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

Mon, 15 Nov 2010 13:50:53 +0000

author
mcimadamore
date
Mon, 15 Nov 2010 13:50:53 +0000
changeset 746
a7ea58fa3e9a
parent 700
7b413ac1a720
child 780
1d625fbe6c22
permissions
-rw-r--r--

6985719: Alike methods in interfaces (Inheritance and Overriding)
Summary: javac should report error when interface inherits unrelated method with same erasure
Reviewed-by: jjg

duke@1 1 /*
ohair@554 2 * Copyright (c) 1999, 2009, 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
duke@1 31 import com.sun.tools.javac.code.*;
duke@1 32 import com.sun.tools.javac.jvm.*;
duke@1 33 import com.sun.tools.javac.tree.*;
duke@1 34 import com.sun.tools.javac.util.*;
duke@1 35 import com.sun.tools.javac.util.JCDiagnostic.DiagnosticPosition;
duke@1 36 import com.sun.tools.javac.util.List;
duke@1 37
duke@1 38 import com.sun.tools.javac.tree.JCTree.*;
duke@1 39 import com.sun.tools.javac.code.Lint;
duke@1 40 import com.sun.tools.javac.code.Lint.LintCategory;
duke@1 41 import com.sun.tools.javac.code.Type.*;
duke@1 42 import com.sun.tools.javac.code.Symbol.*;
duke@1 43
duke@1 44 import static com.sun.tools.javac.code.Flags.*;
duke@1 45 import static com.sun.tools.javac.code.Kinds.*;
duke@1 46 import static com.sun.tools.javac.code.TypeTags.*;
duke@1 47
jjg@700 48 import static com.sun.tools.javac.main.OptionName.*;
jjg@700 49
duke@1 50 /** Type checking helper class for the attribution phase.
duke@1 51 *
jjg@581 52 * <p><b>This is NOT part of any supported API.
jjg@581 53 * If you write code that depends on this, you do so at your own risk.
duke@1 54 * This code and its internal interfaces are subject to change or
duke@1 55 * deletion without notice.</b>
duke@1 56 */
duke@1 57 public class Check {
duke@1 58 protected static final Context.Key<Check> checkKey =
duke@1 59 new Context.Key<Check>();
duke@1 60
jjg@113 61 private final Names names;
duke@1 62 private final Log log;
duke@1 63 private final Symtab syms;
mcimadamore@690 64 private final Enter enter;
duke@1 65 private final Infer infer;
duke@1 66 private final Types types;
mcimadamore@89 67 private final JCDiagnostic.Factory diags;
duke@1 68 private final boolean skipAnnotations;
mcimadamore@359 69 private boolean warnOnSyntheticConflicts;
jjg@576 70 private boolean suppressAbortOnBadClassFile;
duke@1 71 private final TreeInfo treeinfo;
duke@1 72
duke@1 73 // The set of lint options currently in effect. It is initialized
duke@1 74 // from the context, and then is set/reset as needed by Attr as it
duke@1 75 // visits all the various parts of the trees during attribution.
duke@1 76 private Lint lint;
duke@1 77
duke@1 78 public static Check instance(Context context) {
duke@1 79 Check instance = context.get(checkKey);
duke@1 80 if (instance == null)
duke@1 81 instance = new Check(context);
duke@1 82 return instance;
duke@1 83 }
duke@1 84
duke@1 85 protected Check(Context context) {
duke@1 86 context.put(checkKey, this);
duke@1 87
jjg@113 88 names = Names.instance(context);
duke@1 89 log = Log.instance(context);
duke@1 90 syms = Symtab.instance(context);
mcimadamore@690 91 enter = Enter.instance(context);
duke@1 92 infer = Infer.instance(context);
duke@1 93 this.types = Types.instance(context);
mcimadamore@89 94 diags = JCDiagnostic.Factory.instance(context);
duke@1 95 Options options = Options.instance(context);
duke@1 96 lint = Lint.instance(context);
duke@1 97 treeinfo = TreeInfo.instance(context);
duke@1 98
duke@1 99 Source source = Source.instance(context);
duke@1 100 allowGenerics = source.allowGenerics();
duke@1 101 allowAnnotations = source.allowAnnotations();
jjg@398 102 allowCovariantReturns = source.allowCovariantReturns();
jjg@700 103 complexInference = options.isSet(COMPLEXINFERENCE);
jjg@700 104 skipAnnotations = options.isSet("skipAnnotations");
jjg@700 105 warnOnSyntheticConflicts = options.isSet("warnOnSyntheticConflicts");
jjg@700 106 suppressAbortOnBadClassFile = options.isSet("suppressAbortOnBadClassFile");
duke@1 107
jjg@398 108 Target target = Target.instance(context);
jjg@398 109 syntheticNameChar = target.syntheticNameChar();
jjg@398 110
duke@1 111 boolean verboseDeprecated = lint.isEnabled(LintCategory.DEPRECATION);
duke@1 112 boolean verboseUnchecked = lint.isEnabled(LintCategory.UNCHECKED);
mcimadamore@580 113 boolean verboseVarargs = lint.isEnabled(LintCategory.VARARGS);
jjg@377 114 boolean verboseSunApi = lint.isEnabled(LintCategory.SUNAPI);
jjg@60 115 boolean enforceMandatoryWarnings = source.enforceMandatoryWarnings();
duke@1 116
jjg@60 117 deprecationHandler = new MandatoryWarningHandler(log, verboseDeprecated,
jjg@612 118 enforceMandatoryWarnings, "deprecated", LintCategory.DEPRECATION);
jjg@60 119 uncheckedHandler = new MandatoryWarningHandler(log, verboseUnchecked,
jjg@612 120 enforceMandatoryWarnings, "unchecked", LintCategory.UNCHECKED);
mcimadamore@580 121 unsafeVarargsHandler = new MandatoryWarningHandler(log, verboseVarargs,
jjg@612 122 enforceMandatoryWarnings, "varargs", LintCategory.VARARGS);
jjg@377 123 sunApiHandler = new MandatoryWarningHandler(log, verboseSunApi,
jjg@612 124 enforceMandatoryWarnings, "sunapi", null);
duke@1 125 }
duke@1 126
duke@1 127 /** Switch: generics enabled?
duke@1 128 */
duke@1 129 boolean allowGenerics;
duke@1 130
duke@1 131 /** Switch: annotations enabled?
duke@1 132 */
duke@1 133 boolean allowAnnotations;
duke@1 134
jjg@398 135 /** Switch: covariant returns enabled?
jjg@398 136 */
jjg@398 137 boolean allowCovariantReturns;
jjg@398 138
duke@1 139 /** Switch: -complexinference option set?
duke@1 140 */
duke@1 141 boolean complexInference;
duke@1 142
jjg@398 143 /** Character for synthetic names
jjg@398 144 */
jjg@398 145 char syntheticNameChar;
jjg@398 146
duke@1 147 /** A table mapping flat names of all compiled classes in this run to their
duke@1 148 * symbols; maintained from outside.
duke@1 149 */
duke@1 150 public Map<Name,ClassSymbol> compiled = new HashMap<Name, ClassSymbol>();
duke@1 151
duke@1 152 /** A handler for messages about deprecated usage.
duke@1 153 */
duke@1 154 private MandatoryWarningHandler deprecationHandler;
duke@1 155
duke@1 156 /** A handler for messages about unchecked or unsafe usage.
duke@1 157 */
duke@1 158 private MandatoryWarningHandler uncheckedHandler;
duke@1 159
mcimadamore@580 160 /** A handler for messages about unchecked or unsafe vararg method decl.
mcimadamore@580 161 */
mcimadamore@580 162 private MandatoryWarningHandler unsafeVarargsHandler;
mcimadamore@580 163
jjg@582 164 /** A handler for messages about using proprietary API.
jjg@377 165 */
jjg@377 166 private MandatoryWarningHandler sunApiHandler;
duke@1 167
duke@1 168 /* *************************************************************************
duke@1 169 * Errors and Warnings
duke@1 170 **************************************************************************/
duke@1 171
duke@1 172 Lint setLint(Lint newLint) {
duke@1 173 Lint prev = lint;
duke@1 174 lint = newLint;
duke@1 175 return prev;
duke@1 176 }
duke@1 177
duke@1 178 /** Warn about deprecated symbol.
duke@1 179 * @param pos Position to be used for error reporting.
duke@1 180 * @param sym The deprecated symbol.
duke@1 181 */
duke@1 182 void warnDeprecated(DiagnosticPosition pos, Symbol sym) {
duke@1 183 if (!lint.isSuppressed(LintCategory.DEPRECATION))
duke@1 184 deprecationHandler.report(pos, "has.been.deprecated", sym, sym.location());
duke@1 185 }
duke@1 186
duke@1 187 /** Warn about unchecked operation.
duke@1 188 * @param pos Position to be used for error reporting.
duke@1 189 * @param msg A string describing the problem.
duke@1 190 */
duke@1 191 public void warnUnchecked(DiagnosticPosition pos, String msg, Object... args) {
duke@1 192 if (!lint.isSuppressed(LintCategory.UNCHECKED))
duke@1 193 uncheckedHandler.report(pos, msg, args);
duke@1 194 }
duke@1 195
mcimadamore@580 196 /** Warn about unsafe vararg method decl.
mcimadamore@580 197 * @param pos Position to be used for error reporting.
mcimadamore@580 198 * @param sym The deprecated symbol.
mcimadamore@580 199 */
mcimadamore@580 200 void warnUnsafeVararg(DiagnosticPosition pos, Type elemType) {
mcimadamore@580 201 if (!lint.isSuppressed(LintCategory.VARARGS))
mcimadamore@580 202 unsafeVarargsHandler.report(pos, "varargs.non.reifiable.type", elemType);
mcimadamore@580 203 }
mcimadamore@580 204
jjg@582 205 /** Warn about using proprietary API.
jjg@377 206 * @param pos Position to be used for error reporting.
jjg@377 207 * @param msg A string describing the problem.
jjg@377 208 */
jjg@377 209 public void warnSunApi(DiagnosticPosition pos, String msg, Object... args) {
jjg@377 210 if (!lint.isSuppressed(LintCategory.SUNAPI))
jjg@377 211 sunApiHandler.report(pos, msg, args);
jjg@377 212 }
jjg@377 213
jjg@505 214 public void warnStatic(DiagnosticPosition pos, String msg, Object... args) {
jjg@505 215 if (lint.isEnabled(LintCategory.STATIC))
jjg@612 216 log.warning(LintCategory.STATIC, pos, msg, args);
jjg@505 217 }
jjg@505 218
duke@1 219 /**
duke@1 220 * Report any deferred diagnostics.
duke@1 221 */
duke@1 222 public void reportDeferredDiagnostics() {
duke@1 223 deprecationHandler.reportDeferredDiagnostic();
duke@1 224 uncheckedHandler.reportDeferredDiagnostic();
mcimadamore@580 225 unsafeVarargsHandler.reportDeferredDiagnostic();
jjg@377 226 sunApiHandler.reportDeferredDiagnostic();
duke@1 227 }
duke@1 228
duke@1 229
duke@1 230 /** Report a failure to complete a class.
duke@1 231 * @param pos Position to be used for error reporting.
duke@1 232 * @param ex The failure to report.
duke@1 233 */
duke@1 234 public Type completionError(DiagnosticPosition pos, CompletionFailure ex) {
jjg@12 235 log.error(pos, "cant.access", ex.sym, ex.getDetailValue());
jjg@576 236 if (ex instanceof ClassReader.BadClassFile
jjg@576 237 && !suppressAbortOnBadClassFile) throw new Abort();
duke@1 238 else return syms.errType;
duke@1 239 }
duke@1 240
duke@1 241 /** Report a type error.
duke@1 242 * @param pos Position to be used for error reporting.
duke@1 243 * @param problem A string describing the error.
duke@1 244 * @param found The type that was found.
duke@1 245 * @param req The type that was required.
duke@1 246 */
duke@1 247 Type typeError(DiagnosticPosition pos, Object problem, Type found, Type req) {
duke@1 248 log.error(pos, "prob.found.req",
duke@1 249 problem, found, req);
jjg@110 250 return types.createErrorType(found);
duke@1 251 }
duke@1 252
duke@1 253 Type typeError(DiagnosticPosition pos, String problem, Type found, Type req, Object explanation) {
duke@1 254 log.error(pos, "prob.found.req.1", problem, found, req, explanation);
jjg@110 255 return types.createErrorType(found);
duke@1 256 }
duke@1 257
duke@1 258 /** Report an error that wrong type tag was found.
duke@1 259 * @param pos Position to be used for error reporting.
duke@1 260 * @param required An internationalized string describing the type tag
duke@1 261 * required.
duke@1 262 * @param found The type that was found.
duke@1 263 */
duke@1 264 Type typeTagError(DiagnosticPosition pos, Object required, Object found) {
jrose@267 265 // this error used to be raised by the parser,
jrose@267 266 // but has been delayed to this point:
jrose@267 267 if (found instanceof Type && ((Type)found).tag == VOID) {
jrose@267 268 log.error(pos, "illegal.start.of.type");
jrose@267 269 return syms.errType;
jrose@267 270 }
duke@1 271 log.error(pos, "type.found.req", found, required);
jjg@110 272 return types.createErrorType(found instanceof Type ? (Type)found : syms.errType);
duke@1 273 }
duke@1 274
duke@1 275 /** Report an error that symbol cannot be referenced before super
duke@1 276 * has been called.
duke@1 277 * @param pos Position to be used for error reporting.
