typeload.ml 104 KB

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  1. (*
  2. * Copyright (C)2005-2013 Haxe Foundation
  3. *
  4. * Permission is hereby granted, free of charge, to any person obtaining a
  5. * copy of this software and associated documentation files (the "Software"),
  6. * to deal in the Software without restriction, including without limitation
  7. * the rights to use, copy, modify, merge, publish, distribute, sublicense,
  8. * and/or sell copies of the Software, and to permit persons to whom the
  9. * Software is furnished to do so, subject to the following conditions:
  10. *
  11. * The above copyright notice and this permission notice shall be included in
  12. * all copies or substantial portions of the Software.
  13. *
  14. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  15. * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  16. * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
  17. * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
  18. * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
  19. * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER
  20. * DEALINGS IN THE SOFTWARE.
  21. *)
  22. open Ast
  23. open Type
  24. open Common
  25. open Typecore
  26. (*
  27. Build module structure : should be atomic - no type loading is possible
  28. *)
  29. let make_module ctx mpath file tdecls loadp =
  30. let decls = ref [] in
  31. let make_path name priv =
  32. if List.exists (fun (t,_) -> snd (t_path t) = name) !decls then error ("Type name " ^ name ^ " is already defined in this module") loadp;
  33. if priv then (fst mpath @ ["_" ^ snd mpath], name) else (fst mpath, name)
  34. in
  35. let m = {
  36. m_id = alloc_mid();
  37. m_path = mpath;
  38. m_types = [];
  39. m_extra = module_extra (Common.unique_full_path file) (Common.get_signature ctx.com) (file_time file) (if ctx.in_macro then MMacro else MCode);
  40. } in
  41. let pt = ref None in
  42. let rec make_decl acc decl =
  43. let p = snd decl in
  44. let acc = (match fst decl with
  45. | EImport _ | EUsing _ ->
  46. (match !pt with
  47. | None -> acc
  48. | Some pt ->
  49. display_error ctx "import and using may not appear after a type declaration" p;
  50. error "Previous type declaration found here" pt)
  51. | EClass d ->
  52. pt := Some p;
  53. let priv = List.mem HPrivate d.d_flags in
  54. let path = make_path d.d_name priv in
  55. let c = mk_class m path p in
  56. c.cl_module <- m;
  57. c.cl_private <- priv;
  58. c.cl_doc <- d.d_doc;
  59. c.cl_meta <- d.d_meta;
  60. decls := (TClassDecl c, decl) :: !decls;
  61. acc
  62. | EEnum d ->
  63. pt := Some p;
  64. let priv = List.mem EPrivate d.d_flags in
  65. let path = make_path d.d_name priv in
  66. let e = {
  67. e_path = path;
  68. e_module = m;
  69. e_pos = p;
  70. e_doc = d.d_doc;
  71. e_meta = d.d_meta;
  72. e_params = [];
  73. e_private = priv;
  74. e_extern = List.mem EExtern d.d_flags;
  75. e_constrs = PMap.empty;
  76. e_names = [];
  77. e_type = {
  78. t_path = [], "Enum<" ^ (s_type_path path) ^ ">";
  79. t_module = m;
  80. t_doc = None;
  81. t_pos = p;
  82. t_type = mk_mono();
  83. t_private = true;
  84. t_params = [];
  85. t_meta = [];
  86. };
  87. } in
  88. decls := (TEnumDecl e, decl) :: !decls;
  89. acc
  90. | ETypedef d ->
  91. pt := Some p;
  92. let priv = List.mem EPrivate d.d_flags in
  93. let path = make_path d.d_name priv in
  94. let t = {
  95. t_path = path;
  96. t_module = m;
  97. t_pos = p;
  98. t_doc = d.d_doc;
  99. t_private = priv;
  100. t_params = [];
  101. t_type = mk_mono();
  102. t_meta = d.d_meta;
  103. } in
  104. decls := (TTypeDecl t, decl) :: !decls;
  105. acc
  106. | EAbstract d ->
  107. let priv = List.mem APrivAbstract d.d_flags in
  108. let path = make_path d.d_name priv in
  109. let a = {
  110. a_path = path;
  111. a_private = priv;
  112. a_module = m;
  113. a_pos = p;
  114. a_doc = d.d_doc;
  115. a_params = [];
  116. a_meta = d.d_meta;
  117. a_from = [];
  118. a_to = [];
  119. a_from_field = [];
  120. a_to_field = [];
  121. a_ops = [];
  122. a_unops = [];
  123. a_impl = None;
  124. a_array = [];
  125. a_this = mk_mono();
  126. } in
  127. decls := (TAbstractDecl a, decl) :: !decls;
  128. match d.d_data with
  129. | [] when Meta.has Meta.CoreType a.a_meta ->
  130. a.a_this <- t_dynamic;
  131. acc
  132. | fields ->
  133. let rec loop = function
  134. | [] ->
  135. let params = List.map (fun t -> TPType (CTPath { tname = t.tp_name; tparams = []; tsub = None; tpackage = [] })) d.d_params in
  136. CTPath { tpackage = []; tname = d.d_name; tparams = params; tsub = None }
  137. | AIsType t :: _ -> t
  138. | _ :: l -> loop l
  139. in
  140. let this_t = loop d.d_flags in
  141. let fields = List.map (fun f ->
  142. let stat = List.mem AStatic f.cff_access in
  143. let p = f.cff_pos in
  144. match f.cff_kind with
  145. | FProp (("get" | "never"),("set" | "never"),_,_) when not stat ->
  146. (* TODO: hack to avoid issues with abstract property generation on As3 *)
  147. if Common.defined ctx.com Define.As3 then f.cff_meta <- (Meta.Extern,[],p) :: f.cff_meta;
  148. { f with cff_access = AStatic :: f.cff_access; cff_meta = (Meta.Impl,[],p) :: f.cff_meta }
  149. | FProp _ when not stat ->
  150. display_error ctx "Member property accessors must be get/set or never" p;
  151. f
  152. | FFun fu when f.cff_name = "new" && not stat ->
  153. let init p = (EVars ["this",Some this_t,None],p) in
  154. let ret p = (EReturn (Some (EConst (Ident "this"),p)),p) in
  155. if Meta.has Meta.MultiType a.a_meta then begin
  156. if List.mem AInline f.cff_access then error "MultiType constructors cannot be inline" f.cff_pos;
  157. if fu.f_expr <> None then error "MultiType constructors cannot have a body" f.cff_pos;
  158. end;
  159. let has_call e =
  160. let rec loop e = match fst e with
  161. | ECall _ -> raise Exit
  162. | _ -> Ast.map_expr loop e
  163. in
  164. try ignore(loop e); false with Exit -> true
  165. in
  166. let fu = {
  167. fu with
  168. f_expr = (match fu.f_expr with
  169. | None -> if Meta.has Meta.MultiType a.a_meta then Some (EConst (Ident "null"),p) else None
  170. | Some (EBlock [EBinop (OpAssign,(EConst (Ident "this"),_),e),_],_ | EBinop (OpAssign,(EConst (Ident "this"),_),e),_) when not (has_call e) ->
  171. Some (EReturn (Some e), pos e)
  172. | Some (EBlock el,p) -> Some (EBlock (init p :: el @ [ret p]),p)
  173. | Some e -> Some (EBlock [init p;e;ret p],p)
  174. );
  175. f_type = Some this_t;
  176. } in
  177. { f with cff_name = "_new"; cff_access = AStatic :: f.cff_access; cff_kind = FFun fu; cff_meta = (Meta.Impl,[],p) :: f.cff_meta }
  178. | FFun fu when not stat ->
  179. if Meta.has Meta.From f.cff_meta then error "@:from cast functions must be static" f.cff_pos;
  180. let fu = { fu with f_args = (if List.mem AMacro f.cff_access then fu.f_args else ("this",false,Some this_t,None) :: fu.f_args) } in
  181. { f with cff_kind = FFun fu; cff_access = AStatic :: f.cff_access; cff_meta = (Meta.Impl,[],p) :: f.cff_meta }
  182. | _ ->
  183. f
  184. ) fields in
  185. let meta = ref [] in
  186. if has_meta Meta.Dce a.a_meta then meta := (Meta.Dce,[],p) :: !meta;
  187. let acc = make_decl acc (EClass { d_name = d.d_name ^ "_Impl_"; d_flags = [HPrivate]; d_data = fields; d_doc = None; d_params = []; d_meta = !meta },p) in
  188. (match !decls with
  189. | (TClassDecl c,_) :: _ ->
  190. List.iter (fun m -> match m with
  191. | ((Meta.Build | Meta.CoreApi | Meta.Allow | Meta.Access | Meta.Enum | Meta.Dce),_,_) ->
  192. c.cl_meta <- m :: c.cl_meta;
  193. | _ ->
  194. ()
  195. ) a.a_meta;
  196. a.a_impl <- Some c;
  197. c.cl_kind <- KAbstractImpl a
  198. | _ -> assert false);
  199. acc
  200. ) in
  201. decl :: acc
  202. in
  203. let tdecls = List.fold_left make_decl [] tdecls in
  204. let decls = List.rev !decls in
  205. m.m_types <- List.map fst decls;
  206. m, decls, List.rev tdecls
  207. let parse_file com file p =
  208. let ch = (try open_in_bin file with _ -> error ("Could not open " ^ file) p) in
  209. let t = Common.timer "parsing" in
  210. Lexer.init file true;
  211. incr stats.s_files_parsed;
  212. let data = (try Parser.parse com (Lexing.from_channel ch) with e -> close_in ch; t(); raise e) in
  213. close_in ch;
  214. t();
  215. Common.log com ("Parsed " ^ file);
  216. data
  217. let parse_hook = ref parse_file
  218. let type_module_hook = ref (fun _ _ _ -> None)
  219. let type_function_params_rec = ref (fun _ _ _ _ -> assert false)
  220. let return_partial_type = ref false
  221. let type_function_arg ctx t e opt p =
  222. if opt then
  223. let e = (match e with None -> Some (EConst (Ident "null"),p) | _ -> e) in
  224. ctx.t.tnull t, e
  225. else
  226. let t = match e with Some (EConst (Ident "null"),p) -> ctx.t.tnull t | _ -> t in
  227. t, e
  228. let type_var_field ctx t e stat p =
  229. if stat then ctx.curfun <- FunStatic else ctx.curfun <- FunMember;
  230. let e = type_expr ctx e (WithType t) in
  231. let e = (!cast_or_unify_ref) ctx t e p in
  232. match t with
  233. | TType ({ t_path = ([],"UInt") },[]) | TAbstract ({ a_path = ([],"UInt") },[]) when stat -> { e with etype = t }
  234. | _ -> e
  235. let apply_macro ctx mode path el p =
  236. let cpath, meth = (match List.rev (ExtString.String.nsplit path ".") with
  237. | meth :: name :: pack -> (List.rev pack,name), meth
  238. | _ -> error "Invalid macro path" p
  239. ) in
  240. ctx.g.do_macro ctx mode cpath meth el p
  241. (** since load_type_def and load_instance are used in PASS2, they should not access the structure of a type **)
  242. (*
  243. load a type or a subtype definition
  244. *)
  245. let rec load_type_def ctx p t =
  246. let no_pack = t.tpackage = [] in
  247. let tname = (match t.tsub with None -> t.tname | Some n -> n) in
  248. try
  249. if t.tsub <> None then raise Not_found;
  250. List.find (fun t2 ->
  251. let tp = t_path t2 in
  252. tp = (t.tpackage,tname) || (no_pack && snd tp = tname)
  253. ) (ctx.m.curmod.m_types @ ctx.m.module_types)
  254. with
  255. Not_found ->
  256. let next() =
  257. let t, m = (try
  258. t, ctx.g.do_load_module ctx (t.tpackage,t.tname) p
  259. with Error (Module_not_found _,p2) as e when p == p2 ->
  260. match t.tpackage with
  261. | "std" :: l ->
  262. let t = { t with tpackage = l } in
  263. t, ctx.g.do_load_module ctx (t.tpackage,t.tname) p
  264. | _ -> raise e
  265. ) in
  266. let tpath = (t.tpackage,tname) in
  267. try
  268. List.find (fun t -> not (t_infos t).mt_private && t_path t = tpath) m.m_types
  269. with
  270. Not_found -> raise (Error (Type_not_found (m.m_path,tname),p))
  271. in
  272. (* lookup in wildcard imported packages *)
  273. try
  274. if not no_pack then raise Exit;
  275. let rec loop = function
  276. | [] -> raise Exit
  277. | wp :: l ->
  278. try
  279. load_type_def ctx p { t with tpackage = wp }
  280. with
  281. | Error (Module_not_found _,p2)
  282. | Error (Type_not_found _,p2) when p == p2 -> loop l
  283. in
  284. loop ctx.m.wildcard_packages
  285. with Exit ->
  286. (* lookup in our own package - and its upper packages *)
  287. let rec loop = function
  288. | [] -> raise Exit
  289. | (_ :: lnext) as l ->
  290. try
  291. load_type_def ctx p { t with tpackage = List.rev l }
  292. with
  293. | Error (Module_not_found _,p2)
  294. | Error (Type_not_found _,p2) when p == p2 -> loop lnext
  295. in
  296. try
  297. if not no_pack then raise Exit;
  298. (match fst ctx.m.curmod.m_path with
  299. | [] -> raise Exit
  300. | x :: _ ->
  301. (* this can occur due to haxe remoting : a module can be
  302. already defined in the "js" package and is not allowed
  303. to access the js classes *)
  304. try
  305. (match PMap.find x ctx.com.package_rules with
  306. | Forbidden -> raise Exit
  307. | _ -> ())
  308. with Not_found -> ());
  309. loop (List.rev (fst ctx.m.curmod.m_path));
  310. with
  311. Exit -> next()
  312. let check_param_constraints ctx types t pl c p =
  313. match follow t with
  314. | TMono _ -> ()
  315. | _ ->
  316. let ctl = (match c.cl_kind with KTypeParameter l -> l | _ -> []) in
  317. List.iter (fun ti ->
  318. let ti = apply_params types pl ti in
  319. let ti = (match follow ti with
  320. | TInst ({ cl_kind = KGeneric } as c,pl) ->
  321. (* if we solve a generic contraint, let's substitute with the actual generic instance before unifying *)
  322. let _,_, f = ctx.g.do_build_instance ctx (TClassDecl c) p in
  323. f pl
  324. | _ -> ti
  325. ) in
  326. try
  327. unify_raise ctx t ti p
  328. with Error(Unify l,p) ->
  329. if not ctx.untyped then display_error ctx (error_msg (Unify (Constraint_failure (s_type_path c.cl_path) :: l))) p;
  330. ) ctl
  331. (* build an instance from a full type *)
  332. let rec load_instance ctx t p allow_no_params =
  333. try
  334. if t.tpackage <> [] || t.tsub <> None then raise Not_found;
  335. let pt = List.assoc t.tname ctx.type_params in
  336. if t.tparams <> [] then error ("Class type parameter " ^ t.tname ^ " can't have parameters") p;
  337. pt
  338. with Not_found ->
  339. let mt = load_type_def ctx p t in
  340. let is_generic,is_generic_build = match mt with
  341. | TClassDecl {cl_kind = KGeneric} -> true,false
  342. | TClassDecl {cl_kind = KGenericBuild _} -> false,true
  343. | _ -> false,false
  344. in
  345. let types , path , f = ctx.g.do_build_instance ctx mt p in
  346. if allow_no_params && t.tparams = [] && not (match types with ["Rest",_] -> true | _ -> false) then begin
  347. let pl = ref [] in
  348. pl := List.map (fun (name,t) ->
  349. match follow t with
  350. | TInst (c,_) ->
  351. let t = mk_mono() in
  352. if c.cl_kind <> KTypeParameter [] || is_generic then delay ctx PCheckConstraint (fun() -> check_param_constraints ctx types t (!pl) c p);
  353. t;
  354. | _ -> assert false
  355. ) types;
  356. f (!pl)
  357. end else if path = ([],"Dynamic") then
  358. match t.tparams with
  359. | [] -> t_dynamic
  360. | [TPType t] -> TDynamic (load_complex_type ctx p t)
  361. | _ -> error "Too many parameters for Dynamic" p
  362. else begin
  363. (* if List.length types <> List.length t.tparams then error ("Invalid number of type parameters for " ^ s_type_path path) p; *)
  364. let tparams = List.map (fun t ->
  365. match t with
  366. | TPExpr e ->
  367. let name = (match fst e with
  368. | EConst (String s) -> "S" ^ s
  369. | EConst (Int i) -> "I" ^ i
  370. | EConst (Float f) -> "F" ^ f
  371. | _ -> "Expr"
  372. ) in
  373. let c = mk_class null_module ([],name) p in
  374. c.cl_kind <- KExpr e;
  375. TInst (c,[])
  376. | TPType t -> load_complex_type ctx p t
  377. ) t.tparams in
  378. let rec loop tl1 tl2 is_rest = match tl1,tl2 with
  379. | t :: tl1,(name,t2) :: tl2 ->
  380. let isconst = (match t with TInst ({ cl_kind = KExpr _ },_) -> true | _ -> false) in
  381. if isconst <> (name = "Const") && t != t_dynamic && name <> "Rest" then error (if isconst then "Constant value unexpected here" else "Constant value excepted as type parameter") p;
  382. let is_rest = is_rest || name = "Rest" && is_generic_build in
  383. let t = match follow t2 with
