finsh_drv.c 11 KB

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  1. #include "board.h"
  2. // #define FINSH_TXBUF_DEPTH (1024)
  3. #ifdef FINSH_TXBUF_DEPTH
  4. static char TxBuf[FINSH_TXBUF_DEPTH];
  5. static uint16_t TxWaddr = 0;
  6. static uint16_t TxRaddr = 0;
  7. #endif
  8. SerPlot_NxFloat_t SerPlot;
  9. // uint16_t SerPlot_Mode = 0x0000u;
  10. uint16_t SerPlot_Mode = SERPLOT_DMATX_OFF;
  11. uint16_t Finsh_Uart_Mode;
  12. uint8_t finsh_txing_flag = 0; // finsh txing set 1
  13. #if !defined(USE_DEBUG_UART)
  14. // finsh driver init
  15. // GPIO enable for uart
  16. // NVIC interrupt enable for lpuart1
  17. void finsh_drv_init(void)
  18. {
  19. // LPUART1_RX: PC11(AF1)
  20. GpioInit(PC11_LPUART1_RXD, GPIO_DIG_IN_NONEUP_NONEDOWN);
  21. PeriClk_MutEnable(PeriClk_LpUart1);
  22. // infrared lpuart baudrate = 2400Hz even parity
  23. M0P_LPUART1->SCON = (0 << 21) | // FEIE, Frame error interrupt 0:close; 1:open;
  24. (0 << 17) | // DMATXEN, TX DMAC handshake 0:close; 1:open;
  25. (0 << 16) | // DMARXEN, RX DMAC handshake 0:close; 1:open;
  26. (0 << 14) | // STOPBIT, Stop bit length, 0:1-bit; 1:1.5-bits; 2:2-bits; 3:RSV
  27. (0 << 13) | // PEIE, Parity error interrupt 0:close; 1:open;
  28. #ifndef RCL_38p4K_ENABLE
  29. (2 << 11) | // SCLKSEL, 0,1:PCLK; 2:XTL; 3:RCL;
  30. #else
  31. (3 << 11) | // SCLKSEL, 0,1:PCLK; 2:XTL; 3:RCL;
  32. #endif
  33. (2 << 9) | // OVER, 0:16x-sample; 1:8x-sample; 2:4x-sample;
  34. (0 << 8) | // TXEIE, TX empty interrupt 0:close; 1:open;
  35. (3 << 6) | // SM, 0:mode0; 1:mode1; 2:mode2; 3:mode3;
  36. (1 << 4) | // REN, in mode1 0:TX only; 1:RX/TX
  37. (1 << 2) | // B8CONT, 0:SBUF[8]; 1:even; 2:odd; 3:RSV
  38. (0 << 1) | // TCIE, Tx completed interrupt 0:close; 1:open;
  39. (1 << 0); // RCIE, Rx completed interrupt 0:close; 1:open;
  40. // BaudRate = fSCLK/(OVER*SCNT)
  41. // fSCLK = 32.768KHz(XTL) or 38.4KHz(RCL)
  42. M0P_LPUART1->SCNT = 4; // BaudRate = 32768/(4*4) = 2048Hz(XTL) or 38400/(4*4) = 2400Hz(RCL)
  43. // enable interrupt at NVIC side
  44. IRQMutEnable(LPUART1_IRQn, NVIC_PRIO_3);
  45. // IRQMutEnable(LPUART1_IRQn, NVIC_PRIO_0);
  46. // LPUART1_TX: PC10(AF1)
  47. GpioInit(PC10_LPUART1_TXD, GPIO_DIG_OUT_STRN_PUSH_NONEUP_NONEDOWN);
  48. SerPlot.f.Preamble = 0xFFFFFFFF;
  49. }
  50. static uart_rx_itf ShellRxItf;
  51. static uart_rx_itf CheckRxItf;
  52. static ymodem_rx_itf YModemRxItf;
  53. static void *YModemArg;
  54. void set_shell_rx_itf(uart_rx_itf itf)
  55. {
  56. ShellRxItf = itf;
  57. }
  58. void set_check_rx_itf(uart_rx_itf itf)
  59. {
  60. CheckRxItf = itf;
  61. }
  62. void set_ymodem_rx_itf(ymodem_rx_itf itf, void *arg)
  63. {
  64. YModemRxItf = itf;
  65. YModemArg = arg;
  66. }
  67. // interrupt routine
  68. void LPUART1_IRQHandler(void)
