sljitNativeSPARC_32.c 11 KB

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  1. /*
  2. * Stack-less Just-In-Time compiler
  3. *
  4. * Copyright Zoltan Herczeg (hzmester@freemail.hu). All rights reserved.
  5. *
  6. * Redistribution and use in source and binary forms, with or without modification, are
  7. * permitted provided that the following conditions are met:
  8. *
  9. * 1. Redistributions of source code must retain the above copyright notice, this list of
  10. * conditions and the following disclaimer.
  11. *
  12. * 2. Redistributions in binary form must reproduce the above copyright notice, this list
  13. * of conditions and the following disclaimer in the documentation and/or other materials
  14. * provided with the distribution.
  15. *
  16. * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDER(S) AND CONTRIBUTORS ``AS IS'' AND ANY
  17. * EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
  18. * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT
  19. * SHALL THE COPYRIGHT HOLDER(S) OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT,
  20. * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED
  21. * TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR
  22. * BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
  23. * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN
  24. * ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
  25. */
  26. static sljit_s32 load_immediate(struct sljit_compiler *compiler, sljit_s32 dst, sljit_sw imm)
  27. {
  28. if (imm <= SIMM_MAX && imm >= SIMM_MIN)
  29. return push_inst(compiler, OR | D(dst) | S1(0) | IMM(imm), DR(dst));
  30. FAIL_IF(push_inst(compiler, SETHI | D(dst) | ((imm >> 10) & 0x3fffff), DR(dst)));
  31. return (imm & 0x3ff) ? push_inst(compiler, OR | D(dst) | S1(dst) | IMM_ARG | (imm & 0x3ff), DR(dst)) : SLJIT_SUCCESS;
  32. }
  33. #define ARG2(flags, src2) ((flags & SRC2_IMM) ? IMM(src2) : S2(src2))
  34. static SLJIT_INLINE sljit_s32 emit_single_op(struct sljit_compiler *compiler, sljit_s32 op, sljit_s32 flags,
  35. sljit_s32 dst, sljit_s32 src1, sljit_sw src2)
  36. {
  37. SLJIT_COMPILE_ASSERT(ICC_IS_SET == SET_FLAGS, icc_is_set_and_set_flags_must_be_the_same);
  38. switch (op) {
  39. case SLJIT_MOV:
  40. case SLJIT_MOV_U32:
  41. case SLJIT_MOV_S32:
  42. case SLJIT_MOV_P:
  43. SLJIT_ASSERT(src1 == TMP_REG1 && !(flags & SRC2_IMM));
  44. if (dst != src2)
  45. return push_inst(compiler, OR | D(dst) | S1(0) | S2(src2), DR(dst));
  46. return SLJIT_SUCCESS;
  47. case SLJIT_MOV_U8:
  48. case SLJIT_MOV_S8:
  49. SLJIT_ASSERT(src1 == TMP_REG1 && !(flags & SRC2_IMM));
  50. if ((flags & (REG_DEST | REG2_SOURCE)) == (REG_DEST | REG2_SOURCE)) {
  51. if (op == SLJIT_MOV_U8)
  52. return push_inst(compiler, AND | D(dst) | S1(src2) | IMM(0xff), DR(dst));
  53. FAIL_IF(push_inst(compiler, SLL | D(dst) | S1(src2) | IMM(24), DR(dst)));
  54. return push_inst(compiler, SRA | D(dst) | S1(dst) | IMM(24), DR(dst));
  55. }
  56. else if (dst != src2)
  57. SLJIT_UNREACHABLE();
