gettimeofday.S 6.4 KB

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  1. /*
  2. * Userland implementation of gettimeofday() for 32 bits processes in a
  3. * ppc64 kernel for use in the vDSO
  4. *
  5. * Copyright (C) 2004 Benjamin Herrenschmuidt (benh@kernel.crashing.org,
  6. * IBM Corp.
  7. *
  8. * This program is free software; you can redistribute it and/or
  9. * modify it under the terms of the GNU General Public License
  10. * as published by the Free Software Foundation; either version
  11. * 2 of the License, or (at your option) any later version.
  12. */
  13. #include <asm/processor.h>
  14. #include <asm/ppc_asm.h>
  15. #include <asm/vdso.h>
  16. #include <asm/asm-offsets.h>
  17. #include <asm/unistd.h>
  18. /* Offset for the low 32-bit part of a field of long type */
  19. #ifdef CONFIG_PPC64
  20. #define LOPART 4
  21. #define TSPEC_TV_SEC TSPC64_TV_SEC+LOPART
  22. #else
  23. #define LOPART 0
  24. #define TSPEC_TV_SEC TSPC32_TV_SEC
  25. #endif
  26. .text
  27. /*
  28. * Exact prototype of gettimeofday
  29. *
  30. * int __kernel_gettimeofday(struct timeval *tv, struct timezone *tz);
  31. *
  32. */
  33. V_FUNCTION_BEGIN(__kernel_gettimeofday)
  34. .cfi_startproc
  35. mflr r12
  36. .cfi_register lr,r12
  37. mr r10,r3 /* r10 saves tv */
  38. mr r11,r4 /* r11 saves tz */
  39. bl __get_datapage@local /* get data page */
  40. mr r9, r3 /* datapage ptr in r9 */
  41. cmplwi r10,0 /* check if tv is NULL */
  42. beq 3f
  43. lis r7,1000000@ha /* load up USEC_PER_SEC */
  44. addi r7,r7,1000000@l /* so we get microseconds in r4 */
  45. bl __do_get_tspec@local /* get sec/usec from tb & kernel */
  46. stw r3,TVAL32_TV_SEC(r10)
  47. stw r4,TVAL32_TV_USEC(r10)
  48. 3: cmplwi r11,0 /* check if tz is NULL */
  49. beq 1f
  50. lwz r4,CFG_TZ_MINUTEWEST(r9)/* fill tz */
  51. lwz r5,CFG_TZ_DSTTIME(r9)
  52. stw r4,TZONE_TZ_MINWEST(r11)
  53. stw r5,TZONE_TZ_DSTTIME(r11)
  54. 1: mtlr r12
  55. crclr cr0*4+so
  56. li r3,0
  57. blr
  58. .cfi_endproc
  59. V_FUNCTION_END(__kernel_gettimeofday)
  60. /*
  61. * Exact prototype of clock_gettime()
  62. *
  63. * int __kernel_clock_gettime(clockid_t clock_id, struct timespec *tp);
  64. *
  65. */
  66. V_FUNCTION_BEGIN(__kernel_clock_gettime)
  67. .cfi_startproc
  68. /* Check for supported clock IDs */
  69. cmpli cr0,r3,CLOCK_REALTIME
  70. cmpli cr1,r3,CLOCK_MONOTONIC
  71. cror cr0*4+eq,cr0*4+eq,cr1*4+eq
  72. bne cr0,99f
  73. mflr r12 /* r12 saves lr */
  74. .cfi_register lr,r12
  75. mr r11,r4 /* r11 saves tp */
  76. bl __get_datapage@local /* get data page */
  77. mr r9,r3 /* datapage ptr in r9 */
  78. lis r7,NSEC_PER_SEC@h /* want nanoseconds */
  79. ori r7,r7,NSEC_PER_SEC@l
  80. 50: bl __do_get_tspec@local /* get sec/nsec from tb & kernel */
  81. bne cr1,80f /* not monotonic -> all done */
  82. /*
  83. * CLOCK_MONOTONIC
  84. */
  85. /* now we must fixup using wall to monotonic. We need to snapshot
  86. * that value and do the counter trick again. Fortunately, we still
  87. * have the counter value in r8 that was returned by __do_get_xsec.
  88. * At this point, r3,r4 contain our sec/nsec values, r5 and r6
  89. * can be used, r7 contains NSEC_PER_SEC.
  90. */
  91. lwz r5,WTOM_CLOCK_SEC(r9)
  92. lwz r6,WTOM_CLOCK_NSEC(r9)
  93. /* We now have our offset in r5,r6. We create a fake dependency
  94. * on that value and re-check the counter
  95. */
  96. or r0,r6,r5
  97. xor r0,r0,r0
  98. add r9,r9,r0
  99. lwz r0,(CFG_TB_UPDATE_COUNT+LOPART)(r9)
  100. cmpl cr0,r8,r0 /* check if updated */
  101. bne- 50b
  102. /* Calculate and store result. Note that this mimics the C code,
  103. * which may cause funny results if nsec goes negative... is that
  104. * possible at all ?
