tuner_r820t.c 86 KB

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  1. /*
  2. * R820T tuner driver, taken from Realteks RTL2832U Linux Kernel Driver
  3. *
  4. * This driver is a mess, and should be cleaned up/rewritten.
  5. *
  6. */
  7. #include <stdint.h>
  8. #include <stdio.h>
  9. #include "rtlsdr_i2c.h"
  10. #include "tuner_r820t.h"
  11. int r820t_SetRfFreqHz(void *pTuner, unsigned long RfFreqHz)
  12. {
  13. R828_Set_Info R828Info;
  14. // if(pExtra->IsStandardModeSet==NO)
  15. // goto error_status_set_tuner_rf_frequency;
  16. // R828Info.R828_Standard = (R828_Standard_Type)pExtra->StandardMode;
  17. R828Info.R828_Standard = (R828_Standard_Type)DVB_T_6M;
  18. R828Info.RF_Hz = (UINT32)(RfFreqHz);
  19. R828Info.RF_KHz = (UINT32)(RfFreqHz/1000);
  20. if(R828_SetFrequency(pTuner, R828Info, NORMAL_MODE) != RT_Success)
  21. return FUNCTION_ERROR;
  22. return FUNCTION_SUCCESS;
  23. }
  24. int r820t_SetStandardMode(void *pTuner, int StandardMode)
  25. {
  26. if(R828_SetStandard(pTuner, (R828_Standard_Type)StandardMode) != RT_Success)
  27. return FUNCTION_ERROR;
  28. return FUNCTION_SUCCESS;
  29. }
  30. int r820t_SetStandby(void *pTuner, int LoopThroughType)
  31. {
  32. if(R828_Standby(pTuner, (R828_LoopThrough_Type)LoopThroughType) != RT_Success)
  33. return FUNCTION_ERROR;
  34. return FUNCTION_SUCCESS;
  35. }
  36. // The following context is implemented for R820T source code.
  37. /* just reverses the bits of a byte */
  38. int
  39. r820t_Convert(int InvertNum)
  40. {
  41. int ReturnNum;
  42. int AddNum;
  43. int BitNum;
  44. int CountNum;
  45. ReturnNum = 0;
  46. AddNum = 0x80;
  47. BitNum = 0x01;
  48. for(CountNum = 0;CountNum < 8;CountNum ++)
  49. {
  50. if(BitNum & InvertNum)
  51. ReturnNum += AddNum;
  52. AddNum /= 2;
  53. BitNum *= 2;
  54. }
  55. return ReturnNum;
  56. }
  57. R828_ErrCode
  58. I2C_Write_Len(void *pTuner, R828_I2C_LEN_TYPE *I2C_Info)
  59. {
  60. unsigned char DeviceAddr;
  61. unsigned int i, j;
  62. unsigned char RegStartAddr;
  63. unsigned char *pWritingBytes;
  64. unsigned long ByteNum;
  65. unsigned char WritingBuffer[128];
  66. unsigned long WritingByteNum, WritingByteNumMax, WritingByteNumRem;
  67. unsigned char RegWritingAddr;
  68. // Get regiser start address, writing bytes, and byte number.
  69. RegStartAddr = I2C_Info->RegAddr;
  70. pWritingBytes = I2C_Info->Data;
  71. ByteNum = (unsigned long)I2C_Info->Len;
  72. // Calculate maximum writing byte number.
  73. // WritingByteNumMax = pBaseInterface->I2cWritingByteNumMax - LEN_1_BYTE;
  74. WritingByteNumMax = 2 - 1; //9 orig
  75. // Set tuner register bytes with writing bytes.
  76. // Note: Set tuner register bytes considering maximum writing byte number.
  77. for(i = 0; i < ByteNum; i += WritingByteNumMax)
  78. {
  79. // Set register writing address.
  80. RegWritingAddr = RegStartAddr + i;
  81. // Calculate remainder writing byte number.
  82. WritingByteNumRem = ByteNum - i;
  83. // Determine writing byte number.
  84. WritingByteNum = (WritingByteNumRem > WritingByteNumMax) ? WritingByteNumMax : WritingByteNumRem;
  85. // Set writing buffer.
  86. // Note: The I2C format of tuner register byte setting is as follows:
  87. // start_bit + (DeviceAddr | writing_bit) + RegWritingAddr + writing_bytes (WritingByteNum bytes) +
  88. // stop_bit
  89. WritingBuffer[0] = RegWritingAddr;
  90. for(j = 0; j < WritingByteNum; j++)
  91. WritingBuffer[j+1] = pWritingBytes[i + j];
  92. // Set tuner register bytes with writing buffer.
  93. // if(pI2cBridge->ForwardI2cWritingCmd(pI2cBridge, DeviceAddr, WritingBuffer, WritingByteNum + LEN_1_BYTE) !=
  94. // FUNCTION_SUCCESS)
  95. // goto error_status_set_tuner_registers;
  96. if (rtlsdr_i2c_write_fn(pTuner, R820T_I2C_ADDR, WritingBuffer, WritingByteNum + 1) < 0)
  97. return RT_Fail;
  98. }
  99. return RT_Success;
  100. }
  101. R828_ErrCode
  102. I2C_Read_Len(void *pTuner, R828_I2C_LEN_TYPE *I2C_Info)
  103. {
  104. uint8_t DeviceAddr;
  105. unsigned int i;
  106. uint8_t RegStartAddr;
  107. uint8_t ReadingBytes[128];
  108. unsigned long ByteNum;
  109. // Get regiser start address, writing bytes, and byte number.
  110. RegStartAddr = 0x00;
  111. ByteNum = (unsigned long)I2C_Info->Len;
  112. // Set tuner register reading address.
  113. // Note: The I2C format of tuner register reading address setting is as follows:
  114. // start_bit + (DeviceAddr | writing_bit) + RegReadingAddr + stop_bit
  115. // if(pI2cBridge->ForwardI2cWritingCmd(pI2cBridge, DeviceAddr, &RegStartAddr, LEN_1_BYTE) != FUNCTION_SUCCESS)
  116. // goto error_status_set_tuner_register_reading_address;
  117. if (rtlsdr_i2c_write_fn(pTuner, R820T_I2C_ADDR, &RegStartAddr, 1) < 0)
  118. return RT_Fail;
  119. // Get tuner register bytes.
  120. // Note: The I2C format of tuner register byte getting is as follows:
  121. // start_bit + (DeviceAddr | reading_bit) + reading_bytes (ReadingByteNum bytes) + stop_bit
  122. // if(pI2cBridge->ForwardI2cReadingCmd(pI2cBridge, DeviceAddr, ReadingBytes, ByteNum) != FUNCTION_SUCCESS)
  123. // goto error_status_get_tuner_registers;
  124. if (rtlsdr_i2c_read_fn(pTuner, R820T_I2C_ADDR, ReadingBytes, ByteNum) < 0)
  125. return RT_Fail;
  126. for(i = 0; i<ByteNum; i++)
  127. {
  128. I2C_Info->Data[i] = (UINT8)r820t_Convert(ReadingBytes[i]);
  129. }
  130. return RT_Success;
  131. error_status_get_tuner_registers:
  132. error_status_set_tuner_register_reading_address:
  133. return RT_Fail;
  134. }
  135. R828_ErrCode
  136. I2C_Write(void *pTuner, R828_I2C_TYPE *I2C_Info)
  137. {
  138. uint8_t WritingBuffer[2];
  139. // Set writing bytes.
  140. // Note: The I2C format of tuner register byte setting is as follows:
  141. // start_bit + (DeviceAddr | writing_bit) + addr + data + stop_bit
  142. WritingBuffer[0] = I2C_Info->RegAddr;
  143. WritingBuffer[1] = I2C_Info->Data;
  144. // Set tuner register bytes with writing buffer.
  145. // if(pI2cBridge->ForwardI2cWritingCmd(pI2cBridge, DeviceAddr, WritingBuffer, LEN_2_BYTE) != FUNCTION_SUCCESS)
  146. // goto error_status_set_tuner_registers;
  147. // printf("called %s: %02x -> %02x\n", __FUNCTION__, WritingBuffer[0], WritingBuffer[1]);
  148. if (rtlsdr_i2c_write_fn(pTuner, R820T_I2C_ADDR, WritingBuffer, 2) < 0)
  149. return RT_Fail;
  150. return RT_Success;
  151. }
  152. void
  153. R828_Delay_MS(
  154. void *pTuner,
  155. unsigned long WaitTimeMs
  156. )
  157. {
  158. /* simply don't wait for now */
  159. return;
  160. }
  161. //-----------------------------------------------------
  162. //
  163. // Filename: R820T.c
  164. //
  165. // This file is R820T tuner driver
  166. // Copyright 2011 by Rafaelmicro., Inc.
  167. //
  168. //-----------------------------------------------------
  169. //#include "stdafx.h"
  170. //#include "R828.h"
  171. //#include "..\I2C_Sys.h"
  172. #if(TUNER_CLK_OUT==TRUE) //enable tuner clk output for share Xtal application
  173. UINT8 R828_iniArry[27] = {0x83, 0x32, 0x75, 0xC0, 0x40, 0xD6, 0x6C, 0xF5, 0x63,
  174. /* 0x05 0x06 0x07 0x08 0x09 0x0A 0x0B 0x0C 0x0D */
  175. 0x75, 0x68, 0x6C, 0x83, 0x80, 0x00, 0x0F, 0x00, 0xC0,//xtal_check
  176. /* 0x0E 0x0F 0x10 0x11 0x12 0x13 0x14 0x15 0x16 */
  177. 0x30, 0x48, 0xCC, 0x60, 0x00, 0x54, 0xAE, 0x4A, 0xC0};
  178. /* 0x17 0x18 0x19 0x1A 0x1B 0x1C 0x1D 0x1E 0x1F */
  179. #else
  180. UINT8 R828_iniArry[27] = {0x83, 0x32, 0x75, 0xC0, 0x40, 0xD6, 0x6C, 0xF5, 0x63,
  181. /* 0x05 0x06 0x07 0x08 0x09 0x0A 0x0B 0x0C 0x0D */
  182. 0x75, 0x78, 0x6C, 0x83, 0x80, 0x00, 0x0F, 0x00, 0xC0,//xtal_check
  183. /* 0x0E 0x0F 0x10 0x11 0x12 0x13 0x14 0x15 0x16 */
  184. 0x30, 0x48, 0xCC, 0x60, 0x00, 0x54, 0xAE, 0x4A, 0xC0};
  185. /* 0x17 0x18 0x19 0x1A 0x1B 0x1C 0x1D 0x1E 0x1F */
  186. #endif
  187. UINT8 R828_ADDRESS=0x34;
  188. UINT8 Rafael_Chip = R820T;
  189. //----------------------------------------------------------//
  190. // Internal Structs //
  191. //----------------------------------------------------------//
  192. typedef struct _R828_SectType
  193. {
  194. UINT8 Phase_Y;
  195. UINT8 Gain_X;
  196. UINT16 Value;
  197. }R828_SectType;
  198. typedef enum _BW_Type
  199. {
  200. BW_6M = 0,
  201. BW_7M,
  202. BW_8M,
  203. BW_1_7M,
  204. BW_10M,
  205. BW_200K
  206. }BW_Type;
  207. typedef struct _Sys_Info_Type
  208. {
  209. UINT16 IF_KHz;
  210. BW_Type BW;
  211. UINT32 FILT_CAL_LO;
  212. UINT8 FILT_GAIN;
  213. UINT8 IMG_R;
  214. UINT8 FILT_Q;
  215. UINT8 HP_COR;
  216. UINT8 EXT_ENABLE;
  217. UINT8 LOOP_THROUGH;
  218. UINT8 LT_ATT;
  219. UINT8 FLT_EXT_WIDEST;
  220. UINT8 POLYFIL_CUR;
  221. }Sys_Info_Type;
  222. typedef struct _Freq_Info_Type
  223. {
  224. UINT8 OPEN_D;
  225. UINT8 RF_MUX_PLOY;
  226. UINT8 TF_C;
  227. UINT8 XTAL_CAP20P;
  228. UINT8 XTAL_CAP10P;
  229. UINT8 XTAL_CAP0P;
  230. UINT8 IMR_MEM;
  231. }Freq_Info_Type;
  232. typedef struct _SysFreq_Info_Type
  233. {
  234. UINT8 LNA_TOP;
  235. UINT8 LNA_VTH_L;
  236. UINT8 MIXER_TOP;
  237. UINT8 MIXER_VTH_L;
  238. UINT8 AIR_CABLE1_IN;
  239. UINT8 CABLE2_IN;
  240. UINT8 PRE_DECT;
  241. UINT8 LNA_DISCHARGE;
  242. UINT8 CP_CUR;
  243. UINT8 DIV_BUF_CUR;
  244. UINT8 FILTER_CUR;
  245. }SysFreq_Info_Type;
  246. //----------------------------------------------------------//
  247. // Internal Parameters //
  248. //----------------------------------------------------------//
  249. enum XTAL_CAP_VALUE
  250. {
  251. XTAL_LOW_CAP_30P = 0,
  252. XTAL_LOW_CAP_20P,
  253. XTAL_LOW_CAP_10P,
  254. XTAL_LOW_CAP_0P,
  255. XTAL_HIGH_CAP_0P
  256. };
  257. UINT8 R828_Arry[27];
  258. R828_SectType IMR_Data[5] = {
  259. {0, 0, 0},
  260. {0, 0, 0},
  261. {0, 0, 0},
  262. {0, 0, 0},
  263. {0, 0, 0}
  264. };//Please keep this array data for standby mode.
