Api.c 17 KB

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  1. #include <stdint.h>
  2. #include <stdio.h>
  3. #include <string.h>
  4. #include <stdlib.h>
  5. #include <unistd.h>
  6. #include <sys/socket.h>
  7. #include <fcntl.h>
  8. #include <net/if.h>
  9. #include <netinet/in.h>
  10. #include <sys/ioctl.h>
  11. #include "main.h"
  12. #include "Api.h"
  13. #include "SDRRecord.h"
  14. #include "SELRecord.h"
  15. #include "SEL.h"
  16. #include "MsgHndlr.h"
  17. int InitSdrConfig(void)
  18. {
  19. printf("Init SDR Config...\r\n");
  20. g_BMCInfo.SDRConfig.SDRError = 0;
  21. g_BMCInfo.SDRConfig.UpdatingSDR = FALSE;
  22. g_BMCInfo.SDRConfig.UpdatingChannel = 0;
  23. g_BMCInfo.SDRConfig.TrackPOffset = 0;
  24. g_BMCInfo.SDRConfig.TrackRecID = 0;
  25. g_BMCInfo.SDRConfig.ReservationID = 0;
  26. g_BMCInfo.SDRConfig.IPMB_Seqnum = 0;
  27. g_BMCInfo.SDRConfig.PartAddbytes = 0;
  28. g_BMCInfo.SDRConfig.LatestRecordID = 0;
  29. g_BMCInfo.SDRConfig.NumMarkedRecords = 0;
  30. g_BMCInfo.SDRConfig.SDRRAM = (SDRRepository_T*)g_BMCInfo.pSDR;
  31. g_BMCInfo.SDRConfig.RepositoryInfo.Version = 0x51;
  32. g_BMCInfo.SDRConfig.RepositoryInfo.RecCt = ((SDRRepository_T*)g_BMCInfo.SDRConfig.SDRRAM)->NumRecords;
  33. g_BMCInfo.SDRConfig.RepositoryInfo.FreeSpace = 0xffff;
  34. g_BMCInfo.SDRConfig.RepositoryInfo.AddTimeStamp = 0;
  35. g_BMCInfo.SDRConfig.RepositoryInfo.EraseTimeStamp = 0;
  36. g_BMCInfo.SDRConfig.RepositoryInfo.OpSupport = 0x23;
  37. //TODO:
  38. g_BMCInfo.SDRConfig.RepositoryAllocInfo.NumAllocUnits = MAX_SENSOR_NUMBERS+1;
  39. g_BMCInfo.SDRConfig.RepositoryAllocInfo.AllocUnitSize = SDR_ALLOC_UNIT_SIZE;
  40. g_BMCInfo.SDRConfig.RepositoryAllocInfo.NumFreeAllocUnits = MAX_SENSOR_NUMBERS - SENSOR_NUMBERS;
  41. g_BMCInfo.SDRConfig.RepositoryAllocInfo.LargestFreeBlock = SDR_MAX_RECORD_SIZE;
  42. g_BMCInfo.SDRConfig.RepositoryAllocInfo.MaxRecSize = SDR_MAX_RECORD_SIZE; //Maximum record size in allocation units
  43. return 0;
  44. }
  45. int InitSelConfig(void)
  46. {
  47. printf("InitSelConfig...\n");
  48. g_BMCInfo.SELConfig.SelReservationID = 0;;
  49. g_BMCInfo.SELConfig.LastEvtTS = 0;
  50. g_BMCInfo.SELConfig.PartialAddRecordID = 0;
  51. g_BMCInfo.SELConfig.PartialAddRecOffset = 0;
  52. g_BMCInfo.SELConfig.PartialAdd = 0;
  53. g_BMCInfo.SELConfig.SenMonSELFlag = 0;
