src/share/classes/com/sun/tools/javac/comp/Attr.java

Fri, 31 Aug 2012 10:37:46 +0100

author
jfranck
date
Fri, 31 Aug 2012 10:37:46 +0100
changeset 1313
873ddd9f4900
parent 1297
e5cf1569d3a4
child 1341
db36841709e4
permissions
-rw-r--r--

7151010: Add compiler support for repeating annotations
Reviewed-by: jjg, mcimadamore

duke@1 1 /*
mcimadamore@1219 2 * Copyright (c) 1999, 2012, Oracle and/or its affiliates. All rights reserved.
duke@1 3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
duke@1 4 *
duke@1 5 * This code is free software; you can redistribute it and/or modify it
duke@1 6 * under the terms of the GNU General Public License version 2 only, as
ohair@554 7 * published by the Free Software Foundation. Oracle designates this
duke@1 8 * particular file as subject to the "Classpath" exception as provided
ohair@554 9 * by Oracle in the LICENSE file that accompanied this code.
duke@1 10 *
duke@1 11 * This code is distributed in the hope that it will be useful, but WITHOUT
duke@1 12 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
duke@1 13 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
duke@1 14 * version 2 for more details (a copy is included in the LICENSE file that
duke@1 15 * accompanied this code).
duke@1 16 *
duke@1 17 * You should have received a copy of the GNU General Public License version
duke@1 18 * 2 along with this work; if not, write to the Free Software Foundation,
duke@1 19 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
duke@1 20 *
ohair@554 21 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
ohair@554 22 * or visit www.oracle.com if you need additional information or have any
ohair@554 23 * questions.
duke@1 24 */
duke@1 25
duke@1 26 package com.sun.tools.javac.comp;
duke@1 27
duke@1 28 import java.util.*;
duke@1 29 import java.util.Set;
duke@1 30 import javax.lang.model.element.ElementKind;
duke@1 31 import javax.tools.JavaFileObject;
duke@1 32
duke@1 33 import com.sun.tools.javac.code.*;
duke@1 34 import com.sun.tools.javac.jvm.*;
duke@1 35 import com.sun.tools.javac.tree.*;
duke@1 36 import com.sun.tools.javac.util.*;
duke@1 37 import com.sun.tools.javac.util.JCDiagnostic.DiagnosticPosition;
duke@1 38 import com.sun.tools.javac.util.List;
duke@1 39
duke@1 40 import com.sun.tools.javac.jvm.Target;
mcimadamore@795 41 import com.sun.tools.javac.code.Lint.LintCategory;
duke@1 42 import com.sun.tools.javac.code.Symbol.*;
duke@1 43 import com.sun.tools.javac.tree.JCTree.*;
duke@1 44 import com.sun.tools.javac.code.Type.*;
mcimadamore@1238 45 import com.sun.tools.javac.comp.Check.CheckContext;
duke@1 46
duke@1 47 import com.sun.source.tree.IdentifierTree;
duke@1 48 import com.sun.source.tree.MemberSelectTree;
duke@1 49 import com.sun.source.tree.TreeVisitor;
duke@1 50 import com.sun.source.util.SimpleTreeVisitor;
duke@1 51
duke@1 52 import static com.sun.tools.javac.code.Flags.*;
jjg@1127 53 import static com.sun.tools.javac.code.Flags.ANNOTATION;
jjg@1127 54 import static com.sun.tools.javac.code.Flags.BLOCK;
duke@1 55 import static com.sun.tools.javac.code.Kinds.*;
jjg@1127 56 import static com.sun.tools.javac.code.Kinds.ERRONEOUS;
duke@1 57 import static com.sun.tools.javac.code.TypeTags.*;
jjg@1127 58 import static com.sun.tools.javac.code.TypeTags.WILDCARD;
jjg@1127 59 import static com.sun.tools.javac.tree.JCTree.Tag.*;
duke@1 60
duke@1 61 /** This is the main context-dependent analysis phase in GJC. It
duke@1 62 * encompasses name resolution, type checking and constant folding as
duke@1 63 * subtasks. Some subtasks involve auxiliary classes.
duke@1 64 * @see Check
duke@1 65 * @see Resolve
duke@1 66 * @see ConstFold
duke@1 67 * @see Infer
duke@1 68 *
jjg@581 69 * <p><b>This is NOT part of any supported API.
jjg@581 70 * If you write code that depends on this, you do so at your own risk.
duke@1 71 * This code and its internal interfaces are subject to change or
duke@1 72 * deletion without notice.</b>
duke@1 73 */
duke@1 74 public class Attr extends JCTree.Visitor {
duke@1 75 protected static final Context.Key<Attr> attrKey =
duke@1 76 new Context.Key<Attr>();
duke@1 77
jjg@113 78 final Names names;
duke@1 79 final Log log;
duke@1 80 final Symtab syms;
duke@1 81 final Resolve rs;
mcimadamore@537 82 final Infer infer;
duke@1 83 final Check chk;
duke@1 84 final MemberEnter memberEnter;
duke@1 85 final TreeMaker make;
duke@1 86 final ConstFold cfolder;
duke@1 87 final Enter enter;
duke@1 88 final Target target;
duke@1 89 final Types types;
mcimadamore@89 90 final JCDiagnostic.Factory diags;
duke@1 91 final Annotate annotate;
mcimadamore@852 92 final DeferredLintHandler deferredLintHandler;
duke@1 93
duke@1 94 public static Attr instance(Context context) {
duke@1 95 Attr instance = context.get(attrKey);
duke@1 96 if (instance == null)
duke@1 97 instance = new Attr(context);
duke@1 98 return instance;
duke@1 99 }
duke@1 100
duke@1 101 protected Attr(Context context) {
duke@1 102 context.put(attrKey, this);
duke@1 103
jjg@113 104 names = Names.instance(context);
duke@1 105 log = Log.instance(context);
duke@1 106 syms = Symtab.instance(context);
duke@1 107 rs = Resolve.instance(context);
duke@1 108 chk = Check.instance(context);
duke@1 109 memberEnter = MemberEnter.instance(context);
duke@1 110 make = TreeMaker.instance(context);
duke@1 111 enter = Enter.instance(context);
mcimadamore@537 112 infer = Infer.instance(context);
duke@1 113 cfolder = ConstFold.instance(context);
duke@1 114 target = Target.instance(context);
duke@1 115 types = Types.instance(context);
mcimadamore@89 116 diags = JCDiagnostic.Factory.instance(context);
duke@1 117 annotate = Annotate.instance(context);
mcimadamore@852 118 deferredLintHandler = DeferredLintHandler.instance(context);
duke@1 119
duke@1 120 Options options = Options.instance(context);
duke@1 121
duke@1 122 Source source = Source.instance(context);
duke@1 123 allowGenerics = source.allowGenerics();
duke@1 124 allowVarargs = source.allowVarargs();
duke@1 125 allowEnums = source.allowEnums();
duke@1 126 allowBoxing = source.allowBoxing();
duke@1 127 allowCovariantReturns = source.allowCovariantReturns();
duke@1 128 allowAnonOuterThis = source.allowAnonOuterThis();
darcy@430 129 allowStringsInSwitch = source.allowStringsInSwitch();
darcy@430 130 sourceName = source.name;
jjg@700 131 relax = (options.isSet("-retrofit") ||
jjg@700 132 options.isSet("-relax"));
mcimadamore@731 133 findDiamonds = options.get("findDiamond") != null &&
mcimadamore@731 134 source.allowDiamond();
jjg@700 135 useBeforeDeclarationWarning = options.isSet("useBeforeDeclarationWarning");
mcimadamore@1238 136
mcimadamore@1238 137 statInfo = new ResultInfo(NIL, Type.noType);
mcimadamore@1238 138 varInfo = new ResultInfo(VAR, Type.noType);
mcimadamore@1238 139 unknownExprInfo = new ResultInfo(VAL, Type.noType);
mcimadamore@1238 140 unknownTypeInfo = new ResultInfo(TYP, Type.noType);
duke@1 141 }
duke@1 142
duke@1 143 /** Switch: relax some constraints for retrofit mode.
duke@1 144 */
duke@1 145 boolean relax;
duke@1 146
duke@1 147 /** Switch: support generics?
duke@1 148 */
duke@1 149 boolean allowGenerics;
duke@1 150
duke@1 151 /** Switch: allow variable-arity methods.
duke@1 152 */
duke@1 153 boolean allowVarargs;
duke@1 154
duke@1 155 /** Switch: support enums?
duke@1 156 */
duke@1 157 boolean allowEnums;
duke@1 158
duke@1 159 /** Switch: support boxing and unboxing?
duke@1 160 */
duke@1 161 boolean allowBoxing;
duke@1 162
duke@1 163 /** Switch: support covariant result types?
duke@1 164 */
duke@1 165 boolean allowCovariantReturns;
duke@1 166
duke@1 167 /** Switch: allow references to surrounding object from anonymous
duke@1 168 * objects during constructor call?
duke@1 169 */
duke@1 170 boolean allowAnonOuterThis;
duke@1 171
mcimadamore@731 172 /** Switch: generates a warning if diamond can be safely applied
mcimadamore@731 173 * to a given new expression
mcimadamore@731 174 */
mcimadamore@731 175 boolean findDiamonds;
mcimadamore@731 176
mcimadamore@731 177 /**
mcimadamore@731 178 * Internally enables/disables diamond finder feature
mcimadamore@731 179 */
mcimadamore@731 180 static final boolean allowDiamondFinder = true;
mcimadamore@731 181
duke@1 182 /**
duke@1 183 * Switch: warn about use of variable before declaration?
duke@1 184 * RFE: 6425594
duke@1 185 */
duke@1 186 boolean useBeforeDeclarationWarning;
duke@1 187
jjg@377 188 /**
darcy@430 189 * Switch: allow strings in switch?
darcy@430 190 */
darcy@430 191 boolean allowStringsInSwitch;
darcy@430 192
darcy@430 193 /**
darcy@430 194 * Switch: name of source level; used for error reporting.
darcy@430 195 */
darcy@430 196 String sourceName;
darcy@430 197
duke@1 198 /** Check kind and type of given tree against protokind and prototype.
duke@1 199 * If check succeeds, store type in tree and return it.
duke@1 200 * If check fails, store errType in tree and return it.
duke@1 201 * No checks are performed if the prototype is a method type.
jjg@110 202 * It is not necessary in this case since we know that kind and type
duke@1 203 * are correct.
duke@1 204 *
duke@1 205 * @param tree The tree whose kind and type is checked
duke@1 206 * @param owntype The computed type of the tree
duke@1 207 * @param ownkind The computed kind of the tree
mcimadamore@1220 208 * @param resultInfo The expected result of the tree
duke@1 209 */
mcimadamore@1220 210 Type check(JCTree tree, Type owntype, int ownkind, ResultInfo resultInfo) {
mcimadamore@1220 211 if (owntype.tag != ERROR && resultInfo.pt.tag != METHOD && resultInfo.pt.tag != FORALL) {
mcimadamore@1220 212 if ((ownkind & ~resultInfo.pkind) == 0) {
mcimadamore@1238 213 owntype = resultInfo.check(tree, owntype);
duke@1 214 } else {
duke@1 215 log.error(tree.pos(), "unexpected.type",
mcimadamore@1220 216 kindNames(resultInfo.pkind),
mcimadamore@80 217 kindName(ownkind));
jjg@110 218 owntype = types.createErrorType(owntype);
duke@1 219 }
duke@1 220 }
duke@1 221 tree.type = owntype;
duke@1 222 return owntype;
duke@1 223 }
duke@1 224
duke@1 225 /** Is given blank final variable assignable, i.e. in a scope where it
duke@1 226 * may be assigned to even though it is final?
duke@1 227 * @param v The blank final variable.
duke@1 228 * @param env The current environment.
duke@1 229 */
duke@1 230 boolean isAssignableAsBlankFinal(VarSymbol v, Env<AttrContext> env) {
mcimadamore@1297 231 Symbol owner = owner(env);
duke@1 232 // owner refers to the innermost variable, method or
duke@1 233 // initializer block declaration at this point.
duke@1 234 return
duke@1 235 v.owner == owner
duke@1 236 ||
duke@1 237 ((owner.name == names.init || // i.e. we are in a constructor
duke@1 238 owner.kind == VAR || // i.e. we are in a variable initializer
duke@1 239 (owner.flags() & BLOCK) != 0) // i.e. we are in an initializer block
duke@1 240 &&
duke@1 241 v.owner == owner.owner
duke@1 242 &&
duke@1 243 ((v.flags() & STATIC) != 0) == Resolve.isStatic(env));
duke@1 244 }
duke@1 245
mcimadamore@1297 246 /**
mcimadamore@1297 247 * Return the innermost enclosing owner symbol in a given attribution context
mcimadamore@1297 248 */
mcimadamore@1297 249 Symbol owner(Env<AttrContext> env) {
mcimadamore@1297 250 while (true) {
mcimadamore@1297 251 switch (env.tree.getTag()) {
mcimadamore@1297 252 case VARDEF:
mcimadamore@1297 253 //a field can be owner
mcimadamore@1297 254 VarSymbol vsym = ((JCVariableDecl)env.tree).sym;
mcimadamore@1297 255 if (vsym.owner.kind == TYP) {
mcimadamore@1297 256 return vsym;
mcimadamore@1297 257 }
mcimadamore@1297 258 break;
mcimadamore@1297 259 case METHODDEF:
mcimadamore@1297 260 //method def is always an owner
mcimadamore@1297 261 return ((JCMethodDecl)env.tree).sym;
mcimadamore@1297 262 case CLASSDEF:
mcimadamore@1297 263 //class def is always an owner
mcimadamore@1297 264 return ((JCClassDecl)env.tree).sym;
mcimadamore@1297 265 case BLOCK:
mcimadamore@1297 266 //static/instance init blocks are owner
mcimadamore@1297 267 Symbol blockSym = env.info.scope.owner;
mcimadamore@1297 268 if ((blockSym.flags() & BLOCK) != 0) {
mcimadamore@1297 269 return blockSym;
mcimadamore@1297 270 }
mcimadamore@1297 271 break;
mcimadamore@1297 272 case TOPLEVEL:
mcimadamore@1297 273 //toplevel is always an owner (for pkge decls)
mcimadamore@1297 274 return env.info.scope.owner;
mcimadamore@1297 275 }
mcimadamore@1297 276 Assert.checkNonNull(env.next);
mcimadamore@1297 277 env = env.next;
mcimadamore@1297 278 }
mcimadamore@1297 279 }
mcimadamore@1297 280
duke@1 281 /** Check that variable can be assigned to.
duke@1 282 * @param pos The current source code position.
duke@1 283 * @param v The assigned varaible
duke@1 284 * @param base If the variable is referred to in a Select, the part
duke@1 285 * to the left of the `.', null otherwise.
duke@1 286 * @param env The current environment.
duke@1 287 */
duke@1 288 void checkAssignable(DiagnosticPosition pos, VarSymbol v, JCTree base, Env<AttrContext> env) {
duke@1 289 if ((v.flags() & FINAL) != 0 &&
duke@1 290 ((v.flags() & HASINIT) != 0
duke@1 291 ||
duke@1 292 !((base == null ||
jjg@1127 293 (base.hasTag(IDENT) && TreeInfo.name(base) == names._this)) &&
duke@1 294 isAssignableAsBlankFinal(v, env)))) {
darcy@609 295 if (v.isResourceVariable()) { //TWR resource
mcimadamore@743 296 log.error(pos, "try.resource.may.not.be.assigned", v);
darcy@609 297 } else {
darcy@609 298 log.error(pos, "cant.assign.val.to.final.var", v);
darcy@609 299 }
mcimadamore@735 300 } else if ((v.flags() & EFFECTIVELY_FINAL) != 0) {
mcimadamore@735 301 v.flags_field &= ~EFFECTIVELY_FINAL;
duke@1 302 }
duke@1 303 }
duke@1 304
duke@1 305 /** Does tree represent a static reference to an identifier?
duke@1 306 * It is assumed that tree is either a SELECT or an IDENT.
duke@1 307 * We have to weed out selects from non-type names here.
duke@1 308 * @param tree The candidate tree.
duke@1 309 */
duke@1 310 boolean isStaticReference(JCTree tree) {
jjg@1127 311 if (tree.hasTag(SELECT)) {
duke@1 312 Symbol lsym = TreeInfo.symbol(((JCFieldAccess) tree).selected);
duke@1 313 if (lsym == null || lsym.kind != TYP) {
duke@1 314 return false;
duke@1 315 }
duke@1 316 }
duke@1 317 return true;
duke@1 318 }
duke@1 319
duke@1 320 /** Is this symbol a type?
duke@1 321 */
duke@1 322 static boolean isType(Symbol sym) {
duke@1 323 return sym != null && sym.kind == TYP;
duke@1 324 }
duke@1 325
duke@1 326 /** The current `this' symbol.
duke@1 327 * @param env The current environment.
duke@1 328 */
duke@1 329 Symbol thisSym(DiagnosticPosition pos, Env<AttrContext> env) {
duke@1 330 return rs.resolveSelf(pos, env, env.enclClass.sym, names._this);
duke@1 331 }
duke@1 332
duke@1 333 /** Attribute a parsed identifier.
duke@1 334 * @param tree Parsed identifier name
duke@1 335 * @param topLevel The toplevel to use
duke@1 336 */
duke@1 337 public Symbol attribIdent(JCTree tree, JCCompilationUnit topLevel) {
duke@1 338 Env<AttrContext> localEnv = enter.topLevelEnv(topLevel);
duke@1 339 localEnv.enclClass = make.ClassDef(make.Modifiers(0),
duke@1 340 syms.errSymbol.name,
duke@1 341 null, null, null, null);
duke@1 342 localEnv.enclClass.sym = syms.errSymbol;
duke@1 343 return tree.accept(identAttributer, localEnv);
duke@1 344 }
duke@1 345 // where
duke@1 346 private TreeVisitor<Symbol,Env<AttrContext>> identAttributer = new IdentAttributer();
duke@1 347 private class IdentAttributer extends SimpleTreeVisitor<Symbol,Env<AttrContext>> {
duke@1 348 @Override
duke@1 349 public Symbol visitMemberSelect(MemberSelectTree node, Env<AttrContext> env) {
duke@1 350 Symbol site = visit(node.getExpression(), env);
duke@1 351 if (site.kind == ERR)
duke@1 352 return site;
duke@1 353 Name name = (Name)node.getIdentifier();
duke@1 354 if (site.kind == PCK) {
duke@1 355 env.toplevel.packge = (PackageSymbol)site;
duke@1 356 return rs.findIdentInPackage(env, (TypeSymbol)site, name, TYP | PCK);
duke@1 357 } else {
duke@1 358 env.enclClass.sym = (ClassSymbol)site;
duke@1 359 return rs.findMemberType(env, site.asType(), name, (TypeSymbol)site);
duke@1 360 }
duke@1 361 }
duke@1 362
duke@1 363 @Override
duke@1 364 public Symbol visitIdentifier(IdentifierTree node, Env<AttrContext> env) {
duke@1 365 return rs.findIdent(env, (Name)node.getName(), TYP | PCK);
duke@1 366 }
duke@1 367 }
duke@1 368
duke@1 369 public Type coerce(Type etype, Type ttype) {
duke@1 370 return cfolder.coerce(etype, ttype);
duke@1 371 }
duke@1 372
duke@1 373 public Type attribType(JCTree node, TypeSymbol sym) {
duke@1 374 Env<AttrContext> env = enter.typeEnvs.get(sym);
duke@1 375 Env<AttrContext> localEnv = env.dup(node, env.info.dup());
mcimadamore@1220 376 return attribTree(node, localEnv, unknownTypeInfo);
mcimadamore@1220 377 }
mcimadamore@1220 378
mcimadamore@1220 379 public Type attribImportQualifier(JCImport tree, Env<AttrContext> env) {
mcimadamore@1220 380 // Attribute qualifying package or class.
mcimadamore@1220 381 JCFieldAccess s = (JCFieldAccess)tree.qualid;
mcimadamore@1220 382 return attribTree(s.selected,
mcimadamore@1220 383 env,
mcimadamore@1220 384 new ResultInfo(tree.staticImport ? TYP : (TYP | PCK),
mcimadamore@1220 385 Type.noType));
duke@1 386 }
duke@1 387
duke@1 388 public Env<AttrContext> attribExprToTree(JCTree expr, Env<AttrContext> env, JCTree tree) {
duke@1 389 breakTree = tree;
mcimadamore@303 390 JavaFileObject prev = log.useSource(env.toplevel.sourcefile);
duke@1 391 try {
duke@1 392 attribExpr(expr, env);
duke@1 393 } catch (BreakAttr b) {
duke@1 394 return b.env;
sundar@669 395 } catch (AssertionError ae) {
sundar@669 396 if (ae.getCause() instanceof BreakAttr) {
sundar@669 397 return ((BreakAttr)(ae.getCause())).env;
sundar@669 398 } else {
sundar@669 399 throw ae;
sundar@669 400 }
duke@1 401 } finally {
duke@1 402 breakTree = null;
duke@1 403 log.useSource(prev);
duke@1 404 }
duke@1 405 return env;
duke@1 406 }
duke@1 407
duke@1 408 public Env<AttrContext> attribStatToTree(JCTree stmt, Env<AttrContext> env, JCTree tree) {
duke@1 409 breakTree = tree;
mcimadamore@303 410 JavaFileObject prev = log.useSource(env.toplevel.sourcefile);
duke@1 411 try {
duke@1 412 attribStat(stmt, env);
duke@1 413 } catch (BreakAttr b) {
duke@1 414 return b.env;
sundar@669 415 } catch (AssertionError ae) {
sundar@669 416 if (ae.getCause() instanceof BreakAttr) {
sundar@669 417 return ((BreakAttr)(ae.getCause())).env;
sundar@669 418 } else {
sundar@669 419 throw ae;
sundar@669 420 }
duke@1 421 } finally {
duke@1 422 breakTree = null;
duke@1 423 log.useSource(prev);
duke@1 424 }
duke@1 425 return env;
duke@1 426 }
duke@1 427
duke@1 428 private JCTree breakTree = null;
duke@1 429
duke@1 430 private static class BreakAttr extends RuntimeException {
duke@1 431 static final long serialVersionUID = -6924771130405446405L;
duke@1 432 private Env<AttrContext> env;
duke@1 433 private BreakAttr(Env<AttrContext> env) {
duke@1 434 this.env = env;
duke@1 435 }
duke@1 436 }
duke@1 437
mcimadamore@1238 438 class ResultInfo {
mcimadamore@1220 439 int pkind;
mcimadamore@1220 440 Type pt;
mcimadamore@1238 441 CheckContext checkContext;
mcimadamore@1220 442
mcimadamore@1220 443 ResultInfo(int pkind, Type pt) {
mcimadamore@1238 444 this(pkind, pt, chk.basicHandler);
mcimadamore@1238 445 }
mcimadamore@1238 446
mcimadamore@1238 447 protected ResultInfo(int pkind, Type pt, CheckContext checkContext) {
mcimadamore@1220 448 this.pkind = pkind;
mcimadamore@1220 449 this.pt = pt;
mcimadamore@1238 450 this.checkContext = checkContext;
mcimadamore@1238 451 }
mcimadamore@1238 452
mcimadamore@1238 453 protected Type check(DiagnosticPosition pos, Type found) {
mcimadamore@1238 454 return chk.checkType(pos, found, pt, checkContext);
mcimadamore@1220 455 }
mcimadamore@1220 456 }
mcimadamore@1220 457
mcimadamore@1238 458 private final ResultInfo statInfo;
mcimadamore@1238 459 private final ResultInfo varInfo;
mcimadamore@1238 460 private final ResultInfo unknownExprInfo;
mcimadamore@1238 461 private final ResultInfo unknownTypeInfo;
mcimadamore@1220 462
mcimadamore@1220 463 Type pt() {
mcimadamore@1220 464 return resultInfo.pt;
mcimadamore@1220 465 }
mcimadamore@1220 466
mcimadamore@1220 467 int pkind() {
mcimadamore@1220 468 return resultInfo.pkind;
mcimadamore@1220 469 }
duke@1 470
duke@1 471 /* ************************************************************************
duke@1 472 * Visitor methods
duke@1 473 *************************************************************************/
duke@1 474
duke@1 475 /** Visitor argument: the current environment.