  69. {
  70. union
  71. {
  72. uint32_t ISR;
  73. stc_uart_isr_field_t ISR_f;
  74. } IRQ;
  75. #ifdef FINSH_TXBUF_DEPTH
  76. rt_base_t level;
  77. #endif
  78. IRQ.ISR = M0P_LPUART1->ISR;
  79. M0P_LPUART1->ICR = ~IRQ.ISR; // write 0 to clear interrupts
  80. // receive a ch
  81. if (IRQ.ISR_f.RC)
  82. {
  83. if (Finsh_Uart_Mode & YMODEM_UPGRADE_ON)
  84. {
  85. YModemRxItf(M0P_LPUART1->SBUF, YModemArg);
  86. }
  87. else if (Finsh_Uart_Mode & CHECK_ITF_ON)
  88. {
  89. CheckRxItf(M0P_LPUART1->SBUF);
  90. }
  91. else
  92. {
  93. ShellRxItf(M0P_LPUART1->SBUF);
  94. }
  95. }
  96. if (IRQ.ISR_f.TXE & M0P_LPUART1->SCON_f.TXEIE)
  97. {
  98. #ifdef FINSH_TXBUF_DEPTH
  99. if (TxRaddr == TxWaddr)
  100. { // read FIFO to empty
  101. M0P_LPUART1->SCON_f.TXEIE = 0; // disable tx interrupt source
  102. }
  103. else
  104. {
  105. M0P_LPUART1->SBUF = (uint32_t)TxBuf[TxRaddr];
  106. level = rt_hw_interrupt_disable();
  107. if (TxRaddr >= (FINSH_TXBUF_DEPTH - 1))
  108. {
  109. TxRaddr = 0;
  110. }
  111. else
  112. {
  113. TxRaddr++;
  114. }
  115. rt_hw_interrupt_enable(level);
  116. }
  117. #else
  118. M0P_LPUART1->SCON_f.TXEIE = 0; // disable tx interrupt source
  119. #endif
  120. }
  121. // CalExpireTime(120);
  122. }
  123. uint16_t FinSh_Txbuf_Busy(void)
  124. {
  125. #ifdef FINSH_TXBUF_DEPTH
  126. if (TxWaddr != TxRaddr)
  127. {
  128. return (0x0001u);
  129. }
  130. #endif
  131. // if (M0P_LPUART1->ISR_f.TXE==0) {
  132. // M0P_LPUART1->SCON_f.TXEIE = 1; // enable tx interrupt source
  133. // return(0x0001u);
  134. // }
  135. return (0x0000u);
  136. }
  137. void print_ch(char ch)
  138. {
  139. if (((~SerPlot_Mode) & SERPLOT_DMATX_OFF) || (Finsh_Uart_Mode & YMODEM_UPGRADE_ON))
  140. { // SerPlot on
  141. return;
  142. }
  143. #ifdef FINSH_TXBUF_DEPTH
  144. // put a ch to TXBUF with nonblocking, drop it if almost full
  145. rt_base_t level;
  146. uint16_t used;
  147. while (1)
  148. {
  149. used = TxWaddr - TxRaddr;
  150. if (TxWaddr < TxRaddr)
  151. {
  152. used += FINSH_TXBUF_DEPTH;
  153. }
  154. if (used < (FINSH_TXBUF_DEPTH - 1))
  155. {
  156. break;
  157. }
  158. }
  159. TxBuf[TxWaddr] = ch;
  160. level = rt_hw_interrupt_disable();
  161. if (TxWaddr >= (FINSH_TXBUF_DEPTH - 1))
  162. {
  163. TxWaddr = 0;
  164. }
  165. else
  166. {
  167. TxWaddr++;
  168. }
  169. M0P_LPUART1->SCON_f.TXEIE = 1; // enable tx interrupt source
  170. #ifdef SLEEPDEEP_ENABLE
  171. SCB->SCR = (0x0 << SCB_SCR_SEVONPEND_Pos) |
  172. (0x0 << SCB_SCR_SLEEPDEEP_Pos) | // sleep
  173. (0x0 << SCB_SCR_SLEEPONEXIT_Pos);
  174. #endif
  175. rt_hw_interrupt_enable(level);
  176. return;
  177. #else
  178. // put a ch to TX data register directly, wait if not empty
  179. while (M0P_LPUART1->ISR_f.TXE == 0)