duke@1 278 * @param sym The referenced symbol.
duke@1 279 */
duke@1 280 void earlyRefError(DiagnosticPosition pos, Symbol sym) {
duke@1 281 log.error(pos, "cant.ref.before.ctor.called", sym);
duke@1 282 }
duke@1 283
duke@1 284 /** Report duplicate declaration error.
duke@1 285 */
duke@1 286 void duplicateError(DiagnosticPosition pos, Symbol sym) {
duke@1 287 if (!sym.type.isErroneous()) {
duke@1 288 log.error(pos, "already.defined", sym, sym.location());
duke@1 289 }
duke@1 290 }
duke@1 291
duke@1 292 /** Report array/varargs duplicate declaration
duke@1 293 */
duke@1 294 void varargsDuplicateError(DiagnosticPosition pos, Symbol sym1, Symbol sym2) {
duke@1 295 if (!sym1.type.isErroneous() && !sym2.type.isErroneous()) {
duke@1 296 log.error(pos, "array.and.varargs", sym1, sym2, sym2.location());
duke@1 297 }
duke@1 298 }
duke@1 299
duke@1 300 /* ************************************************************************
duke@1 301 * duplicate declaration checking
duke@1 302 *************************************************************************/
duke@1 303
duke@1 304 /** Check that variable does not hide variable with same name in
duke@1 305 * immediately enclosing local scope.
duke@1 306 * @param pos Position for error reporting.
duke@1 307 * @param v The symbol.
duke@1 308 * @param s The scope.
duke@1 309 */
duke@1 310 void checkTransparentVar(DiagnosticPosition pos, VarSymbol v, Scope s) {
duke@1 311 if (s.next != null) {
duke@1 312 for (Scope.Entry e = s.next.lookup(v.name);
duke@1 313 e.scope != null && e.sym.owner == v.owner;
duke@1 314 e = e.next()) {
duke@1 315 if (e.sym.kind == VAR &&
duke@1 316 (e.sym.owner.kind & (VAR | MTH)) != 0 &&
duke@1 317 v.name != names.error) {
duke@1 318 duplicateError(pos, e.sym);
duke@1 319 return;
duke@1 320 }
duke@1 321 }
duke@1 322 }
duke@1 323 }
duke@1 324
duke@1 325 /** Check that a class or interface does not hide a class or
duke@1 326 * interface with same name in immediately enclosing local scope.
duke@1 327 * @param pos Position for error reporting.
duke@1 328 * @param c The symbol.
duke@1 329 * @param s The scope.
duke@1 330 */
duke@1 331 void checkTransparentClass(DiagnosticPosition pos, ClassSymbol c, Scope s) {
duke@1 332 if (s.next != null) {
duke@1 333 for (Scope.Entry e = s.next.lookup(c.name);
duke@1 334 e.scope != null && e.sym.owner == c.owner;
duke@1 335 e = e.next()) {
mcimadamore@639 336 if (e.sym.kind == TYP && e.sym.type.tag != TYPEVAR &&
duke@1 337 (e.sym.owner.kind & (VAR | MTH)) != 0 &&
duke@1 338 c.name != names.error) {
duke@1 339 duplicateError(pos, e.sym);
duke@1 340 return;
duke@1 341 }
duke@1 342 }
duke@1 343 }
duke@1 344 }
duke@1 345
duke@1 346 /** Check that class does not have the same name as one of
duke@1 347 * its enclosing classes, or as a class defined in its enclosing scope.
duke@1 348 * return true if class is unique in its enclosing scope.
duke@1 349 * @param pos Position for error reporting.
duke@1 350 * @param name The class name.
duke@1 351 * @param s The enclosing scope.
duke@1 352 */
duke@1 353 boolean checkUniqueClassName(DiagnosticPosition pos, Name name, Scope s) {
duke@1 354 for (Scope.Entry e = s.lookup(name); e.scope == s; e = e.next()) {
duke@1 355 if (e.sym.kind == TYP && e.sym.name != names.error) {
duke@1 356 duplicateError(pos, e.sym);
duke@1 357 return false;
duke@1 358 }
duke@1 359 }
duke@1 360 for (Symbol sym = s.owner; sym != null; sym = sym.owner) {
duke@1 361 if (sym.kind == TYP && sym.name == name && sym.name != names.error) {
duke@1 362 duplicateError(pos, sym);
duke@1 363 return true;
duke@1 364 }
duke@1 365 }
duke@1 366 return true;
duke@1 367 }
duke@1 368
duke@1 369 /* *************************************************************************
duke@1 370 * Class name generation
duke@1 371 **************************************************************************/
duke@1 372
duke@1 373 /** Return name of local class.
duke@1 374 * This is of the form <enclClass> $ n <classname>
duke@1 375 * where
duke@1 376 * enclClass is the flat name of the enclosing class,
duke@1 377 * classname is the simple name of the local class
duke@1 378 */
duke@1 379 Name localClassName(ClassSymbol c) {
duke@1 380 for (int i=1; ; i++) {
duke@1 381 Name flatname = names.
duke@1 382 fromString("" + c.owner.enclClass().flatname +
jjg@398 383 syntheticNameChar + i +
duke@1 384 c.name);
duke@1 385 if (compiled.get(flatname) == null) return flatname;
duke@1 386 }
duke@1 387 }
duke@1 388
duke@1 389 /* *************************************************************************
duke@1 390 * Type Checking
duke@1 391 **************************************************************************/
duke@1 392
duke@1 393 /** Check that a given type is assignable to a given proto-type.
duke@1 394 * If it is, return the type, otherwise return errType.
duke@1 395 * @param pos Position to be used for error reporting.
duke@1 396 * @param found The type that was found.
duke@1 397 * @param req The type that was required.
duke@1 398 */
duke@1 399 Type checkType(DiagnosticPosition pos, Type found, Type req) {
darcy@609 400 return checkType(pos, found, req, "incompatible.types");
darcy@609 401 }
darcy@609 402
darcy@609 403 Type checkType(DiagnosticPosition pos, Type found, Type req, String errKey) {
duke@1 404 if (req.tag == ERROR)
duke@1 405 return req;
mcimadamore@536 406 if (found.tag == FORALL)
mcimadamore@536 407 return instantiatePoly(pos, (ForAll)found, req, convertWarner(pos, found, req));
duke@1 408 if (req.tag == NONE)
duke@1 409 return found;
duke@1 410 if (types.isAssignable(found, req, convertWarner(pos, found, req)))
duke@1 411 return found;
duke@1 412 if (found.tag <= DOUBLE && req.tag <= DOUBLE)
mcimadamore@89 413 return typeError(pos, diags.fragment("possible.loss.of.precision"), found, req);
duke@1 414 if (found.isSuperBound()) {
duke@1 415 log.error(pos, "assignment.from.super-bound", found);
jjg@110 416 return types.createErrorType(found);
duke@1 417 }
duke@1 418 if (req.isExtendsBound()) {
duke@1 419 log.error(pos, "assignment.to.extends-bound", req);
jjg@110 420 return types.createErrorType(found);
duke@1 421 }
darcy@609 422 return typeError(pos, diags.fragment(errKey), found, req);
duke@1 423 }
duke@1 424
duke@1 425 /** Instantiate polymorphic type to some prototype, unless
duke@1 426 * prototype is `anyPoly' in which case polymorphic type
duke@1 427 * is returned unchanged.
duke@1 428 */
mcimadamore@383 429 Type instantiatePoly(DiagnosticPosition pos, ForAll t, Type pt, Warner warn) throws Infer.NoInstanceException {
duke@1 430 if (pt == Infer.anyPoly && complexInference) {
duke@1 431 return t;
duke@1 432 } else if (pt == Infer.anyPoly || pt.tag == NONE) {
duke@1 433 Type newpt = t.qtype.tag <= VOID ? t.qtype : syms.objectType;
duke@1 434 return instantiatePoly(pos, t, newpt, warn);
duke@1 435 } else if (pt.tag == ERROR) {
duke@1 436 return pt;
duke@1 437 } else {
mcimadamore@536 438 try {
mcimadamore@536 439 return infer.instantiateExpr(t, pt, warn);
mcimadamore@536 440 } catch (Infer.NoInstanceException ex) {
mcimadamore@536 441 if (ex.isAmbiguous) {
mcimadamore@536 442 JCDiagnostic d = ex.getDiagnostic();
mcimadamore@536 443 log.error(pos,
mcimadamore@536 444 "undetermined.type" + (d!=null ? ".1" : ""),
mcimadamore@536 445 t, d);
mcimadamore@536 446 return types.createErrorType(pt);
mcimadamore@536 447 } else {
mcimadamore@536 448 JCDiagnostic d = ex.getDiagnostic();
mcimadamore@536 449 return typeError(pos,
mcimadamore@536 450 diags.fragment("incompatible.types" + (d!=null ? ".1" : ""), d),
mcimadamore@536 451 t, pt);
mcimadamore@536 452 }
mcimadamore@536 453 } catch (Infer.InvalidInstanceException ex) {
mcimadamore@536 454 JCDiagnostic d = ex.getDiagnostic();
mcimadamore@536 455 log.error(pos, "invalid.inferred.types", t.tvars, d);
mcimadamore@536 456 return types.createErrorType(pt);
mcimadamore@536 457 }
duke@1 458 }
mcimadamore@536 459 }
duke@1 460
duke@1 461 /** Check that a given type can be cast to a given target type.
duke@1 462 * Return the result of the cast.
duke@1 463 * @param pos Position to be used for error reporting.
duke@1 464 * @param found The type that is being cast.
duke@1 465 * @param req The target type of the cast.
duke@1 466 */
duke@1 467 Type checkCastable(DiagnosticPosition pos, Type found, Type req) {
duke@1 468 if (found.tag == FORALL) {
duke@1 469 instantiatePoly(pos, (ForAll) found, req, castWarner(pos, found, req));
duke@1 470 return req;
duke@1 471 } else if (types.isCastable(found, req, castWarner(pos, found, req))) {
duke@1 472 return req;
duke@1 473 } else {
duke@1 474 return typeError(pos,
mcimadamore@89 475 diags.fragment("inconvertible.types"),
duke@1 476 found, req);
duke@1 477 }
duke@1 478 }
duke@1 479 //where
duke@1 480 /** Is type a type variable, or a (possibly multi-dimensional) array of
duke@1 481 * type variables?
duke@1 482 */
duke@1 483 boolean isTypeVar(Type t) {
duke@1 484 return t.tag == TYPEVAR || t.tag == ARRAY && isTypeVar(types.elemtype(t));
duke@1 485 }
duke@1 486
duke@1 487 /** Check that a type is within some bounds.
duke@1 488 *
duke@1 489 * Used in TypeApply to verify that, e.g., X in V<X> is a valid
duke@1 490 * type argument.
duke@1 491 * @param pos Position to be used for error reporting.
duke@1 492 * @param a The type that should be bounded by bs.
duke@1 493 * @param bs The bound.
duke@1 494 */
duke@1 495 private void checkExtends(DiagnosticPosition pos, Type a, TypeVar bs) {
mcimadamore@154 496 if (a.isUnbound()) {
mcimadamore@154 497 return;
mcimadamore@154 498 } else if (a.tag != WILDCARD) {
mcimadamore@154 499 a = types.upperBound(a);
mcimadamore@154 500 for (List<Type> l = types.getBounds(bs); l.nonEmpty(); l = l.tail) {
mcimadamore@154 501 if (!types.isSubtype(a, l.head)) {
mcimadamore@154 502 log.error(pos, "not.within.bounds", a);
mcimadamore@154 503 return;
mcimadamore@154 504 }
mcimadamore@154 505 }
mcimadamore@154 506 } else if (a.isExtendsBound()) {
mcimadamore@154 507 if (!types.isCastable(bs.getUpperBound(), types.upperBound(a), Warner.noWarnings))
mcimadamore@154 508 log.error(pos, "not.within.bounds", a);
mcimadamore@154 509 } else if (a.isSuperBound()) {
mcimadamore@154 510 if (types.notSoftSubtype(types.lowerBound(a), bs.getUpperBound()))
mcimadamore@154 511 log.error(pos, "not.within.bounds", a);
mcimadamore@154 512 }
mcimadamore@154 513 }
mcimadamore@154 514
mcimadamore@154 515 /** Check that a type is within some bounds.
mcimadamore@154 516 *
mcimadamore@154 517 * Used in TypeApply to verify that, e.g., X in V<X> is a valid
mcimadamore@154 518 * type argument.
mcimadamore@154 519 * @param pos Position to be used for error reporting.
mcimadamore@154 520 * @param a The type that should be bounded by bs.
mcimadamore@154 521 * @param bs The bound.
mcimadamore@154 522 */
mcimadamore@154 523 private void checkCapture(JCTypeApply tree) {
mcimadamore@154 524 List<JCExpression> args = tree.getTypeArguments();
mcimadamore@154 525 for (Type arg : types.capture(tree.type).getTypeArguments()) {
mcimadamore@154 526 if (arg.tag == TYPEVAR && arg.getUpperBound().isErroneous()) {
mcimadamore@154 527 log.error(args.head.pos, "not.within.bounds", args.head.type);
mcimadamore@154 528 break;
mcimadamore@79 529 }
mcimadamore@154 530 args = args.tail;
mcimadamore@79 531 }
mcimadamore@154 532 }
duke@1 533
duke@1 534 /** Check that type is different from 'void'.
duke@1 535 * @param pos Position to be used for error reporting.
duke@1 536 * @param t The type to be checked.
