hlcgcpu.pas 104 KB

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  1. {
  2. Copyright (c) 1998-2010 by Florian Klaempfl and Jonas Maebe
  3. Member of the Free Pascal development team
  4. This unit implements the WebAssembly high level code generator
  5. This program is free software; you can redistribute it and/or modify
  6. it under the terms of the GNU General Public License as published by
  7. the Free Software Foundation; either version 2 of the License, or
  8. (at your option) any later version.
  9. This program is distributed in the hope that it will be useful,
  10. but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  12. GNU General Public License for more details.
  13. You should have received a copy of the GNU General Public License
  14. along with this program; if not, write to the Free Software
  15. Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  16. ****************************************************************************
  17. }
  18. unit hlcgcpu;
  19. {$i fpcdefs.inc}
  20. interface
  21. uses
  22. globtype,
  23. aasmbase,aasmdata,
  24. symbase,symconst,symtype,symdef,symsym,
  25. node,
  26. cpubase, hlcgobj, cgbase, cgutils, parabase, wasmdef;
  27. type
  28. { thlcgwasm }
  29. thlcgwasm = class(thlcgobj)
  30. private
  31. fevalstackheight,
  32. fmaxevalstackheight: longint;
  33. public
  34. blocks: integer;
  35. loopContBr: integer; // the value is different depending of the condition test
  36. // if it's in the beggning the jump should be done to the loop (1)
  37. // if the condition at the end, the jump should done to the end of block (0)
  38. fntypelookup : TWasmProcTypeLookup;
  39. constructor create;
  40. destructor Destroy; override;
  41. procedure incblock;
  42. procedure decblock;
  43. procedure incstack(list : TAsmList;slots: longint);
  44. procedure decstack(list : TAsmList;slots: longint);
  45. class function def2regtyp(def: tdef): tregistertype; override;
  46. procedure a_load_const_cgpara(list : TAsmList;tosize : tdef;a : tcgint;const cgpara : TCGPara);override;
  47. function a_call_name(list : TAsmList;pd : tprocdef;const s : TSymStr; const paras: array of pcgpara; forceresdef: tdef; weak: boolean): tcgpara;override;
  48. function a_call_name_inherited(list : TAsmList;pd : tprocdef;const s : TSymStr; const paras: array of pcgpara): tcgpara;override;
  49. function a_call_reg(list: TAsmList; pd: tabstractprocdef; reg: tregister; const paras: array of pcgpara): tcgpara; override;
  50. { move instructions - a_load_FROM_TO }
  51. procedure a_load_const_reg(list : TAsmList;tosize : tdef;a : tcgint;register : tregister);override;
  52. procedure a_load_const_ref(list : TAsmList;tosize : tdef;a : tcgint;const ref : treference);override;
  53. procedure a_load_reg_ref(list : TAsmList;fromsize, tosize : tdef;register : tregister;const ref : treference);override;
  54. procedure a_load_reg_reg(list : TAsmList;fromsize, tosize : tdef;reg1,reg2 : tregister);override;
  55. procedure a_load_ref_reg(list : TAsmList;fromsize, tosize : tdef;const ref : treference;register : tregister);override;
  56. procedure a_load_ref_ref(list : TAsmList;fromsize, tosize : tdef;const sref : treference;const dref : treference);override;
  57. procedure a_loadaddr_ref_reg(list : TAsmList;fromsize, tosize : tdef;const ref : treference;r : tregister);override;
  58. { basic arithmetic operations }
  59. procedure a_op_const_reg(list: TAsmList; Op: TOpCG; size: tdef; a: tcgint; reg: TRegister); override;
  60. procedure a_op_const_reg_reg(list: TAsmList; op: TOpCg; size: tdef; a: tcgint; src, dst: tregister); override;
  61. procedure a_op_const_ref(list: TAsmList; Op: TOpCG; size: tdef; a: tcgint; const ref: TReference); override;
  62. procedure a_op_ref_reg(list: TAsmList; Op: TOpCG; size: tdef; const ref: TReference; reg: TRegister); override;
  63. procedure a_op_reg_reg_reg(list: TAsmList; op: TOpCg; size: tdef; src1, src2, dst: tregister); override;
  64. procedure a_op_reg_reg(list: TAsmList; Op: TOpCG; size: tdef; reg1, reg2: TRegister); override;
  65. procedure a_op_const_reg_reg_checkoverflow(list: TAsmList; op: TOpCg; size: tdef; a: tcgint; src, dst: tregister;setflags : boolean;var ovloc : tlocation); override;
  66. procedure a_op_reg_reg_reg_checkoverflow(list: TAsmList; op: TOpCg; size: tdef; src1, src2, dst: tregister;setflags : boolean;var ovloc : tlocation); override;
  67. procedure a_cmp_const_ref_label(list: TAsmList; size: tdef; cmp_op: topcmp; a: tcgint; const ref: treference; l: tasmlabel); override;
  68. procedure a_cmp_const_reg_label(list: TAsmList; size: tdef; cmp_op: topcmp; a: tcgint; reg: tregister; l: tasmlabel); override;
  69. procedure a_cmp_ref_reg_label(list: TAsmList; size: tdef; cmp_op: topcmp; const ref: treference; reg: tregister; l: tasmlabel); override;
  70. procedure a_cmp_reg_ref_label(list: TAsmList; size: tdef; cmp_op: topcmp; reg: tregister; const ref: treference; l: tasmlabel); override;
  71. procedure a_cmp_reg_reg_label(list: TAsmList; size: tdef; cmp_op: topcmp; reg1, reg2: tregister; l: tasmlabel); override;
  72. procedure a_jmp_always(list : TAsmList;l: tasmlabel); override;
  73. procedure g_concatcopy(list : TAsmList;size: tdef; const source,dest : treference);override;
  74. procedure g_copyshortstring(list : TAsmList;const source,dest : treference;strdef:tstringdef);override;
  75. procedure a_loadfpu_ref_ref(list: TAsmList; fromsize, tosize: tdef; const ref1, ref2: treference); override;
  76. procedure a_loadfpu_ref_reg(list: TAsmList; fromsize, tosize: tdef; const ref: treference; reg: tregister); override;
  77. procedure a_loadfpu_reg_ref(list: TAsmList; fromsize, tosize: tdef; reg: tregister; const ref: treference); override;
  78. procedure a_loadfpu_reg_reg(list: TAsmList; fromsize, tosize: tdef; reg1, reg2: tregister); override;
  79. procedure g_proc_entry(list : TAsmList;localsize : longint;nostackframe:boolean); override;
  80. procedure g_proc_exit(list : TAsmList;parasize:longint;nostackframe:boolean); override;
  81. procedure gen_load_return_value(list:TAsmList);override;
  82. procedure record_generated_code_for_procdef(pd: tprocdef; code, data: TAsmList); override;
  83. procedure g_incrrefcount(list : TAsmList;t: tdef; const ref: treference);override;
  84. procedure g_array_rtti_helper(list: TAsmList; t: tdef; const ref: treference; const highloc: tlocation; const name: string); override;
  85. procedure g_initialize(list : TAsmList;t : tdef;const ref : treference);override;
  86. procedure g_finalize(list : TAsmList;t : tdef;const ref : treference);override;
  87. procedure g_overflowcheck(list: TAsmList; const Loc: tlocation; def: tdef); override;
  88. procedure g_overflowCheck_loc(List:TAsmList;const Loc:TLocation;def:TDef;var ovloc : tlocation); override;
  89. procedure location_get_data_ref(list:TAsmList;def: tdef; const l:tlocation;var ref:treference;loadref:boolean; alignment: longint);override;
  90. procedure maybe_change_load_node_reg(list: TAsmList; var n: tnode; reload: boolean); override;
  91. procedure g_copyvaluepara_openarray(list: TAsmList; const ref: treference; const lenloc: tlocation; arrdef: tarraydef; destreg: tregister); override;
  92. procedure g_releasevaluepara_openarray(list: TAsmList; arrdef: tarraydef; const l: tlocation); override;
  93. procedure gen_initialize_code(list: TAsmList); override;
  94. procedure gen_entry_code(list: TAsmList); override;
  95. procedure gen_exit_code(list: TAsmList); override;
  96. { unimplemented/unnecessary routines }
  97. procedure a_bit_scan_reg_reg(list: TAsmList; reverse: boolean; srcsize, dstsize: tdef; src, dst: tregister); override;
  98. procedure a_loadmm_loc_reg(list: TAsmList; fromsize, tosize: tdef; const loc: tlocation; const reg: tregister; shuffle: pmmshuffle); override;
  99. procedure a_loadmm_reg_reg(list: TAsmList; fromsize, tosize: tdef; reg1, reg2: tregister; shuffle: pmmshuffle); override;
  100. procedure a_loadmm_ref_reg(list: TAsmList; fromsize, tosize: tdef; const ref: treference; reg: tregister; shuffle: pmmshuffle); override;
  101. procedure a_loadmm_reg_ref(list: TAsmList; fromsize, tosize: tdef; reg: tregister; const ref: treference; shuffle: pmmshuffle); override;
  102. procedure a_opmm_reg_reg(list: TAsmList; Op: TOpCG; size: tdef; src, dst: tregister; shuffle: pmmshuffle); override;
  103. procedure a_loadmm_intreg_reg(list: TAsmList; fromsize, tosize: tdef; intreg, mmreg: tregister; shuffle: pmmshuffle); override;
  104. procedure a_loadmm_reg_intreg(list: TAsmList; fromsize, tosize: tdef; mmreg, intreg: tregister; shuffle: pmmshuffle); override;
  105. procedure g_stackpointer_alloc(list: TAsmList; size: longint); override;
  106. procedure g_intf_wrapper(list: TAsmList; procdef: tprocdef; const labelname: string; ioffset: longint); override;
  107. procedure g_adjust_self_value(list: TAsmList; procdef: tprocdef; ioffset: aint); override;
  108. procedure g_local_unwind(list: TAsmList; l: TAsmLabel); override;
  109. { Wasm-specific routines }
  110. procedure g_procdef(list:TAsmList;pd: tprocdef);
  111. procedure a_load_stack_reg(list : TAsmList;size: tdef;reg: tregister);
  112. { extra_slots are the slots that are used by the reference, and that
  113. will be removed by the store operation }
  114. procedure a_load_stack_ref(list : TAsmList;size: tdef;const ref: treference;extra_slots: longint);
  115. procedure a_load_reg_stack(list : TAsmList;size: tdef;reg: tregister);
  116. { extra_slots are the slots that are used by the reference, and that
  117. will be removed by the load operation }
  118. procedure a_load_ref_stack(list : TAsmList;size: tdef;const ref: treference;extra_slots: longint);
  119. procedure a_load_const_stack(list : TAsmList;size: tdef;a :tcgint; typ: TRegisterType);
  120. procedure a_load_stack_loc(list : TAsmList;size: tdef;const loc: tlocation);
  121. procedure a_load_loc_stack(list : TAsmList;size: tdef;const loc: tlocation);
  122. procedure a_loadfpu_const_stack(list : TAsmList;size: tdef;a :double);
  123. procedure a_op_stack(list : TAsmList;op: topcg; size: tdef; trunc32: boolean);
  124. procedure a_op_const_stack(list : TAsmList;op: topcg; size: tdef;a : tcgint);
  125. procedure a_op_reg_stack(list : TAsmList;op: topcg; size: tdef;reg: tregister);
  126. procedure a_op_ref_stack(list : TAsmList;op: topcg; size: tdef;const ref: treference);
  127. procedure a_op_loc_stack(list : TAsmList;op: topcg; size: tdef;const loc: tlocation);
  128. procedure g_reference_loc(list: TAsmList; def: tdef; const fromloc: tlocation; out toloc: tlocation); override;
  129. { assumes that initdim dimensions have already been pushed on the
  130. evaluation stack, and creates a new array of type arrdef with these
  131. dimensions }
  132. procedure g_newarray(list : TAsmList; arrdef: tdef; initdim: longint);
  133. { gets the length of the array whose reference is stored in arrloc,
  134. and puts it on the evaluation stack }
  135. procedure g_getarraylen(list : TAsmList; const arrloc: tlocation);
  136. { this routine expects that all values are already massaged into the
  137. required form (sign bits xor'ed for gt/lt comparisons for OS_32/OS_64,
  138. see http://stackoverflow.com/questions/4068973/c-performing-signed-comparison-in-unsigned-variables-without-casting ) }
  139. procedure a_cmp_stack_label(list : TAsmlist; size: tdef; cmp_op: topcmp; lab: tasmlabel);
  140. { these 2 routines perform the massaging expected by the previous one }
  141. procedure maybe_adjust_cmp_stackval(list : TAsmlist; size: tdef; cmp_op: topcmp);
  142. function maybe_adjust_cmp_constval(size: tdef; cmp_op: topcmp; a: tcgint): tcgint;
  143. { truncate/sign extend after performing operations on values < 32 bit
  144. that may have overflowed outside the range }
  145. procedure maybe_adjust_op_result(list: TAsmList; op: TOpCg; size: tdef);
  146. { performs sign/zero extension as required }
  147. procedure resize_stack_int_val(list: TAsmList;fromsize,tosize: tdef; formemstore: boolean);
  148. { 8/16 bit unsigned parameters and return values must be sign-extended on
  149. the producer side, because the JVM does not support unsigned variants;
  150. then they have to be zero-extended again on the consumer side }
  151. procedure maybe_resize_stack_para_val(list: TAsmList; retdef: tdef; callside: boolean);
  152. { adjust the stack height after a call based on the specified number of
  153. slots used for parameters and the provided resultdef }
  154. procedure g_adjust_stack_after_call(list: TAsmList; pd: tabstractprocdef; paraheight: longint; forceresdef: tdef);
  155. property maxevalstackheight: longint read fmaxevalstackheight;
  156. procedure gen_initialize_fields_code(list:TAsmList);
  157. procedure gen_typecheck(list: TAsmList; checkop: tasmop; checkdef: tdef);
  158. protected
  159. procedure a_load_const_stack_intern(list : TAsmList;size : tdef;a : tcgint; typ: TRegisterType; legalize_const: boolean);
  160. function get_enum_init_val_ref(def: tdef; out ref: treference): boolean;
  161. procedure allocate_implicit_structs_for_st_with_base_ref(list: TAsmList; st: tsymtable; const ref: treference; allocvartyp: tsymtyp);
