dma.h 10 KB

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  1. /* $Id: dma.h,v 1.7 1992/12/14 00:29:34 root Exp root $
  2. * linux/include/asm/dma.h: Defines for using and allocating dma channels.
  3. * Written by Hennus Bergman, 1992.
  4. * High DMA channel support & info by Hannu Savolainen
  5. * and John Boyd, Nov. 1992.
  6. */
  7. #ifndef _ASM_MPC1211_DMA_H
  8. #define _ASM_MPC1211_DMA_H
  9. #include <linux/config.h>
  10. #include <linux/spinlock.h> /* And spinlocks */
  11. #include <asm/io.h> /* need byte IO */
  12. #include <linux/delay.h>
  13. #ifdef HAVE_REALLY_SLOW_DMA_CONTROLLER
  14. #define dma_outb outb_p
  15. #else
  16. #define dma_outb outb
  17. #endif
  18. #define dma_inb inb
  19. /*
  20. * NOTES about DMA transfers:
  21. *
  22. * controller 1: channels 0-3, byte operations, ports 00-1F
  23. * controller 2: channels 4-7, word operations, ports C0-DF
  24. *
  25. * - ALL registers are 8 bits only, regardless of transfer size
  26. * - channel 4 is not used - cascades 1 into 2.
  27. * - channels 0-3 are byte - addresses/counts are for physical bytes
  28. * - channels 5-7 are word - addresses/counts are for physical words
  29. * - transfers must not cross physical 64K (0-3) or 128K (5-7) boundaries
  30. * - transfer count loaded to registers is 1 less than actual count
  31. * - controller 2 offsets are all even (2x offsets for controller 1)
  32. * - page registers for 5-7 don't use data bit 0, represent 128K pages
  33. * - page registers for 0-3 use bit 0, represent 64K pages
  34. *
  35. * DMA transfers are limited to the lower 16MB of _physical_ memory.
  36. * Note that addresses loaded into registers must be _physical_ addresses,
  37. * not logical addresses (which may differ if paging is active).
  38. *
  39. * Address mapping for channels 0-3:
  40. *
  41. * A23 ... A16 A15 ... A8 A7 ... A0 (Physical addresses)
  42. * | ... | | ... | | ... |
  43. * | ... | | ... | | ... |
  44. * | ... | | ... | | ... |
  45. * P7 ... P0 A7 ... A0 A7 ... A0
  46. * | Page | Addr MSB | Addr LSB | (DMA registers)
  47. *
  48. * Address mapping for channels 5-7:
  49. *
  50. * A23 ... A17 A16 A15 ... A9 A8 A7 ... A1 A0 (Physical addresses)
  51. * | ... | \ \ ... \ \ \ ... \ \
  52. * | ... | \ \ ... \ \ \ ... \ (not used)
  53. * | ... | \ \ ... \ \ \ ... \
  54. * P7 ... P1 (0) A7 A6 ... A0 A7 A6 ... A0
  55. * | Page | Addr MSB | Addr LSB | (DMA registers)
  56. *
  57. * Again, channels 5-7 transfer _physical_ words (16 bits), so addresses
  58. * and counts _must_ be word-aligned (the lowest address bit is _ignored_ at
  59. * the hardware level, so odd-byte transfers aren't possible).
  60. *
  61. * Transfer count (_not # bytes_) is limited to 64K, represented as actual
  62. * count - 1 : 64K => 0xFFFF, 1 => 0x0000. Thus, count is always 1 or more,
  63. * and up to 128K bytes may be transferred on channels 5-7 in one operation.