  180. {
  181. // wait until TX empty
  182. }
  183. M0P_LPUART1->SBUF = (uint32_t)ch;
  184. // #ifdef SLEEPDEEP_ENABLE
  185. // // wait until TDR is moved to 32.768K clock domain
  186. // while (M0P_LPUART1->ISR_f.TXE==0) {
  187. // // wait until TX empty
  188. // }
  189. // #endif
  190. return;
  191. #endif
  192. }
  193. // must use Micro LIB at keil option
  194. /*
  195. int fputc(int ch, FILE* stream)
  196. {
  197. // fow windows, line end is "\r\n"
  198. if (ch=='\n'){
  199. print_ch('\r');
  200. }
  201. print_ch((char)ch);
  202. return ch;
  203. }*/
  204. void print_str(char *str)
  205. {
  206. char ch;
  207. while (1)
  208. {
  209. ch = *str++;
  210. if (ch == '\0')
  211. {
  212. return;
  213. }
  214. // fow windows, line end is "\r\n"
  215. if (ch == '\n')
  216. {
  217. print_ch('\r');
  218. }
  219. print_ch(ch);
  220. }
  221. }
  222. void DebugPrintStr(char *Str, uint16_t Len)
  223. {
  224. if ((~SerPlot_Mode) & SERPLOT_DMATX_OFF)
  225. { // SerPlot on
  226. return;
  227. }
  228. DMA_ReqClkOn(); // close clock of DMA after interrupt done
  229. // enable DMA interrupt at NVIC side
  230. IRQMutEnable(DMAC_IRQn, NVIC_PRIO_3);
  231. M0P_DMAC->CONF = (1u << 31) | // EN, 0:DMAC off; 1:DMAC on;
  232. (0u << 28) | // PRIO, 0:priority of CH0 higher than CH1; 1:round-robin between CH0 and CH1;
  233. (0u << 24); // HALT, 0:not halt; others:halt all CH;
  234. M0P_DMAC->CONFA1 = (0u << 31) | // ENS, 0:CHx off; 1:CHx on;
  235. (0u << 29) | // ST, 0:no soft start DMA; 1:soft start DMA
  236. (0x4Fu << 22) | // TRI_SEL, 0x49:UART0 TxBuf empty; 0x4B:UART1 TxBuf empty; 0x4D:LPUART0 TxBuf empty; 0x4F:LPUART1 TxBuf empty;
  237. (0u << 16) | // BC, one trigger require 0:one; 1:two; ... 15:sixteen data(8/16/32 bits per data)
  238. ((Len - 1u) << 0); // TC = Len - 1, close DAM after (TC+1)*(BC+1)
  239. M0P_DMAC->CONFB1 = (0u << 28) | // MODE, 0:Block; 1:Burst(non interruptible between TC+1 Trigger);
  240. (0u << 26) | // WIDTH, 0:8 bits; 1:16 bits; 2:32 bits;
  241. (0u << 25) | // FS, source address 0:inc; 1:fixed;
  242. (1u << 24) | // FD, destination address 0:inc; 1:fixed;
  243. (1u << 20) | // ERR_IE, interrupt 0:off; 1:on; when DMA error
  244. (1u << 19) | // FIS_IE, interrupt 0:off; 1:on; after DMA done
  245. (0u << 0); // MSK, 0:clear ENS 1:keep ENS; after DMA done
  246. M0P_DMAC->SRCADR1 = (uint32_t)Str; // memory addresss
  247. M0P_DMAC->DSTADR1 = (uint32_t)&(M0P_LPUART1->SBUF); // peripheral addresss, not inc
  248. M0P_LPUART1->SCON_f.DMATXEN = 1;
  249. M0P_DMAC->CONFA1_f.ENS = 1;
  250. #ifdef SLEEPDEEP_ENABLE
  251. SCB->SCR = (0x0 << SCB_SCR_SEVONPEND_Pos) |
  252. (0x0 << SCB_SCR_SLEEPDEEP_Pos) | // sleep
  253. (0x0 << SCB_SCR_SLEEPONEXIT_Pos);
  254. #endif
  255. }