  162. procedure allocate_enum_with_base_ref(list: TAsmList; vs: tabstractvarsym; const initref: treference; destbaseref: treference);
  163. procedure allocate_implicit_struct_with_base_ref(list: TAsmList; vs: tabstractvarsym; ref: treference);
  164. procedure gen_load_uninitialized_function_result(list: TAsmList; pd: tprocdef; resdef: tdef; const resloc: tcgpara); override;
  165. procedure g_copyvalueparas(p: TObject; arg: pointer); override;
  166. procedure inittempvariables(list:TAsmList);override;
  167. function g_call_system_proc_intern(list: TAsmList; pd: tprocdef; const paras: array of pcgpara; forceresdef: tdef): tcgpara; override;
  168. { in case of an array, the array base address and index have to be
  169. put on the evaluation stack before the stored value; similarly, for
  170. fields the self pointer has to be loaded first. Also checks whether
  171. the reference is valid. If dup is true, the necessary values are stored
  172. twice. Returns how many stack slots have been consumed, disregarding
  173. the "dup". }
  174. function prepare_stack_for_ref(list: TAsmList; const ref: treference; dup: boolean): longint;
  175. { return the load/store opcode to load/store from/to ref; if the result
  176. has to be and'ed after a load to get the final value, that constant
  177. is returned in finishandval (otherwise that value is set to -1) }
  178. function loadstoreopcref(def: tdef; isload: boolean; const ref: treference; out finishandval: tcgint): tasmop;
  179. { return the load/store opcode to load/store from/to reg; if the result
  180. has to be and'ed after a load to get the final value, that constant
  181. is returned in finishandval (otherwise that value is set to -1) }
  182. function loadstoreopc(def: tdef; isload, isarray: boolean; out finishandval: tcgint): tasmop;
  183. procedure resizestackfpuval(list: TAsmList; fromsize, tosize: tcgsize);
  184. { in case of an OS_32 OP_DIV, we have to use an OS_S64 OP_IDIV because the
  185. JVM does not support unsigned divisions }
  186. procedure maybepreparedivu32(list: TAsmList; var op: topcg; size: tdef; out isdivu32: boolean);
  187. { common implementation of a_call_* }
  188. function a_call_name_intern(list : TAsmList;pd : tprocdef;const s : TSymStr; forceresdef: tdef; inheritedcall: boolean): tcgpara;
  189. { concatcopy helpers }
  190. procedure concatcopy_normal_array(list: TAsmList; size: tdef; const source, dest: treference);
  191. procedure concatcopy_record(list: TAsmList; size: tdef; const source, dest: treference);
  192. procedure concatcopy_set(list: TAsmList; size: tdef; const source, dest: treference);
  193. procedure concatcopy_shortstring(list: TAsmList; size: tdef; const source, dest: treference);
  194. procedure paravarsym_set_initialloc_to_paraloc(vs: tparavarsym); override;
  195. end;
  196. implementation
  197. uses
  198. verbose,cutils,globals,fmodule,constexp,
  199. defutil,
  200. aasmtai,aasmcpu,
  201. symtable,symcpu,
  202. procinfo,cpuinfo,cgcpu,tgobj,tgcpu;
  203. const
  204. TOpCG2IAsmOp : array[topcg] of TAsmOp=(
  205. A_None, {OP_NONE}
  206. A_None, {OP_MOVE, replaced operation with direct load }
  207. a_i32_add, {OP_ADD, simple addition }
  208. a_i32_and, {OP_AND, simple logical and }
  209. a_i32_div_u, {OP_DIV, simple unsigned division }
  210. a_i32_div_s, {OP_IDIV, simple signed division }
  211. a_i32_mul, {OP_IMUL, simple signed multiply }
  212. a_i32_mul, {OP_MUL, simple unsigned multiply }
  213. A_None, {OP_NEG, simple negate } // neg = xor + 1
  214. A_None, {OP_NOT, simple logical not } // not = xor - 1
  215. a_i32_or, {OP_OR, simple logical or }
  216. a_i32_shr_s, {OP_SAR, arithmetic shift-right }
  217. a_i32_shl, {OP_SHL, logical shift left }
  218. a_i32_shr_u, {OP_SHR, logical shift right }
  219. a_i32_sub, {OP_SUB, simple subtraction }
  220. a_i32_xor, {OP_XOR, simple exclusive or }
  221. a_i32_rotl, {OP_ROL, rotate left }
  222. a_i32_rotr {OP_ROR rotate right }
  223. );
  224. TOpCG2LAsmOp : array[topcg] of TAsmOp=(
  225. A_None, {OP_NONE}
  226. a_i64_load, {OP_MOVE, replaced operation with direct load }
  227. a_i64_add, {OP_ADD, simple addition }
  228. a_i64_and, {OP_AND, simple logical and }
  229. a_i64_div_u, {OP_DIV, simple unsigned division }
  230. a_i64_div_s, {OP_IDIV, simple signed division }
  231. a_i64_mul, {OP_IMUL, simple signed multiply }
  232. a_i64_mul, {OP_MUL, simple unsigned multiply }
  233. A_None, {OP_NEG, simple negate } // neg = xor + 1
  234. A_None, {OP_NOT, simple logical not } // not = xor - 1
  235. a_i64_or, {OP_OR, simple logical or }
  236. a_i64_shr_s, {OP_SAR, arithmetic shift-right }
  237. a_i64_shl, {OP_SHL, logical shift left }
  238. a_i64_shr_u, {OP_SHR, logical shift right }
  239. a_i64_sub, {OP_SUB, simple subtraction }
  240. a_i64_xor, {OP_XOR, simple exclusive or }
  241. a_i64_rotl, {OP_ROL, rotate left }
  242. a_i64_rotr {OP_ROR rotate right }
  243. );
  244. constructor thlcgwasm.create;
  245. begin
  246. fevalstackheight:=0;
  247. fmaxevalstackheight:=0;
  248. fntypelookup:=TWasmProcTypeLookup.Create;
  249. end;
  250. destructor thlcgwasm.Destroy;
  251. begin
  252. fntypelookup.Free;
  253. inherited Destroy;
  254. end;
  255. procedure thlcgwasm.incblock;
  256. begin
  257. inc(blocks);
  258. end;
  259. procedure thlcgwasm.decblock;
  260. begin
  261. dec(blocks);
  262. if blocks<0 then Internalerror(2019091807); // out of block
  263. end;
  264. procedure thlcgwasm.incstack(list: TAsmList; slots: longint);
  265. begin
  266. if slots=0 then
  267. exit;
  268. inc(fevalstackheight,slots);
  269. if (fevalstackheight>fmaxevalstackheight) then
  270. fmaxevalstackheight:=fevalstackheight;
  271. if cs_asm_regalloc in current_settings.globalswitches then
  272. list.concat(tai_comment.Create(strpnew(' allocated '+tostr(slots)+', stack height = '+tostr(fevalstackheight))));
  273. end;
  274. procedure thlcgwasm.decstack(list: TAsmList;slots: longint);
  275. begin
  276. if slots=0 then
  277. exit;
  278. dec(fevalstackheight,slots);
  279. if (fevalstackheight<0) and
  280. not(cs_no_regalloc in current_settings.globalswitches) then
  281. internalerror(2010120501);
  282. if cs_asm_regalloc in current_settings.globalswitches then
  283. list.concat(tai_comment.Create(strpnew(' freed '+tostr(slots)+', stack height = '+tostr(fevalstackheight))));
  284. end;
  285. class function thlcgwasm.def2regtyp(def: tdef): tregistertype;
  286. begin
  287. case def.typ of
  288. { records (including files) and enums are implemented via classes }
  289. recorddef,
  290. filedef,
  291. enumdef,
  292. setdef:
  293. result:=R_ADDRESSREGISTER;
  294. { shortstrings are implemented via classes }
  295. else if is_shortstring(def) or
  296. { voiddef can only be typecasted into (implicit) pointers }
  297. is_void(def) then
  298. result:=R_ADDRESSREGISTER
  299. else
  300. result:=inherited;
  301. end;
  302. end;
  303. procedure thlcgwasm.a_load_const_cgpara(list: TAsmList; tosize: tdef; a: tcgint; const cgpara: TCGPara);
  304. begin
  305. tosize:=get_para_push_size(tosize);
  306. if tosize=s8inttype then
  307. a:=shortint(a)
  308. else if tosize=s16inttype then
  309. a:=smallint(a);
  310. inherited a_load_const_cgpara(list, tosize, a, cgpara);
  311. end;
  312. function thlcgwasm.a_call_name(list: TAsmList; pd: tprocdef; const s: TSymStr; const paras: array of pcgpara; forceresdef: tdef; weak: boolean): tcgpara;
  313. begin
  314. result:=a_call_name_intern(list,pd,s,forceresdef,false);
  315. end;
  316. function thlcgwasm.a_call_name_inherited(list: TAsmList; pd: tprocdef; const s: TSymStr; const paras: array of pcgpara): tcgpara;
  317. begin
  318. result:=a_call_name_intern(list,pd,s,nil,true);
  319. end;
  320. function thlcgwasm.a_call_reg(list: TAsmList; pd: tabstractprocdef; reg: tregister; const paras: array of pcgpara): tcgpara;
  321. begin
  322. a_load_reg_stack(list, ptrsinttype, reg);
  323. current_asmdata.CurrAsmList.Concat(taicpu.op_callindirect( WasmGetTypeCode(pd)) );
  324. result:=hlcg.get_call_result_cgpara(pd, nil);
  325. end;
  326. procedure thlcgwasm.a_load_const_stack_intern(list : TAsmList;size : tdef;a : tcgint; typ: TRegisterType; legalize_const: boolean);
  327. begin
  328. if legalize_const and
  329. (typ=R_INTREGISTER) and
  330. (size.typ=orddef) then
  331. begin
  332. { uses specific byte/short array store instructions, and the Dalvik
  333. VM does not like it if we store values outside the range }
  334. case torddef(size).ordtype of
  335. u8bit:
  336. a:=shortint(a);
  337. u16bit:
  338. a:=smallint(a);
  339. else
  340. ;
  341. end;
  342. end;
  343. a_load_const_stack(list,size,a,typ);
  344. end;
  345. procedure thlcgwasm.a_load_const_stack(list : TAsmList;size : tdef;a : tcgint; typ: TRegisterType);
  346. begin
  347. case typ of
  348. R_INTREGISTER:
  349. begin
  350. case def_cgsize(size) of
  351. OS_8,OS_16,OS_32,
  352. OS_S8,OS_S16,OS_S32:
  353. begin
  354. { convert cardinals to longints }
  355. list.concat(taicpu.op_const(a_i32_const, a));
  356. end;
  357. OS_64,OS_S64:
  358. begin
  359. list.concat(taicpu.op_const(a_i64_const, a));
  360. incstack(list,1); // why?
  361. end;
  362. else
  363. internalerror(2010110702);
  364. end;
  365. end;
  366. R_ADDRESSREGISTER:
  367. begin
  368. if a<>0 then
  369. internalerror(2010110701);
  370. list.concat(taicpu.op_none(a_none));
  371. end;
  372. else
  373. internalerror(2010110703);
  374. end;
  375. incstack(list,1);
  376. end;
  377. procedure thlcgwasm.a_load_stack_loc(list: TAsmList; size: tdef; const loc: tlocation);
  378. begin
  379. case loc.loc of
  380. LOC_REGISTER,LOC_CREGISTER,
  381. LOC_FPUREGISTER,LOC_CFPUREGISTER:
  382. a_load_stack_reg(list,size,loc.register);
  383. LOC_REFERENCE:
  384. a_load_stack_ref(list,size,loc.reference,prepare_stack_for_ref(list,loc.reference,false));
  385. else
  386. internalerror(2011020501);
  387. end;
  388. end;
  389. procedure thlcgwasm.a_load_loc_stack(list: TAsmList;size: tdef;const loc: tlocation);
  390. begin
  391. case loc.loc of
  392. LOC_REGISTER,LOC_CREGISTER,
  393. LOC_FPUREGISTER,LOC_CFPUREGISTER:
  394. a_load_reg_stack(list,size,loc.register);
  395. LOC_REFERENCE,LOC_CREFERENCE:
  396. a_load_ref_stack(list,size,loc.reference,prepare_stack_for_ref(list,loc.reference,false));
  397. LOC_CONSTANT:
  398. a_load_const_stack(list,size,loc.value,def2regtyp(size));
  399. else
  400. internalerror(2011010401);
  401. end;
  402. end;
  403. procedure thlcgwasm.a_loadfpu_const_stack(list: TAsmList; size: tdef; a: double);
  404. begin
  405. case tfloatdef(size).floattype of
  406. s32real:
  407. begin
  408. list.concat(taicpu.op_single(a_f32_const, a));
  409. incstack(list,1);
  410. end;
  411. s64real:
  412. begin
  413. list.concat(taicpu.op_double(a_f64_const,a));
  414. incstack(list,2);
  415. end
  416. else
  417. internalerror(2011010501);
  418. end;
  419. end;
  420. procedure thlcgwasm.a_op_stack(list: TAsmList; op: topcg; size: tdef; trunc32: boolean);
  421. var
  422. cgsize: tcgsize;
  423. begin
  424. if not trunc32 then
  425. cgsize:=def_cgsize(size)
  426. else
  427. begin
  428. resize_stack_int_val(list,u32inttype,s64inttype,false);
  429. cgsize:=OS_S64;
  430. end;
  431. case cgsize of
  432. OS_8,OS_S8,
  433. OS_16,OS_S16,
  434. OS_32,OS_S32:
  435. begin
  436. { not = xor 1 for boolean, xor -1 for the rest}
  437. if op=OP_NOT then
  438. begin
  439. if not is_pasbool(size) then
  440. a_load_const_stack(list,s32inttype,high(cardinal),R_INTREGISTER)
  441. else
  442. a_load_const_stack(list,size,1,R_INTREGISTER);
  443. op:=OP_XOR;
  444. end;
  445. if TOpCG2IAsmOp[op]=A_None then
  446. internalerror(2010120532);
  447. list.concat(taicpu.op_none(TOpCG2IAsmOp[op]));
  448. maybe_adjust_op_result(list,op,size);
  449. if op<>OP_NEG then
  450. decstack(list,1);
  451. end;
  452. OS_64,OS_S64:
  453. begin
  454. { unsigned 64 bit division must be done via a helper }
  455. if op=OP_DIV then
  456. internalerror(2010120530);
  457. { not = xor 1 for boolean, xor -1 for the rest}
  458. if op=OP_NOT then
  459. begin
  460. if not is_pasbool(size) then
  461. a_load_const_stack(list,s64inttype,-1,R_INTREGISTER)
  462. else
  463. a_load_const_stack(list,s64inttype,1,R_INTREGISTER);
  464. op:=OP_XOR;
  465. end;
  466. if TOpCG2LAsmOp[op]=A_None then
  467. internalerror(2010120533);
  468. list.concat(taicpu.op_none(TOpCG2LAsmOp[op]));
  469. case op of
  470. OP_NOT,
  471. OP_NEG:
  472. ;
  473. { the second argument here is an int rather than a long }
  474. OP_SHL,OP_SHR,OP_SAR:
  475. decstack(list,1);
  476. else
  477. decstack(list,2);
  478. end;
  479. end;
  480. else
  481. internalerror(2010120531);
  482. end;
  483. if trunc32 then
  484. begin
  485. list.concat(taicpu.op_none(a_i32_trunc_s_f32)); // todo: there are several truncs
  486. decstack(list,1);
  487. end;
  488. end;
  489. procedure thlcgwasm.a_op_const_stack(list: TAsmList;op: topcg;size: tdef;a: tcgint);
  490. var
  491. trunc32: boolean;
  492. begin
