int-handler.S 6.9 KB

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  1. /*
  2. * Copyright (C) 1995, 1996, 1997 Paul M. Antoine and Harald Koerfgen
  3. * Copyright (C) 2000, 2001, 2002, 2003, 2005 Maciej W. Rozycki
  4. *
  5. * Written by Ralf Baechle and Andreas Busse, modified for DECstation
  6. * support by Paul Antoine and Harald Koerfgen.
  7. *
  8. * completly rewritten:
  9. * Copyright (C) 1998 Harald Koerfgen
  10. *
  11. * Rewritten extensively for controller-driven IRQ support
  12. * by Maciej W. Rozycki.
  13. */
  14. #include <asm/addrspace.h>
  15. #include <asm/asm.h>
  16. #include <asm/mipsregs.h>
  17. #include <asm/regdef.h>
  18. #include <asm/stackframe.h>
  19. #include <asm/dec/interrupts.h>
  20. #include <asm/dec/ioasic_addrs.h>
  21. #include <asm/dec/ioasic_ints.h>
  22. #include <asm/dec/kn01.h>
  23. #include <asm/dec/kn02.h>
  24. #include <asm/dec/kn02xa.h>
  25. #include <asm/dec/kn03.h>
  26. #define KN02_CSR_BASE CKSEG1ADDR(KN02_SLOT_BASE + KN02_CSR)
  27. #define KN02XA_IOASIC_BASE CKSEG1ADDR(KN02XA_SLOT_BASE + IOASIC_IOCTL)
  28. #define KN03_IOASIC_BASE CKSEG1ADDR(KN03_SLOT_BASE + IOASIC_IOCTL)
  29. .text
  30. .set noreorder
  31. /*
  32. * plat_irq_dispatch: Interrupt handler for DECstations
  33. *
  34. * We follow the model in the Indy interrupt code by David Miller, where he
  35. * says: a lot of complication here is taken away because:
  36. *
  37. * 1) We handle one interrupt and return, sitting in a loop
  38. * and moving across all the pending IRQ bits in the cause
  39. * register is _NOT_ the answer, the common case is one
  40. * pending IRQ so optimize in that direction.
  41. *
  42. * 2) We need not check against bits in the status register
  43. * IRQ mask, that would make this routine slow as hell.
  44. *
  45. * 3) Linux only thinks in terms of all IRQs on or all IRQs
  46. * off, nothing in between like BSD spl() brain-damage.
  47. *
  48. * Furthermore, the IRQs on the DECstations look basically (barring
  49. * software IRQs which we don't use at all) like...
  50. *
  51. * DS2100/3100's, aka kn01, aka Pmax:
  52. *
  53. * MIPS IRQ Source
  54. * -------- ------
  55. * 0 Software (ignored)
  56. * 1 Software (ignored)
  57. * 2 SCSI
  58. * 3 Lance Ethernet
  59. * 4 DZ11 serial
  60. * 5 RTC
  61. * 6 Memory Controller & Video
  62. * 7 FPU
  63. *
  64. * DS5000/200, aka kn02, aka 3max:
  65. *
  66. * MIPS IRQ Source
  67. * -------- ------
  68. * 0 Software (ignored)
  69. * 1 Software (ignored)
  70. * 2 TurboChannel
  71. * 3 RTC
  72. * 4 Reserved
  73. * 5 Memory Controller
  74. * 6 Reserved
  75. * 7 FPU
  76. *
  77. * DS5000/1xx's, aka kn02ba, aka 3min:
  78. *
  79. * MIPS IRQ Source
  80. * -------- ------
  81. * 0 Software (ignored)
  82. * 1 Software (ignored)
  83. * 2 TurboChannel Slot 0
  84. * 3 TurboChannel Slot 1
  85. * 4 TurboChannel Slot 2
  86. * 5 TurboChannel Slot 3 (ASIC)
  87. * 6 Halt button
  88. * 7 FPU/R4k timer
  89. *
  90. * DS5000/2x's, aka kn02ca, aka maxine:
  91. *
  92. * MIPS IRQ Source
  93. * -------- ------
  94. * 0 Software (ignored)
  95. * 1 Software (ignored)
  96. * 2 Periodic Interrupt (100usec)
  97. * 3 RTC
  98. * 4 I/O write timeout
  99. * 5 TurboChannel (ASIC)
  100. * 6 Halt Keycode from Access.Bus keyboard (CTRL-ALT-ENTER)
  101. * 7 FPU/R4k timer
  102. *
  103. * DS5000/2xx's, aka kn03, aka 3maxplus:
  104. *
  105. * MIPS IRQ Source
  106. * -------- ------
  107. * 0 Software (ignored)
  108. * 1 Software (ignored)
  109. * 2 System Board (ASIC)
  110. * 3 RTC
  111. * 4 Reserved
  112. * 5 Memory
  113. * 6 Halt Button
  114. * 7 FPU/R4k timer
  115. *
  116. * We handle the IRQ according to _our_ priority (see setup.c),
  117. * then we just return. If multiple IRQs are pending then we will
  118. * just take another exception, big deal.
  119. */
  120. .align 5
  121. NESTED(plat_irq_dispatch, PT_SIZE, ra)
  122. .set noreorder
  123. /*
  124. * Get pending Interrupts
  125. */
  126. mfc0 t0,CP0_CAUSE # get pending interrupts
  127. mfc0 t1,CP0_STATUS
  128. #ifdef CONFIG_32BIT
  129. lw t2,cpu_fpu_mask
  130. #endif
  131. andi t0,ST0_IM # CAUSE.CE may be non-zero!
