system_gd32f30x.c 30 KB

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  1. /*!
  2. \file system_gd32f30x.c
  3. \brief CMSIS Cortex-M4 Device Peripheral Access Layer Source File for
  4. GD32F30x Device Series
  5. */
  6. /* Copyright (c) 2012 ARM LIMITED
  7. All rights reserved.
  8. Redistribution and use in source and binary forms, with or without
  9. modification, are permitted provided that the following conditions are met:
  10. - Redistributions of source code must retain the above copyright
  11. notice, this list of conditions and the following disclaimer.
  12. - Redistributions in binary form must reproduce the above copyright
  13. notice, this list of conditions and the following disclaimer in the
  14. documentation and/or other materials provided with the distribution.
  15. - Neither the name of ARM nor the names of its contributors may be used
  16. to endorse or promote products derived from this software without
  17. specific prior written permission.
  18. *
  19. THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
  20. AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
  21. IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
  22. ARE DISCLAIMED. IN NO EVENT SHALL COPYRIGHT HOLDERS AND CONTRIBUTORS BE
  23. LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
  24. CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
  25. SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
  26. INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
  27. CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
  28. ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
  29. POSSIBILITY OF SUCH DAMAGE.
  30. ---------------------------------------------------------------------------*/
  31. /* This file refers the CMSIS standard, some adjustments are made according to GigaDevice chips */
  32. #define HXTAL_VALUE ((uint32_t)8000000)
  33. #include "gd32f30x.h"
  34. /* system frequency define */
  35. #define __IRC8M (IRC8M_VALUE) /* internal 8 MHz RC oscillator frequency */
  36. #define __HXTAL (HXTAL_VALUE) /* high speed crystal oscillator frequency */
  37. #define __SYS_OSC_CLK (__HXTAL) /* main oscillator frequency */
  38. /* Vector Table base offset */
  39. #define VECT_TAB_OFFSET 0x00 /* This value must be a multiple of 0x200. */
  40. /* select a system clock by uncommenting the following line */
  41. /* use IRC8M */
  42. //#define __SYSTEM_CLOCK_IRC8M (uint32_t)(__IRC8M)
  43. //#define __SYSTEM_CLOCK_48M_PLL_IRC8M (uint32_t)(48000000)
  44. //#define __SYSTEM_CLOCK_72M_PLL_IRC8M (uint32_t)(72000000)
  45. //#define __SYSTEM_CLOCK_108M_PLL_IRC8M (uint32_t)(108000000)
  46. #ifdef MC100_HW_V1
  47. #define __SYSTEM_CLOCK_120M_PLL_HXTAL (uint32_t)(120000000)
  48. #else
  49. #define __SYSTEM_CLOCK_120M_PLL_IRC8M (uint32_t)(120000000)
  50. #endif
  51. /* use HXTAL(XD series CK_HXTAL = 8M, CL series CK_HXTAL = 25M) */
  52. //#define __SYSTEM_CLOCK_HXTAL (uint32_t)(__HXTAL)
  53. //#define __SYSTEM_CLOCK_48M_PLL_HXTAL (uint32_t)(48000000)
  54. //#define __SYSTEM_CLOCK_72M_PLL_HXTAL (uint32_t)(72000000)
  55. //#define __SYSTEM_CLOCK_108M_PLL_HXTAL (uint32_t)(108000000)
  56. //#define __SYSTEM_CLOCK_120M_PLL_HXTAL (uint32_t)(120000000)
  57. #define SEL_IRC8M 0x00U
  58. #define SEL_HXTAL 0x01U
  59. #define SEL_PLL 0x02U
  60. /* set the system clock frequency and declare the system clock configuration function */
  61. #ifdef __SYSTEM_CLOCK_IRC8M
  62. uint32_t SystemCoreClock = __SYSTEM_CLOCK_IRC8M;
  63. static void system_clock_8m_irc8m(void);
  64. #elif defined (__SYSTEM_CLOCK_48M_PLL_IRC8M)
  65. uint32_t SystemCoreClock = __SYSTEM_CLOCK_48M_PLL_IRC8M;
  66. static void system_clock_48m_irc8m(void);
  67. #elif defined (__SYSTEM_CLOCK_72M_PLL_IRC8M)
  68. uint32_t SystemCoreClock = __SYSTEM_CLOCK_72M_PLL_IRC8M;
  69. static void system_clock_72m_irc8m(void);
  70. #elif defined (__SYSTEM_CLOCK_108M_PLL_IRC8M)
  71. uint32_t SystemCoreClock = __SYSTEM_CLOCK_108M_PLL_IRC8M;
  72. static void system_clock_108m_irc8m(void);
  73. #elif defined (__SYSTEM_CLOCK_120M_PLL_IRC8M)
  74. uint32_t SystemCoreClock = __SYSTEM_CLOCK_120M_PLL_IRC8M;
  75. static void system_clock_120m_irc8m(void);
  76. #elif defined (__SYSTEM_CLOCK_HXTAL)
  77. uint32_t SystemCoreClock = __SYSTEM_CLOCK_HXTAL;
  78. static void system_clock_hxtal(void);
  79. #elif defined (__SYSTEM_CLOCK_48M_PLL_HXTAL)
  80. uint32_t SystemCoreClock = __SYSTEM_CLOCK_48M_PLL_HXTAL;
  81. static void system_clock_48m_hxtal(void);
  82. #elif defined (__SYSTEM_CLOCK_72M_PLL_HXTAL)
  83. uint32_t SystemCoreClock = __SYSTEM_CLOCK_72M_PLL_HXTAL;
  84. static void system_clock_72m_hxtal(void);
  85. #elif defined (__SYSTEM_CLOCK_108M_PLL_HXTAL)
  86. uint32_t SystemCoreClock = __SYSTEM_CLOCK_108M_PLL_HXTAL;
  87. static void system_clock_108m_hxtal(void);
  88. #elif defined (__SYSTEM_CLOCK_120M_PLL_HXTAL)
  89. uint32_t SystemCoreClock = __SYSTEM_CLOCK_120M_PLL_HXTAL;
  90. static void system_clock_120m_hxtal(void);
  91. #endif /* __SYSTEM_CLOCK_IRC8M */
  92. /* configure the system clock */
  93. static void system_clock_config(void);
  94. /*!
