ncpucnv.pas 10 KB

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  1. {
  2. Copyright (c) 1998-2002 by Florian Klaempfl and David Zhang
  3. Generate MIPSEL assembler for type converting nodes
  4. This program is free software; you can redistribute it and/or modify
  5. it under the terms of the GNU General Public License as published by
  6. the Free Software Foundation; either version 2 of the License, or
  7. (at your option) any later version.
  8. This program is distributed in the hope that it will be useful,
  9. but WITHOUT ANY WARRANTY; without even the implied warranty of
  10. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  11. GNU General Public License for more details.
  12. You should have received a copy of the GNU General Public License
  13. along with this program; if not, write to the Free Software
  14. Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  15. ****************************************************************************}
  16. unit ncpucnv;
  17. {$i fpcdefs.inc}
  18. interface
  19. uses
  20. node, ncnv, ncgcnv, defcmp;
  21. type
  22. tMIPSELtypeconvnode = class(TCgTypeConvNode)
  23. protected
  24. { procedure second_int_to_int;override; }
  25. { procedure second_string_to_string;override; }
  26. { procedure second_cstring_to_pchar;override; }
  27. { procedure second_string_to_chararray;override; }
  28. { procedure second_array_to_pointer;override; }
  29. function first_int_to_real: tnode; override;
  30. { procedure second_pointer_to_array;override; }
  31. { procedure second_chararray_to_string;override; }
  32. { procedure second_char_to_string;override; }
  33. procedure second_int_to_real; override;
  34. procedure second_real_to_real; override;
  35. { procedure second_cord_to_pointer;override; }
  36. { procedure second_proc_to_procvar;override; }
  37. { procedure second_bool_to_int;override; }
  38. procedure second_int_to_bool; override;
  39. { procedure second_load_smallset;override; }
  40. { procedure second_ansistring_to_pchar;override; }
  41. { procedure second_pchar_to_string;override; }
  42. { procedure second_class_to_intf;override; }
  43. { procedure second_char_to_char;override; }
  44. end;
  45. implementation
  46. uses
  47. verbose, globtype, globals, systems,
  48. symconst, symdef, aasmbase, aasmtai, aasmdata,
  49. defutil,
  50. cgbase, cgutils, pass_1, pass_2, procinfo,
  51. ncon, ncal,
  52. ncgutil,
  53. cpubase, aasmcpu,
  54. tgobj, cgobj,
  55. hlcgobj;
  56. {*****************************************************************************
  57. FirstTypeConv
  58. *****************************************************************************}
  59. function tMIPSELtypeconvnode.first_int_to_real: tnode;
  60. var
  61. fname: string[19];
  62. begin
  63. { converting a 64bit integer to a float requires a helper }
  64. if is_64bitint(left.resultdef) or
  65. is_currency(left.resultdef) then
  66. begin
  67. { hack to avoid double division by 10000, as it's
  68. already done by resulttypepass.resulttype_int_to_real }
  69. if is_currency(left.resultdef) then
  70. left.resultdef := s64inttype;
  71. if is_signed(left.resultdef) then
  72. fname := 'fpc_int64_to_double'
  73. else
  74. fname := 'fpc_qword_to_double';
  75. Result := ccallnode.createintern(fname, ccallparanode.Create(
  76. left, nil));
  77. left := nil;
  78. firstpass(Result);
  79. exit;
  80. end
  81. else
  82. { other integers are supposed to be 32 bit }
  83. begin
  84. if is_signed(left.resultdef) then
  85. inserttypeconv(left, s32inttype)
  86. else
  87. inserttypeconv(left, u32inttype);
  88. firstpass(left);
  89. end;
  90. Result := nil;
  91. expectloc := LOC_FPUREGISTER;
  92. end;