  54. g_BMCInfo.SELConfig.MaxSELRecord = MAX_SEL_RECORD;
  55. // g_BMCInfo.SELConfig.RsrvIDCancelled = FALSE;
  56. g_BMCInfo.SELConfig.SELOverFlow = FALSE;
  57. g_BMCInfo.SELConfig.selalmostfull = 0;
  58. // SELEventRecord_T SelPartialAddRecord;
  59. // g_BMCInfo.SELConfig.SELEventMsg [16];
  60. return 0;
  61. }
  62. int PlatformInit(void)
  63. {
  64. uint8_t PrimaryIPMBBusNum, SecondaryIPMBBusNum;
  65. printf("Init Platform...\r\n");
  66. // //hardware init
  67. // GPIO_InitTypeDef GPIO_InitStruct;
  68. // GPIO_InitStruct.Pin = GA0_PIN | GA1_PIN | GA2_PIN | GA3_PIN | GA4_PIN | RACKID2_PIN;
  69. // GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
  70. // GPIO_InitStruct.Pull = GPIO_NOPULL;
  71. // GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
  72. // stm32_gpio_init(GPIOH, &GPIO_InitStruct);
  73. // GPIO_InitStruct.Pin = GAP_PIN | RACKID1_PIN | RACKID3_PIN | RACKID4_PIN | RACKID5_PIN;
  74. // stm32_gpio_init(GPIOI, &GPIO_InitStruct);
  75. g_BMCInfo.SelfTestByte = 0;
  76. g_BMCInfo.SlotID = PDK_GetSlotID();
  77. g_BMCInfo.ChassisID = PDK_GetChassisID();
  78. g_BMCInfo.ChassisIdentify = FALSE;
  79. g_BMCInfo.PowerGoodFlag = 1;
  80. g_BMCInfo.BladeManageEn = 0;
  81. g_BMCInfo.isChMC = 0;
  82. g_BMCInfo.IndexInChassis = 1;
  83. //init DevGUID
  84. g_BMCInfo.DeviceGUID[0] = 0x01;
  85. g_BMCInfo.DeviceGUID[1] = 0x01;
  86. g_BMCInfo.DeviceGUID[2] = 0x01;
  87. g_BMCInfo.DeviceGUID[3] = 0x01;
  88. g_BMCInfo.DeviceGUID[4] = 0x01;
  89. g_BMCInfo.DeviceGUID[5] = 0x01;
  90. g_BMCInfo.DeviceGUID[6] = 0x01;
  91. g_BMCInfo.DeviceGUID[7] = 0x01;
  92. g_BMCInfo.DeviceGUID[8] = 0x01;
  93. g_BMCInfo.DeviceGUID[9] = 0x01;
  94. g_BMCInfo.DeviceGUID[10] = 0x01;
  95. g_BMCInfo.DeviceGUID[11] = 0x01;
  96. g_BMCInfo.DeviceGUID[12] = 0x01;
  97. g_BMCInfo.DeviceGUID[13] = 0x01;
  98. g_BMCInfo.DeviceGUID[14] = 0x01;
  99. g_BMCInfo.DeviceGUID[15] = 0x01;
  100. g_BMCInfo.FwMajorVer = FW_VERSION_MAJOR;
  101. g_BMCInfo.FwMinorVer = FW_VERSION_MINOR;
  102. g_BMCInfo.SendMsgSeqNum = 0;
  103. // g_BMCInfo.OemFlags.BladeWorkMode = BLADE_IPMC;
  104. // g_BMCInfo.OemFlags.chassisManageFnEnable = 0;
  105. // g_BMCInfo.OemFlags.thisBladeIndex = 0;
  106. // g_BMCInfo.OemFlags.bladeStatus = 1; //0: not present, 1: normal, 2: error, others: reserved.