duke@1 537 */
duke@1 538 Type checkNonVoid(DiagnosticPosition pos, Type t) {
duke@1 539 if (t.tag == VOID) {
duke@1 540 log.error(pos, "void.not.allowed.here");
jjg@110 541 return types.createErrorType(t);
duke@1 542 } else {
duke@1 543 return t;
duke@1 544 }
duke@1 545 }
duke@1 546
duke@1 547 /** Check that type is a class or interface type.
duke@1 548 * @param pos Position to be used for error reporting.
duke@1 549 * @param t The type to be checked.
duke@1 550 */
duke@1 551 Type checkClassType(DiagnosticPosition pos, Type t) {
duke@1 552 if (t.tag != CLASS && t.tag != ERROR)
duke@1 553 return typeTagError(pos,
mcimadamore@89 554 diags.fragment("type.req.class"),
duke@1 555 (t.tag == TYPEVAR)
mcimadamore@89 556 ? diags.fragment("type.parameter", t)
duke@1 557 : t);
duke@1 558 else
duke@1 559 return t;
duke@1 560 }
duke@1 561
duke@1 562 /** Check that type is a class or interface type.
duke@1 563 * @param pos Position to be used for error reporting.
duke@1 564 * @param t The type to be checked.
duke@1 565 * @param noBounds True if type bounds are illegal here.
duke@1 566 */
duke@1 567 Type checkClassType(DiagnosticPosition pos, Type t, boolean noBounds) {
duke@1 568 t = checkClassType(pos, t);
duke@1 569 if (noBounds && t.isParameterized()) {
duke@1 570 List<Type> args = t.getTypeArguments();
duke@1 571 while (args.nonEmpty()) {
duke@1 572 if (args.head.tag == WILDCARD)
duke@1 573 return typeTagError(pos,
jjg@598 574 diags.fragment("type.req.exact"),
duke@1 575 args.head);
duke@1 576 args = args.tail;
duke@1 577 }
duke@1 578 }
duke@1 579 return t;
duke@1 580 }
duke@1 581
duke@1 582 /** Check that type is a reifiable class, interface or array type.
duke@1 583 * @param pos Position to be used for error reporting.
duke@1 584 * @param t The type to be checked.
duke@1 585 */
duke@1 586 Type checkReifiableReferenceType(DiagnosticPosition pos, Type t) {
duke@1 587 if (t.tag != CLASS && t.tag != ARRAY && t.tag != ERROR) {
duke@1 588 return typeTagError(pos,
mcimadamore@89 589 diags.fragment("type.req.class.array"),
duke@1 590 t);
duke@1 591 } else if (!types.isReifiable(t)) {
duke@1 592 log.error(pos, "illegal.generic.type.for.instof");
jjg@110 593 return types.createErrorType(t);
duke@1 594 } else {
duke@1 595 return t;
duke@1 596 }
duke@1 597 }
duke@1 598
duke@1 599 /** Check that type is a reference type, i.e. a class, interface or array type
duke@1 600 * or a type variable.
duke@1 601 * @param pos Position to be used for error reporting.
duke@1 602 * @param t The type to be checked.
duke@1 603 */
duke@1 604 Type checkRefType(DiagnosticPosition pos, Type t) {
duke@1 605 switch (t.tag) {
duke@1 606 case CLASS:
duke@1 607 case ARRAY:
duke@1 608 case TYPEVAR:
duke@1 609 case WILDCARD:
duke@1 610 case ERROR:
duke@1 611 return t;
duke@1 612 default:
duke@1 613 return typeTagError(pos,
mcimadamore@89 614 diags.fragment("type.req.ref"),
duke@1 615 t);
duke@1 616 }
duke@1 617 }
duke@1 618
jrose@267 619 /** Check that each type is a reference type, i.e. a class, interface or array type
jrose@267 620 * or a type variable.
jrose@267 621 * @param trees Original trees, used for error reporting.
jrose@267 622 * @param types The types to be checked.
jrose@267 623 */
jrose@267 624 List<Type> checkRefTypes(List<JCExpression> trees, List<Type> types) {
jrose@267 625 List<JCExpression> tl = trees;
jrose@267 626 for (List<Type> l = types; l.nonEmpty(); l = l.tail) {
jrose@267 627 l.head = checkRefType(tl.head.pos(), l.head);
jrose@267 628 tl = tl.tail;
jrose@267 629 }
jrose@267 630 return types;
jrose@267 631 }
jrose@267 632
duke@1 633 /** Check that type is a null or reference type.
duke@1 634 * @param pos Position to be used for error reporting.
duke@1 635 * @param t The type to be checked.
duke@1 636 */
duke@1 637 Type checkNullOrRefType(DiagnosticPosition pos, Type t) {
duke@1 638 switch (t.tag) {
duke@1 639 case CLASS:
duke@1 640 case ARRAY:
duke@1 641 case TYPEVAR:
duke@1 642 case WILDCARD:
duke@1 643 case BOT:
duke@1 644 case ERROR:
duke@1 645 return t;
duke@1 646 default:
duke@1 647 return typeTagError(pos,
mcimadamore@89 648 diags.fragment("type.req.ref"),
duke@1 649 t);
duke@1 650 }
duke@1 651 }
duke@1 652
duke@1 653 /** Check that flag set does not contain elements of two conflicting sets. s
duke@1 654 * Return true if it doesn't.
duke@1 655 * @param pos Position to be used for error reporting.
duke@1 656 * @param flags The set of flags to be checked.
duke@1 657 * @param set1 Conflicting flags set #1.
duke@1 658 * @param set2 Conflicting flags set #2.
duke@1 659 */
duke@1 660 boolean checkDisjoint(DiagnosticPosition pos, long flags, long set1, long set2) {
duke@1 661 if ((flags & set1) != 0 && (flags & set2) != 0) {
duke@1 662 log.error(pos,
duke@1 663 "illegal.combination.of.modifiers",
mcimadamore@80 664 asFlagSet(TreeInfo.firstFlag(flags & set1)),
mcimadamore@80 665 asFlagSet(TreeInfo.firstFlag(flags & set2)));
duke@1 666 return false;
duke@1 667 } else
duke@1 668 return true;
duke@1 669 }
duke@1 670
mcimadamore@537 671 /** Check that the type inferred using the diamond operator does not contain
mcimadamore@537 672 * non-denotable types such as captured types or intersection types.
mcimadamore@537 673 * @param t the type inferred using the diamond operator
mcimadamore@537 674 */
mcimadamore@537 675 List<Type> checkDiamond(ClassType t) {
mcimadamore@537 676 DiamondTypeChecker dtc = new DiamondTypeChecker();
mcimadamore@537 677 ListBuffer<Type> buf = ListBuffer.lb();
mcimadamore@537 678 for (Type arg : t.getTypeArguments()) {
mcimadamore@537 679 if (!dtc.visit(arg, null)) {
mcimadamore@537 680 buf.append(arg);
mcimadamore@537 681 }
mcimadamore@537 682 }
mcimadamore@537 683 return buf.toList();
mcimadamore@537 684 }
mcimadamore@537 685
mcimadamore@537 686 static class DiamondTypeChecker extends Types.SimpleVisitor<Boolean, Void> {
mcimadamore@537 687 public Boolean visitType(Type t, Void s) {
mcimadamore@537 688 return true;
mcimadamore@537 689 }
mcimadamore@537 690 @Override
mcimadamore@537 691 public Boolean visitClassType(ClassType t, Void s) {
mcimadamore@537 692 if (t.isCompound()) {
mcimadamore@537 693 return false;
mcimadamore@537 694 }
mcimadamore@537 695 for (Type targ : t.getTypeArguments()) {
mcimadamore@537 696 if (!visit(targ, s)) {
mcimadamore@537 697 return false;
mcimadamore@537 698 }
mcimadamore@537 699 }
mcimadamore@537 700 return true;
mcimadamore@537 701 }
mcimadamore@537 702 @Override
mcimadamore@537 703 public Boolean visitCapturedType(CapturedType t, Void s) {
mcimadamore@537 704 return false;
mcimadamore@537 705 }
mcimadamore@537 706 }
mcimadamore@537 707
mcimadamore@580 708 void checkVarargMethodDecl(JCMethodDecl tree) {
mcimadamore@580 709 MethodSymbol m = tree.sym;
mcimadamore@580 710 //check the element type of the vararg
mcimadamore@580 711 if (m.isVarArgs()) {
mcimadamore@580 712 Type varargElemType = types.elemtype(tree.params.last().type);
mcimadamore@580 713 if (!types.isReifiable(varargElemType)) {
mcimadamore@580 714 warnUnsafeVararg(tree.params.head.pos(), varargElemType);
mcimadamore@580 715 }
mcimadamore@580 716 }
mcimadamore@580 717 }
mcimadamore@580 718
mcimadamore@547 719 /**
mcimadamore@547 720 * Check that vararg method call is sound
mcimadamore@547 721 * @param pos Position to be used for error reporting.
mcimadamore@547 722 * @param argtypes Actual arguments supplied to vararg method.
mcimadamore@547 723 */
mcimadamore@580 724 void checkVararg(DiagnosticPosition pos, List<Type> argtypes, Symbol msym, Env<AttrContext> env) {
mcimadamore@580 725 Env<AttrContext> calleeLintEnv = env;
mcimadamore@580 726 while (calleeLintEnv.info.lint == null)
mcimadamore@580 727 calleeLintEnv = calleeLintEnv.next;
mcimadamore@580 728 Lint calleeLint = calleeLintEnv.info.lint.augment(msym.attributes_field, msym.flags());
mcimadamore@547 729 Type argtype = argtypes.last();
mcimadamore@580 730 if (!types.isReifiable(argtype) && !calleeLint.isSuppressed(Lint.LintCategory.VARARGS)) {
mcimadamore@547 731 warnUnchecked(pos,
mcimadamore@547 732 "unchecked.generic.array.creation",
mcimadamore@547 733 argtype);
mcimadamore@580 734 }
mcimadamore@547 735 }
mcimadamore@547 736
duke@1 737 /** Check that given modifiers are legal for given symbol and
duke@1 738 * return modifiers together with any implicit modififiers for that symbol.
duke@1 739 * Warning: we can't use flags() here since this method
duke@1 740 * is called during class enter, when flags() would cause a premature
duke@1 741 * completion.
duke@1 742 * @param pos Position to be used for error reporting.
duke@1 743 * @param flags The set of modifiers given in a definition.
duke@1 744 * @param sym The defined symbol.
duke@1 745 */
duke@1 746 long checkFlags(DiagnosticPosition pos, long flags, Symbol sym, JCTree tree) {
duke@1 747 long mask;
duke@1 748 long implicit = 0;
duke@1 749 switch (sym.kind) {
duke@1 750 case VAR:
duke@1 751 if (sym.owner.kind != TYP)
duke@1 752 mask = LocalVarFlags;
duke@1 753 else if ((sym.owner.flags_field & INTERFACE) != 0)
duke@1 754 mask = implicit = InterfaceVarFlags;
duke@1 755 else
duke@1 756 mask = VarFlags;
duke@1 757 break;
duke@1 758 case MTH:
duke@1 759 if (sym.name == names.init) {
duke@1 760 if ((sym.owner.flags_field & ENUM) != 0) {
duke@1 761 // enum constructors cannot be declared public or
duke@1 762 // protected and must be implicitly or explicitly
duke@1 763 // private
duke@1 764 implicit = PRIVATE;
duke@1 765 mask = PRIVATE;
duke@1 766 } else
duke@1 767 mask = ConstructorFlags;
duke@1 768 } else if ((sym.owner.flags_field & INTERFACE) != 0)
duke@1 769 mask = implicit = InterfaceMethodFlags;
duke@1 770 else {
duke@1 771 mask = MethodFlags;
duke@1 772 }
duke@1 773 // Imply STRICTFP if owner has STRICTFP set.
duke@1 774 if (((flags|implicit) & Flags.ABSTRACT) == 0)
duke@1 775 implicit |= sym.owner.flags_field & STRICTFP;
duke@1 776 break;
duke@1 777 case TYP:
duke@1 778 if (sym.isLocal()) {
duke@1 779 mask = LocalClassFlags;
jjg@113 780 if (sym.name.isEmpty()) { // Anonymous class
duke@1 781 // Anonymous classes in static methods are themselves static;
duke@1 782 // that's why we admit STATIC here.
duke@1 783 mask |= STATIC;
duke@1 784 // JLS: Anonymous classes are final.
duke@1 785 implicit |= FINAL;
duke@1 786 }
duke@1 787 if ((sym.owner.flags_field & STATIC) == 0 &&
duke@1 788 (flags & ENUM) != 0)
duke@1 789 log.error(pos, "enums.must.be.static");
duke@1 790 } else if (sym.owner.kind == TYP) {
duke@1 791 mask = MemberClassFlags;
duke@1 792 if (sym.owner.owner.kind == PCK ||
duke@1 793 (sym.owner.flags_field & STATIC) != 0)
duke@1 794 mask |= STATIC;
duke@1 795 else if ((flags & ENUM) != 0)
duke@1 796 log.error(pos, "enums.must.be.static");
duke@1 797 // Nested interfaces and enums are always STATIC (Spec ???)
duke@1 798 if ((flags & (INTERFACE | ENUM)) != 0 ) implicit = STATIC;
duke@1 799 } else {
duke@1 800 mask = ClassFlags;
duke@1 801 }
duke@1 802 // Interfaces are always ABSTRACT
duke@1 803 if ((flags & INTERFACE) != 0) implicit |= ABSTRACT;
duke@1 804
duke@1 805 if ((flags & ENUM) != 0) {
duke@1 806 // enums can't be declared abstract or final
duke@1 807 mask &= ~(ABSTRACT | FINAL);
duke@1 808 implicit |= implicitEnumFinalFlag(tree);
duke@1 809 }
duke@1 810 // Imply STRICTFP if owner has STRICTFP set.