  384. | TInst ({ cl_kind = KTypeParameter [] }, []) when not is_generic ->
  385. t
  386. | TInst (c,[]) ->
  387. let r = exc_protect ctx (fun r ->
  388. r := (fun() -> t);
  389. delay ctx PCheckConstraint (fun() -> check_param_constraints ctx types t tparams c p);
  390. t
  391. ) "constraint" in
  392. delay ctx PForce (fun () -> ignore(!r()));
  393. TLazy r
  394. | _ -> assert false
  395. in
  396. t :: loop tl1 tl2 is_rest
  397. | [],[] ->
  398. []
  399. | [],["Rest",_] when is_generic_build ->
  400. []
  401. | [],_ ->
  402. error ("Not enough type parameters for " ^ s_type_path path) p
  403. | t :: tl,[] ->
  404. if is_rest then
  405. t :: loop tl [] true
  406. else
  407. error ("Too many parameters for " ^ s_type_path path) p
  408. in
  409. let params = loop tparams types false in
  410. f params
  411. end
  412. (*
  413. build an instance from a complex type
  414. *)
  415. and load_complex_type ctx p t =
  416. match t with
  417. | CTParent t -> load_complex_type ctx p t
  418. | CTPath t -> load_instance ctx t p false
  419. | CTOptional _ -> error "Optional type not allowed here" p
  420. | CTExtend (tl,l) ->
  421. (match load_complex_type ctx p (CTAnonymous l) with
  422. | TAnon a as ta ->
  423. let is_redefined cf1 a2 =
  424. try
  425. let cf2 = PMap.find cf1.cf_name a2.a_fields in
  426. let st = s_type (print_context()) in
  427. if not (type_iseq cf1.cf_type cf2.cf_type) then begin
  428. display_error ctx ("Cannot redefine field " ^ cf1.cf_name ^ " with different type") p;
  429. display_error ctx ("First type was " ^ (st cf1.cf_type)) cf1.cf_pos;
  430. error ("Second type was " ^ (st cf2.cf_type)) cf2.cf_pos
  431. end else
  432. true
  433. with Not_found ->
  434. false
  435. in
  436. let mk_extension t =
  437. match follow t with
  438. | TInst ({cl_kind = KTypeParameter _},_) ->
  439. error "Cannot structurally extend type parameters" p
  440. | TInst (c,tl) ->
  441. ctx.com.warning "Structurally extending classes is deprecated and will be removed" p;
  442. let c2 = mk_class null_module (fst c.cl_path,"+" ^ snd c.cl_path) p in
  443. c2.cl_private <- true;
  444. PMap.iter (fun f _ ->
  445. try
  446. ignore(class_field c tl f);
  447. error ("Cannot redefine field " ^ f) p
  448. with
  449. Not_found -> ()
  450. ) a.a_fields;
  451. (* do NOT tag as extern - for protect *)
  452. c2.cl_kind <- KExtension (c,tl);
  453. c2.cl_super <- Some (c,tl);
  454. c2.cl_fields <- a.a_fields;
  455. TInst (c2,[])
  456. | TMono _ ->
  457. error "Loop found in cascading signatures definitions. Please change order/import" p
  458. | TAnon a2 ->
  459. PMap.iter (fun _ cf -> ignore(is_redefined cf a2)) a.a_fields;
  460. TAnon { a_fields = (PMap.foldi PMap.add a.a_fields a2.a_fields); a_status = ref (Extend [t]); }
  461. | _ -> error "Can only extend classes and structures" p
  462. in
  463. let loop t = match follow t with
  464. | TAnon a2 ->
  465. PMap.iter (fun f cf ->
  466. if not (is_redefined cf a) then
  467. a.a_fields <- PMap.add f cf a.a_fields
  468. ) a2.a_fields
  469. | _ ->
  470. error "Multiple structural extension is only allowed for structures" p
  471. in
  472. let il = List.map (fun t -> load_instance ctx t p false) tl in
  473. let tr = ref None in
  474. let t = TMono tr in
  475. let r = exc_protect ctx (fun r ->
  476. r := (fun _ -> t);
  477. tr := Some (match il with
  478. | [i] ->
  479. mk_extension i
  480. | _ ->
  481. List.iter loop il;
  482. a.a_status := Extend il;
  483. ta);
  484. t
  485. ) "constraint" in
  486. delay ctx PForce (fun () -> ignore(!r()));
  487. TLazy r
  488. | _ -> assert false)
  489. | CTAnonymous l ->
  490. let rec loop acc f =
  491. let n = f.cff_name in
  492. let p = f.cff_pos in
  493. if PMap.mem n acc then error ("Duplicate field declaration : " ^ n) p;
  494. let topt = function
  495. | None -> error ("Explicit type required for field " ^ n) p
  496. | Some t -> load_complex_type ctx p t
  497. in
  498. let no_expr = function
  499. | None -> ()
  500. | Some (_,p) -> error "Expression not allowed here" p
  501. in
  502. let pub = ref true in
  503. let dyn = ref false in
  504. let params = ref [] in
  505. List.iter (fun a ->
  506. match a with
  507. | APublic -> ()
  508. | APrivate -> pub := false;
  509. | ADynamic when (match f.cff_kind with FFun _ -> true | _ -> false) -> dyn := true
  510. | AStatic | AOverride | AInline | ADynamic | AMacro -> error ("Invalid access " ^ Ast.s_access a) p
  511. ) f.cff_access;
  512. let t , access = (match f.cff_kind with
  513. | FVar (Some (CTPath({tpackage=[];tname="Void"})), _) | FProp (_,_,Some (CTPath({tpackage=[];tname="Void"})),_) ->
  514. error "Fields of type Void are not allowed in structures" p
  515. | FVar (t, e) ->
  516. no_expr e;
  517. topt t, Var { v_read = AccNormal; v_write = AccNormal }
  518. | FFun fd ->
  519. params := (!type_function_params_rec) ctx fd f.cff_name p;
  520. no_expr fd.f_expr;
  521. let old = ctx.type_params in
  522. ctx.type_params <- !params @ old;
  523. let args = List.map (fun (name,o,t,e) -> no_expr e; name, o, topt t) fd.f_args in
  524. let t = TFun (args,topt fd.f_type), Method (if !dyn then MethDynamic else MethNormal) in
  525. ctx.type_params <- old;
  526. t
  527. | FProp (i1,i2,t,e) ->
  528. no_expr e;
  529. let access m get =
  530. match m with
  531. | "null" -> AccNo
  532. | "never" -> AccNever
  533. | "default" -> AccNormal
  534. | "dynamic" -> AccCall
  535. | "get" when get -> AccCall
  536. | "set" when not get -> AccCall
  537. | x when get && x = "get_" ^ n -> AccCall
  538. | x when not get && x = "set_" ^ n -> AccCall
  539. | _ ->
  540. error "Custom property access is no longer supported in Haxe 3" f.cff_pos;
  541. in
  542. let t = (match t with None -> error "Type required for structure property" p | Some t -> t) in
  543. load_complex_type ctx p t, Var { v_read = access i1 true; v_write = access i2 false }
  544. ) in
  545. let t = if Meta.has Meta.Optional f.cff_meta then ctx.t.tnull t else t in
  546. let cf = {
  547. cf_name = n;
  548. cf_type = t;
  549. cf_pos = p;
  550. cf_public = !pub;
  551. cf_kind = access;
  552. cf_params = !params;
  553. cf_expr = None;
  554. cf_doc = f.cff_doc;
  555. cf_meta = f.cff_meta;
  556. cf_overloads = [];
  557. } in
  558. init_meta_overloads ctx cf;
  559. PMap.add n cf acc
  560. in
  561. mk_anon (List.fold_left loop PMap.empty l)
  562. | CTFunction (args,r) ->
  563. match args with
  564. | [CTPath { tpackage = []; tparams = []; tname = "Void" }] ->
  565. TFun ([],load_complex_type ctx p r)
  566. | _ ->
  567. TFun (List.map (fun t ->
  568. let t, opt = (match t with CTOptional t -> t, true | _ -> t,false) in
  569. "",opt,load_complex_type ctx p t
  570. ) args,load_complex_type ctx p r)
  571. and init_meta_overloads ctx cf =
  572. let overloads = ref [] in
  573. cf.cf_meta <- List.filter (fun m ->
  574. match m with
  575. | (Meta.Overload,[(EFunction (fname,f),p)],_) ->
  576. if fname <> None then error "Function name must not be part of @:overload" p;
  577. (match f.f_expr with Some (EBlock [], _) -> () | _ -> error "Overload must only declare an empty method body {}" p);
  578. let old = ctx.type_params in
  579. (match cf.cf_params with
  580. | [] -> ()
  581. | l -> ctx.type_params <- List.filter (fun t -> not (List.mem t l)) ctx.type_params);
  582. let params = (!type_function_params_rec) ctx f cf.cf_name p in
  583. ctx.type_params <- params @ ctx.type_params;
  584. let topt = function None -> error "Explicit type required" p | Some t -> load_complex_type ctx p t in
  585. let args = List.map (fun (a,opt,t,_) -> a,opt,topt t) f.f_args in
  586. overloads := (args,topt f.f_type, params) :: !overloads;
  587. ctx.type_params <- old;
  588. false
  589. | (Meta.Overload,[],_) when ctx.com.config.pf_overload ->
  590. let topt (n,_,t) = match t with | TMono t when !t = None -> error ("Explicit type required for overload functions\nFor function argument '" ^ n ^ "'") cf.cf_pos | _ -> () in
  591. (match follow cf.cf_type with
  592. | TFun (args,_) -> List.iter topt args
  593. | _ -> () (* could be a variable *));
  594. true
  595. | (Meta.Overload,[],p) ->
  596. error "This platform does not support this kind of overload declaration. Try @:overload(function()... {}) instead" p
  597. | (Meta.Overload,_,p) ->
  598. error "Invalid @:overload metadata format" p
  599. | _ ->
  600. true
  601. ) cf.cf_meta;
  602. cf.cf_overloads <- List.map (fun (args,ret,params) -> { cf with cf_type = TFun (args,ret); cf_params = params }) (List.rev !overloads)
  603. let hide_params ctx =
  604. let old_m = ctx.m in
  605. let old_type_params = ctx.type_params in
  606. let old_deps = ctx.g.std.m_extra.m_deps in
  607. ctx.m <- {
  608. curmod = ctx.g.std;
  609. module_types = [];
  610. module_using = [];
  611. module_globals = PMap.empty;
  612. wildcard_packages = [];
  613. };
  614. ctx.type_params <- [];
  615. (fun() ->
  616. ctx.m <- old_m;
  617. ctx.type_params <- old_type_params;
  618. (* restore dependencies that might be have been wronly inserted *)
  619. ctx.g.std.m_extra.m_deps <- old_deps;
  620. )
  621. (*
  622. load a type while ignoring the current imports or local types
  623. *)
  624. let load_core_type ctx name =
  625. let show = hide_params ctx in
  626. let t = load_instance ctx { tpackage = []; tname = name; tparams = []; tsub = None; } null_pos false in
  627. show();
  628. add_dependency ctx.m.curmod (match t with
  629. | TInst (c,_) -> c.cl_module
  630. | TType (t,_) -> t.t_module
  631. | TAbstract (a,_) -> a.a_module
  632. | TEnum (e,_) -> e.e_module
  633. | _ -> assert false);
  634. t
  635. let t_iterator ctx =
  636. let show = hide_params ctx in
  637. match load_type_def ctx null_pos { tpackage = []; tname = "Iterator"; tparams = []; tsub = None } with
  638. | TTypeDecl t ->
  639. show();
  640. add_dependency ctx.m.curmod t.t_module;
  641. if List.length t.t_params <> 1 then assert false;
  642. let pt = mk_mono() in
  643. apply_params t.t_params [pt] t.t_type, pt
  644. | _ ->
  645. assert false
  646. (*
  647. load either a type t or Null<Unknown> if not defined
  648. *)
  649. let load_type_opt ?(opt=false) ctx p t =
  650. let t = (match t with None -> mk_mono() | Some t -> load_complex_type ctx p t) in
  651. if opt then ctx.t.tnull t else t
  652. (* ---------------------------------------------------------------------- *)
  653. (* Structure check *)
  654. let valid_redefinition ctx f1 t1 f2 t2 =
  655. let valid t1 t2 =
  656. Type.unify t1 t2;
  657. if is_null t1 <> is_null t2 then raise (Unify_error [Cannot_unify (t1,t2)]);
  658. in
  659. let t1, t2 = (match f1.cf_params, f2.cf_params with
  660. | [], [] -> t1, t2
  661. | l1, l2 when List.length l1 = List.length l2 ->
  662. let to_check = ref [] in
  663. let monos = List.map2 (fun (name,p1) (_,p2) ->
  664. (match follow p1, follow p2 with
  665. | TInst ({ cl_kind = KTypeParameter ct1 } as c1,pl1), TInst ({ cl_kind = KTypeParameter ct2 } as c2,pl2) ->
  666. (match ct1, ct2 with
  667. | [], [] -> ()
  668. | _, _ when List.length ct1 = List.length ct2 ->
  669. (* if same constraints, they are the same type *)
  670. let check monos =
  671. List.iter2 (fun t1 t2 ->
  672. try
  673. let t1 = apply_params l1 monos (apply_params c1.cl_params pl1 t1) in
  674. let t2 = apply_params l2 monos (apply_params c2.cl_params pl2 t2) in
  675. type_eq EqStrict t1 t2
  676. with Unify_error l ->
  677. raise (Unify_error (Unify_custom "Constraints differ" :: l))
  678. ) ct1 ct2
  679. in
  680. to_check := check :: !to_check;
  681. | _ ->
  682. raise (Unify_error [Unify_custom "Different number of constraints"]))
  683. | _ -> ());
  684. TInst (mk_class null_module ([],name) Ast.null_pos,[])
  685. ) l1 l2 in
  686. List.iter (fun f -> f monos) !to_check;
  687. apply_params l1 monos t1, apply_params l2 monos t2
  688. | _ ->
  689. (* ignore type params, will create other errors later *)
  690. t1, t2
  691. ) in
  692. match f1.cf_kind,f2.cf_kind with
  693. | Method m1, Method m2 when not (m1 = MethDynamic) && not (m2 = MethDynamic) ->
  694. begin match follow t1, follow t2 with
  695. | TFun (args1,r1) , TFun (args2,r2) -> (
  696. if not (List.length args1 = List.length args2) then raise (Unify_error [Unify_custom "Different number of function arguments"]);
  697. try
  698. List.iter2 (fun (n,o1,a1) (_,o2,a2) ->
  699. if o1 <> o2 then raise (Unify_error [Not_matching_optional n]);
  700. (try valid a2 a1 with Unify_error _ -> raise (Unify_error [Cannot_unify(a1,a2)]))
  701. ) args1 args2;
  702. valid r1 r2
  703. with Unify_error l ->
  704. raise (Unify_error (Cannot_unify (t1,t2) :: l)))
  705. | _ ->
  706. assert false
  707. end
  708. | _,(Var { v_write = AccNo | AccNever }) ->
  709. (* write variance *)
  710. valid t2 t1
  711. | _,(Var { v_read = AccNo | AccNever }) ->
  712. (* read variance *)
  713. valid t1 t2
  714. | _ , _ ->
  715. (* in case args differs, or if an interface var *)
  716. type_eq EqStrict t1 t2;
  717. if is_null t1 <> is_null t2 then raise (Unify_error [Cannot_unify (t1,t2)])
  718. let copy_meta meta_src meta_target sl =
  719. let meta = ref meta_target in
  720. List.iter (fun (m,e,p) ->
  721. if List.mem m sl then meta := (m,e,p) :: !meta
  722. ) meta_src;
  723. !meta
  724. let same_overload_args t1 t2 f1 f2 =
  725. if List.length f1.cf_params <> List.length f2.cf_params then
  726. false
  727. else
  728. let rec follow_skip_null t = match t with
  729. | TMono r ->
  730. (match !r with
  731. | Some t -> follow_skip_null t
  732. | _ -> t)
  733. | TLazy f ->
  734. follow_skip_null (!f())
  735. | TType ({ t_path = [],"Null" } as t, [p]) ->
  736. TType(t,[follow p])
  737. | TType (t,tl) ->
  738. follow_skip_null (apply_params t.t_params tl t.t_type)
  739. | _ -> t
  740. in
  741. let same_arg t1 t2 =
  742. let t1 = follow_skip_null t1 in
  743. let t2 = follow_skip_null t2 in
  744. match follow_skip_null t1, follow_skip_null t2 with
  745. | TType _, TType _ -> type_iseq t1 t2
  746. | TType _, _
  747. | _, TType _ -> false
  748. | _ -> type_iseq t1 t2
  749. in
  750. match follow (apply_params f1.cf_params (List.map (fun (_,t) -> t) f2.cf_params) t1), follow t2 with
  751. | TFun(a1,_), TFun(a2,_) ->
  752. (try
  753. List.for_all2 (fun (_,_,t1) (_,_,t2) ->
  754. same_arg t1 t2) a1 a2
  755. with | Invalid_argument("List.for_all2") ->
  756. false)
  757. | _ -> assert false
  758. (** retrieves all overloads from class c and field i, as (Type.t * tclass_field) list *)
  759. let rec get_overloads c i =
  760. let ret = try
  761. let f = PMap.find i c.cl_fields in
  762. (f.cf_type, f) :: (List.map (fun f -> f.cf_type, f) f.cf_overloads)
  763. with | Not_found -> []
  764. in
  765. let rsup = match c.cl_super with
  766. | None when c.cl_interface ->
  767. let ifaces = List.concat (List.map (fun (c,tl) ->
  768. List.map (fun (t,f) -> apply_params c.cl_params tl t, f) (get_overloads c i)
  769. ) c.cl_implements) in
  770. ret @ ifaces
  771. | None -> ret
  772. | Some (c,tl) ->
  773. ret @ ( List.map (fun (t,f) -> apply_params c.cl_params tl t, f) (get_overloads c i) )