  493. maybepreparedivu32(list,op,size,trunc32);
  494. case op of
  495. OP_NEG,OP_NOT:
  496. internalerror(2011010801);
  497. OP_SHL,OP_SHR,OP_SAR:
  498. { the second argument here is an int rather than a long }
  499. a_load_const_stack(list,s32inttype,a,R_INTREGISTER);
  500. else
  501. a_load_const_stack(list,size,a,R_INTREGISTER);
  502. end;
  503. a_op_stack(list,op,size,trunc32);
  504. end;
  505. procedure thlcgwasm.a_op_reg_stack(list: TAsmList; op: topcg; size: tdef; reg: tregister);
  506. var
  507. trunc32: boolean;
  508. begin
  509. maybepreparedivu32(list,op,size,trunc32);
  510. case op of
  511. OP_SHL,OP_SHR,OP_SAR:
  512. if not is_64bitint(size) then
  513. a_load_reg_stack(list,size,reg)
  514. else
  515. begin
  516. { the second argument here is an int rather than a long }
  517. if getsubreg(reg)=R_SUBQ then
  518. internalerror(2011010802);
  519. a_load_reg_stack(list,s32inttype,reg)
  520. end
  521. else
  522. a_load_reg_stack(list,size,reg);
  523. end;
  524. a_op_stack(list,op,size,trunc32);
  525. end;
  526. procedure thlcgwasm.a_op_ref_stack(list: TAsmList; op: topcg; size: tdef; const ref: treference);
  527. var
  528. trunc32: boolean;
  529. begin
  530. { ref must not be the stack top, because that may indicate an error
  531. (it means that we will perform an operation of the stack top onto
  532. itself, so that means the two values have been loaded manually prior
  533. to calling this routine, instead of letting this routine load one of
  534. them; if something like that is needed, call a_op_stack() directly) }
  535. if ref.base=NR_EVAL_STACK_BASE then
  536. internalerror(2010121102);
  537. maybepreparedivu32(list,op,size,trunc32);
  538. case op of
  539. OP_SHL,OP_SHR,OP_SAR:
  540. begin
  541. if not is_64bitint(size) then
  542. a_load_ref_stack(list,size,ref,prepare_stack_for_ref(list,ref,false))
  543. else
  544. a_load_ref_stack(list,s32inttype,ref,prepare_stack_for_ref(list,ref,false));
  545. end;
  546. else
  547. a_load_ref_stack(list,size,ref,prepare_stack_for_ref(list,ref,false));
  548. end;
  549. a_op_stack(list,op,size,trunc32);
  550. end;
  551. procedure thlcgwasm.a_op_loc_stack(list: TAsmList; op: topcg; size: tdef; const loc: tlocation);
  552. begin
  553. case loc.loc of
  554. LOC_REGISTER,LOC_CREGISTER:
  555. a_op_reg_stack(list,op,size,loc.register);
  556. LOC_REFERENCE,LOC_CREFERENCE:
  557. a_op_ref_stack(list,op,size,loc.reference);
  558. LOC_CONSTANT:
  559. a_op_const_stack(list,op,size,loc.value);
  560. else
  561. internalerror(2011011415)
  562. end;
  563. end;
  564. procedure thlcgwasm.g_reference_loc(list: TAsmList; def: tdef; const fromloc: tlocation; out toloc: tlocation);
  565. begin
  566. case fromloc.loc of
  567. LOC_CREFERENCE,
  568. LOC_REFERENCE:
  569. begin
  570. toloc:=fromloc;
  571. if (fromloc.reference.base<>NR_NO) and
  572. (fromloc.reference.base<>current_procinfo.framepointer) and
  573. (fromloc.reference.base<>NR_STACK_POINTER_REG) then
  574. g_allocload_reg_reg(list,voidpointertype,fromloc.reference.base,toloc.reference.base,R_ADDRESSREGISTER);
  575. end;
  576. else
  577. inherited;
  578. end;
  579. end;
  580. procedure thlcgwasm.g_newarray(list: TAsmList; arrdef: tdef; initdim: longint);
  581. var
  582. recref,
  583. enuminitref: treference;
  584. elemdef: tdef;
  585. i: longint;
  586. mangledname: string;
  587. opc: tasmop;
  588. primitivetype: boolean;
  589. begin
  590. internalerror(2019083001); // arrays are note yet supported
  591. (*
  592. elemdef:=arrdef;
  593. if initdim>1 then
  594. begin
  595. { multianewarray typedesc ndim }
  596. { todo: WASM
  597. list.concat(taicpu.op_sym_const(a_multianewarray,
  598. current_asmdata.RefAsmSymbol(jvmarrtype(elemdef,primitivetype),AT_METADATA),initdim));
  599. }
  600. { has to be a multi-dimensional array type }
  601. if primitivetype then
  602. internalerror(2011012207);
  603. end
  604. else
  605. begin
  606. { for primitive types:
  607. newarray typedesc
  608. for reference types:
  609. anewarray typedesc
  610. }
  611. { get the type of the elements of the array we are creating }
  612. elemdef:=tarraydef(arrdef).elementdef;
  613. { todo: WASM. Todo: array data structures needs to be stored in Memory
  614. mangledname:=jvmarrtype(elemdef,primitivetype);
  615. if primitivetype then
  616. opc:=a_newarray
  617. else
  618. opc:=a_anewarray;
  619. list.concat(taicpu.op_sym(opc,current_asmdata.RefAsmSymbol(mangledname,AT_METADATA)));
  620. }
  621. end;
  622. { all dimensions are removed from the stack, an array reference is
  623. added }
  624. decstack(list,initdim-1);
  625. { in case of an array of records, sets or shortstrings, initialise }
  626. elemdef:=tarraydef(arrdef).elementdef;
  627. for i:=1 to pred(initdim) do
  628. elemdef:=tarraydef(elemdef).elementdef;
  629. if (elemdef.typ in [recorddef,setdef]) or
  630. ((elemdef.typ=enumdef) and
  631. get_enum_init_val_ref(elemdef,enuminitref)) or
  632. is_shortstring(elemdef) or
  633. ((elemdef.typ=procvardef) and
  634. not tprocvardef(elemdef).is_addressonly) or
  635. is_ansistring(elemdef) or
  636. is_wide_or_unicode_string(elemdef) or
  637. is_dynamic_array(elemdef) then
  638. begin
  639. { duplicate array instance }
  640. list.concat(taicpu.op_none(a_dup));
  641. incstack(list,1);
  642. a_load_const_stack(list,s32inttype,initdim-1,R_INTREGISTER);
  643. case elemdef.typ of
  644. arraydef:
  645. g_call_system_proc(list,'fpc_initialize_array_dynarr',[],nil);
  646. recorddef,setdef,procvardef:
  647. begin
  648. tg.gethltemp(list,elemdef,elemdef.size,tt_persistent,recref);
  649. a_load_ref_stack(list,elemdef,recref,prepare_stack_for_ref(list,recref,false));
  650. case elemdef.typ of
  651. recorddef:
  652. g_call_system_proc(list,'fpc_initialize_array_record',[],nil);
  653. setdef:
  654. begin
  655. if tsetdef(elemdef).elementdef.typ=enumdef then
  656. g_call_system_proc(list,'fpc_initialize_array_enumset',[],nil)
  657. else
  658. g_call_system_proc(list,'fpc_initialize_array_bitset',[],nil)
  659. end;
  660. procvardef:
  661. g_call_system_proc(list,'fpc_initialize_array_procvar',[],nil);
  662. else
  663. internalerror(2019051025);
  664. end;
  665. tg.ungettemp(list,recref);
  666. end;
  667. enumdef:
  668. begin
  669. a_load_ref_stack(list,java_jlobject,enuminitref,prepare_stack_for_ref(list,enuminitref,false));
  670. g_call_system_proc(list,'fpc_initialize_array_object',[],nil);
  671. end;
  672. stringdef:
  673. begin
  674. case tstringdef(elemdef).stringtype of
  675. st_shortstring:
  676. begin
  677. a_load_const_stack_intern(list,u8inttype,tstringdef(elemdef).len,R_INTREGISTER,true);
  678. g_call_system_proc(list,'fpc_initialize_array_shortstring',[],nil);
  679. end;
  680. st_ansistring:
  681. g_call_system_proc(list,'fpc_initialize_array_ansistring',[],nil);
  682. st_unicodestring,
  683. st_widestring:
  684. g_call_system_proc(list,'fpc_initialize_array_unicodestring',[],nil);
  685. else
  686. internalerror(2011081801);
  687. end;
  688. end;
  689. else
  690. internalerror(2011081801);
  691. end;
  692. end;
  693. *)
  694. end;
  695. procedure thlcgwasm.g_getarraylen(list: TAsmList; const arrloc: tlocation);
  696. var
  697. nillab,endlab: tasmlabel;
  698. begin
  699. internalerror(2019083001); // arrays are note yet supported
  700. (*
  701. { inline because we have to use the arraylength opcode, which
  702. cannot be represented directly in Pascal. Even though the JVM
  703. supports allocated arrays with length=0, we still also have to
  704. check for nil pointers because even if FPC always generates
  705. allocated empty arrays under all circumstances, external Java
  706. code could pass in nil pointers.
  707. Note that this means that assigned(arr) can be different from
  708. length(arr)<>0 for dynamic arrays when targeting the JVM.
  709. }
  710. current_asmdata.getjumplabel(nillab);
  711. current_asmdata.getjumplabel(endlab);
  712. { if assigned(arr) ... }
  713. a_load_loc_stack(list,java_jlobject,arrloc);
  714. list.concat(taicpu.op_none(a_dup));
  715. incstack(list,1);
  716. list.concat(taicpu.op_sym(a_ifnull,nillab));
  717. decstack(list,1);
  718. { ... then result:=arraylength(arr) ... }
  719. list.concat(taicpu.op_none(a_arraylength));
  720. a_jmp_always(list,endlab);
  721. { ... else result:=0 }
  722. a_label(list,nillab);
  723. list.concat(taicpu.op_none(a_pop));
  724. decstack(list,1);
  725. list.concat(taicpu.op_none(a_iconst_0));
  726. incstack(list,1);
  727. a_label(list,endlab);
  728. *)
  729. end;
  730. procedure thlcgwasm.a_cmp_stack_label(list: TAsmlist; size: tdef; cmp_op: topcmp; lab: tasmlabel);
  731. const
  732. opcmp32: array[topcmp] of tasmop = (
  733. A_None, { OC_NONE, }
  734. a_i32_eq, { OC_EQ, equality comparison }
  735. a_i32_gt_s, { OC_GT, greater than (signed) }
  736. a_i32_lt_s, { OC_LT, less than (signed) }
  737. a_i32_ge_s, { OC_GTE, greater or equal than (signed) }
  738. a_i32_le_s, { OC_LTE, less or equal than (signed) }
  739. a_i32_ne, { OC_NE, not equal }
  740. a_i32_le_u, { OC_BE, less or equal than (unsigned) }
  741. a_i32_lt_u, { OC_B, less than (unsigned) }
  742. a_i32_ge_u, { OC_AE, greater or equal than (unsigned) }
  743. a_i32_gt_u { OC_A greater than (unsigned) }
  744. );
  745. const
  746. opcmp64: array[TOpCmp] of TAsmOp = (A_None,
  747. a_i64_eq, // OC_EQ
  748. a_i64_gt_s, a_i64_lt_s, // OC_GT, OC_LT
  749. a_i64_ge_s, a_i64_le_s, // OC_GTE, OC_LTE
  750. a_i64_ne, // OC_NE
  751. a_i64_le_u, a_i64_lt_u, // OC_BE, OC_B
  752. a_i64_ge_u, a_i64_gt_u // OC_AE, OC_A
  753. );
  754. var
  755. cgsize: tcgsize;
  756. begin
  757. // WASM doesn't have compare+jump (to label) operation
  758. // thus even though this is a_cmp_stack_label()
  759. // label operrand is ommited
  760. //
  761. // todo: it should NOT be ommitted when we're leaving a block
  762. // (i.e. Exit or break or continue operators)
  763. case def2regtyp(size) of
  764. R_INTREGISTER:
  765. begin
  766. cgsize:=def_cgsize(size);
  767. case cgsize of
  768. OS_S8,OS_8,
  769. OS_16,OS_S16,
  770. OS_S32,OS_32:
  771. begin
  772. //list.concat(taicpu.op_sym(opcmp32[cmp_op],lab));
  773. list.concat(taicpu.op_none(opcmp32[cmp_op]));
  774. decstack(list,2);
  775. end;
  776. OS_64,OS_S64:
  777. begin
  778. //list.concat(taicpu.op_none(a_lcmp));
  779. //decstack(list,3);
  780. //list.concat(taicpu.op_sym(opcmp64[cmp_op],lab));
  781. list.concat(taicpu.op_none(opcmp64[cmp_op]));
  782. decstack(list,2);
  783. end;
  784. else
  785. internalerror(2010120538);
  786. end;
  787. end;
  788. R_ADDRESSREGISTER:
  789. begin
  790. case cmp_op of
  791. OC_EQ:
  792. //list.concat(taicpu.op_sym(a_i64_eq,lab));
  793. list.concat(taicpu.op_none(a_i32_eq));
  794. OC_NE:
  795. //list.concat(taicpu.op_sym(a_i64_ne,lab));
  796. list.concat(taicpu.op_none(a_i32_ne));
  797. else
  798. internalerror(2010120537);
  799. end;
  800. decstack(list,2);
  801. end;
  802. else
  803. internalerror(2010120538);
  804. end;
  805. end;
  806. procedure thlcgwasm.maybe_adjust_cmp_stackval(list: TAsmlist; size: tdef; cmp_op: topcmp);
  807. begin
  808. { use cmp_op because eventually that's what indicates the
  809. signed/unsigned character of the operation, not the size... }
  810. if (cmp_op in [OC_EQ,OC_NE,OC_LT,OC_LTE,OC_GT,OC_GTE]) or
  811. (def2regtyp(size)<>R_INTREGISTER) then
  812. exit;
  813. { http://stackoverflow.com/questions/4068973/c-performing-signed-comparison-in-unsigned-variables-without-casting }
  814. case def_cgsize(size) of
  815. OS_32,OS_S32:
  816. a_op_const_stack(list,OP_XOR,size,cardinal($80000000));
  817. OS_64,OS_S64:
  818. a_op_const_stack(list,OP_XOR,size,tcgint($8000000000000000));
  819. else
  820. ;
  821. end;
  822. end;
  823. function thlcgwasm.maybe_adjust_cmp_constval(size: tdef; cmp_op: topcmp; a: tcgint): tcgint;
  824. begin
  825. result:=a;
  826. { use cmp_op because eventually that's what indicates the
  827. signed/unsigned character of the operation, not the size... }
  828. if (cmp_op in [OC_EQ,OC_NE,OC_LT,OC_LTE,OC_GT,OC_GTE]) or
  829. (def2regtyp(size)<>R_INTREGISTER) then
  830. exit;
  831. case def_cgsize(size) of
  832. OS_32,OS_S32:
  833. result:=a xor cardinal($80000000);
  834. OS_64,OS_S64:
  835. {$push}{$r-}
  836. result:=a xor tcgint($8000000000000000);
  837. {$pop}
  838. else
  839. ;
  840. end;
  841. end;
  842. procedure thlcgwasm.maybe_adjust_op_result(list: TAsmList; op: TOpCg; size: tdef);
  843. const
  844. overflowops = [OP_MUL,OP_SHL,OP_ADD,OP_SUB,OP_NOT,OP_NEG];
  845. begin
  846. if (op in overflowops) and
  847. (def_cgsize(size) in [OS_8,OS_S8,OS_16,OS_S16]) then
  848. resize_stack_int_val(list,s32inttype,size,false);
  849. end;
  850. procedure thlcgwasm.gen_load_uninitialized_function_result(list: TAsmList; pd: tprocdef; resdef: tdef; const resloc: tcgpara);
  851. begin
  852. { constructors don't return anything in Java }
  853. if pd.proctypeoption=potype_constructor then
  854. exit;
  855. { must return a value of the correct type on the evaluation stack }
