f",((float)all->pch[row-1].power[0].power)/1000.0);
  683. }
  684. break;
  685. case COLUMN_PDUCHANNELREACTIVEPOWER:
  686. {
  687. sprintf(buff,"%.2f",p_data[row-1].r_p);
  688. }
  689. break;
  690. case COLUMN_PDUCHANNELAPPARENTPOWER:
  691. {
  692. sprintf(buff,"%.2f",p_data[row-1].a_p);
  693. }
  694. break;
  695. default:
  696. return 0;
  697. }
  698. memcpy(value,buff,strlen(buff));
  699. return strlen(buff);
  700. }
  701. static snmp_err_t set_test(struct snmp_node_instance *instance, u16_t len, void *value)
  702. {
  703. LOGD("write test\n");
  704. return SNMP_ERR_NOERROR;
  705. }
  706. static snmp_err_t power_set_value (struct snmp_node_instance *instance, u16_t len, void *value)
  707. {
  708. power_all_t *all = power_get_all();
  709. u32_t row = instance->reference.u32;
  710. u32_t col = SNMP_TABLE_GET_COLUMN_FROM_OID(instance->instance_oid.id);
  711. switch(col)
  712. {
  713. case COLUMN_PDUCHANNELSTATUS:
  714. {
  715. //p_data[row-1].status = *(uint32_t*)value;
  716. all->pch[row].status = *(uint32_t*)value;
  717. power_set_ch_sw_n(&all->pch[row]);
  718. }
  719. break;
  720. default:
  721. return SNMP_ERR_NOTWRITABLE;
  722. }
  723. return SNMP_ERR_NOERROR;
  724. }
  725. static snmp_err_t thr_set_value(struct snmp_node_instance *instance,u16_t len, void *value)
  726. {
  727. u32_t row = instance->reference.u32;
  728. u32_t col = SNMP_TABLE_GET_COLUMN_FROM_OID(instance->instance_oid.id);
  729. power_all_t *all = power_get_all();
  730. switch(col)
  731. {
  732. case COLUMN_PDUCHANNELCURRENTLIMITUP:
  733. {
  734. all->pch[row].thr.c_upper = (float)atof((char *)value) * 10;
  735. //p_t_data[row-1].i_max = (float)atof((char *)value);
  736. //all->pch[row-1]
  737. power_set_threshold(&all->pch[row]);
  738. }
  739. break;
  740. case COLUMN_PDUCHANNELVOLTAGELIMITUP:
  741. {
  742. //p_t_data[row-1].v_max = (float)atof((char *)value);
  743. all->pch[row].thr.v_upper = (float)atof((char *)value) * 10;
  744. power_set_threshold(&all->pch[row]);
  745. }
  746. break;
  747. case COLUMN_PDUCHANNELVOLTAGELIMITDOWN:
  748. {
  749. all->pch[row].thr.v_lower = (float)atof((char *)value) * 10;
  750. power_set_threshold(&all->pch[row]);
  751. //p_t_data[row-1].v_min = (float)atof((char *)value);
  752. //all->pch[row-1].thr.v_upper = (float)atof((char *)value) * 10;
  753. }
  754. break;
  755. case COLUMN_PDUCHANNELPOWERLIMITUP:
  756. {
  757. //p_t_data[row-1].p_max = (float)atof((char *)value);
  758. all->pch[row].thr.p_upper = (float)atof((char *)value) * 1000;
  759. power_set_threshold(&all->pch[row]);
  760. }
  761. break;
  762. case COLUMN_PDUCHANNELCONSUMPTIONLIMITUP:
  763. {
  764. //p_t_data[row-1].c_max = (float)atof((char *)value);
  765. all->pch[row].thr.w_upper = (float)atof((char *)value) * 1000;
  766. power_set_threshold(&all->pch[row]);
  767. }
  768. break;
  769. default:
  770. return SNMP_ERR_INCONSISTENTNAME;
  771. }
  772. return SNMP_ERR_NOERROR;
  773. }
  774. static const struct snmp_scalar_array_node_def sysinfo_scalars_nodes[] = {
  775. {1, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY}, /* product id */
  776. {2, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY}, /* product name */
  777. {3, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY}, /* product type */
  778. {4, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY}, /* product firmware */
  779. {5, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY}, /* product channal number */
  780. {6, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY}, /* product sensor number */
  781. {0,0,0},