  64. *
  65. */
  66. #define MAX_DMA_CHANNELS 8
  67. /* The maximum address that we can perform a DMA transfer to on this platform */
  68. #define MAX_DMA_ADDRESS (PAGE_OFFSET+0x10000000)
  69. /* 8237 DMA controllers */
  70. #define IO_DMA1_BASE 0x00 /* 8 bit slave DMA, channels 0..3 */
  71. #define IO_DMA2_BASE 0xC0 /* 16 bit master DMA, ch 4(=slave input)..7 */
  72. /* DMA controller registers */
  73. #define DMA1_CMD_REG 0x08 /* command register (w) */
  74. #define DMA1_STAT_REG 0x08 /* status register (r) */
  75. #define DMA1_REQ_REG 0x09 /* request register (w) */
  76. #define DMA1_MASK_REG 0x0A /* single-channel mask (w) */
  77. #define DMA1_MODE_REG 0x0B /* mode register (w) */
  78. #define DMA1_CLEAR_FF_REG 0x0C /* clear pointer flip-flop (w) */
  79. #define DMA1_TEMP_REG 0x0D /* Temporary Register (r) */
  80. #define DMA1_RESET_REG 0x0D /* Master Clear (w) */
  81. #define DMA1_CLR_MASK_REG 0x0E /* Clear Mask */
  82. #define DMA1_MASK_ALL_REG 0x0F /* all-channels mask (w) */
  83. #define DMA2_CMD_REG 0xD0 /* command register (w) */
  84. #define DMA2_STAT_REG 0xD0 /* status register (r) */
  85. #define DMA2_REQ_REG 0xD2 /* request register (w) */
  86. #define DMA2_MASK_REG 0xD4 /* single-channel mask (w) */
  87. #define DMA2_MODE_REG 0xD6 /* mode register (w) */
  88. #define DMA2_CLEAR_FF_REG 0xD8 /* clear pointer flip-flop (w) */
  89. #define DMA2_TEMP_REG 0xDA /* Temporary Register (r) */
  90. #define DMA2_RESET_REG 0xDA /* Master Clear (w) */
  91. #define DMA2_CLR_MASK_REG 0xDC /* Clear Mask */
  92. #define DMA2_MASK_ALL_REG 0xDE /* all-channels mask (w) */
  93. #define DMA_ADDR_0 0x00 /* DMA address registers */
  94. #define DMA_ADDR_1 0x02
  95. #define DMA_ADDR_2 0x04
  96. #define DMA_ADDR_3 0x06
  97. #define DMA_ADDR_4 0xC0
  98. #define DMA_ADDR_5 0xC4
  99. #define DMA_ADDR_6 0xC8
  100. #define DMA_ADDR_7 0xCC
  101. #define DMA_CNT_0 0x01 /* DMA count registers */
  102. #define DMA_CNT_1 0x03
  103. #define DMA_CNT_2 0x05
  104. #define DMA_CNT_3 0x07
  105. #define DMA_CNT_4 0xC2
  106. #define DMA_CNT_5 0xC6
  107. #define DMA_CNT_6 0xCA
  108. #define DMA_CNT_7 0xCE
  109. #define DMA_PAGE_0 0x87 /* DMA page registers */
  110. #define DMA_PAGE_1 0x83
  111. #define DMA_PAGE_2 0x81
  112. #define DMA_PAGE_3 0x82
  113. #define DMA_PAGE_5 0x8B
  114. #define DMA_PAGE_6 0x89
  115. #define DMA_PAGE_7 0x8A
  116. #define DMA_MODE_READ 0x44 /* I/O to memory, no autoinit, increment, single mode */
  117. #define DMA_MODE_WRITE 0x48 /* memory to I/O, no autoinit, increment, single mode */
  118. #define DMA_MODE_CASCADE 0xC0 /* pass thru DREQ->HRQ, DACK<-HLDA only */
  119. #define DMA_AUTOINIT 0x10
  120. extern spinlock_t dma_spin_lock;
  121. static __inline__ unsigned long claim_dma_lock(void)
  122. {
  123. unsigned long flags;
  124. spin_lock_irqsave(&dma_spin_lock, flags);
  125. return flags;
  126. }
  127. static __inline__ void release_dma_lock(unsigned long flags)
  128. {
  129. spin_unlock_irqrestore(&dma_spin_lock, flags);
  130. }
  131. /* enable/disable a specific DMA channel */
  132. static __inline__ void enable_dma(unsigned int dmanr)
  133. {
  134. if (dmanr<=3)
  135. dma_outb(dmanr, DMA1_MASK_REG);
  136. else
  137. dma_outb(dmanr & 3, DMA2_MASK_REG);
  138. }
  139. static __inline__ void disable_dma(unsigned int dmanr)
  140. {
  141. if (dmanr<=3)
  142. dma_outb(dmanr | 4, DMA1_MASK_REG);
  143. else
  144. dma_outb((dmanr & 3) | 4, DMA2_MASK_REG);
  145. }
  146. /* Clear the 'DMA Pointer Flip Flop'.
  147. * Write 0 for LSB/MSB, 1 for MSB/LSB access.
  148. * Use this once to initialize the FF to a known state.
  149. * After that, keep track of it. :-)
  150. * --- In order to do that, the DMA routines below should ---
  151. * --- only be used while holding the DMA lock ! ---
  152. */
  153. static __inline__ void clear_dma_ff(unsigned int dmanr)
  154. {
  155. if (dmanr<=3)
  156. dma_outb(0, DMA1_CLEAR_FF_REG);
  157. else
  158. dma_outb(0, DMA2_CLEAR_FF_REG);
  159. }
  160. /* set mode (above) for a specific DMA channel */
  161. static __inline__ void set_dma_mode(unsigned int dmanr, char mode)
  162. {
  163. if (dmanr<=3)
  164. dma_outb(mode | dmanr, DMA1_MODE_REG);
  165. else
  166. dma_outb(mode | (dmanr&3), DMA2_MODE_REG);
  167. }
  168. /* Set only the page register bits of the transfer address.
  169. * This is used for successive transfers when we know the contents of
  170. * the lower 16 bits of the DMA current address register, but a 64k boundary
  171. * may have been crossed.