  856. case def2regtyp(resdef) of
  857. R_INTREGISTER,
  858. R_ADDRESSREGISTER:
  859. a_load_const_cgpara(list,resdef,0,resloc);
  860. R_FPUREGISTER:
  861. case tfloatdef(resdef).floattype of
  862. s32real:
  863. begin
  864. list.concat(taicpu.op_single(a_f32_const, 0));
  865. incstack(list,1);
  866. end;
  867. s64real:
  868. begin
  869. list.concat(taicpu.op_double(a_f64_const, 0));
  870. incstack(list,2);
  871. end;
  872. else
  873. internalerror(2011010302);
  874. end
  875. else
  876. internalerror(2011010301);
  877. end;
  878. end;
  879. procedure thlcgwasm.g_copyvalueparas(p: TObject; arg: pointer);
  880. var
  881. list: tasmlist;
  882. tmpref: treference;
  883. begin
  884. { zero-extend < 32 bit primitive types (FPC can zero-extend when calling,
  885. but that doesn't help when we're called from Java code or indirectly
  886. as a procvar -- exceptions: widechar (Java-specific type) and ordinal
  887. types whose upper bound does not set the sign bit }
  888. if (tsym(p).typ=paravarsym) and
  889. (tparavarsym(p).varspez in [vs_value,vs_const]) and
  890. (tparavarsym(p).vardef.typ=orddef) and
  891. not is_pasbool(tparavarsym(p).vardef) and
  892. not is_widechar(tparavarsym(p).vardef) and
  893. (tparavarsym(p).vardef.size<4) and
  894. not is_signed(tparavarsym(p).vardef) and
  895. (torddef(tparavarsym(p).vardef).high>=(1 shl (tparavarsym(p).vardef.size*8-1))) then
  896. begin
  897. list:=TAsmList(arg);
  898. { store value in new location to keep Android verifier happy }
  899. tg.gethltemp(list,tparavarsym(p).vardef,tparavarsym(p).vardef.size,tt_persistent,tmpref);
  900. a_load_loc_stack(list,tparavarsym(p).vardef,tparavarsym(p).initialloc);
  901. a_op_const_stack(list,OP_AND,tparavarsym(p).vardef,(1 shl (tparavarsym(p).vardef.size*8))-1);
  902. a_load_stack_ref(list,tparavarsym(p).vardef,tmpref,prepare_stack_for_ref(list,tmpref,false));
  903. location_reset_ref(tparavarsym(p).localloc,LOC_REFERENCE,def_cgsize(tparavarsym(p).vardef),4,tmpref.volatility);
  904. tparavarsym(p).localloc.reference:=tmpref;
  905. end;
  906. inherited g_copyvalueparas(p, arg);
  907. end;
  908. procedure thlcgwasm.inittempvariables(list: TAsmList);
  909. begin
  910. { these are automatically initialised when allocated if necessary }
  911. end;
  912. function thlcgwasm.g_call_system_proc_intern(list: TAsmList; pd: tprocdef; const paras: array of pcgpara; forceresdef: tdef): tcgpara;
  913. begin
  914. result:=inherited;
  915. pd.init_paraloc_info(callerside);
  916. g_adjust_stack_after_call(list,pd,pd.callerargareasize,forceresdef);
  917. end;
  918. function thlcgwasm.prepare_stack_for_ref(list: TAsmList; const ref: treference; dup: boolean): longint;
  919. var
  920. href: treference;
  921. begin
  922. result:=0;
  923. { fake location that indicates the value is already on the stack? }
  924. if (ref.base=NR_EVAL_STACK_BASE) or (ref.islocal) then
  925. exit;
  926. // setting up memory offset
  927. if assigned(ref.symbol) then begin
  928. list.Concat(taicpu.op_sym(a_get_global, ref.symbol));
  929. end else if ref.index <> NR_NO then // array access
  930. begin
  931. // it's just faster to sum two of those together
  932. list.Concat(taicpu.op_reg(a_get_local, ref.base));
  933. list.Concat(taicpu.op_reg(a_get_local, ref.index));
  934. list.Concat(taicpu.op_none(a_i32_add));
  935. end else if (ref.base<>NR_NO) then
  936. begin
  937. if (ref.base<>NR_STACK_POINTER_REG) then
  938. begin
  939. { regular field -> load self on the stack }
  940. a_load_reg_stack(list,voidpointertype,ref.base);
  941. if dup then
  942. begin
  943. internalerror(2019083002);
  944. //todo: add duplicate
  945. //list.concat(taicpu.op_none(a_dup));
  946. incstack(list,1);
  947. end;
  948. { field name/type encoded in symbol, no index/offset }
  949. result:=1;
  950. end
  951. else // if (ref.base = NR_FRAME_POINTER_REG) then
  952. begin
  953. list.Concat(taicpu.op_sym(a_get_local, current_asmdata.RefAsmSymbol(FRAME_POINTER_SYM,AT_ADDR) ));
  954. end;
  955. end
  956. else
  957. begin
  958. { static field -> nothing to do here, except for validity check }
  959. {if not assigned(ref.symbol) or
  960. (ref.offset<>0) then
  961. begin
  962. internalerror(2010120525);
  963. end;}
  964. end;
  965. end;
  966. procedure thlcgwasm.a_load_const_reg(list: TAsmList; tosize: tdef; a: tcgint; register: tregister);
  967. begin
  968. a_load_const_stack(list,tosize,a,def2regtyp(tosize));
  969. a_load_stack_reg(list,tosize,register);
  970. end;
  971. procedure thlcgwasm.a_load_const_ref(list: TAsmList; tosize: tdef; a: tcgint; const ref: treference);
  972. var
  973. extra_slots: longint;
  974. begin
  975. extra_slots:=prepare_stack_for_ref(list,ref,false);
  976. a_load_const_stack_intern(list,tosize,a,def2regtyp(tosize),assigned(ref.symbol));
  977. a_load_stack_ref(list,tosize,ref,extra_slots);
  978. end;
  979. procedure thlcgwasm.a_load_reg_ref(list: TAsmList; fromsize, tosize: tdef; register: tregister; const ref: treference);
  980. var
  981. extra_slots: longint;
  982. begin
  983. extra_slots:=prepare_stack_for_ref(list,ref,false);
  984. a_load_reg_stack(list,fromsize,register);
  985. if def2regtyp(fromsize)=R_INTREGISTER then
  986. resize_stack_int_val(list,fromsize,tosize,assigned(ref.symbol));
  987. a_load_stack_ref(list,tosize,ref,extra_slots);
  988. end;
  989. procedure thlcgwasm.a_load_reg_reg(list: TAsmList; fromsize, tosize: tdef; reg1, reg2: tregister);
  990. begin
  991. a_load_reg_stack(list,fromsize,reg1);
  992. if def2regtyp(fromsize)=R_INTREGISTER then
  993. resize_stack_int_val(list,fromsize,tosize,false);
  994. a_load_stack_reg(list,tosize,reg2);
  995. end;
  996. procedure thlcgwasm.a_load_ref_reg(list: TAsmList; fromsize, tosize: tdef; const ref: treference; register: tregister);
  997. var
  998. extra_slots: longint;
  999. begin
  1000. extra_slots:=prepare_stack_for_ref(list,ref,false);
  1001. a_load_ref_stack(list,fromsize,ref,extra_slots);
  1002. if def2regtyp(fromsize)=R_INTREGISTER then
  1003. resize_stack_int_val(list,fromsize,tosize,false);
  1004. a_load_stack_reg(list,tosize,register);
  1005. end;
  1006. procedure thlcgwasm.a_load_ref_ref(list: TAsmList; fromsize, tosize: tdef; const sref: treference; const dref: treference);
  1007. var
  1008. extra_sslots,
  1009. extra_dslots: longint;
  1010. begin
  1011. { make sure the destination reference is on top, since in the end the
  1012. order has to be "destref, value" -> first create "destref, sourceref" }
  1013. extra_dslots:=prepare_stack_for_ref(list,dref,false);
  1014. extra_sslots:=prepare_stack_for_ref(list,sref,false);
  1015. a_load_ref_stack(list,fromsize,sref,extra_sslots);
  1016. if def2regtyp(fromsize)=R_INTREGISTER then
  1017. resize_stack_int_val(list,fromsize,tosize,assigned(dref.symbol));
  1018. a_load_stack_ref(list,tosize,dref,extra_dslots);
  1019. end;
  1020. procedure thlcgwasm.a_loadaddr_ref_reg(list: TAsmList; fromsize, tosize: tdef; const ref: treference; r: tregister);
  1021. begin
  1022. { only allowed for types that are not implicit pointers in Pascal (in
  1023. that case, ref contains a pointer to the actual data and we simply
  1024. return that pointer) }
  1025. if not wasmAlwayInMem(fromsize) then
  1026. internalerror(2010120534);
  1027. if assigned(ref.symbol) then begin
  1028. // pushing address on stack
  1029. list.Concat(taicpu.op_ref(a_get_global, ref));
  1030. incstack(list, 1);
  1031. // reading back to the register
  1032. a_load_stack_reg(list, tosize, r);
  1033. end else if (ref.base = NR_FRAME_POINTER_REG) then begin
  1034. list.Concat(taicpu.op_sym(a_get_local, current_asmdata.RefAsmSymbol(FRAME_POINTER_SYM,AT_ADDR) ));
  1035. list.Concat(taicpu.op_const(a_i32_const, ref.offset));
  1036. // todo: index?
  1037. list.Concat(taicpu.op_none(a_i32_add));
  1038. incstack(list, 1);
  1039. a_load_stack_reg(list, tosize, r);
  1040. end else begin
  1041. list.Concat(taicpu.op_reg(a_get_local, ref.base));
  1042. list.Concat(taicpu.op_const(a_i32_const, ref.offset));
  1043. list.Concat(taicpu.op_none(a_i32_add));
  1044. incstack(list, 1);
  1045. a_load_stack_reg(list, tosize, r);
  1046. //todo:
  1047. //a_load_ref_reg(list,ptruinttype,ptruinttype,ref,r);
  1048. end;
  1049. end;
  1050. procedure thlcgwasm.a_op_const_reg(list: TAsmList; Op: TOpCG; size: tdef; a: tcgint; reg: TRegister);
  1051. begin
  1052. a_op_const_reg_reg(list,op,size,a,reg,reg);
  1053. end;
  1054. procedure thlcgwasm.a_op_const_reg_reg(list: TAsmList; op: TOpCg; size: tdef; a: tcgint; src, dst: tregister);
  1055. begin
  1056. a_load_reg_stack(list,size,src);
  1057. a_op_const_stack(list,op,size,a);
  1058. a_load_stack_reg(list,size,dst);
  1059. end;
  1060. procedure thlcgwasm.a_op_const_ref(list: TAsmList; Op: TOpCG; size: tdef; a: tcgint; const ref: TReference);
  1061. var
  1062. extra_slots: longint;
  1063. begin
  1064. extra_slots:=prepare_stack_for_ref(list,ref,true);
  1065. { TODO, here or in peepholeopt: use iinc when possible }
  1066. a_load_ref_stack(list,size,ref,extra_slots);
  1067. a_op_const_stack(list,op,size,a);
  1068. { for android verifier }
  1069. if (def2regtyp(size)=R_INTREGISTER) and
  1070. (assigned(ref.symbol)) then
  1071. resize_stack_int_val(list,size,size,true);
  1072. a_load_stack_ref(list,size,ref,extra_slots);
  1073. end;
  1074. procedure thlcgwasm.a_op_ref_reg(list: TAsmList; Op: TOpCG; size: tdef; const ref: TReference; reg: TRegister);
  1075. begin
  1076. if not(op in [OP_NOT,OP_NEG]) then
  1077. a_load_reg_stack(list,size,reg);
  1078. a_op_ref_stack(list,op,size,ref);
  1079. a_load_stack_reg(list,size,reg);
  1080. end;
  1081. procedure thlcgwasm.a_op_reg_reg_reg(list: TAsmList; op: TOpCg; size: tdef; src1, src2, dst: tregister);
  1082. begin
  1083. if not(op in [OP_NOT,OP_NEG]) then
  1084. a_load_reg_stack(list,size,src2);
  1085. a_op_reg_stack(list,op,size,src1);
  1086. a_load_stack_reg(list,size,dst);
  1087. end;
  1088. procedure thlcgwasm.a_op_reg_reg(list: TAsmList; Op: TOpCG; size: tdef; reg1, reg2: TRegister);
  1089. begin
  1090. a_op_reg_reg_reg(list,op,size,reg1,reg2,reg2);
  1091. end;
  1092. procedure thlcgwasm.a_op_const_reg_reg_checkoverflow(list: TAsmList; op: TOpCg; size: tdef; a: tcgint; src, dst: tregister; setflags: boolean; var ovloc: tlocation);
  1093. var
  1094. tmpreg: tregister;
  1095. begin
  1096. if not setflags then
  1097. begin
  1098. inherited;
  1099. exit;
  1100. end;
  1101. tmpreg:=getintregister(list,size);
  1102. a_load_const_reg(list,size,a,tmpreg);
  1103. a_op_reg_reg_reg_checkoverflow(list,op,size,tmpreg,src,dst,true,ovloc);
  1104. end;
  1105. procedure thlcgwasm.a_op_reg_reg_reg_checkoverflow(list: TAsmList; op: TOpCg; size: tdef; src1, src2, dst: tregister; setflags: boolean; var ovloc: tlocation);
  1106. var
  1107. orgsrc1, orgsrc2: tregister;
  1108. docheck: boolean;
  1109. lab: tasmlabel;
  1110. begin
  1111. if not setflags then
  1112. begin
  1113. inherited;
  1114. exit;
  1115. end;
  1116. { anything else cannot overflow }
  1117. docheck:=size.size in [4,8];
  1118. if docheck then
  1119. begin
  1120. orgsrc1:=src1;
  1121. orgsrc2:=src2;
  1122. if src1=dst then
  1123. begin
  1124. orgsrc1:=getintregister(list,size);
  1125. a_load_reg_reg(list,size,size,src1,orgsrc1);
  1126. end;
  1127. if src2=dst then
  1128. begin
  1129. orgsrc2:=getintregister(list,size);
  1130. a_load_reg_reg(list,size,size,src2,orgsrc2);
  1131. end;
  1132. end;
  1133. a_op_reg_reg_reg(list,op,size,src1,src2,dst);
  1134. if docheck then
  1135. begin
  1136. { * signed overflow for addition iff
  1137. - src1 and src2 are negative and result is positive (excep in case of
  1138. subtraction, then sign of src1 has to be inverted)
  1139. - src1 and src2 are positive and result is negative
  1140. -> Simplified boolean equivalent (in terms of sign bits):
  1141. not(src1 xor src2) and (src1 xor dst)
  1142. for subtraction, multiplication: invert src1 sign bit
  1143. for division: handle separately (div by zero, low(inttype) div -1),
  1144. not supported by this code
  1145. * unsigned overflow iff carry out, aka dst < src1 or dst < src2
  1146. }
  1147. location_reset(ovloc,LOC_REGISTER,OS_S32);
  1148. { not pasbool8, because then we'd still have to convert the integer to
  1149. a boolean via branches for Dalvik}
  1150. ovloc.register:=getintregister(list,s32inttype);
  1151. if not ((size.typ=pointerdef) or
  1152. ((size.typ=orddef) and
  1153. (torddef(size).ordtype in [u64bit,u16bit,u32bit,u8bit,uchar,
  1154. pasbool1,pasbool8,pasbool16,pasbool32,pasbool64]))) then
  1155. begin
  1156. a_load_reg_stack(list,size,src1);
  1157. if op in [OP_SUB,OP_IMUL] then
  1158. a_op_stack(list,OP_NOT,size,false);
  1159. a_op_reg_stack(list,OP_XOR,size,src2);
  1160. a_op_stack(list,OP_NOT,size,false);
  1161. a_load_reg_stack(list,size,src1);
  1162. a_op_reg_stack(list,OP_XOR,size,dst);
  1163. a_op_stack(list,OP_AND,size,false);
  1164. a_op_const_stack(list,OP_SHR,size,(size.size*8)-1);
  1165. if size.size=8 then
  1166. begin
  1167. //todo: any operands needed?
