adf4153(785).c 17 KB

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  1. /******************************************************************************
  2. * @file ADF4153.c
  3. * @brief Implementation of ADF4153 Driver for Microblaze processor.
  4. * @author Istvan Csomortani (istvan.csomortani@analog.com)
  5. *
  6. *******************************************************************************
  7. * Copyright 2013(c) Analog Devices, Inc.
  8. *
  9. * All rights reserved.
  10. *
  11. * Redistribution and use in source and binary forms, with or without modification,
  12. * are permitted provided that the following conditions are met:
  13. * - Redistributions of source code must retain the above copyright
  14. * notice, this list of conditions and the following disclaimer.
  15. * - Redistributions in binary form must reproduce the above copyright
  16. * notice, this list of conditions and the following disclaimer in
  17. * the documentation and/or other materials provided with the
  18. * distribution.
  19. * - Neither the name of Analog Devices, Inc. nor the names of its
  20. * contributors may be used to endorse or promote products derived
  21. * from this software without specific prior written permission.
  22. * - The use of this software may or may not infringe the patent rights
  23. * of one or more patent holders. This license does not release you
  24. * from the requirement that you obtain separate licenses from these
  25. * patent holders to use this software.
  26. * - Use of the software either in source or binary form, must be run
  27. * on or directly connected to an Analog Devices Inc. component.
  28. *
  29. * THIS SOFTWARE IS PROVIDED BY ANALOG DEVICES "AS IS" AND ANY EXPRESS OR IMPLIED
  30. * WARRANTIES, INCLUDING, BUT NOT LIMITED TO, NON-INFRINGEMENT, MERCHANTABILITY
  31. * AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
  32. * IN NO EVENT SHALL ANALOG DEVICES BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
  33. * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
  34. * INTELLECTUAL PROPERTY RIGHTS, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
  35. * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND
  36. * ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
  37. * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS
  38. * SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
  39. *
  40. ******************************************************************************/
  41. /*****************************************************************************/
  42. /****************************** Include Files ********************************/
  43. /*****************************************************************************/
  44. #include "adf4153.h"
  45. #include "zig_operate.h"
  46. #include "main.h"
  47. #include "pll_4113.h"
  48. extern void Pol_Delay_us(volatile uint32_t microseconds);