  265. R828_I2C_TYPE R828_I2C;
  266. R828_I2C_LEN_TYPE R828_I2C_Len;
  267. UINT32 R828_IF_khz;
  268. UINT32 R828_CAL_LO_khz;
  269. UINT8 R828_IMR_point_num;
  270. UINT8 R828_IMR_done_flag = FALSE;
  271. UINT8 R828_Fil_Cal_flag[STD_SIZE];
  272. static UINT8 R828_Fil_Cal_code[STD_SIZE];
  273. static UINT8 Xtal_cap_sel = XTAL_LOW_CAP_0P;
  274. static UINT8 Xtal_cap_sel_tmp = XTAL_LOW_CAP_0P;
  275. //----------------------------------------------------------//
  276. // Internal static struct //
  277. //----------------------------------------------------------//
  278. static SysFreq_Info_Type SysFreq_Info1;
  279. static Sys_Info_Type Sys_Info1;
  280. //static Freq_Info_Type R828_Freq_Info;
  281. static Freq_Info_Type Freq_Info1;
  282. //----------------------------------------------------------//
  283. // Internal Functions //
  284. //----------------------------------------------------------//
  285. R828_ErrCode R828_Xtal_Check(void *pTuner);
  286. R828_ErrCode R828_InitReg(void *pTuner);
  287. R828_ErrCode R828_IMR_Prepare(void *pTuner);
  288. R828_ErrCode R828_IMR(void *pTuner, UINT8 IMR_MEM, int IM_Flag);
  289. R828_ErrCode R828_PLL(void *pTuner, UINT32 LO_Freq, R828_Standard_Type R828_Standard);
  290. R828_ErrCode R828_MUX(void *pTuner, UINT32 RF_KHz);
  291. R828_ErrCode R828_IQ(void *pTuner, R828_SectType* IQ_Pont);
  292. R828_ErrCode R828_IQ_Tree(void *pTuner, UINT8 FixPot, UINT8 FlucPot, UINT8 PotReg, R828_SectType* CompareTree);
  293. R828_ErrCode R828_CompreCor(R828_SectType* CorArry);
  294. R828_ErrCode R828_CompreStep(void *pTuner, R828_SectType* StepArry, UINT8 Pace);
  295. R828_ErrCode R828_Muti_Read(void *pTuner, UINT8 IMR_Reg, UINT16* IMR_Result_Data);
  296. R828_ErrCode R828_Section(void *pTuner, R828_SectType* SectionArry);
  297. R828_ErrCode R828_F_IMR(void *pTuner, R828_SectType* IQ_Pont);
  298. R828_ErrCode R828_IMR_Cross(void *pTuner, R828_SectType* IQ_Pont, UINT8* X_Direct);
  299. Sys_Info_Type R828_Sys_Sel(R828_Standard_Type R828_Standard);
  300. Freq_Info_Type R828_Freq_Sel(UINT32 RF_freq);
  301. SysFreq_Info_Type R828_SysFreq_Sel(R828_Standard_Type R828_Standard,UINT32 RF_freq);
  302. R828_ErrCode R828_Filt_Cal(void *pTuner, UINT32 Cal_Freq,BW_Type R828_BW);
  303. //R828_ErrCode R828_SetFrequency(void *pTuner, R828_Set_Info R828_INFO, R828_SetFreq_Type R828_SetFreqMode);
  304. Sys_Info_Type R828_Sys_Sel(R828_Standard_Type R828_Standard)
  305. {
  306. Sys_Info_Type R828_Sys_Info;
  307. switch (R828_Standard)
  308. {
  309. case DVB_T_6M:
  310. case DVB_T2_6M:
  311. R828_Sys_Info.IF_KHz=3570;
  312. R828_Sys_Info.BW=BW_6M;
  313. R828_Sys_Info.FILT_CAL_LO=56000; //52000->56000
  314. R828_Sys_Info.FILT_GAIN=0x10; //+3dB, 6MHz on
  315. R828_Sys_Info.IMG_R=0x00; //image negative
  316. R828_Sys_Info.FILT_Q=0x10; //R10[4]:low Q(1'b1)
  317. R828_Sys_Info.HP_COR=0x6B; // 1.7M disable, +2cap, 1.0MHz
  318. R828_Sys_Info.EXT_ENABLE=0x60; //R30[6]=1 ext enable; R30[5]:1 ext at LNA max-1
  319. R828_Sys_Info.LOOP_THROUGH=0x00; //R5[7], LT ON
  320. R828_Sys_Info.LT_ATT=0x00; //R31[7], LT ATT enable
  321. R828_Sys_Info.FLT_EXT_WIDEST=0x00;//R15[7]: FLT_EXT_WIDE OFF
  322. R828_Sys_Info.POLYFIL_CUR=0x60; //R25[6:5]:Min
  323. break;
  324. case DVB_T_7M:
  325. case DVB_T2_7M:
  326. R828_Sys_Info.IF_KHz=4070;
  327. R828_Sys_Info.BW=BW_7M;
  328. R828_Sys_Info.FILT_CAL_LO=60000;
  329. R828_Sys_Info.FILT_GAIN=0x10; //+3dB, 6MHz on
  330. R828_Sys_Info.IMG_R=0x00; //image negative
  331. R828_Sys_Info.FILT_Q=0x10; //R10[4]:low Q(1'b1)
  332. R828_Sys_Info.HP_COR=0x2B; // 1.7M disable, +1cap, 1.0MHz
  333. R828_Sys_Info.EXT_ENABLE=0x60; //R30[6]=1 ext enable; R30[5]:1 ext at LNA max-1
  334. R828_Sys_Info.LOOP_THROUGH=0x00; //R5[7], LT ON
  335. R828_Sys_Info.LT_ATT=0x00; //R31[7], LT ATT enable
  336. R828_Sys_Info.FLT_EXT_WIDEST=0x00;//R15[7]: FLT_EXT_WIDE OFF
  337. R828_Sys_Info.POLYFIL_CUR=0x60; //R25[6:5]:Min
  338. break;
  339. case DVB_T_7M_2:
  340. case DVB_T2_7M_2:
  341. R828_Sys_Info.IF_KHz=4570;
  342. R828_Sys_Info.BW=BW_7M;
  343. R828_Sys_Info.FILT_CAL_LO=63000;
  344. R828_Sys_Info.FILT_GAIN=0x10; //+3dB, 6MHz on
  345. R828_Sys_Info.IMG_R=0x00; //image negative
  346. R828_Sys_Info.FILT_Q=0x10; //R10[4]:low Q(1'b1)
  347. R828_Sys_Info.HP_COR=0x2A; // 1.7M disable, +1cap, 1.25MHz
  348. R828_Sys_Info.EXT_ENABLE=0x60; //R30[6]=1 ext enable; R30[5]:1 ext at LNA max-1
  349. R828_Sys_Info.LOOP_THROUGH=0x00; //R5[7], LT ON
  350. R828_Sys_Info.LT_ATT=0x00; //R31[7], LT ATT enable
  351. R828_Sys_Info.FLT_EXT_WIDEST=0x00;//R15[7]: FLT_EXT_WIDE OFF
  352. R828_Sys_Info.POLYFIL_CUR=0x60; //R25[6:5]:Min
  353. break;
  354. case DVB_T_8M:
  355. case DVB_T2_8M:
  356. R828_Sys_Info.IF_KHz=4570;
  357. R828_Sys_Info.BW=BW_8M;
  358. R828_Sys_Info.FILT_CAL_LO=68500;
  359. R828_Sys_Info.FILT_GAIN=0x10; //+3dB, 6MHz on
  360. R828_Sys_Info.IMG_R=0x00; //image negative
  361. R828_Sys_Info.FILT_Q=0x10; //R10[4]:low Q(1'b1)
  362. R828_Sys_Info.HP_COR=0x0B; // 1.7M disable, +0cap, 1.0MHz
  363. R828_Sys_Info.EXT_ENABLE=0x60; //R30[6]=1 ext enable; R30[5]:1 ext at LNA max-1
  364. R828_Sys_Info.LOOP_THROUGH=0x00; //R5[7], LT ON
  365. R828_Sys_Info.LT_ATT=0x00; //R31[7], LT ATT enable
  366. R828_Sys_Info.FLT_EXT_WIDEST=0x00;//R15[7]: FLT_EXT_WIDE OFF
  367. R828_Sys_Info.POLYFIL_CUR=0x60; //R25[6:5]:Min
  368. break;
  369. case ISDB_T:
  370. R828_Sys_Info.IF_KHz=4063;
  371. R828_Sys_Info.BW=BW_6M;
  372. R828_Sys_Info.FILT_CAL_LO=59000;
  373. R828_Sys_Info.FILT_GAIN=0x10; //+3dB, 6MHz on
  374. R828_Sys_Info.IMG_R=0x00; //image negative
  375. R828_Sys_Info.FILT_Q=0x10; //R10[4]:low Q(1'b1)
  376. R828_Sys_Info.HP_COR=0x6A; // 1.7M disable, +2cap, 1.25MHz
  377. R828_Sys_Info.EXT_ENABLE=0x40; //R30[6], ext enable; R30[5]:0 ext at LNA max
  378. R828_Sys_Info.LOOP_THROUGH=0x00; //R5[7], LT ON
  379. R828_Sys_Info.LT_ATT=0x00; //R31[7], LT ATT enable
  380. R828_Sys_Info.FLT_EXT_WIDEST=0x00;//R15[7]: FLT_EXT_WIDE OFF
  381. R828_Sys_Info.POLYFIL_CUR=0x60; //R25[6:5]:Min
  382. break;
  383. default: //DVB_T_8M
  384. R828_Sys_Info.IF_KHz=4570;
  385. R828_Sys_Info.BW=BW_8M;
  386. R828_Sys_Info.FILT_CAL_LO=68500;
  387. R828_Sys_Info.FILT_GAIN=0x10; //+3dB, 6MHz on
  388. R828_Sys_Info.IMG_R=0x00; //image negative
  389. R828_Sys_Info.FILT_Q=0x10; //R10[4]:low Q(1'b1)
  390. R828_Sys_Info.HP_COR=0x0D; // 1.7M disable, +0cap, 0.7MHz
  391. R828_Sys_Info.EXT_ENABLE=0x60; //R30[6]=1 ext enable; R30[5]:1 ext at LNA max-1
  392. R828_Sys_Info.LOOP_THROUGH=0x00; //R5[7], LT ON
  393. R828_Sys_Info.LT_ATT=0x00; //R31[7], LT ATT enable
  394. R828_Sys_Info.FLT_EXT_WIDEST=0x00;//R15[7]: FLT_EXT_WIDE OFF
  395. R828_Sys_Info.POLYFIL_CUR=0x60; //R25[6:5]:Min
  396. break;
  397. }
  398. return R828_Sys_Info;
  399. }
  400. Freq_Info_Type R828_Freq_Sel(UINT32 LO_freq)
  401. {
  402. Freq_Info_Type R828_Freq_Info;
  403. if(LO_freq<50000)
  404. {
  405. R828_Freq_Info.OPEN_D=0x08; // low
  406. R828_Freq_Info.RF_MUX_PLOY = 0x02; //R26[7:6]=0 (LPF) R26[1:0]=2 (low)
  407. R828_Freq_Info.TF_C=0xDF; //R27[7:0] band2,band0
  408. R828_Freq_Info.XTAL_CAP20P=0x02; //R16[1:0] 20pF (10)
  409. R828_Freq_Info.XTAL_CAP10P=0x01;
  410. R828_Freq_Info.XTAL_CAP0P=0x00;
  411. R828_Freq_Info.IMR_MEM = 0;
  412. }
  413. else if(LO_freq>=50000 && LO_freq<55000)
  414. {
  415. R828_Freq_Info.OPEN_D=0x08; // low
  416. R828_Freq_Info.RF_MUX_PLOY = 0x02; //R26[7:6]=0 (LPF) R26[1:0]=2 (low)
  417. R828_Freq_Info.TF_C=0xBE; //R27[7:0] band4,band1
  418. R828_Freq_Info.XTAL_CAP20P=0x02; //R16[1:0] 20pF (10)
  419. R828_Freq_Info.XTAL_CAP10P=0x01;
  420. R828_Freq_Info.XTAL_CAP0P=0x00;
  421. R828_Freq_Info.IMR_MEM = 0;
  422. }
  423. else if( LO_freq>=55000 && LO_freq<60000)
  424. {
  425. R828_Freq_Info.OPEN_D=0x08; // low
  426. R828_Freq_Info.RF_MUX_PLOY = 0x02; //R26[7:6]=0 (LPF) R26[1:0]=2 (low)
  427. R828_Freq_Info.TF_C=0x8B; //R27[7:0] band7,band4
  428. R828_Freq_Info.XTAL_CAP20P=0x02; //R16[1:0] 20pF (10)
  429. R828_Freq_Info.XTAL_CAP10P=0x01;
  430. R828_Freq_Info.XTAL_CAP0P=0x00;
  431. R828_Freq_Info.IMR_MEM = 0;
  432. }
  433. else if( LO_freq>=60000 && LO_freq<65000)
  434. {
  435. R828_Freq_Info.OPEN_D=0x08; // low
  436. R828_Freq_Info.RF_MUX_PLOY = 0x02; //R26[7:6]=0 (LPF) R26[1:0]=2 (low)
  437. R828_Freq_Info.TF_C=0x7B; //R27[7:0] band8,band4
  438. R828_Freq_Info.XTAL_CAP20P=0x02; //R16[1:0] 20pF (10)
  439. R828_Freq_Info.XTAL_CAP10P=0x01;
  440. R828_Freq_Info.XTAL_CAP0P=0x00;
  441. R828_Freq_Info.IMR_MEM = 0;
  442. }
  443. else if( LO_freq>=65000 && LO_freq<70000)
  444. {
  445. R828_Freq_Info.OPEN_D=0x08; // low
  446. R828_Freq_Info.RF_MUX_PLOY = 0x02; //R26[7:6]=0 (LPF) R26[1:0]=2 (low)
  447. R828_Freq_Info.TF_C=0x69; //R27[7:0] band9,band6
  448. R828_Freq_Info.XTAL_CAP20P=0x02; //R16[1:0] 20pF (10)
  449. R828_Freq_Info.XTAL_CAP10P=0x01;
  450. R828_Freq_Info.XTAL_CAP0P=0x00;
  451. R828_Freq_Info.IMR_MEM = 0;
  452. }
  453. else if( LO_freq>=70000 && LO_freq<75000)
  454. {
  455. R828_Freq_Info.OPEN_D=0x08; // low
  456. R828_Freq_Info.RF_MUX_PLOY = 0x02; //R26[7:6]=0 (LPF) R26[1:0]=2 (low)
  457. R828_Freq_Info.TF_C=0x58; //R27[7:0] band10,band7
  458. R828_Freq_Info.XTAL_CAP20P=0x02; //R16[1:0] 20pF (10)
  459. R828_Freq_Info.XTAL_CAP10P=0x01;
  460. R828_Freq_Info.XTAL_CAP0P=0x00;
  461. R828_Freq_Info.IMR_MEM = 0;
  462. }
  463. else if( LO_freq>=75000 && LO_freq<80000)
  464. {
  465. R828_Freq_Info.OPEN_D=0x00; // high
  466. R828_Freq_Info.RF_MUX_PLOY = 0x02; //R26[7:6]=0 (LPF) R26[1:0]=2 (low)
  467. R828_Freq_Info.TF_C=0x44; //R27[7:0] band11,band11
  468. R828_Freq_Info.XTAL_CAP20P=0x02; //R16[1:0] 20pF (10)
  469. R828_Freq_Info.XTAL_CAP10P=0x01;
  470. R828_Freq_Info.XTAL_CAP0P=0x00;
  471. R828_Freq_Info.IMR_MEM = 0;
  472. }
  473. else if( LO_freq>=80000 && LO_freq<90000)
  474. {
  475. R828_Freq_Info.OPEN_D=0x00; // high
  476. R828_Freq_Info.RF_MUX_PLOY = 0x02; //R26[7:6]=0 (LPF) R26[1:0]=2 (low)
  477. R828_Freq_Info.TF_C=0x44; //R27[7:0] band11,band11
  478. R828_Freq_Info.XTAL_CAP20P=0x02; //R16[1:0] 20pF (10)
  479. R828_Freq_Info.XTAL_CAP10P=0x01;
  480. R828_Freq_Info.XTAL_CAP0P=0x00;
  481. R828_Freq_Info.IMR_MEM = 0;
  482. }
  483. else if( LO_freq>=90000 && LO_freq<100000)
  484. {
  485. R828_Freq_Info.OPEN_D=0x00; // high
  486. R828_Freq_Info.RF_MUX_PLOY = 0x02; //R26[7:6]=0 (LPF) R26[1:0]=2 (low)
  487. R828_Freq_Info.TF_C=0x34; //R27[7:0] band12,band11
  488. R828_Freq_Info.XTAL_CAP20P=0x01; //R16[1:0] 10pF (01)
  489. R828_Freq_Info.XTAL_CAP10P=0x01;
  490. R828_Freq_Info.XTAL_CAP0P=0x00;
  491. R828_Freq_Info.IMR_MEM = 0;
  492. }
  493. else if( LO_freq>=100000 && LO_freq<110000)
  494. {
  495. R828_Freq_Info.OPEN_D=0x00; // high
  496. R828_Freq_Info.RF_MUX_PLOY = 0x02; //R26[7:6]=0 (LPF) R26[1:0]=2 (low)
  497. R828_Freq_Info.TF_C=0x34; //R27[7:0] band12,band11
  498. R828_Freq_Info.XTAL_CAP20P=0x01; //R16[1:0] 10pF (01)
  499. R828_Freq_Info.XTAL_CAP10P=0x01;
  500. R828_Freq_Info.XTAL_CAP0P=0x00;
  501. R828_Freq_Info.IMR_MEM = 0;
  502. }
  503. else if( LO_freq>=110000 && LO_freq<120000)
  504. {
  505. R828_Freq_Info.OPEN_D=0x00; // high
  506. R828_Freq_Info.RF_MUX_PLOY = 0x02; //R26[7:6]=0 (LPF) R26[1:0]=2 (low)
  507. R828_Freq_Info.TF_C=0x24; //R27[7:0] band13,band11
  508. R828_Freq_Info.XTAL_CAP20P=0x01; //R16[1:0] 10pF (01)
  509. R828_Freq_Info.XTAL_CAP10P=0x01;
  510. R828_Freq_Info.XTAL_CAP0P=0x00;
  511. R828_Freq_Info.IMR_MEM = 1;
  512. }
  513. else if( LO_freq>=120000 && LO_freq<140000)
  514. {
  515. R828_Freq_Info.OPEN_D=0x00; // high
  516. R828_Freq_Info.RF_MUX_PLOY = 0x02; //R26[7:6]=0 (LPF) R26[1:0]=2 (low)
  517. R828_Freq_Info.TF_C=0x24; //R27[7:0] band13,band11
  518. R828_Freq_Info.XTAL_CAP20P=0x01; //R16[1:0] 10pF (01)
  519. R828_Freq_Info.XTAL_CAP10P=0x01;
  520. R828_Freq_Info.XTAL_CAP0P=0x00;
  521. R828_Freq_Info.IMR_MEM = 1;
  522. }
  523. else if( LO_freq>=140000 && LO_freq<180000)
  524. {
  525. R828_Freq_Info.OPEN_D=0x00; // high
  526. R828_Freq_Info.RF_MUX_PLOY = 0x02; //R26[7:6]=0 (LPF) R26[1:0]=2 (low)
  527. R828_Freq_Info.TF_C=0x14; //R27[7:0] band14,band11
  528. R828_Freq_Info.XTAL_CAP20P=0x01; //R16[1:0] 10pF (01)
  529. R828_Freq_Info.XTAL_CAP10P=0x01;
  530. R828_Freq_Info.XTAL_CAP0P=0x00;
  531. R828_Freq_Info.IMR_MEM = 1;
  532. }
  533. else if( LO_freq>=180000 && LO_freq<220000)
  534. {
  535. R828_Freq_Info.OPEN_D=0x00; // high
  536. R828_Freq_Info.RF_MUX_PLOY = 0x02; //R26[7:6]=0 (LPF) R26[1:0]=2 (low)