  774. in
  775. ret @ (List.filter (fun (t,f) -> not (List.exists (fun (t2,f2) -> same_overload_args t t2 f f2) ret)) rsup)
  776. let check_overloads ctx c =
  777. (* check if field with same signature was declared more than once *)
  778. List.iter (fun f ->
  779. if Meta.has Meta.Overload f.cf_meta then
  780. List.iter (fun f2 ->
  781. try
  782. ignore (List.find (fun f3 -> f3 != f2 && same_overload_args f2.cf_type f3.cf_type f2 f3) (f :: f.cf_overloads));
  783. display_error ctx ("Another overloaded field of same signature was already declared : " ^ f2.cf_name) f2.cf_pos
  784. with | Not_found -> ()
  785. ) (f :: f.cf_overloads)) (c.cl_ordered_fields @ c.cl_ordered_statics)
  786. let check_overriding ctx c =
  787. match c.cl_super with
  788. | None ->
  789. (match c.cl_overrides with
  790. | [] -> ()
  791. | i :: _ ->
  792. display_error ctx ("Field " ^ i.cf_name ^ " is declared 'override' but doesn't override any field") i.cf_pos)
  793. | Some (csup,params) ->
  794. PMap.iter (fun i f ->
  795. let p = f.cf_pos in
  796. let check_field f get_super_field is_overload = try
  797. (if is_overload && not (Meta.has Meta.Overload f.cf_meta) then
  798. display_error ctx ("Missing @:overload declaration for field " ^ i) p);
  799. let t, f2 = get_super_field csup i in
  800. (* allow to define fields that are not defined for this platform version in superclass *)
  801. (match f2.cf_kind with
  802. | Var { v_read = AccRequire _ } -> raise Not_found;
  803. | _ -> ());
  804. if ctx.com.config.pf_overload && (Meta.has Meta.Overload f2.cf_meta && not (Meta.has Meta.Overload f.cf_meta)) then
  805. display_error ctx ("Field " ^ i ^ " should be declared with @:overload since it was already declared as @:overload in superclass") p
  806. else if not (List.memq f c.cl_overrides) then
  807. display_error ctx ("Field " ^ i ^ " should be declared with 'override' since it is inherited from superclass") p
  808. else if not f.cf_public && f2.cf_public then
  809. display_error ctx ("Field " ^ i ^ " has less visibility (public/private) than superclass one") p
  810. else (match f.cf_kind, f2.cf_kind with
  811. | _, Method MethInline ->
  812. display_error ctx ("Field " ^ i ^ " is inlined and cannot be overridden") p
  813. | a, b when a = b -> ()
  814. | Method MethInline, Method MethNormal ->
  815. () (* allow to redefine a method as inlined *)
  816. | _ ->
  817. display_error ctx ("Field " ^ i ^ " has different property access than in superclass") p);
  818. try
  819. let t = apply_params csup.cl_params params t in
  820. valid_redefinition ctx f f.cf_type f2 t
  821. with
  822. Unify_error l ->
  823. display_error ctx ("Field " ^ i ^ " overloads parent class with different or incomplete type") p;
  824. display_error ctx (error_msg (Unify l)) p;
  825. with
  826. Not_found ->
  827. if List.memq f c.cl_overrides then
  828. let msg = if is_overload then
  829. ("Field " ^ i ^ " is declared 'override' but no compatible overload was found")
  830. else
  831. ("Field " ^ i ^ " is declared 'override' but doesn't override any field")
  832. in
  833. display_error ctx msg p
  834. in
  835. if ctx.com.config.pf_overload && Meta.has Meta.Overload f.cf_meta then begin
  836. let overloads = get_overloads csup i in
  837. List.iter (fun (t,f2) ->
  838. (* check if any super class fields are vars *)
  839. match f2.cf_kind with
  840. | Var _ ->
  841. display_error ctx ("A variable named '" ^ f2.cf_name ^ "' was already declared in a superclass") f.cf_pos
  842. | _ -> ()
  843. ) overloads;
  844. List.iter (fun f ->
  845. (* find the exact field being overridden *)
  846. check_field f (fun csup i ->
  847. List.find (fun (t,f2) ->
  848. same_overload_args f.cf_type (apply_params csup.cl_params params t) f f2
  849. ) overloads
  850. ) true
  851. ) f.cf_overloads
  852. end else
  853. check_field f (fun csup i ->
  854. let _, t, f2 = raw_class_field (fun f -> f.cf_type) csup params i in
  855. t, f2) false
  856. ) c.cl_fields
  857. let class_field_no_interf c i =
  858. try
  859. let f = PMap.find i c.cl_fields in
  860. f.cf_type , f
  861. with Not_found ->
  862. match c.cl_super with
  863. | None ->
  864. raise Not_found
  865. | Some (c,tl) ->
  866. (* rec over class_field *)
  867. let _, t , f = raw_class_field (fun f -> f.cf_type) c tl i in
  868. apply_params c.cl_params tl t , f
  869. let rec check_interface ctx c intf params =
  870. let p = c.cl_pos in
  871. let rec check_field i f =
  872. (if ctx.com.config.pf_overload then
  873. List.iter (function
  874. | f2 when f != f2 ->
  875. check_field i f2
  876. | _ -> ()) f.cf_overloads);
  877. let is_overload = ref false in
  878. try
  879. let t2, f2 = class_field_no_interf c i in
  880. let t2, f2 =
  881. if ctx.com.config.pf_overload && (f2.cf_overloads <> [] || Meta.has Meta.Overload f2.cf_meta) then
  882. let overloads = get_overloads c i in
  883. is_overload := true;
  884. let t = (apply_params intf.cl_params params f.cf_type) in
  885. List.find (fun (t1,f1) -> same_overload_args t t1 f f1) overloads
  886. else
  887. t2, f2
  888. in
  889. ignore(follow f2.cf_type); (* force evaluation *)
  890. let p = (match f2.cf_expr with None -> p | Some e -> e.epos) in
  891. let mkind = function
  892. | MethNormal | MethInline -> 0
  893. | MethDynamic -> 1
  894. | MethMacro -> 2
  895. in
  896. if f.cf_public && not f2.cf_public && not (Meta.has Meta.CompilerGenerated f.cf_meta) then
  897. display_error ctx ("Field " ^ i ^ " should be public as requested by " ^ s_type_path intf.cl_path) p
  898. else if not (unify_kind f2.cf_kind f.cf_kind) || not (match f.cf_kind, f2.cf_kind with Var _ , Var _ -> true | Method m1, Method m2 -> mkind m1 = mkind m2 | _ -> false) then
  899. display_error ctx ("Field " ^ i ^ " has different property access than in " ^ s_type_path intf.cl_path ^ " (" ^ s_kind f2.cf_kind ^ " should be " ^ s_kind f.cf_kind ^ ")") p
  900. else try
  901. valid_redefinition ctx f2 t2 f (apply_params intf.cl_params params f.cf_type)
  902. with
  903. Unify_error l ->
  904. if not (Meta.has Meta.CsNative c.cl_meta && c.cl_extern) then begin
  905. display_error ctx ("Field " ^ i ^ " has different type than in " ^ s_type_path intf.cl_path) p;
  906. display_error ctx (error_msg (Unify l)) p;
  907. end
  908. with
  909. | Not_found when not c.cl_interface ->
  910. let msg = if !is_overload then
  911. let ctx = print_context() in
  912. let args = match follow f.cf_type with | TFun(args,_) -> String.concat ", " (List.map (fun (n,o,t) -> (if o then "?" else "") ^ n ^ " : " ^ (s_type ctx t)) args) | _ -> assert false in
  913. "No suitable overload for " ^ i ^ "( " ^ args ^ " ), as needed by " ^ s_type_path intf.cl_path ^ " was found"
  914. else
  915. ("Field " ^ i ^ " needed by " ^ s_type_path intf.cl_path ^ " is missing")
  916. in
  917. display_error ctx msg p
  918. | Not_found -> ()
  919. in
  920. PMap.iter check_field intf.cl_fields;
  921. List.iter (fun (i2,p2) ->
  922. check_interface ctx c i2 (List.map (apply_params intf.cl_params params) p2)
  923. ) intf.cl_implements
  924. let check_interfaces ctx c =
  925. match c.cl_path with
  926. | "Proxy" :: _ , _ -> ()
  927. | _ ->
  928. List.iter (fun (intf,params) -> check_interface ctx c intf params) c.cl_implements
  929. let rec return_flow ctx e =
  930. let error() = display_error ctx "A return is missing here" e.epos; raise Exit in
  931. let return_flow = return_flow ctx in
  932. match e.eexpr with
  933. | TReturn _ | TThrow _ -> ()
  934. | TParenthesis e | TMeta(_,e) ->
  935. return_flow e
  936. | TBlock el ->
  937. let rec loop = function
  938. | [] -> error()
  939. | [e] -> return_flow e
  940. | { eexpr = TReturn _ } :: _ | { eexpr = TThrow _ } :: _ -> ()
  941. | _ :: l -> loop l
  942. in
  943. loop el
  944. | TIf (_,e1,Some e2) ->
  945. return_flow e1;
  946. return_flow e2;
  947. | TSwitch (v,cases,Some e) ->
  948. List.iter (fun (_,e) -> return_flow e) cases;
  949. return_flow e
  950. | TSwitch ({eexpr = TMeta((Meta.Exhaustive,_,_),_)},cases,None) ->
  951. List.iter (fun (_,e) -> return_flow e) cases;
  952. | TTry (e,cases) ->
  953. return_flow e;
  954. List.iter (fun (_,e) -> return_flow e) cases;
  955. | TWhile({eexpr = (TConst (TBool true))},e,_) ->
  956. (* a special case for "inifite" while loops that have no break *)
  957. let rec loop e = match e.eexpr with
  958. (* ignore nested loops to not accidentally get one of its breaks *)
  959. | TWhile _ | TFor _ -> ()
  960. | TBreak -> error()
  961. | _ -> Type.iter loop e
  962. in
  963. loop e
  964. | _ ->
  965. error()
  966. (* ---------------------------------------------------------------------- *)
  967. (* PASS 1 & 2 : Module and Class Structure *)
  968. let is_generic_parameter ctx c =
  969. (* first check field parameters, then class parameters *)
  970. try
  971. ignore (List.assoc (snd c.cl_path) ctx.curfield.cf_params);
  972. Meta.has Meta.Generic ctx.curfield.cf_meta
  973. with Not_found -> try
  974. ignore(List.assoc (snd c.cl_path) ctx.type_params);
  975. (match ctx.curclass.cl_kind with | KGeneric -> true | _ -> false);
  976. with Not_found ->
  977. false
  978. let check_extends ctx c t p = match follow t with
  979. | TInst ({ cl_path = [],"Array" },_)
  980. | TInst ({ cl_path = [],"String" },_)
  981. | TInst ({ cl_path = [],"Date" },_)
  982. | TInst ({ cl_path = [],"Xml" },_) ->
  983. error "Cannot extend basic class" p;
  984. | TInst (csup,params) ->
  985. if is_parent c csup then error "Recursive class" p;
  986. begin match csup.cl_kind with
  987. | KTypeParameter _ when not (is_generic_parameter ctx csup) -> error "Cannot extend non-generic type parameters" p
  988. | _ -> csup,params
  989. end
  990. | _ -> error "Should extend by using a class" p
  991. let rec add_constructor ctx c force_constructor p =
  992. match c.cl_constructor, c.cl_super with
  993. | None, Some ({ cl_constructor = Some cfsup } as csup,cparams) when not c.cl_extern ->
  994. let cf = {
  995. cfsup with
  996. cf_pos = p;
  997. cf_meta = [];
  998. cf_doc = None;
  999. cf_expr = None;
  1000. } in
  1001. let r = exc_protect ctx (fun r ->
  1002. let t = mk_mono() in
  1003. r := (fun() -> t);
  1004. let ctx = { ctx with
  1005. curfield = cf;
  1006. pass = PTypeField;
  1007. } in
  1008. ignore (follow cfsup.cf_type); (* make sure it's typed *)
  1009. (if ctx.com.config.pf_overload then List.iter (fun cf -> ignore (follow cf.cf_type)) cf.cf_overloads);
  1010. let args = (match cfsup.cf_expr with
  1011. | Some { eexpr = TFunction f } ->
  1012. List.map (fun (v,def) ->
  1013. (*
  1014. let's optimize a bit the output by not always copying the default value
  1015. into the inherited constructor when it's not necessary for the platform
  1016. *)
  1017. match ctx.com.platform, def with
  1018. | _, Some _ when not ctx.com.config.pf_static -> v, (Some TNull)
  1019. | Flash, Some (TString _) -> v, (Some TNull)
  1020. | Cpp, Some (TString _) -> v, def
  1021. | Cpp, Some _ -> { v with v_type = ctx.t.tnull v.v_type }, (Some TNull)
  1022. | _ -> v, def
  1023. ) f.tf_args
  1024. | _ ->
  1025. match follow cfsup.cf_type with
  1026. | TFun (args,_) -> List.map (fun (n,o,t) -> alloc_var n (if o then ctx.t.tnull t else t), if o then Some TNull else None) args
  1027. | _ -> assert false
  1028. ) in
  1029. let p = c.cl_pos in
  1030. let vars = List.map (fun (v,def) -> alloc_var v.v_name (apply_params csup.cl_params cparams v.v_type), def) args in
  1031. let super_call = mk (TCall (mk (TConst TSuper) (TInst (csup,cparams)) p,List.map (fun (v,_) -> mk (TLocal v) v.v_type p) vars)) ctx.t.tvoid p in
  1032. let constr = mk (TFunction {
  1033. tf_args = vars;
  1034. tf_type = ctx.t.tvoid;
  1035. tf_expr = super_call;
  1036. }) (TFun (List.map (fun (v,c) -> v.v_name, c <> None, v.v_type) vars,ctx.t.tvoid)) p in
  1037. cf.cf_expr <- Some constr;
  1038. cf.cf_type <- t;
  1039. unify ctx t constr.etype p;
  1040. t
  1041. ) "add_constructor" in
  1042. cf.cf_type <- TLazy r;
  1043. c.cl_constructor <- Some cf;
  1044. delay ctx PForce (fun() -> ignore((!r)()));
  1045. | None,_ when force_constructor ->
  1046. let constr = mk (TFunction {
  1047. tf_args = [];
  1048. tf_type = ctx.t.tvoid;
  1049. tf_expr = mk (TBlock []) ctx.t.tvoid p;
  1050. }) (tfun [] ctx.t.tvoid) p in
  1051. let cf = mk_field "new" constr.etype p in
  1052. cf.cf_expr <- Some constr;
  1053. cf.cf_type <- constr.etype;
  1054. cf.cf_meta <- [Meta.CompilerGenerated,[],p];
  1055. cf.cf_kind <- Method MethNormal;
  1056. c.cl_constructor <- Some cf;
  1057. | _ ->
  1058. (* nothing to do *)
  1059. ()
  1060. let set_heritance ctx c herits p =
  1061. let ctx = { ctx with curclass = c; type_params = c.cl_params; } in
  1062. let process_meta csup =
  1063. List.iter (fun m ->
  1064. match m with
  1065. | Meta.Final, _, _ -> if not (Meta.has Meta.Hack c.cl_meta || (match c.cl_kind with KTypeParameter _ -> true | _ -> false)) then error "Cannot extend a final class" p;
  1066. | Meta.AutoBuild, el, p -> c.cl_meta <- (Meta.Build,el,p) :: m :: c.cl_meta
  1067. | _ -> ()
  1068. ) csup.cl_meta
  1069. in
  1070. let has_interf = ref false in
  1071. let rec loop = function
  1072. | HPrivate | HExtern | HInterface ->
  1073. ()
  1074. | HExtends t ->
  1075. if c.cl_super <> None then error "Cannot extend several classes" p;
  1076. let t = load_instance ctx t p false in
  1077. let csup,params = check_extends ctx c t p in
  1078. csup.cl_build();
  1079. process_meta csup;
  1080. if c.cl_interface then begin
  1081. if not csup.cl_interface then error "Cannot extend by using a class" p;
  1082. c.cl_implements <- (csup,params) :: c.cl_implements;
  1083. if not !has_interf then begin
  1084. delay ctx PForce (fun() -> check_interfaces ctx c);
  1085. has_interf := true;
  1086. end
  1087. end else begin
  1088. if csup.cl_interface then error "Cannot extend by using an interface" p;
  1089. c.cl_super <- Some (csup,params)
  1090. end
  1091. | HImplements t ->
  1092. let t = load_instance ctx t p false in
  1093. (match follow t with
  1094. | TInst ({ cl_path = [],"ArrayAccess"; cl_extern = true; },[t]) ->
  1095. if c.cl_array_access <> None then error "Duplicate array access" p;
  1096. c.cl_array_access <- Some t
  1097. | TInst (intf,params) ->
  1098. intf.cl_build();
  1099. if is_parent c intf then error "Recursive class" p;
  1100. if c.cl_interface then error "Interfaces cannot implement another interface (use extends instead)" p;
  1101. if not intf.cl_interface then error "You can only implement an interface" p;
  1102. process_meta intf;
  1103. c.cl_implements <- (intf, params) :: c.cl_implements;
  1104. if not !has_interf then begin
  1105. delay ctx PForce (fun() -> check_interfaces ctx c);
  1106. has_interf := true;
  1107. end
  1108. | TDynamic t ->
  1109. if c.cl_dynamic <> None then error "Cannot have several dynamics" p;
  1110. c.cl_dynamic <- Some t
  1111. | _ -> error "Should implement by using an interface" p)
  1112. in
  1113. (*
  1114. resolve imports before calling build_inheritance, since it requires full paths.