  93. {*****************************************************************************
  94. SecondTypeConv
  95. *****************************************************************************}
  96. procedure tMIPSELtypeconvnode.second_int_to_real;
  97. procedure loadsigned;
  98. begin
  99. hlcg.location_force_mem(current_asmdata.CurrAsmList, left.location, left.resultdef);
  100. location.Register := cg.getfpuregister(current_asmdata.CurrAsmList, location.size);
  101. { Load memory in fpu register }
  102. cg.a_loadfpu_ref_reg(current_asmdata.CurrAsmList, OS_F32, OS_F32, left.location.reference, location.Register);
  103. tg.ungetiftemp(current_asmdata.CurrAsmList, left.location.reference);
  104. { Convert value in fpu register from integer to float }
  105. case tfloatdef(resultdef).floattype of
  106. s32real:
  107. current_asmdata.CurrAsmList.concat(taicpu.op_reg_reg(A_CVT_S_W, location.Register, location.Register));
  108. s64real:
  109. current_asmdata.CurrAsmList.concat(taicpu.op_reg_reg(A_CVT_D_W, location.Register, location.Register));
  110. else
  111. internalerror(200408011);
  112. end;
  113. end;
  114. var
  115. href: treference;
  116. hregister: tregister;
  117. l1, l2: tasmlabel;
  118. begin
  119. location_reset(location, LOC_FPUREGISTER, def_cgsize(resultdef));
  120. if is_signed(left.resultdef) then
  121. loadsigned
  122. else
  123. begin
  124. current_asmdata.getdatalabel(l1);
  125. current_asmdata.getjumplabel(l2);
  126. reference_reset_symbol(href, l1, 0, sizeof(aint));
  127. hregister := cg.getintregister(current_asmdata.CurrAsmList, OS_32);
  128. hlcg.a_load_loc_reg(current_asmdata.CurrAsmList, left.resultdef, u32inttype, left.location, hregister);
  129. loadsigned;
  130. current_asmdata.CurrAsmList.concat(Taicpu.op_reg_reg_sym(A_BGE, hregister, NR_R0, l2));
  131. case tfloatdef(resultdef).floattype of
  132. { converting dword to s64real first and cut off at the end avoids precision loss }
  133. s32real,
  134. s64real:
  135. begin
  136. hregister := cg.getfpuregister(current_asmdata.CurrAsmList, OS_F64);
  137. new_section(current_asmdata.asmlists[al_typedconsts],sec_rodata_norel,l1.name,const_align(8));
  138. current_asmdata.asmlists[al_typedconsts].concat(Tai_label.Create(l1));
  139. { I got this constant from a test program (FK) }
  140. current_asmdata.asmlists[al_typedconsts].concat(Tai_const.Create_32bit(0));
  141. current_asmdata.asmlists[al_typedconsts].concat(Tai_const.Create_32bit($0000f041));
  142. cg.a_loadfpu_ref_reg(current_asmdata.CurrAsmList, OS_F64, OS_F64, href, hregister);
  143. current_asmdata.CurrAsmList.concat(taicpu.op_reg_reg_reg(A_ADD_D, location.Register, hregister, location.Register));
  144. cg.a_label(current_asmdata.CurrAsmList, l2);
  145. { cut off if we should convert to single }
  146. if tfloatdef(resultdef).floattype = s32real then
  147. begin
  148. hregister := location.Register;
  149. location.Register := cg.getfpuregister(current_asmdata.CurrAsmList, location.size);
  150. current_asmdata.CurrAsmList.concat(taicpu.op_reg_reg(A_CVT_S_D, location.Register, hregister));
  151. end;
  152. end;
  153. else
  154. internalerror(200410031);
  155. end;
  156. end;
  157. end;
  158. procedure tMIPSELtypeconvnode.second_real_to_real;
  159. const
  160. conv_op: array[tfloattype, tfloattype] of tasmop = (
  161. { from: s32 s64 s80 sc80 c64 cur f128 }
  162. { s32 } (A_MOV_S, A_CVT_S_D, A_NONE, A_NONE, A_NONE, A_NONE, A_NONE),
  163. { s64 } (A_CVT_D_S, A_MOV_D, A_NONE, A_NONE, A_NONE, A_NONE, A_NONE),
  164. { s80 } (A_NONE, A_NONE, A_NONE, A_NONE, A_NONE, A_NONE, A_NONE),
  165. { sc80 } (A_NONE, A_NONE, A_NONE, A_NONE, A_NONE, A_NONE, A_NONE),
  166. { c64 } (A_NONE, A_NONE, A_NONE, A_NONE, A_NONE, A_NONE, A_NONE),