  107. g_BMCInfo.HealthLevel = SENSOR_STATUS_NORMAL;
  108. g_BMCInfo.SensorSharedMem.SensorTick= 0;
  109. g_BMCInfo.SenConfig.PowerOnTick = 0;
  110. g_BMCInfo.SenConfig.SysResetTick = 0;
  111. g_BMCInfo.CurTimerTick = 0;
  112. g_BMCInfo.CurTimerSecond = 0;
  113. g_BMCInfo.BootValidMinutes = 0;
  114. return 0;
  115. }
  116. int InitTimerTaskTbl(void)
  117. {
  118. printf("InitTimerTaskTbl...\n");
  119. g_BMCInfo.TimerTaskTblSize = 2;
  120. memcpy(g_BMCInfo.TimerTaskTbl, m_TimerTaskTbl, sizeof(TimerTaskTbl_T)*g_BMCInfo.TimerTaskTblSize);
  121. }
  122. int Init_SessionTbl(void)
  123. {
  124. printf("Init_SessionTbl...\n");
  125. g_BMCInfo.SessionHandle = 0;
  126. g_BMCInfo.UDSSessionHandle = 0;
  127. g_BMCInfo.IpmiConfig.MaxSession = 10;
  128. g_BMCInfo.IpmiConfig.SessionTimeOut = 10; //10s
  129. g_BMCInfo.IpmiConfig.SendMsgTimeout = 10; //10s
  130. /*Allocating Memory to hold session Table informations */
  131. g_BMCInfo.SessionTblInfo.SessionTbl = (SessionInfo_T *) malloc(sizeof(SessionInfo_T)*( g_BMCInfo.IpmiConfig.MaxSession + 1));
  132. if(g_BMCInfo.SessionTblInfo.SessionTbl == NULL)
  133. {
  134. printf("Error in allocating memory for SessionTbl \n");
  135. return 1;
  136. }
  137. g_BMCInfo.SessionTblInfo.Count = 0;
  138. /*Initialize the Session Table memory */
  139. memset(g_BMCInfo.SessionTblInfo.SessionTbl,0,sizeof(SessionInfo_T)*(g_BMCInfo.IpmiConfig.MaxSession + 1));
  140. /*Allocating Memory to hold UDS session Table informations */
  141. g_BMCInfo.UDSSessionTblInfo.UDSSessionTbl = (UDSSessionTbl_T *) malloc(sizeof(UDSSessionTbl_T)*(g_BMCInfo.IpmiConfig.MaxSession + 1));
  142. if(g_BMCInfo.UDSSessionTblInfo.UDSSessionTbl == NULL)
  143. {
  144. printf("Error in allocating memory for SessionTbl \n");
  145. return 1;
  146. }
  147. g_BMCInfo.UDSSessionTblInfo.SessionCount = 0;
  148. /*Initialize the UDS Session Table memory */
  149. memset(g_BMCInfo.UDSSessionTblInfo.UDSSessionTbl,0,sizeof(UDSSessionTbl_T)*(g_BMCInfo.IpmiConfig.MaxSession + 1));
  150. }
  151. const char FirstPowerOnStr[] = "First power on the bmc";
  152. int Init_IPMI_FRU_SDR_SEL(void)
  153. {
  154. int i;
  155. uint32_t sdrSize =
  156. sizeof(SDRRepository_T) + sizeof(HdrMgmtCtrlrDevLocator_T) + sizeof(HdrFullSensorRec_T)*SENSOR_NUMBERS;
  157. uint32_t selSize = sizeof(SELRepository_T) + sizeof(SELRec_T)*MAX_SEL_RECORD ;
  158. uint8_t* pSDR = NULL;
  159. uint8_t* pSEL = NULL;
  160. g_BMCInfo.pSDR = malloc(sdrSize);
  161. if((g_BMCInfo.pSDR == NULL) && (sdrSize != 0))
  162. {
  163. printf("g_BMCInfo.pSDR Malloc failed!\r\n");
  164. }
  165. g_BMCInfo.pSEL = malloc(selSize);
  166. if((g_BMCInfo.pSEL == NULL) && (selSize != 0))
  167. {
  168. printf("g_BMCInfo.pSEL Malloc failed!\r\n");