  95. \brief setup the microcontroller system, initialize the system
  96. \param[in] none
  97. \param[out] none
  98. \retval none
  99. */
  100. void SystemInit (void)
  101. {
  102. /* FPU settings */
  103. #if (__FPU_PRESENT == 1) && (__FPU_USED == 1)
  104. SCB->CPACR |= ((3UL << 10*2)|(3UL << 11*2)); /* set CP10 and CP11 Full Access */
  105. #endif
  106. /* reset the RCU clock configuration to the default reset state */
  107. /* Set IRC8MEN bit */
  108. RCU_CTL |= RCU_CTL_IRC8MEN;
  109. /* Reset CFG0 and CFG1 registers */
  110. RCU_CFG0 = 0x00000000U;
  111. RCU_CFG1 = 0x00000000U;
  112. #if (defined(GD32F30X_HD) || defined(GD32F30X_XD))
  113. /* reset HXTALEN, CKMEN and PLLEN bits */
  114. RCU_CTL &= ~(RCU_CTL_PLLEN | RCU_CTL_CKMEN | RCU_CTL_HXTALEN);
  115. /* disable all interrupts */
  116. RCU_INT = 0x009f0000U;
  117. #elif defined(GD32F30X_CL)
  118. /* Reset HXTALEN, CKMEN, PLLEN, PLL1EN and PLL2EN bits */
  119. RCU_CTL &= ~(RCU_CTL_PLLEN |RCU_CTL_PLL1EN | RCU_CTL_PLL2EN | RCU_CTL_CKMEN | RCU_CTL_HXTALEN);
  120. /* disable all interrupts */
  121. RCU_INT = 0x00ff0000U;
  122. #endif
  123. /* reset HXTALBPS bit */
  124. RCU_CTL &= ~(RCU_CTL_HXTALBPS);
  125. /* configure the system clock source, PLL Multiplier, AHB/APBx prescalers and Flash settings */
  126. system_clock_config();
  127. #ifndef CONFIG_CAN_IAP
  128. nvic_vector_table_set(NVIC_VECTTAB_FLASH,VECT_TAB_OFFSET);
  129. #endif
  130. }
  131. /*!
  132. \brief configure the system clock
  133. \param[in] none
  134. \param[out] none
  135. \retval none
  136. */
  137. static void system_clock_config(void)
  138. {
  139. #ifdef __SYSTEM_CLOCK_IRC8M
  140. system_clock_8m_irc8m();
  141. #elif defined (__SYSTEM_CLOCK_48M_PLL_IRC8M)
  142. system_clock_48m_irc8m();
  143. #elif defined (__SYSTEM_CLOCK_72M_PLL_IRC8M)
  144. system_clock_72m_irc8m();
  145. #elif defined (__SYSTEM_CLOCK_108M_PLL_IRC8M)
  146. system_clock_108m_irc8m();
  147. #elif defined (__SYSTEM_CLOCK_120M_PLL_IRC8M)
  148. system_clock_120m_irc8m();
  149. #elif defined (__SYSTEM_CLOCK_HXTAL)
  150. system_clock_hxtal();
  151. #elif defined (__SYSTEM_CLOCK_48M_PLL_HXTAL)
  152. system_clock_48m_hxtal();
  153. #elif defined (__SYSTEM_CLOCK_72M_PLL_HXTAL)
  154. system_clock_72m_hxtal();
  155. #elif defined (__SYSTEM_CLOCK_108M_PLL_HXTAL)
  156. system_clock_108m_hxtal();
  157. #elif defined (__SYSTEM_CLOCK_120M_PLL_HXTAL)
  158. system_clock_120m_hxtal();
  159. #endif /* __SYSTEM_CLOCK_IRC8M */
  160. }
  161. #ifdef __SYSTEM_CLOCK_IRC8M
  162. /*!
  163. \brief configure the system clock to 8M by IRC8M
  164. \param[in] none
  165. \param[out] none
  166. \retval none
  167. */
  168. static void system_clock_8m_irc8m(void)
  169. {
  170. uint32_t timeout = 0U;
  171. uint32_t stab_flag = 0U;
  172. /* enable IRC8M */
  173. RCU_CTL |= RCU_CTL_IRC8MEN;
  174. /* wait until IRC8M is stable or the startup time is longer than IRC8M_STARTUP_TIMEOUT */
  175. do{
  176. timeout++;
  177. stab_flag = (RCU_CTL & RCU_CTL_IRC8MSTB);
  178. }
  179. while((0U == stab_flag) && (IRC8M_STARTUP_TIMEOUT != timeout));
  180. /* if fail */
  181. if(0U == (RCU_CTL & RCU_CTL_IRC8MSTB)){
  182. while(1){
  183. }
  184. }
  185. /* AHB = SYSCLK */
  186. RCU_CFG0 |= RCU_AHB_CKSYS_DIV1;
  187. /* APB2 = AHB/1 */
  188. RCU_CFG0 |= RCU_APB2_CKAHB_DIV1;
  189. /* APB1 = AHB/2 */
  190. RCU_CFG0 |= RCU_APB1_CKAHB_DIV2;
  191. /* select IRC8M as system clock */
  192. RCU_CFG0 &= ~RCU_CFG0_SCS;
  193. RCU_CFG0 |= RCU_CKSYSSRC_IRC8M;
  194. /* wait until IRC8M is selected as system clock */
  195. while(0U != (RCU_CFG0 & RCU_SCSS_IRC8M)){
  196. }
  197. }
  198. #elif defined (__SYSTEM_CLOCK_48M_PLL_IRC8M)
  199. /*!