  537. R828_Freq_Info.TF_C=0x13; //R27[7:0] band14,band12
  538. R828_Freq_Info.XTAL_CAP20P=0x00; //R16[1:0] 0pF (00)
  539. R828_Freq_Info.XTAL_CAP10P=0x00;
  540. R828_Freq_Info.XTAL_CAP0P=0x00;
  541. R828_Freq_Info.IMR_MEM = 1;
  542. }
  543. else if( LO_freq>=220000 && LO_freq<250000)
  544. {
  545. R828_Freq_Info.OPEN_D=0x00; // high
  546. R828_Freq_Info.RF_MUX_PLOY = 0x02; //R26[7:6]=0 (LPF) R26[1:0]=2 (low)
  547. R828_Freq_Info.TF_C=0x13; //R27[7:0] band14,band12
  548. R828_Freq_Info.XTAL_CAP20P=0x00; //R16[1:0] 0pF (00)
  549. R828_Freq_Info.XTAL_CAP10P=0x00;
  550. R828_Freq_Info.XTAL_CAP0P=0x00;
  551. R828_Freq_Info.IMR_MEM = 2;
  552. }
  553. else if( LO_freq>=250000 && LO_freq<280000)
  554. {
  555. R828_Freq_Info.OPEN_D=0x00; // high
  556. R828_Freq_Info.RF_MUX_PLOY = 0x02; //R26[7:6]=0 (LPF) R26[1:0]=2 (low)
  557. R828_Freq_Info.TF_C=0x11; //R27[7:0] highest,highest
  558. R828_Freq_Info.XTAL_CAP20P=0x00; //R16[1:0] 0pF (00)
  559. R828_Freq_Info.XTAL_CAP10P=0x00;
  560. R828_Freq_Info.XTAL_CAP0P=0x00;
  561. R828_Freq_Info.IMR_MEM = 2;
  562. }
  563. else if( LO_freq>=280000 && LO_freq<310000)
  564. {
  565. R828_Freq_Info.OPEN_D=0x00; // high
  566. R828_Freq_Info.RF_MUX_PLOY = 0x02; //R26[7:6]=0 (LPF) R26[1:0]=2 (low)
  567. R828_Freq_Info.TF_C=0x00; //R27[7:0] highest,highest
  568. R828_Freq_Info.XTAL_CAP20P=0x00; //R16[1:0] 0pF (00)
  569. R828_Freq_Info.XTAL_CAP10P=0x00;
  570. R828_Freq_Info.XTAL_CAP0P=0x00;
  571. R828_Freq_Info.IMR_MEM = 2;
  572. }
  573. else if( LO_freq>=310000 && LO_freq<450000)
  574. {
  575. R828_Freq_Info.OPEN_D=0x00; // high
  576. R828_Freq_Info.RF_MUX_PLOY = 0x41; //R26[7:6]=1 (bypass) R26[1:0]=1 (middle)
  577. R828_Freq_Info.TF_C=0x00; //R27[7:0] highest,highest
  578. R828_Freq_Info.XTAL_CAP20P=0x00; //R16[1:0] 0pF (00)
  579. R828_Freq_Info.XTAL_CAP10P=0x00;
  580. R828_Freq_Info.XTAL_CAP0P=0x00;
  581. R828_Freq_Info.IMR_MEM = 2;
  582. }
  583. else if( LO_freq>=450000 && LO_freq<588000)
  584. {
  585. R828_Freq_Info.OPEN_D=0x00; // high
  586. R828_Freq_Info.RF_MUX_PLOY = 0x41; //R26[7:6]=1 (bypass) R26[1:0]=1 (middle)
  587. R828_Freq_Info.TF_C=0x00; //R27[7:0] highest,highest
  588. R828_Freq_Info.XTAL_CAP20P=0x00; //R16[1:0] 0pF (00)
  589. R828_Freq_Info.XTAL_CAP10P=0x00;
  590. R828_Freq_Info.XTAL_CAP0P=0x00;
  591. R828_Freq_Info.IMR_MEM = 3;
  592. }
  593. else if( LO_freq>=588000 && LO_freq<650000)
  594. {
  595. R828_Freq_Info.OPEN_D=0x00; // high
  596. R828_Freq_Info.RF_MUX_PLOY = 0x40; //R26[7:6]=1 (bypass) R26[1:0]=0 (highest)
  597. R828_Freq_Info.TF_C=0x00; //R27[7:0] highest,highest
  598. R828_Freq_Info.XTAL_CAP20P=0x00; //R16[1:0] 0pF (00)
  599. R828_Freq_Info.XTAL_CAP10P=0x00;
  600. R828_Freq_Info.XTAL_CAP0P=0x00;
  601. R828_Freq_Info.IMR_MEM = 3;
  602. }
  603. else
  604. {
  605. R828_Freq_Info.OPEN_D=0x00; // high
  606. R828_Freq_Info.RF_MUX_PLOY = 0x40; //R26[7:6]=1 (bypass) R26[1:0]=0 (highest)
  607. R828_Freq_Info.TF_C=0x00; //R27[7:0] highest,highest
  608. R828_Freq_Info.XTAL_CAP20P=0x00; //R16[1:0] 0pF (00)
  609. R828_Freq_Info.XTAL_CAP10P=0x00;
  610. R828_Freq_Info.XTAL_CAP0P=0x00;
  611. R828_Freq_Info.IMR_MEM = 4;
  612. }
  613. return R828_Freq_Info;
  614. }
  615. SysFreq_Info_Type R828_SysFreq_Sel(R828_Standard_Type R828_Standard,UINT32 RF_freq)
  616. {
  617. SysFreq_Info_Type R828_SysFreq_Info;
  618. switch(R828_Standard)
  619. {
  620. case DVB_T_6M:
  621. case DVB_T_7M:
  622. case DVB_T_7M_2:
  623. case DVB_T_8M:
  624. if( (RF_freq==506000) || (RF_freq==666000) || (RF_freq==818000) )
  625. {
  626. R828_SysFreq_Info.MIXER_TOP=0x14; // MIXER TOP:14 , TOP-1, low-discharge
  627. R828_SysFreq_Info.LNA_TOP=0xE5; // Detect BW 3, LNA TOP:4, PreDet Top:2
  628. R828_SysFreq_Info.CP_CUR=0x28; //101, 0.2
  629. R828_SysFreq_Info.DIV_BUF_CUR=0x20; // 10, 200u
  630. }
  631. else
  632. {
  633. R828_SysFreq_Info.MIXER_TOP=0x24; // MIXER TOP:13 , TOP-1, low-discharge
  634. R828_SysFreq_Info.LNA_TOP=0xE5; // Detect BW 3, LNA TOP:4, PreDet Top:2
  635. R828_SysFreq_Info.CP_CUR=0x38; // 111, auto
  636. R828_SysFreq_Info.DIV_BUF_CUR=0x30; // 11, 150u
  637. }
  638. R828_SysFreq_Info.LNA_VTH_L=0x53; // LNA VTH 0.84 , VTL 0.64
  639. R828_SysFreq_Info.MIXER_VTH_L=0x75; // MIXER VTH 1.04, VTL 0.84
  640. R828_SysFreq_Info.AIR_CABLE1_IN=0x00;
  641. R828_SysFreq_Info.CABLE2_IN=0x00;
  642. R828_SysFreq_Info.PRE_DECT=0x40;
  643. R828_SysFreq_Info.LNA_DISCHARGE=14;
  644. R828_SysFreq_Info.FILTER_CUR=0x40; // 10, low
  645. break;
  646. case DVB_T2_6M:
  647. case DVB_T2_7M:
  648. case DVB_T2_7M_2:
  649. case DVB_T2_8M:
  650. R828_SysFreq_Info.MIXER_TOP=0x24; // MIXER TOP:13 , TOP-1, low-discharge
  651. R828_SysFreq_Info.LNA_TOP=0xE5; // Detect BW 3, LNA TOP:4, PreDet Top:2
  652. R828_SysFreq_Info.LNA_VTH_L=0x53; // LNA VTH 0.84 , VTL 0.64
  653. R828_SysFreq_Info.MIXER_VTH_L=0x75; // MIXER VTH 1.04, VTL 0.84
  654. R828_SysFreq_Info.AIR_CABLE1_IN=0x00;
  655. R828_SysFreq_Info.CABLE2_IN=0x00;
  656. R828_SysFreq_Info.PRE_DECT=0x40;
  657. R828_SysFreq_Info.LNA_DISCHARGE=14;
  658. R828_SysFreq_Info.CP_CUR=0x38; // 111, auto
  659. R828_SysFreq_Info.DIV_BUF_CUR=0x30; // 11, 150u
  660. R828_SysFreq_Info.FILTER_CUR=0x40; // 10, low
  661. break;
  662. case ISDB_T:
  663. R828_SysFreq_Info.MIXER_TOP=0x24; // MIXER TOP:13 , TOP-1, low-discharge
  664. R828_SysFreq_Info.LNA_TOP=0xE5; // Detect BW 3, LNA TOP:4, PreDet Top:2
  665. R828_SysFreq_Info.LNA_VTH_L=0x75; // LNA VTH 1.04 , VTL 0.84
  666. R828_SysFreq_Info.MIXER_VTH_L=0x75; // MIXER VTH 1.04, VTL 0.84
  667. R828_SysFreq_Info.AIR_CABLE1_IN=0x00;
  668. R828_SysFreq_Info.CABLE2_IN=0x00;
  669. R828_SysFreq_Info.PRE_DECT=0x40;
  670. R828_SysFreq_Info.LNA_DISCHARGE=14;
  671. R828_SysFreq_Info.CP_CUR=0x38; // 111, auto
  672. R828_SysFreq_Info.DIV_BUF_CUR=0x30; // 11, 150u
  673. R828_SysFreq_Info.FILTER_CUR=0x40; // 10, low
  674. break;
  675. default: //DVB-T 8M
  676. R828_SysFreq_Info.MIXER_TOP=0x24; // MIXER TOP:13 , TOP-1, low-discharge
  677. R828_SysFreq_Info.LNA_TOP=0xE5; // Detect BW 3, LNA TOP:4, PreDet Top:2
  678. R828_SysFreq_Info.LNA_VTH_L=0x53; // LNA VTH 0.84 , VTL 0.64
  679. R828_SysFreq_Info.MIXER_VTH_L=0x75; // MIXER VTH 1.04, VTL 0.84
  680. R828_SysFreq_Info.AIR_CABLE1_IN=0x00;
  681. R828_SysFreq_Info.CABLE2_IN=0x00;
  682. R828_SysFreq_Info.PRE_DECT=0x40;
  683. R828_SysFreq_Info.LNA_DISCHARGE=14;
  684. R828_SysFreq_Info.CP_CUR=0x38; // 111, auto
  685. R828_SysFreq_Info.DIV_BUF_CUR=0x30; // 11, 150u
  686. R828_SysFreq_Info.FILTER_CUR=0x40; // 10, low
  687. break;
  688. } //end switch
  689. //DTV use Diplexer
  690. #if(USE_DIPLEXER==TRUE)
  691. if ((Rafael_Chip==R820C) || (Rafael_Chip==R820T) || (Rafael_Chip==R828S))
  692. {
  693. // Air-in (>=DIP_FREQ) & cable-1(<DIP_FREQ)
  694. if(RF_freq >= DIP_FREQ)
  695. {
  696. R828_SysFreq_Info.AIR_CABLE1_IN = 0x00; //air in, cable-1 off
  697. R828_SysFreq_Info.CABLE2_IN = 0x00; //cable-2 off
  698. }
  699. else
  700. {
  701. R828_SysFreq_Info.AIR_CABLE1_IN = 0x60; //cable-1 in, air off
  702. R828_SysFreq_Info.CABLE2_IN = 0x00; //cable-2 off
  703. }
  704. }
  705. #endif
  706. return R828_SysFreq_Info;
  707. }
  708. R828_ErrCode R828_Xtal_Check(void *pTuner)
  709. {
  710. UINT8 ArrayNum;
  711. ArrayNum = 27;
  712. for(ArrayNum=0;ArrayNum<27;ArrayNum++)
  713. {
  714. R828_Arry[ArrayNum] = R828_iniArry[ArrayNum];
  715. }
  716. //cap 30pF & Drive Low
  717. R828_I2C.RegAddr = 0x10;
  718. R828_Arry[11] = (R828_Arry[11] & 0xF4) | 0x0B ;
  719. R828_I2C.Data = R828_Arry[11];
  720. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  721. return RT_Fail;
  722. //set pll autotune = 128kHz
  723. R828_I2C.RegAddr = 0x1A;
  724. R828_Arry[21] = R828_Arry[21] & 0xF3;
  725. R828_I2C.Data = R828_Arry[21];
  726. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  727. return RT_Fail;
  728. //set manual initial reg = 111111;
  729. R828_I2C.RegAddr = 0x13;
  730. R828_Arry[14] = (R828_Arry[14] & 0x80) | 0x7F;
  731. R828_I2C.Data = R828_Arry[14];
  732. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  733. return RT_Fail;
  734. //set auto
  735. R828_I2C.RegAddr = 0x13;
  736. R828_Arry[14] = (R828_Arry[14] & 0xBF);
  737. R828_I2C.Data = R828_Arry[14];
  738. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  739. return RT_Fail;
  740. R828_Delay_MS(pTuner, 5);
  741. R828_I2C_Len.RegAddr = 0x00;
  742. R828_I2C_Len.Len = 3;
  743. if(I2C_Read_Len(pTuner, &R828_I2C_Len) != RT_Success)
  744. return RT_Fail;
  745. // if 30pF unlock, set to cap 20pF
  746. #if (USE_16M_XTAL==TRUE)
  747. //VCO=2360MHz for 16M Xtal. VCO band 26
  748. if(((R828_I2C_Len.Data[2] & 0x40) == 0x00) || ((R828_I2C_Len.Data[2] & 0x3F) > 29) || ((R828_I2C_Len.Data[2] & 0x3F) < 23))
  749. #else
  750. if(((R828_I2C_Len.Data[2] & 0x40) == 0x00) || ((R828_I2C_Len.Data[2] & 0x3F) == 0x3F))
  751. #endif
  752. {
  753. //cap 20pF
  754. R828_I2C.RegAddr = 0x10;
  755. R828_Arry[11] = (R828_Arry[11] & 0xFC) | 0x02;
  756. R828_I2C.Data = R828_Arry[11];
  757. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  758. return RT_Fail;
  759. R828_Delay_MS(pTuner, 5);
  760. R828_I2C_Len.RegAddr = 0x00;
  761. R828_I2C_Len.Len = 3;
  762. if(I2C_Read_Len(pTuner, &R828_I2C_Len) != RT_Success)
  763. return RT_Fail;
  764. // if 20pF unlock, set to cap 10pF
  765. #if (USE_16M_XTAL==TRUE)
  766. if(((R828_I2C_Len.Data[2] & 0x40) == 0x00) || ((R828_I2C_Len.Data[2] & 0x3F) > 29) || ((R828_I2C_Len.Data[2] & 0x3F) < 23))
  767. #else
  768. if(((R828_I2C_Len.Data[2] & 0x40) == 0x00) || ((R828_I2C_Len.Data[2] & 0x3F) == 0x3F))
  769. #endif
  770. {
  771. //cap 10pF
  772. R828_I2C.RegAddr = 0x10;
  773. R828_Arry[11] = (R828_Arry[11] & 0xFC) | 0x01;
  774. R828_I2C.Data = R828_Arry[11];
  775. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  776. return RT_Fail;
  777. R828_Delay_MS(pTuner, 5);
  778. R828_I2C_Len.RegAddr = 0x00;
  779. R828_I2C_Len.Len = 3;
  780. if(I2C_Read_Len(pTuner, &R828_I2C_Len) != RT_Success)
  781. return RT_Fail;
  782. // if 10pF unlock, set to cap 0pF
  783. #if (USE_16M_XTAL==TRUE)
  784. if(((R828_I2C_Len.Data[2] & 0x40) == 0x00) || ((R828_I2C_Len.Data[2] & 0x3F) > 29) || ((R828_I2C_Len.Data[2] & 0x3F) < 23))
  785. #else
  786. if(((R828_I2C_Len.Data[2] & 0x40) == 0x00) || ((R828_I2C_Len.Data[2] & 0x3F) == 0x3F))
  787. #endif
  788. {
  789. //cap 0pF
  790. R828_I2C.RegAddr = 0x10;
  791. R828_Arry[11] = (R828_Arry[11] & 0xFC) | 0x00;
  792. R828_I2C.Data = R828_Arry[11];
  793. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  794. return RT_Fail;
  795. R828_Delay_MS(pTuner, 5);
  796. R828_I2C_Len.RegAddr = 0x00;
  797. R828_I2C_Len.Len = 3;
  798. if(I2C_Read_Len(pTuner, &R828_I2C_Len) != RT_Success)
  799. return RT_Fail;
  800. // if unlock, set to high drive
  801. #if (USE_16M_XTAL==TRUE)
  802. if(((R828_I2C_Len.Data[2] & 0x40) == 0x00) || ((R828_I2C_Len.Data[2] & 0x3F) > 29) || ((R828_I2C_Len.Data[2] & 0x3F) < 23))
  803. #else
  804. if(((R828_I2C_Len.Data[2] & 0x40) == 0x00) || ((R828_I2C_Len.Data[2] & 0x3F) == 0x3F))
  805. #endif
  806. {
  807. //X'tal drive high
  808. R828_I2C.RegAddr = 0x10;
  809. R828_Arry[11] = (R828_Arry[11] & 0xF7) ;
  810. R828_I2C.Data = R828_Arry[11];
  811. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  812. return RT_Fail;
  813. //R828_Delay_MS(15);
  814. R828_Delay_MS(pTuner, 20);
  815. R828_I2C_Len.RegAddr = 0x00;
  816. R828_I2C_Len.Len = 3;
  817. if(I2C_Read_Len(pTuner, &R828_I2C_Len) != RT_Success)
  818. return RT_Fail;
  819. #if (USE_16M_XTAL==TRUE)
  820. if(((R828_I2C_Len.Data[2] & 0x40) == 0x00) || ((R828_I2C_Len.Data[2] & 0x3F) > 29) || ((R828_I2C_Len.Data[2] & 0x3F) < 23))
  821. #else
  822. if(((R828_I2C_Len.Data[2] & 0x40) == 0x00) || ((R828_I2C_Len.Data[2] & 0x3F) == 0x3F))
  823. #endif
  824. {
  825. return RT_Fail;
  826. }
  827. else //0p+high drive lock
  828. {
  829. Xtal_cap_sel_tmp = XTAL_HIGH_CAP_0P;
  830. }
  831. }
  832. else //0p lock
  833. {
  834. Xtal_cap_sel_tmp = XTAL_LOW_CAP_0P;
  835. }
  836. }
  837. else //10p lock
  838. {
  839. Xtal_cap_sel_tmp = XTAL_LOW_CAP_10P;
  840. }
  841. }
  842. else //20p lock
  843. {
  844. Xtal_cap_sel_tmp = XTAL_LOW_CAP_20P;
  845. }
  846. }
  847. else // 30p lock
  848. {
  849. Xtal_cap_sel_tmp = XTAL_LOW_CAP_30P;
  850. }
  851. return RT_Success;
  852. }
  853. R828_ErrCode R828_Init(void *pTuner)
  854. {
  855. // R820T_EXTRA_MODULE *pExtra;
  856. UINT8 i;
  857. // Get tuner extra module.