  105. */
  106. add r3,r3,r5
  107. add r4,r4,r6
  108. cmpw cr0,r4,r7
  109. cmpwi cr1,r4,0
  110. blt 1f
  111. subf r4,r7,r4
  112. addi r3,r3,1
  113. 1: bge cr1,80f
  114. addi r3,r3,-1
  115. add r4,r4,r7
  116. 80: stw r3,TSPC32_TV_SEC(r11)
  117. stw r4,TSPC32_TV_NSEC(r11)
  118. mtlr r12
  119. crclr cr0*4+so
  120. li r3,0
  121. blr
  122. /*
  123. * syscall fallback
  124. */
  125. 99:
  126. li r0,__NR_clock_gettime
  127. sc
  128. blr
  129. .cfi_endproc
  130. V_FUNCTION_END(__kernel_clock_gettime)
  131. /*
  132. * Exact prototype of clock_getres()
  133. *
  134. * int __kernel_clock_getres(clockid_t clock_id, struct timespec *res);
  135. *
  136. */
  137. V_FUNCTION_BEGIN(__kernel_clock_getres)
  138. .cfi_startproc
  139. /* Check for supported clock IDs */
  140. cmpwi cr0,r3,CLOCK_REALTIME
  141. cmpwi cr1,r3,CLOCK_MONOTONIC
  142. cror cr0*4+eq,cr0*4+eq,cr1*4+eq
  143. bne cr0,99f
  144. li r3,0
  145. cmpli cr0,r4,0
  146. crclr cr0*4+so
  147. beqlr
  148. lis r5,CLOCK_REALTIME_RES@h
  149. ori r5,r5,CLOCK_REALTIME_RES@l
  150. stw r3,TSPC32_TV_SEC(r4)
  151. stw r5,TSPC32_TV_NSEC(r4)
  152. blr
  153. /*
  154. * syscall fallback
  155. */
  156. 99:
  157. li r0,__NR_clock_getres
  158. sc
  159. blr
  160. .cfi_endproc
  161. V_FUNCTION_END(__kernel_clock_getres)
  162. /*
  163. * This is the core of clock_gettime() and gettimeofday(),
  164. * it returns the current time in r3 (seconds) and r4.
  165. * On entry, r7 gives the resolution of r4, either USEC_PER_SEC
  166. * or NSEC_PER_SEC, giving r4 in microseconds or nanoseconds.
  167. * It expects the datapage ptr in r9 and doesn't clobber it.
  168. * It clobbers r0, r5 and r6.
  169. * On return, r8 contains the counter value that can be reused.
  170. * This clobbers cr0 but not any other cr field.
  171. */
  172. __do_get_tspec:
  173. .cfi_startproc
  174. /* Check for update count & load values. We use the low
  175. * order 32 bits of the update count
  176. */
  177. 1: lwz r8,(CFG_TB_UPDATE_COUNT+LOPART)(r9)
  178. andi. r0,r8,1 /* pending update ? loop */
  179. bne- 1b
  180. xor r0,r8,r8 /* create dependency */
  181. add r9,r9,r0
  182. /* Load orig stamp (offset to TB) */
  183. lwz r5,CFG_TB_ORIG_STAMP(r9)
  184. lwz r6,(CFG_TB_ORIG_STAMP+4)(r9)
  185. /* Get a stable TB value */
  186. 2: mftbu r3
  187. mftbl r4
  188. mftbu r0
  189. cmplw cr0,r3,r0
  190. bne- 2b
  191. /* Subtract tb orig stamp and shift left 12 bits.
  192. */
  193. subfc r4,r6,r4
  194. subfe r0,r5,r3
  195. slwi r0,r0,12
  196. rlwimi. r0,r4,12,20,31
  197. slwi r4,r4,12
  198. /*
  199. * Load scale factor & do multiplication.
  200. * We only use the high 32 bits of the tb_to_xs value.
  201. * Even with a 1GHz timebase clock, the high 32 bits of
  202. * tb_to_xs will be at least 4 million, so the error from
  203. * ignoring the low 32 bits will be no more than 0.25ppm.
  204. * The error will just make the clock run very very slightly
  205. * slow until the next time the kernel updates the VDSO data,
  206. * at which point the clock will catch up to the kernel's value,
  207. * so there is no long-term error accumulation.
  208. */
  209. lwz r5,CFG_TB_TO_XS(r9) /* load values */
  210. mulhwu r4,r4,r5
  211. li r3,0
  212. beq+ 4f /* skip high part computation if 0 */
  213. mulhwu r3,r0,r5
  214. mullw r5,r0,r5
  215. addc r4,r4,r5
  216. addze r3,r3
  217. 4:
  218. /* At this point, we have seconds since the xtime stamp
  219. * as a 32.32 fixed-point number in r3 and r4.
  220. * Load & add the xtime stamp.
  221. */
  222. lwz r5,STAMP_XTIME+TSPEC_TV_SEC(r9)
  223. lwz r6,STAMP_SEC_FRAC(r9)
  224. addc r4,r4,r6
  225. adde r3,r3,r5
  226. /* We create a fake dependency on the result in r3/r4
  227. * and re-check the counter
  228. */
  229. or r6,r4,r3
  230. xor r0,r6,r6
  231. add r9,r9,r0
  232. lwz r0,(CFG_TB_UPDATE_COUNT+LOPART)(r9)
  233. cmplw cr0,r8,r0 /* check if updated */
  234. bne- 1b
  235. mulhwu r4,r4,r7 /* convert to micro or nanoseconds */
  236. blr
  237. .cfi_endproc