  1115. that means that typedefs are not working, but that's a fair limitation
  1116. *)
  1117. let rec resolve_imports t =
  1118. match t.tpackage with
  1119. | _ :: _ -> t
  1120. | [] ->
  1121. try
  1122. let find = List.find (fun lt -> snd (t_path lt) = t.tname) in
  1123. let lt = try find ctx.m.curmod.m_types with Not_found -> find ctx.m.module_types in
  1124. { t with tpackage = fst (t_path lt) }
  1125. with
  1126. Not_found -> t
  1127. in
  1128. let herits = List.map (function
  1129. | HExtends t -> HExtends (resolve_imports t)
  1130. | HImplements t -> HImplements (resolve_imports t)
  1131. | h -> h
  1132. ) herits in
  1133. List.iter loop (List.filter (ctx.g.do_inherit ctx c p) herits)
  1134. let rec type_type_params ?(enum_constructor=false) ctx path get_params p tp =
  1135. let n = tp.tp_name in
  1136. let c = mk_class ctx.m.curmod (fst path @ [snd path],n) p in
  1137. c.cl_params <- List.map (type_type_params ctx c.cl_path get_params p) tp.tp_params;
  1138. c.cl_kind <- KTypeParameter [];
  1139. if enum_constructor then c.cl_meta <- (Meta.EnumConstructorParam,[],c.cl_pos) :: c.cl_meta;
  1140. let t = TInst (c,List.map snd c.cl_params) in
  1141. match tp.tp_constraints with
  1142. | [] ->
  1143. n, t
  1144. | _ ->
  1145. let r = exc_protect ctx (fun r ->
  1146. r := (fun _ -> t);
  1147. let ctx = { ctx with type_params = ctx.type_params @ get_params() } in
  1148. let constr = List.map (load_complex_type ctx p) tp.tp_constraints in
  1149. (* check against direct recursion *)
  1150. let rec loop t =
  1151. match follow t with
  1152. | TInst (c2,_) when c == c2 -> error "Recursive constraint parameter is not allowed" p
  1153. | TInst ({ cl_kind = KTypeParameter cl },_) ->
  1154. List.iter loop cl
  1155. | _ ->
  1156. ()
  1157. in
  1158. List.iter loop constr;
  1159. c.cl_kind <- KTypeParameter constr;
  1160. t
  1161. ) "constraint" in
  1162. delay ctx PForce (fun () -> ignore(!r()));
  1163. n, TLazy r
  1164. let type_function_params ctx fd fname p =
  1165. let params = ref [] in
  1166. params := List.map (fun tp ->
  1167. type_type_params ctx ([],fname) (fun() -> !params) p tp
  1168. ) fd.f_params;
  1169. !params
  1170. let find_enclosing com e =
  1171. let display_pos = ref (!Parser.resume_display) in
  1172. let mk_null p = (EDisplay(((EConst(Ident "null")),p),false),p) in
  1173. let encloses_display_pos p =
  1174. if p.pmin <= !display_pos.pmin && p.pmax >= !display_pos.pmax then begin
  1175. let p = !display_pos in
  1176. display_pos := { pfile = ""; pmin = -2; pmax = -2 };
  1177. Some p
  1178. end else
  1179. None
  1180. in
  1181. let rec loop e = match fst e with
  1182. | EBlock el ->
  1183. let p = pos e in
  1184. (* We want to find the innermost block which contains the display position. *)
  1185. let el = List.map loop el in
  1186. let el = match encloses_display_pos p with
  1187. | None ->
  1188. el
  1189. | Some p2 ->
  1190. let b,el = List.fold_left (fun (b,el) e ->
  1191. let p = pos e in
  1192. if b || p.pmax <= p2.pmin then begin
  1193. (b,e :: el)
  1194. end else begin
  1195. let e_d = (EDisplay(mk_null p,false)),p in
  1196. (true,e :: e_d :: el)
  1197. end
  1198. ) (false,[]) el in
  1199. let el = if b then
  1200. el
  1201. else begin
  1202. mk_null p :: el
  1203. end in
  1204. List.rev el
  1205. in
  1206. (EBlock el),(pos e)
  1207. | _ ->
  1208. Ast.map_expr loop e
  1209. in
  1210. loop e
  1211. let find_before_pos com e =
  1212. let display_pos = ref (!Parser.resume_display) in
  1213. let is_annotated p =
  1214. if p.pmax = !display_pos.pmin - 1 then begin
  1215. display_pos := { pfile = ""; pmin = -2; pmax = -2 };
  1216. true
  1217. end else
  1218. false
  1219. in
  1220. let rec loop e =
  1221. if is_annotated (pos e) then
  1222. (EDisplay(e,false),(pos e))
  1223. else
  1224. e
  1225. in
  1226. let rec map e =
  1227. loop (Ast.map_expr map e)
  1228. in
  1229. map e
  1230. let type_function ctx args ret fmode f do_display p =
  1231. let locals = save_locals ctx in
  1232. let fargs = List.map (fun (n,c,t) ->
  1233. if n.[0] = '$' then error "Function argument names starting with a dollar are not allowed" p;
  1234. let c = (match c with
  1235. | None -> None
  1236. | Some e ->
  1237. let p = pos e in
  1238. let e = ctx.g.do_optimize ctx (type_expr ctx e (WithType t)) in
  1239. unify ctx e.etype t p;
  1240. let rec loop e = match e.eexpr with
  1241. | TConst c -> Some c
  1242. | TCast(e,None) -> loop e
  1243. | _ -> display_error ctx "Parameter default value should be constant" p; None
  1244. in
  1245. loop e
  1246. ) in
  1247. let v,c = add_local ctx n t, c in
  1248. if n = "this" then v.v_meta <- (Meta.This,[],p) :: v.v_meta;
  1249. v,c
  1250. ) args in
  1251. let old_ret = ctx.ret in
  1252. let old_fun = ctx.curfun in
  1253. let old_opened = ctx.opened in
  1254. ctx.curfun <- fmode;
  1255. ctx.ret <- ret;
  1256. ctx.opened <- [];
  1257. let e = match f.f_expr with None -> error "Function body required" p | Some e -> e in
  1258. let e = if not do_display then
  1259. type_expr ctx e NoValue
  1260. else begin
  1261. let e = match ctx.com.display with
  1262. | DMToplevel -> find_enclosing ctx.com e
  1263. | DMPosition | DMUsage -> find_before_pos ctx.com e
  1264. | _ -> e
  1265. in
  1266. try
  1267. if Common.defined ctx.com Define.NoCOpt then raise Exit;
  1268. type_expr ctx (Optimizer.optimize_completion_expr e) NoValue
  1269. with
  1270. | Parser.TypePath (_,None) | Exit ->
  1271. type_expr ctx e NoValue
  1272. | DisplayTypes [t] when (match follow t with TMono _ -> true | _ -> false) ->
  1273. type_expr ctx (if ctx.com.display = DMToplevel then find_enclosing ctx.com e else e) NoValue
  1274. end in
  1275. let e = match e.eexpr with
  1276. | TMeta((Meta.MergeBlock,_,_), ({eexpr = TBlock el} as e1)) -> e1
  1277. | _ -> e
  1278. in
  1279. let rec loop e =
  1280. match e.eexpr with
  1281. | TReturn (Some e) -> (match follow e.etype with TAbstract({a_path = [],"Void"},[]) -> () | _ -> raise Exit)
  1282. | TFunction _ -> ()
  1283. | _ -> Type.iter loop e
  1284. in
  1285. let have_ret = (try loop e; false with Exit -> true) in
  1286. if have_ret then
  1287. (try return_flow ctx e with Exit -> ())
  1288. else (try type_eq EqStrict ret ctx.t.tvoid with Unify_error _ ->
  1289. match e.eexpr with
  1290. (* accept final throw (issue #1923) *)
  1291. | TThrow _ -> ()
  1292. | TBlock el when (match List.rev el with ({eexpr = TThrow _} :: _) -> true | _ -> false) -> ()
  1293. | _ -> display_error ctx ("Missing return " ^ (s_type (print_context()) ret)) p);
  1294. let rec loop e =
  1295. match e.eexpr with
  1296. | TCall ({ eexpr = TConst TSuper },_) -> raise Exit
  1297. | TFunction _ -> ()
  1298. | _ -> Type.iter loop e
  1299. in
  1300. let has_super_constr() =
  1301. match ctx.curclass.cl_super with
  1302. | None ->
  1303. None
  1304. | Some (csup,tl) ->
  1305. try
  1306. let _,cf = get_constructor (fun f->f.cf_type) csup in
  1307. Some (Meta.has Meta.CompilerGenerated cf.cf_meta,TInst(csup,tl))
  1308. with Not_found ->
  1309. None
  1310. in
  1311. let e = if fmode <> FunConstructor then
  1312. e
  1313. else match has_super_constr() with
  1314. | Some (was_forced,t_super) ->
  1315. (try
  1316. loop e;
  1317. if was_forced then
  1318. let e_super = mk (TConst TSuper) t_super e.epos in
  1319. let e_super_call = mk (TCall(e_super,[])) ctx.t.tvoid e.epos in
  1320. concat e_super_call e
  1321. else begin
  1322. display_error ctx "Missing super constructor call" p;
  1323. e
  1324. end
  1325. with
  1326. Exit -> e);
  1327. | None ->
  1328. e
  1329. in
  1330. locals();
  1331. let e = match ctx.curfun, ctx.vthis with
  1332. | (FunMember|FunConstructor), Some v ->
  1333. let ev = mk (TVar (v,Some (mk (TConst TThis) ctx.tthis p))) ctx.t.tvoid p in
  1334. (match e.eexpr with
  1335. | TBlock l -> { e with eexpr = TBlock (ev::l) }
  1336. | _ -> mk (TBlock [ev;e]) e.etype p)
  1337. | _ -> e
  1338. in
  1339. List.iter (fun r -> r := Closed) ctx.opened;
  1340. ctx.ret <- old_ret;
  1341. ctx.curfun <- old_fun;
  1342. ctx.opened <- old_opened;
  1343. e , fargs
  1344. let load_core_class ctx c =
  1345. let ctx2 = (match ctx.g.core_api with
  1346. | None ->
  1347. let com2 = Common.clone ctx.com in
  1348. com2.defines <- PMap.empty;
  1349. Common.define com2 Define.CoreApi;
  1350. Common.define com2 Define.Sys;
  1351. if ctx.in_macro then Common.define com2 Define.Macro;
  1352. com2.class_path <- ctx.com.std_path;
  1353. let ctx2 = ctx.g.do_create com2 in
  1354. ctx.g.core_api <- Some ctx2;
  1355. ctx2
  1356. | Some c ->
  1357. c
  1358. ) in
  1359. let tpath = match c.cl_kind with
  1360. | KAbstractImpl a -> { tpackage = fst a.a_path; tname = snd a.a_path; tparams = []; tsub = None; }
  1361. | _ -> { tpackage = fst c.cl_path; tname = snd c.cl_path; tparams = []; tsub = None; }
  1362. in
  1363. let t = load_instance ctx2 tpath c.cl_pos true in
  1364. flush_pass ctx2 PFinal "core_final";
  1365. match t with
  1366. | TInst (ccore,_) | TAbstract({a_impl = Some ccore}, _) ->
  1367. ccore
  1368. | _ ->
  1369. assert false
  1370. let init_core_api ctx c =
  1371. let ccore = load_core_class ctx c in
  1372. begin try
  1373. List.iter2 (fun (n1,t1) (n2,t2) -> match follow t1, follow t2 with
  1374. | TInst({cl_kind = KTypeParameter l1},_),TInst({cl_kind = KTypeParameter l2},_) ->
  1375. begin try
  1376. List.iter2 (fun t1 t2 -> type_eq EqCoreType t2 t1) l1 l2
  1377. with
  1378. | Invalid_argument _ ->
  1379. error "Type parameters must have the same number of constraints as core type" c.cl_pos
  1380. | Unify_error l ->
  1381. display_error ctx ("Type parameter " ^ n2 ^ " has different constraint than in core type") c.cl_pos;
  1382. display_error ctx (error_msg (Unify l)) c.cl_pos
  1383. end
  1384. | t1,t2 ->
  1385. Printf.printf "%s %s" (s_type (print_context()) t1) (s_type (print_context()) t2);
  1386. assert false
  1387. ) ccore.cl_params c.cl_params;
  1388. with Invalid_argument _ ->
  1389. error "Class must have the same number of type parameters as core type" c.cl_pos
  1390. end;
  1391. (match c.cl_doc with
  1392. | None -> c.cl_doc <- ccore.cl_doc
  1393. | Some _ -> ());
  1394. let compare_fields f f2 =
  1395. let p = (match f2.cf_expr with None -> c.cl_pos | Some e -> e.epos) in
  1396. (try
  1397. type_eq EqCoreType (apply_params ccore.cl_params (List.map snd c.cl_params) f.cf_type) f2.cf_type
  1398. with Unify_error l ->
  1399. display_error ctx ("Field " ^ f.cf_name ^ " has different type than in core type") p;
  1400. display_error ctx (error_msg (Unify l)) p);
  1401. if f2.cf_public <> f.cf_public then error ("Field " ^ f.cf_name ^ " has different visibility than core type") p;
  1402. (match f2.cf_doc with
  1403. | None -> f2.cf_doc <- f.cf_doc
  1404. | Some _ -> ());
  1405. if f2.cf_kind <> f.cf_kind then begin
  1406. match f2.cf_kind, f.cf_kind with
  1407. | Method MethInline, Method MethNormal -> () (* allow to add 'inline' *)
  1408. | Method MethNormal, Method MethInline -> () (* allow to disable 'inline' *)
  1409. | _ ->
  1410. error ("Field " ^ f.cf_name ^ " has different property access than core type") p;
  1411. end;
  1412. (match follow f.cf_type, follow f2.cf_type with
  1413. | TFun (pl1,_), TFun (pl2,_) ->
  1414. if List.length pl1 != List.length pl2 then error "Argument count mismatch" p;
  1415. List.iter2 (fun (n1,_,_) (n2,_,_) ->
  1416. if n1 <> n2 then error ("Method parameter name '" ^ n2 ^ "' should be '" ^ n1 ^ "'") p;
  1417. ) pl1 pl2;
  1418. | _ -> ());
  1419. in
  1420. let check_fields fcore fl =
  1421. PMap.iter (fun i f ->
  1422. if not f.cf_public then () else
  1423. let f2 = try PMap.find f.cf_name fl with Not_found -> error ("Missing field " ^ i ^ " required by core type") c.cl_pos in
  1424. compare_fields f f2;
  1425. ) fcore;
  1426. PMap.iter (fun i f ->
  1427. let p = (match f.cf_expr with None -> c.cl_pos | Some e -> e.epos) in
  1428. if f.cf_public && not (Meta.has Meta.Hack f.cf_meta) && not (PMap.mem f.cf_name fcore) && not (List.memq f c.cl_overrides) then error ("Public field " ^ i ^ " is not part of core type") p;
  1429. ) fl;
  1430. in
  1431. check_fields ccore.cl_fields c.cl_fields;
  1432. check_fields ccore.cl_statics c.cl_statics;
  1433. (match ccore.cl_constructor, c.cl_constructor with
  1434. | None, None -> ()
  1435. | Some { cf_public = false }, _ -> ()
  1436. | Some f, Some f2 -> compare_fields f f2
  1437. | None, Some { cf_public = false } -> ()
  1438. | _ -> error "Constructor differs from core type" c.cl_pos)
  1439. let patch_class ctx c fields =
  1440. let h = (try Some (Hashtbl.find ctx.g.type_patches c.cl_path) with Not_found -> None) in
  1441. match h with
  1442. | None -> fields
  1443. | Some (h,hcl) ->
  1444. c.cl_meta <- c.cl_meta @ hcl.tp_meta;
  1445. let rec loop acc = function
  1446. | [] -> acc
  1447. | f :: l ->
  1448. (* patch arguments types *)
  1449. (match f.cff_kind with
  1450. | FFun ff ->
  1451. let param ((n,opt,t,e) as p) =
  1452. try
  1453. let t2 = (try Hashtbl.find h (("$" ^ f.cff_name ^ "__" ^ n),false) with Not_found -> Hashtbl.find h (("$" ^ n),false)) in
  1454. n, opt, t2.tp_type, e
  1455. with Not_found ->
  1456. p
  1457. in
  1458. f.cff_kind <- FFun { ff with f_args = List.map param ff.f_args }
  1459. | _ -> ());
  1460. (* other patches *)
  1461. match (try Some (Hashtbl.find h (f.cff_name,List.mem AStatic f.cff_access)) with Not_found -> None) with
  1462. | None -> loop (f :: acc) l
  1463. | Some { tp_remove = true } -> loop acc l
  1464. | Some p ->
  1465. f.cff_meta <- f.cff_meta @ p.tp_meta;
  1466. (match p.tp_type with
  1467. | None -> ()
  1468. | Some t ->
  1469. f.cff_kind <- match f.cff_kind with
  1470. | FVar (_,e) -> FVar (Some t,e)
  1471. | FProp (get,set,_,eo) -> FProp (get,set,Some t,eo)
  1472. | FFun f -> FFun { f with f_type = Some t });
  1473. loop (f :: acc) l
  1474. in
  1475. List.rev (loop [] fields)
  1476. let rec string_list_of_expr_path_raise (e,p) =
  1477. match e with
  1478. | EConst (Ident i) -> [i]
  1479. | EField (e,f) -> f :: string_list_of_expr_path_raise e
  1480. | _ -> raise Exit
  1481. let string_list_of_expr_path (e,p) =
  1482. try string_list_of_expr_path_raise (e,p)