  200. \brief configure the system clock to 48M by PLL which selects IRC8M as its clock source
  201. \param[in] none
  202. \param[out] none
  203. \retval none
  204. */
  205. static void system_clock_48m_irc8m(void)
  206. {
  207. uint32_t timeout = 0U;
  208. uint32_t stab_flag = 0U;
  209. /* enable IRC8M */
  210. RCU_CTL |= RCU_CTL_IRC8MEN;
  211. /* wait until IRC8M is stable or the startup time is longer than IRC8M_STARTUP_TIMEOUT */
  212. do{
  213. timeout++;
  214. stab_flag = (RCU_CTL & RCU_CTL_IRC8MSTB);
  215. }
  216. while((0U == stab_flag) && (IRC8M_STARTUP_TIMEOUT != timeout));
  217. /* if fail */
  218. if(0U == (RCU_CTL & RCU_CTL_IRC8MSTB)){
  219. while(1){
  220. }
  221. }
  222. /* LDO output voltage high mode */
  223. RCU_APB1EN |= RCU_APB1EN_PMUEN;
  224. PMU_CTL |= PMU_CTL_LDOVS;
  225. /* IRC8M is stable */
  226. /* AHB = SYSCLK */
  227. RCU_CFG0 |= RCU_AHB_CKSYS_DIV1;
  228. /* APB2 = AHB/1 */
  229. RCU_CFG0 |= RCU_APB2_CKAHB_DIV1;
  230. /* APB1 = AHB/2 */
  231. RCU_CFG0 |= RCU_APB1_CKAHB_DIV2;
  232. /* CK_PLL = (CK_IRC8M/2) * 12 = 48 MHz */
  233. RCU_CFG0 &= ~(RCU_CFG0_PLLMF | RCU_CFG0_PLLMF_4 | RCU_CFG0_PLLMF_5);
  234. RCU_CFG0 |= RCU_PLL_MUL12;
  235. /* enable PLL */
  236. RCU_CTL |= RCU_CTL_PLLEN;
  237. /* wait until PLL is stable */
  238. while(0U == (RCU_CTL & RCU_CTL_PLLSTB)){
  239. }
  240. /* enable the high-drive to extend the clock frequency to 120 MHz */
  241. PMU_CTL |= PMU_CTL_HDEN;
  242. while(0U == (PMU_CS & PMU_CS_HDRF)){
  243. }
  244. /* select the high-drive mode */
  245. PMU_CTL |= PMU_CTL_HDS;
  246. while(0U == (PMU_CS & PMU_CS_HDSRF)){
  247. }
  248. /* select PLL as system clock */
  249. RCU_CFG0 &= ~RCU_CFG0_SCS;
  250. RCU_CFG0 |= RCU_CKSYSSRC_PLL;
  251. /* wait until PLL is selected as system clock */
  252. while(0U == (RCU_CFG0 & RCU_SCSS_PLL)){
  253. }
  254. }
  255. #elif defined (__SYSTEM_CLOCK_72M_PLL_IRC8M)
  256. /*!
  257. \brief configure the system clock to 72M by PLL which selects IRC8M as its clock source
  258. \param[in] none
  259. \param[out] none
  260. \retval none
  261. */
  262. static void system_clock_72m_irc8m(void)
  263. {
  264. uint32_t timeout = 0U;
  265. uint32_t stab_flag = 0U;
  266. /* enable IRC8M */
  267. RCU_CTL |= RCU_CTL_IRC8MEN;
  268. /* wait until IRC8M is stable or the startup time is longer than IRC8M_STARTUP_TIMEOUT */
  269. do{
  270. timeout++;
  271. stab_flag = (RCU_CTL & RCU_CTL_IRC8MSTB);
  272. }while((0U == stab_flag) && (IRC8M_STARTUP_TIMEOUT != timeout));
  273. /* if fail */
  274. if(0U == (RCU_CTL & RCU_CTL_IRC8MSTB)){
  275. while(1){
  276. }
  277. }
  278. /* LDO output voltage high mode */
  279. RCU_APB1EN |= RCU_APB1EN_PMUEN;
  280. PMU_CTL |= PMU_CTL_LDOVS;
  281. /* IRC8M is stable */
  282. /* AHB = SYSCLK */
  283. RCU_CFG0 |= RCU_AHB_CKSYS_DIV1;
  284. /* APB2 = AHB/1 */
  285. RCU_CFG0 |= RCU_APB2_CKAHB_DIV1;
  286. /* APB1 = AHB/2 */
  287. RCU_CFG0 |= RCU_APB1_CKAHB_DIV2;
  288. /* CK_PLL = (CK_IRC8M/2) * 18 = 72 MHz */
  289. RCU_CFG0 &= ~(RCU_CFG0_PLLMF | RCU_CFG0_PLLMF_4 | RCU_CFG0_PLLMF_5);
  290. RCU_CFG0 |= RCU_PLL_MUL18;
  291. /* enable PLL */
  292. RCU_CTL |= RCU_CTL_PLLEN;
  293. /* wait until PLL is stable */
  294. while(0U == (RCU_CTL & RCU_CTL_PLLSTB)){
  295. }
  296. /* enable the high-drive to extend the clock frequency to 120 MHz */
  297. PMU_CTL |= PMU_CTL_HDEN;
  298. while(0U == (PMU_CS & PMU_CS_HDRF)){
  299. }
  300. /* select the high-drive mode */
  301. PMU_CTL |= PMU_CTL_HDS;
  302. while(0U == (PMU_CS & PMU_CS_HDSRF)){
  303. }
  304. /* select PLL as system clock */
  305. RCU_CFG0 &= ~RCU_CFG0_SCS;
  306. RCU_CFG0 |= RCU_CKSYSSRC_PLL;
  307. /* wait until PLL is selected as system clock */
  308. while(0U == (RCU_CFG0 & RCU_SCSS_PLL)){
  309. }
  310. }
  311. #elif defined (__SYSTEM_CLOCK_108M_PLL_IRC8M)
  312. /*!