duke@1 476 */
duke@1 477 Env<AttrContext> env;
duke@1 478
mcimadamore@1220 479 /** Visitor argument: the currently expected attribution result.
duke@1 480 */
mcimadamore@1220 481 ResultInfo resultInfo;
duke@1 482
duke@1 483 /** Visitor result: the computed type.
duke@1 484 */
duke@1 485 Type result;
duke@1 486
duke@1 487 /** Visitor method: attribute a tree, catching any completion failure
duke@1 488 * exceptions. Return the tree's type.
duke@1 489 *
duke@1 490 * @param tree The tree to be visited.
duke@1 491 * @param env The environment visitor argument.
mcimadamore@1220 492 * @param resultInfo The result info visitor argument.
duke@1 493 */
mcimadamore@1220 494 private Type attribTree(JCTree tree, Env<AttrContext> env, ResultInfo resultInfo) {
duke@1 495 Env<AttrContext> prevEnv = this.env;
mcimadamore@1220 496 ResultInfo prevResult = this.resultInfo;
duke@1 497 try {
duke@1 498 this.env = env;
mcimadamore@1220 499 this.resultInfo = resultInfo;
duke@1 500 tree.accept(this);
duke@1 501 if (tree == breakTree)
duke@1 502 throw new BreakAttr(env);
duke@1 503 return result;
duke@1 504 } catch (CompletionFailure ex) {
duke@1 505 tree.type = syms.errType;
duke@1 506 return chk.completionError(tree.pos(), ex);
duke@1 507 } finally {
duke@1 508 this.env = prevEnv;
mcimadamore@1220 509 this.resultInfo = prevResult;
duke@1 510 }
duke@1 511 }
duke@1 512
duke@1 513 /** Derived visitor method: attribute an expression tree.
duke@1 514 */
duke@1 515 public Type attribExpr(JCTree tree, Env<AttrContext> env, Type pt) {
mcimadamore@1238 516 return attribTree(tree, env, new ResultInfo(VAL, pt.tag != ERROR ? pt : Type.noType));
darcy@609 517 }
darcy@609 518
duke@1 519 /** Derived visitor method: attribute an expression tree with
duke@1 520 * no constraints on the computed type.
duke@1 521 */
duke@1 522 Type attribExpr(JCTree tree, Env<AttrContext> env) {
mcimadamore@1220 523 return attribTree(tree, env, unknownExprInfo);
duke@1 524 }
duke@1 525
duke@1 526 /** Derived visitor method: attribute a type tree.
duke@1 527 */
duke@1 528 Type attribType(JCTree tree, Env<AttrContext> env) {
mcimadamore@537 529 Type result = attribType(tree, env, Type.noType);
mcimadamore@537 530 return result;
mcimadamore@537 531 }
mcimadamore@537 532
mcimadamore@537 533 /** Derived visitor method: attribute a type tree.
mcimadamore@537 534 */
mcimadamore@537 535 Type attribType(JCTree tree, Env<AttrContext> env, Type pt) {
mcimadamore@1220 536 Type result = attribTree(tree, env, new ResultInfo(TYP, pt));
duke@1 537 return result;
duke@1 538 }
duke@1 539
duke@1 540 /** Derived visitor method: attribute a statement or definition tree.
duke@1 541 */
duke@1 542 public Type attribStat(JCTree tree, Env<AttrContext> env) {
mcimadamore@1220 543 return attribTree(tree, env, statInfo);
duke@1 544 }
duke@1 545
duke@1 546 /** Attribute a list of expressions, returning a list of types.
duke@1 547 */
duke@1 548 List<Type> attribExprs(List<JCExpression> trees, Env<AttrContext> env, Type pt) {
duke@1 549 ListBuffer<Type> ts = new ListBuffer<Type>();
duke@1 550 for (List<JCExpression> l = trees; l.nonEmpty(); l = l.tail)
duke@1 551 ts.append(attribExpr(l.head, env, pt));
duke@1 552 return ts.toList();
duke@1 553 }
duke@1 554
duke@1 555 /** Attribute a list of statements, returning nothing.
duke@1 556 */
duke@1 557 <T extends JCTree> void attribStats(List<T> trees, Env<AttrContext> env) {
duke@1 558 for (List<T> l = trees; l.nonEmpty(); l = l.tail)
duke@1 559 attribStat(l.head, env);
duke@1 560 }
duke@1 561
duke@1 562 /** Attribute the arguments in a method call, returning a list of types.
duke@1 563 */
duke@1 564 List<Type> attribArgs(List<JCExpression> trees, Env<AttrContext> env) {
duke@1 565 ListBuffer<Type> argtypes = new ListBuffer<Type>();
duke@1 566 for (List<JCExpression> l = trees; l.nonEmpty(); l = l.tail)
duke@1 567 argtypes.append(chk.checkNonVoid(
mcimadamore@1220 568 l.head.pos(), types.upperBound(attribExpr(l.head, env, Infer.anyPoly))));
duke@1 569 return argtypes.toList();
duke@1 570 }
duke@1 571
duke@1 572 /** Attribute a type argument list, returning a list of types.
jrose@267 573 * Caller is responsible for calling checkRefTypes.
duke@1 574 */
jrose@267 575 List<Type> attribAnyTypes(List<JCExpression> trees, Env<AttrContext> env) {
duke@1 576 ListBuffer<Type> argtypes = new ListBuffer<Type>();
duke@1 577 for (List<JCExpression> l = trees; l.nonEmpty(); l = l.tail)
jrose@267 578 argtypes.append(attribType(l.head, env));
duke@1 579 return argtypes.toList();
duke@1 580 }
duke@1 581
jrose@267 582 /** Attribute a type argument list, returning a list of types.
jrose@267 583 * Check that all the types are references.
jrose@267 584 */
jrose@267 585 List<Type> attribTypes(List<JCExpression> trees, Env<AttrContext> env) {
jrose@267 586 List<Type> types = attribAnyTypes(trees, env);
jrose@267 587 return chk.checkRefTypes(trees, types);
jrose@267 588 }
duke@1 589
duke@1 590 /**
duke@1 591 * Attribute type variables (of generic classes or methods).
duke@1 592 * Compound types are attributed later in attribBounds.
duke@1 593 * @param typarams the type variables to enter
duke@1 594 * @param env the current environment
duke@1 595 */
duke@1 596 void attribTypeVariables(List<JCTypeParameter> typarams, Env<AttrContext> env) {
duke@1 597 for (JCTypeParameter tvar : typarams) {
duke@1 598 TypeVar a = (TypeVar)tvar.type;
mcimadamore@42 599 a.tsym.flags_field |= UNATTRIBUTED;
mcimadamore@42 600 a.bound = Type.noType;
duke@1 601 if (!tvar.bounds.isEmpty()) {
duke@1 602 List<Type> bounds = List.of(attribType(tvar.bounds.head, env));
duke@1 603 for (JCExpression bound : tvar.bounds.tail)
duke@1 604 bounds = bounds.prepend(attribType(bound, env));
duke@1 605 types.setBounds(a, bounds.reverse());
duke@1 606 } else {
duke@1 607 // if no bounds are given, assume a single bound of
duke@1 608 // java.lang.Object.
duke@1 609 types.setBounds(a, List.of(syms.objectType));
duke@1 610 }
mcimadamore@42 611 a.tsym.flags_field &= ~UNATTRIBUTED;
duke@1 612 }
duke@1 613 for (JCTypeParameter tvar : typarams)
duke@1 614 chk.checkNonCyclic(tvar.pos(), (TypeVar)tvar.type);
duke@1 615 attribStats(typarams, env);
mcimadamore@42 616 }
mcimadamore@42 617
mcimadamore@42 618 void attribBounds(List<JCTypeParameter> typarams) {
duke@1 619 for (JCTypeParameter typaram : typarams) {
duke@1 620 Type bound = typaram.type.getUpperBound();
duke@1 621 if (bound != null && bound.tsym instanceof ClassSymbol) {
duke@1 622 ClassSymbol c = (ClassSymbol)bound.tsym;
duke@1 623 if ((c.flags_field & COMPOUND) != 0) {
jjg@816 624 Assert.check((c.flags_field & UNATTRIBUTED) != 0, c);
duke@1 625 attribClass(typaram.pos(), c);
duke@1 626 }
duke@1 627 }
duke@1 628 }
duke@1 629 }
duke@1 630
duke@1 631 /**
duke@1 632 * Attribute the type references in a list of annotations.
duke@1 633 */
duke@1 634 void attribAnnotationTypes(List<JCAnnotation> annotations,
duke@1 635 Env<AttrContext> env) {
duke@1 636 for (List<JCAnnotation> al = annotations; al.nonEmpty(); al = al.tail) {
duke@1 637 JCAnnotation a = al.head;
duke@1 638 attribType(a.annotationType, env);
duke@1 639 }
duke@1 640 }
duke@1 641
jjg@841 642 /**
jjg@841 643 * Attribute a "lazy constant value".
jjg@841 644 * @param env The env for the const value
jjg@841 645 * @param initializer The initializer for the const value
jjg@841 646 * @param type The expected type, or null
jjg@841 647 * @see VarSymbol#setlazyConstValue
jjg@841 648 */
jjg@841 649 public Object attribLazyConstantValue(Env<AttrContext> env,
jjg@841 650 JCTree.JCExpression initializer,
jjg@841 651 Type type) {
jjg@841 652
jjg@841 653 // in case no lint value has been set up for this env, scan up
jjg@841 654 // env stack looking for smallest enclosing env for which it is set.
jjg@841 655 Env<AttrContext> lintEnv = env;
jjg@841 656 while (lintEnv.info.lint == null)
jjg@841 657 lintEnv = lintEnv.next;
jjg@841 658
jjg@841 659 // Having found the enclosing lint value, we can initialize the lint value for this class
jjg@1078 660 // ... but ...
jjg@1078 661 // There's a problem with evaluating annotations in the right order, such that
jjg@1078 662 // env.info.enclVar.attributes_field might not yet have been evaluated, and so might be
jjg@1078 663 // null. In that case, calling augment will throw an NPE. To avoid this, for now we
jjg@1078 664 // revert to the jdk 6 behavior and ignore the (unevaluated) attributes.
jfranck@1313 665 if (env.info.enclVar.annotations.pendingCompletion()) {
jjg@1078 666 env.info.lint = lintEnv.info.lint;
jfranck@1313 667 } else {
jfranck@1313 668 env.info.lint = lintEnv.info.lint.augment(env.info.enclVar.annotations,
jfranck@1313 669 env.info.enclVar.flags());
jfranck@1313 670 }
jjg@841 671
jjg@841 672 Lint prevLint = chk.setLint(env.info.lint);
jjg@841 673 JavaFileObject prevSource = log.useSource(env.toplevel.sourcefile);
jjg@841 674
jjg@841 675 try {
jjg@841 676 Type itype = attribExpr(initializer, env, type);
jjg@841 677 if (itype.constValue() != null)
jjg@841 678 return coerce(itype, type).constValue();
jjg@841 679 else
jjg@841 680 return null;
jjg@841 681 } finally {
jjg@841 682 env.info.lint = prevLint;
jjg@841 683 log.useSource(prevSource);
jjg@841 684 }
jjg@841 685 }
jjg@841 686
duke@1 687 /** Attribute type reference in an `extends' or `implements' clause.
mcimadamore@537 688 * Supertypes of anonymous inner classes are usually already attributed.
duke@1 689 *
duke@1 690 * @param tree The tree making up the type reference.
duke@1 691 * @param env The environment current at the reference.
duke@1 692 * @param classExpected true if only a class is expected here.
duke@1 693 * @param interfaceExpected true if only an interface is expected here.
duke@1 694 */
duke@1 695 Type attribBase(JCTree tree,
duke@1 696 Env<AttrContext> env,
duke@1 697 boolean classExpected,
duke@1 698 boolean interfaceExpected,
duke@1 699 boolean checkExtensible) {
mcimadamore@537 700 Type t = tree.type != null ?
mcimadamore@537 701 tree.type :
mcimadamore@537 702 attribType(tree, env);
duke@1 703 return checkBase(t, tree, env, classExpected, interfaceExpected, checkExtensible);
duke@1 704 }
duke@1 705 Type checkBase(Type t,
duke@1 706 JCTree tree,
duke@1 707 Env<AttrContext> env,
duke@1 708 boolean classExpected,
duke@1 709 boolean interfaceExpected,
duke@1 710 boolean checkExtensible) {
jjg@664 711 if (t.isErroneous())
jjg@664 712 return t;
duke@1 713 if (t.tag == TYPEVAR && !classExpected && !interfaceExpected) {
duke@1 714 // check that type variable is already visible
duke@1 715 if (t.getUpperBound() == null) {
duke@1 716 log.error(tree.pos(), "illegal.forward.ref");
jjg@110 717 return types.createErrorType(t);
duke@1 718 }
duke@1 719 } else {
duke@1 720 t = chk.checkClassType(tree.pos(), t, checkExtensible|!allowGenerics);
duke@1 721 }
duke@1 722 if (interfaceExpected && (t.tsym.flags() & INTERFACE) == 0) {
duke@1 723 log.error(tree.pos(), "intf.expected.here");
duke@1 724 // return errType is necessary since otherwise there might
duke@1 725 // be undetected cycles which cause attribution to loop
jjg@110 726 return types.createErrorType(t);
duke@1 727 } else if (checkExtensible &&
duke@1 728 classExpected &&
duke@1 729 (t.tsym.flags() & INTERFACE) != 0) {
jjg@664 730 log.error(tree.pos(), "no.intf.expected.here");
jjg@110 731 return types.createErrorType(t);
duke@1 732 }
duke@1 733 if (checkExtensible &&
duke@1 734 ((t.tsym.flags() & FINAL) != 0)) {
duke@1 735 log.error(tree.pos(),
duke@1 736 "cant.inherit.from.final", t.tsym);
duke@1 737 }
duke@1 738 chk.checkNonCyclic(tree.pos(), t);
duke@1 739 return t;
duke@1 740 }
duke@1 741
mcimadamore@1269 742 Type attribIdentAsEnumType(Env<AttrContext> env, JCIdent id) {
mcimadamore@1269 743 Assert.check((env.enclClass.sym.flags() & ENUM) != 0);
mcimadamore@1269 744 id.type = env.info.scope.owner.type;
mcimadamore@1269 745 id.sym = env.info.scope.owner;
mcimadamore@1269 746 return id.type;
mcimadamore@1269 747 }
mcimadamore@1269 748
duke@1 749 public void visitClassDef(JCClassDecl tree) {
duke@1 750 // Local classes have not been entered yet, so we need to do it now:
duke@1 751 if ((env.info.scope.owner.kind & (VAR | MTH)) != 0)
duke@1 752 enter.classEnter(tree, env);
duke@1 753
duke@1 754 ClassSymbol c = tree.sym;
duke@1 755 if (c == null) {
duke@1 756 // exit in case something drastic went wrong during enter.
duke@1 757 result = null;
duke@1 758 } else {
duke@1 759 // make sure class has been completed:
duke@1 760 c.complete();
duke@1 761
duke@1 762 // If this class appears as an anonymous class
duke@1 763 // in a superclass constructor call where
duke@1 764 // no explicit outer instance is given,
duke@1 765 // disable implicit outer instance from being passed.
duke@1 766 // (This would be an illegal access to "this before super").
duke@1 767 if (env.info.isSelfCall &&
jjg@1127 768 env.tree.hasTag(NEWCLASS) &&
duke@1 769 ((JCNewClass) env.tree).encl == null)
duke@1 770 {
duke@1 771 c.flags_field |= NOOUTERTHIS;
duke@1 772 }
duke@1 773 attribClass(tree.pos(), c);
duke@1 774 result = tree.type = c.type;
duke@1 775 }
duke@1 776 }
duke@1 777
duke@1 778 public void visitMethodDef(JCMethodDecl tree) {
duke@1 779 MethodSymbol m = tree.sym;
duke@1 780
jfranck@1313 781 Lint lint = env.info.lint.augment(m.annotations, m.flags());
duke@1 782 Lint prevLint = chk.setLint(lint);
mcimadamore@795 783 MethodSymbol prevMethod = chk.setMethod(m);
duke@1 784 try {
mcimadamore@852 785 deferredLintHandler.flush(tree.pos());
duke@1 786 chk.checkDeprecatedAnnotation(tree.pos(), m);
duke@1 787
mcimadamore@42 788 attribBounds(tree.typarams);
duke@1 789
duke@1 790 // If we override any other methods, check that we do so properly.
duke@1 791 // JLS ???
mcimadamore@858 792 if (m.isStatic()) {
mcimadamore@858 793 chk.checkHideClashes(tree.pos(), env.enclClass.type, m);
mcimadamore@858 794 } else {
mcimadamore@858 795 chk.checkOverrideClashes(tree.pos(), env.enclClass.type, m);
mcimadamore@858 796 }
duke@1 797 chk.checkOverride(tree, m);
duke@1 798
duke@1 799 // Create a new environment with local scope
duke@1 800 // for attributing the method.
duke@1 801 Env<AttrContext> localEnv = memberEnter.methodEnv(tree, env);
duke@1 802
duke@1 803 localEnv.info.lint = lint;
duke@1 804
duke@1 805 // Enter all type parameters into the local method scope.
duke@1 806 for (List<JCTypeParameter> l = tree.typarams; l.nonEmpty(); l = l.tail)
duke@1 807 localEnv.info.scope.enterIfAbsent(l.head.type.tsym);
duke@1 808
duke@1 809 ClassSymbol owner = env.enclClass.sym;
duke@1 810 if ((owner.flags() & ANNOTATION) != 0 &&
duke@1 811 tree.params.nonEmpty())
duke@1 812 log.error(tree.params.head.pos(),
duke@1 813 "intf.annotation.members.cant.have.params");
duke@1 814
duke@1 815 // Attribute all value parameters.
duke@1 816 for (List<JCVariableDecl> l = tree.params; l.nonEmpty(); l = l.tail) {
duke@1 817 attribStat(l.head, localEnv);
duke@1 818 }
duke@1 819
mcimadamore@795 820 chk.checkVarargsMethodDecl(localEnv, tree);
mcimadamore@580 821
duke@1 822 // Check that type parameters are well-formed.
mcimadamore@122 823 chk.validate(tree.typarams, localEnv);
duke@1 824
duke@1 825 // Check that result type is well-formed.
mcimadamore@122 826 chk.validate(tree.restype, localEnv);
mcimadamore@629 827
mcimadamore@629 828 // annotation method checks
mcimadamore@629 829 if ((owner.flags() & ANNOTATION) != 0) {
mcimadamore@629 830 // annotation method cannot have throws clause
mcimadamore@629 831 if (tree.thrown.nonEmpty()) {
mcimadamore@629 832 log.error(tree.thrown.head.pos(),
mcimadamore@629 833 "throws.not.allowed.in.intf.annotation");
mcimadamore@629 834 }
mcimadamore@629 835 // annotation method cannot declare type-parameters
mcimadamore@629 836 if (tree.typarams.nonEmpty()) {
mcimadamore@629 837 log.error(tree.typarams.head.pos(),
mcimadamore@629 838 "intf.annotation.members.cant.have.type.params");
mcimadamore@629 839 }
mcimadamore@629 840 // validate annotation method's return type (could be an annotation type)
duke@1 841 chk.validateAnnotationType(tree.restype);
mcimadamore@629 842 // ensure that annotation method does not clash with members of Object/Annotation
duke@1 843 chk.validateAnnotationMethod(tree.pos(), m);
duke@1 844
mcimadamore@634 845 if (tree.defaultValue != null) {
mcimadamore@634 846 // if default value is an annotation, check it is a well-formed
mcimadamore@634 847 // annotation value (e.g. no duplicate values, no missing values, etc.)
mcimadamore@634 848 chk.validateAnnotationTree(tree.defaultValue);
mcimadamore@634 849 }
mcimadamore@629 850 }
mcimadamore@629 851
duke@1 852 for (List<JCExpression> l = tree.thrown; l.nonEmpty(); l = l.tail)
duke@1 853 chk.checkType(l.head.pos(), l.head.type, syms.throwableType);
duke@1 854
duke@1 855 if (tree.body == null) {
duke@1 856 // Empty bodies are only allowed for
duke@1 857 // abstract, native, or interface methods, or for methods
duke@1 858 // in a retrofit signature class.
duke@1 859 if ((owner.flags() & INTERFACE) == 0 &&
duke@1 860 (tree.mods.flags & (ABSTRACT | NATIVE)) == 0 &&
duke@1 861 !relax)
duke@1 862 log.error(tree.pos(), "missing.meth.body.or.decl.abstract");
duke@1 863 if (tree.defaultValue != null) {
duke@1 864 if ((owner.flags() & ANNOTATION) == 0)
duke@1 865 log.error(tree.pos(),
duke@1 866 "default.allowed.in.intf.annotation.member");
duke@1 867 }
duke@1 868 } else if ((owner.flags() & INTERFACE) != 0) {
duke@1 869 log.error(tree.body.pos(), "intf.meth.cant.have.body");
duke@1 870 } else if ((tree.mods.flags & ABSTRACT) != 0) {
duke@1 871 log.error(tree.pos(), "abstract.meth.cant.have.body");
duke@1 872 } else if ((tree.mods.flags & NATIVE) != 0) {
duke@1 873 log.error(tree.pos(), "native.meth.cant.have.body");
duke@1 874 } else {
duke@1 875 // Add an implicit super() call unless an explicit call to
duke@1 876 // super(...) or this(...) is given
duke@1 877 // or we are compiling class java.lang.Object.
duke@1 878 if (tree.name == names.init && owner.type != syms.objectType) {
duke@1 879 JCBlock body = tree.body;
duke@1 880 if (body.stats.isEmpty() ||
duke@1 881 !TreeInfo.isSelfCall(body.stats.head)) {
duke@1 882 body.stats = body.stats.
duke@1 883 prepend(memberEnter.SuperCall(make.at(body.pos),
duke@1 884 List.<Type>nil(),
duke@1 885 List.<JCVariableDecl>nil(),
duke@1 886 false));
duke@1 887 } else if ((env.enclClass.sym.flags() & ENUM) != 0 &&
duke@1 888 (tree.mods.flags & GENERATEDCONSTR) == 0 &&
duke@1 889 TreeInfo.isSuperCall(body.stats.head)) {
duke@1 890 // enum constructors are not allowed to call super
duke@1 891 // directly, so make sure there aren't any super calls
duke@1 892 // in enum constructors, except in the compiler
duke@1 893 // generated one.