  49. typedef struct _adf4153_st{
  50. double PFD_Value;
  51. uint32_t MOD_Value;
  52. uint32_t FRAC_Value;
  53. uint16_t INT_Value;
  54. double N_Value;
  55. }adf4153_st;
  56. extern PLL_Setting_st Pll_3_5_H;
  57. extern PLL_Setting_st Pll_3_5_L;
  58. uint32_t pow2(uint32_t val,int32_t val2){
  59. for(uint8_t i = 0; i < val2 - 1; i++){
  60. val = val * val;
  61. }
  62. return val;
  63. }
  64. double round_up( double value, int pos )
  65. {
  66. double temp;
  67. temp = value * pow2( 10, pos ); // �썝�븯�뒗 �냼�닔�젏 �옄由ъ닔留뚰겮 10�쓽 �늻�듅�쓣 �븿
  68. temp = (int)(temp + 0.5); // 0.5瑜� �뜑�븳�썑 踰꾨┝�븯硫� 諛섏삱由쇱씠 �맖
  69. temp *= pow2( 10, -pos ); // �떎�떆 �썝�옒 �냼�닔�젏 �옄由ъ닔濡�
  70. return temp;
  71. }
  72. double N_Reg_Value_Calc(double val){
  73. return val / 1000;
  74. }
  75. uint32_t N_Divider_Reg_Create(uint16_t _FRAC,uint16_t _INT,uint8_t _FASTLOCK){
  76. uint32_t ret = 0;
  77. uint32_t shift_bit = 0x01;
  78. uint8_t control_bit = 0;
  79. uint8_t i = 0;
  80. #ifdef DEBUG_PRINT
  81. printf("FRAC : %d INT : %d \r\n",(int)_FRAC,_INT);
  82. #endif /* DEBUG_PRINT */
  83. for(i = 0; i < 2; i++){
  84. if(control_bit & 0x01)
  85. ret += shift_bit << i;
  86. control_bit = control_bit >> 1;
  87. }
  88. #ifdef DEBUG_PRINT
  89. printf("\r\nLINE : %d ret : %x\r\n",__LINE__,ret);
  90. #endif /* DEBUG_PRINT */
  91. for(i = 2; i < 14; i++){
  92. if(_FRAC & 0x01)
  93. ret += shift_bit << i;
  94. _FRAC = _FRAC >> 1;
  95. }
  96. #ifdef DEBUG_PRINT
  97. printf("\r\nLINE : %d ret : %x\r\n",__LINE__,ret);
  98. #endif /* DEBUG_PRINT */
  99. for(i = 14; i < 22; i++){
  100. if(_INT & 0x01)
  101. ret += shift_bit << i;
  102. _INT = _INT >> 1;
  103. }
  104. #ifdef DEBUG_PRINT
  105. printf("\r\nLINE : %d ret : %x\r\n",__LINE__,ret);
  106. #endif /* DEBUG_PRINT */
  107. if(_FASTLOCK & 0x01)
  108. ret += shift_bit << i;
  109. #ifdef DEBUG_PRINT
  110. printf("\r\nLINE : %d ret : %x\r\n",__LINE__,ret);
  111. #endif /* DEBUG_PRINT */
  112. return ret;
  113. }
  114. uint32_t R_Divider_Reg_Create(uint16_t _MOD,uint8_t _RCOUNTER,uint8_t _PRESCALER,uint8_t _RESERVED,uint8_t _MUXOUT,uint8_t LOAD_CONTROL){
  115. uint32_t ret = 0;
  116. uint32_t shift_bit = 0x01;
  117. uint8_t control_bit = 1;
  118. uint8_t i = 0;
  119. #ifdef DEBUG_PRINT
  120. printf("_MOD : %d INT : %d \r\n",_MOD,_RCOUNTER);
  121. #endif /* DEBUG_PRINT */
  122. #ifdef DEBUG_PRINT
  123. printf("\r\nLINE : %d ret : %x\r\n",__LINE__,ret);
  124. #endif /* DEBUG_PRINT */
  125. for(i = 0; i < 2; i++){
  126. if(control_bit & 0x01)
  127. ret += shift_bit << i;
  128. control_bit = control_bit >> 1;
  129. }
  130. #ifdef DEBUG_PRINT
  131. printf("\r\nLINE : %d ret : %x\r\n",__LINE__,ret);
  132. #endif /* DEBUG_PRINT */
  133. for(i = 2; i < 14; i++){
  134. if(_MOD & 0x01)
  135. ret += shift_bit << i;
  136. _MOD = _MOD >> 1;
  137. }
  138. for(i = 14; i < 18; i++){
  139. if(_RCOUNTER & 0x01)