  169. }
  170. // FLASH_GetIPMI(&g_BMCInfo.IpmiConfig);
  171. // if(strncmp(g_BMCInfo.IpmiConfig.FirstPowerOnStr, FirstPowerOnStr, sizeof(FirstPowerOnStr)) != 0)
  172. if(1)
  173. {
  174. //first power on
  175. printf("BMC first power on!\r\n");
  176. /************************** Init IPMI ******************************/
  177. memcpy(g_BMCInfo.IpmiConfig.FirstPowerOnStr, FirstPowerOnStr, sizeof(FirstPowerOnStr));
  178. g_BMCInfo.IpmiConfig.SerialIfcSupport = SERIAL_IFC_SUPPORT;
  179. g_BMCInfo.IpmiConfig.SerialTerminalSupport = SERIAL_TERMINAL_SUPPORT;
  180. g_BMCInfo.IpmiConfig.LANIfcSupport = LAN_IFC_SUPPORT;
  181. g_BMCInfo.IpmiConfig.SYSIfcSupport = SYS_IFC_SUPPORT;
  182. g_BMCInfo.IpmiConfig.GrpExtnSupport = GROUP_EXTERN_SUPPORT;
  183. g_BMCInfo.IpmiConfig.UDSIfcSupport = UDS_IFC_SUPPORT;
  184. g_BMCInfo.IpmiConfig.ChassisTimerInterval = CHASSIS_TIMER_INTERVAL;
  185. g_BMCInfo.IpmiConfig.PowerCycleInterval = PWR_CYCLE_INTERVAL;
  186. g_BMCInfo.IpmiConfig.FanControlInterval = FAN_CONTROL_INTERVAL;
  187. g_BMCInfo.IpmiConfig.RearmSetSensorThreshold = REARM_SET_SENSOR_THRESHOLD;
  188. g_BMCInfo.IpmiConfig.SELTimeUTCOffset = 8*60;
  189. //IPMB
  190. g_BMCInfo.IpmiConfig.PrimaryIPMBSupport = PRIMARY_IPMB_SUPPORT;
  191. g_BMCInfo.IpmiConfig.SecondaryIPMBSupport = SECONDARY_IPMB_SUPPORT;
  192. g_BMCInfo.IpmiConfig.PrimaryIPMBBus = PRIMARY_IPMB_BUS;
  193. g_BMCInfo.IpmiConfig.SecondaryIPMBBus = SECONDARY_IPMB_BUS;
  194. g_BMCInfo.IpmiConfig.PrimaryIPMBAddr = PRIMARY_IPMB_ADDR;
  195. g_BMCInfo.IpmiConfig.SecondaryIPMBAddr = SECONDARY_IPMB_ADDR;
  196. //Init FRU
  197. memcpy(&g_BMCInfo.FRU, &Default_FRUData, sizeof(OemFRUData_T));
  198. /************************ Init SDR *************************************/
  199. pSDR = g_BMCInfo.pSDR;
  200. //init SDR repository header
  201. ((SDRRepository_T*)pSDR)->Signature[0] = 0x00;
  202. ((SDRRepository_T*)pSDR)->Signature[1] = 0x11;
  203. ((SDRRepository_T*)pSDR)->Signature[2] = 0x22;
  204. ((SDRRepository_T*)pSDR)->Signature[3] = 0x33;
  205. ((SDRRepository_T*)pSDR)->NumRecords = SENSOR_NUMBERS + 1;
  206. ((SDRRepository_T*)pSDR)->Size = sdrSize;
  207. ((SDRRepository_T*)pSDR)->AddTimeStamp = 0;
  208. ((SDRRepository_T*)pSDR)->EraseTimeStamp = 0;
  209. //init MgmtCtrlrDevLocator SDR
  210. pSDR += sizeof(SDRRepository_T);
  211. ((HdrMgmtCtrlrDevLocator_T*)pSDR)->Valid = 1;
  212. ((HdrMgmtCtrlrDevLocator_T*)pSDR)->Len = sizeof(HdrMgmtCtrlrDevLocator_T);
  213. memcpy(&(((HdrMgmtCtrlrDevLocator_T*)pSDR)->MgmtCtrlrDevLocator), &bmc_sdr, sizeof(MgmtCtrlrDevLocator_T));
  214. //init FullSensorRec SDR
  215. pSDR += sizeof(HdrMgmtCtrlrDevLocator_T);
  216. for(i=0;i<SENSOR_NUMBERS;i++)
  217. {
  218. ((HdrFullSensorRec_T*)pSDR)->Valid = 1;