  858. // pExtra = &(pTuner->Extra.R820t);
  859. //write initial reg
  860. //if(R828_InitReg(pTuner) != RT_Success)
  861. // return RT_Fail;
  862. if(R828_IMR_done_flag==FALSE)
  863. {
  864. //write initial reg
  865. // if(R828_InitReg(pTuner) != RT_Success)
  866. // return RT_Fail;
  867. //Do Xtal check
  868. if((Rafael_Chip==R820T) || (Rafael_Chip==R828S) || (Rafael_Chip==R820C))
  869. {
  870. Xtal_cap_sel = XTAL_HIGH_CAP_0P;
  871. }
  872. else
  873. {
  874. if(R828_Xtal_Check(pTuner) != RT_Success) //1st
  875. return RT_Fail;
  876. Xtal_cap_sel = Xtal_cap_sel_tmp;
  877. if(R828_Xtal_Check(pTuner) != RT_Success) //2nd
  878. return RT_Fail;
  879. if(Xtal_cap_sel_tmp > Xtal_cap_sel)
  880. {
  881. Xtal_cap_sel = Xtal_cap_sel_tmp;
  882. }
  883. if(R828_Xtal_Check(pTuner) != RT_Success) //3rd
  884. return RT_Fail;
  885. if(Xtal_cap_sel_tmp > Xtal_cap_sel)
  886. {
  887. Xtal_cap_sel = Xtal_cap_sel_tmp;
  888. }
  889. }
  890. //reset filter cal.
  891. for (i=0; i<STD_SIZE; i++)
  892. {
  893. R828_Fil_Cal_flag[i] = FALSE;
  894. R828_Fil_Cal_code[i] = 0;
  895. }
  896. #if 0
  897. //start imr cal.
  898. if(R828_InitReg(pTuner) != RT_Success) //write initial reg before doing cal
  899. return RT_Fail;
  900. if(R828_IMR_Prepare(pTuner) != RT_Success)
  901. return RT_Fail;
  902. if(R828_IMR(pTuner, 3, TRUE) != RT_Success) //Full K node 3
  903. return RT_Fail;
  904. if(R828_IMR(pTuner, 1, FALSE) != RT_Success)
  905. return RT_Fail;
  906. if(R828_IMR(pTuner, 0, FALSE) != RT_Success)
  907. return RT_Fail;
  908. if(R828_IMR(pTuner, 2, FALSE) != RT_Success)
  909. return RT_Fail;
  910. if(R828_IMR(pTuner, 4, FALSE) != RT_Success)
  911. return RT_Fail;
  912. R828_IMR_done_flag = TRUE;
  913. #endif
  914. }
  915. //write initial reg
  916. if(R828_InitReg(pTuner) != RT_Success)
  917. return RT_Fail;
  918. return RT_Success;
  919. }
  920. R828_ErrCode R828_InitReg(void *pTuner)
  921. {
  922. UINT8 InitArryCount;
  923. UINT8 InitArryNum;
  924. InitArryCount = 0;
  925. InitArryNum = 27;
  926. //UINT32 LO_KHz = 0;
  927. //Write Full Table
  928. R828_I2C_Len.RegAddr = 0x05;
  929. R828_I2C_Len.Len = InitArryNum;
  930. for(InitArryCount = 0;InitArryCount < InitArryNum;InitArryCount ++)
  931. {
  932. R828_I2C_Len.Data[InitArryCount] = R828_iniArry[InitArryCount];
  933. }
  934. if(I2C_Write_Len(pTuner, &R828_I2C_Len) != RT_Success)
  935. return RT_Fail;
  936. return RT_Success;
  937. }
  938. R828_ErrCode R828_IMR_Prepare(void *pTuner)
  939. {
  940. UINT8 ArrayNum;
  941. ArrayNum=27;
  942. for(ArrayNum=0;ArrayNum<27;ArrayNum++)
  943. {
  944. R828_Arry[ArrayNum] = R828_iniArry[ArrayNum];
  945. }
  946. //IMR Preparation
  947. //lna off (air-in off)
  948. R828_I2C.RegAddr = 0x05;
  949. R828_Arry[0] = R828_Arry[0] | 0x20;
  950. R828_I2C.Data = R828_Arry[0];
  951. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  952. return RT_Fail;
  953. //mixer gain mode = manual
  954. R828_I2C.RegAddr = 0x07;
  955. R828_Arry[2] = (R828_Arry[2] & 0xEF);
  956. R828_I2C.Data = R828_Arry[2];
  957. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  958. return RT_Fail;
  959. //filter corner = lowest
  960. R828_I2C.RegAddr = 0x0A;
  961. R828_Arry[5] = R828_Arry[5] | 0x0F;
  962. R828_I2C.Data = R828_Arry[5];
  963. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  964. return RT_Fail;
  965. //filter bw=+2cap, hp=5M
  966. R828_I2C.RegAddr = 0x0B;
  967. R828_Arry[6] = (R828_Arry[6] & 0x90) | 0x60;
  968. R828_I2C.Data = R828_Arry[6];
  969. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  970. return RT_Fail;
  971. //adc=on, vga code mode, gain = 26.5dB
  972. R828_I2C.RegAddr = 0x0C;
  973. R828_Arry[7] = (R828_Arry[7] & 0x60) | 0x0B;
  974. R828_I2C.Data = R828_Arry[7];
  975. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  976. return RT_Fail;
  977. //ring clk = on
  978. R828_I2C.RegAddr = 0x0F;
  979. R828_Arry[10] &= 0xF7;
  980. R828_I2C.Data = R828_Arry[10];
  981. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  982. return RT_Fail;
  983. //ring power = on
  984. R828_I2C.RegAddr = 0x18;
  985. R828_Arry[19] = R828_Arry[19] | 0x10;
  986. R828_I2C.Data = R828_Arry[19];
  987. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  988. return RT_Fail;
  989. //from ring = ring pll in
  990. R828_I2C.RegAddr = 0x1C;
  991. R828_Arry[23] = R828_Arry[23] | 0x02;
  992. R828_I2C.Data = R828_Arry[23];
  993. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  994. return RT_Fail;
  995. //sw_pdect = det3
  996. R828_I2C.RegAddr = 0x1E;
  997. R828_Arry[25] = R828_Arry[25] | 0x80;
  998. R828_I2C.Data = R828_Arry[25];
  999. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1000. return RT_Fail;
  1001. // Set filt_3dB
  1002. R828_Arry[1] = R828_Arry[1] | 0x20;
  1003. R828_I2C.RegAddr = 0x06;
  1004. R828_I2C.Data = R828_Arry[1];
  1005. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1006. return RT_Fail;
  1007. return RT_Success;
  1008. }
  1009. R828_ErrCode R828_IMR(void *pTuner, UINT8 IMR_MEM, int IM_Flag)
  1010. {
  1011. UINT32 RingVCO;
  1012. UINT32 RingFreq;
  1013. UINT32 RingRef;
  1014. UINT8 n_ring;
  1015. UINT8 n;
  1016. R828_SectType IMR_POINT;
  1017. RingVCO = 0;
  1018. RingFreq = 0;
  1019. RingRef = 0;
  1020. n_ring = 0;
  1021. if (R828_Xtal>24000)
  1022. RingRef = R828_Xtal /2;
  1023. else
  1024. RingRef = R828_Xtal;
  1025. for(n=0;n<16;n++)
  1026. {
  1027. if((16+n)* 8 * RingRef >= 3100000)
  1028. {
  1029. n_ring=n;
  1030. break;
  1031. }
  1032. if(n==15) //n_ring not found
  1033. {
  1034. //return RT_Fail;
  1035. n_ring=n;
  1036. }
  1037. }
  1038. R828_Arry[19] &= 0xF0; //set ring[3:0]
  1039. R828_Arry[19] |= n_ring;
  1040. RingVCO = (16+n_ring)* 8 * RingRef;
  1041. R828_Arry[19]&=0xDF; //clear ring_se23
  1042. R828_Arry[20]&=0xFC; //clear ring_seldiv
  1043. R828_Arry[26]&=0xFC; //clear ring_att
  1044. switch(IMR_MEM)
  1045. {
  1046. case 0:
  1047. RingFreq = RingVCO/48;
  1048. R828_Arry[19]|=0x20; // ring_se23 = 1
  1049. R828_Arry[20]|=0x03; // ring_seldiv = 3
  1050. R828_Arry[26]|=0x02; // ring_att 10
  1051. break;
  1052. case 1:
  1053. RingFreq = RingVCO/16;
  1054. R828_Arry[19]|=0x00; // ring_se23 = 0
  1055. R828_Arry[20]|=0x02; // ring_seldiv = 2
  1056. R828_Arry[26]|=0x00; // pw_ring 00
  1057. break;
  1058. case 2:
  1059. RingFreq = RingVCO/8;
  1060. R828_Arry[19]|=0x00; // ring_se23 = 0
  1061. R828_Arry[20]|=0x01; // ring_seldiv = 1
  1062. R828_Arry[26]|=0x03; // pw_ring 11
  1063. break;
  1064. case 3:
  1065. RingFreq = RingVCO/6;
  1066. R828_Arry[19]|=0x20; // ring_se23 = 1
  1067. R828_Arry[20]|=0x00; // ring_seldiv = 0
  1068. R828_Arry[26]|=0x03; // pw_ring 11
  1069. break;
  1070. case 4:
  1071. RingFreq = RingVCO/4;
  1072. R828_Arry[19]|=0x00; // ring_se23 = 0
  1073. R828_Arry[20]|=0x00; // ring_seldiv = 0
  1074. R828_Arry[26]|=0x01; // pw_ring 01
  1075. break;
  1076. default:
  1077. RingFreq = RingVCO/4;
  1078. R828_Arry[19]|=0x00; // ring_se23 = 0
  1079. R828_Arry[20]|=0x00; // ring_seldiv = 0
  1080. R828_Arry[26]|=0x01; // pw_ring 01
  1081. break;
  1082. }
  1083. //write pw_ring,n_ring,ringdiv2 to I2C
  1084. //------------n_ring,ring_se23----------//
  1085. R828_I2C.RegAddr = 0x18;
  1086. R828_I2C.Data = R828_Arry[19];
  1087. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1088. return RT_Fail;
  1089. //------------ring_sediv----------------//
  1090. R828_I2C.RegAddr = 0x19;
  1091. R828_I2C.Data = R828_Arry[20];
  1092. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1093. return RT_Fail;
  1094. //------------pw_ring-------------------//
  1095. R828_I2C.RegAddr = 0x1f;
  1096. R828_I2C.Data = R828_Arry[26];
  1097. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1098. return RT_Fail;
  1099. //Must do before PLL()
  1100. if(R828_MUX(pTuner, RingFreq - 5300) != RT_Success) //MUX input freq ~ RF_in Freq
  1101. return RT_Fail;
  1102. if(R828_PLL(pTuner, (RingFreq - 5300) * 1000, STD_SIZE) != RT_Success) //set pll freq = ring freq - 6M
  1103. return RT_Fail;
  1104. if(IM_Flag == TRUE)
  1105. {
  1106. if(R828_IQ(pTuner, &IMR_POINT) != RT_Success)
  1107. return RT_Fail;
  1108. }
  1109. else
  1110. {
  1111. IMR_POINT.Gain_X = IMR_Data[3].Gain_X;
  1112. IMR_POINT.Phase_Y = IMR_Data[3].Phase_Y;
  1113. IMR_POINT.Value = IMR_Data[3].Value;
  1114. if(R828_F_IMR(pTuner, &IMR_POINT) != RT_Success)
  1115. return RT_Fail;
  1116. }
  1117. //Save IMR Value
  1118. switch(IMR_MEM)
  1119. {
  1120. case 0:
  1121. IMR_Data[0].Gain_X = IMR_POINT.Gain_X;
  1122. IMR_Data[0].Phase_Y = IMR_POINT.Phase_Y;
  1123. IMR_Data[0].Value = IMR_POINT.Value;
  1124. break;
  1125. case 1:
  1126. IMR_Data[1].Gain_X = IMR_POINT.Gain_X;
  1127. IMR_Data[1].Phase_Y = IMR_POINT.Phase_Y;
  1128. IMR_Data[1].Value = IMR_POINT.Value;
  1129. break;
  1130. case 2:
  1131. IMR_Data[2].Gain_X = IMR_POINT.Gain_X;
  1132. IMR_Data[2].Phase_Y = IMR_POINT.Phase_Y;
  1133. IMR_Data[2].Value = IMR_POINT.Value;
  1134. break;
  1135. case 3:
  1136. IMR_Data[3].Gain_X = IMR_POINT.Gain_X;
  1137. IMR_Data[3].Phase_Y = IMR_POINT.Phase_Y;
  1138. IMR_Data[3].Value = IMR_POINT.Value;
  1139. break;
  1140. case 4:
  1141. IMR_Data[4].Gain_X = IMR_POINT.Gain_X;
  1142. IMR_Data[4].Phase_Y = IMR_POINT.Phase_Y;
  1143. IMR_Data[4].Value = IMR_POINT.Value;
  1144. break;
  1145. default:
  1146. IMR_Data[4].Gain_X = IMR_POINT.Gain_X;
  1147. IMR_Data[4].Phase_Y = IMR_POINT.Phase_Y;
  1148. IMR_Data[4].Value = IMR_POINT.Value;
  1149. break;
  1150. }
  1151. return RT_Success;
  1152. }
  1153. R828_ErrCode R828_PLL(void *pTuner, UINT32 LO_Freq, R828_Standard_Type R828_Standard)
  1154. {
  1155. // R820T_EXTRA_MODULE *pExtra;
  1156. UINT8 MixDiv;
  1157. UINT8 DivBuf;
  1158. UINT8 Ni;
  1159. UINT8 Si;
  1160. UINT8 DivNum;
  1161. UINT8 Nint;
  1162. UINT32 VCO_Min_kHz;
  1163. UINT32 VCO_Max_kHz;
  1164. uint64_t VCO_Freq;
  1165. UINT32 PLL_Ref; //Max 24000 (kHz)
  1166. UINT32 VCO_Fra; //VCO contribution by SDM (kHz)
  1167. UINT16 Nsdm;
  1168. UINT16 SDM;
  1169. UINT16 SDM16to9;
  1170. UINT16 SDM8to1;
  1171. //UINT8 Judge = 0;
  1172. UINT8 VCO_fine_tune;
  1173. MixDiv = 2;
  1174. DivBuf = 0;
  1175. Ni = 0;
  1176. Si = 0;
  1177. DivNum = 0;
  1178. Nint = 0;
  1179. VCO_Min_kHz = 1770000;
  1180. VCO_Max_kHz = VCO_Min_kHz*2;
  1181. VCO_Freq = 0;
  1182. PLL_Ref = 0; //Max 24000 (kHz)
  1183. VCO_Fra = 0; //VCO contribution by SDM (kHz)
  1184. Nsdm = 2;
  1185. SDM = 0;
  1186. SDM16to9 = 0;
  1187. SDM8to1 = 0;
  1188. //UINT8 Judge = 0;
  1189. VCO_fine_tune = 0;
  1190. #if 0
  1191. if ((Rafael_Chip==R620D) || (Rafael_Chip==R828D) || (Rafael_Chip==R828)) //X'tal can't not exceed 20MHz for ATV
  1192. {
  1193. if(R828_Standard <= SECAM_L1) //ref set refdiv2, reffreq = Xtal/2 on ATV application
  1194. {
  1195. R828_Arry[11] |= 0x10; //b4=1
  1196. PLL_Ref = R828_Xtal /2;
  1197. }
  1198. else //DTV, FilCal, IMR
  1199. {
  1200. R828_Arry[11] &= 0xEF;
  1201. PLL_Ref = R828_Xtal;
  1202. }
  1203. }
  1204. else
  1205. {
  1206. if(R828_Xtal > 24000)
  1207. {
  1208. R828_Arry[11] |= 0x10; //b4=1
  1209. PLL_Ref = R828_Xtal /2;
  1210. }
  1211. else
  1212. {
  1213. R828_Arry[11] &= 0xEF;
  1214. PLL_Ref = R828_Xtal;
  1215. }
  1216. }
  1217. #endif
  1218. //FIXME hack
  1219. R828_Arry[11] &= 0xEF;
  1220. PLL_Ref = rtlsdr_get_tuner_clock(pTuner);
  1221. R828_I2C.RegAddr = 0x10;
  1222. R828_I2C.Data = R828_Arry[11];
  1223. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1224. return RT_Fail;
  1225. //set pll autotune = 128kHz
  1226. R828_I2C.RegAddr = 0x1A;
  1227. R828_Arry[21] = R828_Arry[21] & 0xF3;
  1228. R828_I2C.Data = R828_Arry[21];
  1229. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1230. return RT_Fail;
  1231. //Set VCO current = 100
  1232. R828_I2C.RegAddr = 0x12;
  1233. R828_Arry[13] = (R828_Arry[13] & 0x1F) | 0x80;
  1234. R828_I2C.Data = R828_Arry[13];
  1235. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1236. return RT_Fail;
  1237. //Divider
  1238. while(MixDiv <= 64)
  1239. {
  1240. if((((LO_Freq/1000) * MixDiv) >= VCO_Min_kHz) && (((LO_Freq/1000) * MixDiv) < VCO_Max_kHz))
  1241. {
  1242. DivBuf = MixDiv;
  1243. while(DivBuf > 2)
  1244. {
  1245. DivBuf = DivBuf >> 1;
  1246. DivNum ++;
  1247. }
  1248. break;
  1249. }
  1250. MixDiv = MixDiv << 1;
  1251. }
  1252. R828_I2C_Len.RegAddr = 0x00;
  1253. R828_I2C_Len.Len = 5;
  1254. if(I2C_Read_Len(pTuner, &R828_I2C_Len) != RT_Success)
  1255. return RT_Fail;
  1256. VCO_fine_tune = (R828_I2C_Len.Data[4] & 0x30)>>4;
  1257. if(VCO_fine_tune > VCO_pwr_ref)
  1258. DivNum = DivNum - 1;
  1259. else if(VCO_fine_tune < VCO_pwr_ref)