  313. \brief configure the system clock to 108M by PLL which selects IRC8M as its clock source
  314. \param[in] none
  315. \param[out] none
  316. \retval none
  317. */
  318. static void system_clock_108m_irc8m(void)
  319. {
  320. uint32_t timeout = 0U;
  321. uint32_t stab_flag = 0U;
  322. /* enable IRC8M */
  323. RCU_CTL |= RCU_CTL_IRC8MEN;
  324. /* wait until IRC8M is stable or the startup time is longer than IRC8M_STARTUP_TIMEOUT */
  325. do{
  326. timeout++;
  327. stab_flag = (RCU_CTL & RCU_CTL_IRC8MSTB);
  328. }while((0U == stab_flag) && (IRC8M_STARTUP_TIMEOUT != timeout));
  329. /* if fail */
  330. if(0U == (RCU_CTL & RCU_CTL_IRC8MSTB)){
  331. while(1){
  332. }
  333. }
  334. /* LDO output voltage high mode */
  335. RCU_APB1EN |= RCU_APB1EN_PMUEN;
  336. PMU_CTL |= PMU_CTL_LDOVS;
  337. /* IRC8M is stable */
  338. /* AHB = SYSCLK */
  339. RCU_CFG0 |= RCU_AHB_CKSYS_DIV1;
  340. /* APB2 = AHB/1 */
  341. RCU_CFG0 |= RCU_APB2_CKAHB_DIV1;
  342. /* APB1 = AHB/2 */
  343. RCU_CFG0 |= RCU_APB1_CKAHB_DIV2;
  344. /* CK_PLL = (CK_IRC8M/2) * 27 = 108 MHz */
  345. RCU_CFG0 &= ~(RCU_CFG0_PLLMF | RCU_CFG0_PLLMF_4 | RCU_CFG0_PLLMF_5);
  346. RCU_CFG0 |= RCU_PLL_MUL27;
  347. /* enable PLL */
  348. RCU_CTL |= RCU_CTL_PLLEN;
  349. /* wait until PLL is stable */
  350. while(0U == (RCU_CTL & RCU_CTL_PLLSTB)){
  351. }
  352. /* enable the high-drive to extend the clock frequency to 120 MHz */
  353. PMU_CTL |= PMU_CTL_HDEN;
  354. while(0U == (PMU_CS & PMU_CS_HDRF)){
  355. }
  356. /* select the high-drive mode */
  357. PMU_CTL |= PMU_CTL_HDS;
  358. while(0U == (PMU_CS & PMU_CS_HDSRF)){
  359. }
  360. /* select PLL as system clock */
  361. RCU_CFG0 &= ~RCU_CFG0_SCS;
  362. RCU_CFG0 |= RCU_CKSYSSRC_PLL;
  363. /* wait until PLL is selected as system clock */
  364. while(0U == (RCU_CFG0 & RCU_SCSS_PLL)){
  365. }
  366. }
  367. #elif defined (__SYSTEM_CLOCK_120M_PLL_IRC8M)
  368. /*!
  369. \brief configure the system clock to 120M by PLL which selects IRC8M as its clock source
  370. \param[in] none
  371. \param[out] none
  372. \retval none
  373. */
  374. static void system_clock_120m_irc8m(void)
  375. {
  376. uint32_t timeout = 0U;
  377. uint32_t stab_flag = 0U;
  378. /* enable IRC8M */
  379. RCU_CTL |= RCU_CTL_IRC8MEN;
  380. /* wait until IRC8M is stable or the startup time is longer than IRC8M_STARTUP_TIMEOUT */
  381. do{
  382. timeout++;
  383. stab_flag = (RCU_CTL & RCU_CTL_IRC8MSTB);
  384. }while((0U == stab_flag) && (IRC8M_STARTUP_TIMEOUT != timeout));
  385. /* if fail */
  386. if(0U == (RCU_CTL & RCU_CTL_IRC8MSTB)){
  387. while(1){
  388. }
  389. }
  390. /* LDO output voltage high mode */
  391. RCU_APB1EN |= RCU_APB1EN_PMUEN;
  392. PMU_CTL |= PMU_CTL_LDOVS;
  393. /* IRC8M is stable */
  394. /* AHB = SYSCLK */
  395. RCU_CFG0 |= RCU_AHB_CKSYS_DIV1;
  396. /* APB2 = AHB/1 */
  397. RCU_CFG0 |= RCU_APB2_CKAHB_DIV1;
  398. /* APB1 = AHB/2 */
  399. RCU_CFG0 |= RCU_APB1_CKAHB_DIV2;
  400. /* CK_PLL = (CK_IRC8M/2) * 30 = 120 MHz */
  401. RCU_CFG0 &= ~(RCU_CFG0_PLLMF | RCU_CFG0_PLLMF_4 | RCU_CFG0_PLLMF_5);
  402. RCU_CFG0 |= RCU_PLL_MUL30;
  403. /* enable PLL */
  404. RCU_CTL |= RCU_CTL_PLLEN;
  405. /* wait until PLL is stable */
  406. while(0U == (RCU_CTL & RCU_CTL_PLLSTB)){
  407. }
  408. /* enable the high-drive to extend the clock frequency to 120 MHz */
  409. PMU_CTL |= PMU_CTL_HDEN;
  410. while(0U == (PMU_CS & PMU_CS_HDRF)){
  411. }
  412. /* select the high-drive mode */
  413. PMU_CTL |= PMU_CTL_HDS;
  414. while(0U == (PMU_CS & PMU_CS_HDSRF)){
  415. }
  416. /* select PLL as system clock */
  417. RCU_CFG0 &= ~RCU_CFG0_SCS;
  418. RCU_CFG0 |= RCU_CKSYSSRC_PLL;
  419. /* wait until PLL is selected as system clock */
  420. while(0U == (RCU_CFG0 & RCU_SCSS_PLL)){
  421. }
  422. }
  423. #elif defined (__SYSTEM_CLOCK_HXTAL)
  424. /*!