  132. and t0,t1 # isolate allowed ones
  133. beqz t0,spurious
  134. #ifdef CONFIG_32BIT
  135. and t2,t0
  136. bnez t2,fpu # handle FPU immediately
  137. #endif
  138. /*
  139. * Find irq with highest priority
  140. */
  141. PTR_LA t1,cpu_mask_nr_tbl
  142. 1: lw t2,(t1)
  143. nop
  144. and t2,t0
  145. beqz t2,1b
  146. addu t1,2*PTRSIZE # delay slot
  147. /*
  148. * Do the low-level stuff
  149. */
  150. lw a0,(-PTRSIZE)(t1)
  151. nop
  152. bgez a0,handle_it # irq_nr >= 0?
  153. # irq_nr < 0: it is an address
  154. nop
  155. jr a0
  156. # a trick to save a branch:
  157. lui t2,(KN03_IOASIC_BASE>>16)&0xffff
  158. # upper part of IOASIC Address
  159. /*
  160. * Handle "IRQ Controller" Interrupts
  161. * Masked Interrupts are still visible and have to be masked "by hand".
  162. */
  163. FEXPORT(kn02_io_int) # 3max
  164. lui t0,(KN02_CSR_BASE>>16)&0xffff
  165. # get interrupt status and mask
  166. lw t0,(t0)
  167. nop
  168. andi t1,t0,KN02_IRQ_ALL
  169. b 1f
  170. srl t0,16 # shift interrupt mask
  171. FEXPORT(kn02xa_io_int) # 3min/maxine
  172. lui t2,(KN02XA_IOASIC_BASE>>16)&0xffff
  173. # upper part of IOASIC Address
  174. FEXPORT(kn03_io_int) # 3max+ (t2 loaded earlier)
  175. lw t0,IO_REG_SIR(t2) # get status: IOASIC sir
  176. lw t1,IO_REG_SIMR(t2) # get mask: IOASIC simr
  177. nop
  178. 1: and t0,t1 # mask out allowed ones
  179. beqz t0,spurious
  180. /*
  181. * Find irq with highest priority
  182. */
  183. PTR_LA t1,asic_mask_nr_tbl
  184. 2: lw t2,(t1)
  185. nop
  186. and t2,t0
  187. beq zero,t2,2b
  188. addu t1,2*PTRSIZE # delay slot
  189. /*
  190. * Do the low-level stuff
  191. */
  192. lw a0,%lo(-PTRSIZE)(t1)
  193. nop
  194. bgez a0,handle_it # irq_nr >= 0?
  195. # irq_nr < 0: it is an address
  196. nop
  197. jr a0
  198. nop # delay slot
  199. /*
  200. * Dispatch low-priority interrupts. We reconsider all status
  201. * bits again, which looks like a lose, but it makes the code
  202. * simple and O(log n), so it gets compensated.
  203. */
  204. FEXPORT(cpu_all_int) # HALT, timers, software junk
  205. li a0,DEC_CPU_IRQ_BASE
  206. srl t0,CAUSEB_IP
  207. li t1,CAUSEF_IP>>CAUSEB_IP # mask
  208. b 1f
  209. li t2,4 # nr of bits / 2
  210. FEXPORT(kn02_all_int) # impossible ?
  211. li a0,KN02_IRQ_BASE
  212. li t1,KN02_IRQ_ALL # mask
  213. b 1f
  214. li t2,4 # nr of bits / 2
  215. FEXPORT(asic_all_int) # various I/O ASIC junk
  216. li a0,IO_IRQ_BASE
  217. li t1,IO_IRQ_ALL # mask
  218. b 1f
  219. li t2,8 # nr of bits / 2
  220. /*
  221. * Dispatch DMA interrupts -- O(log n).
  222. */
  223. FEXPORT(asic_dma_int) # I/O ASIC DMA events
  224. li a0,IO_IRQ_BASE+IO_INR_DMA
  225. srl t0,IO_INR_DMA
  226. li t1,IO_IRQ_DMA>>IO_INR_DMA # mask
  227. li t2,8 # nr of bits / 2
  228. /*
  229. * Find irq with highest priority.
  230. * Highest irq number takes precedence.
  231. */
  232. 1: srlv t3,t1,t2
  233. 2: xor t1,t3
  234. and t3,t0,t1
  235. beqz t3,3f
  236. nop
  237. move t0,t3
  238. addu a0,t2
  239. 3: srl t2,1
  240. bnez t2,2b
  241. srlv t3,t1,t2
  242. handle_it:
  243. j dec_irq_dispatch
  244. nop
  245. #ifdef CONFIG_32BIT
  246. fpu:
  247. lw t0,fpu_kstat_irq
  248. nop
  249. lw t1,(t0)
  250. nop
  251. addu t1,1
  252. j handle_fpe_int
  253. sw t1,(t0)
  254. #endif
  255. spurious:
  256. j spurious_interrupt
  257. nop
  258. END(plat_irq_dispatch)
  259. /*
  260. * Generic unimplemented interrupt routines -- cpu_mask_nr_tbl
  261. * and asic_mask_nr_tbl are initialized to point all interrupts here.
  262. * The tables are then filled in by machine-specific initialisation
  263. * in dec_setup().
  264. */
  265. FEXPORT(dec_intr_unimplemented)
  266. move a1,t0 # cheats way of printing an arg!
  267. PANIC("Unimplemented cpu interrupt! CP0_CAUSE: 0x%08x");
  268. FEXPORT(asic_intr_unimplemented)
  269. move a1,t0 # cheats way of printing an arg!
  270. PANIC("Unimplemented asic interrupt! ASIC ISR: 0x%08x");