duke@1 811 implicit |= sym.owner.flags_field & STRICTFP;
duke@1 812 break;
duke@1 813 default:
duke@1 814 throw new AssertionError();
duke@1 815 }
duke@1 816 long illegal = flags & StandardFlags & ~mask;
duke@1 817 if (illegal != 0) {
duke@1 818 if ((illegal & INTERFACE) != 0) {
duke@1 819 log.error(pos, "intf.not.allowed.here");
duke@1 820 mask |= INTERFACE;
duke@1 821 }
duke@1 822 else {
duke@1 823 log.error(pos,
mcimadamore@80 824 "mod.not.allowed.here", asFlagSet(illegal));
duke@1 825 }
duke@1 826 }
duke@1 827 else if ((sym.kind == TYP ||
duke@1 828 // ISSUE: Disallowing abstract&private is no longer appropriate
duke@1 829 // in the presence of inner classes. Should it be deleted here?
duke@1 830 checkDisjoint(pos, flags,
duke@1 831 ABSTRACT,
duke@1 832 PRIVATE | STATIC))
duke@1 833 &&
duke@1 834 checkDisjoint(pos, flags,
duke@1 835 ABSTRACT | INTERFACE,
duke@1 836 FINAL | NATIVE | SYNCHRONIZED)
duke@1 837 &&
duke@1 838 checkDisjoint(pos, flags,
duke@1 839 PUBLIC,
duke@1 840 PRIVATE | PROTECTED)
duke@1 841 &&
duke@1 842 checkDisjoint(pos, flags,
duke@1 843 PRIVATE,
duke@1 844 PUBLIC | PROTECTED)
duke@1 845 &&
duke@1 846 checkDisjoint(pos, flags,
duke@1 847 FINAL,
duke@1 848 VOLATILE)
duke@1 849 &&
duke@1 850 (sym.kind == TYP ||
duke@1 851 checkDisjoint(pos, flags,
duke@1 852 ABSTRACT | NATIVE,
duke@1 853 STRICTFP))) {
duke@1 854 // skip
duke@1 855 }
duke@1 856 return flags & (mask | ~StandardFlags) | implicit;
duke@1 857 }
duke@1 858
duke@1 859
duke@1 860 /** Determine if this enum should be implicitly final.
duke@1 861 *
duke@1 862 * If the enum has no specialized enum contants, it is final.
duke@1 863 *
duke@1 864 * If the enum does have specialized enum contants, it is
duke@1 865 * <i>not</i> final.
duke@1 866 */
duke@1 867 private long implicitEnumFinalFlag(JCTree tree) {
duke@1 868 if (tree.getTag() != JCTree.CLASSDEF) return 0;
duke@1 869 class SpecialTreeVisitor extends JCTree.Visitor {
duke@1 870 boolean specialized;
duke@1 871 SpecialTreeVisitor() {
duke@1 872 this.specialized = false;
duke@1 873 };
duke@1 874
jjg@398 875 @Override
duke@1 876 public void visitTree(JCTree tree) { /* no-op */ }
duke@1 877
jjg@398 878 @Override
duke@1 879 public void visitVarDef(JCVariableDecl tree) {
duke@1 880 if ((tree.mods.flags & ENUM) != 0) {
duke@1 881 if (tree.init instanceof JCNewClass &&
duke@1 882 ((JCNewClass) tree.init).def != null) {
duke@1 883 specialized = true;
duke@1 884 }
duke@1 885 }
duke@1 886 }
duke@1 887 }
duke@1 888
duke@1 889 SpecialTreeVisitor sts = new SpecialTreeVisitor();
duke@1 890 JCClassDecl cdef = (JCClassDecl) tree;
duke@1 891 for (JCTree defs: cdef.defs) {
duke@1 892 defs.accept(sts);
duke@1 893 if (sts.specialized) return 0;
duke@1 894 }
duke@1 895 return FINAL;
duke@1 896 }
duke@1 897
duke@1 898 /* *************************************************************************
duke@1 899 * Type Validation
duke@1 900 **************************************************************************/
duke@1 901
duke@1 902 /** Validate a type expression. That is,
duke@1 903 * check that all type arguments of a parametric type are within
duke@1 904 * their bounds. This must be done in a second phase after type attributon
duke@1 905 * since a class might have a subclass as type parameter bound. E.g:
duke@1 906 *
duke@1 907 * class B<A extends C> { ... }
duke@1 908 * class C extends B<C> { ... }
duke@1 909 *
duke@1 910 * and we can't make sure that the bound is already attributed because
duke@1 911 * of possible cycles.
mcimadamore@638 912 *
mcimadamore@638 913 * Visitor method: Validate a type expression, if it is not null, catching
duke@1 914 * and reporting any completion failures.
duke@1 915 */
mcimadamore@122 916 void validate(JCTree tree, Env<AttrContext> env) {
mcimadamore@638 917 validate(tree, env, true);
duke@1 918 }
mcimadamore@638 919 void validate(JCTree tree, Env<AttrContext> env, boolean checkRaw) {
mcimadamore@638 920 new Validator(env).validateTree(tree, checkRaw, true);
mcimadamore@122 921 }
duke@1 922
duke@1 923 /** Visitor method: Validate a list of type expressions.
duke@1 924 */
mcimadamore@122 925 void validate(List<? extends JCTree> trees, Env<AttrContext> env) {
duke@1 926 for (List<? extends JCTree> l = trees; l.nonEmpty(); l = l.tail)
mcimadamore@122 927 validate(l.head, env);
duke@1 928 }
duke@1 929
duke@1 930 /** A visitor class for type validation.
duke@1 931 */
duke@1 932 class Validator extends JCTree.Visitor {
duke@1 933
mcimadamore@638 934 boolean isOuter;
mcimadamore@638 935 Env<AttrContext> env;
mcimadamore@638 936
mcimadamore@638 937 Validator(Env<AttrContext> env) {
mcimadamore@638 938 this.env = env;
mcimadamore@638 939 }
mcimadamore@638 940
jjg@398 941 @Override
duke@1 942 public void visitTypeArray(JCArrayTypeTree tree) {
mcimadamore@638 943 tree.elemtype.accept(this);
duke@1 944 }
duke@1 945
jjg@398 946 @Override
duke@1 947 public void visitTypeApply(JCTypeApply tree) {
duke@1 948 if (tree.type.tag == CLASS) {
mcimadamore@158 949 List<Type> formals = tree.type.tsym.type.allparams();
mcimadamore@158 950 List<Type> actuals = tree.type.allparams();
duke@1 951 List<JCExpression> args = tree.arguments;
mcimadamore@158 952 List<Type> forms = tree.type.tsym.type.getTypeArguments();
mcimadamore@561 953 ListBuffer<Type> tvars_buf = new ListBuffer<Type>();
duke@1 954
mcimadamore@638 955 boolean is_java_lang_Class = tree.type.tsym.flatName() == names.java_lang_Class;
mcimadamore@638 956
duke@1 957 // For matching pairs of actual argument types `a' and
duke@1 958 // formal type parameters with declared bound `b' ...
duke@1 959 while (args.nonEmpty() && forms.nonEmpty()) {
mcimadamore@638 960 validateTree(args.head,
mcimadamore@638 961 !(isOuter && is_java_lang_Class),
mcimadamore@638 962 false);
duke@1 963
duke@1 964 // exact type arguments needs to know their
duke@1 965 // bounds (for upper and lower bound
duke@1 966 // calculations). So we create new TypeVars with
duke@1 967 // bounds substed with actuals.
duke@1 968 tvars_buf.append(types.substBound(((TypeVar)forms.head),
duke@1 969 formals,
mcimadamore@78 970 actuals));
duke@1 971
duke@1 972 args = args.tail;
duke@1 973 forms = forms.tail;
duke@1 974 }
duke@1 975
duke@1 976 args = tree.arguments;
mcimadamore@154 977 List<Type> tvars_cap = types.substBounds(formals,
mcimadamore@154 978 formals,
mcimadamore@158 979 types.capture(tree.type).allparams());
mcimadamore@154 980 while (args.nonEmpty() && tvars_cap.nonEmpty()) {
mcimadamore@154 981 // Let the actual arguments know their bound
mcimadamore@154 982 args.head.type.withTypeVar((TypeVar)tvars_cap.head);
mcimadamore@154 983 args = args.tail;
mcimadamore@154 984 tvars_cap = tvars_cap.tail;
mcimadamore@154 985 }
mcimadamore@154 986
mcimadamore@154 987 args = tree.arguments;
mcimadamore@561 988 List<Type> tvars = tvars_buf.toList();
mcimadamore@154 989
duke@1 990 while (args.nonEmpty() && tvars.nonEmpty()) {
mcimadamore@561 991 Type actual = types.subst(args.head.type,
mcimadamore@561 992 tree.type.tsym.type.getTypeArguments(),
mcimadamore@561 993 tvars_buf.toList());
mcimadamore@154 994 checkExtends(args.head.pos(),
mcimadamore@561 995 actual,
mcimadamore@561 996 (TypeVar)tvars.head);
duke@1 997 args = args.tail;
duke@1 998 tvars = tvars.tail;
duke@1 999 }
duke@1 1000
mcimadamore@154 1001 checkCapture(tree);
mcimadamore@536 1002
duke@1 1003 // Check that this type is either fully parameterized, or
duke@1 1004 // not parameterized at all.
duke@1 1005 if (tree.type.getEnclosingType().isRaw())
duke@1 1006 log.error(tree.pos(), "improperly.formed.type.inner.raw.param");
duke@1 1007 if (tree.clazz.getTag() == JCTree.SELECT)
duke@1 1008 visitSelectInternal((JCFieldAccess)tree.clazz);
duke@1 1009 }
duke@1 1010 }
duke@1 1011
jjg@398 1012 @Override
duke@1 1013 public void visitTypeParameter(JCTypeParameter tree) {
mcimadamore@638 1014 validateTrees(tree.bounds, true, isOuter);
duke@1 1015 checkClassBounds(tree.pos(), tree.type);
duke@1 1016 }
duke@1 1017
duke@1 1018 @Override
duke@1 1019 public void visitWildcard(JCWildcard tree) {
duke@1 1020 if (tree.inner != null)
mcimadamore@638 1021 validateTree(tree.inner, true, isOuter);
duke@1 1022 }
duke@1 1023
jjg@398 1024 @Override
duke@1 1025 public void visitSelect(JCFieldAccess tree) {
duke@1 1026 if (tree.type.tag == CLASS) {
duke@1 1027 visitSelectInternal(tree);
duke@1 1028
duke@1 1029 // Check that this type is either fully parameterized, or
duke@1 1030 // not parameterized at all.
duke@1 1031 if (tree.selected.type.isParameterized() && tree.type.tsym.type.getTypeArguments().nonEmpty())
duke@1 1032 log.error(tree.pos(), "improperly.formed.type.param.missing");
duke@1 1033 }
duke@1 1034 }
duke@1 1035 public void visitSelectInternal(JCFieldAccess tree) {
mcimadamore@122 1036 if (tree.type.tsym.isStatic() &&
duke@1 1037 tree.selected.type.isParameterized()) {
duke@1 1038 // The enclosing type is not a class, so we are
duke@1 1039 // looking at a static member type. However, the
duke@1 1040 // qualifying expression is parameterized.
duke@1 1041 log.error(tree.pos(), "cant.select.static.class.from.param.type");
duke@1 1042 } else {
duke@1 1043 // otherwise validate the rest of the expression
mcimadamore@122 1044 tree.selected.accept(this);
duke@1 1045 }
duke@1 1046 }
duke@1 1047
jjg@398 1048 @Override
jjg@308 1049 public void visitAnnotatedType(JCAnnotatedType tree) {
jjg@308 1050 tree.underlyingType.accept(this);
jjg@308 1051 }
jjg@308 1052
duke@1 1053 /** Default visitor method: do nothing.
duke@1 1054 */
jjg@398 1055 @Override
duke@1 1056 public void visitTree(JCTree tree) {
duke@1 1057 }
mcimadamore@122 1058
mcimadamore@638 1059 public void validateTree(JCTree tree, boolean checkRaw, boolean isOuter) {
mcimadamore@638 1060 try {
mcimadamore@638 1061 if (tree != null) {
mcimadamore@638 1062 this.isOuter = isOuter;
mcimadamore@638 1063 tree.accept(this);
mcimadamore@638 1064 if (checkRaw)
mcimadamore@638 1065 checkRaw(tree, env);
mcimadamore@638 1066 }
mcimadamore@638 1067 } catch (CompletionFailure ex) {
mcimadamore@638 1068 completionError(tree.pos(), ex);
mcimadamore@638 1069 }
mcimadamore@638 1070 }
mcimadamore@638 1071
mcimadamore@638 1072 public void validateTrees(List<? extends JCTree> trees, boolean checkRaw, boolean isOuter) {
mcimadamore@638 1073 for (List<? extends JCTree> l = trees; l.nonEmpty(); l = l.tail)
mcimadamore@638 1074 validateTree(l.head, checkRaw, isOuter);
mcimadamore@638 1075 }
mcimadamore@638 1076
mcimadamore@638 1077 void checkRaw(JCTree tree, Env<AttrContext> env) {
mcimadamore@638 1078 if (lint.isEnabled(Lint.LintCategory.RAW) &&
mcimadamore@638 1079 tree.type.tag == CLASS &&
mcimadamore@638 1080 !TreeInfo.isDiamond(tree) &&
mcimadamore@638 1081 !env.enclClass.name.isEmpty() && //anonymous or intersection
mcimadamore@638 1082 tree.type.isRaw()) {
mcimadamore@638 1083 log.warning(Lint.LintCategory.RAW,
mcimadamore@638 1084 tree.pos(), "raw.class.use", tree.type, tree.type.tsym.type);
mcimadamore@638 1085 }
mcimadamore@638 1086 }
duke@1 1087 }
duke@1 1088
duke@1 1089 /* *************************************************************************
duke@1 1090 * Exception checking
duke@1 1091 **************************************************************************/
duke@1 1092
duke@1 1093 /* The following methods treat classes as sets that contain
duke@1 1094 * the class itself and all their subclasses
duke@1 1095 */
duke@1 1096
duke@1 1097 /** Is given type a subtype of some of the types in given list?