  256. // active DMA for uart TX, and immediately non-blocking return regardless of TX completing
  257. void SerPlot_DmaTxAct(char *Ptr, uint16_t Len)
  258. {
  259. if (SerPlot_Mode & SERPLOT_DMATX_OFF)
  260. {
  261. return;
  262. }
  263. DMA_ReqClkOn(); // close clock of DMA after interrupt done
  264. // enable DMA interrupt at NVIC side
  265. IRQMutEnable(DMAC_IRQn, NVIC_PRIO_3);
  266. M0P_DMAC->CONF = (1u << 31) | // EN, 0:DMAC off; 1:DMAC on;
  267. (0u << 28) | // PRIO, 0:priority of CH0 higher than CH1; 1:round-robin between CH0 and CH1;
  268. (0u << 24); // HALT, 0:not halt; others:halt all CH;
  269. M0P_DMAC->CONFA1 = (0u << 31) | // ENS, 0:CHx off; 1:CHx on;
  270. (0u << 29) | // ST, 0:no soft start DMA; 1:soft start DMA
  271. (0x4Fu << 22) | // TRI_SEL, 0x49:UART0 TxBuf empty; 0x4B:UART1 TxBuf empty; 0x4D:LPUART0 TxBuf empty; 0x4F:LPUART1 TxBuf empty;
  272. (0u << 16) | // BC, one trigger require 0:one; 1:two; ... 15:sixteen data(8/16/32 bits per data)
  273. ((Len - 1u) << 0); // TC = Len - 1, close DAM after (TC+1)*(BC+1)
  274. M0P_DMAC->CONFB1 = (0u << 28) | // MODE, 0:Block; 1:Burst(non interruptible between TC+1 Trigger);
  275. (0u << 26) | // WIDTH, 0:8 bits; 1:16 bits; 2:32 bits;
  276. (0u << 25) | // FS, source address 0:inc; 1:fixed;
  277. (1u << 24) | // FD, destination address 0:inc; 1:fixed;
  278. (1u << 20) | // ERR_IE, interrupt 0:off; 1:on; when DMA error
  279. (1u << 19) | // FIS_IE, interrupt 0:off; 1:on; after DMA done
  280. (0u << 0); // MSK, 0:clear ENS 1:keep ENS; after DMA done
  281. M0P_DMAC->SRCADR1 = (uint32_t)Ptr; // memory addresss
  282. M0P_DMAC->DSTADR1 = (uint32_t)&(M0P_LPUART1->SBUF); // peripheral addresss, not inc
  283. M0P_LPUART1->SCON_f.DMATXEN = 1;
  284. M0P_DMAC->CONFA1_f.ENS = 1;
  285. #ifdef SLEEPDEEP_ENABLE
  286. SCB->SCR = (0x0 << SCB_SCR_SEVONPEND_Pos) |
  287. (0x0 << SCB_SCR_SLEEPDEEP_Pos) | // sleep
  288. (0x0 << SCB_SCR_SLEEPONEXIT_Pos);
  289. #endif
  290. }
  291. void finsh_tx(volatile uint8_t *data, uint16_t len)
  292. {
  293. int i;
  294. finsh_txing_flag = 1; // when txing, set 1
  295. for (i = 0; i < len; i++)
  296. {
  297. print_ch(data[i]);
  298. }
  299. while (M0P_LPUART1->ISR_f.TXE == 0)
  300. {
  301. // wait until TX empty
  302. }
  303. rt_thread_mdelay(5);
  304. finsh_txing_flag = 0;
  305. }
  306. void PutChar(char ch)
  307. {
  308. // put a ch to TX data register directly, wait if not empty
  309. while (M0P_LPUART1->ISR_f.TXE == 0)
  310. {
  311. // wait until TX empty
  312. }
  313. M0P_LPUART1->SBUF = (uint32_t)ch;
  314. // #ifdef SLEEPDEEP_ENABLE
  315. // // wait until TDR is moved to 32.768K clock domain
  316. // while (M0P_LPUART1->ISR_f.TXE==0) {
  317. // // wait until TX empty
  318. // }
  319. // #endif
  320. }
  321. #endif