  140. ret += shift_bit << i;
  141. _RCOUNTER = _RCOUNTER >> 1;
  142. }
  143. if(_PRESCALER & 0x01)
  144. ret += shift_bit << i++;
  145. if(_RESERVED & 0x01)
  146. ret += shift_bit << i++;
  147. for(i = 19; i < 22; i++){
  148. if(_MUXOUT & 0x01)
  149. ret += shift_bit << i;
  150. _MUXOUT = _MUXOUT >> 1;
  151. }
  152. if(LOAD_CONTROL & 0x01)
  153. ret += shift_bit << i++;
  154. return ret;
  155. }
  156. ADF4153_R_N_Reg_st ADF4153_Freq_Calc(uint32_t Freq,uint32_t REFin,uint8_t R_Counter,uint32_t chspacing){
  157. adf4153_st temp_adf4153;
  158. double temp = 0;
  159. ADF4153_R_N_Reg_st temp_reg;
  160. temp_adf4153.PFD_Value = (REFin / R_Counter)* 0.01 ;
  161. printf("chspacing : %d",chspacing);
  162. printf("(temp_adf4153.PFD_Value / chspacing) : %f",((double)(temp_adf4153.PFD_Value / chspacing)));
  163. temp = ((double)(temp_adf4153.PFD_Value / chspacing));
  164. printf("temp : %f \r\n",temp);
  165. temp_adf4153.MOD_Value = temp * 1000000;
  166. printf("temp_adf4153.MOD_Value : %d \r\n",temp_adf4153.MOD_Value);
  167. temp_adf4153.N_Value = N_Reg_Value_Calc(((double)(Freq * 10) / (double)(temp_adf4153.PFD_Value / 1000)));
  168. temp_adf4153.INT_Value = temp_adf4153.N_Value ;
  169. if(Freq == 393432){
  170. printf("temp_adf4153.PFD_Value : %f \r\ntemp_adf4153.MOD_Value : %f \r\n temp_adf4153.N_Value : %f \r\n temp_adf4153.INT_Value : %f \r\n",temp_adf4153.PFD_Value,temp_adf4153.MOD_Value,temp_adf4153.N_Value,temp_adf4153.INT_Value);
  171. }
  172. #ifdef DEBUG_PRINT
  173. printf("\r\ntemp_adf4153.N_Value : %f temp_adf4153.INT_Value : %f temp_adf4153.MOD_Value : %f \r\n",temp_adf4153.N_Value,(double)temp_adf4153.INT_Value,(double)temp_adf4153.MOD_Value);
  174. #endif /* DEBUG_PRINT */
  175. temp = temp_adf4153.N_Value - (double)temp_adf4153.INT_Value;
  176. #ifdef DEBUG_PRINT
  177. printf("\r\n temp_adf4153.N_Value - (double)temp_adf4153.INT_Value) : %f temp * (double)temp_adf4153.MOD_Value : %f \r\n",temp,temp * (double)temp_adf4153.MOD_Value);
  178. #endif /* DEBUG_PRINT */
  179. temp_adf4153.FRAC_Value = (float)temp * temp_adf4153.MOD_Value;
  180. #ifdef DEBUG_PRINT
  181. printf("\r\ntemp_adf4153.N_Value : %x : %f ",temp_adf4153.N_Value,((double)(Freq / 1000) / (double)(temp_adf4153.PFD_Value / 1000)) / 1000);
  182. printf("temp_adf4153.MOD_Value : %x : %d \r\n",temp_adf4153.MOD_Value,temp_adf4153.MOD_Value);
  183. #endif /* DEBUG_PRINT */
  184. uint16_t tempmod = temp_adf4153.FRAC_Value;
  185. for(uint8_t i = 0; i < 12; i++){
  186. #ifdef DEBUG_PRINT
  187. if(temp_adf4153.MOD_Value & 0x800){
  188. printf("1");
  189. }else{
  190. printf("0");
  191. }
  192. #endif /* DEBUG_PRINT */
  193. tempmod = tempmod << 1;
  194. }
  195. #ifdef DEBUG_PRINT
  196. printf("\r\n");
  197. printf("temp_adf4153.FRAC_Value : %x : %d\r\n",temp_adf4153.FRAC_Value,temp_adf4153.FRAC_Value);
  198. #endif /* DEBUG_PRINT */
  199. uint16_t tempfrac = temp_adf4153.FRAC_Value;