  425. \brief configure the system clock to HXTAL
  426. \param[in] none
  427. \param[out] none
  428. \retval none
  429. */
  430. static void system_clock_hxtal(void)
  431. {
  432. uint32_t timeout = 0U;
  433. uint32_t stab_flag = 0U;
  434. /* enable HXTAL */
  435. RCU_CTL |= RCU_CTL_HXTALEN;
  436. /* wait until HXTAL is stable or the startup time is longer than HXTAL_STARTUP_TIMEOUT */
  437. do{
  438. timeout++;
  439. stab_flag = (RCU_CTL & RCU_CTL_HXTALSTB);
  440. }while((0U == stab_flag) && (HXTAL_STARTUP_TIMEOUT != timeout));
  441. /* if fail */
  442. if(0U == (RCU_CTL & RCU_CTL_HXTALSTB)){
  443. while(1){
  444. }
  445. }
  446. /* AHB = SYSCLK */
  447. RCU_CFG0 |= RCU_AHB_CKSYS_DIV1;
  448. /* APB2 = AHB/1 */
  449. RCU_CFG0 |= RCU_APB2_CKAHB_DIV1;
  450. /* APB1 = AHB/2 */
  451. RCU_CFG0 |= RCU_APB1_CKAHB_DIV2;
  452. /* select HXTAL as system clock */
  453. RCU_CFG0 &= ~RCU_CFG0_SCS;
  454. RCU_CFG0 |= RCU_CKSYSSRC_HXTAL;
  455. /* wait until HXTAL is selected as system clock */
  456. while(0 == (RCU_CFG0 & RCU_SCSS_HXTAL)){
  457. }
  458. }
  459. #elif defined (__SYSTEM_CLOCK_48M_PLL_HXTAL)
  460. /*!
  461. \brief configure the system clock to 48M by PLL which selects HXTAL(8M) as its clock source
  462. \param[in] none
  463. \param[out] none
  464. \retval none
  465. */
  466. static void system_clock_48m_hxtal(void)
  467. {
  468. uint32_t timeout = 0U;
  469. uint32_t stab_flag = 0U;
  470. /* enable HXTAL */
  471. RCU_CTL |= RCU_CTL_HXTALEN;
  472. /* wait until HXTAL is stable or the startup time is longer than HXTAL_STARTUP_TIMEOUT */
  473. do{
  474. timeout++;
  475. stab_flag = (RCU_CTL & RCU_CTL_HXTALSTB);
  476. }while((0U == stab_flag) && (HXTAL_STARTUP_TIMEOUT != timeout));
  477. /* if fail */
  478. if(0U == (RCU_CTL & RCU_CTL_HXTALSTB)){
  479. while(1){
  480. }
  481. }
  482. RCU_APB1EN |= RCU_APB1EN_PMUEN;
  483. PMU_CTL |= PMU_CTL_LDOVS;
  484. /* HXTAL is stable */
  485. /* AHB = SYSCLK */
  486. RCU_CFG0 |= RCU_AHB_CKSYS_DIV1;
  487. /* APB2 = AHB/1 */
  488. RCU_CFG0 |= RCU_APB2_CKAHB_DIV1;
  489. /* APB1 = AHB/2 */
  490. RCU_CFG0 |= RCU_APB1_CKAHB_DIV2;
  491. #if (defined(GD32F30X_HD) || defined(GD32F30X_XD))
  492. /* select HXTAL/2 as clock source */
  493. RCU_CFG0 &= ~(RCU_CFG0_PLLSEL | RCU_CFG0_PREDV0);
  494. RCU_CFG0 |= (RCU_PLLSRC_HXTAL_IRC48M | RCU_CFG0_PREDV0);
  495. /* CK_PLL = (CK_HXTAL/2) * 12 = 48 MHz */
  496. RCU_CFG0 &= ~(RCU_CFG0_PLLMF | RCU_CFG0_PLLMF_4 | RCU_CFG0_PLLMF_5);
  497. RCU_CFG0 |= RCU_PLL_MUL12;
  498. #elif defined(GD32F30X_CL)
  499. /* CK_PLL = (CK_PREDIV0) * 12 = 48 MHz */
  500. RCU_CFG0 &= ~(RCU_CFG0_PLLMF | RCU_CFG0_PLLMF_4 | RCU_CFG0_PLLMF_5);
  501. RCU_CFG0 |= (RCU_PLLSRC_HXTAL_IRC48M | RCU_PLL_MUL12);
  502. /* CK_PREDIV0 = (CK_HXTAL)/5 *8 /10 = 4 MHz */
  503. RCU_CFG1 &= ~(RCU_CFG1_PLLPRESEL | RCU_CFG1_PREDV0SEL | RCU_CFG1_PLL1MF | RCU_CFG1_PREDV1 | RCU_CFG1_PREDV0);
  504. RCU_CFG1 |= (RCU_PLLPRESRC_HXTAL | RCU_PREDV0SRC_CKPLL1 | RCU_PLL1_MUL8 | RCU_PREDV1_DIV5 | RCU_PREDV0_DIV10);
  505. /* enable PLL1 */
  506. RCU_CTL |= RCU_CTL_PLL1EN;
  507. /* wait till PLL1 is ready */
  508. while((RCU_CTL & RCU_CTL_PLL1STB) == 0){
  509. }
  510. #endif /* GD32F30X_HD and GD32F30X_XD */
  511. /* enable PLL */
  512. RCU_CTL |= RCU_CTL_PLLEN;
  513. /* wait until PLL is stable */
  514. while(0U == (RCU_CTL & RCU_CTL_PLLSTB)){
  515. }
  516. /* enable the high-drive to extend the clock frequency to 120 MHz */
  517. PMU_CTL |= PMU_CTL_HDEN;
  518. while(0U == (PMU_CS & PMU_CS_HDRF)){
  519. }
  520. /* select the high-drive mode */
  521. PMU_CTL |= PMU_CTL_HDS;
  522. while(0U == (PMU_CS & PMU_CS_HDSRF)){
  523. }
  524. /* select PLL as system clock */
  525. RCU_CFG0 &= ~RCU_CFG0_SCS;
  526. RCU_CFG0 |= RCU_CKSYSSRC_PLL;
  527. /* wait until PLL is selected as system clock */
  528. while(0U == (RCU_CFG0 & RCU_SCSS_PLL)){
  529. }
  530. }
  531. #elif defined (__SYSTEM_CLOCK_72M_PLL_HXTAL)
  532. /*!