duke@1 1098 */
duke@1 1099 boolean subset(Type t, List<Type> ts) {
duke@1 1100 for (List<Type> l = ts; l.nonEmpty(); l = l.tail)
duke@1 1101 if (types.isSubtype(t, l.head)) return true;
duke@1 1102 return false;
duke@1 1103 }
duke@1 1104
duke@1 1105 /** Is given type a subtype or supertype of
duke@1 1106 * some of the types in given list?
duke@1 1107 */
duke@1 1108 boolean intersects(Type t, List<Type> ts) {
duke@1 1109 for (List<Type> l = ts; l.nonEmpty(); l = l.tail)
duke@1 1110 if (types.isSubtype(t, l.head) || types.isSubtype(l.head, t)) return true;
duke@1 1111 return false;
duke@1 1112 }
duke@1 1113
duke@1 1114 /** Add type set to given type list, unless it is a subclass of some class
duke@1 1115 * in the list.
duke@1 1116 */
duke@1 1117 List<Type> incl(Type t, List<Type> ts) {
duke@1 1118 return subset(t, ts) ? ts : excl(t, ts).prepend(t);
duke@1 1119 }
duke@1 1120
duke@1 1121 /** Remove type set from type set list.
duke@1 1122 */
duke@1 1123 List<Type> excl(Type t, List<Type> ts) {
duke@1 1124 if (ts.isEmpty()) {
duke@1 1125 return ts;
duke@1 1126 } else {
duke@1 1127 List<Type> ts1 = excl(t, ts.tail);
duke@1 1128 if (types.isSubtype(ts.head, t)) return ts1;
duke@1 1129 else if (ts1 == ts.tail) return ts;
duke@1 1130 else return ts1.prepend(ts.head);
duke@1 1131 }
duke@1 1132 }
duke@1 1133
duke@1 1134 /** Form the union of two type set lists.
duke@1 1135 */
duke@1 1136 List<Type> union(List<Type> ts1, List<Type> ts2) {
duke@1 1137 List<Type> ts = ts1;
duke@1 1138 for (List<Type> l = ts2; l.nonEmpty(); l = l.tail)
duke@1 1139 ts = incl(l.head, ts);
duke@1 1140 return ts;
duke@1 1141 }
duke@1 1142
duke@1 1143 /** Form the difference of two type lists.
duke@1 1144 */
duke@1 1145 List<Type> diff(List<Type> ts1, List<Type> ts2) {
duke@1 1146 List<Type> ts = ts1;
duke@1 1147 for (List<Type> l = ts2; l.nonEmpty(); l = l.tail)
duke@1 1148 ts = excl(l.head, ts);
duke@1 1149 return ts;
duke@1 1150 }
duke@1 1151
duke@1 1152 /** Form the intersection of two type lists.
duke@1 1153 */
duke@1 1154 public List<Type> intersect(List<Type> ts1, List<Type> ts2) {
duke@1 1155 List<Type> ts = List.nil();
duke@1 1156 for (List<Type> l = ts1; l.nonEmpty(); l = l.tail)
duke@1 1157 if (subset(l.head, ts2)) ts = incl(l.head, ts);
duke@1 1158 for (List<Type> l = ts2; l.nonEmpty(); l = l.tail)
duke@1 1159 if (subset(l.head, ts1)) ts = incl(l.head, ts);
duke@1 1160 return ts;
duke@1 1161 }
duke@1 1162
duke@1 1163 /** Is exc an exception symbol that need not be declared?
duke@1 1164 */
duke@1 1165 boolean isUnchecked(ClassSymbol exc) {
duke@1 1166 return
duke@1 1167 exc.kind == ERR ||
duke@1 1168 exc.isSubClass(syms.errorType.tsym, types) ||
duke@1 1169 exc.isSubClass(syms.runtimeExceptionType.tsym, types);
duke@1 1170 }
duke@1 1171
duke@1 1172 /** Is exc an exception type that need not be declared?
duke@1 1173 */
duke@1 1174 boolean isUnchecked(Type exc) {
duke@1 1175 return
duke@1 1176 (exc.tag == TYPEVAR) ? isUnchecked(types.supertype(exc)) :
duke@1 1177 (exc.tag == CLASS) ? isUnchecked((ClassSymbol)exc.tsym) :
duke@1 1178 exc.tag == BOT;
duke@1 1179 }
duke@1 1180
duke@1 1181 /** Same, but handling completion failures.
duke@1 1182 */
duke@1 1183 boolean isUnchecked(DiagnosticPosition pos, Type exc) {
duke@1 1184 try {
duke@1 1185 return isUnchecked(exc);
duke@1 1186 } catch (CompletionFailure ex) {
duke@1 1187 completionError(pos, ex);
duke@1 1188 return true;
duke@1 1189 }
duke@1 1190 }
duke@1 1191
duke@1 1192 /** Is exc handled by given exception list?
duke@1 1193 */
duke@1 1194 boolean isHandled(Type exc, List<Type> handled) {
duke@1 1195 return isUnchecked(exc) || subset(exc, handled);
duke@1 1196 }
duke@1 1197
duke@1 1198 /** Return all exceptions in thrown list that are not in handled list.
duke@1 1199 * @param thrown The list of thrown exceptions.
duke@1 1200 * @param handled The list of handled exceptions.
duke@1 1201 */
mcimadamore@362 1202 List<Type> unhandled(List<Type> thrown, List<Type> handled) {
duke@1 1203 List<Type> unhandled = List.nil();
duke@1 1204 for (List<Type> l = thrown; l.nonEmpty(); l = l.tail)
duke@1 1205 if (!isHandled(l.head, handled)) unhandled = unhandled.prepend(l.head);
duke@1 1206 return unhandled;
duke@1 1207 }
duke@1 1208
duke@1 1209 /* *************************************************************************
duke@1 1210 * Overriding/Implementation checking
duke@1 1211 **************************************************************************/
duke@1 1212
duke@1 1213 /** The level of access protection given by a flag set,
duke@1 1214 * where PRIVATE is highest and PUBLIC is lowest.
duke@1 1215 */
duke@1 1216 static int protection(long flags) {
duke@1 1217 switch ((short)(flags & AccessFlags)) {
duke@1 1218 case PRIVATE: return 3;
duke@1 1219 case PROTECTED: return 1;
duke@1 1220 default:
duke@1 1221 case PUBLIC: return 0;
duke@1 1222 case 0: return 2;
duke@1 1223 }
duke@1 1224 }
duke@1 1225
duke@1 1226 /** A customized "cannot override" error message.
duke@1 1227 * @param m The overriding method.
duke@1 1228 * @param other The overridden method.
duke@1 1229 * @return An internationalized string.
duke@1 1230 */
mcimadamore@89 1231 Object cannotOverride(MethodSymbol m, MethodSymbol other) {
duke@1 1232 String key;
duke@1 1233 if ((other.owner.flags() & INTERFACE) == 0)
duke@1 1234 key = "cant.override";
duke@1 1235 else if ((m.owner.flags() & INTERFACE) == 0)
duke@1 1236 key = "cant.implement";
duke@1 1237 else
duke@1 1238 key = "clashes.with";
mcimadamore@89 1239 return diags.fragment(key, m, m.location(), other, other.location());
duke@1 1240 }
duke@1 1241
duke@1 1242 /** A customized "override" warning message.
duke@1 1243 * @param m The overriding method.
duke@1 1244 * @param other The overridden method.
duke@1 1245 * @return An internationalized string.
duke@1 1246 */
mcimadamore@89 1247 Object uncheckedOverrides(MethodSymbol m, MethodSymbol other) {
duke@1 1248 String key;
duke@1 1249 if ((other.owner.flags() & INTERFACE) == 0)
duke@1 1250 key = "unchecked.override";
duke@1 1251 else if ((m.owner.flags() & INTERFACE) == 0)
duke@1 1252 key = "unchecked.implement";
duke@1 1253 else
duke@1 1254 key = "unchecked.clash.with";
mcimadamore@89 1255 return diags.fragment(key, m, m.location(), other, other.location());
duke@1 1256 }
duke@1 1257
duke@1 1258 /** A customized "override" warning message.
duke@1 1259 * @param m The overriding method.
duke@1 1260 * @param other The overridden method.
duke@1 1261 * @return An internationalized string.
duke@1 1262 */
mcimadamore@89 1263 Object varargsOverrides(MethodSymbol m, MethodSymbol other) {
duke@1 1264 String key;
duke@1 1265 if ((other.owner.flags() & INTERFACE) == 0)
duke@1 1266 key = "varargs.override";
duke@1 1267 else if ((m.owner.flags() & INTERFACE) == 0)
duke@1 1268 key = "varargs.implement";
duke@1 1269 else
duke@1 1270 key = "varargs.clash.with";
mcimadamore@89 1271 return diags.fragment(key, m, m.location(), other, other.location());
duke@1 1272 }
duke@1 1273
duke@1 1274 /** Check that this method conforms with overridden method 'other'.
duke@1 1275 * where `origin' is the class where checking started.
duke@1 1276 * Complications:
duke@1 1277 * (1) Do not check overriding of synthetic methods
duke@1 1278 * (reason: they might be final).
duke@1 1279 * todo: check whether this is still necessary.
duke@1 1280 * (2) Admit the case where an interface proxy throws fewer exceptions
duke@1 1281 * than the method it implements. Augment the proxy methods with the
duke@1 1282 * undeclared exceptions in this case.
duke@1 1283 * (3) When generics are enabled, admit the case where an interface proxy
duke@1 1284 * has a result type
duke@1 1285 * extended by the result type of the method it implements.
duke@1 1286 * Change the proxies result type to the smaller type in this case.
duke@1 1287 *
duke@1 1288 * @param tree The tree from which positions
duke@1 1289 * are extracted for errors.
duke@1 1290 * @param m The overriding method.
duke@1 1291 * @param other The overridden method.
duke@1 1292 * @param origin The class of which the overriding method
duke@1 1293 * is a member.
duke@1 1294 */
duke@1 1295 void checkOverride(JCTree tree,
duke@1 1296 MethodSymbol m,
duke@1 1297 MethodSymbol other,
duke@1 1298 ClassSymbol origin) {
duke@1 1299 // Don't check overriding of synthetic methods or by bridge methods.
duke@1 1300 if ((m.flags() & (SYNTHETIC|BRIDGE)) != 0 || (other.flags() & SYNTHETIC) != 0) {
duke@1 1301 return;
duke@1 1302 }
duke@1 1303
duke@1 1304 // Error if static method overrides instance method (JLS 8.4.6.2).
duke@1 1305 if ((m.flags() & STATIC) != 0 &&
duke@1 1306 (other.flags() & STATIC) == 0) {
duke@1 1307 log.error(TreeInfo.diagnosticPositionFor(m, tree), "override.static",
duke@1 1308 cannotOverride(m, other));
duke@1 1309 return;
duke@1 1310 }
duke@1 1311
duke@1 1312 // Error if instance method overrides static or final
duke@1 1313 // method (JLS 8.4.6.1).
duke@1 1314 if ((other.flags() & FINAL) != 0 ||
duke@1 1315 (m.flags() & STATIC) == 0 &&
duke@1 1316 (other.flags() & STATIC) != 0) {
duke@1 1317 log.error(TreeInfo.diagnosticPositionFor(m, tree), "override.meth",
duke@1 1318 cannotOverride(m, other),
mcimadamore@80 1319 asFlagSet(other.flags() & (FINAL | STATIC)));
duke@1 1320 return;
duke@1 1321 }
duke@1 1322
duke@1 1323 if ((m.owner.flags() & ANNOTATION) != 0) {
duke@1 1324 // handled in validateAnnotationMethod
duke@1 1325 return;
duke@1 1326 }
duke@1 1327
duke@1 1328 // Error if overriding method has weaker access (JLS 8.4.6.3).
duke@1 1329 if ((origin.flags() & INTERFACE) == 0 &&
duke@1 1330 protection(m.flags()) > protection(other.flags())) {
duke@1 1331 log.error(TreeInfo.diagnosticPositionFor(m, tree), "override.weaker.access",
duke@1 1332 cannotOverride(m, other),
mcimadamore@80 1333 other.flags() == 0 ?
mcimadamore@80 1334 Flag.PACKAGE :
mcimadamore@80 1335 asFlagSet(other.flags() & AccessFlags));
duke@1 1336 return;
duke@1 1337 }
duke@1 1338
duke@1 1339 Type mt = types.memberType(origin.type, m);
duke@1 1340 Type ot = types.memberType(origin.type, other);
duke@1 1341 // Error if overriding result type is different
duke@1 1342 // (or, in the case of generics mode, not a subtype) of
duke@1 1343 // overridden result type. We have to rename any type parameters
duke@1 1344 // before comparing types.