  200. for(uint8_t i = 0; i < 12; i++){
  201. #ifdef DEBUG_PRINT
  202. if(tempfrac & 0x800){
  203. printf("1");
  204. }else{
  205. printf("0");
  206. }
  207. #endif /* DEBUG_PRINT */
  208. tempfrac = tempfrac << 1;
  209. }
  210. #ifdef DEBUG_PRINT
  211. printf("\r\n");
  212. #endif /* DEBUG_PRINT */
  213. #ifdef DEBUG_PRINT
  214. printf("temp_adf4153.INT_Value : %x : %d\r\n",temp_adf4153.INT_Value,temp_adf4153.INT_Value);
  215. #endif /* DEBUG_PRINT */
  216. uint16_t tempint = temp_adf4153.INT_Value;
  217. for(uint8_t i = 0; i < 9; i++){
  218. #ifdef DEBUG_PRINT
  219. if(tempint & 0x100){
  220. printf("1");
  221. }else{
  222. printf("0");
  223. }
  224. #endif /* DEBUG_PRINT */
  225. tempint = tempint << 1;
  226. }
  227. #ifdef DEBUG_PRINT
  228. printf("\r\n");
  229. printf("R0: %x R1: %x \r\n",N_Divider_Reg_Create(temp_adf4153.FRAC_Value,temp_adf4153.INT_Value,0),R_Divider_Reg_Create(temp_adf4153.MOD_Value,R_Counter,1,0,2,0));
  230. #endif /* DEBUG_PRINT */
  231. temp_reg.N_reg = N_Divider_Reg_Create(temp_adf4153.FRAC_Value,temp_adf4153.INT_Value,0);
  232. temp_reg.R_reg = R_Divider_Reg_Create(temp_adf4153.MOD_Value,R_Counter,1,0,2,0);
  233. return temp_reg;
  234. // R_Divider_Reg_Create(temp_adf4153.MOD_Value,R_Counter,1,0,1,0); //prescaler 1 : 8/9 0: 4/5
  235. }
  236. void ADF4153_Initialize(void){
  237. #if 0 // PYJ.2019.08.09_BEGIN --
  238. PLL_Setting_st Pll_test = {
  239. PLL_CLK_3_5G_GPIO_Port,
  240. PLL_CLK_3_5G_Pin,
  241. PLL_DATA_3_5G_GPIO_Port,
  242. PLL_DATA_3_5G_Pin,
  243. PLL_EN_3_5G_L_GPIO_Port,
  244. PLL_EN_3_5G_L_Pin,
  245. };
  246. PLL_Setting_st Pll_test2 = {
  247. PLL_CLK_3_5G_GPIO_Port,
  248. PLL_CLK_3_5G_Pin,
  249. PLL_DATA_3_5G_GPIO_Port,
  250. PLL_DATA_3_5G_Pin,
  251. PLL_EN_3_5G_H_GPIO_Port,
  252. PLL_EN_3_5G_H_Pin,
  253. };
  254. // ADF4153_Module_Ctrl(Pll_test,0x2B44B0,0x14BE81,0x0013C2,0x000003);
  255. ADF4153_R_N_Reg_st temp_reg;
  256. temp_reg = ADF4153_Freq_Calc(3465500000,ADF4153_40MHzREFIN,ADF4153_2RCOUNTER,ADF4153_CHANNEL_SPACING);
  257. ADF4153_Module_Ctrl(Pll_test,temp_reg.N_reg,temp_reg.R_reg,0x13c2,0x3);
  258. HAL_Delay(1);
  259. #ifdef DEBUG_PRINT
  260. printf("\r\nPLL_EN_3_5G_H_GPIO_Port\r\n");
  261. #endif /* DEBUG_PRINT */
  262. temp_reg = ADF4153_Freq_Calc(3934500000,ADF4153_40MHzREFIN,ADF4153_2RCOUNTER,ADF4153_CHANNEL_SPACING);
  263. ADF4153_Module_Ctrl(Pll_test2,temp_reg.N_reg,temp_reg.R_reg,0x13c2,0x3);
  264. // ADF4153_Module_Ctrl(Pll_test2,0x313840,0x14BE81,0x13C2,0x3);
  265. HAL_Delay(1);
  266. #endif // PYJ.2019.08.09_END --
  267. if( Flash_Save_data[INDEX_PLL_3_5G_LOW_H] == 0
  268. && Flash_Save_data[INDEX_PLL_3_5G_LOW_M] == 0
  269. &&Flash_Save_data[INDEX_PLL_3_5G_LOW_L] == 0)
  270. {
  271. Flash_Save_data[INDEX_PLL_3_5G_LOW_H] = ((34655 & 0xFF0000) >> 16);
  272. Flash_Save_data[INDEX_PLL_3_5G_LOW_M] = ((34655 & 0x00FF00) >> 8);