duke@1 894 log.error(tree.body.stats.head.pos(),
duke@1 895 "call.to.super.not.allowed.in.enum.ctor",
duke@1 896 env.enclClass.sym);
duke@1 897 }
duke@1 898 }
duke@1 899
duke@1 900 // Attribute method body.
duke@1 901 attribStat(tree.body, localEnv);
duke@1 902 }
duke@1 903 localEnv.info.scope.leave();
duke@1 904 result = tree.type = m.type;
duke@1 905 chk.validateAnnotations(tree.mods.annotations, m);
duke@1 906 }
duke@1 907 finally {
duke@1 908 chk.setLint(prevLint);
mcimadamore@795 909 chk.setMethod(prevMethod);
duke@1 910 }
duke@1 911 }
duke@1 912
duke@1 913 public void visitVarDef(JCVariableDecl tree) {
duke@1 914 // Local variables have not been entered yet, so we need to do it now:
duke@1 915 if (env.info.scope.owner.kind == MTH) {
duke@1 916 if (tree.sym != null) {
duke@1 917 // parameters have already been entered
duke@1 918 env.info.scope.enter(tree.sym);
duke@1 919 } else {
duke@1 920 memberEnter.memberEnter(tree, env);
duke@1 921 annotate.flush();
duke@1 922 }
duke@1 923 }
duke@1 924
duke@1 925 VarSymbol v = tree.sym;
jfranck@1313 926 Lint lint = env.info.lint.augment(v.annotations, v.flags());
duke@1 927 Lint prevLint = chk.setLint(lint);
duke@1 928
mcimadamore@165 929 // Check that the variable's declared type is well-formed.
mcimadamore@165 930 chk.validate(tree.vartype, env);
mcimadamore@852 931 deferredLintHandler.flush(tree.pos());
mcimadamore@165 932
duke@1 933 try {
duke@1 934 chk.checkDeprecatedAnnotation(tree.pos(), v);
duke@1 935
duke@1 936 if (tree.init != null) {
jjg@1127 937 if ((v.flags_field & FINAL) != 0 && !tree.init.hasTag(NEWCLASS)) {
duke@1 938 // In this case, `v' is final. Ensure that it's initializer is
duke@1 939 // evaluated.
duke@1 940 v.getConstValue(); // ensure initializer is evaluated
duke@1 941 } else {
duke@1 942 // Attribute initializer in a new environment
duke@1 943 // with the declared variable as owner.
duke@1 944 // Check that initializer conforms to variable's declared type.
duke@1 945 Env<AttrContext> initEnv = memberEnter.initEnv(tree, env);
duke@1 946 initEnv.info.lint = lint;
duke@1 947 // In order to catch self-references, we set the variable's
duke@1 948 // declaration position to maximal possible value, effectively
duke@1 949 // marking the variable as undefined.
mcimadamore@94 950 initEnv.info.enclVar = v;
duke@1 951 attribExpr(tree.init, initEnv, v.type);
duke@1 952 }
duke@1 953 }
duke@1 954 result = tree.type = v.type;
duke@1 955 chk.validateAnnotations(tree.mods.annotations, v);
duke@1 956 }
duke@1 957 finally {
duke@1 958 chk.setLint(prevLint);
duke@1 959 }
duke@1 960 }
duke@1 961
duke@1 962 public void visitSkip(JCSkip tree) {
duke@1 963 result = null;
duke@1 964 }
duke@1 965
duke@1 966 public void visitBlock(JCBlock tree) {
duke@1 967 if (env.info.scope.owner.kind == TYP) {
duke@1 968 // Block is a static or instance initializer;
duke@1 969 // let the owner of the environment be a freshly
duke@1 970 // created BLOCK-method.
duke@1 971 Env<AttrContext> localEnv =
duke@1 972 env.dup(tree, env.info.dup(env.info.scope.dupUnshared()));
duke@1 973 localEnv.info.scope.owner =
duke@1 974 new MethodSymbol(tree.flags | BLOCK, names.empty, null,
duke@1 975 env.info.scope.owner);
duke@1 976 if ((tree.flags & STATIC) != 0) localEnv.info.staticLevel++;
duke@1 977 attribStats(tree.stats, localEnv);
duke@1 978 } else {
duke@1 979 // Create a new local environment with a local scope.
duke@1 980 Env<AttrContext> localEnv =
duke@1 981 env.dup(tree, env.info.dup(env.info.scope.dup()));
duke@1 982 attribStats(tree.stats, localEnv);
duke@1 983 localEnv.info.scope.leave();
duke@1 984 }
duke@1 985 result = null;
duke@1 986 }
duke@1 987
duke@1 988 public void visitDoLoop(JCDoWhileLoop tree) {
duke@1 989 attribStat(tree.body, env.dup(tree));
duke@1 990 attribExpr(tree.cond, env, syms.booleanType);
duke@1 991 result = null;
duke@1 992 }
duke@1 993
duke@1 994 public void visitWhileLoop(JCWhileLoop tree) {
duke@1 995 attribExpr(tree.cond, env, syms.booleanType);
duke@1 996 attribStat(tree.body, env.dup(tree));
duke@1 997 result = null;
duke@1 998 }
duke@1 999
duke@1 1000 public void visitForLoop(JCForLoop tree) {
duke@1 1001 Env<AttrContext> loopEnv =
duke@1 1002 env.dup(env.tree, env.info.dup(env.info.scope.dup()));
duke@1 1003 attribStats(tree.init, loopEnv);
duke@1 1004 if (tree.cond != null) attribExpr(tree.cond, loopEnv, syms.booleanType);
duke@1 1005 loopEnv.tree = tree; // before, we were not in loop!
duke@1 1006 attribStats(tree.step, loopEnv);
duke@1 1007 attribStat(tree.body, loopEnv);
duke@1 1008 loopEnv.info.scope.leave();
duke@1 1009 result = null;
duke@1 1010 }
duke@1 1011
duke@1 1012 public void visitForeachLoop(JCEnhancedForLoop tree) {
duke@1 1013 Env<AttrContext> loopEnv =
duke@1 1014 env.dup(env.tree, env.info.dup(env.info.scope.dup()));
duke@1 1015 attribStat(tree.var, loopEnv);
duke@1 1016 Type exprType = types.upperBound(attribExpr(tree.expr, loopEnv));
duke@1 1017 chk.checkNonVoid(tree.pos(), exprType);
duke@1 1018 Type elemtype = types.elemtype(exprType); // perhaps expr is an array?
duke@1 1019 if (elemtype == null) {
duke@1 1020 // or perhaps expr implements Iterable<T>?
duke@1 1021 Type base = types.asSuper(exprType, syms.iterableType.tsym);
duke@1 1022 if (base == null) {
mcimadamore@829 1023 log.error(tree.expr.pos(),
mcimadamore@829 1024 "foreach.not.applicable.to.type",
mcimadamore@829 1025 exprType,
mcimadamore@829 1026 diags.fragment("type.req.array.or.iterable"));
jjg@110 1027 elemtype = types.createErrorType(exprType);
duke@1 1028 } else {
duke@1 1029 List<Type> iterableParams = base.allparams();
duke@1 1030 elemtype = iterableParams.isEmpty()
duke@1 1031 ? syms.objectType
duke@1 1032 : types.upperBound(iterableParams.head);
duke@1 1033 }
duke@1 1034 }
duke@1 1035 chk.checkType(tree.expr.pos(), elemtype, tree.var.sym.type);
duke@1 1036 loopEnv.tree = tree; // before, we were not in loop!
duke@1 1037 attribStat(tree.body, loopEnv);
duke@1 1038 loopEnv.info.scope.leave();
duke@1 1039 result = null;
duke@1 1040 }
duke@1 1041
duke@1 1042 public void visitLabelled(JCLabeledStatement tree) {
duke@1 1043 // Check that label is not used in an enclosing statement
duke@1 1044 Env<AttrContext> env1 = env;
jjg@1127 1045 while (env1 != null && !env1.tree.hasTag(CLASSDEF)) {
jjg@1127 1046 if (env1.tree.hasTag(LABELLED) &&
duke@1 1047 ((JCLabeledStatement) env1.tree).label == tree.label) {
duke@1 1048 log.error(tree.pos(), "label.already.in.use",
duke@1 1049 tree.label);
duke@1 1050 break;
duke@1 1051 }
duke@1 1052 env1 = env1.next;
duke@1 1053 }
duke@1 1054
duke@1 1055 attribStat(tree.body, env.dup(tree));
duke@1 1056 result = null;
duke@1 1057 }
duke@1 1058
duke@1 1059 public void visitSwitch(JCSwitch tree) {
duke@1 1060 Type seltype = attribExpr(tree.selector, env);
duke@1 1061
duke@1 1062 Env<AttrContext> switchEnv =
duke@1 1063 env.dup(tree, env.info.dup(env.info.scope.dup()));
duke@1 1064
duke@1 1065 boolean enumSwitch =
duke@1 1066 allowEnums &&
duke@1 1067 (seltype.tsym.flags() & Flags.ENUM) != 0;
darcy@430 1068 boolean stringSwitch = false;
darcy@430 1069 if (types.isSameType(seltype, syms.stringType)) {
darcy@430 1070 if (allowStringsInSwitch) {
darcy@430 1071 stringSwitch = true;
darcy@430 1072 } else {
darcy@430 1073 log.error(tree.selector.pos(), "string.switch.not.supported.in.source", sourceName);
darcy@430 1074 }
darcy@430 1075 }
darcy@430 1076 if (!enumSwitch && !stringSwitch)
duke@1 1077 seltype = chk.checkType(tree.selector.pos(), seltype, syms.intType);
duke@1 1078
duke@1 1079 // Attribute all cases and
duke@1 1080 // check that there are no duplicate case labels or default clauses.
duke@1 1081 Set<Object> labels = new HashSet<Object>(); // The set of case labels.
duke@1 1082 boolean hasDefault = false; // Is there a default label?
duke@1 1083 for (List<JCCase> l = tree.cases; l.nonEmpty(); l = l.tail) {
duke@1 1084 JCCase c = l.head;
duke@1 1085 Env<AttrContext> caseEnv =
duke@1 1086 switchEnv.dup(c, env.info.dup(switchEnv.info.scope.dup()));
duke@1 1087 if (c.pat != null) {
duke@1 1088 if (enumSwitch) {
duke@1 1089 Symbol sym = enumConstant(c.pat, seltype);
duke@1 1090 if (sym == null) {
mcimadamore@829 1091 log.error(c.pat.pos(), "enum.label.must.be.unqualified.enum");
duke@1 1092 } else if (!labels.add(sym)) {
duke@1 1093 log.error(c.pos(), "duplicate.case.label");
duke@1 1094 }
duke@1 1095 } else {
duke@1 1096 Type pattype = attribExpr(c.pat, switchEnv, seltype);
duke@1 1097 if (pattype.tag != ERROR) {
duke@1 1098 if (pattype.constValue() == null) {
darcy@430 1099 log.error(c.pat.pos(),
darcy@430 1100 (stringSwitch ? "string.const.req" : "const.expr.req"));
duke@1 1101 } else if (labels.contains(pattype.constValue())) {
duke@1 1102 log.error(c.pos(), "duplicate.case.label");
duke@1 1103 } else {
duke@1 1104 labels.add(pattype.constValue());
duke@1 1105 }
duke@1 1106 }
duke@1 1107 }
duke@1 1108 } else if (hasDefault) {
duke@1 1109 log.error(c.pos(), "duplicate.default.label");
duke@1 1110 } else {
duke@1 1111 hasDefault = true;
duke@1 1112 }
duke@1 1113 attribStats(c.stats, caseEnv);
duke@1 1114 caseEnv.info.scope.leave();
duke@1 1115 addVars(c.stats, switchEnv.info.scope);
duke@1 1116 }
duke@1 1117
duke@1 1118 switchEnv.info.scope.leave();
duke@1 1119 result = null;
duke@1 1120 }
duke@1 1121 // where
duke@1 1122 /** Add any variables defined in stats to the switch scope. */
duke@1 1123 private static void addVars(List<JCStatement> stats, Scope switchScope) {
duke@1 1124 for (;stats.nonEmpty(); stats = stats.tail) {
duke@1 1125 JCTree stat = stats.head;
jjg@1127 1126 if (stat.hasTag(VARDEF))
duke@1 1127 switchScope.enter(((JCVariableDecl) stat).sym);
duke@1 1128 }
duke@1 1129 }
duke@1 1130 // where
duke@1 1131 /** Return the selected enumeration constant symbol, or null. */
duke@1 1132 private Symbol enumConstant(JCTree tree, Type enumType) {
jjg@1127 1133 if (!tree.hasTag(IDENT)) {
duke@1 1134 log.error(tree.pos(), "enum.label.must.be.unqualified.enum");
duke@1 1135 return syms.errSymbol;
duke@1 1136 }
duke@1 1137 JCIdent ident = (JCIdent)tree;
duke@1 1138 Name name = ident.name;
duke@1 1139 for (Scope.Entry e = enumType.tsym.members().lookup(name);
duke@1 1140 e.scope != null; e = e.next()) {
duke@1 1141 if (e.sym.kind == VAR) {
duke@1 1142 Symbol s = ident.sym = e.sym;
duke@1 1143 ((VarSymbol)s).getConstValue(); // ensure initializer is evaluated
duke@1 1144 ident.type = s.type;
duke@1 1145 return ((s.flags_field & Flags.ENUM) == 0)
duke@1 1146 ? null : s;
duke@1 1147 }
duke@1 1148 }
duke@1 1149 return null;
duke@1 1150 }
duke@1 1151
duke@1 1152 public void visitSynchronized(JCSynchronized tree) {
duke@1 1153 chk.checkRefType(tree.pos(), attribExpr(tree.lock, env));
duke@1 1154 attribStat(tree.body, env);
duke@1 1155 result = null;
duke@1 1156 }
duke@1 1157
duke@1 1158 public void visitTry(JCTry tree) {
darcy@609 1159 // Create a new local environment with a local
darcy@609 1160 Env<AttrContext> localEnv = env.dup(tree, env.info.dup(env.info.scope.dup()));
darcy@609 1161 boolean isTryWithResource = tree.resources.nonEmpty();
darcy@609 1162 // Create a nested environment for attributing the try block if needed
darcy@609 1163 Env<AttrContext> tryEnv = isTryWithResource ?
darcy@609 1164 env.dup(tree, localEnv.info.dup(localEnv.info.scope.dup())) :
darcy@609 1165 localEnv;
darcy@609 1166 // Attribute resource declarations
darcy@609 1167 for (JCTree resource : tree.resources) {
mcimadamore@1238 1168 CheckContext twrContext = new Check.NestedCheckContext(resultInfo.checkContext) {
mcimadamore@1238 1169 @Override
mcimadamore@1296 1170 public void report(DiagnosticPosition pos, JCDiagnostic details) {
mcimadamore@1296 1171 chk.basicHandler.report(pos, diags.fragment("try.not.applicable.to.type", details));
mcimadamore@1238 1172 }
mcimadamore@1238 1173 };
mcimadamore@1238 1174 ResultInfo twrResult = new ResultInfo(VAL, syms.autoCloseableType, twrContext);
jjg@1127 1175 if (resource.hasTag(VARDEF)) {
darcy@609 1176 attribStat(resource, tryEnv);
mcimadamore@1238 1177 twrResult.check(resource, resource.type);
mcimadamore@951 1178
mcimadamore@951 1179 //check that resource type cannot throw InterruptedException
mcimadamore@951 1180 checkAutoCloseable(resource.pos(), localEnv, resource.type);
mcimadamore@951 1181
darcy@609 1182 VarSymbol var = (VarSymbol)TreeInfo.symbolFor(resource);
darcy@609 1183 var.setData(ElementKind.RESOURCE_VARIABLE);
darcy@609 1184 } else {
mcimadamore@1238 1185 attribTree(resource, tryEnv, twrResult);
darcy@609 1186 }
darcy@609 1187 }
duke@1 1188 // Attribute body
darcy@609 1189 attribStat(tree.body, tryEnv);
darcy@609 1190 if (isTryWithResource)
darcy@609 1191 tryEnv.info.scope.leave();
duke@1 1192
duke@1 1193 // Attribute catch clauses
duke@1 1194 for (List<JCCatch> l = tree.catchers; l.nonEmpty(); l = l.tail) {
duke@1 1195 JCCatch c = l.head;
duke@1 1196 Env<AttrContext> catchEnv =
darcy@609 1197 localEnv.dup(c, localEnv.info.dup(localEnv.info.scope.dup()));
duke@1 1198 Type ctype = attribStat(c.param, catchEnv);
mcimadamore@550 1199 if (TreeInfo.isMultiCatch(c)) {
mcimadamore@735 1200 //multi-catch parameter is implicitly marked as final
darcy@969 1201 c.param.sym.flags_field |= FINAL | UNION;
mcimadamore@550 1202 }
jjg@723 1203 if (c.param.sym.kind == Kinds.VAR) {
duke@1 1204 c.param.sym.setData(ElementKind.EXCEPTION_PARAMETER);
duke@1 1205 }
duke@1 1206 chk.checkType(c.param.vartype.pos(),
duke@1 1207 chk.checkClassType(c.param.vartype.pos(), ctype),
duke@1 1208 syms.throwableType);
duke@1 1209 attribStat(c.body, catchEnv);
duke@1 1210 catchEnv.info.scope.leave();
duke@1 1211 }
duke@1 1212
duke@1 1213 // Attribute finalizer
darcy@609 1214 if (tree.finalizer != null) attribStat(tree.finalizer, localEnv);
darcy@609 1215
darcy@609 1216 localEnv.info.scope.leave();
duke@1 1217 result = null;
duke@1 1218 }
duke@1 1219
mcimadamore@951 1220 void checkAutoCloseable(DiagnosticPosition pos, Env<AttrContext> env, Type resource) {
mcimadamore@951 1221 if (!resource.isErroneous() &&
darcy@1207 1222 types.asSuper(resource, syms.autoCloseableType.tsym) != null &&
darcy@1207 1223 !types.isSameType(resource, syms.autoCloseableType)) { // Don't emit warning for AutoCloseable itself
mcimadamore@951 1224 Symbol close = syms.noSymbol;
mcimadamore@951 1225 boolean prevDeferDiags = log.deferDiagnostics;
mcimadamore@951 1226 Queue<JCDiagnostic> prevDeferredDiags = log.deferredDiagnostics;
mcimadamore@951 1227 try {
mcimadamore@951 1228 log.deferDiagnostics = true;
mcimadamore@951 1229 log.deferredDiagnostics = ListBuffer.lb();
mcimadamore@951 1230 close = rs.resolveQualifiedMethod(pos,
mcimadamore@951 1231 env,
mcimadamore@951 1232 resource,
mcimadamore@951 1233 names.close,
mcimadamore@951 1234 List.<Type>nil(),
mcimadamore@951 1235 List.<Type>nil());
mcimadamore@951 1236 }
mcimadamore@951 1237 finally {
mcimadamore@951 1238 log.deferDiagnostics = prevDeferDiags;
mcimadamore@951 1239 log.deferredDiagnostics = prevDeferredDiags;
mcimadamore@951 1240 }
mcimadamore@951 1241 if (close.kind == MTH &&
mcimadamore@951 1242 close.overrides(syms.autoCloseableClose, resource.tsym, types, true) &&
mcimadamore@951 1243 chk.isHandled(syms.interruptedExceptionType, types.memberType(resource, close).getThrownTypes()) &&
mcimadamore@951 1244 env.info.lint.isEnabled(LintCategory.TRY)) {
mcimadamore@951 1245 log.warning(LintCategory.TRY, pos, "try.resource.throws.interrupted.exc", resource);
mcimadamore@951 1246 }
mcimadamore@951 1247 }
mcimadamore@951 1248 }
mcimadamore@951 1249
duke@1 1250 public void visitConditional(JCConditional tree) {
duke@1 1251 attribExpr(tree.cond, env, syms.booleanType);
duke@1 1252 attribExpr(tree.truepart, env);
duke@1 1253 attribExpr(tree.falsepart, env);
duke@1 1254 result = check(tree,
duke@1 1255 capture(condType(tree.pos(), tree.cond.type,
duke@1 1256 tree.truepart.type, tree.falsepart.type)),
mcimadamore@1220 1257 VAL, resultInfo);
duke@1 1258 }
duke@1 1259 //where
duke@1 1260 /** Compute the type of a conditional expression, after
duke@1 1261 * checking that it exists. See Spec 15.25.
duke@1 1262 *
duke@1 1263 * @param pos The source position to be used for
duke@1 1264 * error diagnostics.
duke@1 1265 * @param condtype The type of the expression's condition.
duke@1 1266 * @param thentype The type of the expression's then-part.
duke@1 1267 * @param elsetype The type of the expression's else-part.
duke@1 1268 */
duke@1 1269 private Type condType(DiagnosticPosition pos,
duke@1 1270 Type condtype,
duke@1 1271 Type thentype,
duke@1 1272 Type elsetype) {
duke@1 1273 Type ctype = condType1(pos, condtype, thentype, elsetype);
duke@1 1274
duke@1 1275 // If condition and both arms are numeric constants,
duke@1 1276 // evaluate at compile-time.
duke@1 1277 return ((condtype.constValue() != null) &&
duke@1 1278 (thentype.constValue() != null) &&
duke@1 1279 (elsetype.constValue() != null))
duke@1 1280 ? cfolder.coerce(condtype.isTrue()?thentype:elsetype, ctype)
duke@1 1281 : ctype;
duke@1 1282 }
duke@1 1283 /** Compute the type of a conditional expression, after
duke@1 1284 * checking that it exists. Does not take into
duke@1 1285 * account the special case where condition and both arms
duke@1 1286 * are constants.
duke@1 1287 *
duke@1 1288 * @param pos The source position to be used for error
duke@1 1289 * diagnostics.
duke@1 1290 * @param condtype The type of the expression's condition.
duke@1 1291 * @param thentype The type of the expression's then-part.
duke@1 1292 * @param elsetype The type of the expression's else-part.
duke@1 1293 */
duke@1 1294 private Type condType1(DiagnosticPosition pos, Type condtype,
duke@1 1295 Type thentype, Type elsetype) {
duke@1 1296 // If same type, that is the result
duke@1 1297 if (types.isSameType(thentype, elsetype))
duke@1 1298 return thentype.baseType();
duke@1 1299
duke@1 1300 Type thenUnboxed = (!allowBoxing || thentype.isPrimitive())
duke@1 1301 ? thentype : types.unboxedType(thentype);
duke@1 1302 Type elseUnboxed = (!allowBoxing || elsetype.isPrimitive())
duke@1 1303 ? elsetype : types.unboxedType(elsetype);
duke@1 1304
duke@1 1305 // Otherwise, if both arms can be converted to a numeric
duke@1 1306 // type, return the least numeric type that fits both arms
duke@1 1307 // (i.e. return larger of the two, or return int if one
duke@1 1308 // arm is short, the other is char).