  1483. with Exit -> error "Invalid path" p
  1484. let build_enum_abstract ctx c a fields p =
  1485. List.iter (fun field ->
  1486. match field.cff_kind with
  1487. | FVar(ct,eo) when not (List.mem AStatic field.cff_access) ->
  1488. begin match ct with
  1489. | Some _ -> error "Type hints on enum abstract fields are not allowed" field.cff_pos
  1490. | None -> ()
  1491. end;
  1492. field.cff_access <- [AStatic;APublic;AInline];
  1493. field.cff_meta <- (Meta.Enum,[],field.cff_pos) :: (Meta.Impl,[],field.cff_pos) :: field.cff_meta;
  1494. let e = match eo with
  1495. | None -> error "Value required" field.cff_pos
  1496. | Some e -> (ECast(e,None),field.cff_pos)
  1497. in
  1498. field.cff_kind <- FVar(ct,Some e)
  1499. | _ ->
  1500. ()
  1501. ) fields;
  1502. EVars ["",Some (CTAnonymous fields),None],p
  1503. let build_module_def ctx mt meta fvars context_init fbuild =
  1504. let rec loop = function
  1505. | (Meta.Build,args,p) :: l ->
  1506. let epath, el = (match args with
  1507. | [ECall (epath,el),p] -> epath, el
  1508. | _ -> error "Invalid build parameters" p
  1509. ) in
  1510. let s = try String.concat "." (List.rev (string_list_of_expr_path epath)) with Error (_,p) -> error "Build call parameter must be a class path" p in
  1511. if ctx.in_macro then error "You cannot use @:build inside a macro : make sure that your enum is not used in macro" p;
  1512. let old = ctx.g.get_build_infos in
  1513. ctx.g.get_build_infos <- (fun() -> Some (mt, List.map snd (t_infos mt).mt_params, fvars()));
  1514. context_init();
  1515. let r = try apply_macro ctx MBuild s el p with e -> ctx.g.get_build_infos <- old; raise e in
  1516. ctx.g.get_build_infos <- old;
  1517. (match r with
  1518. | None -> error "Build failure" p
  1519. | Some e -> fbuild e; loop l)
  1520. | (Meta.Enum,_,p) :: l ->
  1521. begin match mt with
  1522. | TClassDecl ({cl_kind = KAbstractImpl a} as c) ->
  1523. context_init();
  1524. let e = build_enum_abstract ctx c a (fvars()) p in
  1525. fbuild e;
  1526. loop l
  1527. | _ ->
  1528. loop l
  1529. end
  1530. | _ :: l -> loop l
  1531. | [] -> ()
  1532. in
  1533. (* let errors go through to prevent resume if build fails *)
  1534. loop meta
  1535. let init_class ctx c p context_init herits fields =
  1536. let ctx = {
  1537. ctx with
  1538. curclass = c;
  1539. type_params = c.cl_params;
  1540. pass = PBuildClass;
  1541. tthis = (match c.cl_kind with
  1542. | KAbstractImpl a ->
  1543. (match a.a_this with
  1544. | TMono r when !r = None -> TAbstract (a,List.map snd c.cl_params)
  1545. | t -> t)
  1546. | _ -> TInst (c,List.map snd c.cl_params));
  1547. on_error = (fun ctx msg ep ->
  1548. ctx.com.error msg ep;
  1549. (* macros expressions might reference other code, let's recall which class we are actually compiling *)
  1550. if ep.pfile <> c.cl_pos.pfile then ctx.com.error "Defined in this class" c.cl_pos
  1551. );
  1552. } in
  1553. incr stats.s_classes_built;
  1554. let fields = patch_class ctx c fields in
  1555. let fields = ref fields in
  1556. let get_fields() = !fields in
  1557. build_module_def ctx (TClassDecl c) c.cl_meta get_fields context_init (fun (e,p) ->
  1558. match e with
  1559. | EVars [_,Some (CTAnonymous f),None] ->
  1560. List.iter (fun f ->
  1561. if List.mem AMacro f.cff_access then
  1562. (match ctx.g.macros with
  1563. | Some (_,mctx) when Hashtbl.mem mctx.g.types_module c.cl_path ->
  1564. (* assume that if we had already a macro with the same name, it has not been changed during the @:build operation *)
  1565. if not (List.exists (fun f2 -> f2.cff_name = f.cff_name && List.mem AMacro f2.cff_access) (!fields)) then
  1566. error "Class build macro cannot return a macro function when the class has already been compiled into the macro context" p
  1567. | _ -> ())
  1568. ) f;
  1569. fields := f
  1570. | _ -> error "Class build macro must return a single variable with anonymous fields" p
  1571. );
  1572. let fields = !fields in
  1573. let core_api = Meta.has Meta.CoreApi c.cl_meta in
  1574. let is_class_macro = Meta.has Meta.Macro c.cl_meta in
  1575. if is_class_macro then display_error ctx "Macro classes are no longer allowed in haxe 3" p;
  1576. let fields, herits = if is_class_macro && not ctx.in_macro then begin
  1577. c.cl_extern <- true;
  1578. List.filter (fun f -> List.mem AStatic f.cff_access) fields, []
  1579. end else fields, herits in
  1580. if core_api && ctx.com.display = DMNone then delay ctx PForce (fun() -> init_core_api ctx c);
  1581. let rec extends_public c =
  1582. Meta.has Meta.PublicFields c.cl_meta ||
  1583. match c.cl_super with
  1584. | None -> false
  1585. | Some (c,_) -> extends_public c
  1586. in
  1587. let extends_public = extends_public c in
  1588. let is_public access parent =
  1589. if List.mem APrivate access then
  1590. false
  1591. else if List.mem APublic access then
  1592. true
  1593. else match parent with
  1594. | Some { cf_public = p } -> p
  1595. | _ -> c.cl_extern || c.cl_interface || extends_public
  1596. in
  1597. let rec get_parent c name =
  1598. match c.cl_super with
  1599. | None -> None
  1600. | Some (csup,_) ->
  1601. try
  1602. Some (PMap.find name csup.cl_fields)
  1603. with
  1604. Not_found -> get_parent csup name
  1605. in
  1606. let type_opt ctx p t =
  1607. match t with
  1608. | None when c.cl_extern || c.cl_interface ->
  1609. display_error ctx "Type required for extern classes and interfaces" p;
  1610. t_dynamic
  1611. | None when core_api ->
  1612. display_error ctx "Type required for core api classes" p;
  1613. t_dynamic
  1614. | _ ->
  1615. load_type_opt ctx p t
  1616. in
  1617. let rec has_field f = function
  1618. | None -> false
  1619. | Some (c,_) ->
  1620. PMap.exists f c.cl_fields || has_field f c.cl_super || List.exists (fun i -> has_field f (Some i)) c.cl_implements
  1621. in
  1622. (match c.cl_super with None -> () | Some _ -> delay ctx PForce (fun() -> check_overriding ctx c));
  1623. if ctx.com.config.pf_overload then delay ctx PForce (fun() -> check_overloads ctx c);
  1624. (* ----------------------- COMPLETION ----------------------------- *)
  1625. let display_file = if ctx.com.display <> DMNone then Common.unique_full_path p.pfile = (!Parser.resume_display).pfile else false in
  1626. let cp = !Parser.resume_display in
  1627. let delayed_expr = ref [] in
  1628. let rec is_full_type t =
  1629. match t with
  1630. | TFun (args,ret) -> is_full_type ret && List.for_all (fun (_,_,t) -> is_full_type t) args
  1631. | TMono r -> (match !r with None -> false | Some t -> is_full_type t)
  1632. | TAbstract _ | TInst _ | TEnum _ | TLazy _ | TDynamic _ | TAnon _ | TType _ -> true
  1633. in
  1634. let bind_type ctx cf r p macro =
  1635. if ctx.com.display <> DMNone then begin
  1636. let cp = !Parser.resume_display in
  1637. if display_file && (cp.pmin = 0 || (p.pmin <= cp.pmin && p.pmax >= cp.pmax)) then begin
  1638. if macro && not ctx.in_macro then
  1639. (* force macro system loading of this class in order to get completion *)
  1640. delay ctx PTypeField (fun() -> ignore(ctx.g.do_macro ctx MExpr c.cl_path cf.cf_name [] p))
  1641. else begin
  1642. cf.cf_type <- TLazy r;
  1643. delayed_expr := (ctx,Some r) :: !delayed_expr;
  1644. end
  1645. end else begin
  1646. if not (is_full_type cf.cf_type) then begin
  1647. delayed_expr := (ctx, None) :: !delayed_expr;
  1648. cf.cf_type <- TLazy r;
  1649. end;
  1650. end
  1651. end else if macro && not ctx.in_macro then
  1652. ()
  1653. else begin
  1654. cf.cf_type <- TLazy r;
  1655. delayed_expr := (ctx,Some r) :: !delayed_expr;
  1656. end
  1657. in
  1658. let force_constructor = ref false in
  1659. let bind_var ctx cf e stat inline =
  1660. let p = cf.cf_pos in
  1661. if not stat && has_field cf.cf_name c.cl_super then error ("Redefinition of variable " ^ cf.cf_name ^ " in subclass is not allowed") p;
  1662. let t = cf.cf_type in
  1663. match e with
  1664. | None -> ()
  1665. | Some e ->
  1666. let check_cast e =
  1667. (* insert cast to keep explicit field type (issue #1901) *)
  1668. if type_iseq e.etype cf.cf_type then
  1669. e
  1670. else begin match e.eexpr,follow cf.cf_type with
  1671. | TConst (TInt i),TAbstract({a_path=[],"Float"},_) ->
  1672. (* turn int constant to float constant if expected type is float *)
  1673. {e with eexpr = TConst (TFloat (Int32.to_string i))}
  1674. | _ ->
  1675. mk_cast e cf.cf_type e.epos
  1676. end
  1677. in
  1678. let r = exc_protect ctx (fun r ->
  1679. (* type constant init fields (issue #1956) *)
  1680. if not !return_partial_type || (match fst e with EConst _ -> true | _ -> false) then begin
  1681. r := (fun() -> t);
  1682. context_init();
  1683. if ctx.com.verbose then Common.log ctx.com ("Typing " ^ (if ctx.in_macro then "macro " else "") ^ s_type_path c.cl_path ^ "." ^ cf.cf_name);
  1684. let e = type_var_field ctx t e stat p in
  1685. let require_constant_expression e msg = match Optimizer.make_constant_expression ctx e with
  1686. | Some e -> e
  1687. | None -> display_error ctx msg p; e
  1688. in
  1689. let e = (match cf.cf_kind with
  1690. | Var v when c.cl_extern || Meta.has Meta.Extern cf.cf_meta ->
  1691. if not stat then begin
  1692. display_error ctx "Extern non-static variables may not be initialized" p;
  1693. e
  1694. end else if v.v_read <> AccInline then begin
  1695. display_error ctx "Extern non-inline variables may not be initialized" p;
  1696. e
  1697. end else require_constant_expression e "Extern variable initialization must be a constant value"
  1698. | Var v when is_extern_field cf ->
  1699. (* disallow initialization of non-physical fields (issue #1958) *)
  1700. display_error ctx "This field cannot be initialized because it is not a real variable" p; e
  1701. | Var v when not stat ->
  1702. let e = match Optimizer.make_constant_expression ctx e with
  1703. | Some e -> e
  1704. | None ->
  1705. let rec has_this e = match e.eexpr with
  1706. | TConst TThis ->
  1707. display_error ctx "Cannot access this or other member field in variable initialization" e.epos;
  1708. | _ ->
  1709. Type.iter has_this e
  1710. in
  1711. has_this e;
  1712. e
  1713. in
  1714. e
  1715. | Var v when v.v_read = AccInline ->
  1716. let e = require_constant_expression e "Inline variable initialization must be a constant value" in
  1717. begin match c.cl_kind with
  1718. | KAbstractImpl a when Meta.has Meta.Enum cf.cf_meta && Meta.has Meta.Enum a.a_meta ->
  1719. unify ctx (TAbstract(a,(List.map (fun _ -> mk_mono()) a.a_params))) t p;
  1720. begin match e.eexpr with
  1721. | TCast(e1,None) -> unify ctx e1.etype a.a_this e1.epos
  1722. | _ -> assert false
  1723. end
  1724. | _ ->
  1725. ()
  1726. end;
  1727. e
  1728. | _ ->
  1729. e
  1730. ) in
  1731. let e = check_cast e in
  1732. cf.cf_expr <- Some e;
  1733. cf.cf_type <- t;
  1734. end;
  1735. t
  1736. ) "bind_var" in
  1737. if not stat then force_constructor := true;
  1738. bind_type ctx cf r (snd e) false
  1739. in
  1740. (* ----------------------- FIELD INIT ----------------------------- *)
  1741. let loop_cf f =
  1742. let name = f.cff_name in
  1743. let p = f.cff_pos in
  1744. if name.[0] = '$' && ctx.com.display = DMNone then error "Field names starting with a dollar are not allowed" p;
  1745. let stat = List.mem AStatic f.cff_access in
  1746. let extern = Meta.has Meta.Extern f.cff_meta || c.cl_extern in
  1747. let is_abstract,allow_inline =
  1748. match c.cl_kind, f.cff_kind with
  1749. | KAbstractImpl _, _ -> true,true
  1750. |_, FFun _ -> false,ctx.g.doinline || extern
  1751. | _ -> false,true
  1752. in
  1753. let inline = List.mem AInline f.cff_access && allow_inline in
  1754. let override = List.mem AOverride f.cff_access in
  1755. let is_macro = Meta.has Meta.Macro f.cff_meta in
  1756. if is_macro then ctx.com.warning "@:macro should now be 'macro' accessor" p;
  1757. let is_macro = is_macro || List.mem AMacro f.cff_access in
  1758. List.iter (fun acc ->
  1759. match (acc, f.cff_kind) with
  1760. | APublic, _ | APrivate, _ | AStatic, _ -> ()
  1761. | ADynamic, FFun _ | AOverride, FFun _ | AMacro, FFun _ | AInline, FFun _ | AInline, FVar _ -> ()
  1762. | _, FVar _ -> error ("Invalid accessor '" ^ Ast.s_access acc ^ "' for variable " ^ name) p
  1763. | _, FProp _ -> error ("Invalid accessor '" ^ Ast.s_access acc ^ "' for property " ^ name) p
  1764. ) f.cff_access;
  1765. if override then (match c.cl_super with None -> error ("Invalid override on field '" ^ f.cff_name ^ "': class has no super class") p | _ -> ());
  1766. (* build the per-field context *)
  1767. let ctx = {
  1768. ctx with
  1769. pass = PBuildClass; (* will be set later to PTypeExpr *)
  1770. } in
  1771. match f.cff_kind with
  1772. | FVar (t,e) ->
  1773. if not stat && is_abstract then error (f.cff_name ^ ": Cannot declare member variable in abstract") p;
  1774. if inline && not stat then error (f.cff_name ^ ": Inline variable must be static") p;
  1775. if inline && e = None then error (f.cff_name ^ ": Inline variable must be initialized") p;
  1776. let t = (match t with
  1777. | None when not stat && e = None ->
  1778. error ("Type required for member variable " ^ name) p;
  1779. | None ->
  1780. mk_mono()
  1781. | Some t ->
  1782. let old = ctx.type_params in
  1783. if stat then ctx.type_params <- [];
  1784. let t = load_complex_type ctx p t in
  1785. if stat then ctx.type_params <- old;
  1786. t
  1787. ) in
  1788. let cf = {
  1789. cf_name = name;
  1790. cf_doc = f.cff_doc;
  1791. cf_meta = f.cff_meta;
  1792. cf_type = t;
  1793. cf_pos = f.cff_pos;
  1794. cf_kind = Var (if inline then { v_read = AccInline ; v_write = AccNever } else { v_read = AccNormal; v_write = AccNormal });
  1795. cf_expr = None;
  1796. cf_public = is_public f.cff_access None;
  1797. cf_params = [];
  1798. cf_overloads = [];
  1799. } in
  1800. ctx.curfield <- cf;
  1801. bind_var ctx cf e stat inline;
  1802. f, false, cf, true
  1803. | FFun fd ->
  1804. let params = type_function_params ctx fd f.cff_name p in
  1805. if inline && c.cl_interface then error (f.cff_name ^ ": You can't declare inline methods in interfaces") p;
  1806. if Meta.has Meta.Generic f.cff_meta then begin