  1260. DivNum = DivNum + 1;
  1261. R828_I2C.RegAddr = 0x10;
  1262. R828_Arry[11] &= 0x1F;
  1263. R828_Arry[11] |= (DivNum << 5);
  1264. R828_I2C.Data = R828_Arry[11];
  1265. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1266. return RT_Fail;
  1267. VCO_Freq = (uint64_t)(LO_Freq * (uint64_t)MixDiv);
  1268. Nint = (UINT8) (VCO_Freq / 2 / PLL_Ref);
  1269. VCO_Fra = (UINT16) ((VCO_Freq - 2 * PLL_Ref * Nint) / 1000);
  1270. //FIXME hack
  1271. PLL_Ref /= 1000;
  1272. // printf("VCO_Freq = %lu, Nint= %u, VCO_Fra= %lu, LO_Freq= %u, MixDiv= %u\n", VCO_Freq, Nint, VCO_Fra, LO_Freq, MixDiv);
  1273. //boundary spur prevention
  1274. if (VCO_Fra < PLL_Ref/64) //2*PLL_Ref/128
  1275. VCO_Fra = 0;
  1276. else if (VCO_Fra > PLL_Ref*127/64) //2*PLL_Ref*127/128
  1277. {
  1278. VCO_Fra = 0;
  1279. Nint ++;
  1280. }
  1281. else if((VCO_Fra > PLL_Ref*127/128) && (VCO_Fra < PLL_Ref)) //> 2*PLL_Ref*127/256, < 2*PLL_Ref*128/256
  1282. VCO_Fra = PLL_Ref*127/128; // VCO_Fra = 2*PLL_Ref*127/256
  1283. else if((VCO_Fra > PLL_Ref) && (VCO_Fra < PLL_Ref*129/128)) //> 2*PLL_Ref*128/256, < 2*PLL_Ref*129/256
  1284. VCO_Fra = PLL_Ref*129/128; // VCO_Fra = 2*PLL_Ref*129/256
  1285. else
  1286. VCO_Fra = VCO_Fra;
  1287. if (Nint > 63) {
  1288. fprintf(stderr, "[R820T] No valid PLL values for %u Hz!\n", LO_Freq);
  1289. return RT_Fail;
  1290. }
  1291. //N & S
  1292. Ni = (Nint - 13) / 4;
  1293. Si = Nint - 4 *Ni - 13;
  1294. R828_I2C.RegAddr = 0x14;
  1295. R828_Arry[15] = 0x00;
  1296. R828_Arry[15] |= (Ni + (Si << 6));
  1297. R828_I2C.Data = R828_Arry[15];
  1298. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1299. return RT_Fail;
  1300. //pw_sdm
  1301. R828_I2C.RegAddr = 0x12;
  1302. R828_Arry[13] &= 0xF7;
  1303. if(VCO_Fra == 0)
  1304. R828_Arry[13] |= 0x08;
  1305. R828_I2C.Data = R828_Arry[13];
  1306. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1307. return RT_Fail;
  1308. //SDM calculator
  1309. while(VCO_Fra > 1)
  1310. {
  1311. if (VCO_Fra > (2*PLL_Ref / Nsdm))
  1312. {
  1313. SDM = SDM + 32768 / (Nsdm/2);
  1314. VCO_Fra = VCO_Fra - 2*PLL_Ref / Nsdm;
  1315. if (Nsdm >= 0x8000)
  1316. break;
  1317. }
  1318. Nsdm = Nsdm << 1;
  1319. }
  1320. SDM16to9 = SDM >> 8;
  1321. SDM8to1 = SDM - (SDM16to9 << 8);
  1322. R828_I2C.RegAddr = 0x16;
  1323. R828_Arry[17] = (UINT8) SDM16to9;
  1324. R828_I2C.Data = R828_Arry[17];
  1325. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1326. return RT_Fail;
  1327. R828_I2C.RegAddr = 0x15;
  1328. R828_Arry[16] = (UINT8) SDM8to1;
  1329. R828_I2C.Data = R828_Arry[16];
  1330. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1331. return RT_Fail;
  1332. // R828_Delay_MS(10);
  1333. if ((Rafael_Chip==R620D) || (Rafael_Chip==R828D) || (Rafael_Chip==R828))
  1334. {
  1335. if(R828_Standard <= SECAM_L1)
  1336. R828_Delay_MS(pTuner, 20);
  1337. else
  1338. R828_Delay_MS(pTuner, 10);
  1339. }
  1340. else
  1341. {
  1342. R828_Delay_MS(pTuner, 10);
  1343. }
  1344. //check PLL lock status
  1345. R828_I2C_Len.RegAddr = 0x00;
  1346. R828_I2C_Len.Len = 3;
  1347. if(I2C_Read_Len(pTuner, &R828_I2C_Len) != RT_Success)
  1348. return RT_Fail;
  1349. if( (R828_I2C_Len.Data[2] & 0x40) == 0x00 )
  1350. {
  1351. fprintf(stderr, "[R820T] PLL not locked for %u Hz!\n", LO_Freq);
  1352. R828_I2C.RegAddr = 0x12;
  1353. R828_Arry[13] = (R828_Arry[13] & 0x1F) | 0x60; //increase VCO current
  1354. R828_I2C.Data = R828_Arry[13];
  1355. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1356. return RT_Fail;
  1357. return RT_Fail;
  1358. }
  1359. //set pll autotune = 8kHz
  1360. R828_I2C.RegAddr = 0x1A;
  1361. R828_Arry[21] = R828_Arry[21] | 0x08;
  1362. R828_I2C.Data = R828_Arry[21];
  1363. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1364. return RT_Fail;
  1365. return RT_Success;
  1366. }
  1367. R828_ErrCode R828_MUX(void *pTuner, UINT32 RF_KHz)
  1368. {
  1369. UINT8 RT_Reg08;
  1370. UINT8 RT_Reg09;
  1371. RT_Reg08 = 0;
  1372. RT_Reg09 = 0;
  1373. //Freq_Info_Type Freq_Info1;
  1374. Freq_Info1 = R828_Freq_Sel(RF_KHz);
  1375. // Open Drain
  1376. R828_I2C.RegAddr = 0x17;
  1377. R828_Arry[18] = (R828_Arry[18] & 0xF7) | Freq_Info1.OPEN_D;
  1378. R828_I2C.Data = R828_Arry[18];
  1379. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1380. return RT_Fail;
  1381. // RF_MUX,Polymux
  1382. R828_I2C.RegAddr = 0x1A;
  1383. R828_Arry[21] = (R828_Arry[21] & 0x3C) | Freq_Info1.RF_MUX_PLOY;
  1384. R828_I2C.Data = R828_Arry[21];
  1385. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1386. return RT_Fail;
  1387. // TF BAND
  1388. R828_I2C.RegAddr = 0x1B;
  1389. R828_Arry[22] &= 0x00;
  1390. R828_Arry[22] |= Freq_Info1.TF_C;
  1391. R828_I2C.Data = R828_Arry[22];
  1392. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1393. return RT_Fail;
  1394. // XTAL CAP & Drive
  1395. R828_I2C.RegAddr = 0x10;
  1396. R828_Arry[11] &= 0xF4;
  1397. switch(Xtal_cap_sel)
  1398. {
  1399. case XTAL_LOW_CAP_30P:
  1400. case XTAL_LOW_CAP_20P:
  1401. R828_Arry[11] = R828_Arry[11] | Freq_Info1.XTAL_CAP20P | 0x08;
  1402. break;
  1403. case XTAL_LOW_CAP_10P:
  1404. R828_Arry[11] = R828_Arry[11] | Freq_Info1.XTAL_CAP10P | 0x08;
  1405. break;
  1406. case XTAL_LOW_CAP_0P:
  1407. R828_Arry[11] = R828_Arry[11] | Freq_Info1.XTAL_CAP0P | 0x08;
  1408. break;
  1409. case XTAL_HIGH_CAP_0P:
  1410. R828_Arry[11] = R828_Arry[11] | Freq_Info1.XTAL_CAP0P | 0x00;
  1411. break;
  1412. default:
  1413. R828_Arry[11] = R828_Arry[11] | Freq_Info1.XTAL_CAP0P | 0x08;
  1414. break;
  1415. }
  1416. R828_I2C.Data = R828_Arry[11];
  1417. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1418. return RT_Fail;
  1419. //Set_IMR
  1420. if(R828_IMR_done_flag == TRUE)
  1421. {
  1422. RT_Reg08 = IMR_Data[Freq_Info1.IMR_MEM].Gain_X & 0x3F;
  1423. RT_Reg09 = IMR_Data[Freq_Info1.IMR_MEM].Phase_Y & 0x3F;
  1424. }
  1425. else
  1426. {
  1427. RT_Reg08 = 0;
  1428. RT_Reg09 = 0;
  1429. }
  1430. R828_I2C.RegAddr = 0x08;
  1431. R828_Arry[3] = R828_iniArry[3] & 0xC0;
  1432. R828_Arry[3] = R828_Arry[3] | RT_Reg08;
  1433. R828_I2C.Data = R828_Arry[3];
  1434. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1435. return RT_Fail;
  1436. R828_I2C.RegAddr = 0x09;
  1437. R828_Arry[4] = R828_iniArry[4] & 0xC0;
  1438. R828_Arry[4] = R828_Arry[4] | RT_Reg09;
  1439. R828_I2C.Data =R828_Arry[4] ;
  1440. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1441. return RT_Fail;
  1442. return RT_Success;
  1443. }
  1444. R828_ErrCode R828_IQ(void *pTuner, R828_SectType* IQ_Pont)
  1445. {
  1446. R828_SectType Compare_IQ[3];
  1447. // R828_SectType CompareTemp;
  1448. // UINT8 IQ_Count = 0;
  1449. UINT8 VGA_Count;
  1450. UINT16 VGA_Read;
  1451. UINT8 X_Direction; // 1:X, 0:Y
  1452. VGA_Count = 0;
  1453. VGA_Read = 0;
  1454. // increase VGA power to let image significant
  1455. for(VGA_Count = 12;VGA_Count < 16;VGA_Count ++)
  1456. {
  1457. R828_I2C.RegAddr = 0x0C;
  1458. R828_I2C.Data = (R828_Arry[7] & 0xF0) + VGA_Count;
  1459. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1460. return RT_Fail;
  1461. R828_Delay_MS(pTuner, 10); //
  1462. if(R828_Muti_Read(pTuner, 0x01, &VGA_Read) != RT_Success)
  1463. return RT_Fail;
  1464. if(VGA_Read > 40*4)
  1465. break;
  1466. }
  1467. //initial 0x08, 0x09
  1468. //Compare_IQ[0].Gain_X = 0x40; //should be 0xC0 in R828, Jason
  1469. //Compare_IQ[0].Phase_Y = 0x40; //should be 0x40 in R828
  1470. Compare_IQ[0].Gain_X = R828_iniArry[3] & 0xC0; // Jason modified, clear b[5], b[4:0]
  1471. Compare_IQ[0].Phase_Y = R828_iniArry[4] & 0xC0; //
  1472. //while(IQ_Count < 3)
  1473. //{
  1474. // Determine X or Y
  1475. if(R828_IMR_Cross(pTuner, &Compare_IQ[0], &X_Direction) != RT_Success)
  1476. return RT_Fail;
  1477. //if(X_Direction==1)
  1478. //{
  1479. // if(R828_IQ_Tree(Compare_IQ[0].Phase_Y, Compare_IQ[0].Gain_X, 0x09, &Compare_IQ[0]) != RT_Success) //X
  1480. // return RT_Fail;
  1481. //}
  1482. //else
  1483. //{
  1484. // if(R828_IQ_Tree(Compare_IQ[0].Gain_X, Compare_IQ[0].Phase_Y, 0x08, &Compare_IQ[0]) != RT_Success) //Y
  1485. // return RT_Fail;
  1486. //}
  1487. /*
  1488. //--- X direction ---//
  1489. //X: 3 points
  1490. if(R828_IQ_Tree(Compare_IQ[0].Phase_Y, Compare_IQ[0].Gain_X, 0x09, &Compare_IQ[0]) != RT_Success) //
  1491. return RT_Fail;
  1492. //compare and find min of 3 points. determine I/Q direction
  1493. if(R828_CompreCor(&Compare_IQ[0]) != RT_Success)
  1494. return RT_Fail;
  1495. //increase step to find min value of this direction
  1496. if(R828_CompreStep(&Compare_IQ[0], 0x08) != RT_Success)
  1497. return RT_Fail;
  1498. */
  1499. if(X_Direction==1)
  1500. {
  1501. //compare and find min of 3 points. determine I/Q direction
  1502. if(R828_CompreCor(&Compare_IQ[0]) != RT_Success)
  1503. return RT_Fail;
  1504. //increase step to find min value of this direction
  1505. if(R828_CompreStep(pTuner, &Compare_IQ[0], 0x08) != RT_Success) //X
  1506. return RT_Fail;
  1507. }
  1508. else
  1509. {
  1510. //compare and find min of 3 points. determine I/Q direction
  1511. if(R828_CompreCor(&Compare_IQ[0]) != RT_Success)
  1512. return RT_Fail;
  1513. //increase step to find min value of this direction
  1514. if(R828_CompreStep(pTuner, &Compare_IQ[0], 0x09) != RT_Success) //Y
  1515. return RT_Fail;
  1516. }
  1517. /*
  1518. //--- Y direction ---//
  1519. //Y: 3 points
  1520. if(R828_IQ_Tree(Compare_IQ[0].Gain_X, Compare_IQ[0].Phase_Y, 0x08, &Compare_IQ[0]) != RT_Success) //
  1521. return RT_Fail;
  1522. //compare and find min of 3 points. determine I/Q direction
  1523. if(R828_CompreCor(&Compare_IQ[0]) != RT_Success)
  1524. return RT_Fail;
  1525. //increase step to find min value of this direction
  1526. if(R828_CompreStep(&Compare_IQ[0], 0x09) != RT_Success)
  1527. return RT_Fail;
  1528. */
  1529. //Another direction
  1530. if(X_Direction==1)
  1531. {
  1532. if(R828_IQ_Tree(pTuner, Compare_IQ[0].Gain_X, Compare_IQ[0].Phase_Y, 0x08, &Compare_IQ[0]) != RT_Success) //Y
  1533. return RT_Fail;
  1534. //compare and find min of 3 points. determine I/Q direction
  1535. if(R828_CompreCor(&Compare_IQ[0]) != RT_Success)
  1536. return RT_Fail;
  1537. //increase step to find min value of this direction
  1538. if(R828_CompreStep(pTuner, &Compare_IQ[0], 0x09) != RT_Success) //Y
  1539. return RT_Fail;
  1540. }
  1541. else
  1542. {
  1543. if(R828_IQ_Tree(pTuner, Compare_IQ[0].Phase_Y, Compare_IQ[0].Gain_X, 0x09, &Compare_IQ[0]) != RT_Success) //X
  1544. return RT_Fail;
  1545. //compare and find min of 3 points. determine I/Q direction
  1546. if(R828_CompreCor(&Compare_IQ[0]) != RT_Success)
  1547. return RT_Fail;
  1548. //increase step to find min value of this direction
  1549. if(R828_CompreStep(pTuner, &Compare_IQ[0], 0x08) != RT_Success) //X
  1550. return RT_Fail;
  1551. }
  1552. //CompareTemp = Compare_IQ[0];
  1553. //--- Check 3 points again---//
  1554. if(X_Direction==1)
  1555. {
  1556. if(R828_IQ_Tree(pTuner, Compare_IQ[0].Phase_Y, Compare_IQ[0].Gain_X, 0x09, &Compare_IQ[0]) != RT_Success) //X
  1557. return RT_Fail;
  1558. }
  1559. else
  1560. {
  1561. if(R828_IQ_Tree(pTuner, Compare_IQ[0].Gain_X, Compare_IQ[0].Phase_Y, 0x08, &Compare_IQ[0]) != RT_Success) //Y
  1562. return RT_Fail;
  1563. }
  1564. //if(R828_IQ_Tree(Compare_IQ[0].Phase_Y, Compare_IQ[0].Gain_X, 0x09, &Compare_IQ[0]) != RT_Success) //
  1565. // return RT_Fail;
  1566. if(R828_CompreCor(&Compare_IQ[0]) != RT_Success)
  1567. return RT_Fail;
  1568. //if((CompareTemp.Gain_X == Compare_IQ[0].Gain_X) && (CompareTemp.Phase_Y == Compare_IQ[0].Phase_Y))//Ben Check
  1569. // break;
  1570. //IQ_Count ++;
  1571. //}
  1572. //if(IQ_Count == 3)
  1573. // return RT_Fail;
  1574. //Section-4 Check
  1575. /*
  1576. CompareTemp = Compare_IQ[0];
  1577. for(IQ_Count = 0;IQ_Count < 5;IQ_Count ++)
  1578. {
  1579. if(R828_Section(&Compare_IQ[0]) != RT_Success)
  1580. return RT_Fail;
  1581. if((CompareTemp.Gain_X == Compare_IQ[0].Gain_X) && (CompareTemp.Phase_Y == Compare_IQ[0].Phase_Y))
  1582. break;
  1583. }
  1584. */
  1585. //Section-9 check
  1586. //if(R828_F_IMR(&Compare_IQ[0]) != RT_Success)
  1587. if(R828_Section(pTuner, &Compare_IQ[0]) != RT_Success)
  1588. return RT_Fail;
  1589. *IQ_Pont = Compare_IQ[0];
  1590. //reset gain/phase control setting
  1591. R828_I2C.RegAddr = 0x08;
  1592. R828_I2C.Data = R828_iniArry[3] & 0xC0; //Jason
  1593. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1594. return RT_Fail;
  1595. R828_I2C.RegAddr = 0x09;
  1596. R828_I2C.Data = R828_iniArry[4] & 0xC0;
  1597. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1598. return RT_Fail;
  1599. return RT_Success;
  1600. }
  1601. //--------------------------------------------------------------------------------------------