  167. { cur } (A_NONE, A_NONE, A_NONE, A_NONE, A_NONE, A_NONE, A_NONE),
  168. { f128 } (A_NONE, A_NONE, A_NONE, A_NONE, A_NONE, A_NONE, A_NONE)
  169. );
  170. var
  171. op: tasmop;
  172. begin
  173. location_reset(location, LOC_FPUREGISTER, def_cgsize(resultdef));
  174. location_force_fpureg(current_asmdata.CurrAsmList, left.location, False);
  175. { Convert value in fpu register from integer to float }
  176. op := conv_op[tfloatdef(resultdef).floattype, tfloatdef(left.resultdef).floattype];
  177. if op = A_NONE then
  178. internalerror(200401121);
  179. location.Register := cg.getfpuregister(current_asmdata.CurrAsmList, location.size);
  180. current_asmdata.CurrAsmList.concat(taicpu.op_reg_reg(op, location.Register, left.location.Register));
  181. end;
  182. procedure tMIPSELtypeconvnode.second_int_to_bool;
  183. var
  184. hreg1, hreg2: tregister;
  185. opsize: tcgsize;
  186. hlabel, oldtruelabel, oldfalselabel: tasmlabel;
  187. begin
  188. oldtruelabel := current_procinfo.CurrTrueLabel;
  189. oldfalselabel := current_procinfo.CurrFalseLabel;
  190. current_asmdata.getjumplabel(current_procinfo.CurrTrueLabel);
  191. current_asmdata.getjumplabel(current_procinfo.CurrFalseLabel);
  192. secondpass(left);
  193. if codegenerror then
  194. exit;
  195. { byte(boolean) or word(wordbool) or longint(longbool) must }
  196. { be accepted for var parameters }
  197. if (nf_explicit in flags) and
  198. (left.resultdef.size = resultdef.size) and
  199. (left.location.loc in [LOC_REFERENCE, LOC_CREFERENCE, LOC_CREGISTER]) then
  200. begin
  201. location_copy(location, left.location);
  202. current_procinfo.CurrTrueLabel := oldtruelabel;
  203. current_procinfo.CurrFalseLabel := oldfalselabel;
  204. exit;
  205. end;
  206. location_reset(location, LOC_REGISTER, def_cgsize(resultdef));
  207. opsize := def_cgsize(left.resultdef);
  208. case left.location.loc of
  209. LOC_CREFERENCE, LOC_REFERENCE, LOC_REGISTER, LOC_CREGISTER:
  210. begin
  211. if left.location.loc in [LOC_CREFERENCE, LOC_REFERENCE] then
  212. begin
  213. hreg2 := cg.getintregister(current_asmdata.CurrAsmList, opsize);
  214. cg.a_load_ref_reg(current_asmdata.CurrAsmList, opsize, opsize, left.location.reference, hreg2);
  215. end
  216. else
  217. hreg2 := left.location.Register;
  218. {$ifndef cpu64bit}
  219. if left.location.size in [OS_64, OS_S64] then
  220. begin
  221. hreg1 := cg.getintregister(current_asmdata.CurrAsmList, OS_32);
  222. cg.a_op_reg_reg_reg(current_asmdata.CurrAsmList, OP_OR, OS_32, hreg2, tregister(succ(longint(hreg2))), hreg1);
  223. hreg2 := hreg1;
  224. opsize := OS_32;
  225. end;
  226. {$endif cpu64bit}
  227. hreg1 := cg.getintregister(current_asmdata.CurrAsmList, opsize);
  228. current_asmdata.CurrAsmList.concat(taicpu.op_reg_reg_reg(A_SNE, hreg1, hreg2, NR_R0));
  229. end;
  230. LOC_JUMP:
  231. begin
  232. hreg1 := cg.getintregister(current_asmdata.CurrAsmList, OS_INT);
  233. current_asmdata.getjumplabel(hlabel);
  234. cg.a_label(current_asmdata.CurrAsmList, current_procinfo.CurrTrueLabel);
  235. cg.a_load_const_reg(current_asmdata.CurrAsmList, OS_INT, 1, hreg1);
  236. cg.a_jmp_always(current_asmdata.CurrAsmList, hlabel);
  237. cg.a_label(current_asmdata.CurrAsmList, current_procinfo.CurrFalseLabel);
  238. cg.a_load_const_reg(current_asmdata.CurrAsmList, OS_INT, 0, hreg1);
  239. cg.a_label(current_asmdata.CurrAsmList, hlabel);
  240. end;
  241. else
  242. internalerror(10062);
  243. end;
  244. location.Register := hreg1;
  245. if location.size in [OS_64, OS_S64] then
  246. internalerror(200408241);
  247. current_procinfo.CurrTrueLabel := oldtruelabel;
  248. current_procinfo.CurrFalseLabel := oldfalselabel;
  249. end;
  250. begin
  251. ctypeconvnode := tMIPSELtypeconvnode;
  252. end.