  172. */
  173. static __inline__ void set_dma_page(unsigned int dmanr, unsigned int pagenr)
  174. {
  175. switch(dmanr) {
  176. case 0:
  177. dma_outb( pagenr & 0xff, DMA_PAGE_0);
  178. dma_outb((pagenr >> 8) & 0xff, DMA_PAGE_0 + 0x400);
  179. break;
  180. case 1:
  181. dma_outb( pagenr & 0xff, DMA_PAGE_1);
  182. dma_outb((pagenr >> 8) & 0xff, DMA_PAGE_1 + 0x400);
  183. break;
  184. case 2:
  185. dma_outb( pagenr & 0xff, DMA_PAGE_2);
  186. dma_outb((pagenr >> 8) & 0xff, DMA_PAGE_2 + 0x400);
  187. break;
  188. case 3:
  189. dma_outb( pagenr & 0xff, DMA_PAGE_3);
  190. dma_outb((pagenr >> 8) & 0xff, DMA_PAGE_3 + 0x400);
  191. break;
  192. case 5:
  193. dma_outb( pagenr & 0xfe, DMA_PAGE_5);
  194. dma_outb((pagenr >> 8) & 0xff, DMA_PAGE_5 + 0x400);
  195. break;
  196. case 6:
  197. dma_outb( pagenr & 0xfe, DMA_PAGE_6);
  198. dma_outb((pagenr >> 8) & 0xff, DMA_PAGE_6 + 0x400);
  199. break;
  200. case 7:
  201. dma_outb( pagenr & 0xfe, DMA_PAGE_7);
  202. dma_outb((pagenr >> 8) & 0xff, DMA_PAGE_7 + 0x400);
  203. break;
  204. }
  205. }
  206. /* Set transfer address & page bits for specific DMA channel.
  207. * Assumes dma flipflop is clear.
  208. */
  209. static __inline__ void set_dma_addr(unsigned int dmanr, unsigned int a)
  210. {
  211. set_dma_page(dmanr, a>>16);
  212. if (dmanr <= 3) {
  213. dma_outb( a & 0xff, ((dmanr&3)<<1) + IO_DMA1_BASE );
  214. dma_outb( (a>>8) & 0xff, ((dmanr&3)<<1) + IO_DMA1_BASE );
  215. } else {
  216. dma_outb( (a>>1) & 0xff, ((dmanr&3)<<2) + IO_DMA2_BASE );
  217. dma_outb( (a>>9) & 0xff, ((dmanr&3)<<2) + IO_DMA2_BASE );
  218. }
  219. }
  220. /* Set transfer size (max 64k for DMA1..3, 128k for DMA5..7) for
  221. * a specific DMA channel.
  222. * You must ensure the parameters are valid.
  223. * NOTE: from a manual: "the number of transfers is one more
  224. * than the initial word count"! This is taken into account.
  225. * Assumes dma flip-flop is clear.
  226. * NOTE 2: "count" represents _bytes_ and must be even for channels 5-7.
  227. */
  228. static __inline__ void set_dma_count(unsigned int dmanr, unsigned int count)
  229. {
  230. count--;
  231. if (dmanr <= 3) {
  232. dma_outb( count & 0xff, ((dmanr&3)<<1) + 1 + IO_DMA1_BASE );
  233. dma_outb( (count>>8) & 0xff, ((dmanr&3)<<1) + 1 + IO_DMA1_BASE );
  234. } else {
  235. dma_outb( (count>>1) & 0xff, ((dmanr&3)<<2) + 2 + IO_DMA2_BASE );
  236. dma_outb( (count>>9) & 0xff, ((dmanr&3)<<2) + 2 + IO_DMA2_BASE );
  237. }
  238. }
  239. /* Get DMA residue count. After a DMA transfer, this
  240. * should return zero. Reading this while a DMA transfer is
  241. * still in progress will return unpredictable results.
  242. * If called before the channel has been used, it may return 1.
  243. * Otherwise, it returns the number of _bytes_ left to transfer.
  244. *
  245. * Assumes DMA flip-flop is clear.
  246. */
  247. static __inline__ int get_dma_residue(unsigned int dmanr)
  248. {
  249. unsigned int io_port = (dmanr<=3)? ((dmanr&3)<<1) + 1 + IO_DMA1_BASE
  250. : ((dmanr&3)<<2) + 2 + IO_DMA2_BASE;
  251. /* using short to get 16-bit wrap around */
  252. unsigned short count;
  253. count = 1 + dma_inb(io_port);
  254. count += dma_inb(io_port) << 8;
  255. return (dmanr<=3)? count : (count<<1);
  256. }
  257. /* These are in kernel/dma.c: */
  258. extern int request_dma(unsigned int dmanr, const char * device_id); /* reserve a DMA channel */
  259. extern void free_dma(unsigned int dmanr); /* release it again */
  260. /* From PCI */
  261. #ifdef CONFIG_PCI
  262. extern int isa_dma_bridge_buggy;
  263. #else
  264. #define isa_dma_bridge_buggy (0)
  265. #endif
  266. #endif /* _ASM_MPC1211_DMA_H */