  1602. // Purpose: record IMC results by input gain/phase location
  1603. // then adjust gain or phase positive 1 step and negtive 1 step, both record results
  1604. // input: FixPot: phase or gain
  1605. // FlucPot phase or gain
  1606. // PotReg: 0x08 or 0x09
  1607. // CompareTree: 3 IMR trace and results
  1608. // output: TREU or FALSE
  1609. //--------------------------------------------------------------------------------------------
  1610. R828_ErrCode R828_IQ_Tree(void *pTuner, UINT8 FixPot, UINT8 FlucPot, UINT8 PotReg, R828_SectType* CompareTree)
  1611. {
  1612. UINT8 TreeCount;
  1613. UINT8 TreeTimes;
  1614. UINT8 TempPot;
  1615. UINT8 PntReg;
  1616. TreeCount = 0;
  1617. TreeTimes = 3;
  1618. TempPot = 0;
  1619. PntReg = 0;
  1620. if(PotReg == 0x08)
  1621. PntReg = 0x09; //phase control
  1622. else
  1623. PntReg = 0x08; //gain control
  1624. for(TreeCount = 0;TreeCount < TreeTimes;TreeCount ++)
  1625. {
  1626. R828_I2C.RegAddr = PotReg;
  1627. R828_I2C.Data = FixPot;
  1628. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1629. return RT_Fail;
  1630. R828_I2C.RegAddr = PntReg;
  1631. R828_I2C.Data = FlucPot;
  1632. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1633. return RT_Fail;
  1634. if(R828_Muti_Read(pTuner, 0x01, &CompareTree[TreeCount].Value) != RT_Success)
  1635. return RT_Fail;
  1636. if(PotReg == 0x08)
  1637. {
  1638. CompareTree[TreeCount].Gain_X = FixPot;
  1639. CompareTree[TreeCount].Phase_Y = FlucPot;
  1640. }
  1641. else
  1642. {
  1643. CompareTree[TreeCount].Phase_Y = FixPot;
  1644. CompareTree[TreeCount].Gain_X = FlucPot;
  1645. }
  1646. if(TreeCount == 0) //try right-side point
  1647. FlucPot ++;
  1648. else if(TreeCount == 1) //try left-side point
  1649. {
  1650. if((FlucPot & 0x1F) < 0x02) //if absolute location is 1, change I/Q direction
  1651. {
  1652. TempPot = 2 - (FlucPot & 0x1F);
  1653. if(FlucPot & 0x20) //b[5]:I/Q selection. 0:Q-path, 1:I-path
  1654. {
  1655. FlucPot &= 0xC0;
  1656. FlucPot |= TempPot;
  1657. }
  1658. else
  1659. {
  1660. FlucPot |= (0x20 | TempPot);
  1661. }
  1662. }
  1663. else
  1664. FlucPot -= 2;
  1665. }
  1666. }
  1667. return RT_Success;
  1668. }
  1669. //-----------------------------------------------------------------------------------/
  1670. // Purpose: compare IMC result aray [0][1][2], find min value and store to CorArry[0]
  1671. // input: CorArry: three IMR data array
  1672. // output: TRUE or FALSE
  1673. //-----------------------------------------------------------------------------------/
  1674. R828_ErrCode R828_CompreCor(R828_SectType* CorArry)
  1675. {
  1676. UINT8 CompCount;
  1677. R828_SectType CorTemp;
  1678. CompCount = 0;
  1679. for(CompCount = 3;CompCount > 0;CompCount --)
  1680. {
  1681. if(CorArry[0].Value > CorArry[CompCount - 1].Value) //compare IMC result [0][1][2], find min value
  1682. {
  1683. CorTemp = CorArry[0];
  1684. CorArry[0] = CorArry[CompCount - 1];
  1685. CorArry[CompCount - 1] = CorTemp;
  1686. }
  1687. }
  1688. return RT_Success;
  1689. }
  1690. //-------------------------------------------------------------------------------------//
  1691. // Purpose: if (Gain<9 or Phase<9), Gain+1 or Phase+1 and compare with min value
  1692. // new < min => update to min and continue
  1693. // new > min => Exit
  1694. // input: StepArry: three IMR data array
  1695. // Pace: gain or phase register
  1696. // output: TRUE or FALSE
  1697. //-------------------------------------------------------------------------------------//
  1698. R828_ErrCode R828_CompreStep(void *pTuner, R828_SectType* StepArry, UINT8 Pace)
  1699. {
  1700. //UINT8 StepCount = 0;
  1701. R828_SectType StepTemp;
  1702. //min value already saved in StepArry[0]
  1703. StepTemp.Phase_Y = StepArry[0].Phase_Y;
  1704. StepTemp.Gain_X = StepArry[0].Gain_X;
  1705. while(((StepTemp.Gain_X & 0x1F) < IMR_TRIAL) && ((StepTemp.Phase_Y & 0x1F) < IMR_TRIAL)) //5->10
  1706. {
  1707. if(Pace == 0x08)
  1708. StepTemp.Gain_X ++;
  1709. else
  1710. StepTemp.Phase_Y ++;
  1711. R828_I2C.RegAddr = 0x08;
  1712. R828_I2C.Data = StepTemp.Gain_X ;
  1713. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1714. return RT_Fail;
  1715. R828_I2C.RegAddr = 0x09;
  1716. R828_I2C.Data = StepTemp.Phase_Y;
  1717. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1718. return RT_Fail;
  1719. if(R828_Muti_Read(pTuner, 0x01, &StepTemp.Value) != RT_Success)
  1720. return RT_Fail;
  1721. if(StepTemp.Value <= StepArry[0].Value)
  1722. {
  1723. StepArry[0].Gain_X = StepTemp.Gain_X;
  1724. StepArry[0].Phase_Y = StepTemp.Phase_Y;
  1725. StepArry[0].Value = StepTemp.Value;
  1726. }
  1727. else
  1728. {
  1729. break;
  1730. }
  1731. } //end of while()
  1732. return RT_Success;
  1733. }
  1734. //-----------------------------------------------------------------------------------/
  1735. // Purpose: read multiple IMC results for stability
  1736. // input: IMR_Reg: IMC result address
  1737. // IMR_Result_Data: result
  1738. // output: TRUE or FALSE
  1739. //-----------------------------------------------------------------------------------/
  1740. R828_ErrCode R828_Muti_Read(void *pTuner, UINT8 IMR_Reg, UINT16* IMR_Result_Data) //jason modified
  1741. {
  1742. UINT8 ReadCount;
  1743. UINT16 ReadAmount;
  1744. UINT8 ReadMax;
  1745. UINT8 ReadMin;
  1746. UINT8 ReadData;
  1747. ReadCount = 0;
  1748. ReadAmount = 0;
  1749. ReadMax = 0;
  1750. ReadMin = 255;
  1751. ReadData = 0;
  1752. R828_Delay_MS(pTuner, 5);
  1753. for(ReadCount = 0;ReadCount < 6;ReadCount ++)
  1754. {
  1755. R828_I2C_Len.RegAddr = 0x00;
  1756. R828_I2C_Len.Len = IMR_Reg + 1; //IMR_Reg = 0x01
  1757. if(I2C_Read_Len(pTuner, &R828_I2C_Len) != RT_Success)
  1758. return RT_Fail;
  1759. ReadData = R828_I2C_Len.Data[1];
  1760. ReadAmount = ReadAmount + (UINT16)ReadData;
  1761. if(ReadData < ReadMin)
  1762. ReadMin = ReadData;
  1763. if(ReadData > ReadMax)
  1764. ReadMax = ReadData;
  1765. }
  1766. *IMR_Result_Data = ReadAmount - (UINT16)ReadMax - (UINT16)ReadMin;
  1767. return RT_Success;
  1768. }
  1769. R828_ErrCode R828_Section(void *pTuner, R828_SectType* IQ_Pont)
  1770. {
  1771. R828_SectType Compare_IQ[3];
  1772. R828_SectType Compare_Bet[3];
  1773. //Try X-1 column and save min result to Compare_Bet[0]
  1774. if((IQ_Pont->Gain_X & 0x1F) == 0x00)
  1775. {
  1776. /*
  1777. if((IQ_Pont->Gain_X & 0xE0) == 0x40) //bug => only compare b[5],
  1778. Compare_IQ[0].Gain_X = 0x61; // Gain=1, I-path //Jason
  1779. else
  1780. Compare_IQ[0].Gain_X = 0x41; // Gain=1, Q-path
  1781. */
  1782. Compare_IQ[0].Gain_X = ((IQ_Pont->Gain_X) & 0xDF) + 1; //Q-path, Gain=1
  1783. }
  1784. else
  1785. Compare_IQ[0].Gain_X = IQ_Pont->Gain_X - 1; //left point
  1786. Compare_IQ[0].Phase_Y = IQ_Pont->Phase_Y;
  1787. if(R828_IQ_Tree(pTuner, Compare_IQ[0].Gain_X, Compare_IQ[0].Phase_Y, 0x08, &Compare_IQ[0]) != RT_Success) // y-direction
  1788. return RT_Fail;
  1789. if(R828_CompreCor(&Compare_IQ[0]) != RT_Success)
  1790. return RT_Fail;
  1791. Compare_Bet[0].Gain_X = Compare_IQ[0].Gain_X;
  1792. Compare_Bet[0].Phase_Y = Compare_IQ[0].Phase_Y;
  1793. Compare_Bet[0].Value = Compare_IQ[0].Value;
  1794. //Try X column and save min result to Compare_Bet[1]
  1795. Compare_IQ[0].Gain_X = IQ_Pont->Gain_X;
  1796. Compare_IQ[0].Phase_Y = IQ_Pont->Phase_Y;
  1797. if(R828_IQ_Tree(pTuner, Compare_IQ[0].Gain_X, Compare_IQ[0].Phase_Y, 0x08, &Compare_IQ[0]) != RT_Success)
  1798. return RT_Fail;
  1799. if(R828_CompreCor(&Compare_IQ[0]) != RT_Success)
  1800. return RT_Fail;
  1801. Compare_Bet[1].Gain_X = Compare_IQ[0].Gain_X;
  1802. Compare_Bet[1].Phase_Y = Compare_IQ[0].Phase_Y;
  1803. Compare_Bet[1].Value = Compare_IQ[0].Value;
  1804. //Try X+1 column and save min result to Compare_Bet[2]
  1805. if((IQ_Pont->Gain_X & 0x1F) == 0x00)
  1806. Compare_IQ[0].Gain_X = ((IQ_Pont->Gain_X) | 0x20) + 1; //I-path, Gain=1
  1807. else
  1808. Compare_IQ[0].Gain_X = IQ_Pont->Gain_X + 1;
  1809. Compare_IQ[0].Phase_Y = IQ_Pont->Phase_Y;
  1810. if(R828_IQ_Tree(pTuner, Compare_IQ[0].Gain_X, Compare_IQ[0].Phase_Y, 0x08, &Compare_IQ[0]) != RT_Success)
  1811. return RT_Fail;
  1812. if(R828_CompreCor(&Compare_IQ[0]) != RT_Success)
  1813. return RT_Fail;
  1814. Compare_Bet[2].Gain_X = Compare_IQ[0].Gain_X;
  1815. Compare_Bet[2].Phase_Y = Compare_IQ[0].Phase_Y;
  1816. Compare_Bet[2].Value = Compare_IQ[0].Value;
  1817. if(R828_CompreCor(&Compare_Bet[0]) != RT_Success)
  1818. return RT_Fail;
  1819. *IQ_Pont = Compare_Bet[0];
  1820. return RT_Success;
  1821. }
  1822. R828_ErrCode R828_IMR_Cross(void *pTuner, R828_SectType* IQ_Pont, UINT8* X_Direct)
  1823. {
  1824. R828_SectType Compare_Cross[5]; //(0,0)(0,Q-1)(0,I-1)(Q-1,0)(I-1,0)
  1825. R828_SectType Compare_Temp;
  1826. UINT8 CrossCount;
  1827. UINT8 Reg08;
  1828. UINT8 Reg09;
  1829. CrossCount = 0;
  1830. Reg08 = R828_iniArry[3] & 0xC0;
  1831. Reg09 = R828_iniArry[4] & 0xC0;
  1832. //memset(&Compare_Temp,0, sizeof(R828_SectType));
  1833. Compare_Temp.Gain_X = 0;
  1834. Compare_Temp.Phase_Y = 0;
  1835. Compare_Temp.Value = 0;
  1836. Compare_Temp.Value = 255;
  1837. for(CrossCount=0; CrossCount<5; CrossCount++)
  1838. {
  1839. if(CrossCount==0)
  1840. {
  1841. Compare_Cross[CrossCount].Gain_X = Reg08;
  1842. Compare_Cross[CrossCount].Phase_Y = Reg09;
  1843. }
  1844. else if(CrossCount==1)
  1845. {
  1846. Compare_Cross[CrossCount].Gain_X = Reg08; //0
  1847. Compare_Cross[CrossCount].Phase_Y = Reg09 + 1; //Q-1
  1848. }
  1849. else if(CrossCount==2)
  1850. {
  1851. Compare_Cross[CrossCount].Gain_X = Reg08; //0
  1852. Compare_Cross[CrossCount].Phase_Y = (Reg09 | 0x20) + 1; //I-1
  1853. }
  1854. else if(CrossCount==3)
  1855. {
  1856. Compare_Cross[CrossCount].Gain_X = Reg08 + 1; //Q-1
  1857. Compare_Cross[CrossCount].Phase_Y = Reg09;
  1858. }
  1859. else
  1860. {
  1861. Compare_Cross[CrossCount].Gain_X = (Reg08 | 0x20) + 1; //I-1
  1862. Compare_Cross[CrossCount].Phase_Y = Reg09;
  1863. }
  1864. R828_I2C.RegAddr = 0x08;
  1865. R828_I2C.Data = Compare_Cross[CrossCount].Gain_X;
  1866. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1867. return RT_Fail;
  1868. R828_I2C.RegAddr = 0x09;
  1869. R828_I2C.Data = Compare_Cross[CrossCount].Phase_Y;
  1870. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1871. return RT_Fail;
  1872. if(R828_Muti_Read(pTuner, 0x01, &Compare_Cross[CrossCount].Value) != RT_Success)
  1873. return RT_Fail;
  1874. if( Compare_Cross[CrossCount].Value < Compare_Temp.Value)
  1875. {
  1876. Compare_Temp.Value = Compare_Cross[CrossCount].Value;
  1877. Compare_Temp.Gain_X = Compare_Cross[CrossCount].Gain_X;
  1878. Compare_Temp.Phase_Y = Compare_Cross[CrossCount].Phase_Y;
  1879. }
  1880. } //end for loop
  1881. if((Compare_Temp.Phase_Y & 0x1F)==1) //y-direction
  1882. {
  1883. *X_Direct = (UINT8) 0;
  1884. IQ_Pont[0].Gain_X = Compare_Cross[0].Gain_X;
  1885. IQ_Pont[0].Phase_Y = Compare_Cross[0].Phase_Y;
  1886. IQ_Pont[0].Value = Compare_Cross[0].Value;
  1887. IQ_Pont[1].Gain_X = Compare_Cross[1].Gain_X;
  1888. IQ_Pont[1].Phase_Y = Compare_Cross[1].Phase_Y;
  1889. IQ_Pont[1].Value = Compare_Cross[1].Value;
  1890. IQ_Pont[2].Gain_X = Compare_Cross[2].Gain_X;
  1891. IQ_Pont[2].Phase_Y = Compare_Cross[2].Phase_Y;
  1892. IQ_Pont[2].Value = Compare_Cross[2].Value;
  1893. }
  1894. else //(0,0) or x-direction
  1895. {
  1896. *X_Direct = (UINT8) 1;
  1897. IQ_Pont[0].Gain_X = Compare_Cross[0].Gain_X;
  1898. IQ_Pont[0].Phase_Y = Compare_Cross[0].Phase_Y;
  1899. IQ_Pont[0].Value = Compare_Cross[0].Value;
  1900. IQ_Pont[1].Gain_X = Compare_Cross[3].Gain_X;
  1901. IQ_Pont[1].Phase_Y = Compare_Cross[3].Phase_Y;
  1902. IQ_Pont[1].Value = Compare_Cross[3].Value;
  1903. IQ_Pont[2].Gain_X = Compare_Cross[4].Gain_X;
  1904. IQ_Pont[2].Phase_Y = Compare_Cross[4].Phase_Y;
  1905. IQ_Pont[2].Value = Compare_Cross[4].Value;
  1906. }
  1907. return RT_Success;
  1908. }
  1909. //----------------------------------------------------------------------------------------//
  1910. // purpose: search surrounding points from previous point
  1911. // try (x-1), (x), (x+1) columns, and find min IMR result point
  1912. // input: IQ_Pont: previous point data(IMR Gain, Phase, ADC Result, RefRreq)
  1913. // will be updated to final best point
  1914. // output: TRUE or FALSE
  1915. //----------------------------------------------------------------------------------------//
  1916. R828_ErrCode R828_F_IMR(void *pTuner, R828_SectType* IQ_Pont)
  1917. {
  1918. R828_SectType Compare_IQ[3];
  1919. R828_SectType Compare_Bet[3];
  1920. UINT8 VGA_Count;
  1921. UINT16 VGA_Read;