duke@1 1309 if (thenUnboxed.isPrimitive() && elseUnboxed.isPrimitive()) {
duke@1 1310 // If one arm has an integer subrange type (i.e., byte,
duke@1 1311 // short, or char), and the other is an integer constant
duke@1 1312 // that fits into the subrange, return the subrange type.
duke@1 1313 if (thenUnboxed.tag < INT && elseUnboxed.tag == INT &&
duke@1 1314 types.isAssignable(elseUnboxed, thenUnboxed))
duke@1 1315 return thenUnboxed.baseType();
duke@1 1316 if (elseUnboxed.tag < INT && thenUnboxed.tag == INT &&
duke@1 1317 types.isAssignable(thenUnboxed, elseUnboxed))
duke@1 1318 return elseUnboxed.baseType();
duke@1 1319
duke@1 1320 for (int i = BYTE; i < VOID; i++) {
duke@1 1321 Type candidate = syms.typeOfTag[i];
duke@1 1322 if (types.isSubtype(thenUnboxed, candidate) &&
duke@1 1323 types.isSubtype(elseUnboxed, candidate))
duke@1 1324 return candidate;
duke@1 1325 }
duke@1 1326 }
duke@1 1327
duke@1 1328 // Those were all the cases that could result in a primitive
duke@1 1329 if (allowBoxing) {
duke@1 1330 if (thentype.isPrimitive())
duke@1 1331 thentype = types.boxedClass(thentype).type;
duke@1 1332 if (elsetype.isPrimitive())
duke@1 1333 elsetype = types.boxedClass(elsetype).type;
duke@1 1334 }
duke@1 1335
duke@1 1336 if (types.isSubtype(thentype, elsetype))
duke@1 1337 return elsetype.baseType();
duke@1 1338 if (types.isSubtype(elsetype, thentype))
duke@1 1339 return thentype.baseType();
duke@1 1340
duke@1 1341 if (!allowBoxing || thentype.tag == VOID || elsetype.tag == VOID) {
duke@1 1342 log.error(pos, "neither.conditional.subtype",
duke@1 1343 thentype, elsetype);
duke@1 1344 return thentype.baseType();
duke@1 1345 }
duke@1 1346
duke@1 1347 // both are known to be reference types. The result is
duke@1 1348 // lub(thentype,elsetype). This cannot fail, as it will
duke@1 1349 // always be possible to infer "Object" if nothing better.
duke@1 1350 return types.lub(thentype.baseType(), elsetype.baseType());
duke@1 1351 }
duke@1 1352
duke@1 1353 public void visitIf(JCIf tree) {
duke@1 1354 attribExpr(tree.cond, env, syms.booleanType);
duke@1 1355 attribStat(tree.thenpart, env);
duke@1 1356 if (tree.elsepart != null)
duke@1 1357 attribStat(tree.elsepart, env);
duke@1 1358 chk.checkEmptyIf(tree);
duke@1 1359 result = null;
duke@1 1360 }
duke@1 1361
duke@1 1362 public void visitExec(JCExpressionStatement tree) {
mcimadamore@674 1363 //a fresh environment is required for 292 inference to work properly ---
mcimadamore@674 1364 //see Infer.instantiatePolymorphicSignatureInstance()
mcimadamore@674 1365 Env<AttrContext> localEnv = env.dup(tree);
mcimadamore@674 1366 attribExpr(tree.expr, localEnv);
duke@1 1367 result = null;
duke@1 1368 }
duke@1 1369
duke@1 1370 public void visitBreak(JCBreak tree) {
duke@1 1371 tree.target = findJumpTarget(tree.pos(), tree.getTag(), tree.label, env);
duke@1 1372 result = null;
duke@1 1373 }
duke@1 1374
duke@1 1375 public void visitContinue(JCContinue tree) {
duke@1 1376 tree.target = findJumpTarget(tree.pos(), tree.getTag(), tree.label, env);
duke@1 1377 result = null;
duke@1 1378 }
duke@1 1379 //where
duke@1 1380 /** Return the target of a break or continue statement, if it exists,
duke@1 1381 * report an error if not.
duke@1 1382 * Note: The target of a labelled break or continue is the
duke@1 1383 * (non-labelled) statement tree referred to by the label,
duke@1 1384 * not the tree representing the labelled statement itself.
duke@1 1385 *
duke@1 1386 * @param pos The position to be used for error diagnostics
duke@1 1387 * @param tag The tag of the jump statement. This is either
duke@1 1388 * Tree.BREAK or Tree.CONTINUE.
duke@1 1389 * @param label The label of the jump statement, or null if no
duke@1 1390 * label is given.
duke@1 1391 * @param env The environment current at the jump statement.
duke@1 1392 */
duke@1 1393 private JCTree findJumpTarget(DiagnosticPosition pos,
jjg@1127 1394 JCTree.Tag tag,
duke@1 1395 Name label,
duke@1 1396 Env<AttrContext> env) {
duke@1 1397 // Search environments outwards from the point of jump.
duke@1 1398 Env<AttrContext> env1 = env;
duke@1 1399 LOOP:
duke@1 1400 while (env1 != null) {
duke@1 1401 switch (env1.tree.getTag()) {
jjg@1127 1402 case LABELLED:
duke@1 1403 JCLabeledStatement labelled = (JCLabeledStatement)env1.tree;
duke@1 1404 if (label == labelled.label) {
duke@1 1405 // If jump is a continue, check that target is a loop.
jjg@1127 1406 if (tag == CONTINUE) {
jjg@1127 1407 if (!labelled.body.hasTag(DOLOOP) &&
jjg@1127 1408 !labelled.body.hasTag(WHILELOOP) &&
jjg@1127 1409 !labelled.body.hasTag(FORLOOP) &&
jjg@1127 1410 !labelled.body.hasTag(FOREACHLOOP))
duke@1 1411 log.error(pos, "not.loop.label", label);
duke@1 1412 // Found labelled statement target, now go inwards
duke@1 1413 // to next non-labelled tree.
duke@1 1414 return TreeInfo.referencedStatement(labelled);
duke@1 1415 } else {
duke@1 1416 return labelled;
duke@1 1417 }
duke@1 1418 }
duke@1 1419 break;
jjg@1127 1420 case DOLOOP:
jjg@1127 1421 case WHILELOOP:
jjg@1127 1422 case FORLOOP:
jjg@1127 1423 case FOREACHLOOP:
duke@1 1424 if (label == null) return env1.tree;
duke@1 1425 break;
jjg@1127 1426 case SWITCH:
jjg@1127 1427 if (label == null && tag == BREAK) return env1.tree;
duke@1 1428 break;
jjg@1127 1429 case METHODDEF:
jjg@1127 1430 case CLASSDEF:
duke@1 1431 break LOOP;
duke@1 1432 default:
duke@1 1433 }
duke@1 1434 env1 = env1.next;
duke@1 1435 }
duke@1 1436 if (label != null)
duke@1 1437 log.error(pos, "undef.label", label);
jjg@1127 1438 else if (tag == CONTINUE)
duke@1 1439 log.error(pos, "cont.outside.loop");
duke@1 1440 else
duke@1 1441 log.error(pos, "break.outside.switch.loop");
duke@1 1442 return null;
duke@1 1443 }
duke@1 1444
duke@1 1445 public void visitReturn(JCReturn tree) {
duke@1 1446 // Check that there is an enclosing method which is
duke@1 1447 // nested within than the enclosing class.
duke@1 1448 if (env.enclMethod == null ||
duke@1 1449 env.enclMethod.sym.owner != env.enclClass.sym) {
duke@1 1450 log.error(tree.pos(), "ret.outside.meth");
duke@1 1451
duke@1 1452 } else {
duke@1 1453 // Attribute return expression, if it exists, and check that
duke@1 1454 // it conforms to result type of enclosing method.
duke@1 1455 Symbol m = env.enclMethod.sym;
duke@1 1456 if (m.type.getReturnType().tag == VOID) {
duke@1 1457 if (tree.expr != null)
duke@1 1458 log.error(tree.expr.pos(),
duke@1 1459 "cant.ret.val.from.meth.decl.void");
duke@1 1460 } else if (tree.expr == null) {
duke@1 1461 log.error(tree.pos(), "missing.ret.val");
duke@1 1462 } else {
duke@1 1463 attribExpr(tree.expr, env, m.type.getReturnType());
duke@1 1464 }
duke@1 1465 }
duke@1 1466 result = null;
duke@1 1467 }
duke@1 1468
duke@1 1469 public void visitThrow(JCThrow tree) {
duke@1 1470 attribExpr(tree.expr, env, syms.throwableType);
duke@1 1471 result = null;
duke@1 1472 }
duke@1 1473
duke@1 1474 public void visitAssert(JCAssert tree) {
duke@1 1475 attribExpr(tree.cond, env, syms.booleanType);
duke@1 1476 if (tree.detail != null) {
duke@1 1477 chk.checkNonVoid(tree.detail.pos(), attribExpr(tree.detail, env));
duke@1 1478 }
duke@1 1479 result = null;
duke@1 1480 }
duke@1 1481
duke@1 1482 /** Visitor method for method invocations.
duke@1 1483 * NOTE: The method part of an application will have in its type field
duke@1 1484 * the return type of the method, not the method's type itself!
duke@1 1485 */
duke@1 1486 public void visitApply(JCMethodInvocation tree) {
duke@1 1487 // The local environment of a method application is
duke@1 1488 // a new environment nested in the current one.
duke@1 1489 Env<AttrContext> localEnv = env.dup(tree, env.info.dup());
duke@1 1490
duke@1 1491 // The types of the actual method arguments.
duke@1 1492 List<Type> argtypes;
duke@1 1493
duke@1 1494 // The types of the actual method type arguments.
duke@1 1495 List<Type> typeargtypes = null;
duke@1 1496
duke@1 1497 Name methName = TreeInfo.name(tree.meth);
duke@1 1498
duke@1 1499 boolean isConstructorCall =
duke@1 1500 methName == names._this || methName == names._super;
duke@1 1501
duke@1 1502 if (isConstructorCall) {
duke@1 1503 // We are seeing a ...this(...) or ...super(...) call.
duke@1 1504 // Check that this is the first statement in a constructor.
duke@1 1505 if (checkFirstConstructorStat(tree, env)) {
duke@1 1506
duke@1 1507 // Record the fact
duke@1 1508 // that this is a constructor call (using isSelfCall).
duke@1 1509 localEnv.info.isSelfCall = true;
duke@1 1510
duke@1 1511 // Attribute arguments, yielding list of argument types.
duke@1 1512 argtypes = attribArgs(tree.args, localEnv);
duke@1 1513 typeargtypes = attribTypes(tree.typeargs, localEnv);
duke@1 1514
duke@1 1515 // Variable `site' points to the class in which the called
duke@1 1516 // constructor is defined.
duke@1 1517 Type site = env.enclClass.sym.type;
duke@1 1518 if (methName == names._super) {
duke@1 1519 if (site == syms.objectType) {
duke@1 1520 log.error(tree.meth.pos(), "no.superclass", site);
jjg@110 1521 site = types.createErrorType(syms.objectType);
duke@1 1522 } else {
duke@1 1523 site = types.supertype(site);
duke@1 1524 }
duke@1 1525 }
duke@1 1526
duke@1 1527 if (site.tag == CLASS) {
mcimadamore@361 1528 Type encl = site.getEnclosingType();
mcimadamore@361 1529 while (encl != null && encl.tag == TYPEVAR)
mcimadamore@361 1530 encl = encl.getUpperBound();
mcimadamore@361 1531 if (encl.tag == CLASS) {
duke@1 1532 // we are calling a nested class
duke@1 1533
jjg@1127 1534 if (tree.meth.hasTag(SELECT)) {
duke@1 1535 JCTree qualifier = ((JCFieldAccess) tree.meth).selected;
duke@1 1536
duke@1 1537 // We are seeing a prefixed call, of the form
duke@1 1538 // <expr>.super(...).
duke@1 1539 // Check that the prefix expression conforms
duke@1 1540 // to the outer instance type of the class.
duke@1 1541 chk.checkRefType(qualifier.pos(),
duke@1 1542 attribExpr(qualifier, localEnv,
mcimadamore@361 1543 encl));
duke@1 1544 } else if (methName == names._super) {
duke@1 1545 // qualifier omitted; check for existence
duke@1 1546 // of an appropriate implicit qualifier.
duke@1 1547 rs.resolveImplicitThis(tree.meth.pos(),
mcimadamore@901 1548 localEnv, site, true);
duke@1 1549 }
jjg@1127 1550 } else if (tree.meth.hasTag(SELECT)) {
duke@1 1551 log.error(tree.meth.pos(), "illegal.qual.not.icls",
duke@1 1552 site.tsym);
duke@1 1553 }
duke@1 1554
duke@1 1555 // if we're calling a java.lang.Enum constructor,
duke@1 1556 // prefix the implicit String and int parameters
duke@1 1557 if (site.tsym == syms.enumSym && allowEnums)
duke@1 1558 argtypes = argtypes.prepend(syms.intType).prepend(syms.stringType);
duke@1 1559
duke@1 1560 // Resolve the called constructor under the assumption
duke@1 1561 // that we are referring to a superclass instance of the
duke@1 1562 // current instance (JLS ???).
duke@1 1563 boolean selectSuperPrev = localEnv.info.selectSuper;
duke@1 1564 localEnv.info.selectSuper = true;
duke@1 1565 localEnv.info.varArgs = false;
duke@1 1566 Symbol sym = rs.resolveConstructor(
duke@1 1567 tree.meth.pos(), localEnv, site, argtypes, typeargtypes);
duke@1 1568 localEnv.info.selectSuper = selectSuperPrev;
duke@1 1569
duke@1 1570 // Set method symbol to resolved constructor...
duke@1 1571 TreeInfo.setSymbol(tree.meth, sym);
duke@1 1572
duke@1 1573 // ...and check that it is legal in the current context.
duke@1 1574 // (this will also set the tree's type)
mcimadamore@1268 1575 Type mpt = newMethodTemplate(resultInfo.pt, argtypes, typeargtypes);
mcimadamore@1220 1576 checkId(tree.meth, site, sym, localEnv, new ResultInfo(MTH, mpt),
mcimadamore@1220 1577 tree.varargsElement != null);
duke@1 1578 }
duke@1 1579 // Otherwise, `site' is an error type and we do nothing
duke@1 1580 }
duke@1 1581 result = tree.type = syms.voidType;
duke@1 1582 } else {
duke@1 1583 // Otherwise, we are seeing a regular method call.
duke@1 1584 // Attribute the arguments, yielding list of argument types, ...
duke@1 1585 argtypes = attribArgs(tree.args, localEnv);
jrose@267 1586 typeargtypes = attribAnyTypes(tree.typeargs, localEnv);
duke@1 1587
duke@1 1588 // ... and attribute the method using as a prototype a methodtype
duke@1 1589 // whose formal argument types is exactly the list of actual
duke@1 1590 // arguments (this will also set the method symbol).
mcimadamore@1268 1591 Type mpt = newMethodTemplate(resultInfo.pt, argtypes, typeargtypes);
duke@1 1592 localEnv.info.varArgs = false;
duke@1 1593 Type mtype = attribExpr(tree.meth, localEnv, mpt);
duke@1 1594
duke@1 1595 // Compute the result type.
duke@1 1596 Type restype = mtype.getReturnType();
mcimadamore@689 1597 if (restype.tag == WILDCARD)
mcimadamore@689 1598 throw new AssertionError(mtype);
duke@1 1599
duke@1 1600 // as a special case, array.clone() has a result that is
duke@1 1601 // the same as static type of the array being cloned
jjg@1127 1602 if (tree.meth.hasTag(SELECT) &&
duke@1 1603 allowCovariantReturns &&
duke@1 1604 methName == names.clone &&
duke@1 1605 types.isArray(((JCFieldAccess) tree.meth).selected.type))
duke@1 1606 restype = ((JCFieldAccess) tree.meth).selected.type;
duke@1 1607
duke@1 1608 // as a special case, x.getClass() has type Class<? extends |X|>
duke@1 1609 if (allowGenerics &&
duke@1 1610 methName == names.getClass && tree.args.isEmpty()) {
jjg@1127 1611 Type qualifier = (tree.meth.hasTag(SELECT))
duke@1 1612 ? ((JCFieldAccess) tree.meth).selected.type
duke@1 1613 : env.enclClass.sym.type;
duke@1 1614 restype = new
duke@1 1615 ClassType(restype.getEnclosingType(),
duke@1 1616 List.<Type>of(new WildcardType(types.erasure(qualifier),
duke@1 1617 BoundKind.EXTENDS,
duke@1 1618 syms.boundClass)),
duke@1 1619 restype.tsym);
duke@1 1620 }
duke@1 1621
mcimadamore@820 1622 chk.checkRefTypes(tree.typeargs, typeargtypes);
jrose@267 1623
duke@1 1624 // Check that value of resulting type is admissible in the
duke@1 1625 // current context. Also, capture the return type
mcimadamore@1220 1626 result = check(tree, capture(restype), VAL, resultInfo);
mcimadamore@1219 1627
mcimadamore@1219 1628 if (localEnv.info.varArgs)
mcimadamore@1219 1629 Assert.check(result.isErroneous() || tree.varargsElement != null);
duke@1 1630 }
mcimadamore@122 1631 chk.validate(tree.typeargs, localEnv);
duke@1 1632 }
duke@1 1633 //where
duke@1 1634 /** Check that given application node appears as first statement
duke@1 1635 * in a constructor call.
duke@1 1636 * @param tree The application node
duke@1 1637 * @param env The environment current at the application.
duke@1 1638 */
duke@1 1639 boolean checkFirstConstructorStat(JCMethodInvocation tree, Env<AttrContext> env) {
duke@1 1640 JCMethodDecl enclMethod = env.enclMethod;
duke@1 1641 if (enclMethod != null && enclMethod.name == names.init) {
duke@1 1642 JCBlock body = enclMethod.body;
jjg@1127 1643 if (body.stats.head.hasTag(EXEC) &&
duke@1 1644 ((JCExpressionStatement) body.stats.head).expr == tree)
duke@1 1645 return true;
duke@1 1646 }
duke@1 1647 log.error(tree.pos(),"call.must.be.first.stmt.in.ctor",
duke@1 1648 TreeInfo.name(tree.meth));
duke@1 1649 return false;
duke@1 1650 }
duke@1 1651
duke@1 1652 /** Obtain a method type with given argument types.
duke@1 1653 */
mcimadamore@1268 1654 Type newMethodTemplate(Type restype, List<Type> argtypes, List<Type> typeargtypes) {
mcimadamore@1268 1655 MethodType mt = new MethodType(argtypes, restype, null, syms.methodClass);
duke@1 1656 return (typeargtypes == null) ? mt : (Type)new ForAll(typeargtypes, mt);
duke@1 1657 }
duke@1 1658
duke@1 1659 public void visitNewClass(JCNewClass tree) {
jjg@110 1660 Type owntype = types.createErrorType(tree.type);
duke@1 1661
duke@1 1662 // The local environment of a class creation is
duke@1 1663 // a new environment nested in the current one.
duke@1 1664 Env<AttrContext> localEnv = env.dup(tree, env.info.dup());
duke@1 1665
duke@1 1666 // The anonymous inner class definition of the new expression,
duke@1 1667 // if one is defined by it.
duke@1 1668 JCClassDecl cdef = tree.def;
duke@1 1669
duke@1 1670 // If enclosing class is given, attribute it, and
duke@1 1671 // complete class name to be fully qualified
duke@1 1672 JCExpression clazz = tree.clazz; // Class field following new
duke@1 1673 JCExpression clazzid = // Identifier in class field
jjg@1127 1674 (clazz.hasTag(TYPEAPPLY))
duke@1 1675 ? ((JCTypeApply) clazz).clazz
duke@1 1676 : clazz;
duke@1 1677
duke@1 1678 JCExpression clazzid1 = clazzid; // The same in fully qualified form
duke@1 1679
duke@1 1680 if (tree.encl != null) {
duke@1 1681 // We are seeing a qualified new, of the form
duke@1 1682 // <expr>.new C <...> (...) ...
duke@1 1683 // In this case, we let clazz stand for the name of the
duke@1 1684 // allocated class C prefixed with the type of the qualifier
duke@1 1685 // expression, so that we can
duke@1 1686 // resolve it with standard techniques later. I.e., if
duke@1 1687 // <expr> has type T, then <expr>.new C <...> (...)
duke@1 1688 // yields a clazz T.C.
duke@1 1689 Type encltype = chk.checkRefType(tree.encl.pos(),
duke@1 1690 attribExpr(tree.encl, env));
duke@1 1691 clazzid1 = make.at(clazz.pos).Select(make.Type(encltype),
duke@1 1692 ((JCIdent) clazzid).name);
jjg@1127 1693 if (clazz.hasTag(TYPEAPPLY))
duke@1 1694 clazz = make.at(tree.pos).
duke@1 1695 TypeApply(clazzid1,
duke@1 1696 ((JCTypeApply) clazz).arguments);
duke@1 1697 else
duke@1 1698 clazz = clazzid1;
duke@1 1699 }
duke@1 1700
duke@1 1701 // Attribute clazz expression and store
duke@1 1702 // symbol + type back into the attributed tree.
mcimadamore@1269 1703 Type clazztype = TreeInfo.isEnumInit(env.tree) ?
mcimadamore@1269 1704 attribIdentAsEnumType(env, (JCIdent)clazz) :
mcimadamore@1269 1705 attribType(clazz, env);
mcimadamore@1269 1706
mcimadamore@914 1707 clazztype = chk.checkDiamond(tree, clazztype);
mcimadamore@122 1708 chk.validate(clazz, localEnv);
duke@1 1709 if (tree.encl != null) {
duke@1 1710 // We have to work in this case to store
duke@1 1711 // symbol + type back into the attributed tree.
duke@1 1712 tree.clazz.type = clazztype;
duke@1 1713 TreeInfo.setSymbol(clazzid, TreeInfo.symbol(clazzid1));
duke@1 1714 clazzid.type = ((JCIdent) clazzid).sym.type;
duke@1 1715 if (!clazztype.isErroneous()) {
duke@1 1716 if (cdef != null && clazztype.tsym.isInterface()) {
duke@1 1717 log.error(tree.encl.pos(), "anon.class.impl.intf.no.qual.for.new");
duke@1 1718 } else if (clazztype.tsym.isStatic()) {
duke@1 1719 log.error(tree.encl.pos(), "qualified.new.of.static.class", clazztype.tsym);
duke@1 1720 }
duke@1 1721 }
duke@1 1722 } else if (!clazztype.tsym.isInterface() &&
duke@1 1723 clazztype.getEnclosingType().tag == CLASS) {
duke@1 1724 // Check for the existence of an apropos outer instance
duke@1 1725 rs.resolveImplicitThis(tree.pos(), env, clazztype);
duke@1 1726 }
duke@1 1727
duke@1 1728 // Attribute constructor arguments.