  1168. list.concat(taicpu.op_none(a_i32_wrap_i64));
  1169. decstack(list,1);
  1170. end;
  1171. end
  1172. else
  1173. begin
  1174. a_load_const_stack(list,s32inttype,0,R_INTREGISTER);
  1175. current_asmdata.getjumplabel(lab);
  1176. { can be optimized by removing duplicate xor'ing to convert dst from
  1177. signed to unsigned quadrant }
  1178. a_cmp_reg_reg_label(list,size,OC_B,dst,src1,lab);
  1179. a_cmp_reg_reg_label(list,size,OC_B,dst,src2,lab);
  1180. a_op_const_stack(list,OP_XOR,s32inttype,1);
  1181. a_label(list,lab);
  1182. end;
  1183. a_load_stack_reg(list,s32inttype,ovloc.register);
  1184. end
  1185. else
  1186. ovloc.loc:=LOC_VOID;
  1187. end;
  1188. procedure thlcgwasm.a_cmp_const_ref_label(list: TAsmList; size: tdef; cmp_op: topcmp; a: tcgint; const ref: treference; l: tasmlabel);
  1189. begin
  1190. if ref.base<>NR_EVAL_STACK_BASE then
  1191. a_load_ref_stack(list,size,ref,prepare_stack_for_ref(list,ref,false));
  1192. maybe_adjust_cmp_stackval(list,size,cmp_op);
  1193. a_load_const_stack(list,size,maybe_adjust_cmp_constval(size,cmp_op,a),def2regtyp(size));
  1194. a_cmp_stack_label(list,size,cmp_op,l);
  1195. end;
  1196. procedure thlcgwasm.a_cmp_const_reg_label(list: TAsmList; size: tdef; cmp_op: topcmp; a: tcgint; reg: tregister; l: tasmlabel);
  1197. begin
  1198. a_load_reg_stack(list,size,reg);
  1199. maybe_adjust_cmp_stackval(list,size,cmp_op);
  1200. a_load_const_stack(list,size,maybe_adjust_cmp_constval(size,cmp_op,a),def2regtyp(size));
  1201. a_cmp_stack_label(list,size,cmp_op,l);
  1202. end;
  1203. procedure thlcgwasm.a_cmp_ref_reg_label(list: TAsmList; size: tdef; cmp_op: topcmp; const ref: treference; reg: tregister; l: tasmlabel);
  1204. begin
  1205. a_load_reg_stack(list,size,reg);
  1206. maybe_adjust_cmp_stackval(list,size,cmp_op);
  1207. if ref.base<>NR_EVAL_STACK_BASE then
  1208. a_load_ref_stack(list,size,ref,prepare_stack_for_ref(list,ref,false))
  1209. else begin
  1210. // todo: need a swap operation?
  1211. //list.concat(taicpu.op_none(a_swap));
  1212. Internalerror(2019083003);
  1213. end;
  1214. maybe_adjust_cmp_stackval(list,size,cmp_op);
  1215. a_cmp_stack_label(list,size,cmp_op,l);
  1216. end;
  1217. procedure thlcgwasm.a_cmp_reg_ref_label(list: TAsmList; size: tdef; cmp_op: topcmp; reg: tregister; const ref: treference; l: tasmlabel);
  1218. begin
  1219. if ref.base<>NR_EVAL_STACK_BASE then
  1220. a_load_ref_stack(list,size,ref,prepare_stack_for_ref(list,ref,false));
  1221. maybe_adjust_cmp_stackval(list,size,cmp_op);
  1222. a_load_reg_stack(list,size,reg);
  1223. maybe_adjust_cmp_stackval(list,size,cmp_op);
  1224. a_cmp_stack_label(list,size,cmp_op,l);
  1225. end;
  1226. procedure thlcgwasm.a_cmp_reg_reg_label(list: TAsmList; size: tdef; cmp_op: topcmp; reg1, reg2: tregister; l: tasmlabel);
  1227. begin
  1228. a_load_reg_stack(list,size,reg2);
  1229. maybe_adjust_cmp_stackval(list,size,cmp_op);
  1230. a_load_reg_stack(list,size,reg1);
  1231. maybe_adjust_cmp_stackval(list,size,cmp_op);
  1232. a_cmp_stack_label(list,size,cmp_op,l);
  1233. end;
  1234. procedure thlcgwasm.a_jmp_always(list: TAsmList; l: tasmlabel);
  1235. begin
  1236. //todo: for proper jumping it's necessary to check
  1237. // all active blocks (if, block, loops)
  1238. // and jump to the proper one.
  1239. //list.concat(taicpu.op_const(a_i32_const, 0));
  1240. if l = current_procinfo.CurrBreakLabel then begin
  1241. // todo: this should be moved to node generator pass2
  1242. list.concat(taicpu.op_const(a_i32_const, 0));
  1243. list.concat(taicpu.op_const(a_br,2+blocks))
  1244. end else if l = current_procinfo.CurrContinueLabel then begin
  1245. list.concat(taicpu.op_const(a_i32_const, 0));
  1246. list.concat(taicpu.op_const(a_br,loopContBr+blocks))
  1247. end else begin
  1248. //Internalerror(2019091806); // unexpected jump
  1249. Internalerror(2019091806); // unexpected jump
  1250. end;
  1251. end;
  1252. procedure thlcgwasm.concatcopy_normal_array(list: TAsmList; size: tdef; const source, dest: treference);
  1253. var
  1254. procname: string;
  1255. eledef: tdef;
  1256. ndim: longint;
  1257. adddefaultlenparas: boolean;
  1258. begin
  1259. { load copy helper parameters on the stack }
  1260. a_load_ref_stack(list,ptruinttype,source,prepare_stack_for_ref(list,source,false));
  1261. a_load_ref_stack(list,ptruinttype,dest,prepare_stack_for_ref(list,dest,false));
  1262. { call copy helper }
  1263. eledef:=tarraydef(size).elementdef;
  1264. ndim:=1;
  1265. adddefaultlenparas:=true;
  1266. case eledef.typ of
  1267. orddef:
  1268. begin
  1269. case torddef(eledef).ordtype of
  1270. pasbool1,pasbool8,s8bit,u8bit,bool8bit,uchar,
  1271. s16bit,u16bit,bool16bit,pasbool16,
  1272. uwidechar,
  1273. s32bit,u32bit,bool32bit,pasbool32,
  1274. s64bit,u64bit,bool64bit,pasbool64,scurrency:
  1275. procname:='FPC_COPY_SHALLOW_ARRAY'
  1276. else
  1277. internalerror(2011020504);
  1278. end;
  1279. end;
  1280. arraydef:
  1281. begin
  1282. { call fpc_setlength_dynarr_multidim with deepcopy=true, and extra
  1283. parameters }
  1284. while (eledef.typ=arraydef) and
  1285. not is_dynamic_array(eledef) do
  1286. begin
  1287. eledef:=tarraydef(eledef).elementdef;
  1288. inc(ndim)
  1289. end;
  1290. if (ndim=1) then
  1291. procname:='FPC_COPY_SHALLOW_ARRAY'
  1292. else
  1293. begin
  1294. { deepcopy=true }
  1295. a_load_const_stack(list,pasbool1type,1,R_INTREGISTER);
  1296. { ndim }
  1297. a_load_const_stack(list,s32inttype,ndim,R_INTREGISTER);
  1298. { eletype }
  1299. { todo: WASM
  1300. a_load_const_stack(list,cwidechartype,ord(jvmarrtype_setlength(eledef)),R_INTREGISTER);
  1301. }
  1302. adddefaultlenparas:=false;
  1303. procname:='FPC_SETLENGTH_DYNARR_MULTIDIM';
  1304. end;
  1305. end;
  1306. recorddef:
  1307. procname:='FPC_COPY_JRECORD_ARRAY';
  1308. procvardef:
  1309. if tprocvardef(eledef).is_addressonly then
  1310. procname:='FPC_COPY_SHALLOW_ARRAY'
  1311. else
  1312. procname:='FPC_COPY_JPROCVAR_ARRAY';
  1313. setdef:
  1314. if tsetdef(eledef).elementdef.typ=enumdef then
  1315. procname:='FPC_COPY_JENUMSET_ARRAY'
  1316. else
  1317. procname:='FPC_COPY_JBITSET_ARRAY';
  1318. floatdef:
  1319. procname:='FPC_COPY_SHALLOW_ARRAY';
  1320. stringdef:
  1321. if is_shortstring(eledef) then
  1322. procname:='FPC_COPY_JSHORTSTRING_ARRAY'
  1323. else
  1324. procname:='FPC_COPY_SHALLOW_ARRAY';
  1325. variantdef:
  1326. begin
  1327. {$ifndef nounsupported}
  1328. procname:='FPC_COPY_SHALLOW_ARRAY';
  1329. {$else}
  1330. { todo: make a deep copy via clone... }
  1331. internalerror(2011020505);
  1332. {$endif}
  1333. end;
  1334. else
  1335. procname:='FPC_COPY_SHALLOW_ARRAY';
  1336. end;
  1337. if adddefaultlenparas then
  1338. begin
  1339. { -1, -1 means "copy entire array" }
  1340. a_load_const_stack(list,s32inttype,-1,R_INTREGISTER);
  1341. a_load_const_stack(list,s32inttype,-1,R_INTREGISTER);
  1342. end;
  1343. g_call_system_proc(list,procname,[],nil);
  1344. if ndim<>1 then
  1345. begin
  1346. { pop return value, must be the same as dest }
  1347. //list.concat(taicpu.op_none(a_pop));
  1348. Internalerror(2019083001); // no support for arrays
  1349. decstack(list,1);
  1350. end;
  1351. end;
  1352. procedure thlcgwasm.concatcopy_record(list: TAsmList; size: tdef; const source, dest: treference);
  1353. var
  1354. srsym: tsym;
  1355. pd: tprocdef;
  1356. begin
  1357. { self }
  1358. a_load_ref_stack(list,size,source,prepare_stack_for_ref(list,source,false));
  1359. { result }
  1360. a_load_ref_stack(list,size,dest,prepare_stack_for_ref(list,dest,false));
  1361. { call fpcDeepCopy helper }
  1362. srsym:=search_struct_member(tabstractrecorddef(size),'FPCDEEPCOPY');
  1363. if not assigned(srsym) or
  1364. (srsym.typ<>procsym) then
  1365. Message1(cg_f_unknown_compilerproc,size.typename+'.fpcDeepCopy');
  1366. pd:=tprocdef(tprocsym(srsym).procdeflist[0]);
  1367. a_call_name(list,pd,pd.mangledname,[],nil,false);
  1368. { both parameters are removed, no function result }
  1369. decstack(list,2);
  1370. end;
  1371. procedure thlcgwasm.concatcopy_set(list: TAsmList; size: tdef; const source, dest: treference);
  1372. begin
  1373. a_load_ref_stack(list,size,source,prepare_stack_for_ref(list,source,false));
  1374. a_load_ref_stack(list,size,dest,prepare_stack_for_ref(list,dest,false));
  1375. { call set copy helper }
  1376. if tsetdef(size).elementdef.typ=enumdef then
  1377. g_call_system_proc(list,'fpc_enumset_copy',[],nil)
  1378. else
  1379. g_call_system_proc(list,'fpc_bitset_copy',[],nil);
  1380. end;
  1381. procedure thlcgwasm.concatcopy_shortstring(list: TAsmList; size: tdef; const source, dest: treference);
  1382. var
  1383. srsym: tsym;
  1384. pd: tprocdef;
  1385. begin
  1386. { self }
  1387. a_load_ref_stack(list,size,source,prepare_stack_for_ref(list,source,false));
  1388. { result }
  1389. a_load_ref_stack(list,size,dest,prepare_stack_for_ref(list,dest,false));
  1390. { call fpcDeepCopy helper }
  1391. srsym:=search_struct_member(java_shortstring,'FPCDEEPCOPY');
  1392. if not assigned(srsym) or
  1393. (srsym.typ<>procsym) then
  1394. Message1(cg_f_unknown_compilerproc,'ShortstringClass.FpcDeepCopy');
  1395. pd:=tprocdef(tprocsym(srsym).procdeflist[0]);
  1396. a_call_name(list,pd,pd.mangledname,[],nil,false);
  1397. { both parameters are removed, no function result }
  1398. decstack(list,2);
  1399. end;
  1400. procedure thlcgwasm.paravarsym_set_initialloc_to_paraloc(vs: tparavarsym);
  1401. begin
  1402. // mark all callee side parameters AS local!