  782. };
  783. static const struct snmp_table_col_def power_table_channels[]={
  784. {COLUMN_PDUCHANNELID, SNMP_ASN1_TYPE_INTEGER, SNMP_NODE_INSTANCE_READ_ONLY},
  785. {COLUMN_PDUCHANNELNAME, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  786. {COLUMN_PDUCHANNELSTATUS, SNMP_ASN1_TYPE_INTEGER, SNMP_NODE_INSTANCE_READ_WRITE},
  787. {COLUMN_PDUCHANNELVOLTAGE, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  788. {COLUMN_PDUCHANNELCURRENT, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  789. {COLUMN_PDUCHANNELFREQUENCY, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  790. {COLUMN_PDUCHANNELCONSUMPTION, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  791. {COLUMN_PDUCHANNELPOWERFACTOR, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  792. {COLUMN_PDUCHANNELPACTIVEPOWER, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  793. {COLUMN_PDUCHANNELREACTIVEPOWER, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  794. {COLUMN_PDUCHANNELAPPARENTPOWER, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  795. {0,0,0},
  796. };
  797. static const struct snmp_table_col_def alarm_history_table[]={
  798. {COLUMN_PDUALARMID, SNMP_ASN1_TYPE_INTEGER, SNMP_NODE_INSTANCE_READ_ONLY},
  799. {COLUMN_PDUALARMTYPE, SNMP_ASN1_TYPE_INTEGER, SNMP_NODE_INSTANCE_READ_ONLY},
  800. {COLUMN_PDUALARMCONTEXT, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  801. {COLUMN_PDUALARMACTION, SNMP_ASN1_TYPE_INTEGER, SNMP_NODE_INSTANCE_READ_ONLY},
  802. {COLUMN_PDUALARMACTIONPARA, SNMP_ASN1_TYPE_INTEGER, SNMP_NODE_INSTANCE_READ_ONLY},
  803. {COLUMN_PDUALARMDATE, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  804. {COLUMN_PDUALARMTIME, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  805. {0,0,0},
  806. };
  807. static const struct snmp_table_col_def threshold_limit_table[] = {
  808. {COLUMN_PDUCHANNELLIMITID, SNMP_ASN1_TYPE_INTEGER, SNMP_NODE_INSTANCE_READ_ONLY},
  809. {COLUMN_PDUCHANNELLIMITNAME, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  810. {COLUMN_PDUCHANNELCURRENTLIMITUP, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_WRITE},
  811. {COLUMN_PDUCHANNELVOLTAGELIMITUP, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_WRITE},
  812. {COLUMN_PDUCHANNELVOLTAGELIMITDOWN, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_WRITE},
  813. {COLUMN_PDUCHANNELPOWERLIMITUP, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_WRITE},
  814. {COLUMN_PDUCHANNELCONSUMPTIONLIMITUP, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_WRITE},
  815. {0,0,0},
  816. };
  817. static const struct snmp_table_col_def sensor_limit_table[] = {
  818. {COLUMN_PDUSENSORLIMITID, SNMP_ASN1_TYPE_INTEGER, SNMP_NODE_INSTANCE_READ_ONLY,},
  819. {COLUMN_PDUSENSORLIMITNAME, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY,},
  820. {COLUMN_PDUSENSORLIMITVALUE1UP, SNMP_ASN1_TYPE_INTEGER, SNMP_NODE_INSTANCE_READ_WRITE,},
  821. {COLUMN_PDUSENSORLIMITVALUE2UP, SNMP_ASN1_TYPE_INTEGER, SNMP_NODE_INSTANCE_READ_WRITE,},
  822. {COLUMN_PDUSENSORLIMITVALUE1DOWN, SNMP_ASN1_TYPE_INTEGER, SNMP_NODE_INSTANCE_READ_WRITE,},
  823. {COLUMN_PDUSENSORLIMITVALUE2DOWN, SNMP_ASN1_TYPE_INTEGER, SNMP_NODE_INSTANCE_READ_WRITE,},
  824. {0,0,0},
  825. };
  826. static const struct snmp_table_col_def sensor_info_table[] = {
  827. {COLUMN_PDUSENSORID, SNMP_ASN1_TYPE_INTEGER, SNMP_NODE_INSTANCE_READ_ONLY},
  828. {COLUMN_PDUSENSORNAME, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  829. {COLUMN_PDUSENSORTYPE, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  830. {COLUMN_PDUSENSORDATACHENNEL, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  831. {COLUMN_PDUSENSORMODBUSADDRESS, SNMP_ASN1_TYPE_INTEGER, SNMP_NODE_INSTANCE_READ_ONLY},