duke@1 1345 List<Type> mtvars = mt.getTypeArguments();
duke@1 1346 List<Type> otvars = ot.getTypeArguments();
duke@1 1347 Type mtres = mt.getReturnType();
duke@1 1348 Type otres = types.subst(ot.getReturnType(), otvars, mtvars);
duke@1 1349
duke@1 1350 overrideWarner.warned = false;
duke@1 1351 boolean resultTypesOK =
tbell@202 1352 types.returnTypeSubstitutable(mt, ot, otres, overrideWarner);
duke@1 1353 if (!resultTypesOK) {
jjg@398 1354 if (!allowCovariantReturns &&
duke@1 1355 m.owner != origin &&
duke@1 1356 m.owner.isSubClass(other.owner, types)) {
duke@1 1357 // allow limited interoperability with covariant returns
duke@1 1358 } else {
mcimadamore@362 1359 log.error(TreeInfo.diagnosticPositionFor(m, tree),
mcimadamore@362 1360 "override.incompatible.ret",
mcimadamore@362 1361 cannotOverride(m, other),
duke@1 1362 mtres, otres);
duke@1 1363 return;
duke@1 1364 }
duke@1 1365 } else if (overrideWarner.warned) {
duke@1 1366 warnUnchecked(TreeInfo.diagnosticPositionFor(m, tree),
mcimadamore@362 1367 "override.unchecked.ret",
mcimadamore@362 1368 uncheckedOverrides(m, other),
mcimadamore@362 1369 mtres, otres);
duke@1 1370 }
duke@1 1371
duke@1 1372 // Error if overriding method throws an exception not reported
duke@1 1373 // by overridden method.
duke@1 1374 List<Type> otthrown = types.subst(ot.getThrownTypes(), otvars, mtvars);
mcimadamore@362 1375 List<Type> unhandledErased = unhandled(mt.getThrownTypes(), types.erasure(otthrown));
mcimadamore@362 1376 List<Type> unhandledUnerased = unhandled(mt.getThrownTypes(), otthrown);
mcimadamore@362 1377 if (unhandledErased.nonEmpty()) {
duke@1 1378 log.error(TreeInfo.diagnosticPositionFor(m, tree),
duke@1 1379 "override.meth.doesnt.throw",
duke@1 1380 cannotOverride(m, other),
mcimadamore@362 1381 unhandledUnerased.head);
mcimadamore@362 1382 return;
mcimadamore@362 1383 }
mcimadamore@362 1384 else if (unhandledUnerased.nonEmpty()) {
mcimadamore@362 1385 warnUnchecked(TreeInfo.diagnosticPositionFor(m, tree),
mcimadamore@362 1386 "override.unchecked.thrown",
mcimadamore@362 1387 cannotOverride(m, other),
mcimadamore@362 1388 unhandledUnerased.head);
duke@1 1389 return;
duke@1 1390 }
duke@1 1391
duke@1 1392 // Optional warning if varargs don't agree
duke@1 1393 if ((((m.flags() ^ other.flags()) & Flags.VARARGS) != 0)
duke@1 1394 && lint.isEnabled(Lint.LintCategory.OVERRIDES)) {
duke@1 1395 log.warning(TreeInfo.diagnosticPositionFor(m, tree),
duke@1 1396 ((m.flags() & Flags.VARARGS) != 0)
duke@1 1397 ? "override.varargs.missing"
duke@1 1398 : "override.varargs.extra",
duke@1 1399 varargsOverrides(m, other));
duke@1 1400 }
duke@1 1401
duke@1 1402 // Warn if instance method overrides bridge method (compiler spec ??)
duke@1 1403 if ((other.flags() & BRIDGE) != 0) {
duke@1 1404 log.warning(TreeInfo.diagnosticPositionFor(m, tree), "override.bridge",
duke@1 1405 uncheckedOverrides(m, other));
duke@1 1406 }
duke@1 1407
duke@1 1408 // Warn if a deprecated method overridden by a non-deprecated one.
duke@1 1409 if ((other.flags() & DEPRECATED) != 0
duke@1 1410 && (m.flags() & DEPRECATED) == 0
duke@1 1411 && m.outermostClass() != other.outermostClass()
duke@1 1412 && !isDeprecatedOverrideIgnorable(other, origin)) {
duke@1 1413 warnDeprecated(TreeInfo.diagnosticPositionFor(m, tree), other);
duke@1 1414 }
duke@1 1415 }
duke@1 1416 // where
duke@1 1417 private boolean isDeprecatedOverrideIgnorable(MethodSymbol m, ClassSymbol origin) {
duke@1 1418 // If the method, m, is defined in an interface, then ignore the issue if the method
duke@1 1419 // is only inherited via a supertype and also implemented in the supertype,
duke@1 1420 // because in that case, we will rediscover the issue when examining the method
duke@1 1421 // in the supertype.
duke@1 1422 // If the method, m, is not defined in an interface, then the only time we need to
duke@1 1423 // address the issue is when the method is the supertype implemementation: any other
duke@1 1424 // case, we will have dealt with when examining the supertype classes
duke@1 1425 ClassSymbol mc = m.enclClass();
duke@1 1426 Type st = types.supertype(origin.type);
duke@1 1427 if (st.tag != CLASS)
duke@1 1428 return true;
duke@1 1429 MethodSymbol stimpl = m.implementation((ClassSymbol)st.tsym, types, false);
duke@1 1430
duke@1 1431 if (mc != null && ((mc.flags() & INTERFACE) != 0)) {
duke@1 1432 List<Type> intfs = types.interfaces(origin.type);
duke@1 1433 return (intfs.contains(mc.type) ? false : (stimpl != null));
duke@1 1434 }
duke@1 1435 else
duke@1 1436 return (stimpl != m);
duke@1 1437 }
duke@1 1438
duke@1 1439
duke@1 1440 // used to check if there were any unchecked conversions
duke@1 1441 Warner overrideWarner = new Warner();
duke@1 1442
duke@1 1443 /** Check that a class does not inherit two concrete methods
duke@1 1444 * with the same signature.
duke@1 1445 * @param pos Position to be used for error reporting.
duke@1 1446 * @param site The class type to be checked.
duke@1 1447 */
duke@1 1448 public void checkCompatibleConcretes(DiagnosticPosition pos, Type site) {
duke@1 1449 Type sup = types.supertype(site);
duke@1 1450 if (sup.tag != CLASS) return;
duke@1 1451
duke@1 1452 for (Type t1 = sup;
duke@1 1453 t1.tsym.type.isParameterized();
duke@1 1454 t1 = types.supertype(t1)) {
duke@1 1455 for (Scope.Entry e1 = t1.tsym.members().elems;
duke@1 1456 e1 != null;
duke@1 1457 e1 = e1.sibling) {
duke@1 1458 Symbol s1 = e1.sym;
duke@1 1459 if (s1.kind != MTH ||
duke@1 1460 (s1.flags() & (STATIC|SYNTHETIC|BRIDGE)) != 0 ||
duke@1 1461 !s1.isInheritedIn(site.tsym, types) ||
duke@1 1462 ((MethodSymbol)s1).implementation(site.tsym,
duke@1 1463 types,
duke@1 1464 true) != s1)
duke@1 1465 continue;
duke@1 1466 Type st1 = types.memberType(t1, s1);
duke@1 1467 int s1ArgsLength = st1.getParameterTypes().length();
duke@1 1468 if (st1 == s1.type) continue;
duke@1 1469
duke@1 1470 for (Type t2 = sup;
duke@1 1471 t2.tag == CLASS;
duke@1 1472 t2 = types.supertype(t2)) {
mcimadamore@24 1473 for (Scope.Entry e2 = t2.tsym.members().lookup(s1.name);
duke@1 1474 e2.scope != null;
duke@1 1475 e2 = e2.next()) {
duke@1 1476 Symbol s2 = e2.sym;
duke@1 1477 if (s2 == s1 ||
duke@1 1478 s2.kind != MTH ||
duke@1 1479 (s2.flags() & (STATIC|SYNTHETIC|BRIDGE)) != 0 ||
duke@1 1480 s2.type.getParameterTypes().length() != s1ArgsLength ||
duke@1 1481 !s2.isInheritedIn(site.tsym, types) ||
duke@1 1482 ((MethodSymbol)s2).implementation(site.tsym,
duke@1 1483 types,
duke@1 1484 true) != s2)
duke@1 1485 continue;
duke@1 1486 Type st2 = types.memberType(t2, s2);
duke@1 1487 if (types.overrideEquivalent(st1, st2))
duke@1 1488 log.error(pos, "concrete.inheritance.conflict",
duke@1 1489 s1, t1, s2, t2, sup);
duke@1 1490 }
duke@1 1491 }
duke@1 1492 }
duke@1 1493 }
duke@1 1494 }
duke@1 1495
duke@1 1496 /** Check that classes (or interfaces) do not each define an abstract
duke@1 1497 * method with same name and arguments but incompatible return types.
duke@1 1498 * @param pos Position to be used for error reporting.
duke@1 1499 * @param t1 The first argument type.
duke@1 1500 * @param t2 The second argument type.
duke@1 1501 */
duke@1 1502 public boolean checkCompatibleAbstracts(DiagnosticPosition pos,
duke@1 1503 Type t1,
duke@1 1504 Type t2) {
duke@1 1505 return checkCompatibleAbstracts(pos, t1, t2,
duke@1 1506 types.makeCompoundType(t1, t2));
duke@1 1507 }
duke@1 1508
duke@1 1509 public boolean checkCompatibleAbstracts(DiagnosticPosition pos,
duke@1 1510 Type t1,
duke@1 1511 Type t2,
duke@1 1512 Type site) {
mcimadamore@746 1513 return firstIncompatibility(pos, t1, t2, site) == null;
duke@1 1514 }
duke@1 1515
duke@1 1516 /** Return the first method which is defined with same args
duke@1 1517 * but different return types in two given interfaces, or null if none
duke@1 1518 * exists.
duke@1 1519 * @param t1 The first type.
duke@1 1520 * @param t2 The second type.
duke@1 1521 * @param site The most derived type.
duke@1 1522 * @returns symbol from t2 that conflicts with one in t1.