  1922. VGA_Count = 0;
  1923. VGA_Read = 0;
  1924. //VGA
  1925. for(VGA_Count = 12;VGA_Count < 16;VGA_Count ++)
  1926. {
  1927. R828_I2C.RegAddr = 0x0C;
  1928. R828_I2C.Data = (R828_Arry[7] & 0xF0) + VGA_Count;
  1929. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1930. return RT_Fail;
  1931. R828_Delay_MS(pTuner, 10);
  1932. if(R828_Muti_Read(pTuner, 0x01, &VGA_Read) != RT_Success)
  1933. return RT_Fail;
  1934. if(VGA_Read > 40*4)
  1935. break;
  1936. }
  1937. //Try X-1 column and save min result to Compare_Bet[0]
  1938. if((IQ_Pont->Gain_X & 0x1F) == 0x00)
  1939. {
  1940. Compare_IQ[0].Gain_X = ((IQ_Pont->Gain_X) & 0xDF) + 1; //Q-path, Gain=1
  1941. }
  1942. else
  1943. Compare_IQ[0].Gain_X = IQ_Pont->Gain_X - 1; //left point
  1944. Compare_IQ[0].Phase_Y = IQ_Pont->Phase_Y;
  1945. if(R828_IQ_Tree(pTuner, Compare_IQ[0].Gain_X, Compare_IQ[0].Phase_Y, 0x08, &Compare_IQ[0]) != RT_Success) // y-direction
  1946. return RT_Fail;
  1947. if(R828_CompreCor(&Compare_IQ[0]) != RT_Success)
  1948. return RT_Fail;
  1949. Compare_Bet[0].Gain_X = Compare_IQ[0].Gain_X;
  1950. Compare_Bet[0].Phase_Y = Compare_IQ[0].Phase_Y;
  1951. Compare_Bet[0].Value = Compare_IQ[0].Value;
  1952. //Try X column and save min result to Compare_Bet[1]
  1953. Compare_IQ[0].Gain_X = IQ_Pont->Gain_X;
  1954. Compare_IQ[0].Phase_Y = IQ_Pont->Phase_Y;
  1955. if(R828_IQ_Tree(pTuner, Compare_IQ[0].Gain_X, Compare_IQ[0].Phase_Y, 0x08, &Compare_IQ[0]) != RT_Success)
  1956. return RT_Fail;
  1957. if(R828_CompreCor(&Compare_IQ[0]) != RT_Success)
  1958. return RT_Fail;
  1959. Compare_Bet[1].Gain_X = Compare_IQ[0].Gain_X;
  1960. Compare_Bet[1].Phase_Y = Compare_IQ[0].Phase_Y;
  1961. Compare_Bet[1].Value = Compare_IQ[0].Value;
  1962. //Try X+1 column and save min result to Compare_Bet[2]
  1963. if((IQ_Pont->Gain_X & 0x1F) == 0x00)
  1964. Compare_IQ[0].Gain_X = ((IQ_Pont->Gain_X) | 0x20) + 1; //I-path, Gain=1
  1965. else
  1966. Compare_IQ[0].Gain_X = IQ_Pont->Gain_X + 1;
  1967. Compare_IQ[0].Phase_Y = IQ_Pont->Phase_Y;
  1968. if(R828_IQ_Tree(pTuner, Compare_IQ[0].Gain_X, Compare_IQ[0].Phase_Y, 0x08, &Compare_IQ[0]) != RT_Success)
  1969. return RT_Fail;
  1970. if(R828_CompreCor(&Compare_IQ[0]) != RT_Success)
  1971. return RT_Fail;
  1972. Compare_Bet[2].Gain_X = Compare_IQ[0].Gain_X;
  1973. Compare_Bet[2].Phase_Y = Compare_IQ[0].Phase_Y;
  1974. Compare_Bet[2].Value = Compare_IQ[0].Value;
  1975. if(R828_CompreCor(&Compare_Bet[0]) != RT_Success)
  1976. return RT_Fail;
  1977. *IQ_Pont = Compare_Bet[0];
  1978. return RT_Success;
  1979. }
  1980. R828_ErrCode R828_GPIO(void *pTuner, R828_GPIO_Type R828_GPIO_Conrl)
  1981. {
  1982. if(R828_GPIO_Conrl == HI_SIG)
  1983. R828_Arry[10] |= 0x01;
  1984. else
  1985. R828_Arry[10] &= 0xFE;
  1986. R828_I2C.RegAddr = 0x0F;
  1987. R828_I2C.Data = R828_Arry[10];
  1988. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  1989. return RT_Fail;
  1990. return RT_Success;
  1991. }
  1992. R828_ErrCode R828_SetStandard(void *pTuner, R828_Standard_Type RT_Standard)
  1993. {
  1994. // Used Normal Arry to Modify
  1995. UINT8 ArrayNum;
  1996. ArrayNum = 27;
  1997. for(ArrayNum=0;ArrayNum<27;ArrayNum++)
  1998. {
  1999. R828_Arry[ArrayNum] = R828_iniArry[ArrayNum];
  2000. }
  2001. // Record Init Flag & Xtal_check Result
  2002. if(R828_IMR_done_flag == TRUE)
  2003. R828_Arry[7] = (R828_Arry[7] & 0xF0) | 0x01 | (Xtal_cap_sel<<1);
  2004. else
  2005. R828_Arry[7] = (R828_Arry[7] & 0xF0) | 0x00;
  2006. R828_I2C.RegAddr = 0x0C;
  2007. R828_I2C.Data = R828_Arry[7];
  2008. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2009. return RT_Fail;
  2010. // Record version
  2011. R828_I2C.RegAddr = 0x13;
  2012. R828_Arry[14] = (R828_Arry[14] & 0xC0) | VER_NUM;
  2013. R828_I2C.Data = R828_Arry[14];
  2014. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2015. return RT_Fail;
  2016. //for LT Gain test
  2017. if(RT_Standard > SECAM_L1)
  2018. {
  2019. R828_I2C.RegAddr = 0x1D; //[5:3] LNA TOP
  2020. R828_I2C.Data = (R828_Arry[24] & 0xC7) | 0x00;
  2021. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2022. return RT_Fail;
  2023. //R828_Delay_MS(1);
  2024. }
  2025. // Look Up System Dependent Table
  2026. Sys_Info1 = R828_Sys_Sel(RT_Standard);
  2027. R828_IF_khz = Sys_Info1.IF_KHz;
  2028. R828_CAL_LO_khz = Sys_Info1.FILT_CAL_LO;
  2029. // Filter Calibration
  2030. if(R828_Fil_Cal_flag[RT_Standard] == FALSE)
  2031. {
  2032. // do filter calibration
  2033. if(R828_Filt_Cal(pTuner, Sys_Info1.FILT_CAL_LO,Sys_Info1.BW) != RT_Success)
  2034. return RT_Fail;
  2035. // read and set filter code
  2036. R828_I2C_Len.RegAddr = 0x00;
  2037. R828_I2C_Len.Len = 5;
  2038. if(I2C_Read_Len(pTuner, &R828_I2C_Len) != RT_Success)
  2039. return RT_Fail;
  2040. R828_Fil_Cal_code[RT_Standard] = R828_I2C_Len.Data[4] & 0x0F;
  2041. //Filter Cali. Protection
  2042. if(R828_Fil_Cal_code[RT_Standard]==0 || R828_Fil_Cal_code[RT_Standard]==15)
  2043. {
  2044. if(R828_Filt_Cal(pTuner, Sys_Info1.FILT_CAL_LO,Sys_Info1.BW) != RT_Success)
  2045. return RT_Fail;
  2046. R828_I2C_Len.RegAddr = 0x00;
  2047. R828_I2C_Len.Len = 5;
  2048. if(I2C_Read_Len(pTuner, &R828_I2C_Len) != RT_Success)
  2049. return RT_Fail;
  2050. R828_Fil_Cal_code[RT_Standard] = R828_I2C_Len.Data[4] & 0x0F;
  2051. if(R828_Fil_Cal_code[RT_Standard]==15) //narrowest
  2052. R828_Fil_Cal_code[RT_Standard] = 0;
  2053. }
  2054. R828_Fil_Cal_flag[RT_Standard] = TRUE;
  2055. }
  2056. // Set Filter Q
  2057. R828_Arry[5] = (R828_Arry[5] & 0xE0) | Sys_Info1.FILT_Q | R828_Fil_Cal_code[RT_Standard];
  2058. R828_I2C.RegAddr = 0x0A;
  2059. R828_I2C.Data = R828_Arry[5];
  2060. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2061. return RT_Fail;
  2062. // Set BW, Filter_gain, & HP corner
  2063. R828_Arry[6]= (R828_Arry[6] & 0x10) | Sys_Info1.HP_COR;
  2064. R828_I2C.RegAddr = 0x0B;
  2065. R828_I2C.Data = R828_Arry[6];
  2066. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2067. return RT_Fail;
  2068. // Set Img_R
  2069. R828_Arry[2] = (R828_Arry[2] & 0x7F) | Sys_Info1.IMG_R;
  2070. R828_I2C.RegAddr = 0x07;
  2071. R828_I2C.Data = R828_Arry[2];
  2072. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2073. return RT_Fail;
  2074. // Set filt_3dB, V6MHz
  2075. R828_Arry[1] = (R828_Arry[1] & 0xCF) | Sys_Info1.FILT_GAIN;
  2076. R828_I2C.RegAddr = 0x06;
  2077. R828_I2C.Data = R828_Arry[1];
  2078. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2079. return RT_Fail;
  2080. //channel filter extension
  2081. R828_Arry[25] = (R828_Arry[25] & 0x9F) | Sys_Info1.EXT_ENABLE;
  2082. R828_I2C.RegAddr = 0x1E;
  2083. R828_I2C.Data = R828_Arry[25];
  2084. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2085. return RT_Fail;
  2086. //Loop through
  2087. R828_Arry[0] = (R828_Arry[0] & 0x7F) | Sys_Info1.LOOP_THROUGH;
  2088. R828_I2C.RegAddr = 0x05;
  2089. R828_I2C.Data = R828_Arry[0];
  2090. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2091. return RT_Fail;
  2092. //Loop through attenuation
  2093. R828_Arry[26] = (R828_Arry[26] & 0x7F) | Sys_Info1.LT_ATT;
  2094. R828_I2C.RegAddr = 0x1F;
  2095. R828_I2C.Data = R828_Arry[26];
  2096. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2097. return RT_Fail;
  2098. //filter extention widest
  2099. R828_Arry[10] = (R828_Arry[10] & 0x7F) | Sys_Info1.FLT_EXT_WIDEST;
  2100. R828_I2C.RegAddr = 0x0F;
  2101. R828_I2C.Data = R828_Arry[10];
  2102. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2103. return RT_Fail;
  2104. //RF poly filter current
  2105. R828_Arry[20] = (R828_Arry[20] & 0x9F) | Sys_Info1.POLYFIL_CUR;
  2106. R828_I2C.RegAddr = 0x19;
  2107. R828_I2C.Data = R828_Arry[20];
  2108. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2109. return RT_Fail;
  2110. return RT_Success;
  2111. }
  2112. R828_ErrCode R828_Filt_Cal(void *pTuner, UINT32 Cal_Freq,BW_Type R828_BW)
  2113. {
  2114. //set in Sys_sel()
  2115. /*
  2116. if(R828_BW == BW_8M)
  2117. {
  2118. //set filt_cap = no cap
  2119. R828_I2C.RegAddr = 0x0B; //reg11
  2120. R828_Arry[6] &= 0x9F; //filt_cap = no cap
  2121. R828_I2C.Data = R828_Arry[6];
  2122. }
  2123. else if(R828_BW == BW_7M)
  2124. {
  2125. //set filt_cap = +1 cap
  2126. R828_I2C.RegAddr = 0x0B; //reg11
  2127. R828_Arry[6] &= 0x9F; //filt_cap = no cap
  2128. R828_Arry[6] |= 0x20; //filt_cap = +1 cap
  2129. R828_I2C.Data = R828_Arry[6];
  2130. }
  2131. else if(R828_BW == BW_6M)
  2132. {
  2133. //set filt_cap = +2 cap
  2134. R828_I2C.RegAddr = 0x0B; //reg11
  2135. R828_Arry[6] &= 0x9F; //filt_cap = no cap
  2136. R828_Arry[6] |= 0x60; //filt_cap = +2 cap
  2137. R828_I2C.Data = R828_Arry[6];
  2138. }
  2139. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2140. return RT_Fail;
  2141. */
  2142. // Set filt_cap
  2143. R828_I2C.RegAddr = 0x0B;
  2144. R828_Arry[6]= (R828_Arry[6] & 0x9F) | (Sys_Info1.HP_COR & 0x60);
  2145. R828_I2C.Data = R828_Arry[6];
  2146. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2147. return RT_Fail;
  2148. //set cali clk =on
  2149. R828_I2C.RegAddr = 0x0F; //reg15
  2150. R828_Arry[10] |= 0x04; //calibration clk=on
  2151. R828_I2C.Data = R828_Arry[10];
  2152. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2153. return RT_Fail;
  2154. //X'tal cap 0pF for PLL
  2155. R828_I2C.RegAddr = 0x10;
  2156. R828_Arry[11] = (R828_Arry[11] & 0xFC) | 0x00;
  2157. R828_I2C.Data = R828_Arry[11];
  2158. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2159. return RT_Fail;
  2160. //Set PLL Freq = Filter Cali Freq
  2161. if(R828_PLL(pTuner, Cal_Freq * 1000, STD_SIZE) != RT_Success)
  2162. return RT_Fail;
  2163. //Start Trigger
  2164. R828_I2C.RegAddr = 0x0B; //reg11
  2165. R828_Arry[6] |= 0x10; //vstart=1
  2166. R828_I2C.Data = R828_Arry[6];
  2167. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2168. return RT_Fail;
  2169. //delay 0.5ms
  2170. R828_Delay_MS(pTuner, 1);
  2171. //Stop Trigger
  2172. R828_I2C.RegAddr = 0x0B;
  2173. R828_Arry[6] &= 0xEF; //vstart=0
  2174. R828_I2C.Data = R828_Arry[6];
  2175. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2176. return RT_Fail;
  2177. //set cali clk =off
  2178. R828_I2C.RegAddr = 0x0F; //reg15
  2179. R828_Arry[10] &= 0xFB; //calibration clk=off
  2180. R828_I2C.Data = R828_Arry[10];
  2181. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2182. return RT_Fail;
  2183. return RT_Success;
  2184. }
  2185. R828_ErrCode R828_SetFrequency(void *pTuner, R828_Set_Info R828_INFO, R828_SetFreq_Type R828_SetFreqMode)
  2186. {
  2187. UINT32 LO_Hz;
  2188. #if 0
  2189. // Check Input Frequency Range
  2190. if((R828_INFO.RF_KHz<40000) || (R828_INFO.RF_KHz>900000))
  2191. {
  2192. return RT_Fail;
  2193. }
  2194. #endif
  2195. if(R828_INFO.R828_Standard==SECAM_L1)
  2196. LO_Hz = R828_INFO.RF_Hz - (Sys_Info1.IF_KHz * 1000);
  2197. else
  2198. LO_Hz = R828_INFO.RF_Hz + (Sys_Info1.IF_KHz * 1000);
  2199. //Set MUX dependent var. Must do before PLL( )
  2200. if(R828_MUX(pTuner, LO_Hz/1000) != RT_Success)
  2201. return RT_Fail;
  2202. //Set PLL
  2203. if(R828_PLL(pTuner, LO_Hz, R828_INFO.R828_Standard) != RT_Success)
  2204. return RT_Fail;
  2205. R828_IMR_point_num = Freq_Info1.IMR_MEM;
  2206. //Set TOP,VTH,VTL
  2207. SysFreq_Info1 = R828_SysFreq_Sel(R828_INFO.R828_Standard, R828_INFO.RF_KHz);
  2208. // write DectBW, pre_dect_TOP
  2209. R828_Arry[24] = (R828_Arry[24] & 0x38) | (SysFreq_Info1.LNA_TOP & 0xC7);
  2210. R828_I2C.RegAddr = 0x1D;
  2211. R828_I2C.Data = R828_Arry[24];
  2212. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2213. return RT_Fail;
  2214. // write MIXER TOP, TOP+-1
  2215. R828_Arry[23] = (R828_Arry[23] & 0x07) | (SysFreq_Info1.MIXER_TOP & 0xF8);
  2216. R828_I2C.RegAddr = 0x1C;
  2217. R828_I2C.Data = R828_Arry[23];
  2218. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2219. return RT_Fail;
  2220. // write LNA VTHL
  2221. R828_Arry[8] = (R828_Arry[8] & 0x00) | SysFreq_Info1.LNA_VTH_L;
  2222. R828_I2C.RegAddr = 0x0D;
  2223. R828_I2C.Data = R828_Arry[8];
  2224. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2225. return RT_Fail;
  2226. // write MIXER VTHL
  2227. R828_Arry[9] = (R828_Arry[9] & 0x00) | SysFreq_Info1.MIXER_VTH_L;
  2228. R828_I2C.RegAddr = 0x0E;
  2229. R828_I2C.Data = R828_Arry[9];
  2230. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2231. return RT_Fail;
  2232. // Cable-1/Air in
  2233. R828_I2C.RegAddr = 0x05;
  2234. R828_Arry[0] &= 0x9F;
  2235. R828_Arry[0] |= SysFreq_Info1.AIR_CABLE1_IN;
  2236. R828_I2C.Data = R828_Arry[0];
  2237. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2238. return RT_Fail;
  2239. // Cable-2 in
  2240. R828_I2C.RegAddr = 0x06;
  2241. R828_Arry[1] &= 0xF7;