duke@1 1729 List<Type> argtypes = attribArgs(tree.args, localEnv);
duke@1 1730 List<Type> typeargtypes = attribTypes(tree.typeargs, localEnv);
duke@1 1731
mcimadamore@914 1732 if (TreeInfo.isDiamond(tree) && !clazztype.isErroneous()) {
mcimadamore@1217 1733 clazztype = attribDiamond(localEnv, tree, clazztype, argtypes, typeargtypes);
mcimadamore@537 1734 clazz.type = clazztype;
mcimadamore@731 1735 } else if (allowDiamondFinder &&
mcimadamore@914 1736 tree.def == null &&
mcimadamore@914 1737 !clazztype.isErroneous() &&
mcimadamore@731 1738 clazztype.getTypeArguments().nonEmpty() &&
mcimadamore@731 1739 findDiamonds) {
mcimadamore@770 1740 boolean prevDeferDiags = log.deferDiagnostics;
mcimadamore@770 1741 Queue<JCDiagnostic> prevDeferredDiags = log.deferredDiagnostics;
mcimadamore@770 1742 Type inferred = null;
mcimadamore@770 1743 try {
mcimadamore@770 1744 //disable diamond-related diagnostics
mcimadamore@770 1745 log.deferDiagnostics = true;
mcimadamore@770 1746 log.deferredDiagnostics = ListBuffer.lb();
mcimadamore@770 1747 inferred = attribDiamond(localEnv,
mcimadamore@770 1748 tree,
mcimadamore@770 1749 clazztype,
mcimadamore@770 1750 argtypes,
mcimadamore@770 1751 typeargtypes);
mcimadamore@770 1752 }
mcimadamore@770 1753 finally {
mcimadamore@770 1754 log.deferDiagnostics = prevDeferDiags;
mcimadamore@770 1755 log.deferredDiagnostics = prevDeferredDiags;
mcimadamore@770 1756 }
mcimadamore@770 1757 if (inferred != null &&
mcimadamore@770 1758 !inferred.isErroneous() &&
mcimadamore@731 1759 inferred.tag == CLASS &&
mcimadamore@1220 1760 types.isAssignable(inferred, pt().tag == NONE ? clazztype : pt(), Warner.noWarnings)) {
mcimadamore@731 1761 String key = types.isSameType(clazztype, inferred) ?
mcimadamore@731 1762 "diamond.redundant.args" :
mcimadamore@731 1763 "diamond.redundant.args.1";
mcimadamore@731 1764 log.warning(tree.clazz.pos(), key, clazztype, inferred);
mcimadamore@731 1765 }
mcimadamore@537 1766 }
mcimadamore@537 1767
duke@1 1768 // If we have made no mistakes in the class type...
duke@1 1769 if (clazztype.tag == CLASS) {
duke@1 1770 // Enums may not be instantiated except implicitly
duke@1 1771 if (allowEnums &&
duke@1 1772 (clazztype.tsym.flags_field&Flags.ENUM) != 0 &&
jjg@1127 1773 (!env.tree.hasTag(VARDEF) ||
duke@1 1774 (((JCVariableDecl) env.tree).mods.flags&Flags.ENUM) == 0 ||
duke@1 1775 ((JCVariableDecl) env.tree).init != tree))
duke@1 1776 log.error(tree.pos(), "enum.cant.be.instantiated");
duke@1 1777 // Check that class is not abstract
duke@1 1778 if (cdef == null &&
duke@1 1779 (clazztype.tsym.flags() & (ABSTRACT | INTERFACE)) != 0) {
duke@1 1780 log.error(tree.pos(), "abstract.cant.be.instantiated",
duke@1 1781 clazztype.tsym);
duke@1 1782 } else if (cdef != null && clazztype.tsym.isInterface()) {
duke@1 1783 // Check that no constructor arguments are given to
duke@1 1784 // anonymous classes implementing an interface
duke@1 1785 if (!argtypes.isEmpty())
duke@1 1786 log.error(tree.args.head.pos(), "anon.class.impl.intf.no.args");
duke@1 1787
duke@1 1788 if (!typeargtypes.isEmpty())
duke@1 1789 log.error(tree.typeargs.head.pos(), "anon.class.impl.intf.no.typeargs");
duke@1 1790
duke@1 1791 // Error recovery: pretend no arguments were supplied.
duke@1 1792 argtypes = List.nil();
duke@1 1793 typeargtypes = List.nil();
duke@1 1794 }
duke@1 1795
duke@1 1796 // Resolve the called constructor under the assumption
duke@1 1797 // that we are referring to a superclass instance of the
duke@1 1798 // current instance (JLS ???).
duke@1 1799 else {
mcimadamore@1010 1800 //the following code alters some of the fields in the current
mcimadamore@1010 1801 //AttrContext - hence, the current context must be dup'ed in
mcimadamore@1010 1802 //order to avoid downstream failures
mcimadamore@1010 1803 Env<AttrContext> rsEnv = localEnv.dup(tree);
mcimadamore@1010 1804 rsEnv.info.selectSuper = cdef != null;
mcimadamore@1010 1805 rsEnv.info.varArgs = false;
duke@1 1806 tree.constructor = rs.resolveConstructor(
mcimadamore@1010 1807 tree.pos(), rsEnv, clazztype, argtypes, typeargtypes);
mcimadamore@630 1808 tree.constructorType = tree.constructor.type.isErroneous() ?
mcimadamore@630 1809 syms.errType :
mcimadamore@1219 1810 checkConstructor(clazztype,
mcimadamore@630 1811 tree.constructor,
mcimadamore@1010 1812 rsEnv,
mcimadamore@630 1813 tree.args,
mcimadamore@630 1814 argtypes,
mcimadamore@630 1815 typeargtypes,
mcimadamore@1010 1816 rsEnv.info.varArgs);
mcimadamore@1010 1817 if (rsEnv.info.varArgs)
jjg@816 1818 Assert.check(tree.constructorType.isErroneous() || tree.varargsElement != null);
duke@1 1819 }
duke@1 1820
duke@1 1821 if (cdef != null) {
duke@1 1822 // We are seeing an anonymous class instance creation.
duke@1 1823 // In this case, the class instance creation
duke@1 1824 // expression
duke@1 1825 //
duke@1 1826 // E.new <typeargs1>C<typargs2>(args) { ... }
duke@1 1827 //
duke@1 1828 // is represented internally as
duke@1 1829 //
duke@1 1830 // E . new <typeargs1>C<typargs2>(args) ( class <empty-name> { ... } ) .
duke@1 1831 //
duke@1 1832 // This expression is then *transformed* as follows:
duke@1 1833 //
duke@1 1834 // (1) add a STATIC flag to the class definition
duke@1 1835 // if the current environment is static
duke@1 1836 // (2) add an extends or implements clause
duke@1 1837 // (3) add a constructor.
duke@1 1838 //
duke@1 1839 // For instance, if C is a class, and ET is the type of E,
duke@1 1840 // the expression
duke@1 1841 //
duke@1 1842 // E.new <typeargs1>C<typargs2>(args) { ... }
duke@1 1843 //
duke@1 1844 // is translated to (where X is a fresh name and typarams is the
duke@1 1845 // parameter list of the super constructor):
duke@1 1846 //
duke@1 1847 // new <typeargs1>X(<*nullchk*>E, args) where
duke@1 1848 // X extends C<typargs2> {
duke@1 1849 // <typarams> X(ET e, args) {
duke@1 1850 // e.<typeargs1>super(args)
duke@1 1851 // }
duke@1 1852 // ...
duke@1 1853 // }
duke@1 1854 if (Resolve.isStatic(env)) cdef.mods.flags |= STATIC;
mcimadamore@536 1855
duke@1 1856 if (clazztype.tsym.isInterface()) {
duke@1 1857 cdef.implementing = List.of(clazz);
duke@1 1858 } else {
duke@1 1859 cdef.extending = clazz;
duke@1 1860 }
duke@1 1861
duke@1 1862 attribStat(cdef, localEnv);
duke@1 1863
duke@1 1864 // If an outer instance is given,
duke@1 1865 // prefix it to the constructor arguments
duke@1 1866 // and delete it from the new expression
duke@1 1867 if (tree.encl != null && !clazztype.tsym.isInterface()) {
duke@1 1868 tree.args = tree.args.prepend(makeNullCheck(tree.encl));
duke@1 1869 argtypes = argtypes.prepend(tree.encl.type);
duke@1 1870 tree.encl = null;
duke@1 1871 }
duke@1 1872
duke@1 1873 // Reassign clazztype and recompute constructor.
duke@1 1874 clazztype = cdef.sym.type;
mcimadamore@1010 1875 boolean useVarargs = tree.varargsElement != null;
duke@1 1876 Symbol sym = rs.resolveConstructor(
duke@1 1877 tree.pos(), localEnv, clazztype, argtypes,
mcimadamore@1010 1878 typeargtypes, true, useVarargs);
jjg@816 1879 Assert.check(sym.kind < AMBIGUOUS || tree.constructor.type.isErroneous());
duke@1 1880 tree.constructor = sym;
mcimadamore@358 1881 if (tree.constructor.kind > ERRONEOUS) {
mcimadamore@358 1882 tree.constructorType = syms.errType;
mcimadamore@358 1883 }
mcimadamore@358 1884 else {
mcimadamore@1219 1885 tree.constructorType = checkConstructor(clazztype,
mcimadamore@358 1886 tree.constructor,
mcimadamore@358 1887 localEnv,
mcimadamore@358 1888 tree.args,
mcimadamore@358 1889 argtypes,
mcimadamore@358 1890 typeargtypes,
mcimadamore@1010 1891 useVarargs);
mcimadamore@358 1892 }
duke@1 1893 }
duke@1 1894
duke@1 1895 if (tree.constructor != null && tree.constructor.kind == MTH)
duke@1 1896 owntype = clazztype;
duke@1 1897 }
mcimadamore@1220 1898 result = check(tree, owntype, VAL, resultInfo);
mcimadamore@122 1899 chk.validate(tree.typeargs, localEnv);
duke@1 1900 }
duke@1 1901
mcimadamore@537 1902 Type attribDiamond(Env<AttrContext> env,
mcimadamore@1238 1903 final JCNewClass tree,
mcimadamore@1296 1904 final Type clazztype,
mcimadamore@537 1905 List<Type> argtypes,
mcimadamore@631 1906 List<Type> typeargtypes) {
mcimadamore@950 1907 if (clazztype.isErroneous() ||
mcimadamore@1217 1908 clazztype.isInterface()) {
mcimadamore@562 1909 //if the type of the instance creation expression is erroneous,
mcimadamore@950 1910 //or if it's an interface, or if something prevented us to form a valid
mcimadamore@950 1911 //mapping, return the (possibly erroneous) type unchanged
mcimadamore@537 1912 return clazztype;
mcimadamore@537 1913 }
mcimadamore@950 1914
mcimadamore@950 1915 //dup attribution environment and augment the set of inference variables
mcimadamore@950 1916 Env<AttrContext> localEnv = env.dup(tree);
mcimadamore@1217 1917
mcimadamore@1217 1918 ClassType site = new ClassType(clazztype.getEnclosingType(),
mcimadamore@1217 1919 clazztype.tsym.type.getTypeArguments(),
mcimadamore@1217 1920 clazztype.tsym);
mcimadamore@950 1921
mcimadamore@950 1922 //if the type of the instance creation expression is a class type
mcimadamore@950 1923 //apply method resolution inference (JLS 15.12.2.7). The return type
mcimadamore@950 1924 //of the resolved constructor will be a partially instantiated type
mcimadamore@1217 1925 Symbol constructor = rs.resolveDiamond(tree.pos(),
mcimadamore@950 1926 localEnv,
mcimadamore@1217 1927 site,
mcimadamore@950 1928 argtypes,
mcimadamore@950 1929 typeargtypes);
mcimadamore@1217 1930
mcimadamore@1296 1931 Type owntype = types.createErrorType(clazztype);
mcimadamore@950 1932 if (constructor.kind == MTH) {
mcimadamore@1296 1933 ResultInfo diamondResult = new ResultInfo(VAL, resultInfo.pt, new Check.NestedCheckContext(resultInfo.checkContext) {
mcimadamore@1296 1934 @Override
mcimadamore@1296 1935 public void report(DiagnosticPosition pos, JCDiagnostic details) {
mcimadamore@1296 1936 enclosingContext.report(tree.clazz.pos(),
mcimadamore@1296 1937 diags.fragment("cant.apply.diamond.1", diags.fragment("diamond", clazztype.tsym), details));
mcimadamore@1296 1938 }
mcimadamore@1296 1939 });
mcimadamore@1296 1940 owntype = checkMethod(site,
mcimadamore@1296 1941 constructor,
mcimadamore@1296 1942 diamondResult,
mcimadamore@1296 1943 localEnv,
mcimadamore@1296 1944 tree.args,
mcimadamore@1296 1945 argtypes,
mcimadamore@1296 1946 typeargtypes,
mcimadamore@1296 1947 localEnv.info.varArgs).getReturnType();
mcimadamore@631 1948 }
mcimadamore@1238 1949
mcimadamore@1296 1950 return chk.checkClassType(tree.clazz.pos(), owntype, true);
mcimadamore@537 1951 }
mcimadamore@537 1952
duke@1 1953 /** Make an attributed null check tree.
duke@1 1954 */
duke@1 1955 public JCExpression makeNullCheck(JCExpression arg) {
duke@1 1956 // optimization: X.this is never null; skip null check
duke@1 1957 Name name = TreeInfo.name(arg);
duke@1 1958 if (name == names._this || name == names._super) return arg;
duke@1 1959
jjg@1127 1960 JCTree.Tag optag = NULLCHK;
duke@1 1961 JCUnary tree = make.at(arg.pos).Unary(optag, arg);
duke@1 1962 tree.operator = syms.nullcheck;
duke@1 1963 tree.type = arg.type;
duke@1 1964 return tree;
duke@1 1965 }
duke@1 1966
duke@1 1967 public void visitNewArray(JCNewArray tree) {
jjg@110 1968 Type owntype = types.createErrorType(tree.type);
duke@1 1969 Type elemtype;
duke@1 1970 if (tree.elemtype != null) {
duke@1 1971 elemtype = attribType(tree.elemtype, env);
mcimadamore@122 1972 chk.validate(tree.elemtype, env);
duke@1 1973 owntype = elemtype;
duke@1 1974 for (List<JCExpression> l = tree.dims; l.nonEmpty(); l = l.tail) {
duke@1 1975 attribExpr(l.head, env, syms.intType);
duke@1 1976 owntype = new ArrayType(owntype, syms.arrayClass);
duke@1 1977 }
duke@1 1978 } else {
duke@1 1979 // we are seeing an untyped aggregate { ... }
duke@1 1980 // this is allowed only if the prototype is an array
mcimadamore@1220 1981 if (pt().tag == ARRAY) {
mcimadamore@1220 1982 elemtype = types.elemtype(pt());
duke@1 1983 } else {
mcimadamore@1220 1984 if (pt().tag != ERROR) {
duke@1 1985 log.error(tree.pos(), "illegal.initializer.for.type",
mcimadamore@1220 1986 pt());
duke@1 1987 }
mcimadamore@1220 1988 elemtype = types.createErrorType(pt());
duke@1 1989 }
duke@1 1990 }
duke@1 1991 if (tree.elems != null) {
duke@1 1992 attribExprs(tree.elems, env, elemtype);
duke@1 1993 owntype = new ArrayType(elemtype, syms.arrayClass);
duke@1 1994 }
duke@1 1995 if (!types.isReifiable(elemtype))
duke@1 1996 log.error(tree.pos(), "generic.array.creation");
mcimadamore@1220 1997 result = check(tree, owntype, VAL, resultInfo);
duke@1 1998 }
duke@1 1999
mcimadamore@1144 2000 @Override
mcimadamore@1144 2001 public void visitLambda(JCLambda that) {
mcimadamore@1144 2002 throw new UnsupportedOperationException("Lambda expression not supported yet");
mcimadamore@1144 2003 }
mcimadamore@1144 2004
mcimadamore@1145 2005 @Override
mcimadamore@1145 2006 public void visitReference(JCMemberReference that) {
mcimadamore@1145 2007 throw new UnsupportedOperationException("Member references not supported yet");
mcimadamore@1145 2008 }
mcimadamore@1145 2009
duke@1 2010 public void visitParens(JCParens tree) {
mcimadamore@1220 2011 Type owntype = attribTree(tree.expr, env, resultInfo);
mcimadamore@1220 2012 result = check(tree, owntype, pkind(), resultInfo);
duke@1 2013 Symbol sym = TreeInfo.symbol(tree);
duke@1 2014 if (sym != null && (sym.kind&(TYP|PCK)) != 0)
duke@1 2015 log.error(tree.pos(), "illegal.start.of.type");
duke@1 2016 }
duke@1 2017
duke@1 2018 public void visitAssign(JCAssign tree) {
mcimadamore@1220 2019 Type owntype = attribTree(tree.lhs, env.dup(tree), varInfo);
duke@1 2020 Type capturedType = capture(owntype);
duke@1 2021 attribExpr(tree.rhs, env, owntype);
mcimadamore@1220 2022 result = check(tree, capturedType, VAL, resultInfo);
duke@1 2023 }
duke@1 2024
duke@1 2025 public void visitAssignop(JCAssignOp tree) {
duke@1 2026 // Attribute arguments.
mcimadamore@1220 2027 Type owntype = attribTree(tree.lhs, env, varInfo);
duke@1 2028 Type operand = attribExpr(tree.rhs, env);
duke@1 2029 // Find operator.
duke@1 2030 Symbol operator = tree.operator = rs.resolveBinaryOperator(
jjg@1127 2031 tree.pos(), tree.getTag().noAssignOp(), env,
duke@1 2032 owntype, operand);
duke@1 2033
mcimadamore@853 2034 if (operator.kind == MTH &&
mcimadamore@853 2035 !owntype.isErroneous() &&
mcimadamore@853 2036 !operand.isErroneous()) {
duke@1 2037 chk.checkOperator(tree.pos(),
duke@1 2038 (OperatorSymbol)operator,
jjg@1127 2039 tree.getTag().noAssignOp(),
duke@1 2040 owntype,
duke@1 2041 operand);
jjg@9 2042 chk.checkDivZero(tree.rhs.pos(), operator, operand);
jjg@9 2043 chk.checkCastable(tree.rhs.pos(),
jjg@9 2044 operator.type.getReturnType(),
jjg@9 2045 owntype);
duke@1 2046 }
mcimadamore@1220 2047 result = check(tree, owntype, VAL, resultInfo);
duke@1 2048 }
duke@1 2049
duke@1 2050 public void visitUnary(JCUnary tree) {
duke@1 2051 // Attribute arguments.
jjg@1127 2052 Type argtype = (tree.getTag().isIncOrDecUnaryOp())
mcimadamore@1220 2053 ? attribTree(tree.arg, env, varInfo)
duke@1 2054 : chk.checkNonVoid(tree.arg.pos(), attribExpr(tree.arg, env));
duke@1 2055
duke@1 2056 // Find operator.
duke@1 2057 Symbol operator = tree.operator =
duke@1 2058 rs.resolveUnaryOperator(tree.pos(), tree.getTag(), env, argtype);
duke@1 2059
jjg@110 2060 Type owntype = types.createErrorType(tree.type);
mcimadamore@853 2061 if (operator.kind == MTH &&
mcimadamore@853 2062 !argtype.isErroneous()) {
jjg@1127 2063 owntype = (tree.getTag().isIncOrDecUnaryOp())
duke@1 2064 ? tree.arg.type
duke@1 2065 : operator.type.getReturnType();
duke@1 2066 int opc = ((OperatorSymbol)operator).opcode;
duke@1 2067
duke@1 2068 // If the argument is constant, fold it.
duke@1 2069 if (argtype.constValue() != null) {
duke@1 2070 Type ctype = cfolder.fold1(opc, argtype);
duke@1 2071 if (ctype != null) {
duke@1 2072 owntype = cfolder.coerce(ctype, owntype);
duke@1 2073
duke@1 2074 // Remove constant types from arguments to
duke@1 2075 // conserve space. The parser will fold concatenations
duke@1 2076 // of string literals; the code here also
duke@1 2077 // gets rid of intermediate results when some of the
duke@1 2078 // operands are constant identifiers.
duke@1 2079 if (tree.arg.type.tsym == syms.stringType.tsym) {
duke@1 2080 tree.arg.type = syms.stringType;
duke@1 2081 }
duke@1 2082 }
duke@1 2083 }
duke@1 2084 }
mcimadamore@1220 2085 result = check(tree, owntype, VAL, resultInfo);
duke@1 2086 }
duke@1 2087
duke@1 2088 public void visitBinary(JCBinary tree) {
duke@1 2089 // Attribute arguments.
duke@1 2090 Type left = chk.checkNonVoid(tree.lhs.pos(), attribExpr(tree.lhs, env));
duke@1 2091 Type right = chk.checkNonVoid(tree.lhs.pos(), attribExpr(tree.rhs, env));
duke@1 2092
duke@1 2093 // Find operator.
duke@1 2094 Symbol operator = tree.operator =
duke@1 2095 rs.resolveBinaryOperator(tree.pos(), tree.getTag(), env, left, right);
duke@1 2096
jjg@110 2097 Type owntype = types.createErrorType(tree.type);
mcimadamore@853 2098 if (operator.kind == MTH &&
mcimadamore@853 2099 !left.isErroneous() &&
mcimadamore@853 2100 !right.isErroneous()) {
duke@1 2101 owntype = operator.type.getReturnType();
duke@1 2102 int opc = chk.checkOperator(tree.lhs.pos(),
duke@1 2103 (OperatorSymbol)operator,
duke@1 2104 tree.getTag(),
duke@1 2105 left,
duke@1 2106 right);
duke@1 2107
duke@1 2108 // If both arguments are constants, fold them.
duke@1 2109 if (left.constValue() != null && right.constValue() != null) {
duke@1 2110 Type ctype = cfolder.fold2(opc, left, right);
duke@1 2111 if (ctype != null) {
duke@1 2112 owntype = cfolder.coerce(ctype, owntype);
duke@1 2113
duke@1 2114 // Remove constant types from arguments to
duke@1 2115 // conserve space. The parser will fold concatenations
duke@1 2116 // of string literals; the code here also
duke@1 2117 // gets rid of intermediate results when some of the
duke@1 2118 // operands are constant identifiers.
duke@1 2119 if (tree.lhs.type.tsym == syms.stringType.tsym) {
duke@1 2120 tree.lhs.type = syms.stringType;
duke@1 2121 }
duke@1 2122 if (tree.rhs.type.tsym == syms.stringType.tsym) {
duke@1 2123 tree.rhs.type = syms.stringType;
duke@1 2124 }
duke@1 2125 }
duke@1 2126 }
duke@1 2127
duke@1 2128 // Check that argument types of a reference ==, != are
duke@1 2129 // castable to each other, (JLS???).