  533. \brief configure the system clock to 72M by PLL which selects HXTAL(8M) as its clock source
  534. \param[in] none
  535. \param[out] none
  536. \retval none
  537. */
  538. static void system_clock_72m_hxtal(void)
  539. {
  540. uint32_t timeout = 0U;
  541. uint32_t stab_flag = 0U;
  542. /* enable HXTAL */
  543. RCU_CTL |= RCU_CTL_HXTALEN;
  544. /* wait until HXTAL is stable or the startup time is longer than HXTAL_STARTUP_TIMEOUT */
  545. do{
  546. timeout++;
  547. stab_flag = (RCU_CTL & RCU_CTL_HXTALSTB);
  548. }while((0U == stab_flag) && (HXTAL_STARTUP_TIMEOUT != timeout));
  549. /* if fail */
  550. if(0U == (RCU_CTL & RCU_CTL_HXTALSTB)){
  551. while(1){
  552. }
  553. }
  554. RCU_APB1EN |= RCU_APB1EN_PMUEN;
  555. PMU_CTL |= PMU_CTL_LDOVS;
  556. /* HXTAL is stable */
  557. /* AHB = SYSCLK */
  558. RCU_CFG0 |= RCU_AHB_CKSYS_DIV1;
  559. /* APB2 = AHB/1 */
  560. RCU_CFG0 |= RCU_APB2_CKAHB_DIV1;
  561. /* APB1 = AHB/2 */
  562. RCU_CFG0 |= RCU_APB1_CKAHB_DIV2;
  563. #if (defined(GD32F30X_HD) || defined(GD32F30X_XD))
  564. /* select HXTAL/2 as clock source */
  565. RCU_CFG0 &= ~(RCU_CFG0_PLLSEL | RCU_CFG0_PREDV0);
  566. RCU_CFG0 |= (RCU_PLLSRC_HXTAL_IRC48M | RCU_CFG0_PREDV0);
  567. /* CK_PLL = (CK_HXTAL/2) * 18 = 72 MHz */
  568. RCU_CFG0 &= ~(RCU_CFG0_PLLMF | RCU_CFG0_PLLMF_4 | RCU_CFG0_PLLMF_5);
  569. RCU_CFG0 |= RCU_PLL_MUL18;
  570. #elif defined(GD32F30X_CL)
  571. /* CK_PLL = (CK_PREDIV0) * 18 = 72 MHz */
  572. RCU_CFG0 &= ~(RCU_CFG0_PLLMF | RCU_CFG0_PLLMF_4 | RCU_CFG0_PLLMF_5);
  573. RCU_CFG0 |= (RCU_PLLSRC_HXTAL_IRC48M | RCU_PLL_MUL18);
  574. /* CK_PREDIV0 = (CK_HXTAL)/5 *8 /10 = 4 MHz */
  575. RCU_CFG1 &= ~(RCU_CFG1_PLLPRESEL | RCU_CFG1_PREDV0SEL | RCU_CFG1_PLL1MF | RCU_CFG1_PREDV1 | RCU_CFG1_PREDV0);
  576. RCU_CFG1 |= (RCU_PLLPRESRC_HXTAL | RCU_PREDV0SRC_CKPLL1 | RCU_PLL1_MUL8 | RCU_PREDV1_DIV5 | RCU_PREDV0_DIV10);
  577. /* enable PLL1 */
  578. RCU_CTL |= RCU_CTL_PLL1EN;
  579. /* wait till PLL1 is ready */
  580. while((RCU_CTL & RCU_CTL_PLL1STB) == 0){
  581. }
  582. #endif /* GD32F30X_HD and GD32F30X_XD */
  583. /* enable PLL */
  584. RCU_CTL |= RCU_CTL_PLLEN;
  585. /* wait until PLL is stable */
  586. while(0U == (RCU_CTL & RCU_CTL_PLLSTB)){
  587. }
  588. /* enable the high-drive to extend the clock frequency to 120 MHz */
  589. PMU_CTL |= PMU_CTL_HDEN;
  590. while(0U == (PMU_CS & PMU_CS_HDRF)){
  591. }
  592. /* select the high-drive mode */
  593. PMU_CTL |= PMU_CTL_HDS;
  594. while(0U == (PMU_CS & PMU_CS_HDSRF)){
  595. }
  596. /* select PLL as system clock */
  597. RCU_CFG0 &= ~RCU_CFG0_SCS;
  598. RCU_CFG0 |= RCU_CKSYSSRC_PLL;
  599. /* wait until PLL is selected as system clock */
  600. while(0U == (RCU_CFG0 & RCU_SCSS_PLL)){
  601. }
  602. }
  603. #elif defined (__SYSTEM_CLOCK_108M_PLL_HXTAL)
  604. /*!