duke@1 1523 */
mcimadamore@746 1524 private Symbol firstIncompatibility(DiagnosticPosition pos, Type t1, Type t2, Type site) {
duke@1 1525 Map<TypeSymbol,Type> interfaces1 = new HashMap<TypeSymbol,Type>();
duke@1 1526 closure(t1, interfaces1);
duke@1 1527 Map<TypeSymbol,Type> interfaces2;
duke@1 1528 if (t1 == t2)
duke@1 1529 interfaces2 = interfaces1;
duke@1 1530 else
duke@1 1531 closure(t2, interfaces1, interfaces2 = new HashMap<TypeSymbol,Type>());
duke@1 1532
duke@1 1533 for (Type t3 : interfaces1.values()) {
duke@1 1534 for (Type t4 : interfaces2.values()) {
mcimadamore@746 1535 Symbol s = firstDirectIncompatibility(pos, t3, t4, site);
duke@1 1536 if (s != null) return s;
duke@1 1537 }
duke@1 1538 }
duke@1 1539 return null;
duke@1 1540 }
duke@1 1541
duke@1 1542 /** Compute all the supertypes of t, indexed by type symbol. */
duke@1 1543 private void closure(Type t, Map<TypeSymbol,Type> typeMap) {
duke@1 1544 if (t.tag != CLASS) return;
duke@1 1545 if (typeMap.put(t.tsym, t) == null) {
duke@1 1546 closure(types.supertype(t), typeMap);
duke@1 1547 for (Type i : types.interfaces(t))
duke@1 1548 closure(i, typeMap);
duke@1 1549 }
duke@1 1550 }
duke@1 1551
duke@1 1552 /** Compute all the supertypes of t, indexed by type symbol (except thise in typesSkip). */
duke@1 1553 private void closure(Type t, Map<TypeSymbol,Type> typesSkip, Map<TypeSymbol,Type> typeMap) {
duke@1 1554 if (t.tag != CLASS) return;
duke@1 1555 if (typesSkip.get(t.tsym) != null) return;
duke@1 1556 if (typeMap.put(t.tsym, t) == null) {
duke@1 1557 closure(types.supertype(t), typesSkip, typeMap);
duke@1 1558 for (Type i : types.interfaces(t))
duke@1 1559 closure(i, typesSkip, typeMap);
duke@1 1560 }
duke@1 1561 }
duke@1 1562
duke@1 1563 /** Return the first method in t2 that conflicts with a method from t1. */
mcimadamore@746 1564 private Symbol firstDirectIncompatibility(DiagnosticPosition pos, Type t1, Type t2, Type site) {
duke@1 1565 for (Scope.Entry e1 = t1.tsym.members().elems; e1 != null; e1 = e1.sibling) {
duke@1 1566 Symbol s1 = e1.sym;
duke@1 1567 Type st1 = null;
duke@1 1568 if (s1.kind != MTH || !s1.isInheritedIn(site.tsym, types)) continue;
duke@1 1569 Symbol impl = ((MethodSymbol)s1).implementation(site.tsym, types, false);
duke@1 1570 if (impl != null && (impl.flags() & ABSTRACT) == 0) continue;
duke@1 1571 for (Scope.Entry e2 = t2.tsym.members().lookup(s1.name); e2.scope != null; e2 = e2.next()) {
duke@1 1572 Symbol s2 = e2.sym;
duke@1 1573 if (s1 == s2) continue;
duke@1 1574 if (s2.kind != MTH || !s2.isInheritedIn(site.tsym, types)) continue;
duke@1 1575 if (st1 == null) st1 = types.memberType(t1, s1);
duke@1 1576 Type st2 = types.memberType(t2, s2);
duke@1 1577 if (types.overrideEquivalent(st1, st2)) {
duke@1 1578 List<Type> tvars1 = st1.getTypeArguments();
duke@1 1579 List<Type> tvars2 = st2.getTypeArguments();
duke@1 1580 Type rt1 = st1.getReturnType();
duke@1 1581 Type rt2 = types.subst(st2.getReturnType(), tvars2, tvars1);
duke@1 1582 boolean compat =
duke@1 1583 types.isSameType(rt1, rt2) ||
duke@1 1584 rt1.tag >= CLASS && rt2.tag >= CLASS &&
duke@1 1585 (types.covariantReturnType(rt1, rt2, Warner.noWarnings) ||
mcimadamore@59 1586 types.covariantReturnType(rt2, rt1, Warner.noWarnings)) ||
mcimadamore@59 1587 checkCommonOverriderIn(s1,s2,site);
mcimadamore@746 1588 if (!compat) {
mcimadamore@746 1589 log.error(pos, "types.incompatible.diff.ret",
mcimadamore@746 1590 t1, t2, s2.name +
mcimadamore@746 1591 "(" + types.memberType(t2, s2).getParameterTypes() + ")");
mcimadamore@746 1592 return s2;
mcimadamore@746 1593 }
mcimadamore@746 1594 } else if (!checkNameClash((ClassSymbol)site.tsym, s1, s2)) {
mcimadamore@746 1595 log.error(pos,
mcimadamore@746 1596 "name.clash.same.erasure.no.override",
mcimadamore@746 1597 s1, s1.location(),
mcimadamore@746 1598 s2, s2.location());
mcimadamore@746 1599 return s2;
duke@1 1600 }
duke@1 1601 }
duke@1 1602 }
duke@1 1603 return null;
duke@1 1604 }
mcimadamore@59 1605 //WHERE
mcimadamore@59 1606 boolean checkCommonOverriderIn(Symbol s1, Symbol s2, Type site) {
mcimadamore@59 1607 Map<TypeSymbol,Type> supertypes = new HashMap<TypeSymbol,Type>();
mcimadamore@59 1608 Type st1 = types.memberType(site, s1);
mcimadamore@59 1609 Type st2 = types.memberType(site, s2);
mcimadamore@59 1610 closure(site, supertypes);
mcimadamore@59 1611 for (Type t : supertypes.values()) {
mcimadamore@59 1612 for (Scope.Entry e = t.tsym.members().lookup(s1.name); e.scope != null; e = e.next()) {
mcimadamore@59 1613 Symbol s3 = e.sym;
mcimadamore@59 1614 if (s3 == s1 || s3 == s2 || s3.kind != MTH || (s3.flags() & (BRIDGE|SYNTHETIC)) != 0) continue;
mcimadamore@59 1615 Type st3 = types.memberType(site,s3);
mcimadamore@59 1616 if (types.overrideEquivalent(st3, st1) && types.overrideEquivalent(st3, st2)) {
mcimadamore@59 1617 if (s3.owner == site.tsym) {
mcimadamore@59 1618 return true;
mcimadamore@59 1619 }
mcimadamore@59 1620 List<Type> tvars1 = st1.getTypeArguments();
mcimadamore@59 1621 List<Type> tvars2 = st2.getTypeArguments();
mcimadamore@59 1622 List<Type> tvars3 = st3.getTypeArguments();
mcimadamore@59 1623 Type rt1 = st1.getReturnType();
mcimadamore@59 1624 Type rt2 = st2.getReturnType();
mcimadamore@59 1625 Type rt13 = types.subst(st3.getReturnType(), tvars3, tvars1);
mcimadamore@59 1626 Type rt23 = types.subst(st3.getReturnType(), tvars3, tvars2);
mcimadamore@59 1627 boolean compat =
mcimadamore@59 1628 rt13.tag >= CLASS && rt23.tag >= CLASS &&
mcimadamore@59 1629 (types.covariantReturnType(rt13, rt1, Warner.noWarnings) &&
mcimadamore@59 1630 types.covariantReturnType(rt23, rt2, Warner.noWarnings));
mcimadamore@59 1631 if (compat)
mcimadamore@59 1632 return true;
mcimadamore@59 1633 }
mcimadamore@59 1634 }
mcimadamore@59 1635 }
mcimadamore@59 1636 return false;
mcimadamore@59 1637 }
duke@1 1638
duke@1 1639 /** Check that a given method conforms with any method it overrides.
duke@1 1640 * @param tree The tree from which positions are extracted
duke@1 1641 * for errors.
duke@1 1642 * @param m The overriding method.
duke@1 1643 */
duke@1 1644 void checkOverride(JCTree tree, MethodSymbol m) {
duke@1 1645 ClassSymbol origin = (ClassSymbol)m.owner;
duke@1 1646 if ((origin.flags() & ENUM) != 0 && names.finalize.equals(m.name))
duke@1 1647 if (m.overrides(syms.enumFinalFinalize, origin, types, false)) {
duke@1 1648 log.error(tree.pos(), "enum.no.finalize");
duke@1 1649 return;
duke@1 1650 }
mcimadamore@746 1651 for (Type t = origin.type; t.tag == CLASS;
duke@1 1652 t = types.supertype(t)) {
mcimadamore@746 1653 if (t != origin.type) {
mcimadamore@746 1654 checkOverride(tree, t, origin, m);
mcimadamore@746 1655 }
mcimadamore@746 1656 for (Type t2 : types.interfaces(t)) {
mcimadamore@746 1657 checkOverride(tree, t2, origin, m);
duke@1 1658 }
duke@1 1659 }
duke@1 1660 }
duke@1 1661
mcimadamore@746 1662 void checkOverride(JCTree tree, Type site, ClassSymbol origin, MethodSymbol m) {
mcimadamore@746 1663 TypeSymbol c = site.tsym;
mcimadamore@746 1664 Scope.Entry e = c.members().lookup(m.name);
mcimadamore@746 1665 while (e.scope != null) {
mcimadamore@746 1666 if (m.overrides(e.sym, origin, types, false)) {
mcimadamore@746 1667 if ((e.sym.flags() & ABSTRACT) == 0) {
mcimadamore@746 1668 checkOverride(tree, m, (MethodSymbol)e.sym, origin);
mcimadamore@746 1669 }
mcimadamore@746 1670 }
mcimadamore@746 1671 else if (!checkNameClash(origin, e.sym, m)) {
mcimadamore@746 1672 log.error(tree,
mcimadamore@746 1673 "name.clash.same.erasure.no.override",
mcimadamore@746 1674 m, m.location(),
mcimadamore@746 1675 e.sym, e.sym.location());
mcimadamore@746 1676 }
mcimadamore@746 1677 e = e.next();
mcimadamore@746 1678 }
mcimadamore@746 1679 }
mcimadamore@746 1680
mcimadamore@746 1681 private boolean checkNameClash(ClassSymbol origin, Symbol s1, Symbol s2) {
mcimadamore@746 1682 if (s1.kind == MTH &&
mcimadamore@746 1683 s1.isInheritedIn(origin, types) &&
mcimadamore@746 1684 (s1.flags() & SYNTHETIC) == 0 &&
mcimadamore@746 1685 !s2.isConstructor()) {
mcimadamore@746 1686 Type er1 = s2.erasure(types);
mcimadamore@746 1687 Type er2 = s1.erasure(types);
mcimadamore@746 1688 if (types.isSameTypes(er1.getParameterTypes(),
mcimadamore@746 1689 er2.getParameterTypes())) {
mcimadamore@746 1690 return false;
mcimadamore@746 1691 }
mcimadamore@746 1692 }
mcimadamore@746 1693 return true;
mcimadamore@746 1694 }
mcimadamore@746 1695
mcimadamore@746 1696
duke@1 1697 /** Check that all abstract members of given class have definitions.
duke@1 1698 * @param pos Position to be used for error reporting.
duke@1 1699 * @param c The class.
duke@1 1700 */
duke@1 1701 void checkAllDefined(DiagnosticPosition pos, ClassSymbol c) {
duke@1 1702 try {
duke@1 1703 MethodSymbol undef = firstUndef(c, c);
duke@1 1704 if (undef != null) {
duke@1 1705 if ((c.flags() & ENUM) != 0 &&
duke@1 1706 types.supertype(c.type).tsym == syms.enumSym &&
duke@1 1707 (c.flags() & FINAL) == 0) {
duke@1 1708 // add the ABSTRACT flag to an enum
duke@1 1709 c.flags_field |= ABSTRACT;
duke@1 1710 } else {
duke@1 1711 MethodSymbol undef1 =
duke@1 1712 new MethodSymbol(undef.flags(), undef.name,
duke@1 1713 types.memberType(c.type, undef), undef.owner);
duke@1 1714 log.error(pos, "does.not.override.abstract",
duke@1 1715 c, undef1, undef1.location());
duke@1 1716 }
duke@1 1717 }
duke@1 1718 } catch (CompletionFailure ex) {
duke@1 1719 completionError(pos, ex);
duke@1 1720 }
duke@1 1721 }
duke@1 1722 //where
duke@1 1723 /** Return first abstract member of class `c' that is not defined
duke@1 1724 * in `impl', null if there is none.
duke@1 1725 */
duke@1 1726 private MethodSymbol firstUndef(ClassSymbol impl, ClassSymbol c) {
duke@1 1727 MethodSymbol undef = null;
duke@1 1728 // Do not bother to search in classes that are not abstract,
duke@1 1729 // since they cannot have abstract members.