duke@1 2130 if ((opc == ByteCodes.if_acmpeq || opc == ByteCodes.if_acmpne)) {
duke@1 2131 if (!types.isCastable(left, right, new Warner(tree.pos()))) {
duke@1 2132 log.error(tree.pos(), "incomparable.types", left, right);
duke@1 2133 }
duke@1 2134 }
duke@1 2135
duke@1 2136 chk.checkDivZero(tree.rhs.pos(), operator, right);
duke@1 2137 }
mcimadamore@1220 2138 result = check(tree, owntype, VAL, resultInfo);
duke@1 2139 }
duke@1 2140
duke@1 2141 public void visitTypeCast(JCTypeCast tree) {
duke@1 2142 Type clazztype = attribType(tree.clazz, env);
mcimadamore@638 2143 chk.validate(tree.clazz, env, false);
mcimadamore@674 2144 //a fresh environment is required for 292 inference to work properly ---
mcimadamore@674 2145 //see Infer.instantiatePolymorphicSignatureInstance()
mcimadamore@674 2146 Env<AttrContext> localEnv = env.dup(tree);
mcimadamore@674 2147 Type exprtype = attribExpr(tree.expr, localEnv, Infer.anyPoly);
duke@1 2148 Type owntype = chk.checkCastable(tree.expr.pos(), exprtype, clazztype);
duke@1 2149 if (exprtype.constValue() != null)
duke@1 2150 owntype = cfolder.coerce(exprtype, owntype);
mcimadamore@1220 2151 result = check(tree, capture(owntype), VAL, resultInfo);
mcimadamore@1237 2152 chk.checkRedundantCast(localEnv, tree);
duke@1 2153 }
duke@1 2154
duke@1 2155 public void visitTypeTest(JCInstanceOf tree) {
duke@1 2156 Type exprtype = chk.checkNullOrRefType(
duke@1 2157 tree.expr.pos(), attribExpr(tree.expr, env));
duke@1 2158 Type clazztype = chk.checkReifiableReferenceType(
duke@1 2159 tree.clazz.pos(), attribType(tree.clazz, env));
mcimadamore@638 2160 chk.validate(tree.clazz, env, false);
duke@1 2161 chk.checkCastable(tree.expr.pos(), exprtype, clazztype);
mcimadamore@1220 2162 result = check(tree, syms.booleanType, VAL, resultInfo);
duke@1 2163 }
duke@1 2164
duke@1 2165 public void visitIndexed(JCArrayAccess tree) {
jjg@110 2166 Type owntype = types.createErrorType(tree.type);
duke@1 2167 Type atype = attribExpr(tree.indexed, env);
duke@1 2168 attribExpr(tree.index, env, syms.intType);
duke@1 2169 if (types.isArray(atype))
duke@1 2170 owntype = types.elemtype(atype);
duke@1 2171 else if (atype.tag != ERROR)
duke@1 2172 log.error(tree.pos(), "array.req.but.found", atype);
mcimadamore@1220 2173 if ((pkind() & VAR) == 0) owntype = capture(owntype);
mcimadamore@1220 2174 result = check(tree, owntype, VAR, resultInfo);
duke@1 2175 }
duke@1 2176
duke@1 2177 public void visitIdent(JCIdent tree) {
duke@1 2178 Symbol sym;
duke@1 2179 boolean varArgs = false;
duke@1 2180
duke@1 2181 // Find symbol
mcimadamore@1220 2182 if (pt().tag == METHOD || pt().tag == FORALL) {
duke@1 2183 // If we are looking for a method, the prototype `pt' will be a
duke@1 2184 // method type with the type of the call's arguments as parameters.
duke@1 2185 env.info.varArgs = false;
mcimadamore@1220 2186 sym = rs.resolveMethod(tree.pos(), env, tree.name, pt().getParameterTypes(), pt().getTypeArguments());
duke@1 2187 varArgs = env.info.varArgs;
duke@1 2188 } else if (tree.sym != null && tree.sym.kind != VAR) {
duke@1 2189 sym = tree.sym;
duke@1 2190 } else {
mcimadamore@1220 2191 sym = rs.resolveIdent(tree.pos(), env, tree.name, pkind());
duke@1 2192 }
duke@1 2193 tree.sym = sym;
duke@1 2194
duke@1 2195 // (1) Also find the environment current for the class where
duke@1 2196 // sym is defined (`symEnv').
duke@1 2197 // Only for pre-tiger versions (1.4 and earlier):
duke@1 2198 // (2) Also determine whether we access symbol out of an anonymous
duke@1 2199 // class in a this or super call. This is illegal for instance
duke@1 2200 // members since such classes don't carry a this$n link.
duke@1 2201 // (`noOuterThisPath').
duke@1 2202 Env<AttrContext> symEnv = env;
duke@1 2203 boolean noOuterThisPath = false;
duke@1 2204 if (env.enclClass.sym.owner.kind != PCK && // we are in an inner class
duke@1 2205 (sym.kind & (VAR | MTH | TYP)) != 0 &&
duke@1 2206 sym.owner.kind == TYP &&
duke@1 2207 tree.name != names._this && tree.name != names._super) {
duke@1 2208
duke@1 2209 // Find environment in which identifier is defined.
duke@1 2210 while (symEnv.outer != null &&
duke@1 2211 !sym.isMemberOf(symEnv.enclClass.sym, types)) {
duke@1 2212 if ((symEnv.enclClass.sym.flags() & NOOUTERTHIS) != 0)
duke@1 2213 noOuterThisPath = !allowAnonOuterThis;
duke@1 2214 symEnv = symEnv.outer;
duke@1 2215 }
duke@1 2216 }
duke@1 2217
duke@1 2218 // If symbol is a variable, ...
duke@1 2219 if (sym.kind == VAR) {
duke@1 2220 VarSymbol v = (VarSymbol)sym;
duke@1 2221
duke@1 2222 // ..., evaluate its initializer, if it has one, and check for
duke@1 2223 // illegal forward reference.
duke@1 2224 checkInit(tree, env, v, false);
duke@1 2225
duke@1 2226 // If we are expecting a variable (as opposed to a value), check
duke@1 2227 // that the variable is assignable in the current environment.
mcimadamore@1220 2228 if (pkind() == VAR)
duke@1 2229 checkAssignable(tree.pos(), v, null, env);
duke@1 2230 }
duke@1 2231
duke@1 2232 // In a constructor body,
duke@1 2233 // if symbol is a field or instance method, check that it is
duke@1 2234 // not accessed before the supertype constructor is called.
duke@1 2235 if ((symEnv.info.isSelfCall || noOuterThisPath) &&
duke@1 2236 (sym.kind & (VAR | MTH)) != 0 &&
duke@1 2237 sym.owner.kind == TYP &&
duke@1 2238 (sym.flags() & STATIC) == 0) {
duke@1 2239 chk.earlyRefError(tree.pos(), sym.kind == VAR ? sym : thisSym(tree.pos(), env));
duke@1 2240 }
duke@1 2241 Env<AttrContext> env1 = env;
mcimadamore@28 2242 if (sym.kind != ERR && sym.kind != TYP && sym.owner != null && sym.owner != env1.enclClass.sym) {
duke@1 2243 // If the found symbol is inaccessible, then it is
duke@1 2244 // accessed through an enclosing instance. Locate this
duke@1 2245 // enclosing instance:
duke@1 2246 while (env1.outer != null && !rs.isAccessible(env, env1.enclClass.sym.type, sym))
duke@1 2247 env1 = env1.outer;
duke@1 2248 }
mcimadamore@1220 2249 result = checkId(tree, env1.enclClass.sym.type, sym, env, resultInfo, varArgs);
duke@1 2250 }
duke@1 2251
duke@1 2252 public void visitSelect(JCFieldAccess tree) {
duke@1 2253 // Determine the expected kind of the qualifier expression.
duke@1 2254 int skind = 0;
duke@1 2255 if (tree.name == names._this || tree.name == names._super ||
duke@1 2256 tree.name == names._class)
duke@1 2257 {
duke@1 2258 skind = TYP;
duke@1 2259 } else {
mcimadamore@1220 2260 if ((pkind() & PCK) != 0) skind = skind | PCK;
mcimadamore@1220 2261 if ((pkind() & TYP) != 0) skind = skind | TYP | PCK;
mcimadamore@1220 2262 if ((pkind() & (VAL | MTH)) != 0) skind = skind | VAL | TYP;
duke@1 2263 }
duke@1 2264
duke@1 2265 // Attribute the qualifier expression, and determine its symbol (if any).
mcimadamore@1220 2266 Type site = attribTree(tree.selected, env, new ResultInfo(skind, Infer.anyPoly));
mcimadamore@1220 2267 if ((pkind() & (PCK | TYP)) == 0)
duke@1 2268 site = capture(site); // Capture field access
duke@1 2269
duke@1 2270 // don't allow T.class T[].class, etc
duke@1 2271 if (skind == TYP) {
duke@1 2272 Type elt = site;
duke@1 2273 while (elt.tag == ARRAY)
duke@1 2274 elt = ((ArrayType)elt).elemtype;
duke@1 2275 if (elt.tag == TYPEVAR) {
duke@1 2276 log.error(tree.pos(), "type.var.cant.be.deref");
jjg@110 2277 result = types.createErrorType(tree.type);
duke@1 2278 return;
duke@1 2279 }
duke@1 2280 }
duke@1 2281
duke@1 2282 // If qualifier symbol is a type or `super', assert `selectSuper'
duke@1 2283 // for the selection. This is relevant for determining whether
duke@1 2284 // protected symbols are accessible.
duke@1 2285 Symbol sitesym = TreeInfo.symbol(tree.selected);
duke@1 2286 boolean selectSuperPrev = env.info.selectSuper;
duke@1 2287 env.info.selectSuper =
duke@1 2288 sitesym != null &&
duke@1 2289 sitesym.name == names._super;
duke@1 2290
duke@1 2291 // Determine the symbol represented by the selection.
duke@1 2292 env.info.varArgs = false;
mcimadamore@1220 2293 Symbol sym = selectSym(tree, sitesym, site, env, resultInfo);
mcimadamore@1220 2294 if (sym.exists() && !isType(sym) && (pkind() & (PCK | TYP)) != 0) {
duke@1 2295 site = capture(site);
mcimadamore@1220 2296 sym = selectSym(tree, sitesym, site, env, resultInfo);
duke@1 2297 }
duke@1 2298 boolean varArgs = env.info.varArgs;
duke@1 2299 tree.sym = sym;
duke@1 2300
mcimadamore@27 2301 if (site.tag == TYPEVAR && !isType(sym) && sym.kind != ERR) {
mcimadamore@27 2302 while (site.tag == TYPEVAR) site = site.getUpperBound();
mcimadamore@27 2303 site = capture(site);
mcimadamore@27 2304 }
duke@1 2305
duke@1 2306 // If that symbol is a variable, ...
duke@1 2307 if (sym.kind == VAR) {
duke@1 2308 VarSymbol v = (VarSymbol)sym;
duke@1 2309
duke@1 2310 // ..., evaluate its initializer, if it has one, and check for
duke@1 2311 // illegal forward reference.
duke@1 2312 checkInit(tree, env, v, true);
duke@1 2313
duke@1 2314 // If we are expecting a variable (as opposed to a value), check
duke@1 2315 // that the variable is assignable in the current environment.
mcimadamore@1220 2316 if (pkind() == VAR)
duke@1 2317 checkAssignable(tree.pos(), v, tree.selected, env);
duke@1 2318 }
duke@1 2319
darcy@609 2320 if (sitesym != null &&
darcy@609 2321 sitesym.kind == VAR &&
darcy@609 2322 ((VarSymbol)sitesym).isResourceVariable() &&
darcy@609 2323 sym.kind == MTH &&
mcimadamore@954 2324 sym.name.equals(names.close) &&
darcy@609 2325 sym.overrides(syms.autoCloseableClose, sitesym.type.tsym, types, true) &&
mcimadamore@795 2326 env.info.lint.isEnabled(LintCategory.TRY)) {
mcimadamore@795 2327 log.warning(LintCategory.TRY, tree, "try.explicit.close.call");
darcy@609 2328 }
darcy@609 2329
duke@1 2330 // Disallow selecting a type from an expression
duke@1 2331 if (isType(sym) && (sitesym==null || (sitesym.kind&(TYP|PCK)) == 0)) {
mcimadamore@1220 2332 tree.type = check(tree.selected, pt(),
mcimadamore@1220 2333 sitesym == null ? VAL : sitesym.kind, new ResultInfo(TYP|PCK, pt()));
duke@1 2334 }
duke@1 2335
duke@1 2336 if (isType(sitesym)) {
duke@1 2337 if (sym.name == names._this) {
duke@1 2338 // If `C' is the currently compiled class, check that
duke@1 2339 // C.this' does not appear in a call to a super(...)
duke@1 2340 if (env.info.isSelfCall &&
duke@1 2341 site.tsym == env.enclClass.sym) {
duke@1 2342 chk.earlyRefError(tree.pos(), sym);
duke@1 2343 }
duke@1 2344 } else {
duke@1 2345 // Check if type-qualified fields or methods are static (JLS)
duke@1 2346 if ((sym.flags() & STATIC) == 0 &&
duke@1 2347 sym.name != names._super &&
duke@1 2348 (sym.kind == VAR || sym.kind == MTH)) {
duke@1 2349 rs.access(rs.new StaticError(sym),
duke@1 2350 tree.pos(), site, sym.name, true);
duke@1 2351 }
duke@1 2352 }
jjg@505 2353 } else if (sym.kind != ERR && (sym.flags() & STATIC) != 0 && sym.name != names._class) {
jjg@505 2354 // If the qualified item is not a type and the selected item is static, report
jjg@505 2355 // a warning. Make allowance for the class of an array type e.g. Object[].class)
jjg@505 2356 chk.warnStatic(tree, "static.not.qualified.by.type", Kinds.kindName(sym.kind), sym.owner);
duke@1 2357 }
duke@1 2358
duke@1 2359 // If we are selecting an instance member via a `super', ...
duke@1 2360 if (env.info.selectSuper && (sym.flags() & STATIC) == 0) {
duke@1 2361
duke@1 2362 // Check that super-qualified symbols are not abstract (JLS)
duke@1 2363 rs.checkNonAbstract(tree.pos(), sym);
duke@1 2364
duke@1 2365 if (site.isRaw()) {
duke@1 2366 // Determine argument types for site.
duke@1 2367 Type site1 = types.asSuper(env.enclClass.sym.type, site.tsym);
duke@1 2368 if (site1 != null) site = site1;
duke@1 2369 }
duke@1 2370 }
duke@1 2371
duke@1 2372 env.info.selectSuper = selectSuperPrev;
mcimadamore@1220 2373 result = checkId(tree, site, sym, env, resultInfo, varArgs);
duke@1 2374 }
duke@1 2375 //where
duke@1 2376 /** Determine symbol referenced by a Select expression,
duke@1 2377 *
duke@1 2378 * @param tree The select tree.
duke@1 2379 * @param site The type of the selected expression,
duke@1 2380 * @param env The current environment.
mcimadamore@1220 2381 * @param resultInfo The current result.
duke@1 2382 */
duke@1 2383 private Symbol selectSym(JCFieldAccess tree,
mcimadamore@829 2384 Symbol location,
duke@1 2385 Type site,
duke@1 2386 Env<AttrContext> env,
mcimadamore@1220 2387 ResultInfo resultInfo) {
duke@1 2388 DiagnosticPosition pos = tree.pos();
duke@1 2389 Name name = tree.name;
duke@1 2390 switch (site.tag) {
duke@1 2391 case PACKAGE:
duke@1 2392 return rs.access(
mcimadamore@1220 2393 rs.findIdentInPackage(env, site.tsym, name, resultInfo.pkind),
mcimadamore@829 2394 pos, location, site, name, true);
duke@1 2395 case ARRAY:
duke@1 2396 case CLASS:
mcimadamore@1220 2397 if (resultInfo.pt.tag == METHOD || resultInfo.pt.tag == FORALL) {
duke@1 2398 return rs.resolveQualifiedMethod(
mcimadamore@1220 2399 pos, env, location, site, name, resultInfo.pt.getParameterTypes(), resultInfo.pt.getTypeArguments());
duke@1 2400 } else if (name == names._this || name == names._super) {
duke@1 2401 return rs.resolveSelf(pos, env, site.tsym, name);
duke@1 2402 } else if (name == names._class) {
duke@1 2403 // In this case, we have already made sure in
duke@1 2404 // visitSelect that qualifier expression is a type.
duke@1 2405 Type t = syms.classType;
duke@1 2406 List<Type> typeargs = allowGenerics
duke@1 2407 ? List.of(types.erasure(site))
duke@1 2408 : List.<Type>nil();
duke@1 2409 t = new ClassType(t.getEnclosingType(), typeargs, t.tsym);
duke@1 2410 return new VarSymbol(
duke@1 2411 STATIC | PUBLIC | FINAL, names._class, t, site.tsym);
duke@1 2412 } else {
duke@1 2413 // We are seeing a plain identifier as selector.
mcimadamore@1220 2414 Symbol sym = rs.findIdentInType(env, site, name, resultInfo.pkind);
mcimadamore@1220 2415 if ((resultInfo.pkind & ERRONEOUS) == 0)
mcimadamore@829 2416 sym = rs.access(sym, pos, location, site, name, true);
duke@1 2417 return sym;
duke@1 2418 }
duke@1 2419 case WILDCARD:
duke@1 2420 throw new AssertionError(tree);
duke@1 2421 case TYPEVAR:
duke@1 2422 // Normally, site.getUpperBound() shouldn't be null.
duke@1 2423 // It should only happen during memberEnter/attribBase
mcimadamore@829 2424 // when determining the super type which *must* beac
duke@1 2425 // done before attributing the type variables. In
duke@1 2426 // other words, we are seeing this illegal program:
duke@1 2427 // class B<T> extends A<T.foo> {}
duke@1 2428 Symbol sym = (site.getUpperBound() != null)
mcimadamore@1220 2429 ? selectSym(tree, location, capture(site.getUpperBound()), env, resultInfo)
duke@1 2430 : null;
mcimadamore@361 2431 if (sym == null) {
duke@1 2432 log.error(pos, "type.var.cant.be.deref");
duke@1 2433 return syms.errSymbol;
duke@1 2434 } else {
mcimadamore@155 2435 Symbol sym2 = (sym.flags() & Flags.PRIVATE) != 0 ?
mcimadamore@155 2436 rs.new AccessError(env, site, sym) :
mcimadamore@155 2437 sym;
mcimadamore@829 2438 rs.access(sym2, pos, location, site, name, true);
duke@1 2439 return sym;
duke@1 2440 }
duke@1 2441 case ERROR:
duke@1 2442 // preserve identifier names through errors
jjg@110 2443 return types.createErrorType(name, site.tsym, site).tsym;
duke@1 2444 default:
duke@1 2445 // The qualifier expression is of a primitive type -- only
duke@1 2446 // .class is allowed for these.
duke@1 2447 if (name == names._class) {
duke@1 2448 // In this case, we have already made sure in Select that
duke@1 2449 // qualifier expression is a type.
duke@1 2450 Type t = syms.classType;
duke@1 2451 Type arg = types.boxedClass(site).type;
duke@1 2452 t = new ClassType(t.getEnclosingType(), List.of(arg), t.tsym);
duke@1 2453 return new VarSymbol(
duke@1 2454 STATIC | PUBLIC | FINAL, names._class, t, site.tsym);
duke@1 2455 } else {
duke@1 2456 log.error(pos, "cant.deref", site);
duke@1 2457 return syms.errSymbol;
duke@1 2458 }
duke@1 2459 }
duke@1 2460 }
duke@1 2461
duke@1 2462 /** Determine type of identifier or select expression and check that
duke@1 2463 * (1) the referenced symbol is not deprecated
duke@1 2464 * (2) the symbol's type is safe (@see checkSafe)
duke@1 2465 * (3) if symbol is a variable, check that its type and kind are
duke@1 2466 * compatible with the prototype and protokind.
duke@1 2467 * (4) if symbol is an instance field of a raw type,
duke@1 2468 * which is being assigned to, issue an unchecked warning if its
duke@1 2469 * type changes under erasure.
duke@1 2470 * (5) if symbol is an instance method of a raw type, issue an
duke@1 2471 * unchecked warning if its argument types change under erasure.
duke@1 2472 * If checks succeed:
duke@1 2473 * If symbol is a constant, return its constant type
duke@1 2474 * else if symbol is a method, return its result type
duke@1 2475 * otherwise return its type.
duke@1 2476 * Otherwise return errType.
duke@1 2477 *
duke@1 2478 * @param tree The syntax tree representing the identifier
duke@1 2479 * @param site If this is a select, the type of the selected
duke@1 2480 * expression, otherwise the type of the current class.
duke@1 2481 * @param sym The symbol representing the identifier.
duke@1 2482 * @param env The current environment.
mcimadamore@1220 2483 * @param resultInfo The expected result
duke@1 2484 */
duke@1 2485 Type checkId(JCTree tree,
duke@1 2486 Type site,
duke@1 2487 Symbol sym,
duke@1 2488 Env<AttrContext> env,
mcimadamore@1220 2489 ResultInfo resultInfo,
duke@1 2490 boolean useVarargs) {
mcimadamore@1220 2491 if (resultInfo.pt.isErroneous()) return types.createErrorType(site);
duke@1 2492 Type owntype; // The computed type of this identifier occurrence.
duke@1 2493 switch (sym.kind) {
duke@1 2494 case TYP:
duke@1 2495 // For types, the computed type equals the symbol's type,
duke@1 2496 // except for two situations:
duke@1 2497 owntype = sym.type;
duke@1 2498 if (owntype.tag == CLASS) {
duke@1 2499 Type ownOuter = owntype.getEnclosingType();
duke@1 2500
duke@1 2501 // (a) If the symbol's type is parameterized, erase it
duke@1 2502 // because no type parameters were given.
duke@1 2503 // We recover generic outer type later in visitTypeApply.
duke@1 2504 if (owntype.tsym.type.getTypeArguments().nonEmpty()) {
duke@1 2505 owntype = types.erasure(owntype);
duke@1 2506 }
duke@1 2507
duke@1 2508 // (b) If the symbol's type is an inner class, then
duke@1 2509 // we have to interpret its outer type as a superclass
duke@1 2510 // of the site type. Example:
duke@1 2511 //
duke@1 2512 // class Tree<A> { class Visitor { ... } }
duke@1 2513 // class PointTree extends Tree<Point> { ... }
duke@1 2514 // ...PointTree.Visitor...
duke@1 2515 //
duke@1 2516 // Then the type of the last expression above is
duke@1 2517 // Tree<Point>.Visitor.
duke@1 2518 else if (ownOuter.tag == CLASS && site != ownOuter) {
duke@1 2519 Type normOuter = site;
duke@1 2520 if (normOuter.tag == CLASS)
duke@1 2521 normOuter = types.asEnclosingSuper(site, ownOuter.tsym);
duke@1 2522 if (normOuter == null) // perhaps from an import
duke@1 2523 normOuter = types.erasure(ownOuter);
duke@1 2524 if (normOuter != ownOuter)
duke@1 2525 owntype = new ClassType(
duke@1 2526 normOuter, List.<Type>nil(), owntype.tsym);
duke@1 2527 }
duke@1 2528 }
duke@1 2529 break;
duke@1 2530 case VAR:
duke@1 2531 VarSymbol v = (VarSymbol)sym;
duke@1 2532 // Test (4): if symbol is an instance field of a raw type,
duke@1 2533 // which is being assigned to, issue an unchecked warning if
duke@1 2534 // its type changes under erasure.
duke@1 2535 if (allowGenerics &&
mcimadamore@1220 2536 resultInfo.pkind == VAR &&
duke@1 2537 v.owner.kind == TYP &&
duke@1 2538 (v.flags() & STATIC) == 0 &&
duke@1 2539 (site.tag == CLASS || site.tag == TYPEVAR)) {
duke@1 2540 Type s = types.asOuterSuper(site, v.owner);
duke@1 2541 if (s != null &&
duke@1 2542 s.isRaw() &&
duke@1 2543 !types.isSameType(v.type, v.erasure(types))) {
duke@1 2544 chk.warnUnchecked(tree.pos(),
duke@1 2545 "unchecked.assign.to.var",
duke@1 2546 v, s);
duke@1 2547 }
duke@1 2548 }
duke@1 2549 // The computed type of a variable is the type of the
duke@1 2550 // variable symbol, taken as a member of the site type.