  605. \brief configure the system clock to 108M by PLL which selects HXTAL(8M) as its clock source
  606. \param[in] none
  607. \param[out] none
  608. \retval none
  609. */
  610. static void system_clock_108m_hxtal(void)
  611. {
  612. uint32_t timeout = 0U;
  613. uint32_t stab_flag = 0U;
  614. /* enable HXTAL */
  615. RCU_CTL |= RCU_CTL_HXTALEN;
  616. /* wait until HXTAL is stable or the startup time is longer than HXTAL_STARTUP_TIMEOUT */
  617. do{
  618. timeout++;
  619. stab_flag = (RCU_CTL & RCU_CTL_HXTALSTB);
  620. }while((0U == stab_flag) && (HXTAL_STARTUP_TIMEOUT != timeout));
  621. /* if fail */
  622. if(0U == (RCU_CTL & RCU_CTL_HXTALSTB)){
  623. while(1){
  624. }
  625. }
  626. RCU_APB1EN |= RCU_APB1EN_PMUEN;
  627. PMU_CTL |= PMU_CTL_LDOVS;
  628. /* HXTAL is stable */
  629. /* AHB = SYSCLK */
  630. RCU_CFG0 |= RCU_AHB_CKSYS_DIV1;
  631. /* APB2 = AHB/1 */
  632. RCU_CFG0 |= RCU_APB2_CKAHB_DIV1;
  633. /* APB1 = AHB/2 */
  634. RCU_CFG0 |= RCU_APB1_CKAHB_DIV2;
  635. #if (defined(GD32F30X_HD) || defined(GD32F30X_XD))
  636. /* select HXTAL/2 as clock source */
  637. RCU_CFG0 &= ~(RCU_CFG0_PLLSEL | RCU_CFG0_PREDV0);
  638. RCU_CFG0 |= (RCU_PLLSRC_HXTAL_IRC48M | RCU_CFG0_PREDV0);
  639. /* CK_PLL = (CK_HXTAL/2) * 27 = 108 MHz */
  640. RCU_CFG0 &= ~(RCU_CFG0_PLLMF | RCU_CFG0_PLLMF_4 | RCU_CFG0_PLLMF_5);
  641. RCU_CFG0 |= RCU_PLL_MUL27;
  642. #elif defined(GD32F30X_CL)
  643. /* CK_PLL = (CK_PREDIV0) * 27 = 108 MHz */
  644. RCU_CFG0 &= ~(RCU_CFG0_PLLMF | RCU_CFG0_PLLMF_4 | RCU_CFG0_PLLMF_5);
  645. RCU_CFG0 |= (RCU_PLLSRC_HXTAL_IRC48M | RCU_PLL_MUL27);
  646. /* CK_PREDIV0 = (CK_HXTAL)/5 *8 /10 = 4 MHz */
  647. RCU_CFG1 &= ~(RCU_CFG1_PLLPRESEL | RCU_CFG1_PREDV0SEL | RCU_CFG1_PLL1MF | RCU_CFG1_PREDV1 | RCU_CFG1_PREDV0);
  648. RCU_CFG1 |= (RCU_PLLPRESRC_HXTAL | RCU_PREDV0SRC_CKPLL1 | RCU_PLL1_MUL8 | RCU_PREDV1_DIV5 | RCU_PREDV0_DIV10);
  649. /* enable PLL1 */
  650. RCU_CTL |= RCU_CTL_PLL1EN;
  651. /* wait till PLL1 is ready */
  652. while((RCU_CTL & RCU_CTL_PLL1STB) == 0){
  653. }
  654. #endif /* GD32F30X_HD and GD32F30X_XD */
  655. /* enable PLL */
  656. RCU_CTL |= RCU_CTL_PLLEN;
  657. /* wait until PLL is stable */
  658. while(0U == (RCU_CTL & RCU_CTL_PLLSTB)){
  659. }
  660. /* enable the high-drive to extend the clock frequency to 120 MHz */
  661. PMU_CTL |= PMU_CTL_HDEN;
  662. while(0U == (PMU_CS & PMU_CS_HDRF)){
  663. }
  664. /* select the high-drive mode */
  665. PMU_CTL |= PMU_CTL_HDS;
  666. while(0U == (PMU_CS & PMU_CS_HDSRF)){
  667. }
  668. /* select PLL as system clock */
  669. RCU_CFG0 &= ~RCU_CFG0_SCS;
  670. RCU_CFG0 |= RCU_CKSYSSRC_PLL;
  671. /* wait until PLL is selected as system clock */
  672. while(0U == (RCU_CFG0 & RCU_SCSS_PLL)){
  673. }
  674. }
  675. #elif defined (__SYSTEM_CLOCK_120M_PLL_HXTAL)
  676. /*!
  677. \brief configure the system clock to 120M by PLL which selects HXTAL(8M) as its clock source
  678. \param[in] none
  679. \param[out] none
  680. \retval none
  681. */
  682. static void system_clock_120m_hxtal(void)
  683. {
  684. uint32_t timeout = 0U;
  685. uint32_t stab_flag = 0U;
  686. /* enable HXTAL */
  687. RCU_CTL |= RCU_CTL_HXTALEN;
  688. /* wait until HXTAL is stable or the startup time is longer than HXTAL_STARTUP_TIMEOUT */
  689. do{
  690. timeout++;
  691. stab_flag = (RCU_CTL & RCU_CTL_HXTALSTB);
  692. }while((0U == stab_flag) && (HXTAL_STARTUP_TIMEOUT != timeout));
  693. /* if fail */
  694. if(0U == (RCU_CTL & RCU_CTL_HXTALSTB)){
  695. while(1){
  696. }
  697. }
  698. RCU_APB1EN |= RCU_APB1EN_PMUEN;
  699. PMU_CTL |= PMU_CTL_LDOVS;
  700. /* HXTAL is stable */
  701. /* AHB = SYSCLK */
  702. RCU_CFG0 |= RCU_AHB_CKSYS_DIV1;
  703. /* APB2 = AHB/1 */
  704. RCU_CFG0 |= RCU_APB2_CKAHB_DIV1;
  705. /* APB1 = AHB/2 */
  706. RCU_CFG0 |= RCU_APB1_CKAHB_DIV2;
  707. #if (defined(GD32F30X_HD) || defined(GD32F30X_XD))
  708. /* select HXTAL/2 as clock source */
  709. RCU_CFG0 &= ~(RCU_CFG0_PLLSEL | RCU_CFG0_PREDV0);
  710. RCU_CFG0 |= (RCU_PLLSRC_HXTAL_IRC48M | RCU_CFG0_PREDV0);
  711. /* CK_PLL = (CK_HXTAL/2) * 30 = 120 MHz */
  712. RCU_CFG0 &= ~(RCU_CFG0_PLLMF | RCU_CFG0_PLLMF_4 | RCU_CFG0_PLLMF_5);
  713. RCU_CFG0 |= RCU_PLL_MUL30;