  219. ((HdrFullSensorRec_T*)pSDR)->Len = sizeof(HdrFullSensorRec_T);
  220. memcpy(&(((HdrFullSensorRec_T*)pSDR)->FullSensorRec), &full_sdr_tbl[i], sizeof(FullSensorRec_T));
  221. pSDR += sizeof(HdrFullSensorRec_T);
  222. }
  223. /******************************* Init SEL *************************************/
  224. pSEL = g_BMCInfo.pSEL;
  225. ((SELRepository_T*)pSEL)->Signature[0] = 0x00;
  226. ((SELRepository_T*)pSEL)->Signature[1] = 0x11;
  227. ((SELRepository_T*)pSEL)->Signature[2] = 0x22;
  228. ((SELRepository_T*)pSEL)->Signature[3] = 0x33;
  229. ((SELRepository_T*)pSEL)->NumRecords = 0;
  230. ((SELRepository_T*)pSEL)->Padding = 0;
  231. ((SELRepository_T*)pSEL)->AddTimeStamp = 0;
  232. ((SELRepository_T*)pSEL)->EraseTimeStamp = 0;
  233. ((SELRepository_T*)pSEL)->FirstRecID = 0;
  234. ((SELRepository_T*)pSEL)->LastRecID = 0;
  235. ((SELRepository_T*)pSEL)->SELIndex = 0;
  236. ((SELRepository_T*)pSEL)->SELRecord = (SELRec_T*)(pSEL + sizeof(SELRepository_T));
  237. UpdateFlash();
  238. }
  239. else
  240. {
  241. // //Init FRU
  242. // FLASH_GetFRU(&g_BMCInfo.FRU);
  243. // //Init SDR
  244. // FLASH_GetSDR(g_BMCInfo.pSDR, sdrSize);
  245. // //Init SEL
  246. // FLASH_GetSEL(g_BMCInfo.pSEL, selSize);
  247. }
  248. return 0;
  249. }
  250. int Init_UserInfoTbl(void)
  251. {
  252. int i;
  253. if(1) //first power on
  254. {
  255. memset(g_BMCInfo.UserInfoTbl, 0x0, sizeof(UserInfo_T)*MAX_USER_NUM);
  256. g_BMCInfo.UserInfoTbl[2].UserId = 3;
  257. strcpy(g_BMCInfo.UserInfoTbl[2].UserName, "admin");
  258. strcpy(g_BMCInfo.UserInfoTbl[2].UserPassword, "admin");
  259. g_BMCInfo.UserInfoTbl[2].UserStatus = TRUE;
  260. g_BMCInfo.CurrentNoUser = 1;
  261. g_BMCInfo.pUserInfo = NULL;
  262. FlushUserInfoTbl();
  263. }
  264. else
  265. {
  266. UpdateUserInfoTble();
  267. g_BMCInfo.CurrentNoUser = 0;
  268. for(i=0;i<MAX_USER_NUM;i++)
  269. {
  270. if((g_BMCInfo.UserInfoTbl[i].UserId != 0) && (g_BMCInfo.UserInfoTbl[i].UserStatus == TRUE))
  271. g_BMCInfo.CurrentNoUser++;
  272. }
  273. g_BMCInfo.pUserInfo = NULL;
  274. }
  275. }
  276. int UpdateFlash(void)
  277. {
  278. //TODO:
  279. return 0;
  280. }
  281. int SetSysTime(uint32_t *timeSecond)
  282. {
  283. time_t tt;
  284. tt = *timeSecond;
  285. stime(&tt); //TODO:注意时区
  286. return 0;
  287. }
  288. long int GetSysTime(void)
  289. {
  290. time_t tt;
  291. time(&tt);
  292. //TODO: 注意时区
  293. //tt += 8*60*60; UTC+8
  294. return tt;
  295. }
  296. int PostEventMessage (uint8_t *EventMsg,uint8_t size)
  297. {
  298. uint8_t SelReq [sizeof(SELEventRecord_T)];
  299. uint8_t SelRes [sizeof(AddSELRes_T)];
  300. SELEventRecord_T* SelRecord = ( SELEventRecord_T*) SelReq;
  301. SelRecord->hdr.Type = 0x02;