  273. Flash_Save_data[INDEX_PLL_3_5G_LOW_L] = (34655 & 0x0000FF);
  274. }
  275. if(Flash_Save_data[INDEX_PLL_3_5G_HIGH_H] == 0
  276. && Flash_Save_data[INDEX_PLL_3_5G_HIGH_M] == 0
  277. && Flash_Save_data[INDEX_PLL_3_5G_HIGH_L] == 0)
  278. {
  279. Flash_Save_data[INDEX_PLL_3_5G_HIGH_H] = ((39345 & 0xFF0000) >> 16);
  280. Flash_Save_data[INDEX_PLL_3_5G_HIGH_M] = ((39345 & 0x00FF00) >> 8);
  281. Flash_Save_data[INDEX_PLL_3_5G_HIGH_L] = (39345 & 0x0000FF);
  282. }
  283. }
  284. void ADF4153_Check(void){
  285. ADF4153_R_N_Reg_st temp_reg;
  286. if(HAL_GPIO_ReadPin(PLL_LD_3_5G_H_GPIO_Port, PLL_LD_3_5G_H_Pin) == GPIO_PIN_RESET
  287. && HAL_GPIO_ReadPin(PLL_ON_OFF_3_5G_H_GPIO_Port, PLL_ON_OFF_3_5G_H_Pin) == GPIO_PIN_SET){
  288. temp_reg = ADF4153_Freq_Calc(3934500000,ADF4153_40MHzREFIN,ADF4153_2RCOUNTER,ADF4153_CHANNEL_SPACING);
  289. ADF4153_Module_Ctrl(Pll_3_5_H,temp_reg.N_reg,temp_reg.R_reg,0x13c2,0x3);
  290. HAL_Delay(1);
  291. }
  292. if(HAL_GPIO_ReadPin(PLL_LD_3_5G_L_GPIO_Port, PLL_LD_3_5G_L_Pin) == GPIO_PIN_RESET
  293. && HAL_GPIO_ReadPin(PLL_ON_OFF_3_5G_L_GPIO_Port, PLL_ON_OFF_3_5G_L_Pin) == GPIO_PIN_SET){
  294. temp_reg = ADF4153_Freq_Calc(3465500000,ADF4153_40MHzREFIN,ADF4153_2RCOUNTER,ADF4153_CHANNEL_SPACING);
  295. ADF4153_Module_Ctrl(Pll_3_5_L,temp_reg.N_reg,temp_reg.R_reg,0x13c2,0x3);
  296. HAL_Delay(1);
  297. }
  298. }
  299. void ADF4153_Module_Ctrl(PLL_Setting_st pll,uint32_t R0,uint32_t R1,uint32_t R2,uint32_t R3){
  300. R3 = R3 & 0x0007FF;
  301. R2 = R2 & 0x00FFFF;
  302. R1 = R1 & 0xFFFFFF;
  303. R0 = R0 & 0xFFFFFF;
  304. // ADF4153_Freq_Calc(3461500000,40000000,2,5000);
  305. HAL_GPIO_WritePin(pll.PLL_CLK_PORT, pll.PLL_CLK_PIN, GPIO_PIN_RESET);
  306. HAL_GPIO_WritePin(pll.PLL_DATA_PORT, pll.PLL_DATA_PIN, GPIO_PIN_RESET);
  307. HAL_GPIO_WritePin(pll.PLL_ENABLE_PORT, pll.PLL_ENABLE_PIN, GPIO_PIN_RESET);
  308. #ifdef DEBUG_PRINT
  309. printf("YJ :R0: %x R1: %x R2 : %x R3 : %x ",R0,R1,R2,R3);
  310. printf("\r\n");
  311. #endif /* DEBUG_PRINT */
  312. /* R3 Ctrl */
  313. for(int i =0; i < 11; i++){
  314. if(R3 & 0x000400){
  315. HAL_GPIO_WritePin(pll.PLL_DATA_PORT, pll.PLL_DATA_PIN, GPIO_PIN_SET);
  316. #ifdef DEBUG_PRINT
  317. printf("1");
  318. #endif /* DEBUG_PRINT */
  319. }
  320. else{
  321. HAL_GPIO_WritePin(pll.PLL_DATA_PORT, pll.PLL_DATA_PIN, GPIO_PIN_RESET);
  322. #ifdef DEBUG_PRINT
  323. printf("0");
  324. #endif /* DEBUG_PRINT */
  325. }
  326. Pol_Delay_us(10);
  327. HAL_GPIO_WritePin(pll.PLL_CLK_PORT, pll.PLL_CLK_PIN, GPIO_PIN_SET);
  328. Pol_Delay_us(10);
  329. HAL_GPIO_WritePin(pll.PLL_CLK_PORT, pll.PLL_CLK_PIN, GPIO_PIN_RESET);
  330. R3 = (R3 << 1);
  331. }
  332. #ifdef DEBUG_PRINT
  333. printf("\r\n");
  334. #endif /* DEBUG_PRINT */
  335. HAL_GPIO_WritePin(pll.PLL_ENABLE_PORT, pll.PLL_ENABLE_PIN, GPIO_PIN_SET);
  336. Pol_Delay_us(10);
  337. HAL_GPIO_WritePin(pll.PLL_ENABLE_PORT, pll.PLL_ENABLE_PIN, GPIO_PIN_RESET);