  1403. inherited paravarsym_set_initialloc_to_paraloc(vs);
  1404. if (vs.initialloc.loc = LOC_REFERENCE) then
  1405. vs.initialloc.reference.islocal := true;
  1406. end;
  1407. procedure thlcgwasm.g_concatcopy(list: TAsmList; size: tdef; const source, dest: treference);
  1408. var
  1409. handled: boolean;
  1410. begin
  1411. handled:=false;
  1412. case size.typ of
  1413. arraydef:
  1414. begin
  1415. if not is_dynamic_array(size) then
  1416. begin
  1417. concatcopy_normal_array(list,size,source,dest);
  1418. handled:=true;
  1419. end;
  1420. end;
  1421. recorddef:
  1422. begin
  1423. concatcopy_record(list,size,source,dest);
  1424. handled:=true;
  1425. end;
  1426. setdef:
  1427. begin
  1428. concatcopy_set(list,size,source,dest);
  1429. handled:=true;
  1430. end;
  1431. stringdef:
  1432. begin
  1433. if is_shortstring(size) then
  1434. begin
  1435. concatcopy_shortstring(list,size,source,dest);
  1436. handled:=true;
  1437. end;
  1438. end;
  1439. else
  1440. ;
  1441. end;
  1442. if not handled then
  1443. inherited;
  1444. end;
  1445. procedure thlcgwasm.g_copyshortstring(list: TAsmList; const source, dest: treference; strdef: tstringdef);
  1446. begin
  1447. concatcopy_shortstring(list,strdef,source,dest);
  1448. end;
  1449. procedure thlcgwasm.a_loadfpu_ref_ref(list: TAsmList; fromsize, tosize: tdef; const ref1, ref2: treference);
  1450. var
  1451. dstack_slots: longint;
  1452. begin
  1453. dstack_slots:=prepare_stack_for_ref(list,ref2,false);
  1454. a_load_ref_stack(list,fromsize,ref1,prepare_stack_for_ref(list,ref1,false));
  1455. resizestackfpuval(list,def_cgsize(fromsize),def_cgsize(tosize));
  1456. a_load_stack_ref(list,tosize,ref2,dstack_slots);
  1457. end;
  1458. procedure thlcgwasm.a_loadfpu_ref_reg(list: TAsmList; fromsize, tosize: tdef; const ref: treference; reg: tregister);
  1459. begin
  1460. a_load_ref_stack(list,fromsize,ref,prepare_stack_for_ref(list,ref,false));
  1461. resizestackfpuval(list,def_cgsize(fromsize),def_cgsize(tosize));
  1462. a_load_stack_reg(list,tosize,reg);
  1463. end;
  1464. procedure thlcgwasm.a_loadfpu_reg_ref(list: TAsmList; fromsize, tosize: tdef; reg: tregister; const ref: treference);
  1465. var
  1466. dstack_slots: longint;
  1467. begin
  1468. dstack_slots:=prepare_stack_for_ref(list,ref,false);
  1469. a_load_reg_stack(list,fromsize,reg);
  1470. resizestackfpuval(list,def_cgsize(fromsize),def_cgsize(tosize));
  1471. a_load_stack_ref(list,tosize,ref,dstack_slots);
  1472. end;
  1473. procedure thlcgwasm.a_loadfpu_reg_reg(list: TAsmList; fromsize, tosize: tdef; reg1, reg2: tregister);
  1474. begin
  1475. a_load_reg_stack(list,fromsize,reg1);
  1476. resizestackfpuval(list,def_cgsize(fromsize),def_cgsize(tosize));
  1477. a_load_stack_reg(list,tosize,reg2);
  1478. end;
  1479. procedure thlcgwasm.g_proc_entry(list: TAsmList; localsize: longint; nostackframe: boolean);
  1480. var
  1481. pd: tcpuprocdef;
  1482. begin
  1483. pd:=tcpuprocdef(current_procinfo.procdef);
  1484. g_procdef(list,pd);
  1485. tg.gethltemp(list,voidpointertype,voidpointertype.size,tt_persistent,pd.frame_pointer_ref);
  1486. tg.gethltemp(list,voidpointertype,voidpointertype.size,tt_persistent,pd.base_pointer_ref);
  1487. { the localsize is based on tg.lasttemp -> already in terms of stack
  1488. slots rather than bytes }
  1489. //list.concat(tai_directive.Create(asd_jlimit,'locals '+tostr(localsize)));
  1490. { we insert the unit initialisation code afterwards in the proginit code,
  1491. and it uses one stack slot }
  1492. //if (current_procinfo.procdef.proctypeoption=potype_proginit) then
  1493. //fmaxevalstackheight:=max(1,fmaxevalstackheight);
  1494. list.Concat(tai_local.create(wbt_i32,FRAME_POINTER_SYM)); //TWasmBasicType
  1495. list.Concat(tai_local.create(wbt_i32,BASE_POINTER_SYM)); //TWasmBasicType
  1496. list.Concat(taicpu.op_sym(a_get_global,current_asmdata.RefAsmSymbol(STACK_POINTER_SYM,AT_LABEL)));
  1497. list.Concat(taicpu.op_ref(a_set_local,pd.base_pointer_ref));
  1498. if (localsize>0) then begin
  1499. list.Concat(taicpu.op_ref(a_get_local,pd.base_pointer_ref));
  1500. list.concat(taicpu.op_const(a_i32_const, localsize ));
  1501. list.concat(taicpu.op_none(a_i32_sub));
  1502. list.Concat(taicpu.op_ref(a_set_local,pd.frame_pointer_ref));
  1503. list.Concat(taicpu.op_ref(a_get_local,pd.frame_pointer_ref));
  1504. list.Concat(taicpu.op_sym(a_set_global,current_asmdata.RefAsmSymbol(STACK_POINTER_SYM,AT_LABEL)));
  1505. end;
  1506. //list.concat(tai_directive.Create(asd_jlimit,'stack '+tostr(fmaxevalstackheight)));
  1507. end;
  1508. procedure thlcgwasm.g_proc_exit(list: TAsmList; parasize: longint; nostackframe: boolean);
  1509. var
  1510. pd: tcpuprocdef;
  1511. begin
  1512. pd:=tcpuprocdef(current_procinfo.procdef);
  1513. list.Concat(taicpu.op_ref(a_get_local,pd.base_pointer_ref));
  1514. list.Concat(taicpu.op_sym(a_set_global,current_asmdata.RefAsmSymbol(STACK_POINTER_SYM,AT_LABEL)));
  1515. list.concat(taicpu.op_none(a_return));
  1516. list.concat(taicpu.op_none(a_end_function));
  1517. end;
  1518. procedure thlcgwasm.gen_load_return_value(list: TAsmList);
  1519. begin
  1520. { constructors don't return anything in the jvm }
  1521. if current_procinfo.procdef.proctypeoption in [potype_constructor,potype_class_constructor] then
  1522. exit;
  1523. inherited gen_load_return_value(list);
  1524. end;
  1525. procedure thlcgwasm.record_generated_code_for_procdef(pd: tprocdef; code, data: TAsmList);
  1526. begin
  1527. { add something to the al_procedures list as well, because if all al_*
  1528. lists are empty, the assembler writer isn't called }
  1529. if not code.empty and
  1530. current_asmdata.asmlists[al_procedures].empty then
  1531. current_asmdata.asmlists[al_procedures].concat(tai_align.Create(4));
  1532. tcpuprocdef(pd).exprasmlist:=TAsmList.create;
  1533. new_section(tcpuprocdef(pd).exprasmlist,sec_code,lower(pd.mangledname),current_settings.alignment.procalign);
  1534. tcpuprocdef(pd).exprasmlist.concatlist(code);
  1535. if assigned(data) and
  1536. not data.empty then
  1537. internalerror(2010122801);
  1538. end;
  1539. procedure thlcgwasm.g_incrrefcount(list: TAsmList; t: tdef; const ref: treference);
  1540. begin
  1541. // do nothing
  1542. end;
  1543. procedure thlcgwasm.g_array_rtti_helper(list: TAsmList; t: tdef; const ref: treference; const highloc: tlocation; const name: string);
  1544. var
  1545. normaldim: longint;
  1546. eleref: treference;
  1547. begin
  1548. { only in case of initialisation, we have to set all elements to "empty" }
  1549. if name<>'fpc_initialize_array' then
  1550. exit;
  1551. { put array on the stack }
  1552. a_load_ref_stack(list,ptruinttype,ref,prepare_stack_for_ref(list,ref,false));
  1553. { in case it's an open array whose elements are regular arrays, put the
  1554. dimension of the regular arrays on the stack (otherwise pass 0) }
  1555. normaldim:=0;
  1556. while (t.typ=arraydef) and
  1557. not is_dynamic_array(t) do
  1558. begin
  1559. inc(normaldim);
  1560. t:=tarraydef(t).elementdef;
  1561. end;
  1562. a_load_const_stack(list,s32inttype,normaldim,R_INTREGISTER);
  1563. { highloc is invalid, the length is part of the array in Java }
  1564. if is_wide_or_unicode_string(t) then
  1565. g_call_system_proc(list,'fpc_initialize_array_unicodestring',[],nil)
  1566. else if is_ansistring(t) then
  1567. g_call_system_proc(list,'fpc_initialize_array_ansistring',[],nil)
  1568. else if is_dynamic_array(t) then
  1569. g_call_system_proc(list,'fpc_initialize_array_dynarr',[],nil)
  1570. else if is_record(t) or
  1571. (t.typ=setdef) then
  1572. begin
  1573. tg.gethltemp(list,t,t.size,tt_persistent,eleref);
  1574. a_load_ref_stack(list,t,eleref,prepare_stack_for_ref(list,eleref,false));
  1575. if is_record(t) then
  1576. g_call_system_proc(list,'fpc_initialize_array_record',[],nil)
  1577. else if tsetdef(t).elementdef.typ=enumdef then
  1578. g_call_system_proc(list,'fpc_initialize_array_enumset',[],nil)
  1579. else
  1580. g_call_system_proc(list,'fpc_initialize_array_bitset',[],nil);
  1581. tg.ungettemp(list,eleref);
  1582. end
  1583. else if (t.typ=enumdef) then
  1584. begin
  1585. if get_enum_init_val_ref(t,eleref) then
  1586. begin
  1587. a_load_ref_stack(list,ptruinttype,eleref,prepare_stack_for_ref(list,eleref,false));
  1588. g_call_system_proc(list,'fpc_initialize_array_object',[],nil);
  1589. end;
  1590. end
  1591. else
  1592. internalerror(2011031901);
  1593. end;
  1594. procedure thlcgwasm.g_initialize(list: TAsmList; t: tdef; const ref: treference);
  1595. var
  1596. dummyloc: tlocation;
  1597. sym: tsym;
  1598. pd: tprocdef;
  1599. begin
  1600. if (t.typ=arraydef) and
  1601. not is_dynamic_array(t) then
  1602. begin
  1603. dummyloc.loc:=LOC_INVALID;
  1604. g_array_rtti_helper(list,tarraydef(t).elementdef,ref,dummyloc,'fpc_initialize_array')
  1605. end
  1606. else if is_record(t) then
  1607. begin
  1608. { call the fpcInitializeRec method }
  1609. sym:=tsym(trecorddef(t).symtable.find('FPCINITIALIZEREC'));
  1610. if assigned(sym) and
  1611. (sym.typ=procsym) then
  1612. begin
  1613. if tprocsym(sym).procdeflist.Count<>1 then
  1614. internalerror(2011071713);
  1615. pd:=tprocdef(tprocsym(sym).procdeflist[0]);
  1616. end
  1617. else
  1618. internalerror(2013113008);
  1619. a_load_ref_stack(list,ptruinttype,ref,prepare_stack_for_ref(list,ref,false));
  1620. a_call_name(list,pd,pd.mangledname,[],nil,false);
  1621. { parameter removed, no result }
  1622. decstack(list,1);
  1623. end
  1624. else
  1625. a_load_const_ref(list,t,0,ref);
  1626. end;
  1627. procedure thlcgwasm.g_finalize(list: TAsmList; t: tdef; const ref: treference);
  1628. begin
  1629. // do nothing
  1630. end;
  1631. procedure thlcgwasm.g_overflowcheck(list: TAsmList; const Loc: tlocation; def: tdef);
  1632. begin
  1633. { not possible, need the original operands }
  1634. internalerror(2012102101);
  1635. end;
  1636. procedure thlcgwasm.g_overflowCheck_loc(List: TAsmList; const Loc: TLocation; def: TDef; var ovloc: tlocation);
  1637. var
  1638. hl : tasmlabel;
  1639. begin
  1640. if not(cs_check_overflow in current_settings.localswitches) then
  1641. exit;
  1642. current_asmdata.getjumplabel(hl);
  1643. a_cmp_const_loc_label(list,s32inttype,OC_EQ,0,ovloc,hl);
  1644. g_call_system_proc(list,'fpc_overflow',[],nil);
  1645. a_label(list,hl);
  1646. end;
  1647. procedure thlcgwasm.location_get_data_ref(list: TAsmList; def: tdef; const l: tlocation; var ref: treference; loadref: boolean; alignment: longint);
  1648. var
  1649. tmploc: tlocation;
  1650. begin
  1651. { This routine is a combination of a generalised a_loadaddr_ref_reg()
  1652. that also works for addresses in registers (in case loadref is false)
  1653. and of a_load_ref_reg (in case loadref is true). It is used for
  1654. a) getting the address of managed var/out parameters
  1655. b) getting to the actual data of value types that are passed by
  1656. reference by the compiler (and then get a local copy at the caller
  1657. side). Normally, depending on whether this reference is passed in a
  1658. register or reference, we either need a reference with that register
  1659. as base or load the address in that reference and use that as a new
  1660. base.
  1661. Since the JVM cannot take the address of anything, all
  1662. "pass-by-reference" value parameters (which are always aggregate types)
  1663. are already simply the implicit pointer to the data (since arrays,
  1664. records, etc are already internally implicit pointers). This means
  1665. that if "loadref" is true, we must simply return this implicit pointer.
  1666. If it is false, we are supposed the take the address of this implicit
  1667. pointer, which is not possible.
  1668. However, managed types are also implicit pointers in Pascal, so in that
  1669. case "taking the address" again consists of simply returning the
  1670. implicit pointer/current value (in case of a var/out parameter, this
  1671. value is stored inside an array).
  1672. }
  1673. if not loadref then
  1674. begin
  1675. if not is_managed_type(def) then
  1676. internalerror(2011020601);
  1677. tmploc:=l;
  1678. end
  1679. else
  1680. begin
  1681. if not wasmAlwayInMem(def) then
  1682. begin
  1683. { passed by reference in array of single element; l contains the
  1684. base address of the array }
  1685. location_reset_ref(tmploc,LOC_REFERENCE,OS_ADDR,4,ref.volatility);
  1686. cgutils.reference_reset_base(tmploc.reference,getaddressregister(list,ptruinttype),0,tmploc.reference.temppos,4,ref.volatility);
  1687. a_load_loc_reg(list,ptruinttype,ptruinttype,l,tmploc.reference.base);
  1688. end
  1689. else
  1690. tmploc:=l;
  1691. end;
  1692. case tmploc.loc of
  1693. LOC_REGISTER,
  1694. LOC_CREGISTER :
  1695. begin
  1696. { the implicit pointer is in a register and has to be in a
  1697. reference -> create a reference and put it there }
  1698. location_force_mem(list,tmploc,ptruinttype);
  1699. ref:=tmploc.reference;
  1700. end;
  1701. LOC_REFERENCE,
  1702. LOC_CREFERENCE :
  1703. begin
  1704. ref:=tmploc.reference;
  1705. end;
  1706. else
  1707. internalerror(2011020603);
  1708. end;
  1709. end;
  1710. procedure thlcgwasm.maybe_change_load_node_reg(list: TAsmList; var n: tnode; reload: boolean);
  1711. begin
  1712. { don't do anything, all registers become stack locations anyway }
  1713. end;
  1714. procedure thlcgwasm.g_copyvaluepara_openarray(list: TAsmList; const ref: treference; const lenloc: tlocation; arrdef: tarraydef; destreg: tregister);
  1715. var
  1716. localref: treference;
  1717. arrloc: tlocation;
  1718. stackslots: longint;
  1719. begin
  1720. { temporary reference for passing to concatcopy }
  1721. tg.gethltemp(list,ptruinttype,ptruinttype.size,tt_persistent,localref);
  1722. stackslots:=prepare_stack_for_ref(list,localref,false);
  1723. { create the local copy of the array (lenloc is invalid, get length
  1724. directly from the array) }
  1725. location_reset_ref(arrloc,LOC_REFERENCE,OS_ADDR,sizeof(pint),ref.volatility);
  1726. arrloc.reference:=ref;
  1727. g_getarraylen(list,arrloc);
  1728. g_newarray(list,arrdef,1);
  1729. a_load_stack_ref(list,ptruinttype,localref,stackslots);
  1730. { copy the source array to the destination }
  1731. g_concatcopy(list,arrdef,ref,localref);
  1732. { and put the array pointer in the register as expected by the caller }
  1733. a_load_ref_reg(list,ptruinttype,ptruinttype,localref,destreg);
  1734. end;
  1735. procedure thlcgwasm.g_releasevaluepara_openarray(list: TAsmList; arrdef: tarraydef; const l: tlocation);
  1736. begin
  1737. // do nothing, long live garbage collection!