  58. return SLJIT_SUCCESS;
  59. case SLJIT_MOV_U16:
  60. case SLJIT_MOV_S16:
  61. SLJIT_ASSERT(src1 == TMP_REG1 && !(flags & SRC2_IMM));
  62. if ((flags & (REG_DEST | REG2_SOURCE)) == (REG_DEST | REG2_SOURCE)) {
  63. FAIL_IF(push_inst(compiler, SLL | D(dst) | S1(src2) | IMM(16), DR(dst)));
  64. return push_inst(compiler, (op == SLJIT_MOV_S16 ? SRA : SRL) | D(dst) | S1(dst) | IMM(16), DR(dst));
  65. }
  66. else if (dst != src2)
  67. SLJIT_UNREACHABLE();
  68. return SLJIT_SUCCESS;
  69. case SLJIT_NOT:
  70. SLJIT_ASSERT(src1 == TMP_REG1 && !(flags & SRC2_IMM));
  71. return push_inst(compiler, XNOR | (flags & SET_FLAGS) | D(dst) | S1(0) | S2(src2), DR(dst) | (flags & SET_FLAGS));
  72. case SLJIT_CLZ:
  73. SLJIT_ASSERT(src1 == TMP_REG1 && !(flags & SRC2_IMM));
  74. FAIL_IF(push_inst(compiler, SUB | SET_FLAGS | D(0) | S1(src2) | S2(0), SET_FLAGS));
  75. FAIL_IF(push_inst(compiler, OR | D(TMP_REG1) | S1(0) | S2(src2), DR(TMP_REG1)));
  76. FAIL_IF(push_inst(compiler, BICC | DA(0x1) | (7 & DISP_MASK), UNMOVABLE_INS));
  77. FAIL_IF(push_inst(compiler, OR | D(dst) | S1(0) | IMM(32), UNMOVABLE_INS));
  78. FAIL_IF(push_inst(compiler, OR | D(dst) | S1(0) | IMM(-1), DR(dst)));
  79. /* Loop. */
  80. FAIL_IF(push_inst(compiler, SUB | SET_FLAGS | D(0) | S1(TMP_REG1) | S2(0), SET_FLAGS));
  81. FAIL_IF(push_inst(compiler, SLL | D(TMP_REG1) | S1(TMP_REG1) | IMM(1), DR(TMP_REG1)));
  82. FAIL_IF(push_inst(compiler, BICC | DA(0xe) | (-2 & DISP_MASK), UNMOVABLE_INS));
  83. return push_inst(compiler, ADD | D(dst) | S1(dst) | IMM(1), UNMOVABLE_INS);
  84. case SLJIT_ADD:
  85. compiler->status_flags_state = SLJIT_CURRENT_FLAGS_ADD_SUB;
  86. return push_inst(compiler, ADD | (flags & SET_FLAGS) | D(dst) | S1(src1) | ARG2(flags, src2), DR(dst) | (flags & SET_FLAGS));
  87. case SLJIT_ADDC:
  88. return push_inst(compiler, ADDC | (flags & SET_FLAGS) | D(dst) | S1(src1) | ARG2(flags, src2), DR(dst) | (flags & SET_FLAGS));
  89. case SLJIT_SUB:
  90. compiler->status_flags_state = SLJIT_CURRENT_FLAGS_ADD_SUB;
  91. return push_inst(compiler, SUB | (flags & SET_FLAGS) | D(dst) | S1(src1) | ARG2(flags, src2), DR(dst) | (flags & SET_FLAGS));
  92. case SLJIT_SUBC:
  93. return push_inst(compiler, SUBC | (flags & SET_FLAGS) | D(dst) | S1(src1) | ARG2(flags, src2), DR(dst) | (flags & SET_FLAGS));
  94. case SLJIT_MUL:
  95. compiler->status_flags_state = 0;
  96. FAIL_IF(push_inst(compiler, SMUL | D(dst) | S1(src1) | ARG2(flags, src2), DR(dst)));
  97. if (!(flags & SET_FLAGS))
  98. return SLJIT_SUCCESS;
  99. FAIL_IF(push_inst(compiler, SRA | D(TMP_REG1) | S1(dst) | IMM(31), DR(TMP_REG1)));
  100. FAIL_IF(push_inst(compiler, RDY | D(TMP_LINK), DR(TMP_LINK)));
  101. return push_inst(compiler, SUB | SET_FLAGS | D(0) | S1(TMP_REG1) | S2(TMP_LINK), MOVABLE_INS | SET_FLAGS);
  102. case SLJIT_AND:
  103. return push_inst(compiler, AND | (flags & SET_FLAGS) | D(dst) | S1(src1) | ARG2(flags, src2), DR(dst) | (flags & SET_FLAGS));
  104. case SLJIT_OR:
  105. return push_inst(compiler, OR | (flags & SET_FLAGS) | D(dst) | S1(src1) | ARG2(flags, src2), DR(dst) | (flags & SET_FLAGS));
  106. case SLJIT_XOR:
  107. return push_inst(compiler, XOR | (flags & SET_FLAGS) | D(dst) | S1(src1) | ARG2(flags, src2), DR(dst) | (flags & SET_FLAGS));
  108. case SLJIT_SHL:
  109. FAIL_IF(push_inst(compiler, SLL | D(dst) | S1(src1) | ARG2(flags, src2), DR(dst)));
  110. return !(flags & SET_FLAGS) ? SLJIT_SUCCESS : push_inst(compiler, SUB | SET_FLAGS | D(0) | S1(dst) | S2(0), SET_FLAGS);
  111. case SLJIT_LSHR:
  112. FAIL_IF(push_inst(compiler, SRL | D(dst) | S1(src1) | ARG2(flags, src2), DR(dst)));
  113. return !(flags & SET_FLAGS) ? SLJIT_SUCCESS : push_inst(compiler, SUB | SET_FLAGS | D(0) | S1(dst) | S2(0), SET_FLAGS);
  114. case SLJIT_ASHR:
  115. FAIL_IF(push_inst(compiler, SRA | D(dst) | S1(src1) | ARG2(flags, src2), DR(dst)));
  116. return !(flags & SET_FLAGS) ? SLJIT_SUCCESS : push_inst(compiler, SUB | SET_FLAGS | D(0) | S1(dst) | S2(0), SET_FLAGS);
  117. }
  118. SLJIT_UNREACHABLE();
  119. return SLJIT_SUCCESS;
  120. }
  121. static sljit_s32 call_with_args(struct sljit_compiler *compiler, sljit_s32 arg_types, sljit_s32 *src)
  122. {
  123. sljit_s32 reg_index = 8;
  124. sljit_s32 word_reg_index = 8;
  125. sljit_s32 float_arg_index = 1;
  126. sljit_s32 double_arg_count = 0;
  127. sljit_s32 float_offset = (16 + 6) * sizeof(sljit_sw);
  128. sljit_s32 types = 0;
  129. sljit_s32 reg = 0;
  130. sljit_s32 move_to_tmp2 = 0;
  131. if (src)
  132. reg = reg_map[*src & REG_MASK];
  133. arg_types >>= SLJIT_DEF_SHIFT;
  134. while (arg_types) {
  135. types = (types << SLJIT_DEF_SHIFT) | (arg_types & SLJIT_DEF_MASK);
  136. switch (arg_types & SLJIT_DEF_MASK) {
  137. case SLJIT_ARG_TYPE_F32:
  138. float_arg_index++;
  139. if (reg_index == reg)
  140. move_to_tmp2 = 1;
  141. reg_index++;
  142. break;
  143. case SLJIT_ARG_TYPE_F64:
  144. float_arg_index++;
  145. double_arg_count++;
  146. if (reg_index == reg || reg_index + 1 == reg)
  147. move_to_tmp2 = 1;
  148. reg_index += 2;
  149. break;
  150. default:
  151. if (reg_index != word_reg_index && reg_index < 14 && reg_index == reg)
  152. move_to_tmp2 = 1;
  153. reg_index++;
  154. word_reg_index++;
  155. break;
  156. }
  157. if (move_to_tmp2) {
  158. move_to_tmp2 = 0;
  159. if (reg < 14)
  160. FAIL_IF(push_inst(compiler, OR | D(TMP_REG1) | S1(0) | S2A(reg), DR(TMP_REG1)));
  161. *src = TMP_REG1;
  162. }
  163. arg_types >>= SLJIT_DEF_SHIFT;
  164. }
  165. arg_types = types;
  166. while (arg_types) {
  167. switch (arg_types & SLJIT_DEF_MASK) {
  168. case SLJIT_ARG_TYPE_F32:
  169. float_arg_index--;
  170. FAIL_IF(push_inst(compiler, STF | FD(float_arg_index) | S1(SLJIT_SP) | IMM(float_offset), MOVABLE_INS));
  171. float_offset -= sizeof(sljit_f64);
  172. break;
  173. case SLJIT_ARG_TYPE_F64:
  174. float_arg_index--;
  175. if (float_arg_index == 4 && double_arg_count == 4) {
  176. FAIL_IF(push_inst(compiler, STF | FD(float_arg_index) | S1(SLJIT_SP) | IMM((16 + 7) * sizeof(sljit_sw)), MOVABLE_INS));