  2242. R828_Arry[1] |= SysFreq_Info1.CABLE2_IN;
  2243. R828_I2C.Data = R828_Arry[1];
  2244. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2245. return RT_Fail;
  2246. //CP current
  2247. R828_I2C.RegAddr = 0x11;
  2248. R828_Arry[12] &= 0xC7;
  2249. R828_Arry[12] |= SysFreq_Info1.CP_CUR;
  2250. R828_I2C.Data = R828_Arry[12];
  2251. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2252. return RT_Fail;
  2253. //div buffer current
  2254. R828_I2C.RegAddr = 0x17;
  2255. R828_Arry[18] &= 0xCF;
  2256. R828_Arry[18] |= SysFreq_Info1.DIV_BUF_CUR;
  2257. R828_I2C.Data = R828_Arry[18];
  2258. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2259. return RT_Fail;
  2260. // Set channel filter current
  2261. R828_I2C.RegAddr = 0x0A;
  2262. R828_Arry[5] = (R828_Arry[5] & 0x9F) | SysFreq_Info1.FILTER_CUR;
  2263. R828_I2C.Data = R828_Arry[5];
  2264. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2265. return RT_Fail;
  2266. //Air-In only for Astrometa
  2267. R828_Arry[0] = (R828_Arry[0] & 0x9F) | 0x00;
  2268. R828_Arry[1] = (R828_Arry[1] & 0xF7) | 0x00;
  2269. R828_I2C.RegAddr = 0x05;
  2270. R828_I2C.Data = R828_Arry[0];
  2271. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2272. return RT_Fail;
  2273. R828_I2C.RegAddr = 0x06;
  2274. R828_I2C.Data = R828_Arry[1];
  2275. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2276. return RT_Fail;
  2277. //Set LNA
  2278. if(R828_INFO.R828_Standard > SECAM_L1)
  2279. {
  2280. if(R828_SetFreqMode==FAST_MODE) //FAST mode
  2281. {
  2282. //R828_Arry[24] = (R828_Arry[24] & 0xC7) | 0x20; //LNA TOP:4
  2283. R828_Arry[24] = (R828_Arry[24] & 0xC7) | 0x00; //LNA TOP:lowest
  2284. R828_I2C.RegAddr = 0x1D;
  2285. R828_I2C.Data = R828_Arry[24];
  2286. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2287. return RT_Fail;
  2288. R828_Arry[23] = (R828_Arry[23] & 0xFB); // 0: normal mode
  2289. R828_I2C.RegAddr = 0x1C;
  2290. R828_I2C.Data = R828_Arry[23];
  2291. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2292. return RT_Fail;
  2293. R828_Arry[1] = (R828_Arry[1] & 0xBF); //0: PRE_DECT off
  2294. R828_I2C.RegAddr = 0x06;
  2295. R828_I2C.Data = R828_Arry[1];
  2296. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2297. return RT_Fail;
  2298. //agc clk 250hz
  2299. R828_Arry[21] = (R828_Arry[21] & 0xCF) | 0x30;
  2300. R828_I2C.RegAddr = 0x1A;
  2301. R828_I2C.Data = R828_Arry[21];
  2302. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2303. return RT_Fail;
  2304. }
  2305. else //NORMAL mode
  2306. {
  2307. R828_Arry[24] = (R828_Arry[24] & 0xC7) | 0x00; //LNA TOP:lowest
  2308. R828_I2C.RegAddr = 0x1D;
  2309. R828_I2C.Data = R828_Arry[24];
  2310. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2311. return RT_Fail;
  2312. R828_Arry[23] = (R828_Arry[23] & 0xFB); // 0: normal mode
  2313. R828_I2C.RegAddr = 0x1C;
  2314. R828_I2C.Data = R828_Arry[23];
  2315. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2316. return RT_Fail;
  2317. R828_Arry[1] = (R828_Arry[1] & 0xBF); //0: PRE_DECT off
  2318. R828_I2C.RegAddr = 0x06;
  2319. R828_I2C.Data = R828_Arry[1];
  2320. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2321. return RT_Fail;
  2322. //agc clk 250hz
  2323. R828_Arry[21] = (R828_Arry[21] & 0xCF) | 0x30; //250hz
  2324. R828_I2C.RegAddr = 0x1A;
  2325. R828_I2C.Data = R828_Arry[21];
  2326. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2327. return RT_Fail;
  2328. R828_Delay_MS(pTuner, 250);
  2329. // PRE_DECT on
  2330. /*
  2331. R828_Arry[1] = (R828_Arry[1] & 0xBF) | SysFreq_Info1.PRE_DECT;
  2332. R828_I2C.RegAddr = 0x06;
  2333. R828_I2C.Data = R828_Arry[1];
  2334. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2335. return RT_Fail;
  2336. */
  2337. // write LNA TOP = 3
  2338. //R828_Arry[24] = (R828_Arry[24] & 0xC7) | (SysFreq_Info1.LNA_TOP & 0x38);
  2339. R828_Arry[24] = (R828_Arry[24] & 0xC7) | 0x18; //TOP=3
  2340. R828_I2C.RegAddr = 0x1D;
  2341. R828_I2C.Data = R828_Arry[24];
  2342. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2343. return RT_Fail;
  2344. // write discharge mode
  2345. R828_Arry[23] = (R828_Arry[23] & 0xFB) | (SysFreq_Info1.MIXER_TOP & 0x04);
  2346. R828_I2C.RegAddr = 0x1C;
  2347. R828_I2C.Data = R828_Arry[23];
  2348. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2349. return RT_Fail;
  2350. // LNA discharge current
  2351. R828_Arry[25] = (R828_Arry[25] & 0xE0) | SysFreq_Info1.LNA_DISCHARGE;
  2352. R828_I2C.RegAddr = 0x1E;
  2353. R828_I2C.Data = R828_Arry[25];
  2354. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2355. return RT_Fail;
  2356. //agc clk 60hz
  2357. R828_Arry[21] = (R828_Arry[21] & 0xCF) | 0x20;
  2358. R828_I2C.RegAddr = 0x1A;
  2359. R828_I2C.Data = R828_Arry[21];
  2360. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2361. return RT_Fail;
  2362. }
  2363. }
  2364. else
  2365. {
  2366. if(R828_SetFreqMode==NORMAL_MODE || R828_SetFreqMode==FAST_MODE)
  2367. {
  2368. /*
  2369. // PRE_DECT on
  2370. R828_Arry[1] = (R828_Arry[1] & 0xBF) | SysFreq_Info1.PRE_DECT;
  2371. R828_I2C.RegAddr = 0x06;
  2372. R828_I2C.Data = R828_Arry[1];
  2373. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2374. return RT_Fail;
  2375. */
  2376. // PRE_DECT off
  2377. R828_Arry[1] = (R828_Arry[1] & 0xBF); //0: PRE_DECT off
  2378. R828_I2C.RegAddr = 0x06;
  2379. R828_I2C.Data = R828_Arry[1];
  2380. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2381. return RT_Fail;
  2382. // write LNA TOP
  2383. R828_Arry[24] = (R828_Arry[24] & 0xC7) | (SysFreq_Info1.LNA_TOP & 0x38);
  2384. R828_I2C.RegAddr = 0x1D;
  2385. R828_I2C.Data = R828_Arry[24];
  2386. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2387. return RT_Fail;
  2388. // write discharge mode
  2389. R828_Arry[23] = (R828_Arry[23] & 0xFB) | (SysFreq_Info1.MIXER_TOP & 0x04);
  2390. R828_I2C.RegAddr = 0x1C;
  2391. R828_I2C.Data = R828_Arry[23];
  2392. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2393. return RT_Fail;
  2394. // LNA discharge current
  2395. R828_Arry[25] = (R828_Arry[25] & 0xE0) | SysFreq_Info1.LNA_DISCHARGE;
  2396. R828_I2C.RegAddr = 0x1E;
  2397. R828_I2C.Data = R828_Arry[25];
  2398. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2399. return RT_Fail;
  2400. // agc clk 1Khz, external det1 cap 1u
  2401. R828_Arry[21] = (R828_Arry[21] & 0xCF) | 0x00;
  2402. R828_I2C.RegAddr = 0x1A;
  2403. R828_I2C.Data = R828_Arry[21];
  2404. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2405. return RT_Fail;
  2406. R828_Arry[11] = (R828_Arry[11] & 0xFB) | 0x00;
  2407. R828_I2C.RegAddr = 0x10;
  2408. R828_I2C.Data = R828_Arry[11];
  2409. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2410. return RT_Fail;
  2411. }
  2412. }
  2413. return RT_Success;
  2414. }
  2415. R828_ErrCode R828_Standby(void *pTuner, R828_LoopThrough_Type R828_LoopSwitch)
  2416. {
  2417. if(R828_LoopSwitch == LOOP_THROUGH)
  2418. {
  2419. R828_I2C.RegAddr = 0x06;
  2420. R828_I2C.Data = 0xB1;
  2421. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2422. return RT_Fail;
  2423. R828_I2C.RegAddr = 0x05;
  2424. R828_I2C.Data = 0x03;
  2425. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2426. return RT_Fail;
  2427. }
  2428. else
  2429. {
  2430. R828_I2C.RegAddr = 0x05;
  2431. R828_I2C.Data = 0xA3;
  2432. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2433. return RT_Fail;
  2434. R828_I2C.RegAddr = 0x06;
  2435. R828_I2C.Data = 0xB1;
  2436. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2437. return RT_Fail;
  2438. }
  2439. R828_I2C.RegAddr = 0x07;
  2440. R828_I2C.Data = 0x3A;
  2441. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2442. return RT_Fail;
  2443. R828_I2C.RegAddr = 0x08;
  2444. R828_I2C.Data = 0x40;
  2445. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2446. return RT_Fail;
  2447. R828_I2C.RegAddr = 0x09;
  2448. R828_I2C.Data = 0xC0; //polyfilter off
  2449. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2450. return RT_Fail;
  2451. R828_I2C.RegAddr = 0x0A;
  2452. R828_I2C.Data = 0x36;
  2453. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2454. return RT_Fail;
  2455. R828_I2C.RegAddr = 0x0C;
  2456. R828_I2C.Data = 0x35;
  2457. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2458. return RT_Fail;
  2459. R828_I2C.RegAddr = 0x0F;
  2460. R828_I2C.Data = 0x68; /* was 0x78, which turns off CLK_Out */
  2461. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2462. return RT_Fail;
  2463. R828_I2C.RegAddr = 0x11;
  2464. R828_I2C.Data = 0x03;
  2465. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2466. return RT_Fail;
  2467. R828_I2C.RegAddr = 0x17;
  2468. R828_I2C.Data = 0xF4;
  2469. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2470. return RT_Fail;
  2471. R828_I2C.RegAddr = 0x19;
  2472. R828_I2C.Data = 0x0C;
  2473. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2474. return RT_Fail;
  2475. return RT_Success;
  2476. }
  2477. R828_ErrCode R828_GetRfGain(void *pTuner, R828_RF_Gain_Info *pR828_rf_gain)
  2478. {
  2479. R828_I2C_Len.RegAddr = 0x00;
  2480. R828_I2C_Len.Len = 4;
  2481. if(I2C_Read_Len(pTuner, &R828_I2C_Len) != RT_Success)
  2482. return RT_Fail;
  2483. pR828_rf_gain->RF_gain1 = (R828_I2C_Len.Data[3] & 0x0F);
  2484. pR828_rf_gain->RF_gain2 = ((R828_I2C_Len.Data[3] & 0xF0) >> 4);
  2485. pR828_rf_gain->RF_gain_comb = pR828_rf_gain->RF_gain1*2 + pR828_rf_gain->RF_gain2;
  2486. return RT_Success;
  2487. }
  2488. /* measured with a Racal 6103E GSM test set at 928 MHz with -60 dBm
  2489. * input power, for raw results see:
  2490. * http://steve-m.de/projects/rtl-sdr/gain_measurement/r820t/
  2491. */
  2492. #define VGA_BASE_GAIN -47
  2493. static const int r820t_vga_gain_steps[] = {
  2494. 0, 26, 26, 30, 42, 35, 24, 13, 14, 32, 36, 34, 35, 37, 35, 36
  2495. };
  2496. static const int r820t_lna_gain_steps[] = {
  2497. 0, 9, 13, 40, 38, 13, 31, 22, 26, 31, 26, 14, 19, 5, 35, 13
  2498. };
  2499. static const int r820t_mixer_gain_steps[] = {
  2500. 0, 5, 10, 10, 19, 9, 10, 25, 17, 10, 8, 16, 13, 6, 3, -8
  2501. };
  2502. R828_ErrCode R828_SetRfGain(void *pTuner, int gain)
  2503. {
  2504. int i, total_gain = 0;
  2505. uint8_t mix_index = 0, lna_index = 0;
  2506. for (i = 0; i < 15; i++) {
  2507. if (total_gain >= gain)
  2508. break;
  2509. total_gain += r820t_lna_gain_steps[++lna_index];
  2510. if (total_gain >= gain)
  2511. break;
  2512. total_gain += r820t_mixer_gain_steps[++mix_index];
  2513. }
  2514. /* set LNA gain */
  2515. R828_I2C.RegAddr = 0x05;
  2516. R828_Arry[0] = (R828_Arry[0] & 0xF0) | lna_index;
  2517. R828_I2C.Data = R828_Arry[0];
  2518. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2519. return RT_Fail;
  2520. /* set Mixer gain */
  2521. R828_I2C.RegAddr = 0x07;
  2522. R828_Arry[2] = (R828_Arry[2] & 0xF0) | mix_index;
  2523. R828_I2C.Data = R828_Arry[2];
  2524. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2525. return RT_Fail;
  2526. return RT_Success;
  2527. }
  2528. R828_ErrCode R828_RfGainMode(void *pTuner, int manual)
  2529. {
  2530. UINT8 MixerGain;
  2531. UINT8 LnaGain;
  2532. MixerGain = 0;
  2533. LnaGain = 0;
  2534. if (manual) {
  2535. //LNA auto off
  2536. R828_I2C.RegAddr = 0x05;
  2537. R828_Arry[0] = R828_Arry[0] | 0x10;
  2538. R828_I2C.Data = R828_Arry[0];
  2539. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2540. return RT_Fail;
  2541. //Mixer auto off
  2542. R828_I2C.RegAddr = 0x07;
  2543. R828_Arry[2] = R828_Arry[2] & 0xEF;
  2544. R828_I2C.Data = R828_Arry[2];
  2545. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2546. return RT_Fail;
  2547. R828_I2C_Len.RegAddr = 0x00;
  2548. R828_I2C_Len.Len = 4;
  2549. if(I2C_Read_Len(pTuner, &R828_I2C_Len) != RT_Success)
  2550. return RT_Fail;
  2551. /* set fixed VGA gain for now (16.3 dB) */
  2552. R828_I2C.RegAddr = 0x0C;
  2553. R828_Arry[7] = (R828_Arry[7] & 0x60) | 0x08;
  2554. R828_I2C.Data = R828_Arry[7];
  2555. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2556. return RT_Fail;
  2557. } else {
  2558. //LNA
  2559. R828_I2C.RegAddr = 0x05;
  2560. R828_Arry[0] = R828_Arry[0] & 0xEF;
  2561. R828_I2C.Data = R828_Arry[0];
  2562. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2563. return RT_Fail;
  2564. //Mixer
  2565. R828_I2C.RegAddr = 0x07;
  2566. R828_Arry[2] = R828_Arry[2] | 0x10;
  2567. R828_I2C.Data = R828_Arry[2];
  2568. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2569. return RT_Fail;
  2570. /* set fixed VGA gain for now (26.5 dB) */
  2571. R828_I2C.RegAddr = 0x0C;
  2572. R828_Arry[7] = (R828_Arry[7] & 0x60) | 0x0B;
  2573. R828_I2C.Data = R828_Arry[7];
  2574. if(I2C_Write(pTuner, &R828_I2C) != RT_Success)
  2575. return RT_Fail;
  2576. }
  2577. return RT_Success;
  2578. }