  338. /* R2 Ctrl */
  339. for(int i =0; i < 16; i++){
  340. if(R2 & 0x008000){
  341. HAL_GPIO_WritePin(pll.PLL_DATA_PORT, pll.PLL_DATA_PIN, GPIO_PIN_SET);
  342. #ifdef DEBUG_PRINT
  343. printf("1");
  344. #endif /* DEBUG_PRINT */
  345. }
  346. else{
  347. HAL_GPIO_WritePin(pll.PLL_DATA_PORT, pll.PLL_DATA_PIN, GPIO_PIN_RESET);
  348. #ifdef DEBUG_PRINT
  349. printf("0");
  350. #endif /* DEBUG_PRINT */
  351. }
  352. Pol_Delay_us(10);
  353. HAL_GPIO_WritePin(pll.PLL_CLK_PORT, pll.PLL_CLK_PIN, GPIO_PIN_SET);
  354. Pol_Delay_us(10);
  355. HAL_GPIO_WritePin(pll.PLL_CLK_PORT, pll.PLL_CLK_PIN, GPIO_PIN_RESET);
  356. R2 = ((R2 << 1) & 0x00FFFF);
  357. }
  358. #ifdef DEBUG_PRINT
  359. printf("\r\n");
  360. #endif /* DEBUG_PRINT */
  361. HAL_GPIO_WritePin(pll.PLL_ENABLE_PORT, pll.PLL_ENABLE_PIN, GPIO_PIN_SET);
  362. Pol_Delay_us(10);
  363. HAL_GPIO_WritePin(pll.PLL_ENABLE_PORT, pll.PLL_ENABLE_PIN, GPIO_PIN_RESET);
  364. /* R1 Ctrl */
  365. for(int i =0; i < 24; i++){
  366. if(R1 & 0x800000){
  367. HAL_GPIO_WritePin(pll.PLL_DATA_PORT, pll.PLL_DATA_PIN, GPIO_PIN_SET);
  368. #ifdef DEBUG_PRINT
  369. printf("1");
  370. #endif /* DEBUG_PRINT */
  371. }
  372. else{
  373. HAL_GPIO_WritePin(pll.PLL_DATA_PORT, pll.PLL_DATA_PIN, GPIO_PIN_RESET);
  374. #ifdef DEBUG_PRINT
  375. printf("0");
  376. #endif /* DEBUG_PRINT */
  377. }
  378. Pol_Delay_us(10);
  379. HAL_GPIO_WritePin(pll.PLL_CLK_PORT, pll.PLL_CLK_PIN, GPIO_PIN_SET);
  380. Pol_Delay_us(10);
  381. HAL_GPIO_WritePin(pll.PLL_CLK_PORT, pll.PLL_CLK_PIN, GPIO_PIN_RESET);
  382. R1 = ((R1 << 1) & 0xFFFFFF);
  383. }
  384. #ifdef DEBUG_PRINT
  385. printf("\r\n");
  386. #endif /* DEBUG_PRINT */
  387. HAL_GPIO_WritePin(pll.PLL_ENABLE_PORT, pll.PLL_ENABLE_PIN, GPIO_PIN_SET);
  388. Pol_Delay_us(10);
  389. HAL_GPIO_WritePin(pll.PLL_ENABLE_PORT, pll.PLL_ENABLE_PIN, GPIO_PIN_RESET);
  390. /* R0 Ctrl */
  391. for(int i =0; i < 24; i++){
  392. if(R0 & 0x800000){
  393. HAL_GPIO_WritePin(pll.PLL_DATA_PORT, pll.PLL_DATA_PIN, GPIO_PIN_SET);
  394. #ifdef DEBUG_PRINT
  395. printf("1");
  396. #endif /* DEBUG_PRINT */
  397. }
  398. else{
  399. HAL_GPIO_WritePin(pll.PLL_DATA_PORT, pll.PLL_DATA_PIN, GPIO_PIN_RESET);
  400. #ifdef DEBUG_PRINT
  401. printf("0");
  402. #endif /* DEBUG_PRINT */
  403. }
  404. Pol_Delay_us(10);
  405. HAL_GPIO_WritePin(pll.PLL_CLK_PORT, pll.PLL_CLK_PIN, GPIO_PIN_SET);
  406. Pol_Delay_us(10);
  407. HAL_GPIO_WritePin(pll.PLL_CLK_PORT, pll.PLL_CLK_PIN, GPIO_PIN_RESET);
  408. R0 = ((R0 << 1) & 0xFFFFFF);
  409. }
  410. #ifdef DEBUG_PRINT
  411. printf("\r\n");
  412. #endif /* DEBUG_PRINT */
  413. HAL_GPIO_WritePin(pll.PLL_DATA_PORT, pll.PLL_DATA_PIN, GPIO_PIN_RESET);
  414. HAL_GPIO_WritePin(pll.PLL_ENABLE_PORT, pll.PLL_ENABLE_PIN, GPIO_PIN_SET);
  415. Pol_Delay_us(10);
  416. HAL_GPIO_WritePin(pll.PLL_ENABLE_PORT, pll.PLL_ENABLE_PIN, GPIO_PIN_RESET);
  417. }