  1738. end;
  1739. procedure thlcgwasm.gen_initialize_code(list: TAsmList);
  1740. var
  1741. ref: treference;
  1742. begin
  1743. { create globals with wrapped types such as arrays/records }
  1744. case current_procinfo.procdef.proctypeoption of
  1745. potype_unitinit:
  1746. begin
  1747. cgutils.reference_reset_base(ref,NR_NO,0,ctempposinvalid,1,[]);
  1748. if assigned(current_module.globalsymtable) then
  1749. allocate_implicit_structs_for_st_with_base_ref(list,current_module.globalsymtable,ref,staticvarsym);
  1750. allocate_implicit_structs_for_st_with_base_ref(list,current_module.localsymtable,ref,staticvarsym);
  1751. end;
  1752. potype_class_constructor:
  1753. begin
  1754. { also initialise local variables, if any }
  1755. inherited;
  1756. { initialise class fields }
  1757. cgutils.reference_reset_base(ref,NR_NO,0,ctempposinvalid,1,[]);
  1758. allocate_implicit_structs_for_st_with_base_ref(list,tabstractrecorddef(current_procinfo.procdef.owner.defowner).symtable,ref,staticvarsym);
  1759. end
  1760. else
  1761. inherited
  1762. end;
  1763. end;
  1764. procedure thlcgwasm.gen_entry_code(list: TAsmList);
  1765. begin
  1766. list.concat(Tai_force_line.Create);
  1767. end;
  1768. procedure thlcgwasm.gen_exit_code(list: TAsmList);
  1769. begin
  1770. { nothing }
  1771. end;
  1772. procedure thlcgwasm.a_bit_scan_reg_reg(list: TAsmList; reverse: boolean; srcsize, dstsize: tdef; src, dst: tregister);
  1773. begin
  1774. internalerror(2012090201);
  1775. end;
  1776. procedure thlcgwasm.a_loadmm_loc_reg(list: TAsmList; fromsize, tosize: tdef; const loc: tlocation; const reg: tregister; shuffle: pmmshuffle);
  1777. begin
  1778. internalerror(2012090202);
  1779. end;
  1780. procedure thlcgwasm.a_loadmm_reg_reg(list: TAsmList; fromsize, tosize: tdef; reg1, reg2: tregister; shuffle: pmmshuffle);
  1781. begin
  1782. internalerror(2012060130);
  1783. end;
  1784. procedure thlcgwasm.a_loadmm_ref_reg(list: TAsmList; fromsize, tosize: tdef; const ref: treference; reg: tregister; shuffle: pmmshuffle);
  1785. begin
  1786. internalerror(2012060131);
  1787. end;
  1788. procedure thlcgwasm.a_loadmm_reg_ref(list: TAsmList; fromsize, tosize: tdef; reg: tregister; const ref: treference; shuffle: pmmshuffle);
  1789. begin
  1790. internalerror(2012060132);
  1791. end;
  1792. procedure thlcgwasm.a_opmm_reg_reg(list: TAsmList; Op: TOpCG; size: tdef; src, dst: tregister; shuffle: pmmshuffle);
  1793. begin
  1794. internalerror(2012060133);
  1795. end;
  1796. procedure thlcgwasm.a_loadmm_intreg_reg(list: TAsmList; fromsize, tosize: tdef; intreg, mmreg: tregister; shuffle: pmmshuffle);
  1797. begin
  1798. internalerror(2012060134);
  1799. end;
  1800. procedure thlcgwasm.a_loadmm_reg_intreg(list: TAsmList; fromsize, tosize: tdef; mmreg, intreg: tregister; shuffle: pmmshuffle);
  1801. begin
  1802. internalerror(2012060135);
  1803. end;
  1804. procedure thlcgwasm.g_stackpointer_alloc(list: TAsmList; size: longint);
  1805. begin
  1806. internalerror(2012090203);
  1807. end;
  1808. procedure thlcgwasm.g_intf_wrapper(list: TAsmList; procdef: tprocdef; const labelname: string; ioffset: longint);
  1809. begin
  1810. internalerror(2012090204);
  1811. end;
  1812. procedure thlcgwasm.g_adjust_self_value(list: TAsmList; procdef: tprocdef; ioffset: aint);
  1813. begin
  1814. internalerror(2012090205);
  1815. end;
  1816. procedure thlcgwasm.g_local_unwind(list: TAsmList; l: TAsmLabel);
  1817. begin
  1818. internalerror(2012090206);
  1819. end;
  1820. procedure thlcgwasm.g_procdef(list: TAsmList; pd: tprocdef);
  1821. var
  1822. functype: tai_functype;
  1823. i: integer;
  1824. prm: tcpuparavarsym;
  1825. bt: TWasmBasicType;
  1826. begin
  1827. functype:=tai_functype.create(pd.mangledname);
  1828. if Assigned(pd.paras) and (pd.paras.Count>0) then
  1829. begin
  1830. for i:=0 to pd.paras.Count-1 do
  1831. begin
  1832. prm := tcpuparavarsym(pd.paras[i]);
  1833. case prm.paraloc[callerside].Size of
  1834. OS_8..OS_32, OS_S8..OS_S32:
  1835. functype.add_param(wbt_i32);
  1836. OS_64, OS_S64:
  1837. functype.add_param(wbt_i64);
  1838. OS_F32:
  1839. functype.add_param(wbt_f32);
  1840. OS_F64:
  1841. functype.add_param(wbt_f64);
  1842. else
  1843. // unsupported calleeside parameter type
  1844. Internalerror(2019093001);
  1845. end;
  1846. end;
  1847. end;
  1848. if Assigned(pd.returndef) and (pd.returndef.size>0) then
  1849. begin
  1850. if not defToWasmBasic(pd.returndef,bt) then
  1851. bt:=wbt_i32;
  1852. case bt of
  1853. wbt_i64:
  1854. functype.add_result(wbt_i64);
  1855. wbt_f32:
  1856. functype.add_result(wbt_f32);
  1857. wbt_f64:
  1858. functype.add_result(wbt_f64);
  1859. else
  1860. functype.add_result(wbt_i32);
  1861. end;
  1862. end;
  1863. list.Concat(functype);
  1864. end;
  1865. procedure thlcgwasm.a_load_stack_reg(list: TAsmList; size: tdef; reg: tregister);
  1866. var
  1867. opc: tasmop;
  1868. finishandval: tcgint;
  1869. begin
  1870. opc:=loadstoreopc(size,false,false,finishandval);
  1871. list.concat(taicpu.op_reg(opc,reg));
  1872. { avoid problems with getting the size of an open array etc }
  1873. if wasmAlwayInMem(size) then
  1874. size:=ptruinttype;
  1875. decstack(list,1);
  1876. end;
  1877. procedure thlcgwasm.a_load_stack_ref(list: TAsmList; size: tdef; const ref: treference; extra_slots: longint);
  1878. var
  1879. opc: tasmop;
  1880. finishandval: tcgint;
  1881. begin
  1882. { fake location that indicates the value has to remain on the stack }
  1883. if ref.base=NR_EVAL_STACK_BASE then
  1884. exit;
  1885. opc:=loadstoreopcref(size,false,ref,finishandval);
  1886. list.concat(taicpu.op_ref(opc,ref));
  1887. { avoid problems with getting the size of an open array etc }
  1888. if wasmAlwayInMem(size) then
  1889. size:=ptruinttype;
  1890. decstack(list,1+extra_slots);
  1891. end;
  1892. procedure thlcgwasm.a_load_reg_stack(list: TAsmList; size: tdef; reg: tregister);
  1893. var
  1894. opc: tasmop;
  1895. finishandval: tcgint;
  1896. begin
  1897. opc:=loadstoreopc(size,true,false,finishandval);
  1898. list.concat(taicpu.op_reg(opc,reg));
  1899. { avoid problems with getting the size of an open array etc }
  1900. if wasmAlwayInMem(size) then
  1901. size:=ptruinttype;
  1902. incstack(list,1);
  1903. if finishandval<>-1 then
  1904. a_op_const_stack(list,OP_AND,size,finishandval);
  1905. end;
  1906. procedure thlcgwasm.a_load_ref_stack(list: TAsmList; size: tdef; const ref: treference; extra_slots: longint);
  1907. var
  1908. opc: tasmop;
  1909. finishandval: tcgint;
  1910. begin
  1911. { fake location that indicates the value is already on the stack? }
  1912. if (ref.base=NR_EVAL_STACK_BASE) then
  1913. exit;
  1914. opc:=loadstoreopcref(size,true,ref,finishandval);
  1915. list.concat(taicpu.op_ref(opc,ref));
  1916. { avoid problems with getting the size of an open array etc }
  1917. if wasmAlwayInMem(size) then
  1918. size:=ptruinttype;
  1919. incstack(list,1-extra_slots);
  1920. if finishandval<>-1 then
  1921. a_op_const_stack(list,OP_AND,size,finishandval);
  1922. // there's no cast check in Wasm
  1923. //if ref.checkcast then
  1924. // gen_typecheck(list,a_checkcast,size);
  1925. end;
  1926. function thlcgwasm.loadstoreopcref(def: tdef; isload: boolean; const ref: treference; out finishandval: tcgint): tasmop;
  1927. const
  1928. {iisload} {issigned}
  1929. getputmem8 : array [boolean, boolean] of TAsmOp = ((a_i32_store8, a_i32_store8), (a_i32_load8_u, a_i32_load8_s));
  1930. getputmem16 : array [boolean, boolean] of TAsmOp = ((a_i32_store16, a_i32_store16), (a_i32_load16_u ,a_i32_load16_s));
  1931. getputmem32 : array [boolean, boolean] of TAsmOp = ((a_i32_store, a_i32_store), (a_i32_load, a_i32_load));
  1932. getputmem64 : array [boolean, boolean] of TAsmOp = ((a_i64_store, a_i64_store), (a_i64_load, a_i64_load));
  1933. getputmemf32 : array [boolean] of TAsmOp = (a_f32_store, a_f32_load);
  1934. getputmemf64 : array [boolean] of TAsmOp = (a_f64_store, a_f64_load);
  1935. begin
  1936. if (not ref.islocal) or assigned(ref.symbol) then
  1937. begin
  1938. { -> either a global (static) field, or a regular field. If a regular
  1939. field, then ref.base contains the self pointer, otherwise
  1940. ref.base=NR_NO. In both cases, the symbol contains all other
  1941. information (combined field name and type descriptor) }
  1942. case def.size of
  1943. 1: result := getputmem8[isload, is_signed(def)];
  1944. 2: result := getputmem16[isload, is_signed(def)];
  1945. 4:
  1946. if is_single(def) then
  1947. result := getputmemf32[isload]
  1948. else
  1949. result := getputmem32[isload, is_signed(def)];
  1950. 8: if is_double(def) then
  1951. result := getputmemf64[isload]
  1952. else
  1953. result := getputmem64[isload, is_signed(def)];
  1954. else
  1955. Internalerror(2019091501);
  1956. end;
  1957. //result:=getputopc[isload,ref.base=NR_NO];
  1958. finishandval:=-1;
  1959. { erase sign extension for byte/smallint loads }
  1960. if (def2regtyp(def)=R_INTREGISTER) and
  1961. not is_signed(def) and
  1962. (def.typ=orddef) and
  1963. not is_widechar(def) then
  1964. case def.size of
  1965. 1: if (torddef(def).high>127) then
  1966. finishandval:=255;
  1967. 2: if (torddef(def).high>32767) then
  1968. finishandval:=65535;
  1969. end;
  1970. end
  1971. else
  1972. result:=loadstoreopc(def,isload,false,finishandval);
  1973. end;
  1974. function thlcgwasm.loadstoreopc(def: tdef; isload, isarray: boolean; out finishandval: tcgint): tasmop;
  1975. var
  1976. size: longint;
  1977. begin
  1978. finishandval:=-1;
  1979. if isload then result := a_get_local
  1980. else result := a_set_local;
  1981. {case def2regtyp(def) of
  1982. R_INTREGISTER:
  1983. begin
  1984. size:=def.size;
  1985. case size of
  1986. 1,2,3,4:
  1987. if isload then
  1988. result:=a_i32_load
  1989. else
  1990. result:=a_i32_store;
  1991. 8:
  1992. if isload then
  1993. result:=a_i64_load
  1994. else
  1995. result:=a_i64_store;
  1996. else
  1997. internalerror(2011032814);
  1998. end;
  1999. end;
  2000. R_ADDRESSREGISTER:
  2001. if isload then
  2002. result:=a_i32_load
  2003. else
  2004. result:=a_i32_store;
  2005. R_FPUREGISTER:
  2006. begin
  2007. case tfloatdef(def).floattype of
  2008. s32real:
  2009. if isload then
  2010. result:=a_f32_load
  2011. else
  2012. result:=a_f32_store;
  2013. s64real:
  2014. if isload then
  2015. result:=a_f32_load
  2016. else
  2017. result:=a_f32_store
  2018. else
  2019. internalerror(2010120504);
  2020. end
  2021. end
  2022. else
  2023. internalerror(2010120502);
  2024. end;}
  2025. end;
  2026. procedure thlcgwasm.resize_stack_int_val(list: TAsmList; fromsize, tosize: tdef; formemstore: boolean);
  2027. var
  2028. fromcgsize, tocgsize: tcgsize;
  2029. begin
  2030. { When storing to an array, field or global variable, make sure the
  2031. static type verification can determine that the stored value fits
  2032. within the boundaries of the declared type (to appease the Dalvik VM).
  2033. Local variables either get their type upgraded in the debug info,
  2034. or have no type information at all }
  2035. if formemstore and
  2036. (tosize.typ=orddef) then
  2037. if (torddef(tosize).ordtype in [u8bit,uchar]) then
  2038. tosize:=s8inttype
  2039. else if torddef(tosize).ordtype=u16bit then
  2040. tosize:=s16inttype;
  2041. fromcgsize:=def_cgsize(fromsize);
  2042. tocgsize:=def_cgsize(tosize);
  2043. if fromcgsize in [OS_S64,OS_64] then
  2044. begin
  2045. if not(tocgsize in [OS_S64,OS_64]) then
  2046. begin
  2047. { truncate }
  2048. list.concat(taicpu.op_none(a_i32_wrap_i64));
  2049. decstack(list,1);
  2050. end;
  2051. end
  2052. else if tocgsize in [OS_S64,OS_64] then
  2053. begin
  2054. { extend }
  2055. if tocgsize = OS_S64 then
  2056. list.concat(taicpu.op_none(a_i64_extend_s_i32))
  2057. else
  2058. list.concat(taicpu.op_none(a_i64_extend_u_i32));
  2059. incstack(list,1);
  2060. { if it was an unsigned 32 bit value, remove sign extension }
  2061. if fromcgsize=OS_32 then
  2062. a_op_const_stack(list,OP_AND,s64inttype,cardinal($ffffffff));
  2063. end;
  2064. { Conversions between 32 and 64 bit types have been completely handled
  2065. above. We still may have to truncate or sign extend in case the
  2066. destination type is smaller that the source type, or has a different
  2067. sign. In case the destination is a widechar and the source is not, we
  2068. also have to insert a conversion to widechar.