  302. SelRecord->hdr.TimeStamp = GetSysTime ();
  303. memcpy (SelRecord->GenID, EventMsg, size);
  304. LockedAddSELEntry(SelReq, sizeof (SELEventRecord_T), SelRes);
  305. return 0;
  306. }
  307. uint8_t PDK_GetSlotID(void)
  308. {
  309. uint8_t SlotID = 0;
  310. uint8_t check = 0;
  311. if(stm32_gpio_read(GA0_PORT, GA0_PIN) == GPIO_PIN_RESET)
  312. SlotID |= 0x01;
  313. if(stm32_gpio_read(GA1_PORT, GA1_PIN) == GPIO_PIN_RESET)
  314. SlotID |= 0x02;
  315. if(stm32_gpio_read(GA2_PORT, GA2_PIN) == GPIO_PIN_RESET)
  316. SlotID |= 0x04;
  317. if(stm32_gpio_read(GA3_PORT, GA3_PIN) == GPIO_PIN_RESET)
  318. SlotID |= 0x08;
  319. if(stm32_gpio_read(GA4_PORT, GA4_PIN) == GPIO_PIN_RESET)
  320. SlotID |= 0x10;
  321. if(stm32_gpio_read(GAP_PORT, GAP_PIN) == GPIO_PIN_RESET)
  322. SlotID |= 0x20;
  323. int i;
  324. for(i=0;i<6;i++)
  325. check ^= (SlotID>>i)&0x01;
  326. if(check == 0)
  327. printf("Slot ID check error! GAP = %#x, GA[4:0] = %#x.\n", (SlotID>>5), (SlotID&0x1f));
  328. return SlotID&0x1f;
  329. }
  330. uint8_t PDK_GetChassisID(void)
  331. {
  332. uint8_t ChassisID = 0;
  333. if(stm32_gpio_read(RACKID0_PORT, RACKID0_PIN) == GPIO_PIN_SET)
  334. ChassisID |= 0x01;
  335. if(stm32_gpio_read(RACKID1_PORT, RACKID1_PIN) == GPIO_PIN_SET)
  336. ChassisID |= 0x02;
  337. if(stm32_gpio_read(RACKID2_PORT, RACKID2_PIN) == GPIO_PIN_SET)
  338. ChassisID |= 0x04;
  339. if(stm32_gpio_read(RACKID3_PORT, RACKID3_PIN) == GPIO_PIN_SET)
  340. ChassisID |= 0x08;
  341. if(stm32_gpio_read(RACKID4_PORT, RACKID4_PIN) == GPIO_PIN_SET)
  342. ChassisID |= 0x10;
  343. if(stm32_gpio_read(RACKID5_PORT, RACKID5_PIN) == GPIO_PIN_SET)
  344. ChassisID |= 0x20;
  345. return ChassisID;
  346. }
  347. int PDK_PowerOffChassis(void)
  348. {
  349. printf("Api power off chassis\n");
  350. g_BMCInfo.PowerGoodFlag = 0;
  351. }
  352. int PDK_PowerOnChassis(void)
  353. {
  354. printf("power on chassis\n");
  355. g_BMCInfo.PowerGoodFlag = 1;
  356. }
  357. int PDK_SoftOffChassis(void)
  358. {
  359. printf("soft off chassis\n");
  360. g_BMCInfo.PowerGoodFlag = 0;
  361. }
  362. int PDK_PowerCycleChassis(void)
  363. {
  364. printf("power cycle chassis\n");
  365. }
  366. int PDK_ResetChassis(void)
  367. {
  368. printf("power reset chassis\n");
  369. }
  370. int PDK_DiagInterruptChassis(void)
  371. {
  372. printf("power diag chassis\n");
  373. }
  374. int PDK_FanControl(void)
  375. {
  376. ;
  377. }
  378. //设置IP地址
  379. /*
  380. * 函数名称 : int setip(char *ip)
  381. * 函数功能 : 设置系统IP地址
  382. * 参 数 :
  383. *char *ip :设置的IP地址,以点分十进制的字符串方式表示,如“192.168.0.5”
  384. * 返 回 值 : 0 : 成功 ; -1 : 失败
  385. */
  386. int setip(char *ip)
  387. {
  388. struct ifreq temp;
  389. struct sockaddr_in *addr;
  390. int fd = 0;
  391. int ret = -1;