  832. {COLUMN_PDUSENSORSTATUS, SNMP_ASN1_TYPE_INTEGER, SNMP_NODE_INSTANCE_READ_ONLY},
  833. {COLUMN_PDUSENSORVALUENUM, SNMP_ASN1_TYPE_INTEGER, SNMP_NODE_INSTANCE_READ_ONLY},
  834. {COLUMN_PDUSENSORVALUE1, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  835. {COLUMN_PDUSENSORVALUE2, SNMP_ASN1_TYPE_OCTET_STRING, SNMP_NODE_INSTANCE_READ_ONLY},
  836. {0,0,0},
  837. };
  838. const struct snmp_scalar_array_node sysinfo_scalars = SNMP_SCALAR_CREATE_ARRAY_NODE(1, sysinfo_scalars_nodes, sysinfo_get_value, NULL, NULL);
  839. static s16_t get_total_scalar_value(struct snmp_node_instance *instance , void* data)
  840. {
  841. power_all_t *all = power_get_all();
  842. char buff[100] = {0};
  843. switch(instance->node->oid)
  844. {
  845. case SCALAR_VOLTAGE:
  846. sprintf(buff,"%.2f",all->ttl.total[0].voltage);
  847. break;
  848. case SCALAR_CURRENT:
  849. sprintf(buff,"%.2f",all->ttl.total[0].current);
  850. break;
  851. case SCALAR_CONSUMEPTION:
  852. sprintf(buff,"%.2f",all->ttl.total[0].consump);
  853. break;
  854. case SCALAR_POWER_FACTOR:
  855. sprintf(buff,"%.2f",all->ttl.total[0].factor);
  856. break;
  857. case SCALAR_PACTIVE_POWER:
  858. sprintf(buff,"%.2f",all->ttl.total[0].power);
  859. break;
  860. case SCALAR_REACTIVE_POWER:
  861. sprintf(buff,"%.2f",all->ttl.total[0].reactive);
  862. break;
  863. case SCALAR_APPARENT_POWER:
  864. sprintf(buff,"%.2f",all->ttl.total[0].active);
  865. break;
  866. default:
  867. return 0;
  868. }
  869. memcpy(data,buff,strlen(buff));
  870. return strlen(buff);
  871. }
  872. const struct snmp_scalar_node voltage_scalar = SNMP_SCALAR_CREATE_NODE(SCALAR_VOLTAGE,SNMP_NODE_INSTANCE_READ_ONLY,SNMP_ASN1_TYPE_OCTET_STRING,get_total_scalar_value,NULL,NULL);
  873. const struct snmp_scalar_node current_scalar = SNMP_SCALAR_CREATE_NODE(SCALAR_CURRENT,SNMP_NODE_INSTANCE_READ_ONLY,SNMP_ASN1_TYPE_OCTET_STRING,get_total_scalar_value,NULL,NULL);
  874. const struct snmp_scalar_node consumer_scalar = SNMP_SCALAR_CREATE_NODE(SCALAR_CONSUMEPTION,SNMP_NODE_INSTANCE_READ_ONLY,SNMP_ASN1_TYPE_OCTET_STRING,get_total_scalar_value,NULL,NULL);
  875. const struct snmp_scalar_node factor_scalar = SNMP_SCALAR_CREATE_NODE(SCALAR_POWER_FACTOR,SNMP_NODE_INSTANCE_READ_ONLY,SNMP_ASN1_TYPE_OCTET_STRING,get_total_scalar_value,NULL,NULL);
  876. const struct snmp_scalar_node pactive_scalar = SNMP_SCALAR_CREATE_NODE(SCALAR_PACTIVE_POWER,SNMP_NODE_INSTANCE_READ_ONLY,SNMP_ASN1_TYPE_OCTET_STRING,get_total_scalar_value,NULL,NULL);
  877. const struct snmp_scalar_node reactive_scalar = SNMP_SCALAR_CREATE_NODE(SCALAR_REACTIVE_POWER,SNMP_NODE_INSTANCE_READ_ONLY,SNMP_ASN1_TYPE_OCTET_STRING,get_total_scalar_value,NULL,NULL);
  878. const struct snmp_scalar_node appactive_scalar = SNMP_SCALAR_CREATE_NODE(SCALAR_APPARENT_POWER,SNMP_NODE_INSTANCE_READ_ONLY,SNMP_ASN1_TYPE_OCTET_STRING,get_total_scalar_value,NULL,NULL);
  879. static const struct snmp_table_node power_table = SNMP_TABLE_CREATE(9, power_table_channels, power_get_instance, power_get_next_instance, \
  880. power_get_value, set_test, power_set_value);
  881. static const struct snmp_table_node alarm_table = SNMP_TABLE_CREATE(1, alarm_history_table, get_instance, get_next_instance, \
  882. alarm_get_value, set_test, NULL);
  883. static const struct snmp_table_node thr_table = SNMP_TABLE_CREATE(6, threshold_limit_table, power_get_instance, power_get_next_instance, \
  884. thr_get_value, set_test, thr_set_value);
  885. static const struct snmp_table_node thr_s_table = SNMP_TABLE_CREATE(1, sensor_limit_table, get_sensor_instance, get_sensor_next_instance, \