duke@1 2551 owntype = (sym.owner.kind == TYP &&
duke@1 2552 sym.name != names._this && sym.name != names._super)
duke@1 2553 ? types.memberType(site, sym)
duke@1 2554 : sym.type;
duke@1 2555
duke@1 2556 // If the variable is a constant, record constant value in
duke@1 2557 // computed type.
duke@1 2558 if (v.getConstValue() != null && isStaticReference(tree))
duke@1 2559 owntype = owntype.constType(v.getConstValue());
duke@1 2560
mcimadamore@1220 2561 if (resultInfo.pkind == VAL) {
duke@1 2562 owntype = capture(owntype); // capture "names as expressions"
duke@1 2563 }
duke@1 2564 break;
duke@1 2565 case MTH: {
duke@1 2566 JCMethodInvocation app = (JCMethodInvocation)env.tree;
mcimadamore@1268 2567 owntype = checkMethod(site, sym,
mcimadamore@1268 2568 new ResultInfo(VAL, resultInfo.pt.getReturnType(), resultInfo.checkContext),
mcimadamore@1268 2569 env, app.args, resultInfo.pt.getParameterTypes(),
mcimadamore@1268 2570 resultInfo.pt.getTypeArguments(), env.info.varArgs);
duke@1 2571 break;
duke@1 2572 }
duke@1 2573 case PCK: case ERR:
duke@1 2574 owntype = sym.type;
duke@1 2575 break;
duke@1 2576 default:
duke@1 2577 throw new AssertionError("unexpected kind: " + sym.kind +
duke@1 2578 " in tree " + tree);
duke@1 2579 }
duke@1 2580
duke@1 2581 // Test (1): emit a `deprecation' warning if symbol is deprecated.
duke@1 2582 // (for constructors, the error was given when the constructor was
duke@1 2583 // resolved)
mcimadamore@852 2584
mcimadamore@852 2585 if (sym.name != names.init) {
mcimadamore@852 2586 chk.checkDeprecated(tree.pos(), env.info.scope.owner, sym);
mcimadamore@852 2587 chk.checkSunAPI(tree.pos(), sym);
jjg@377 2588 }
duke@1 2589
duke@1 2590 // Test (3): if symbol is a variable, check that its type and
duke@1 2591 // kind are compatible with the prototype and protokind.
mcimadamore@1220 2592 return check(tree, owntype, sym.kind, resultInfo);
duke@1 2593 }
duke@1 2594
duke@1 2595 /** Check that variable is initialized and evaluate the variable's
duke@1 2596 * initializer, if not yet done. Also check that variable is not
duke@1 2597 * referenced before it is defined.
duke@1 2598 * @param tree The tree making up the variable reference.
duke@1 2599 * @param env The current environment.
duke@1 2600 * @param v The variable's symbol.
duke@1 2601 */
duke@1 2602 private void checkInit(JCTree tree,
duke@1 2603 Env<AttrContext> env,
duke@1 2604 VarSymbol v,
duke@1 2605 boolean onlyWarning) {
duke@1 2606 // System.err.println(v + " " + ((v.flags() & STATIC) != 0) + " " +
duke@1 2607 // tree.pos + " " + v.pos + " " +
duke@1 2608 // Resolve.isStatic(env));//DEBUG
duke@1 2609
duke@1 2610 // A forward reference is diagnosed if the declaration position
duke@1 2611 // of the variable is greater than the current tree position
duke@1 2612 // and the tree and variable definition occur in the same class
duke@1 2613 // definition. Note that writes don't count as references.
duke@1 2614 // This check applies only to class and instance
duke@1 2615 // variables. Local variables follow different scope rules,
duke@1 2616 // and are subject to definite assignment checking.
mcimadamore@94 2617 if ((env.info.enclVar == v || v.pos > tree.pos) &&
duke@1 2618 v.owner.kind == TYP &&
mcimadamore@1297 2619 canOwnInitializer(owner(env)) &&
duke@1 2620 v.owner == env.info.scope.owner.enclClass() &&
duke@1 2621 ((v.flags() & STATIC) != 0) == Resolve.isStatic(env) &&
jjg@1127 2622 (!env.tree.hasTag(ASSIGN) ||
duke@1 2623 TreeInfo.skipParens(((JCAssign) env.tree).lhs) != tree)) {
mcimadamore@94 2624 String suffix = (env.info.enclVar == v) ?
mcimadamore@94 2625 "self.ref" : "forward.ref";
mcimadamore@18 2626 if (!onlyWarning || isStaticEnumField(v)) {
mcimadamore@94 2627 log.error(tree.pos(), "illegal." + suffix);
duke@1 2628 } else if (useBeforeDeclarationWarning) {
mcimadamore@94 2629 log.warning(tree.pos(), suffix, v);
duke@1 2630 }
duke@1 2631 }
duke@1 2632
duke@1 2633 v.getConstValue(); // ensure initializer is evaluated
duke@1 2634
duke@1 2635 checkEnumInitializer(tree, env, v);
duke@1 2636 }
duke@1 2637
duke@1 2638 /**
duke@1 2639 * Check for illegal references to static members of enum. In
duke@1 2640 * an enum type, constructors and initializers may not
duke@1 2641 * reference its static members unless they are constant.
duke@1 2642 *
duke@1 2643 * @param tree The tree making up the variable reference.
duke@1 2644 * @param env The current environment.
duke@1 2645 * @param v The variable's symbol.
jjh@972 2646 * @jls section 8.9 Enums
duke@1 2647 */
duke@1 2648 private void checkEnumInitializer(JCTree tree, Env<AttrContext> env, VarSymbol v) {
jjh@972 2649 // JLS:
duke@1 2650 //
duke@1 2651 // "It is a compile-time error to reference a static field
duke@1 2652 // of an enum type that is not a compile-time constant
duke@1 2653 // (15.28) from constructors, instance initializer blocks,
duke@1 2654 // or instance variable initializer expressions of that
duke@1 2655 // type. It is a compile-time error for the constructors,
duke@1 2656 // instance initializer blocks, or instance variable
duke@1 2657 // initializer expressions of an enum constant e to refer
duke@1 2658 // to itself or to an enum constant of the same type that
duke@1 2659 // is declared to the right of e."
mcimadamore@18 2660 if (isStaticEnumField(v)) {
duke@1 2661 ClassSymbol enclClass = env.info.scope.owner.enclClass();
duke@1 2662
duke@1 2663 if (enclClass == null || enclClass.owner == null)
duke@1 2664 return;
duke@1 2665
duke@1 2666 // See if the enclosing class is the enum (or a
duke@1 2667 // subclass thereof) declaring v. If not, this
duke@1 2668 // reference is OK.
duke@1 2669 if (v.owner != enclClass && !types.isSubtype(enclClass.type, v.owner.type))
duke@1 2670 return;
duke@1 2671
duke@1 2672 // If the reference isn't from an initializer, then
duke@1 2673 // the reference is OK.
duke@1 2674 if (!Resolve.isInitializer(env))
duke@1 2675 return;
duke@1 2676
duke@1 2677 log.error(tree.pos(), "illegal.enum.static.ref");
duke@1 2678 }
duke@1 2679 }
duke@1 2680
mcimadamore@18 2681 /** Is the given symbol a static, non-constant field of an Enum?
mcimadamore@18 2682 * Note: enum literals should not be regarded as such
mcimadamore@18 2683 */
mcimadamore@18 2684 private boolean isStaticEnumField(VarSymbol v) {
mcimadamore@18 2685 return Flags.isEnum(v.owner) &&
mcimadamore@18 2686 Flags.isStatic(v) &&
mcimadamore@18 2687 !Flags.isConstant(v) &&
mcimadamore@18 2688 v.name != names._class;
duke@1 2689 }
duke@1 2690
duke@1 2691 /** Can the given symbol be the owner of code which forms part
duke@1 2692 * if class initialization? This is the case if the symbol is
duke@1 2693 * a type or field, or if the symbol is the synthetic method.
duke@1 2694 * owning a block.
duke@1 2695 */
duke@1 2696 private boolean canOwnInitializer(Symbol sym) {
duke@1 2697 return
duke@1 2698 (sym.kind & (VAR | TYP)) != 0 ||
duke@1 2699 (sym.kind == MTH && (sym.flags() & BLOCK) != 0);
duke@1 2700 }
duke@1 2701
duke@1 2702 Warner noteWarner = new Warner();
duke@1 2703
duke@1 2704 /**
mcimadamore@1219 2705 * Check that method arguments conform to its instantiation.
duke@1 2706 **/
duke@1 2707 public Type checkMethod(Type site,
duke@1 2708 Symbol sym,
mcimadamore@1268 2709 ResultInfo resultInfo,
mcimadamore@1268 2710 Env<AttrContext> env,
mcimadamore@1268 2711 final List<JCExpression> argtrees,
mcimadamore@1268 2712 List<Type> argtypes,
mcimadamore@1268 2713 List<Type> typeargtypes,
mcimadamore@1268 2714 boolean useVarargs) {
duke@1 2715 // Test (5): if symbol is an instance method of a raw type, issue
duke@1 2716 // an unchecked warning if its argument types change under erasure.
duke@1 2717 if (allowGenerics &&
duke@1 2718 (sym.flags() & STATIC) == 0 &&
duke@1 2719 (site.tag == CLASS || site.tag == TYPEVAR)) {
duke@1 2720 Type s = types.asOuterSuper(site, sym.owner);
duke@1 2721 if (s != null && s.isRaw() &&
duke@1 2722 !types.isSameTypes(sym.type.getParameterTypes(),
duke@1 2723 sym.erasure(types).getParameterTypes())) {
duke@1 2724 chk.warnUnchecked(env.tree.pos(),
duke@1 2725 "unchecked.call.mbr.of.raw.type",
duke@1 2726 sym, s);
duke@1 2727 }
duke@1 2728 }
duke@1 2729
duke@1 2730 // Compute the identifier's instantiated type.
duke@1 2731 // For methods, we need to compute the instance type by
duke@1 2732 // Resolve.instantiate from the symbol's type as well as
duke@1 2733 // any type arguments and value arguments.
mcimadamore@795 2734 noteWarner.clear();
mcimadamore@1296 2735 try {
mcimadamore@1296 2736 Type owntype = rs.rawInstantiate(
mcimadamore@1296 2737 env,
mcimadamore@1296 2738 site,
mcimadamore@1296 2739 sym,
mcimadamore@1296 2740 resultInfo,
mcimadamore@1296 2741 argtypes,
mcimadamore@1296 2742 typeargtypes,
mcimadamore@1296 2743 allowBoxing,
mcimadamore@1296 2744 useVarargs,
mcimadamore@1296 2745 noteWarner);
mcimadamore@1296 2746
mcimadamore@1296 2747 return chk.checkMethod(owntype, sym, env, argtrees, argtypes, useVarargs,
mcimadamore@1296 2748 noteWarner.hasNonSilentLint(LintCategory.UNCHECKED));
mcimadamore@1296 2749 } catch (Infer.InferenceException ex) {
mcimadamore@1296 2750 //invalid target type - propagate exception outwards or report error
mcimadamore@1296 2751 //depending on the current check context
mcimadamore@1296 2752 resultInfo.checkContext.report(env.tree.pos(), ex.getDiagnostic());
mcimadamore@1296 2753 return types.createErrorType(site);
mcimadamore@1296 2754 } catch (Resolve.InapplicableMethodException ex) {
mcimadamore@1296 2755 Assert.error();
mcimadamore@1296 2756 return null;
mcimadamore@1296 2757 }
mcimadamore@1219 2758 }
mcimadamore@1219 2759
mcimadamore@1219 2760 /**
mcimadamore@1219 2761 * Check that constructor arguments conform to its instantiation.
mcimadamore@1219 2762 **/
mcimadamore@1219 2763 public Type checkConstructor(Type site,
mcimadamore@1219 2764 Symbol sym,
mcimadamore@1219 2765 Env<AttrContext> env,
mcimadamore@1219 2766 final List<JCExpression> argtrees,
mcimadamore@1219 2767 List<Type> argtypes,
mcimadamore@1219 2768 List<Type> typeargtypes,
mcimadamore@1219 2769 boolean useVarargs) {
mcimadamore@1268 2770 Type owntype = checkMethod(site, sym, new ResultInfo(VAL, syms.voidType), env, argtrees, argtypes, typeargtypes, useVarargs);
mcimadamore@1219 2771 chk.checkType(env.tree.pos(), owntype.getReturnType(), syms.voidType);
duke@1 2772 return owntype;
duke@1 2773 }
duke@1 2774
duke@1 2775 public void visitLiteral(JCLiteral tree) {
duke@1 2776 result = check(
mcimadamore@1220 2777 tree, litType(tree.typetag).constType(tree.value), VAL, resultInfo);
duke@1 2778 }
duke@1 2779 //where
duke@1 2780 /** Return the type of a literal with given type tag.
duke@1 2781 */
duke@1 2782 Type litType(int tag) {
duke@1 2783 return (tag == TypeTags.CLASS) ? syms.stringType : syms.typeOfTag[tag];
duke@1 2784 }
duke@1 2785
duke@1 2786 public void visitTypeIdent(JCPrimitiveTypeTree tree) {
mcimadamore@1220 2787 result = check(tree, syms.typeOfTag[tree.typetag], TYP, resultInfo);
duke@1 2788 }
duke@1 2789
duke@1 2790 public void visitTypeArray(JCArrayTypeTree tree) {
duke@1 2791 Type etype = attribType(tree.elemtype, env);
duke@1 2792 Type type = new ArrayType(etype, syms.arrayClass);
mcimadamore@1220 2793 result = check(tree, type, TYP, resultInfo);
duke@1 2794 }
duke@1 2795
duke@1 2796 /** Visitor method for parameterized types.
duke@1 2797 * Bound checking is left until later, since types are attributed
duke@1 2798 * before supertype structure is completely known
duke@1 2799 */
duke@1 2800 public void visitTypeApply(JCTypeApply tree) {
jjg@110 2801 Type owntype = types.createErrorType(tree.type);
duke@1 2802
duke@1 2803 // Attribute functor part of application and make sure it's a class.
duke@1 2804 Type clazztype = chk.checkClassType(tree.clazz.pos(), attribType(tree.clazz, env));
duke@1 2805
duke@1 2806 // Attribute type parameters
duke@1 2807 List<Type> actuals = attribTypes(tree.arguments, env);
duke@1 2808
duke@1 2809 if (clazztype.tag == CLASS) {
duke@1 2810 List<Type> formals = clazztype.tsym.type.getTypeArguments();
mcimadamore@1060 2811 if (actuals.isEmpty()) //diamond
mcimadamore@1060 2812 actuals = formals;
mcimadamore@1060 2813
mcimadamore@1060 2814 if (actuals.length() == formals.length()) {
duke@1 2815 List<Type> a = actuals;
duke@1 2816 List<Type> f = formals;
duke@1 2817 while (a.nonEmpty()) {
duke@1 2818 a.head = a.head.withTypeVar(f.head);
duke@1 2819 a = a.tail;
duke@1 2820 f = f.tail;
duke@1 2821 }
duke@1 2822 // Compute the proper generic outer
duke@1 2823 Type clazzOuter = clazztype.getEnclosingType();
duke@1 2824 if (clazzOuter.tag == CLASS) {
duke@1 2825 Type site;
jjg@308 2826 JCExpression clazz = TreeInfo.typeIn(tree.clazz);
jjg@1127 2827 if (clazz.hasTag(IDENT)) {
duke@1 2828 site = env.enclClass.sym.type;
jjg@1127 2829 } else if (clazz.hasTag(SELECT)) {
jjg@308 2830 site = ((JCFieldAccess) clazz).selected.type;
duke@1 2831 } else throw new AssertionError(""+tree);
duke@1 2832 if (clazzOuter.tag == CLASS && site != clazzOuter) {
duke@1 2833 if (site.tag == CLASS)
duke@1 2834 site = types.asOuterSuper(site, clazzOuter.tsym);
duke@1 2835 if (site == null)
duke@1 2836 site = types.erasure(clazzOuter);
duke@1 2837 clazzOuter = site;
duke@1 2838 }
duke@1 2839 }
mcimadamore@536 2840 owntype = new ClassType(clazzOuter, actuals, clazztype.tsym);
duke@1 2841 } else {
duke@1 2842 if (formals.length() != 0) {
duke@1 2843 log.error(tree.pos(), "wrong.number.type.args",
duke@1 2844 Integer.toString(formals.length()));
duke@1 2845 } else {
duke@1 2846 log.error(tree.pos(), "type.doesnt.take.params", clazztype.tsym);
duke@1 2847 }
jjg@110 2848 owntype = types.createErrorType(tree.type);
duke@1 2849 }
duke@1 2850 }
mcimadamore@1220 2851 result = check(tree, owntype, TYP, resultInfo);
duke@1 2852 }
duke@1 2853
darcy@969 2854 public void visitTypeUnion(JCTypeUnion tree) {
mcimadamore@774 2855 ListBuffer<Type> multicatchTypes = ListBuffer.lb();
jjg@988 2856 ListBuffer<Type> all_multicatchTypes = null; // lazy, only if needed
mcimadamore@774 2857 for (JCExpression typeTree : tree.alternatives) {
mcimadamore@774 2858 Type ctype = attribType(typeTree, env);
mcimadamore@774 2859 ctype = chk.checkType(typeTree.pos(),
mcimadamore@774 2860 chk.checkClassType(typeTree.pos(), ctype),
mcimadamore@774 2861 syms.throwableType);
mcimadamore@949 2862 if (!ctype.isErroneous()) {
darcy@969 2863 //check that alternatives of a union type are pairwise
mcimadamore@949 2864 //unrelated w.r.t. subtyping
mcimadamore@949 2865 if (chk.intersects(ctype, multicatchTypes.toList())) {
mcimadamore@949 2866 for (Type t : multicatchTypes) {
mcimadamore@949 2867 boolean sub = types.isSubtype(ctype, t);
mcimadamore@949 2868 boolean sup = types.isSubtype(t, ctype);
mcimadamore@949 2869 if (sub || sup) {
mcimadamore@949 2870 //assume 'a' <: 'b'
mcimadamore@949 2871 Type a = sub ? ctype : t;
mcimadamore@949 2872 Type b = sub ? t : ctype;
mcimadamore@949 2873 log.error(typeTree.pos(), "multicatch.types.must.be.disjoint", a, b);
mcimadamore@949 2874 }
mcimadamore@949 2875 }
mcimadamore@949 2876 }
mcimadamore@949 2877 multicatchTypes.append(ctype);
jjg@988 2878 if (all_multicatchTypes != null)
jjg@988 2879 all_multicatchTypes.append(ctype);
jjg@988 2880 } else {
jjg@988 2881 if (all_multicatchTypes == null) {
jjg@988 2882 all_multicatchTypes = ListBuffer.lb();
jjg@988 2883 all_multicatchTypes.appendList(multicatchTypes);
jjg@988 2884 }
jjg@988 2885 all_multicatchTypes.append(ctype);
mcimadamore@949 2886 }
mcimadamore@774 2887 }
mcimadamore@1220 2888 Type t = check(tree, types.lub(multicatchTypes.toList()), TYP, resultInfo);
jjg@988 2889 if (t.tag == CLASS) {
jjg@988 2890 List<Type> alternatives =
jjg@988 2891 ((all_multicatchTypes == null) ? multicatchTypes : all_multicatchTypes).toList();
jjg@988 2892 t = new UnionClassType((ClassType) t, alternatives);
jjg@988 2893 }
jjg@988 2894 tree.type = result = t;
mcimadamore@550 2895 }
mcimadamore@550 2896
duke@1 2897 public void visitTypeParameter(JCTypeParameter tree) {
duke@1 2898 TypeVar a = (TypeVar)tree.type;
duke@1 2899 Set<Type> boundSet = new HashSet<Type>();
duke@1 2900 if (a.bound.isErroneous())
duke@1 2901 return;
duke@1 2902 List<Type> bs = types.getBounds(a);
duke@1 2903 if (tree.bounds.nonEmpty()) {
duke@1 2904 // accept class or interface or typevar as first bound.
duke@1 2905 Type b = checkBase(bs.head, tree.bounds.head, env, false, false, false);
duke@1 2906 boundSet.add(types.erasure(b));
mcimadamore@159 2907 if (b.isErroneous()) {
mcimadamore@159 2908 a.bound = b;
mcimadamore@159 2909 }
mcimadamore@159 2910 else if (b.tag == TYPEVAR) {
duke@1 2911 // if first bound was a typevar, do not accept further bounds.
duke@1 2912 if (tree.bounds.tail.nonEmpty()) {
duke@1 2913 log.error(tree.bounds.tail.head.pos(),
duke@1 2914 "type.var.may.not.be.followed.by.other.bounds");
duke@1 2915 tree.bounds = List.of(tree.bounds.head);
mcimadamore@7 2916 a.bound = bs.head;
duke@1 2917 }
duke@1 2918 } else {
duke@1 2919 // if first bound was a class or interface, accept only interfaces
duke@1 2920 // as further bounds.
duke@1 2921 for (JCExpression bound : tree.bounds.tail) {
duke@1 2922 bs = bs.tail;
duke@1 2923 Type i = checkBase(bs.head, bound, env, false, true, false);
mcimadamore@159 2924 if (i.isErroneous())
mcimadamore@159 2925 a.bound = i;
mcimadamore@159 2926 else if (i.tag == CLASS)
duke@1 2927 chk.checkNotRepeated(bound.pos(), types.erasure(i), boundSet);
duke@1 2928 }
duke@1 2929 }
duke@1 2930 }
duke@1 2931 bs = types.getBounds(a);
duke@1 2932
duke@1 2933 // in case of multiple bounds ...
duke@1 2934 if (bs.length() > 1) {
duke@1 2935 // ... the variable's bound is a class type flagged COMPOUND
duke@1 2936 // (see comment for TypeVar.bound).
duke@1 2937 // In this case, generate a class tree that represents the
duke@1 2938 // bound class, ...