  177. FAIL_IF(push_inst(compiler, STF | FD(float_arg_index) | (1 << 25) | S1(SLJIT_SP) | IMM((16 + 8) * sizeof(sljit_sw)), MOVABLE_INS));
  178. }
  179. else
  180. FAIL_IF(push_inst(compiler, STDF | FD(float_arg_index) | S1(SLJIT_SP) | IMM(float_offset), MOVABLE_INS));
  181. float_offset -= sizeof(sljit_f64);
  182. break;
  183. default:
  184. break;
  185. }
  186. arg_types >>= SLJIT_DEF_SHIFT;
  187. }
  188. float_offset = (16 + 6) * sizeof(sljit_sw);
  189. while (types) {
  190. switch (types & SLJIT_DEF_MASK) {
  191. case SLJIT_ARG_TYPE_F32:
  192. reg_index--;
  193. if (reg_index < 14)
  194. FAIL_IF(push_inst(compiler, LDUW | DA(reg_index) | S1(SLJIT_SP) | IMM(float_offset), reg_index));
  195. float_offset -= sizeof(sljit_f64);
  196. break;
  197. case SLJIT_ARG_TYPE_F64:
  198. reg_index -= 2;
  199. if (reg_index < 14) {
  200. if ((reg_index & 0x1) != 0) {
  201. FAIL_IF(push_inst(compiler, LDUW | DA(reg_index) | S1(SLJIT_SP) | IMM(float_offset), reg_index));
  202. if (reg_index < 13)
  203. FAIL_IF(push_inst(compiler, LDUW | DA(reg_index + 1) | S1(SLJIT_SP) | IMM(float_offset + sizeof(sljit_sw)), reg_index + 1));
  204. }
  205. else
  206. FAIL_IF(push_inst(compiler, LDD | DA(reg_index) | S1(SLJIT_SP) | IMM(float_offset), reg_index));
  207. }
  208. float_offset -= sizeof(sljit_f64);
  209. break;
  210. default:
  211. reg_index--;
  212. word_reg_index--;
  213. if (reg_index != word_reg_index) {
  214. if (reg_index < 14)
  215. FAIL_IF(push_inst(compiler, OR | DA(reg_index) | S1(0) | S2A(word_reg_index), reg_index));
  216. else
  217. FAIL_IF(push_inst(compiler, STW | DA(word_reg_index) | S1(SLJIT_SP) | IMM(92), word_reg_index));
  218. }
  219. break;
  220. }
  221. types >>= SLJIT_DEF_SHIFT;
  222. }
  223. return SLJIT_SUCCESS;
  224. }
  225. static SLJIT_INLINE sljit_s32 emit_const(struct sljit_compiler *compiler, sljit_s32 dst, sljit_sw init_value)
  226. {
  227. FAIL_IF(push_inst(compiler, SETHI | D(dst) | ((init_value >> 10) & 0x3fffff), DR(dst)));
  228. return push_inst(compiler, OR | D(dst) | S1(dst) | IMM_ARG | (init_value & 0x3ff), DR(dst));
  229. }
  230. SLJIT_API_FUNC_ATTRIBUTE void sljit_set_jump_addr(sljit_uw addr, sljit_uw new_target, sljit_sw executable_offset)
  231. {
  232. sljit_ins *inst = (sljit_ins *)addr;
  233. SLJIT_UNUSED_ARG(executable_offset);
  234. SLJIT_UPDATE_WX_FLAGS(inst, inst + 2, 0);
  235. SLJIT_ASSERT(((inst[0] & 0xc1c00000) == 0x01000000) && ((inst[1] & 0xc1f82000) == 0x80102000));
  236. inst[0] = (inst[0] & 0xffc00000) | ((new_target >> 10) & 0x3fffff);
  237. inst[1] = (inst[1] & 0xfffffc00) | (new_target & 0x3ff);
  238. SLJIT_UPDATE_WX_FLAGS(inst, inst + 2, 1);
  239. inst = (sljit_ins *)SLJIT_ADD_EXEC_OFFSET(inst, executable_offset);
  240. SLJIT_CACHE_FLUSH(inst, inst + 2);
  241. }
  242. SLJIT_API_FUNC_ATTRIBUTE void sljit_set_const(sljit_uw addr, sljit_sw new_constant, sljit_sw executable_offset)
  243. {
  244. sljit_set_jump_addr(addr, new_constant, executable_offset);
  245. }