  1807. if params = [] then error (f.cff_name ^ ": Generic functions must have type parameters") p;
  1808. end;
  1809. let is_macro = is_macro || (is_class_macro && stat) in
  1810. let f, stat, fd = if not is_macro || stat then
  1811. f, stat, fd
  1812. else if ctx.in_macro then
  1813. (* non-static macros methods are turned into static when we are running the macro *)
  1814. { f with cff_access = AStatic :: f.cff_access }, true, fd
  1815. else
  1816. (* remove display of first argument which will contain the "this" expression *)
  1817. f, stat, { fd with f_args = match fd.f_args with [] -> [] | _ :: l -> l }
  1818. in
  1819. let fd = if not is_macro then
  1820. fd
  1821. else begin
  1822. if ctx.in_macro then begin
  1823. (* a class with a macro cannot be extern in macro context (issue #2015) *)
  1824. c.cl_extern <- false;
  1825. let texpr = CTPath { tpackage = ["haxe";"macro"]; tname = "Expr"; tparams = []; tsub = None } in
  1826. (* ExprOf type parameter might contain platform-specific type, let's replace it by Expr *)
  1827. let no_expr_of = function
  1828. | CTPath { tpackage = ["haxe";"macro"]; tname = "Expr"; tsub = Some ("ExprOf"); tparams = [TPType _] }
  1829. | CTPath { tpackage = []; tname = ("ExprOf"); tsub = None; tparams = [TPType _] } -> Some texpr
  1830. | t -> Some t
  1831. in
  1832. {
  1833. f_params = fd.f_params;
  1834. f_type = (match fd.f_type with None -> Some texpr | Some t -> no_expr_of t);
  1835. f_args = List.map (fun (a,o,t,e) -> a,o,(match t with None -> Some texpr | Some t -> no_expr_of t),e) fd.f_args;
  1836. f_expr = fd.f_expr;
  1837. }
  1838. end else
  1839. let tdyn = Some (CTPath { tpackage = []; tname = "Dynamic"; tparams = []; tsub = None }) in
  1840. let to_dyn = function
  1841. | { tpackage = ["haxe";"macro"]; tname = "Expr"; tsub = Some ("ExprOf"); tparams = [TPType t] } -> Some t
  1842. | { tpackage = []; tname = ("ExprOf"); tsub = None; tparams = [TPType t] } -> Some t
  1843. | { tpackage = ["haxe"]; tname = ("PosInfos"); tsub = None; tparams = [] } -> error "haxe.PosInfos is not allowed on macro functions, use Context.currentPos() instead" p
  1844. | _ -> tdyn
  1845. in
  1846. {
  1847. f_params = fd.f_params;
  1848. f_type = (match fd.f_type with Some (CTPath t) -> to_dyn t | _ -> tdyn);
  1849. f_args = List.map (fun (a,o,t,_) -> a,o,(match t with Some (CTPath t) -> to_dyn t | _ -> tdyn),None) fd.f_args;
  1850. f_expr = None;
  1851. }
  1852. end in
  1853. let parent = (if not stat then get_parent c name else None) in
  1854. let dynamic = List.mem ADynamic f.cff_access || (match parent with Some { cf_kind = Method MethDynamic } -> true | _ -> false) in
  1855. if inline && dynamic then error (f.cff_name ^ ": You can't have both 'inline' and 'dynamic'") p;
  1856. ctx.type_params <- (match c.cl_kind with
  1857. | KAbstractImpl a when Meta.has Meta.Impl f.cff_meta || Meta.has Meta.From f.cff_meta || Meta.has Meta.MultiType a.a_meta && Meta.has Meta.To f.cff_meta ->
  1858. params @ a.a_params
  1859. | _ ->
  1860. if stat then params else params @ ctx.type_params);
  1861. let constr = (name = "new") in
  1862. let ret = if constr then ctx.t.tvoid else type_opt ctx p fd.f_type in
  1863. let rec loop args = match args with
  1864. | (name,opt,t,ct) :: args ->
  1865. let t, ct = type_function_arg ctx (type_opt ctx p t) ct opt p in
  1866. delay ctx PTypeField (fun() -> match follow t with
  1867. | TAbstract({a_path = ["haxe"],"Rest"},_) ->
  1868. if not c.cl_extern then error "Rest argument are only supported for extern methods" p;
  1869. if opt then error "Rest argument cannot be optional" p;
  1870. if ct <> None then error "Rest argument cannot have default value" p;
  1871. if args <> [] then error "Rest should only be used for the last function argument" p;
  1872. | _ ->
  1873. ()
  1874. );
  1875. (name, ct, t) :: (loop args)
  1876. | [] ->
  1877. []
  1878. in
  1879. let args = loop fd.f_args in
  1880. let t = TFun (fun_args args,ret) in
  1881. if c.cl_interface && not stat && fd.f_expr <> None then error (f.cff_name ^ ": An interface method cannot have a body") p;
  1882. if constr then begin
  1883. if c.cl_interface then error "An interface cannot have a constructor" p;
  1884. if stat then error "A constructor must not be static" p;
  1885. match fd.f_type with
  1886. | None | Some (CTPath { tpackage = []; tname = "Void" }) -> ()
  1887. | _ -> error "A class constructor can't have a return value" p
  1888. end;
  1889. let cf = {
  1890. cf_name = name;
  1891. cf_doc = f.cff_doc;
  1892. cf_meta = f.cff_meta;
  1893. cf_type = t;
  1894. cf_pos = f.cff_pos;
  1895. cf_kind = Method (if is_macro then MethMacro else if inline then MethInline else if dynamic then MethDynamic else MethNormal);
  1896. cf_expr = None;
  1897. cf_public = is_public f.cff_access parent;
  1898. cf_params = params;
  1899. cf_overloads = [];
  1900. } in
  1901. let do_bind = ref (((not c.cl_extern || inline) && not c.cl_interface) || cf.cf_name = "__init__") in
  1902. let do_add = ref true in
  1903. (match c.cl_kind with
  1904. | KAbstractImpl a ->
  1905. let m = mk_mono() in
  1906. let ta = TAbstract(a, List.map (fun _ -> mk_mono()) a.a_params) in
  1907. let tthis = if Meta.has Meta.Impl f.cff_meta || Meta.has Meta.To f.cff_meta then monomorphs a.a_params a.a_this else a.a_this in
  1908. let check_bind () =
  1909. if fd.f_expr = None then begin
  1910. if inline then error (f.cff_name ^ ": Inline functions must have an expression") f.cff_pos;
  1911. begin match fd.f_type with
  1912. | None -> error (f.cff_name ^ ": Functions without expressions must have an explicit return type") f.cff_pos
  1913. | Some _ -> ()
  1914. end;
  1915. do_add := false;
  1916. do_bind := false;
  1917. end
  1918. in
  1919. let rec loop ml = match ml with
  1920. | (Meta.From,_,_) :: _ ->
  1921. if is_macro then error (f.cff_name ^ ": Macro cast functions are not supported") p;
  1922. let r = fun () ->
  1923. (* the return type of a from-function must be the abstract, not the underlying type *)
  1924. (try type_eq EqStrict ret ta with Unify_error l -> error (error_msg (Unify l)) p);
  1925. match t with
  1926. | TFun([_,_,t],_) -> t
  1927. | _ -> error (f.cff_name ^ ": @:from cast functions must accept exactly one argument") p
  1928. in
  1929. a.a_from_field <- (TLazy (ref r),cf) :: a.a_from_field;
  1930. | (Meta.To,_,_) :: _ ->
  1931. if is_macro then error (f.cff_name ^ ": Macro cast functions are not supported") p;
  1932. if not (Meta.has Meta.Impl cf.cf_meta) then cf.cf_meta <- (Meta.Impl,[],cf.cf_pos) :: cf.cf_meta;
  1933. let resolve_m args =
  1934. (try unify_raise ctx t (tfun (tthis :: args) m) f.cff_pos with Error (Unify l,p) -> error (error_msg (Unify l)) p);
  1935. match follow m with
  1936. | TMono _ when (match cf.cf_type with TFun(_,r) -> r == t_dynamic | _ -> false) -> t_dynamic
  1937. | m -> m
  1938. in
  1939. let r = exc_protect ctx (fun r ->
  1940. let args = if Meta.has Meta.MultiType a.a_meta then begin
  1941. let ctor = try
  1942. PMap.find "_new" c.cl_statics
  1943. with Not_found ->
  1944. error "Constructor of multi-type abstract must be defined before the individual @:to-functions are" cf.cf_pos
  1945. in
  1946. delay ctx PFinal (fun () -> unify ctx m tthis f.cff_pos);
  1947. let args = match follow (monomorphs a.a_params ctor.cf_type) with
  1948. | TFun(args,_) -> List.map (fun (_,_,t) -> t) args
  1949. | _ -> assert false
  1950. in
  1951. args
  1952. end else
  1953. []
  1954. in
  1955. let t = resolve_m args in
  1956. r := (fun() -> t);
  1957. t
  1958. ) "@:to" in
  1959. delay ctx PForce (fun() -> ignore ((!r)()));
  1960. a.a_to_field <- (TLazy r, cf) :: a.a_to_field
  1961. | (Meta.ArrayAccess,_,_) :: _ ->
  1962. if is_macro then error (f.cff_name ^ ": Macro array-access functions are not supported") p;
  1963. a.a_array <- cf :: a.a_array;
  1964. if Meta.has Meta.CoreType a.a_meta then check_bind();
  1965. | (Meta.Op,[EBinop(op,_,_),_],_) :: _ ->
  1966. if is_macro then error (f.cff_name ^ ": Macro operator functions are not supported") p;
  1967. let targ = if Meta.has Meta.Impl f.cff_meta then tthis else ta in
  1968. let left_eq,right_eq = match follow t with
  1969. | TFun([(_,_,t1);(_,_,t2)],_) ->
  1970. type_iseq targ t1,type_iseq targ t2
  1971. | _ ->
  1972. if Meta.has Meta.Impl cf.cf_meta then
  1973. error (f.cff_name ^ ": Member @:op functions must accept exactly one argument") cf.cf_pos
  1974. else
  1975. error (f.cff_name ^ ": Static @:op functions must accept exactly two arguments") cf.cf_pos
  1976. in
  1977. if not (left_eq || right_eq) then error (f.cff_name ^ ": The left or right argument type must be " ^ (s_type (print_context()) targ)) f.cff_pos;
  1978. if right_eq && Meta.has Meta.Commutative f.cff_meta then error (f.cff_name ^ ": @:commutative is only allowed if the right argument is not " ^ (s_type (print_context()) targ)) f.cff_pos;
  1979. a.a_ops <- (op,cf) :: a.a_ops;
  1980. check_bind();
  1981. | (Meta.Op,[EUnop(op,flag,_),_],_) :: _ ->
  1982. if is_macro then error (f.cff_name ^ ": Macro operator functions are not supported") p;
  1983. let targ = if Meta.has Meta.Impl f.cff_meta then tthis else ta in
  1984. (try type_eq EqStrict t (tfun [targ] (mk_mono())) with Unify_error l -> raise (Error ((Unify l),f.cff_pos)));
  1985. a.a_unops <- (op,flag,cf) :: a.a_unops;
  1986. check_bind();
  1987. | _ :: ml ->
  1988. loop ml
  1989. | [] ->
  1990. ()
  1991. in
  1992. loop f.cff_meta;
  1993. if f.cff_name = "_new" && Meta.has Meta.MultiType a.a_meta then do_bind := false;
  1994. | _ ->
  1995. ());
  1996. init_meta_overloads ctx cf;
  1997. ctx.curfield <- cf;
  1998. let r = exc_protect ctx (fun r ->
  1999. if not !return_partial_type then begin
  2000. r := (fun() -> t);
  2001. context_init();
  2002. incr stats.s_methods_typed;
  2003. if ctx.com.verbose then Common.log ctx.com ("Typing " ^ (if ctx.in_macro then "macro " else "") ^ s_type_path c.cl_path ^ "." ^ name);
  2004. let fmode = (match c.cl_kind with
  2005. | KAbstractImpl _ ->
  2006. (match args with
  2007. | ("this",_,_) :: _ -> FunMemberAbstract
  2008. | _ when name = "_new" -> FunMemberAbstract
  2009. | _ -> FunStatic)
  2010. | _ ->
  2011. if constr then FunConstructor else if stat then FunStatic else FunMember
  2012. ) in
  2013. let display_field = display_file && (f.cff_pos.pmin <= cp.pmin && f.cff_pos.pmax >= cp.pmax) in
  2014. let e , fargs = type_function ctx args ret fmode fd display_field p in
  2015. let f = {
  2016. tf_args = fargs;
  2017. tf_type = ret;
  2018. tf_expr = e;
  2019. } in
  2020. if stat && name = "__init__" then
  2021. (match e.eexpr with
  2022. | TBlock [] | TBlock [{ eexpr = TConst _ }] | TConst _ | TObjectDecl [] -> ()
  2023. | _ -> c.cl_init <- Some e);
  2024. cf.cf_expr <- Some (mk (TFunction f) t p);
  2025. cf.cf_type <- t;
  2026. end;
  2027. t
  2028. ) "type_fun" in
  2029. if !do_bind then bind_type ctx cf r (match fd.f_expr with Some e -> snd e | None -> f.cff_pos) is_macro;
  2030. f, constr, cf, !do_add
  2031. | FProp (get,set,t,eo) ->
  2032. (match c.cl_kind with
  2033. | KAbstractImpl a when Meta.has Meta.Impl f.cff_meta ->
  2034. ctx.type_params <- a.a_params;
  2035. | _ -> ());
  2036. let ret = (match t, eo with
  2037. | None, None -> error (f.cff_name ^ ": Property must either define a type or a default value") p;
  2038. | None, _ -> mk_mono()
  2039. | Some t, _ -> load_complex_type ctx p t
  2040. ) in
  2041. let t_get,t_set = match c.cl_kind with
  2042. | KAbstractImpl a when Meta.has Meta.Impl f.cff_meta ->
  2043. if Meta.has Meta.IsVar f.cff_meta then error (f.cff_name ^ ": Abstract properties cannot be real variables") f.cff_pos;
  2044. let ta = apply_params a.a_params (List.map snd a.a_params) a.a_this in
  2045. tfun [ta] ret, tfun [ta;ret] ret
  2046. | _ -> tfun [] ret, TFun(["value",false,ret],ret)
  2047. in
  2048. let check_method m t req_name =
  2049. if ctx.com.display <> DMNone then () else
  2050. try
  2051. let _, t2, f = (if stat then let f = PMap.find m c.cl_statics in None, f.cf_type, f else class_field c (List.map snd c.cl_params) m) in
  2052. (* accessors must be public on As3 (issue #1872) *)
  2053. if Common.defined ctx.com Define.As3 then f.cf_meta <- (Meta.Public,[],p) :: f.cf_meta;
  2054. (match f.cf_kind with
  2055. | Method MethMacro ->
  2056. display_error ctx (f.cf_name ^ ": Macro methods cannot be used as property accessor") p;
  2057. display_error ctx (f.cf_name ^ ": Accessor method is here") f.cf_pos;
  2058. | _ -> ());
  2059. unify_raise ctx t2 t f.cf_pos;
  2060. (match req_name with None -> () | Some n -> display_error ctx ("Please use " ^ n ^ " to name your property access method") f.cf_pos);
  2061. with
  2062. | Error (Unify l,p) -> raise (Error (Stack (Custom ("In method " ^ m ^ " required by property " ^ name),Unify l),p))
  2063. | Not_found ->
  2064. if req_name <> None then display_error ctx (f.cff_name ^ ": Custom property accessor is no longer supported, please use get/set") p else
  2065. if c.cl_interface then begin
  2066. let cf = mk_field m t p in
  2067. cf.cf_meta <- [Meta.CompilerGenerated,[],p];
  2068. cf.cf_kind <- Method MethNormal;
  2069. c.cl_fields <- PMap.add cf.cf_name cf c.cl_fields;
  2070. c.cl_ordered_fields <- cf :: c.cl_ordered_fields;
  2071. end else if not c.cl_extern then display_error ctx ("Method " ^ m ^ " required by property " ^ name ^ " is missing") p
  2072. in
  2073. let get = (match get with
  2074. | "null" -> AccNo
  2075. | "dynamic" -> AccCall
  2076. | "never" -> AccNever
  2077. | "default" -> AccNormal
  2078. | _ ->
  2079. let get = if get = "get" then "get_" ^ name else get in
  2080. delay ctx PTypeField (fun() -> check_method get t_get (if get <> "get" && get <> "get_" ^ name then Some ("get_" ^ name) else None));
  2081. AccCall
  2082. ) in
  2083. let set = (match set with
  2084. | "null" ->
  2085. (* standard flash library read-only variables can't be accessed for writing, even in subclasses *)
  2086. if c.cl_extern && (match c.cl_path with "flash" :: _ , _ -> true | _ -> false) && ctx.com.platform = Flash then
  2087. AccNever
  2088. else
  2089. AccNo
  2090. | "never" -> AccNever
  2091. | "dynamic" -> AccCall
  2092. | "default" -> AccNormal
  2093. | _ ->
  2094. let set = if set = "set" then "set_" ^ name else set in