jjg@904 2939 JCExpression extending;
duke@1 2940 List<JCExpression> implementing;
duke@1 2941 if ((bs.head.tsym.flags() & INTERFACE) == 0) {
duke@1 2942 extending = tree.bounds.head;
duke@1 2943 implementing = tree.bounds.tail;
duke@1 2944 } else {
duke@1 2945 extending = null;
duke@1 2946 implementing = tree.bounds;
duke@1 2947 }
duke@1 2948 JCClassDecl cd = make.at(tree.pos).ClassDef(
duke@1 2949 make.Modifiers(PUBLIC | ABSTRACT),
duke@1 2950 tree.name, List.<JCTypeParameter>nil(),
duke@1 2951 extending, implementing, List.<JCTree>nil());
duke@1 2952
duke@1 2953 ClassSymbol c = (ClassSymbol)a.getUpperBound().tsym;
jjg@816 2954 Assert.check((c.flags() & COMPOUND) != 0);
duke@1 2955 cd.sym = c;
duke@1 2956 c.sourcefile = env.toplevel.sourcefile;
duke@1 2957
duke@1 2958 // ... and attribute the bound class
duke@1 2959 c.flags_field |= UNATTRIBUTED;
duke@1 2960 Env<AttrContext> cenv = enter.classEnv(cd, env);
duke@1 2961 enter.typeEnvs.put(c, cenv);
duke@1 2962 }
duke@1 2963 }
duke@1 2964
duke@1 2965
duke@1 2966 public void visitWildcard(JCWildcard tree) {
duke@1 2967 //- System.err.println("visitWildcard("+tree+");");//DEBUG
duke@1 2968 Type type = (tree.kind.kind == BoundKind.UNBOUND)
duke@1 2969 ? syms.objectType
duke@1 2970 : attribType(tree.inner, env);
duke@1 2971 result = check(tree, new WildcardType(chk.checkRefType(tree.pos(), type),
duke@1 2972 tree.kind.kind,
duke@1 2973 syms.boundClass),
mcimadamore@1220 2974 TYP, resultInfo);
duke@1 2975 }
duke@1 2976
duke@1 2977 public void visitAnnotation(JCAnnotation tree) {
mcimadamore@1220 2978 log.error(tree.pos(), "annotation.not.valid.for.type", pt());
duke@1 2979 result = tree.type = syms.errType;
duke@1 2980 }
duke@1 2981
duke@1 2982 public void visitErroneous(JCErroneous tree) {
duke@1 2983 if (tree.errs != null)
duke@1 2984 for (JCTree err : tree.errs)
mcimadamore@1220 2985 attribTree(err, env, new ResultInfo(ERR, pt()));
duke@1 2986 result = tree.type = syms.errType;
duke@1 2987 }
duke@1 2988
duke@1 2989 /** Default visitor method for all other trees.
duke@1 2990 */
duke@1 2991 public void visitTree(JCTree tree) {
duke@1 2992 throw new AssertionError();
duke@1 2993 }
duke@1 2994
jjg@931 2995 /**
jjg@931 2996 * Attribute an env for either a top level tree or class declaration.
jjg@931 2997 */
jjg@931 2998 public void attrib(Env<AttrContext> env) {
jjg@1127 2999 if (env.tree.hasTag(TOPLEVEL))
jjg@931 3000 attribTopLevel(env);
jjg@931 3001 else
jjg@931 3002 attribClass(env.tree.pos(), env.enclClass.sym);
jjg@931 3003 }
jjg@931 3004
jjg@931 3005 /**
jjg@931 3006 * Attribute a top level tree. These trees are encountered when the
jjg@931 3007 * package declaration has annotations.
jjg@931 3008 */
jjg@931 3009 public void attribTopLevel(Env<AttrContext> env) {
jjg@931 3010 JCCompilationUnit toplevel = env.toplevel;
jjg@931 3011 try {
jjg@931 3012 annotate.flush();
jjg@931 3013 chk.validateAnnotations(toplevel.packageAnnotations, toplevel.packge);
jjg@931 3014 } catch (CompletionFailure ex) {
jjg@931 3015 chk.completionError(toplevel.pos(), ex);
jjg@931 3016 }
jjg@931 3017 }
jjg@931 3018
duke@1 3019 /** Main method: attribute class definition associated with given class symbol.
duke@1 3020 * reporting completion failures at the given position.
duke@1 3021 * @param pos The source position at which completion errors are to be
duke@1 3022 * reported.
duke@1 3023 * @param c The class symbol whose definition will be attributed.
duke@1 3024 */
duke@1 3025 public void attribClass(DiagnosticPosition pos, ClassSymbol c) {
duke@1 3026 try {
duke@1 3027 annotate.flush();
duke@1 3028 attribClass(c);
duke@1 3029 } catch (CompletionFailure ex) {
duke@1 3030 chk.completionError(pos, ex);
duke@1 3031 }
duke@1 3032 }
duke@1 3033
duke@1 3034 /** Attribute class definition associated with given class symbol.
duke@1 3035 * @param c The class symbol whose definition will be attributed.
duke@1 3036 */
duke@1 3037 void attribClass(ClassSymbol c) throws CompletionFailure {
duke@1 3038 if (c.type.tag == ERROR) return;
duke@1 3039
duke@1 3040 // Check for cycles in the inheritance graph, which can arise from
duke@1 3041 // ill-formed class files.
duke@1 3042 chk.checkNonCyclic(null, c.type);
duke@1 3043
duke@1 3044 Type st = types.supertype(c.type);
duke@1 3045 if ((c.flags_field & Flags.COMPOUND) == 0) {
duke@1 3046 // First, attribute superclass.
duke@1 3047 if (st.tag == CLASS)
duke@1 3048 attribClass((ClassSymbol)st.tsym);
duke@1 3049
duke@1 3050 // Next attribute owner, if it is a class.
duke@1 3051 if (c.owner.kind == TYP && c.owner.type.tag == CLASS)
duke@1 3052 attribClass((ClassSymbol)c.owner);
duke@1 3053 }
duke@1 3054
duke@1 3055 // The previous operations might have attributed the current class
duke@1 3056 // if there was a cycle. So we test first whether the class is still
duke@1 3057 // UNATTRIBUTED.
duke@1 3058 if ((c.flags_field & UNATTRIBUTED) != 0) {
duke@1 3059 c.flags_field &= ~UNATTRIBUTED;
duke@1 3060
duke@1 3061 // Get environment current at the point of class definition.
duke@1 3062 Env<AttrContext> env = enter.typeEnvs.get(c);
duke@1 3063
duke@1 3064 // The info.lint field in the envs stored in enter.typeEnvs is deliberately uninitialized,
duke@1 3065 // because the annotations were not available at the time the env was created. Therefore,
duke@1 3066 // we look up the environment chain for the first enclosing environment for which the
duke@1 3067 // lint value is set. Typically, this is the parent env, but might be further if there
duke@1 3068 // are any envs created as a result of TypeParameter nodes.
duke@1 3069 Env<AttrContext> lintEnv = env;
duke@1 3070 while (lintEnv.info.lint == null)
duke@1 3071 lintEnv = lintEnv.next;
duke@1 3072
duke@1 3073 // Having found the enclosing lint value, we can initialize the lint value for this class
jfranck@1313 3074 env.info.lint = lintEnv.info.lint.augment(c.annotations, c.flags());
duke@1 3075
duke@1 3076 Lint prevLint = chk.setLint(env.info.lint);
duke@1 3077 JavaFileObject prev = log.useSource(c.sourcefile);
duke@1 3078
duke@1 3079 try {
duke@1 3080 // java.lang.Enum may not be subclassed by a non-enum
duke@1 3081 if (st.tsym == syms.enumSym &&
duke@1 3082 ((c.flags_field & (Flags.ENUM|Flags.COMPOUND)) == 0))
duke@1 3083 log.error(env.tree.pos(), "enum.no.subclassing");
duke@1 3084
duke@1 3085 // Enums may not be extended by source-level classes
duke@1 3086 if (st.tsym != null &&
duke@1 3087 ((st.tsym.flags_field & Flags.ENUM) != 0) &&
mcimadamore@82 3088 ((c.flags_field & (Flags.ENUM | Flags.COMPOUND)) == 0) &&
duke@1 3089 !target.compilerBootstrap(c)) {
duke@1 3090 log.error(env.tree.pos(), "enum.types.not.extensible");
duke@1 3091 }
duke@1 3092 attribClassBody(env, c);
duke@1 3093
duke@1 3094 chk.checkDeprecatedAnnotation(env.tree.pos(), c);
duke@1 3095 } finally {
duke@1 3096 log.useSource(prev);
duke@1 3097 chk.setLint(prevLint);
duke@1 3098 }
duke@1 3099
duke@1 3100 }
duke@1 3101 }
duke@1 3102
duke@1 3103 public void visitImport(JCImport tree) {
duke@1 3104 // nothing to do
duke@1 3105 }
duke@1 3106
duke@1 3107 /** Finish the attribution of a class. */
duke@1 3108 private void attribClassBody(Env<AttrContext> env, ClassSymbol c) {
duke@1 3109 JCClassDecl tree = (JCClassDecl)env.tree;
jjg@816 3110 Assert.check(c == tree.sym);
duke@1 3111
duke@1 3112 // Validate annotations
duke@1 3113 chk.validateAnnotations(tree.mods.annotations, c);
duke@1 3114
duke@1 3115 // Validate type parameters, supertype and interfaces.
mcimadamore@42 3116 attribBounds(tree.typarams);
mcimadamore@537 3117 if (!c.isAnonymous()) {
mcimadamore@537 3118 //already checked if anonymous
mcimadamore@537 3119 chk.validate(tree.typarams, env);
mcimadamore@537 3120 chk.validate(tree.extending, env);
mcimadamore@537 3121 chk.validate(tree.implementing, env);
mcimadamore@537 3122 }
duke@1 3123
duke@1 3124 // If this is a non-abstract class, check that it has no abstract
duke@1 3125 // methods or unimplemented methods of an implemented interface.
duke@1 3126 if ((c.flags() & (ABSTRACT | INTERFACE)) == 0) {
duke@1 3127 if (!relax)
duke@1 3128 chk.checkAllDefined(tree.pos(), c);
duke@1 3129 }
duke@1 3130
duke@1 3131 if ((c.flags() & ANNOTATION) != 0) {
duke@1 3132 if (tree.implementing.nonEmpty())
duke@1 3133 log.error(tree.implementing.head.pos(),
duke@1 3134 "cant.extend.intf.annotation");
duke@1 3135 if (tree.typarams.nonEmpty())
duke@1 3136 log.error(tree.typarams.head.pos(),
duke@1 3137 "intf.annotation.cant.have.type.params");
jfranck@1313 3138
jfranck@1313 3139 // If this annotation has a @ContainedBy, validate
jfranck@1313 3140 Attribute.Compound containedBy = c.attribute(syms.containedByType.tsym);
jfranck@1313 3141 if (containedBy != null) {
jfranck@1313 3142 // get diagnositc position for error reporting
jfranck@1313 3143 DiagnosticPosition cbPos = getDiagnosticPosition(tree, containedBy.type);
jfranck@1313 3144 Assert.checkNonNull(cbPos);
jfranck@1313 3145
jfranck@1313 3146 chk.validateContainedBy(c, containedBy, cbPos);
jfranck@1313 3147 }
jfranck@1313 3148
jfranck@1313 3149 // If this annotation has a @ContainerFor, validate
jfranck@1313 3150 Attribute.Compound containerFor = c.attribute(syms.containerForType.tsym);
jfranck@1313 3151 if (containerFor != null) {
jfranck@1313 3152 // get diagnositc position for error reporting
jfranck@1313 3153 DiagnosticPosition cfPos = getDiagnosticPosition(tree, containerFor.type);
jfranck@1313 3154 Assert.checkNonNull(cfPos);
jfranck@1313 3155
jfranck@1313 3156 chk.validateContainerFor(c, containerFor, cfPos);
jfranck@1313 3157 }
duke@1 3158 } else {
duke@1 3159 // Check that all extended classes and interfaces
duke@1 3160 // are compatible (i.e. no two define methods with same arguments
duke@1 3161 // yet different return types). (JLS 8.4.6.3)
duke@1 3162 chk.checkCompatibleSupertypes(tree.pos(), c.type);
duke@1 3163 }
duke@1 3164
duke@1 3165 // Check that class does not import the same parameterized interface
duke@1 3166 // with two different argument lists.
duke@1 3167 chk.checkClassBounds(tree.pos(), c.type);
duke@1 3168
duke@1 3169 tree.type = c.type;
duke@1 3170
jjg@816 3171 for (List<JCTypeParameter> l = tree.typarams;
jjg@816 3172 l.nonEmpty(); l = l.tail) {
jjg@816 3173 Assert.checkNonNull(env.info.scope.lookup(l.head.name).scope);
duke@1 3174 }
duke@1 3175
duke@1 3176 // Check that a generic class doesn't extend Throwable
duke@1 3177 if (!c.type.allparams().isEmpty() && types.isSubtype(c.type, syms.throwableType))
duke@1 3178 log.error(tree.extending.pos(), "generic.throwable");
duke@1 3179
duke@1 3180 // Check that all methods which implement some
duke@1 3181 // method conform to the method they implement.
duke@1 3182 chk.checkImplementations(tree);
duke@1 3183
mcimadamore@951 3184 //check that a resource implementing AutoCloseable cannot throw InterruptedException
mcimadamore@951 3185 checkAutoCloseable(tree.pos(), env, c.type);
mcimadamore@951 3186
duke@1 3187 for (List<JCTree> l = tree.defs; l.nonEmpty(); l = l.tail) {
duke@1 3188 // Attribute declaration
duke@1 3189 attribStat(l.head, env);
duke@1 3190 // Check that declarations in inner classes are not static (JLS 8.1.2)
duke@1 3191 // Make an exception for static constants.
duke@1 3192 if (c.owner.kind != PCK &&
duke@1 3193 ((c.flags() & STATIC) == 0 || c.name == names.empty) &&
duke@1 3194 (TreeInfo.flags(l.head) & (STATIC | INTERFACE)) != 0) {
duke@1 3195 Symbol sym = null;
jjg@1127 3196 if (l.head.hasTag(VARDEF)) sym = ((JCVariableDecl) l.head).sym;
duke@1 3197 if (sym == null ||
duke@1 3198 sym.kind != VAR ||
duke@1 3199 ((VarSymbol) sym).getConstValue() == null)
mcimadamore@855 3200 log.error(l.head.pos(), "icls.cant.have.static.decl", c);
duke@1 3201 }
duke@1 3202 }
duke@1 3203
duke@1 3204 // Check for cycles among non-initial constructors.
duke@1 3205 chk.checkCyclicConstructors(tree);
duke@1 3206
duke@1 3207 // Check for cycles among annotation elements.
duke@1 3208 chk.checkNonCyclicElements(tree);
duke@1 3209
duke@1 3210 // Check for proper use of serialVersionUID
mcimadamore@795 3211 if (env.info.lint.isEnabled(LintCategory.SERIAL) &&
duke@1 3212 isSerializable(c) &&
duke@1 3213 (c.flags() & Flags.ENUM) == 0 &&
duke@1 3214 (c.flags() & ABSTRACT) == 0) {
duke@1 3215 checkSerialVersionUID(tree, c);
duke@1 3216 }
duke@1 3217 }
duke@1 3218 // where
jfranck@1313 3219 /** get a diagnostic position for an attribute of Type t, or null if attribute missing */
jfranck@1313 3220 private DiagnosticPosition getDiagnosticPosition(JCClassDecl tree, Type t) {
jfranck@1313 3221 for(List<JCAnnotation> al = tree.mods.annotations; !al.isEmpty(); al = al.tail) {
jfranck@1313 3222 if (types.isSameType(al.head.annotationType.type, t))
jfranck@1313 3223 return al.head.pos();
jfranck@1313 3224 }
jfranck@1313 3225
jfranck@1313 3226 return null;
jfranck@1313 3227 }
jfranck@1313 3228
duke@1 3229 /** check if a class is a subtype of Serializable, if that is available. */
duke@1 3230 private boolean isSerializable(ClassSymbol c) {
duke@1 3231 try {
duke@1 3232 syms.serializableType.complete();
duke@1 3233 }
duke@1 3234 catch (CompletionFailure e) {
duke@1 3235 return false;
duke@1 3236 }
duke@1 3237 return types.isSubtype(c.type, syms.serializableType);
duke@1 3238 }
duke@1 3239
duke@1 3240 /** Check that an appropriate serialVersionUID member is defined. */
duke@1 3241 private void checkSerialVersionUID(JCClassDecl tree, ClassSymbol c) {
duke@1 3242
duke@1 3243 // check for presence of serialVersionUID
duke@1 3244 Scope.Entry e = c.members().lookup(names.serialVersionUID);
duke@1 3245 while (e.scope != null && e.sym.kind != VAR) e = e.next();
duke@1 3246 if (e.scope == null) {
mcimadamore@795 3247 log.warning(LintCategory.SERIAL,
jjg@612 3248 tree.pos(), "missing.SVUID", c);
duke@1 3249 return;
duke@1 3250 }
duke@1 3251
duke@1 3252 // check that it is static final
duke@1 3253 VarSymbol svuid = (VarSymbol)e.sym;
duke@1 3254 if ((svuid.flags() & (STATIC | FINAL)) !=
duke@1 3255 (STATIC | FINAL))
mcimadamore@795 3256 log.warning(LintCategory.SERIAL,
jjg@612 3257 TreeInfo.diagnosticPositionFor(svuid, tree), "improper.SVUID", c);
duke@1 3258
duke@1 3259 // check that it is long
duke@1 3260 else if (svuid.type.tag != TypeTags.LONG)
mcimadamore@795 3261 log.warning(LintCategory.SERIAL,
jjg@612 3262 TreeInfo.diagnosticPositionFor(svuid, tree), "long.SVUID", c);
duke@1 3263
duke@1 3264 // check constant
duke@1 3265 else if (svuid.getConstValue() == null)
mcimadamore@795 3266 log.warning(LintCategory.SERIAL,
jjg@612 3267 TreeInfo.diagnosticPositionFor(svuid, tree), "constant.SVUID", c);
duke@1 3268 }
duke@1 3269
duke@1 3270 private Type capture(Type type) {
duke@1 3271 return types.capture(type);
duke@1 3272 }
jjg@308 3273
mcimadamore@676 3274 // <editor-fold desc="post-attribution visitor">
mcimadamore@676 3275
mcimadamore@676 3276 /**
mcimadamore@676 3277 * Handle missing types/symbols in an AST. This routine is useful when
mcimadamore@676 3278 * the compiler has encountered some errors (which might have ended up
mcimadamore@676 3279 * terminating attribution abruptly); if the compiler is used in fail-over
mcimadamore@676 3280 * mode (e.g. by an IDE) and the AST contains semantic errors, this routine
mcimadamore@676 3281 * prevents NPE to be progagated during subsequent compilation steps.
mcimadamore@676 3282 */
mcimadamore@676 3283 public void postAttr(Env<AttrContext> env) {
mcimadamore@676 3284 new PostAttrAnalyzer().scan(env.tree);
mcimadamore@676 3285 }
mcimadamore@676 3286
mcimadamore@676 3287 class PostAttrAnalyzer extends TreeScanner {
mcimadamore@676 3288
mcimadamore@676 3289 private void initTypeIfNeeded(JCTree that) {
mcimadamore@676 3290 if (that.type == null) {
mcimadamore@676 3291 that.type = syms.unknownType;
mcimadamore@676 3292 }
mcimadamore@676 3293 }
mcimadamore@676 3294
mcimadamore@676 3295 @Override
mcimadamore@676 3296 public void scan(JCTree tree) {
mcimadamore@676 3297 if (tree == null) return;
mcimadamore@676 3298 if (tree instanceof JCExpression) {
mcimadamore@676 3299 initTypeIfNeeded(tree);
mcimadamore@676 3300 }
mcimadamore@676 3301 super.scan(tree);
mcimadamore@676 3302 }
mcimadamore@676 3303
mcimadamore@676 3304 @Override
mcimadamore@676 3305 public void visitIdent(JCIdent that) {
mcimadamore@676 3306 if (that.sym == null) {
mcimadamore@676 3307 that.sym = syms.unknownSymbol;
mcimadamore@676 3308 }
mcimadamore@676 3309 }
mcimadamore@676 3310
mcimadamore@676 3311 @Override
mcimadamore@676 3312 public void visitSelect(JCFieldAccess that) {
mcimadamore@676 3313 if (that.sym == null) {
mcimadamore@676 3314 that.sym = syms.unknownSymbol;
mcimadamore@676 3315 }
mcimadamore@676 3316 super.visitSelect(that);
mcimadamore@676 3317 }
mcimadamore@676 3318
mcimadamore@676 3319 @Override
mcimadamore@676 3320 public void visitClassDef(JCClassDecl that) {
mcimadamore@676 3321 initTypeIfNeeded(that);
mcimadamore@676 3322 if (that.sym == null) {
mcimadamore@676 3323 that.sym = new ClassSymbol(0, that.name, that.type, syms.noSymbol);
mcimadamore@676 3324 }
mcimadamore@676 3325 super.visitClassDef(that);
mcimadamore@676 3326 }
mcimadamore@676 3327
mcimadamore@676 3328 @Override
mcimadamore@676 3329 public void visitMethodDef(JCMethodDecl that) {
mcimadamore@676 3330 initTypeIfNeeded(that);
mcimadamore@676 3331 if (that.sym == null) {
mcimadamore@676 3332 that.sym = new MethodSymbol(0, that.name, that.type, syms.noSymbol);
mcimadamore@676 3333 }
mcimadamore@676 3334 super.visitMethodDef(that);
mcimadamore@676 3335 }
mcimadamore@676 3336
mcimadamore@676 3337 @Override
mcimadamore@676 3338 public void visitVarDef(JCVariableDecl that) {
mcimadamore@676 3339 initTypeIfNeeded(that);
mcimadamore@676 3340 if (that.sym == null) {
mcimadamore@676 3341 that.sym = new VarSymbol(0, that.name, that.type, syms.noSymbol);
mcimadamore@676 3342 that.sym.adr = 0;
mcimadamore@676 3343 }
mcimadamore@676 3344 super.visitVarDef(that);
mcimadamore@676 3345 }
mcimadamore@676 3346
mcimadamore@676 3347 @Override
mcimadamore@676 3348 public void visitNewClass(JCNewClass that) {
mcimadamore@676 3349 if (that.constructor == null) {
mcimadamore@676 3350 that.constructor = new MethodSymbol(0, names.init, syms.unknownType, syms.noSymbol);
mcimadamore@676 3351 }
mcimadamore@676 3352 if (that.constructorType == null) {
mcimadamore@676 3353 that.constructorType = syms.unknownType;
mcimadamore@676 3354 }
mcimadamore@676 3355 super.visitNewClass(that);
mcimadamore@676 3356 }
mcimadamore@676 3357
mcimadamore@676 3358 @Override
jjg@1049 3359 public void visitAssignop(JCAssignOp that) {
jjg@1049 3360 if (that.operator == null)
jjg@1049 3361 that.operator = new OperatorSymbol(names.empty, syms.unknownType, -1, syms.noSymbol);
jjg@1049 3362 super.visitAssignop(that);
jjg@1049 3363 }
jjg@1049 3364
jjg@1049 3365 @Override
mcimadamore@676 3366 public void visitBinary(JCBinary that) {
mcimadamore@676 3367 if (that.operator == null)
mcimadamore@676 3368 that.operator = new OperatorSymbol(names.empty, syms.unknownType, -1, syms.noSymbol);
mcimadamore@676 3369 super.visitBinary(that);
mcimadamore@676 3370 }
mcimadamore@676 3371
mcimadamore@676 3372 @Override
mcimadamore@676 3373 public void visitUnary(JCUnary that) {
mcimadamore@676 3374 if (that.operator == null)
mcimadamore@676 3375 that.operator = new OperatorSymbol(names.empty, syms.unknownType, -1, syms.noSymbol);
mcimadamore@676 3376 super.visitUnary(that);
mcimadamore@676 3377 }
mcimadamore@676 3378 }
mcimadamore@676 3379 // </editor-fold>
duke@1 3380 }

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