  392. strcpy(temp.ifr_name, "eth0");
  393. if((fd=socket(AF_INET, SOCK_STREAM, 0))<0)
  394. {
  395. return -1;
  396. }
  397. addr = (struct sockaddr_in *)&(temp.ifr_addr);
  398. addr->sin_family = AF_INET;
  399. addr->sin_addr.s_addr = inet_addr(ip);
  400. ret = ioctl(fd, SIOCSIFADDR, &temp);
  401. close(fd);
  402. if(ret < 0)
  403. return -1;
  404. return 0;
  405. }
  406. //获取IP地址
  407. /*
  408. * 函数名称 : char * getip(char *ip_buf)
  409. * 函数功能 : 获取系統IP地址
  410. * 参 数 :
  411. *char *ip_buf :用来存放IP地址的内存空间
  412. * 返 回 值 : ip_buf : 存放IP地址的内存地址
  413. */
  414. char* getip(char *ip_buf)
  415. {
  416. struct ifreq temp;
  417. struct sockaddr_in *myaddr;
  418. int fd = 0;
  419. int ret = -1;
  420. strcpy(temp.ifr_name, "eth0");
  421. if((fd=socket(AF_INET, SOCK_STREAM, 0))<0)
  422. {
  423. return NULL;
  424. }
  425. ret = ioctl(fd, SIOCGIFADDR, &temp);
  426. close(fd);
  427. if(ret < 0)
  428. return NULL;
  429. myaddr = (struct sockaddr_in *)&(temp.ifr_addr);
  430. strcpy(ip_buf, (char*)inet_ntoa(myaddr->sin_addr));
  431. return ip_buf;
  432. }
  433. char* getmac(char *mac_buf)
  434. {
  435. struct ifreq temp;
  436. struct sockaddr_in *myaddr;
  437. int fd = 0;
  438. int ret = -1;
  439. strcpy(temp.ifr_name, "eth0");
  440. if((fd=socket(AF_INET, SOCK_STREAM, 0))<0)
  441. {
  442. return NULL;
  443. }
  444. if(ioctl(fd,SIOCGIFHWADDR,&temp)<0)
  445. {
  446. printf("Get mac address ioctl fail!\n");
  447. }
  448. else
  449. {
  450. sprintf(mac_buf, "%02x:%02x:%02x:%02x:%02x:%02x\n",
  451. (unsigned char)temp.ifr_hwaddr.sa_data[0],
  452. (unsigned char)temp.ifr_hwaddr.sa_data[1],
  453. (unsigned char)temp.ifr_hwaddr.sa_data[2],
  454. (unsigned char)temp.ifr_hwaddr.sa_data[3],
  455. (unsigned char)temp.ifr_hwaddr.sa_data[4],
  456. (unsigned char)temp.ifr_hwaddr.sa_data[5]);
  457. }
  458. close(fd);
  459. return mac_buf;
  460. }
  461. int FlushUserInfoTbl(void)
  462. {
  463. // sf_sector_erase(5, USERTBL_FLASH_ADDR);
  464. // sf_write(5, USERTBL_FLASH_ADDR, (uint8_t*)g_BMCInfo.UserInfoTbl, sizeof(UserInfo_T)*MAX_USER_NUM);
  465. return 0;
  466. }
  467. int UpdateUserInfoTble(void)
  468. {
  469. // sf_read(5, USERTBL_FLASH_ADDR, (uint8_t*)g_BMCInfo.UserInfoTbl, sizeof(UserInfo_T)*MAX_USER_NUM);
  470. return 0;
  471. }
  472. int getSensorHistory(uint8_t sensorNum, uint8_t *phistoryBuf)
  473. {
  474. int i =0;
  475. for(i=0;i<SENSOR_NUMBERS;i++)
  476. {
  477. if(gSensorHistoryInfo[i].SensorNum == sensorNum)
  478. {
  479. memcpy(phistoryBuf, gSensorHistoryInfo[i].History, HISTORY_DATA_SIZE);
  480. return 0;
  481. }
  482. }
  483. if(i >= SENSOR_NUMBERS)
  484. {
  485. printf("---> can't find sensorNum!\n");
  486. return -1;
  487. }
  488. }