  714. #elif defined(GD32F30X_CL)
  715. /* CK_PLL = (CK_PREDIV0) * 30 = 120 MHz */
  716. RCU_CFG0 &= ~(RCU_CFG0_PLLMF | RCU_CFG0_PLLMF_4 | RCU_CFG0_PLLMF_5);
  717. RCU_CFG0 |= (RCU_PLLSRC_HXTAL_IRC48M | RCU_PLL_MUL30);
  718. /* CK_PREDIV0 = (CK_HXTAL)/5 *8 /10 = 4 MHz */
  719. RCU_CFG1 &= ~(RCU_CFG1_PLLPRESEL | RCU_CFG1_PREDV0SEL | RCU_CFG1_PLL1MF | RCU_CFG1_PREDV1 | RCU_CFG1_PREDV0);
  720. RCU_CFG1 |= (RCU_PLLPRESRC_HXTAL | RCU_PREDV0SRC_CKPLL1 | RCU_PLL1_MUL8 | RCU_PREDV1_DIV5 | RCU_PREDV0_DIV10);
  721. /* enable PLL1 */
  722. RCU_CTL |= RCU_CTL_PLL1EN;
  723. /* wait till PLL1 is ready */
  724. while((RCU_CTL & RCU_CTL_PLL1STB) == 0U){
  725. }
  726. #endif /* GD32F30X_HD and GD32F30X_XD */
  727. /* enable PLL */
  728. RCU_CTL |= RCU_CTL_PLLEN;
  729. /* wait until PLL is stable */
  730. while(0U == (RCU_CTL & RCU_CTL_PLLSTB)){
  731. }
  732. /* enable the high-drive to extend the clock frequency to 120 MHz */
  733. PMU_CTL |= PMU_CTL_HDEN;
  734. while(0U == (PMU_CS & PMU_CS_HDRF)){
  735. }
  736. /* select the high-drive mode */
  737. PMU_CTL |= PMU_CTL_HDS;
  738. while(0U == (PMU_CS & PMU_CS_HDSRF)){
  739. }
  740. /* select PLL as system clock */
  741. RCU_CFG0 &= ~RCU_CFG0_SCS;
  742. RCU_CFG0 |= RCU_CKSYSSRC_PLL;
  743. /* wait until PLL is selected as system clock */
  744. while(0U == (RCU_CFG0 & RCU_SCSS_PLL)){
  745. }
  746. }
  747. #endif /* __SYSTEM_CLOCK_IRC8M */
  748. /*!
  749. \brief update the SystemCoreClock with current core clock retrieved from cpu registers
  750. \param[in] none
  751. \param[out] none
  752. \retval none
  753. */
  754. void SystemCoreClockUpdate (void)
  755. {
  756. uint32_t sws;
  757. uint32_t pllsel, pllpresel, predv0sel, pllmf,ck_src;
  758. #ifdef GD32F30X_CL
  759. uint32_t predv0, predv1, pll1mf;
  760. #endif /* GD32F30X_CL */
  761. sws = GET_BITS(RCU_CFG0, 2, 3);
  762. switch(sws){
  763. /* IRC8M is selected as CK_SYS */
  764. case SEL_IRC8M:
  765. SystemCoreClock = IRC8M_VALUE;
  766. break;
  767. /* HXTAL is selected as CK_SYS */
  768. case SEL_HXTAL:
  769. SystemCoreClock = HXTAL_VALUE;
  770. break;
  771. /* PLL is selected as CK_SYS */
  772. case SEL_PLL:
  773. /* PLL clock source selection, HXTAL, IRC48M or IRC8M/2 */
  774. pllsel = (RCU_CFG0 & RCU_CFG0_PLLSEL);
  775. if (RCU_PLLSRC_HXTAL_IRC48M == pllsel) {
  776. /* PLL clock source is HXTAL or IRC48M */
  777. pllpresel = (RCU_CFG1 & RCU_CFG1_PLLPRESEL);
  778. if(RCU_PLLPRESRC_HXTAL == pllpresel){
  779. /* PLL clock source is HXTAL */
  780. ck_src = HXTAL_VALUE;
  781. }else{
  782. /* PLL clock source is IRC48 */
  783. ck_src = IRC48M_VALUE;
  784. }
  785. #if (defined(GD32F30X_HD) || defined(GD32F30X_XD))
  786. predv0sel = (RCU_CFG0 & RCU_CFG0_PREDV0);
  787. /* PREDV0 input source clock divided by 2 */
  788. if(RCU_CFG0_PREDV0 == predv0sel){
  789. ck_src = HXTAL_VALUE/2U;
  790. }
  791. #elif defined(GD32F30X_CL)
  792. predv0sel = (RCU_CFG1 & RCU_CFG1_PREDV0SEL);
  793. /* source clock use PLL1 */
  794. if(RCU_PREDV0SRC_CKPLL1 == predv0sel){
  795. predv1 = ((RCU_CFG1 & RCU_CFG1_PREDV1) >> 4) + 1U;
  796. pll1mf = ((RCU_CFG1 & RCU_CFG1_PLL1MF) >> 8) + 2U;
  797. if(17U == pll1mf){
  798. pll1mf = 20U;
  799. }
  800. ck_src = (ck_src/predv1)*pll1mf;
  801. }
  802. predv0 = (RCU_CFG1 & RCU_CFG1_PREDV0) + 1U;
  803. ck_src /= predv0;
  804. #endif /* GD32F30X_HD and GD32F30X_XD */
  805. }else{
  806. /* PLL clock source is IRC8M/2 */
  807. ck_src = IRC8M_VALUE/2U;
  808. }
  809. /* PLL multiplication factor */
  810. pllmf = GET_BITS(RCU_CFG0, 18, 21);
  811. if((RCU_CFG0 & RCU_CFG0_PLLMF_4)){
  812. pllmf |= 0x10U;
  813. }
  814. if((RCU_CFG0 & RCU_CFG0_PLLMF_5)){
  815. pllmf |= 0x20U;
  816. }
  817. if( pllmf >= 15U){
  818. pllmf += 1U;
  819. }else{
  820. pllmf += 2U;
  821. }
  822. if(pllmf > 61U){
  823. pllmf = 63U;
  824. }
  825. SystemCoreClock = ck_src*pllmf;
  826. #ifdef GD32F30X_CL
  827. if(15U == pllmf){
  828. SystemCoreClock = ck_src*6U + ck_src/2U;
  829. }
  830. #endif /* GD32F30X_CL */
  831. break;
  832. /* IRC8M is selected as CK_SYS */
  833. default:
  834. SystemCoreClock = IRC8M_VALUE;
  835. break;
  836. }
  837. }