  2095. delay ctx PTypeField (fun() -> check_method set t_set (if set <> "set" && set <> "set_" ^ name then Some ("set_" ^ name) else None));
  2096. AccCall
  2097. ) in
  2098. if set = AccNormal && (match get with AccCall -> true | _ -> false) then error (f.cff_name ^ ": Unsupported property combination") p;
  2099. let cf = {
  2100. cf_name = name;
  2101. cf_doc = f.cff_doc;
  2102. cf_meta = f.cff_meta;
  2103. cf_pos = f.cff_pos;
  2104. cf_kind = Var { v_read = get; v_write = set };
  2105. cf_expr = None;
  2106. cf_type = ret;
  2107. cf_public = is_public f.cff_access None;
  2108. cf_params = [];
  2109. cf_overloads = [];
  2110. } in
  2111. ctx.curfield <- cf;
  2112. bind_var ctx cf eo stat inline;
  2113. f, false, cf, true
  2114. in
  2115. let rec check_require = function
  2116. | [] -> None
  2117. | (Meta.Require,conds,_) :: l ->
  2118. let rec loop = function
  2119. | [] -> check_require l
  2120. | e :: l ->
  2121. let sc = match fst e with
  2122. | EConst (Ident s) -> s
  2123. | EBinop ((OpEq|OpNotEq|OpGt|OpGte|OpLt|OpLte) as op,(EConst (Ident s),_),(EConst ((Int _ | Float _ | String _) as c),_)) -> s ^ s_binop op ^ s_constant c
  2124. | _ -> ""
  2125. in
  2126. if not (Parser.is_true (Parser.eval ctx.com e)) then
  2127. Some (sc,(match List.rev l with (EConst (String msg),_) :: _ -> Some msg | _ -> None))
  2128. else
  2129. loop l
  2130. in
  2131. loop conds
  2132. | _ :: l ->
  2133. check_require l
  2134. in
  2135. let cl_req = check_require c.cl_meta in
  2136. List.iter (fun f ->
  2137. let p = f.cff_pos in
  2138. try
  2139. let fd , constr, f, do_add = loop_cf f in
  2140. let is_static = List.mem AStatic fd.cff_access in
  2141. if (is_static || constr) && c.cl_interface && f.cf_name <> "__init__" then error "You can't declare static fields in interfaces" p;
  2142. begin try
  2143. let _,args,_ = Meta.get Meta.IfFeature f.cf_meta in
  2144. List.iter (fun e -> match fst e with
  2145. | EConst(String s) ->
  2146. ctx.m.curmod.m_extra.m_features <- (s,(c,f,is_static)) :: ctx.m.curmod.m_extra.m_features;
  2147. | _ ->
  2148. error "String expected" (pos e)
  2149. ) args
  2150. with Not_found -> () end;
  2151. let req = check_require fd.cff_meta in
  2152. let req = (match req with None -> if is_static || constr then cl_req else None | _ -> req) in
  2153. (match req with
  2154. | None -> ()
  2155. | Some r -> f.cf_kind <- Var { v_read = AccRequire (fst r, snd r); v_write = AccRequire (fst r, snd r) });
  2156. if constr then begin
  2157. match c.cl_constructor with
  2158. | None ->
  2159. c.cl_constructor <- Some f
  2160. | Some ctor when ctx.com.config.pf_overload ->
  2161. if Meta.has Meta.Overload f.cf_meta && Meta.has Meta.Overload ctor.cf_meta then
  2162. ctor.cf_overloads <- f :: ctor.cf_overloads
  2163. else if Meta.has Meta.Overload f.cf_meta <> Meta.has Meta.Overload ctor.cf_meta then
  2164. display_error ctx ("If using overloaded constructors, all constructors must be declared with @:overload") (if Meta.has Meta.Overload f.cf_meta then ctor.cf_pos else f.cf_pos)
  2165. | Some ctor ->
  2166. display_error ctx "Duplicate constructor" p
  2167. end else if not is_static || f.cf_name <> "__init__" then begin
  2168. let dup = if is_static then PMap.exists f.cf_name c.cl_fields || has_field f.cf_name c.cl_super else PMap.exists f.cf_name c.cl_statics in
  2169. if dup then error ("Same field name can't be use for both static and instance : " ^ f.cf_name) p;
  2170. if List.mem AOverride fd.cff_access then c.cl_overrides <- f :: c.cl_overrides;
  2171. let is_var f = match f.cf_kind with | Var _ -> true | _ -> false in
  2172. if PMap.mem f.cf_name (if is_static then c.cl_statics else c.cl_fields) then
  2173. if ctx.com.config.pf_overload && Meta.has Meta.Overload f.cf_meta && not (is_var f) then
  2174. let mainf = PMap.find f.cf_name (if is_static then c.cl_statics else c.cl_fields) in
  2175. if is_var mainf then display_error ctx "Cannot declare a variable with same name as a method" mainf.cf_pos;
  2176. (if not (Meta.has Meta.Overload mainf.cf_meta) then display_error ctx ("Overloaded methods must have @:overload metadata") mainf.cf_pos);
  2177. mainf.cf_overloads <- f :: mainf.cf_overloads
  2178. else
  2179. display_error ctx ("Duplicate class field declaration : " ^ f.cf_name) p
  2180. else
  2181. if not do_add then
  2182. ()
  2183. else if is_static then begin
  2184. c.cl_statics <- PMap.add f.cf_name f c.cl_statics;
  2185. c.cl_ordered_statics <- f :: c.cl_ordered_statics;
  2186. end else begin
  2187. c.cl_fields <- PMap.add f.cf_name f c.cl_fields;
  2188. c.cl_ordered_fields <- f :: c.cl_ordered_fields;
  2189. end;
  2190. end
  2191. with Error (Custom str,p2) when p = p2 ->
  2192. display_error ctx str p
  2193. ) fields;
  2194. (match c.cl_kind with
  2195. | KAbstractImpl a ->
  2196. a.a_to_field <- List.rev a.a_to_field;
  2197. a.a_from_field <- List.rev a.a_from_field;
  2198. a.a_ops <- List.rev a.a_ops;
  2199. a.a_unops <- List.rev a.a_unops;
  2200. a.a_array <- List.rev a.a_array;
  2201. | _ -> ());
  2202. c.cl_ordered_statics <- List.rev c.cl_ordered_statics;
  2203. c.cl_ordered_fields <- List.rev c.cl_ordered_fields;
  2204. (*
  2205. make sure a default contructor with same access as super one will be added to the class structure at some point.
  2206. *)
  2207. (* add_constructor does not deal with overloads correctly *)
  2208. if not ctx.com.config.pf_overload then add_constructor ctx c !force_constructor p;
  2209. (* check overloaded constructors *)
  2210. (if ctx.com.config.pf_overload then match c.cl_constructor with
  2211. | Some ctor ->
  2212. List.iter (fun f ->
  2213. try
  2214. (* TODO: consider making a broader check, and treat some types, like TAnon and type parameters as Dynamic *)
  2215. ignore(List.find (fun f2 -> f != f2 && same_overload_args f.cf_type f2.cf_type f f2) (ctor :: ctor.cf_overloads));
  2216. display_error ctx ("Another overloaded field of same signature was already declared : " ^ f.cf_name) f.cf_pos;
  2217. with Not_found -> ()
  2218. ) (ctor :: ctor.cf_overloads)
  2219. | _ -> ());
  2220. (* push delays in reverse order so they will be run in correct order *)
  2221. List.iter (fun (ctx,r) ->
  2222. ctx.pass <- PTypeField;
  2223. (match r with
  2224. | None -> ()
  2225. | Some r -> delay ctx PTypeField (fun() -> ignore((!r)())))
  2226. ) !delayed_expr
  2227. let resolve_typedef t =
  2228. match t with
  2229. | TClassDecl _ | TEnumDecl _ | TAbstractDecl _ -> t
  2230. | TTypeDecl td ->
  2231. match follow td.t_type with
  2232. | TEnum (e,_) -> TEnumDecl e
  2233. | TInst (c,_) -> TClassDecl c
  2234. | TAbstract (a,_) -> TAbstractDecl a
  2235. | _ -> t
  2236. let add_module ctx m p =
  2237. let decl_type t =
  2238. let t = t_infos t in
  2239. try
  2240. let m2 = Hashtbl.find ctx.g.types_module t.mt_path in
  2241. if m.m_path <> m2 && String.lowercase (s_type_path m2) = String.lowercase (s_type_path m.m_path) then error ("Module " ^ s_type_path m2 ^ " is loaded with a different case than " ^ s_type_path m.m_path) p;
  2242. error ("Type name " ^ s_type_path t.mt_path ^ " is redefined from module " ^ s_type_path m2) p
  2243. with
  2244. Not_found ->
  2245. Hashtbl.add ctx.g.types_module t.mt_path m.m_path
  2246. in
  2247. List.iter decl_type m.m_types;
  2248. Hashtbl.add ctx.g.modules m.m_path m
  2249. (*
  2250. In this pass, we can access load and access other modules types, but we cannot follow them or access their structure
  2251. since they have not been setup. We also build a context_init list that will be evaluated the first time we evaluate
  2252. an expression into the context
  2253. *)
  2254. let rec init_module_type ctx context_init do_init (decl,p) =
  2255. let get_type name =
  2256. try List.find (fun t -> snd (t_infos t).mt_path = name) ctx.m.curmod.m_types with Not_found -> assert false
  2257. in
  2258. match decl with
  2259. | EImport (path,mode) ->
  2260. let rec loop acc = function
  2261. | x :: l when is_lower_ident (fst x) -> loop (x::acc) l
  2262. | rest -> List.rev acc, rest
  2263. in
  2264. let pack, rest = loop [] path in
  2265. (match rest with
  2266. | [] ->
  2267. (match mode with
  2268. | IAll ->
  2269. ctx.m.wildcard_packages <- List.map fst pack :: ctx.m.wildcard_packages
  2270. | _ ->
  2271. (match List.rev path with
  2272. | [] -> assert false
  2273. | (_,p) :: _ -> error "Module name must start with an uppercase letter" p))
  2274. | (tname,p2) :: rest ->
  2275. let p1 = (match pack with [] -> p2 | (_,p1) :: _ -> p1) in
  2276. let p = punion p1 p2 in
  2277. let md = ctx.g.do_load_module ctx (List.map fst pack,tname) p in
  2278. let types = md.m_types in
  2279. let no_private t = not (t_infos t).mt_private in
  2280. let chk_private t p = if (t_infos t).mt_private then error "You can't import a private type" p in
  2281. let has_name name t = snd (t_infos t).mt_path = name in
  2282. let get_type tname =
  2283. let t = (try List.find (has_name tname) types with Not_found -> error (string_error tname (List.map (fun mt -> snd (t_infos mt).mt_path) types) ("Module " ^ s_type_path md.m_path ^ " does not define type " ^ tname)) p) in
  2284. chk_private t p;
  2285. t
  2286. in
  2287. let rebind t name =
  2288. let _, _, f = ctx.g.do_build_instance ctx t p in
  2289. (* create a temp private typedef, does not register it in module *)
  2290. TTypeDecl {
  2291. t_path = (fst md.m_path @ ["_" ^ snd md.m_path],name);
  2292. t_module = md;
  2293. t_pos = p;
  2294. t_private = true;
  2295. t_doc = None;
  2296. t_meta = [];
  2297. t_params = (t_infos t).mt_params;
  2298. t_type = f (List.map snd (t_infos t).mt_params);
  2299. }
  2300. in
  2301. let add_static_init t name s =
  2302. let name = (match name with None -> s | Some n -> n) in
  2303. match resolve_typedef t with
  2304. | TClassDecl c ->
  2305. c.cl_build();
  2306. ignore(PMap.find s c.cl_statics);
  2307. ctx.m.module_globals <- PMap.add name (TClassDecl c,s) ctx.m.module_globals
  2308. | TEnumDecl e ->
  2309. ignore(PMap.find s e.e_constrs);
  2310. ctx.m.module_globals <- PMap.add name (TEnumDecl e,s) ctx.m.module_globals
  2311. | _ ->
  2312. raise Not_found
  2313. in
  2314. (match mode with
  2315. | INormal | IAsName _ ->
  2316. let name = (match mode with IAsName n -> Some n | _ -> None) in
  2317. (match rest with
  2318. | [] ->
  2319. (match name with
  2320. | None ->
  2321. ctx.m.module_types <- List.filter no_private types @ ctx.m.module_types
  2322. | Some newname ->
  2323. ctx.m.module_types <- rebind (get_type tname) newname :: ctx.m.module_types);
  2324. | [tsub,p2] ->
  2325. let p = punion p1 p2 in
  2326. (try
  2327. let tsub = List.find (has_name tsub) types in
  2328. chk_private tsub p;
  2329. ctx.m.module_types <- (match name with None -> tsub | Some n -> rebind tsub n) :: ctx.m.module_types
  2330. with Not_found ->
  2331. (* this might be a static property, wait later to check *)
  2332. let tmain = get_type tname in
  2333. context_init := (fun() ->
  2334. try
  2335. add_static_init tmain name tsub
  2336. with Not_found ->
  2337. error (s_type_path (t_infos tmain).mt_path ^ " has no field or subtype " ^ tsub) p
  2338. ) :: !context_init)
  2339. | (tsub,p2) :: (fname,p3) :: rest ->
  2340. (match rest with
  2341. | [] -> ()
  2342. | (n,p) :: _ -> error ("Unexpected " ^ n) p);
  2343. let tsub = get_type tsub in
  2344. context_init := (fun() ->
  2345. try
  2346. add_static_init tsub name fname
  2347. with Not_found ->
  2348. error (s_type_path (t_infos tsub).mt_path ^ " has no field " ^ fname) (punion p p3)
  2349. ) :: !context_init;
  2350. )
  2351. | IAll ->
  2352. let t = (match rest with
  2353. | [] -> get_type tname
  2354. | [tsub,_] -> get_type tsub
  2355. | _ :: (n,p) :: _ -> error ("Unexpected " ^ n) p
  2356. ) in
  2357. context_init := (fun() ->
  2358. match resolve_typedef t with
  2359. | TClassDecl c
  2360. | TAbstractDecl {a_impl = Some c} ->
  2361. c.cl_build();
  2362. PMap.iter (fun _ cf -> if not (has_meta Meta.NoImportGlobal cf.cf_meta) then ctx.m.module_globals <- PMap.add cf.cf_name (TClassDecl c,cf.cf_name) ctx.m.module_globals) c.cl_statics
  2363. | TEnumDecl e ->
  2364. PMap.iter (fun _ c -> if not (has_meta Meta.NoImportGlobal c.ef_meta) then ctx.m.module_globals <- PMap.add c.ef_name (TEnumDecl e,c.ef_name) ctx.m.module_globals) e.e_constrs
  2365. | _ ->
  2366. error "No statics to import from this type" p
  2367. ) :: !context_init
  2368. ))
  2369. | EUsing t ->
  2370. (* do the import first *)
  2371. let types = (match t.tsub with
  2372. | None ->
  2373. let md = ctx.g.do_load_module ctx (t.tpackage,t.tname) p in
  2374. let types = List.filter (fun t -> not (t_infos t).mt_private) md.m_types in
  2375. ctx.m.module_types <- types @ ctx.m.module_types;
  2376. types
  2377. | Some _ ->
  2378. let t = load_type_def ctx p t in
  2379. ctx.m.module_types <- t :: ctx.m.module_types;
  2380. [t]
  2381. ) in
  2382. (* delay the using since we need to resolve typedefs *)
  2383. let filter_classes types =
  2384. let rec loop acc types = match types with
  2385. | td :: l ->
  2386. (match resolve_typedef td with
  2387. | TClassDecl c | TAbstractDecl({a_impl = Some c}) ->
  2388. loop (c :: acc) l
  2389. | td ->
  2390. loop acc l)
  2391. | [] ->
  2392. acc
  2393. in
  2394. loop [] types
  2395. in
  2396. context_init := (fun() -> ctx.m.module_using <- filter_classes types @ ctx.m.module_using) :: !context_init
  2397. | EClass d ->
  2398. let c = (match get_type d.d_name with TClassDecl c -> c | _ -> assert false) in
  2399. let herits = d.d_flags in
  2400. if Meta.has Meta.Generic c.cl_meta && c.cl_params <> [] then c.cl_kind <- KGeneric;
  2401. if Meta.has Meta.GenericBuild c.cl_meta then c.cl_kind <- KGenericBuild d.d_data;
  2402. if c.cl_path = (["haxe";"macro"],"MacroType") then c.cl_kind <- KMacroType;
  2403. c.cl_extern <- List.mem HExtern herits;
  2404. c.cl_interface <- List.mem HInterface herits;
  2405. let build() =
  2406. c.cl_build <- (fun()->());
  2407. set_heritance ctx c herits p;
  2408. init_class ctx c p do_init d.d_flags d.d_data
  2409. in
  2410. ctx.pass <- PBuildClass;
  2411. ctx.curclass <- c;
  2412. c.cl_build <- make_pass ctx build;