  886. thr_s_get_value, set_test, thr_s_set_value);
  887. static const struct snmp_table_node sensor_table = SNMP_TABLE_CREATE(4,sensor_info_table,get_sensor_instance,get_sensor_next_instance,NULL,NULL,NULL);
  888. static const struct snmp_node *const alarm_subnodes[]={
  889. &alarm_table.node.node,
  890. };
  891. static const struct snmp_node *const power_subnodes[] = {
  892. &power_table.node.node,
  893. &voltage_scalar.node.node,
  894. &current_scalar.node.node,
  895. &consumer_scalar.node.node,
  896. &factor_scalar.node.node,
  897. &pactive_scalar.node.node,
  898. &reactive_scalar.node.node,
  899. &appactive_scalar.node.node,
  900. };
  901. static const struct snmp_node *const thr_subnodes[] = {
  902. &thr_table.node.node,
  903. };
  904. static const struct snmp_node *const thr_s_subnodes[] = {
  905. &thr_s_table.node.node,
  906. };
  907. static const struct snmp_node *const sensor_subnodes[] = {
  908. &sensor_table.node.node,
  909. };
  910. const struct snmp_tree_node power_treenode = SNMP_CREATE_TREE_NODE(3, power_subnodes);
  911. const struct snmp_tree_node alarm_treenode = SNMP_CREATE_TREE_NODE(6, alarm_subnodes);
  912. const struct snmp_tree_node thr_treenode = SNMP_CREATE_TREE_NODE(2, thr_subnodes);
  913. const struct snmp_tree_node thr_s_treenode = SNMP_CREATE_TREE_NODE(3, thr_s_subnodes);
  914. const struct snmp_tree_node sensor_treenode = SNMP_CREATE_TREE_NODE(4, sensor_subnodes);
  915. static const struct snmp_node *const mib2_nodes_dev[] =
  916. {
  917. &sysinfo_scalars.node.node,
  918. &power_treenode.node,
  919. &alarm_treenode.node,
  920. &sensor_treenode.node,
  921. };
  922. static const struct snmp_node *const mib2_nodes_dev_2[]={
  923. &thr_treenode.node,
  924. &thr_s_treenode.node,
  925. };
  926. static const struct snmp_tree_node snmp_mib2_root_dev = SNMP_CREATE_TREE_NODE(1, mib2_nodes_dev);
  927. static const struct snmp_tree_node snmp_mib2_thr_dev = SNMP_CREATE_TREE_NODE(7, mib2_nodes_dev_2);
  928. static const u32_t prvmib_base_oid[] = SNMP_SMARTPDU_DEVICE_OID;
  929. static const u32_t thr_base_oid [] = SNMP_SMARTPDU_THR_TABLE_IOD;
  930. const struct snmp_mib mib2_dev = SNMP_MIB_CREATE(prvmib_base_oid, &snmp_mib2_root_dev.node);
  931. const struct snmp_mib mib2_th_dev = SNMP_MIB_CREATE(thr_base_oid, &snmp_mib2_thr_dev.node);
  932. static const struct snmp_mib *dev_mibs[] = {&mib2, &mib2_dev,&mib2_th_dev};
  933. void netif_event_callback(struct netif *netif) {
  934. }
  935. static void mibs_init(void) {
  936. uint16_t len = 0;
  937. len= strlen((const char *)snmp_smart.sysdescr);
  938. snmp_mib2_set_sysdescr(snmp_smart.sysdescr, &len);
  939. len= strlen((const char *)snmp_smart.syscontact);
  940. snmp_mib2_set_syscontact(snmp_smart.syscontact, &len, 0);
  941. len= strlen((const char *)snmp_smart.sysname);
  942. snmp_mib2_set_sysname(snmp_smart.sysname, &len, 0);
  943. len= strlen((const char *)snmp_smart.syslocation);
  944. snmp_mib2_set_syslocation(snmp_smart.syslocation, &len, 0);
  945. snmp_set_device_enterprise_oid(&snmp_smart.device_enterprose_oid);
  946. snmp_set_auth_traps_enabled(SNMP_AUTH_TRAPS_DISABLED);
  947. snmp_trap_dst_enable(0, 0);
  948. //snmp_trap_dst_ip_set(0, &test_snmp_trap_ip);
  949. snmp_set_mibs(&dev_mibs[0], LWIP_ARRAYSIZE(dev_mibs));
  950. snmp_set_community("public");
  951. snmp_set_community_write("public");
  952. }
  953. int snmp2_init(void)
  954. {
  955. mibs_init();
  956. snmp_init();
  957. return 0;
  958. }
  959. int snmp2_deinit(void)
  960. {
  961. return 0;
  962. }