  2069. }
  2070. if (not(fromcgsize in [OS_S64,OS_64,OS_32,OS_S32]) or
  2071. not(tocgsize in [OS_S64,OS_64,OS_32,OS_S32])) and
  2072. ((tcgsize2size[fromcgsize]>tcgsize2size[tocgsize]) or
  2073. ((tcgsize2size[fromcgsize]=tcgsize2size[tocgsize]) and
  2074. (fromcgsize<>tocgsize)) or
  2075. { needs to mask out the sign in the top 16 bits }
  2076. ((fromcgsize=OS_S8) and
  2077. (tocgsize=OS_16)) or
  2078. ((tosize=cwidechartype) and
  2079. (fromsize<>cwidechartype))) then
  2080. case tocgsize of
  2081. OS_8:
  2082. //todo: conversion
  2083. //a_op_const_stack(list,OP_AND,s32inttype,255);
  2084. ;
  2085. OS_S8:
  2086. //todo: conversion
  2087. //list.concat(taicpu.op_none(a_i2b));
  2088. ;
  2089. OS_16:
  2090. //todo: conversion
  2091. //if (tosize.typ=orddef) and
  2092. // (torddef(tosize).ordtype=uwidechar) then
  2093. // list.concat(taicpu.op_none(a_i2c))
  2094. //else
  2095. // a_op_const_stack(list,OP_AND,s32inttype,65535);
  2096. ;
  2097. OS_S16:
  2098. //todo: conversion
  2099. //list.concat(taicpu.op_none(a_i2s));
  2100. ;
  2101. else
  2102. ;
  2103. end;
  2104. end;
  2105. procedure thlcgwasm.maybe_resize_stack_para_val(list: TAsmList; retdef: tdef; callside: boolean);
  2106. var
  2107. convsize: tdef;
  2108. begin
  2109. if (retdef.typ=orddef) then
  2110. begin
  2111. if (torddef(retdef).ordtype in [u8bit,u16bit,uchar]) and
  2112. (torddef(retdef).high>=(1 shl (retdef.size*8-1))) then
  2113. begin
  2114. convsize:=nil;
  2115. if callside then
  2116. if torddef(retdef).ordtype in [u8bit,uchar] then
  2117. convsize:=s8inttype
  2118. else
  2119. convsize:=s16inttype
  2120. else if torddef(retdef).ordtype in [u8bit,uchar] then
  2121. convsize:=u8inttype
  2122. else
  2123. convsize:=u16inttype;
  2124. if assigned(convsize) then
  2125. resize_stack_int_val(list,s32inttype,convsize,false);
  2126. end;
  2127. end;
  2128. end;
  2129. procedure thlcgwasm.g_adjust_stack_after_call(list: TAsmList; pd: tabstractprocdef; paraheight: longint; forceresdef: tdef);
  2130. var
  2131. totalremovesize: longint;
  2132. realresdef: tdef;
  2133. begin
  2134. if not assigned(forceresdef) then
  2135. realresdef:=pd.returndef
  2136. else
  2137. realresdef:=forceresdef;
  2138. { a constructor doesn't actually return a value in the jvm }
  2139. if (tabstractprocdef(pd).proctypeoption=potype_constructor) then
  2140. totalremovesize:=paraheight
  2141. else
  2142. { even a byte takes up a full stackslot -> align size to multiple of 4 }
  2143. totalremovesize:=paraheight-(align(realresdef.size,4) shr 2);
  2144. { remove parameters from internal evaluation stack counter (in case of
  2145. e.g. no parameters and a result, it can also increase) }
  2146. if totalremovesize>0 then
  2147. decstack(list,totalremovesize)
  2148. else if totalremovesize<0 then
  2149. incstack(list,-totalremovesize);
  2150. end;
  2151. procedure thlcgwasm.allocate_implicit_struct_with_base_ref(list: TAsmList; vs: tabstractvarsym; ref: treference);
  2152. var
  2153. tmpref: treference;
  2154. begin
  2155. ref.symbol:=current_asmdata.RefAsmSymbol(vs.mangledname,AT_DATA);
  2156. tg.gethltemp(list,vs.vardef,vs.vardef.size,tt_persistent,tmpref);
  2157. { only copy the reference, not the actual data }
  2158. a_load_ref_ref(list,ptruinttype,ptruinttype,tmpref,ref);
  2159. { remains live since there's still a reference to the created
  2160. entity }
  2161. tg.ungettemp(list,tmpref);
  2162. end;
  2163. procedure thlcgwasm.allocate_enum_with_base_ref(list: TAsmList; vs: tabstractvarsym; const initref: treference; destbaseref: treference);
  2164. begin
  2165. destbaseref.symbol:=current_asmdata.RefAsmSymbol(vs.mangledname,AT_DATA);
  2166. { only copy the reference, not the actual data }
  2167. a_load_ref_ref(list,ptruinttype,ptruinttype,initref,destbaseref);
  2168. end;
  2169. function thlcgwasm.get_enum_init_val_ref(def: tdef; out ref: treference): boolean;
  2170. var
  2171. sym: tstaticvarsym;
  2172. begin
  2173. result:=false;
  2174. sym:=tstaticvarsym(tcpuenumdef(tenumdef(def).getbasedef).classdef.symtable.Find('__FPC_ZERO_INITIALIZER'));
  2175. { no enum with ordinal value 0 -> exit }
  2176. if not assigned(sym) then
  2177. exit;
  2178. reference_reset_symbol(ref,current_asmdata.RefAsmSymbol(sym.mangledname,AT_DATA),0,4,[]);
  2179. result:=true;
  2180. end;
  2181. procedure thlcgwasm.allocate_implicit_structs_for_st_with_base_ref(list: TAsmList; st: tsymtable; const ref: treference; allocvartyp: tsymtyp);
  2182. var
  2183. vs: tabstractvarsym;
  2184. def: tdef;
  2185. i: longint;
  2186. initref: treference;
  2187. begin
  2188. for i:=0 to st.symlist.count-1 do
  2189. begin
  2190. if (tsym(st.symlist[i]).typ<>allocvartyp) then
  2191. continue;
  2192. vs:=tabstractvarsym(st.symlist[i]);
  2193. if sp_static in vs.symoptions then
  2194. continue;
  2195. { vo_is_external and vo_has_local_copy means a staticvarsym that is
  2196. alias for a constsym, whose sole purpose is for allocating and
  2197. intialising the constant }
  2198. if [vo_is_external,vo_has_local_copy]*vs.varoptions=[vo_is_external] then
  2199. continue;
  2200. { threadvar innitializations are handled at the node tree level }
  2201. if vo_is_thread_var in vs.varoptions then
  2202. begin
  2203. { nothing }
  2204. end
  2205. else if wasmAlwayInMem(vs.vardef) then
  2206. allocate_implicit_struct_with_base_ref(list,vs,ref)
  2207. { enums are class instances in Java, while they are ordinals in
  2208. Pascal. When they are initialized with enum(0), such as in
  2209. constructors or global variables, initialize them with the
  2210. enum instance for 0 if it exists (if not, it remains nil since
  2211. there is no valid enum value in it) }
  2212. else if (vs.vardef.typ=enumdef) and
  2213. ((vs.typ<>fieldvarsym) or
  2214. (tdef(vs.owner.defowner).typ<>objectdef) or
  2215. (ts_jvm_enum_field_init in current_settings.targetswitches)) and
  2216. get_enum_init_val_ref(vs.vardef,initref) then
  2217. allocate_enum_with_base_ref(list,vs,initref,ref);
  2218. end;
  2219. { process symtables of routines part of this symtable (for local typed
  2220. constants) }
  2221. if allocvartyp=staticvarsym then
  2222. begin
  2223. for i:=0 to st.deflist.count-1 do
  2224. begin
  2225. def:=tdef(st.deflist[i]);
  2226. { the unit symtable also contains the methods of classes defined
  2227. in that unit -> skip them when processing the unit itself.
  2228. Localst is not assigned for the main program code.
  2229. Localst can be the same as st in case of unit init code. }
  2230. if (def.typ<>procdef) or
  2231. (def.owner<>st) or
  2232. not assigned(tprocdef(def).localst) or
  2233. (tprocdef(def).localst=st) then
  2234. continue;
  2235. allocate_implicit_structs_for_st_with_base_ref(list,tprocdef(def).localst,ref,allocvartyp);
  2236. end;
  2237. end;
  2238. end;
  2239. procedure thlcgwasm.gen_initialize_fields_code(list: TAsmList);
  2240. var
  2241. sym: tsym;
  2242. selfpara: tparavarsym;
  2243. selfreg: tregister;
  2244. ref: treference;
  2245. obj: tabstractrecorddef;
  2246. i: longint;
  2247. needinit: boolean;
  2248. begin
  2249. obj:=tabstractrecorddef(current_procinfo.procdef.owner.defowner);
  2250. { check whether there are any fields that need initialisation }
  2251. needinit:=false;
  2252. for i:=0 to obj.symtable.symlist.count-1 do
  2253. begin
  2254. sym:=tsym(obj.symtable.symlist[i]);
  2255. if (sym.typ=fieldvarsym) and
  2256. not(sp_static in sym.symoptions) and
  2257. (wasmAlwayInMem(tfieldvarsym(sym).vardef) or
  2258. ((tfieldvarsym(sym).vardef.typ=enumdef) and
  2259. get_enum_init_val_ref(tfieldvarsym(sym).vardef,ref))) then
  2260. begin
  2261. needinit:=true;
  2262. break;
  2263. end;
  2264. end;
  2265. if not needinit then
  2266. exit;
  2267. selfpara:=tparavarsym(current_procinfo.procdef.parast.find('self'));
  2268. if not assigned(selfpara) then
  2269. internalerror(2011033001);
  2270. selfreg:=getaddressregister(list,selfpara.vardef);
  2271. a_load_loc_reg(list,obj,obj,selfpara.localloc,selfreg);
  2272. cgutils.reference_reset_base(ref,selfreg,0,ctempposinvalid,1,[]);
  2273. allocate_implicit_structs_for_st_with_base_ref(list,obj.symtable,ref,fieldvarsym);
  2274. end;
  2275. procedure thlcgwasm.gen_typecheck(list: TAsmList; checkop: tasmop; checkdef: tdef);
  2276. begin
  2277. { replace special types with their equivalent class type }
  2278. if (checkdef.typ=pointerdef) and
  2279. wasmAlwayInMem(tpointerdef(checkdef).pointeddef) then
  2280. checkdef:=tpointerdef(checkdef).pointeddef;
  2281. if (checkdef=voidpointertype) or
  2282. (checkdef.typ=formaldef) then
  2283. checkdef:=ptruinttype
  2284. else if checkdef.typ=enumdef then
  2285. checkdef:=tcpuenumdef(checkdef).classdef
  2286. else if checkdef.typ=setdef then
  2287. begin
  2288. if tsetdef(checkdef).elementdef.typ=enumdef then
  2289. checkdef:=java_juenumset
  2290. else
  2291. checkdef:=java_jubitset;
  2292. end
  2293. else if is_wide_or_unicode_string(checkdef) then
  2294. checkdef:=java_jlstring
  2295. else if is_ansistring(checkdef) then
  2296. checkdef:=java_ansistring
  2297. else if is_shortstring(checkdef) then
  2298. checkdef:=java_shortstring;
  2299. if checkdef.typ in [objectdef,recorddef] then
  2300. list.concat(taicpu.op_sym(checkop,current_asmdata.RefAsmSymbol(tabstractrecorddef(checkdef).jvm_full_typename(true),AT_METADATA)))
  2301. else if checkdef.typ=classrefdef then
  2302. list.concat(taicpu.op_sym(checkop,current_asmdata.RefAsmSymbol('java/lang/Class',AT_METADATA)))
  2303. { todo: WASM
  2304. else
  2305. list.concat(taicpu.op_sym(checkop,current_asmdata.RefAsmSymbol(jvmencodetype(checkdef,false),AT_METADATA)));
  2306. }
  2307. end;
  2308. procedure thlcgwasm.resizestackfpuval(list: TAsmList; fromsize, tosize: tcgsize);
  2309. begin
  2310. if (fromsize=OS_F32) and
  2311. (tosize=OS_F64) then
  2312. begin
  2313. list.concat(taicpu.op_none(a_f64_promote_f32));
  2314. incstack(list,1);
  2315. end
  2316. else if (fromsize=OS_F64) and
  2317. (tosize=OS_F32) then
  2318. begin
  2319. list.concat(taicpu.op_none(a_f32_demote_f64));
  2320. decstack(list,1);
  2321. end;
  2322. end;
  2323. procedure thlcgwasm.maybepreparedivu32(list: TAsmList; var op: topcg; size: tdef; out isdivu32: boolean);
  2324. begin
  2325. if (op=OP_DIV) and
  2326. (def_cgsize(size)=OS_32) then
  2327. begin
  2328. { needs zero-extension to 64 bit, because the JVM only supports
  2329. signed divisions }
  2330. resize_stack_int_val(list,u32inttype,s64inttype,false);
  2331. op:=OP_IDIV;
  2332. isdivu32:=true;
  2333. end
  2334. else
  2335. isdivu32:=false;
  2336. end;
  2337. function thlcgwasm.a_call_name_intern(list: TAsmList; pd: tprocdef; const s: TSymStr; forceresdef: tdef; inheritedcall: boolean): tcgpara;
  2338. var
  2339. opc: tasmop;
  2340. begin
  2341. {
  2342. invoke types:
  2343. * invokeinterface: call method from an interface (must also specify
  2344. number of parameters in terms of stack slot count!)
  2345. * invokespecial: invoke a constructor, method in a superclass,
  2346. or private instance method
  2347. * invokestatic: invoke a class method (private or not)
  2348. * invokevirtual: invoke a regular method
  2349. }
  2350. case pd.owner.symtabletype of
  2351. globalsymtable,
  2352. staticsymtable,
  2353. localsymtable:
  2354. { regular and nested procedures are turned into static methods }
  2355. opc:=a_call;
  2356. objectsymtable:
  2357. begin
  2358. Internalerror(2019083004); // no support for symbol table calls
  2359. opc:=a_call_indirect; // todo: need a reference to a (funccall) table
  2360. //case tobjectdef(pd.owner.defowner).objecttype of
  2361. //
  2362. // odt_javaclass:
  2363. // begin
  2364. // if (po_classmethod in pd.procoptions) or
  2365. // (pd.proctypeoption=potype_operator) then
  2366. // opc:=a_invokestatic
  2367. // else if (pd.visibility=vis_strictprivate) or
  2368. // (pd.proctypeoption=potype_constructor) or
  2369. // inheritedcall then
  2370. // opc:=a_invokespecial
  2371. // else
  2372. // opc:=a_invokevirtual;
  2373. // end;
  2374. // odt_interfacejava:
  2375. // { static interface methods are not allowed }
  2376. // opc:=a_invokeinterface;
  2377. // else
  2378. // internalerror(2010122601);
  2379. //end;
  2380. end;
  2381. recordsymtable:
  2382. begin
  2383. if (po_staticmethod in pd.procoptions) or
  2384. (pd.proctypeoption=potype_operator) then
  2385. opc:=a_call
  2386. else if (pd.visibility=vis_strictprivate) or
  2387. (pd.proctypeoption=potype_constructor) or
  2388. inheritedcall then
  2389. opc:=a_call
  2390. else
  2391. opc:=a_call_indirect;
  2392. end
  2393. else
  2394. internalerror(2010122602);
  2395. end;
  2396. if (opc<>a_call_indirect) then
  2397. list.concat(taicpu.op_sym(opc,current_asmdata.RefAsmSymbol(s,AT_FUNCTION)))
  2398. else
  2399. begin
  2400. pd.init_paraloc_info(calleeside);
  2401. list.concat(taicpu.op_sym_const(opc,current_asmdata.RefAsmSymbol(s,AT_FUNCTION),pd.calleeargareasize));
  2402. end;
  2403. result:=get_call_result_cgpara(pd,forceresdef);
  2404. end;
  2405. procedure create_hlcodegen_cpu;
  2406. begin
  2407. hlcg:=thlcgwasm.create;
  2408. create_codegen;
  2409. end;
  2410. initialization
  2411. chlcgobj:=thlcgwasm;
  2412. create_hlcodegen:=@create_hlcodegen_cpu;
  2413. end.