  2413. ctx.pass <- PBuildModule;
  2414. ctx.curclass <- null_class;
  2415. delay ctx PBuildClass (fun() -> c.cl_build());
  2416. | EEnum d ->
  2417. let e = (match get_type d.d_name with TEnumDecl e -> e | _ -> assert false) in
  2418. let ctx = { ctx with type_params = e.e_params } in
  2419. let h = (try Some (Hashtbl.find ctx.g.type_patches e.e_path) with Not_found -> None) in
  2420. (match h with
  2421. | None -> ()
  2422. | Some (h,hcl) ->
  2423. Hashtbl.iter (fun _ _ -> error "Field type patch not supported for enums" e.e_pos) h;
  2424. e.e_meta <- e.e_meta @ hcl.tp_meta);
  2425. let constructs = ref d.d_data in
  2426. let get_constructs() =
  2427. List.map (fun c ->
  2428. {
  2429. cff_name = c.ec_name;
  2430. cff_doc = c.ec_doc;
  2431. cff_meta = c.ec_meta;
  2432. cff_pos = c.ec_pos;
  2433. cff_access = [];
  2434. cff_kind = (match c.ec_args, c.ec_params with
  2435. | [], [] -> FVar (c.ec_type,None)
  2436. | _ -> FFun { f_params = c.ec_params; f_type = c.ec_type; f_expr = None; f_args = List.map (fun (n,o,t) -> n,o,Some t,None) c.ec_args });
  2437. }
  2438. ) (!constructs)
  2439. in
  2440. let init () = List.iter (fun f -> f()) !context_init in
  2441. build_module_def ctx (TEnumDecl e) e.e_meta get_constructs init (fun (e,p) ->
  2442. match e with
  2443. | EVars [_,Some (CTAnonymous fields),None] ->
  2444. constructs := List.map (fun f ->
  2445. let args, params, t = (match f.cff_kind with
  2446. | FVar (t,None) -> [], [], t
  2447. | FFun { f_params = pl; f_type = t; f_expr = (None|Some (EBlock [],_)); f_args = al } ->
  2448. let al = List.map (fun (n,o,t,_) -> match t with None -> error "Missing function parameter type" f.cff_pos | Some t -> n,o,t) al in
  2449. al, pl, t
  2450. | _ ->
  2451. error "Invalid enum constructor in @:build result" p
  2452. ) in
  2453. {
  2454. ec_name = f.cff_name;
  2455. ec_doc = f.cff_doc;
  2456. ec_meta = f.cff_meta;
  2457. ec_pos = f.cff_pos;
  2458. ec_args = args;
  2459. ec_params = params;
  2460. ec_type = t;
  2461. }
  2462. ) fields
  2463. | _ -> error "Enum build macro must return a single variable with anonymous object fields" p
  2464. );
  2465. let et = TEnum (e,List.map snd e.e_params) in
  2466. let names = ref [] in
  2467. let index = ref 0 in
  2468. let is_flat = ref true in
  2469. let fields = ref PMap.empty in
  2470. List.iter (fun c ->
  2471. let p = c.ec_pos in
  2472. let params = ref [] in
  2473. params := List.map (fun tp -> type_type_params ~enum_constructor:true ctx ([],c.ec_name) (fun() -> !params) c.ec_pos tp) c.ec_params;
  2474. let params = !params in
  2475. let ctx = { ctx with type_params = params @ ctx.type_params } in
  2476. let rt = (match c.ec_type with
  2477. | None -> et
  2478. | Some t ->
  2479. let t = load_complex_type ctx p t in
  2480. (match follow t with
  2481. | TEnum (te,_) when te == e ->
  2482. ()
  2483. | _ ->
  2484. error "Explicit enum type must be of the same enum type" p);
  2485. t
  2486. ) in
  2487. let t = (match c.ec_args with
  2488. | [] -> rt
  2489. | l ->
  2490. is_flat := false;
  2491. let pnames = ref PMap.empty in
  2492. TFun (List.map (fun (s,opt,t) ->
  2493. (match t with CTPath({tpackage=[];tname="Void"}) -> error "Arguments of type Void are not allowed in enum constructors" c.ec_pos | _ -> ());
  2494. if PMap.mem s (!pnames) then error ("Duplicate parameter '" ^ s ^ "' in enum constructor " ^ c.ec_name) p;
  2495. pnames := PMap.add s () (!pnames);
  2496. s, opt, load_type_opt ~opt ctx p (Some t)
  2497. ) l, rt)
  2498. ) in
  2499. if PMap.mem c.ec_name e.e_constrs then error ("Duplicate constructor " ^ c.ec_name) p;
  2500. let f = {
  2501. ef_name = c.ec_name;
  2502. ef_type = t;
  2503. ef_pos = p;
  2504. ef_doc = c.ec_doc;
  2505. ef_index = !index;
  2506. ef_params = params;
  2507. ef_meta = c.ec_meta;
  2508. } in
  2509. let cf = {
  2510. cf_name = f.ef_name;
  2511. cf_public = true;
  2512. cf_type = f.ef_type;
  2513. cf_kind = (match follow f.ef_type with
  2514. | TFun _ -> Method MethNormal
  2515. | _ -> Var { v_read = AccNormal; v_write = AccNo }
  2516. );
  2517. cf_pos = e.e_pos;
  2518. cf_doc = None;
  2519. cf_meta = no_meta;
  2520. cf_expr = None;
  2521. cf_params = f.ef_params;
  2522. cf_overloads = [];
  2523. } in
  2524. e.e_constrs <- PMap.add f.ef_name f e.e_constrs;
  2525. fields := PMap.add cf.cf_name cf !fields;
  2526. incr index;
  2527. names := c.ec_name :: !names;
  2528. ) (!constructs);
  2529. e.e_names <- List.rev !names;
  2530. e.e_extern <- e.e_extern;
  2531. e.e_type.t_params <- e.e_params;
  2532. e.e_type.t_type <- TAnon {
  2533. a_fields = !fields;
  2534. a_status = ref (EnumStatics e);
  2535. };
  2536. if !is_flat then e.e_meta <- (Meta.FlatEnum,[],e.e_pos) :: e.e_meta;
  2537. | ETypedef d ->
  2538. let t = (match get_type d.d_name with TTypeDecl t -> t | _ -> assert false) in
  2539. let ctx = { ctx with type_params = t.t_params } in
  2540. let tt = load_complex_type ctx p d.d_data in
  2541. (*
  2542. we exceptionnaly allow follow here because we don't care the type we get as long as it's not our own
  2543. *)
  2544. (match d.d_data with
  2545. | CTExtend _ -> ()
  2546. | _ ->
  2547. if t.t_type == follow tt then error "Recursive typedef is not allowed" p);
  2548. (match t.t_type with
  2549. | TMono r ->
  2550. (match !r with
  2551. | None -> r := Some tt;
  2552. | Some _ -> assert false);
  2553. | _ -> assert false);
  2554. | EAbstract d ->
  2555. let a = (match get_type d.d_name with TAbstractDecl a -> a | _ -> assert false) in
  2556. let ctx = { ctx with type_params = a.a_params } in
  2557. let is_type = ref false in
  2558. let load_type t from =
  2559. let t = load_complex_type ctx p t in
  2560. if not (Meta.has Meta.CoreType a.a_meta) then begin
  2561. if !is_type then begin
  2562. delay ctx PFinal (fun () ->
  2563. let at = monomorphs a.a_params a.a_this in
  2564. (try (if from then Type.unify t at else Type.unify at t) with Unify_error _ -> error "You can only declare from/to with compatible types" p)
  2565. );
  2566. end else
  2567. error "Missing underlying type declaration or @:coreType declaration" p;
  2568. end;
  2569. t
  2570. in
  2571. List.iter (function
  2572. | AFromType t -> a.a_from <- (load_type t true) :: a.a_from
  2573. | AToType t -> a.a_to <- (load_type t false) :: a.a_to
  2574. | AIsType t ->
  2575. if a.a_impl = None then error "Abstracts with underlying type must have an implementation" a.a_pos;
  2576. if Meta.has Meta.CoreType a.a_meta then error "@:coreType abstracts cannot have an underlying type" p;
  2577. let at = load_complex_type ctx p t in
  2578. (match at with TAbstract(a2,_) when a == a2 -> error "Abstract underlying type cannot be recursive" a.a_pos | _ -> ());
  2579. a.a_this <- at;
  2580. is_type := true;
  2581. | APrivAbstract -> ()
  2582. ) d.d_flags;
  2583. if not !is_type then begin
  2584. if Meta.has Meta.CoreType a.a_meta then
  2585. a.a_this <- TAbstract(a,List.map snd a.a_params)
  2586. else
  2587. error "Abstract is missing underlying type declaration" a.a_pos
  2588. end
  2589. let type_module ctx m file tdecls p =
  2590. let m, decls, tdecls = make_module ctx m file tdecls p in
  2591. add_module ctx m p;
  2592. (* define the per-module context for the next pass *)
  2593. let ctx = {
  2594. com = ctx.com;
  2595. g = ctx.g;
  2596. t = ctx.t;
  2597. m = {
  2598. curmod = m;
  2599. module_types = ctx.g.std.m_types;
  2600. module_using = [];
  2601. module_globals = PMap.empty;
  2602. wildcard_packages = [];
  2603. };
  2604. meta = [];
  2605. this_stack = [];
  2606. with_type_stack = [];
  2607. constructor_argument_stack = [];
  2608. pass = PBuildModule;
  2609. on_error = (fun ctx msg p -> ctx.com.error msg p);
  2610. macro_depth = ctx.macro_depth;
  2611. curclass = null_class;
  2612. curfield = null_field;
  2613. tthis = ctx.tthis;
  2614. ret = ctx.ret;
  2615. locals = PMap.empty;
  2616. type_params = [];
  2617. curfun = FunStatic;
  2618. untyped = false;
  2619. in_super_call = false;
  2620. in_macro = ctx.in_macro;
  2621. in_display = false;
  2622. in_loop = false;
  2623. opened = [];
  2624. vthis = None;
  2625. } in
  2626. if ctx.g.std != null_module then begin
  2627. add_dependency m ctx.g.std;
  2628. (* this will ensure both String and (indirectly) Array which are basic types which might be referenced *)
  2629. ignore(load_core_type ctx "String");
  2630. end;
  2631. (* here is an additional PASS 1 phase, which define the type parameters for all module types.
  2632. Constraints are handled lazily (no other type is loaded) because they might be recursive anyway *)
  2633. List.iter (fun d ->
  2634. match d with
  2635. | (TClassDecl c, (EClass d, p)) ->
  2636. c.cl_params <- List.map (type_type_params ctx c.cl_path (fun() -> c.cl_params) p) d.d_params;
  2637. | (TEnumDecl e, (EEnum d, p)) ->
  2638. e.e_params <- List.map (type_type_params ctx e.e_path (fun() -> e.e_params) p) d.d_params;
  2639. | (TTypeDecl t, (ETypedef d, p)) ->
  2640. t.t_params <- List.map (type_type_params ctx t.t_path (fun() -> t.t_params) p) d.d_params;
  2641. | (TAbstractDecl a, (EAbstract d, p)) ->
  2642. a.a_params <- List.map (type_type_params ctx a.a_path (fun() -> a.a_params) p) d.d_params;
  2643. | _ ->
  2644. assert false
  2645. ) decls;
  2646. (* setup module types *)
  2647. let context_init = ref [] in
  2648. let do_init() =
  2649. match !context_init with
  2650. | [] -> ()
  2651. | l -> context_init := []; List.iter (fun f -> f()) (List.rev l)
  2652. in
  2653. List.iter (init_module_type ctx context_init do_init) tdecls;
  2654. m
  2655. let resolve_module_file com m remap p =
  2656. let forbid = ref false in
  2657. let file = (match m with
  2658. | [] , name -> name
  2659. | x :: l , name ->
  2660. let x = (try
  2661. match PMap.find x com.package_rules with
  2662. | Forbidden -> forbid := true; x
  2663. | Directory d -> d
  2664. | Remap d -> remap := d :: l; d
  2665. with Not_found -> x
  2666. ) in
  2667. String.concat "/" (x :: l) ^ "/" ^ name
  2668. ) ^ ".hx" in
  2669. let file = Common.find_file com file in
  2670. let file = (match String.lowercase (snd m) with
  2671. | "con" | "aux" | "prn" | "nul" | "com1" | "com2" | "com3" | "lpt1" | "lpt2" | "lpt3" when Sys.os_type = "Win32" ->
  2672. (* these names are reserved by the OS - old DOS legacy, such files cannot be easily created but are reported as visible *)
  2673. if (try (Unix.stat file).Unix.st_size with _ -> 0) > 0 then file else raise Not_found
  2674. | _ -> file
  2675. ) in
  2676. (* if we try to load a std.xxxx class and resolve a real std file, the package name is not valid, ignore *)
  2677. (match fst m with
  2678. | "std" :: _ ->
  2679. let file = Common.unique_full_path file in
  2680. if List.exists (fun path -> ExtString.String.starts_with file (try Common.unique_full_path path with _ -> path)) com.std_path then raise Not_found;
  2681. | _ -> ());
  2682. if !forbid then begin
  2683. let _, decls = (!parse_hook) com file p in
  2684. let rec loop decls = match decls with
  2685. | ((EImport _,_) | (EUsing _,_)) :: decls -> loop decls
  2686. | (EClass d,_) :: _ -> d.d_meta
  2687. | (EEnum d,_) :: _ -> d.d_meta
  2688. | (EAbstract d,_) :: _ -> d.d_meta
  2689. | (ETypedef d,_) :: _ -> d.d_meta
  2690. | [] -> []
  2691. in
  2692. let meta = loop decls in
  2693. if not (Meta.has Meta.NoPackageRestrict meta) then begin
  2694. let x = (match fst m with [] -> assert false | x :: _ -> x) in
  2695. raise (Forbid_package ((x,m,p),[],if Common.defined com Define.Macro then "macro" else platform_name com.platform));
  2696. end;
  2697. end;
  2698. file
  2699. let parse_module ctx m p =
  2700. let remap = ref (fst m) in
  2701. let file = resolve_module_file ctx.com m remap p in
  2702. let pack, decls = (!parse_hook) ctx.com file p in
  2703. if pack <> !remap then begin
  2704. let spack m = if m = [] then "<empty>" else String.concat "." m in
  2705. if p == Ast.null_pos then
  2706. display_error ctx ("Invalid commandline class : " ^ s_type_path m ^ " should be " ^ s_type_path (pack,snd m)) p
  2707. else
  2708. display_error ctx ("Invalid package : " ^ spack (fst m) ^ " should be " ^ spack pack) p
  2709. end;
  2710. file, if !remap <> fst m then
  2711. (* build typedefs to redirect to real package *)
  2712. List.rev (List.fold_left (fun acc (t,p) ->
  2713. let build f d =
  2714. let priv = List.mem f d.d_flags in
  2715. (ETypedef {
  2716. d_name = d.d_name;
  2717. d_doc = None;
  2718. d_meta = [];
  2719. d_params = d.d_params;
  2720. d_flags = if priv then [EPrivate] else [];
  2721. d_data = CTPath (if priv then { tpackage = []; tname = "Dynamic"; tparams = []; tsub = None; } else
  2722. {
  2723. tpackage = !remap;
  2724. tname = d.d_name;
  2725. tparams = List.map (fun tp ->
  2726. TPType (CTPath { tpackage = []; tname = tp.tp_name; tparams = []; tsub = None; })
  2727. ) d.d_params;
  2728. tsub = None;
  2729. });
  2730. },p) :: acc
  2731. in
  2732. match t with
  2733. | EClass d -> build HPrivate d
  2734. | EEnum d -> build EPrivate d
  2735. | ETypedef d -> build EPrivate d
  2736. | EAbstract d -> build APrivAbstract d
  2737. | EImport _ | EUsing _ -> acc
  2738. ) [(EImport (List.map (fun s -> s,null_pos) (!remap @ [snd m]),INormal),null_pos)] decls)
  2739. else
  2740. decls
  2741. let load_module ctx m p =
  2742. let m2 = (try
  2743. Hashtbl.find ctx.g.modules m
  2744. with
  2745. Not_found ->
  2746. match !type_module_hook ctx m p with
  2747. | Some m -> m
  2748. | None ->
  2749. let file, decls = (try
  2750. parse_module ctx m p
  2751. with Not_found ->
  2752. let rec loop = function
  2753. | [] ->
  2754. raise (Error (Module_not_found m,p))
  2755. | load :: l ->
  2756. match load m p with
  2757. | None -> loop l
  2758. | Some (file,(_,a)) -> file, a
  2759. in
  2760. loop ctx.com.load_extern_type
  2761. ) in
  2762. try
  2763. type_module ctx m file decls p
  2764. with Forbid_package (inf,pl,pf) when p <> Ast.null_pos ->
  2765. raise (Forbid_package (inf,p::pl,pf))
  2766. ) in
  2767. add_dependency ctx.m.curmod m2;
  2768. if ctx.pass = PTypeField then flush_pass ctx PBuildClass "load_module";
  2769. m2
  2770. ;;
  2771. type_function_params_rec := type_function_params