duke@1 1730 if (c == impl || (c.flags() & (ABSTRACT | INTERFACE)) != 0) {
duke@1 1731 Scope s = c.members();
duke@1 1732 for (Scope.Entry e = s.elems;
duke@1 1733 undef == null && e != null;
duke@1 1734 e = e.sibling) {
duke@1 1735 if (e.sym.kind == MTH &&
duke@1 1736 (e.sym.flags() & (ABSTRACT|IPROXY)) == ABSTRACT) {
duke@1 1737 MethodSymbol absmeth = (MethodSymbol)e.sym;
duke@1 1738 MethodSymbol implmeth = absmeth.implementation(impl, types, true);
duke@1 1739 if (implmeth == null || implmeth == absmeth)
duke@1 1740 undef = absmeth;
duke@1 1741 }
duke@1 1742 }
duke@1 1743 if (undef == null) {
duke@1 1744 Type st = types.supertype(c.type);
duke@1 1745 if (st.tag == CLASS)
duke@1 1746 undef = firstUndef(impl, (ClassSymbol)st.tsym);
duke@1 1747 }
duke@1 1748 for (List<Type> l = types.interfaces(c.type);
duke@1 1749 undef == null && l.nonEmpty();
duke@1 1750 l = l.tail) {
duke@1 1751 undef = firstUndef(impl, (ClassSymbol)l.head.tsym);
duke@1 1752 }
duke@1 1753 }
duke@1 1754 return undef;
duke@1 1755 }
duke@1 1756
mcimadamore@690 1757 void checkNonCyclicDecl(JCClassDecl tree) {
mcimadamore@690 1758 CycleChecker cc = new CycleChecker();
mcimadamore@690 1759 cc.scan(tree);
mcimadamore@690 1760 if (!cc.errorFound && !cc.partialCheck) {
mcimadamore@690 1761 tree.sym.flags_field |= ACYCLIC;
mcimadamore@690 1762 }
mcimadamore@690 1763 }
mcimadamore@690 1764
mcimadamore@690 1765 class CycleChecker extends TreeScanner {
mcimadamore@690 1766
mcimadamore@690 1767 List<Symbol> seenClasses = List.nil();
mcimadamore@690 1768 boolean errorFound = false;
mcimadamore@690 1769 boolean partialCheck = false;
mcimadamore@690 1770
mcimadamore@690 1771 private void checkSymbol(DiagnosticPosition pos, Symbol sym) {
mcimadamore@690 1772 if (sym != null && sym.kind == TYP) {
mcimadamore@690 1773 Env<AttrContext> classEnv = enter.getEnv((TypeSymbol)sym);
mcimadamore@690 1774 if (classEnv != null) {
mcimadamore@690 1775 DiagnosticSource prevSource = log.currentSource();
mcimadamore@690 1776 try {
mcimadamore@690 1777 log.useSource(classEnv.toplevel.sourcefile);
mcimadamore@690 1778 scan(classEnv.tree);
mcimadamore@690 1779 }
mcimadamore@690 1780 finally {
mcimadamore@690 1781 log.useSource(prevSource.getFile());
mcimadamore@690 1782 }
mcimadamore@690 1783 } else if (sym.kind == TYP) {
mcimadamore@690 1784 checkClass(pos, sym, List.<JCTree>nil());
mcimadamore@690 1785 }
mcimadamore@690 1786 } else {
mcimadamore@690 1787 //not completed yet
mcimadamore@690 1788 partialCheck = true;
mcimadamore@690 1789 }
mcimadamore@690 1790 }
mcimadamore@690 1791
mcimadamore@690 1792 @Override
mcimadamore@690 1793 public void visitSelect(JCFieldAccess tree) {
mcimadamore@690 1794 super.visitSelect(tree);
mcimadamore@690 1795 checkSymbol(tree.pos(), tree.sym);
mcimadamore@690 1796 }
mcimadamore@690 1797
mcimadamore@690 1798 @Override
mcimadamore@690 1799 public void visitIdent(JCIdent tree) {
mcimadamore@690 1800 checkSymbol(tree.pos(), tree.sym);
mcimadamore@690 1801 }
mcimadamore@690 1802
mcimadamore@690 1803 @Override
mcimadamore@690 1804 public void visitTypeApply(JCTypeApply tree) {
mcimadamore@690 1805 scan(tree.clazz);
mcimadamore@690 1806 }
mcimadamore@690 1807
mcimadamore@690 1808 @Override
mcimadamore@690 1809 public void visitTypeArray(JCArrayTypeTree tree) {
mcimadamore@690 1810 scan(tree.elemtype);
mcimadamore@690 1811 }
mcimadamore@690 1812
mcimadamore@690 1813 @Override
mcimadamore@690 1814 public void visitClassDef(JCClassDecl tree) {
mcimadamore@690 1815 List<JCTree> supertypes = List.nil();
mcimadamore@690 1816 if (tree.getExtendsClause() != null) {
mcimadamore@690 1817 supertypes = supertypes.prepend(tree.getExtendsClause());
mcimadamore@690 1818 }
mcimadamore@690 1819 if (tree.getImplementsClause() != null) {
mcimadamore@690 1820 for (JCTree intf : tree.getImplementsClause()) {
mcimadamore@690 1821 supertypes = supertypes.prepend(intf);
mcimadamore@690 1822 }
mcimadamore@690 1823 }
mcimadamore@690 1824 checkClass(tree.pos(), tree.sym, supertypes);
mcimadamore@690 1825 }
mcimadamore@690 1826
mcimadamore@690 1827 void checkClass(DiagnosticPosition pos, Symbol c, List<JCTree> supertypes) {
mcimadamore@690 1828 if ((c.flags_field & ACYCLIC) != 0)
mcimadamore@690 1829 return;
mcimadamore@690 1830 if (seenClasses.contains(c)) {
mcimadamore@690 1831 errorFound = true;
mcimadamore@690 1832 noteCyclic(pos, (ClassSymbol)c);
mcimadamore@690 1833 } else if (!c.type.isErroneous()) {
mcimadamore@690 1834 try {
mcimadamore@690 1835 seenClasses = seenClasses.prepend(c);
mcimadamore@690 1836 if (c.type.tag == CLASS) {
mcimadamore@690 1837 if (supertypes.nonEmpty()) {
mcimadamore@690 1838 scan(supertypes);
mcimadamore@690 1839 }
mcimadamore@690 1840 else {
mcimadamore@690 1841 ClassType ct = (ClassType)c.type;
mcimadamore@690 1842 if (ct.supertype_field == null ||
mcimadamore@690 1843 ct.interfaces_field == null) {
mcimadamore@690 1844 //not completed yet
mcimadamore@690 1845 partialCheck = true;
mcimadamore@690 1846 return;
mcimadamore@690 1847 }
mcimadamore@690 1848 checkSymbol(pos, ct.supertype_field.tsym);
mcimadamore@690 1849 for (Type intf : ct.interfaces_field) {
mcimadamore@690 1850 checkSymbol(pos, intf.tsym);
mcimadamore@690 1851 }
mcimadamore@690 1852 }
mcimadamore@690 1853 if (c.owner.kind == TYP) {
mcimadamore@690 1854 checkSymbol(pos, c.owner);
mcimadamore@690 1855 }
mcimadamore@690 1856 }
mcimadamore@690 1857 } finally {
mcimadamore@690 1858 seenClasses = seenClasses.tail;
mcimadamore@690 1859 }
mcimadamore@690 1860 }
mcimadamore@690 1861 }
mcimadamore@690 1862 }
mcimadamore@690 1863
duke@1 1864 /** Check for cyclic references. Issue an error if the
duke@1 1865 * symbol of the type referred to has a LOCKED flag set.
duke@1 1866 *
duke@1 1867 * @param pos Position to be used for error reporting.
duke@1 1868 * @param t The type referred to.
duke@1 1869 */
duke@1 1870 void checkNonCyclic(DiagnosticPosition pos, Type t) {
duke@1 1871 checkNonCyclicInternal(pos, t);
duke@1 1872 }
duke@1 1873
duke@1 1874
duke@1 1875 void checkNonCyclic(DiagnosticPosition pos, TypeVar t) {
mcimadamore@236 1876 checkNonCyclic1(pos, t, List.<TypeVar>nil());
duke@1 1877 }
duke@1 1878
mcimadamore@236 1879 private void checkNonCyclic1(DiagnosticPosition pos, Type t, List<TypeVar> seen) {
duke@1 1880 final TypeVar tv;
mcimadamore@42 1881 if (t.tag == TYPEVAR && (t.tsym.flags() & UNATTRIBUTED) != 0)
mcimadamore@42 1882 return;
duke@1 1883 if (seen.contains(t)) {
duke@1 1884 tv = (TypeVar)t;
jjg@110 1885 tv.bound = types.createErrorType(t);
duke@1 1886 log.error(pos, "cyclic.inheritance", t);
duke@1 1887 } else if (t.tag == TYPEVAR) {
duke@1 1888 tv = (TypeVar)t;
mcimadamore@236 1889 seen = seen.prepend(tv);
duke@1 1890 for (Type b : types.getBounds(tv))
duke@1 1891 checkNonCyclic1(pos, b, seen);
duke@1 1892 }
duke@1 1893 }
duke@1 1894
duke@1 1895 /** Check for cyclic references. Issue an error if the
duke@1 1896 * symbol of the type referred to has a LOCKED flag set.
duke@1 1897 *
duke@1 1898 * @param pos Position to be used for error reporting.
duke@1 1899 * @param t The type referred to.
duke@1 1900 * @returns True if the check completed on all attributed classes
duke@1 1901 */
duke@1 1902 private boolean checkNonCyclicInternal(DiagnosticPosition pos, Type t) {
duke@1 1903 boolean complete = true; // was the check complete?
duke@1 1904 //- System.err.println("checkNonCyclicInternal("+t+");");//DEBUG
duke@1 1905 Symbol c = t.tsym;
duke@1 1906 if ((c.flags_field & ACYCLIC) != 0) return true;
duke@1 1907
duke@1 1908 if ((c.flags_field & LOCKED) != 0) {
duke@1 1909 noteCyclic(pos, (ClassSymbol)c);
duke@1 1910 } else if (!c.type.isErroneous()) {
duke@1 1911 try {
duke@1 1912 c.flags_field |= LOCKED;
duke@1 1913 if (c.type.tag == CLASS) {
duke@1 1914 ClassType clazz = (ClassType)c.type;
duke@1 1915 if (clazz.interfaces_field != null)
duke@1 1916 for (List<Type> l=clazz.interfaces_field; l.nonEmpty(); l=l.tail)
duke@1 1917 complete &= checkNonCyclicInternal(pos, l.head);
duke@1 1918 if (clazz.supertype_field != null) {
duke@1 1919 Type st = clazz.supertype_field;
duke@1 1920 if (st != null && st.tag == CLASS)
duke@1 1921 complete &= checkNonCyclicInternal(pos, st);
duke@1 1922 }
duke@1 1923 if (c.owner.kind == TYP)
duke@1 1924 complete &= checkNonCyclicInternal(pos, c.owner.type);
duke@1 1925 }
duke@1 1926 } finally {
duke@1 1927 c.flags_field &= ~LOCKED;
duke@1 1928 }
duke@1 1929 }
duke@1 1930 if (complete)
duke@1 1931 complete = ((c.flags_field & UNATTRIBUTED) == 0) && c.completer == null;
duke@1 1932 if (complete) c.flags_field |= ACYCLIC;
duke@1 1933 return complete;
duke@1 1934 }
duke@1 1935
duke@1 1936 /** Note that we found an inheritance cycle. */
duke@1 1937 private void noteCyclic(DiagnosticPosition pos, ClassSymbol c) {
duke@1 1938 log.error(pos, "cyclic.inheritance", c);
duke@1 1939 for (List<Type> l=types.interfaces(c.type); l.nonEmpty(); l=l.tail)
jjg@110 1940 l.head = types.createErrorType((ClassSymbol)l.head.tsym, Type.noType);
duke@1 1941 Type st = types.supertype(c.type);
duke@1 1942 if (st.tag == CLASS)
jjg@110 1943 ((ClassType)c.type).supertype_field = types.createErrorType((ClassSymbol)st.tsym, Type.noType);
jjg@110 1944 c.type = types.createErrorType(c, c.type);
duke@1 1945 c.flags_field |= ACYCLIC;
duke@1 1946 }
duke@1 1947
duke@1 1948 /** Check that all methods which implement some
duke@1 1949 * method conform to the method they implement.
duke@1 1950 * @param tree The class definition whose members are checked.
duke@1 1951 */
duke@1 1952 void checkImplementations(JCClassDecl tree) {
duke@1 1953 checkImplementations(tree, tree.sym);
duke@1 1954 }
duke@1 1955 //where
duke@1 1956 /** Check that all methods which implement some
duke@1 1957 * method in `ic' conform to the method they implement.
duke@1 1958 */
duke@1 1959 void checkImplementations(JCClassDecl tree, ClassSymbol ic) {
duke@1 1960 ClassSymbol origin = tree.sym;
duke@1 1961 for (List<Type> l = types.closure(ic.type); l.nonEmpty(); l = l.tail) {
duke@1 1962 ClassSymbol lc = (ClassSymbol)l.head.tsym;
duke@1 1963 if ((allowGenerics || origin != lc) && (lc.flags() & ABSTRACT) != 0) {
duke@1 1964 for (Scope.Entry e=lc.members().elems; e != null; e=e.sibling) {
duke@1 1965 if (e.sym.kind == MTH &&
duke@1 1966 (e.sym.flags() & (STATIC|ABSTRACT)) == ABSTRACT) {
duke@1 1967 MethodSymbol absmeth = (MethodSymbol)e.sym;
duke@1 1968 MethodSymbol implmeth = absmeth.implementation(origin, types, false);
duke@1 1969 if (implmeth != null && implmeth != absmeth &&
duke@1 1970 (implmeth.owner.flags() & INTERFACE) ==
duke@1 1971 (origin.flags() & INTERFACE)) {
duke@1 1972 // don't check if implmeth is in a class, yet
duke@1 1973 // origin is an interface. This case arises only
duke@1 1974 // if implmeth is declared in Object. The reason is
duke@1 1975 // that interfaces really don't inherit from
duke@1 1976 // Object it's just that the compiler represents
duke@1 1977 // things that way.
duke@1 1978 checkOverride(tree, implmeth, absmeth, origin);
duke@1 1979 }
duke@1 1980 }
duke@1 1981 }
duke@1 1982 }
duke@1 1983 }
duke@1 1984 }
duke@1 1985
duke@1 1986 /** Check that all abstract methods implemented by a class are
duke@1 1987 * mutually compatible.
duke@1 1988 * @param pos Position to be used for error reporting.
duke@1 1989 * @param c The class whose interfaces are checked.
duke@1 1990 */
duke@1 1991 void checkCompatibleSupertypes(DiagnosticPosition pos, Type c) {
duke@1 1992 List<Type> supertypes = types.interfaces(c);
duke@1 1993 Type supertype = types.supertype(c);
duke@1 1994 if (supertype.tag == CLASS &&
duke@1 1995 (supertype.tsym.flags() & ABSTRACT) != 0)
duke@1 1996 supertypes = supertypes.prepend(supertype);
duke@1 1997 for (List<Type> l = supertypes; l.nonEmpty(); l = l.tail) {
duke@1 1998 if (allowGenerics && !l.head.getTypeArguments().isEmpty() &&
duke@1 1999 !checkCompatibleAbstracts(pos, l.head, l.head, c))
duke@1 2000 return;
duke@1 2001 for (List<Type> m = supertypes; m != l; m = m.tail)
duke@1 2002 if (!checkCompatibleAbstracts(pos, l.head, m.head, c))
duke@1 2003 return;
duke@1 2004 }
duke@1 2005 checkCompatibleConcretes(pos, c);
duke@1 2006 }
duke@1 2007
mcimadamore@359 2008 void checkConflicts(DiagnosticPosition pos, Symbol sym, TypeSymbol c) {
mcimadamore@359 2009 for (Type ct = c.type; ct != Type.noType ; ct = types.supertype(ct)) {
mcimadamore@359 2010 for (Scope.Entry e = ct.tsym.members().lookup(sym.name); e.scope == ct.tsym.members(); e = e.next()) {
mcimadamore@359 2011 // VM allows methods and variables with differing types
mcimadamore@359 2012 if (sym.kind == e.sym.kind &&
mcimadamore@359 2013 types.isSameType(types.erasure(sym.type), types.erasure(e.sym.type)) &&
mcimadamore@359 2014 sym != e.sym &&
mcimadamore@359 2015 (sym.flags() & Flags.SYNTHETIC) != (e.sym.flags() & Flags.SYNTHETIC) &&
mcimadamore@608 2016 (sym.flags() & IPROXY) == 0 && (e.sym.flags() & IPROXY) == 0 &&
mcimadamore@359 2017 (sym.flags() & BRIDGE) == 0 && (e.sym.flags() & BRIDGE) == 0) {
mcimadamore@359 2018 syntheticError(pos, (e.sym.flags() & SYNTHETIC) == 0 ? e.sym : sym);
mcimadamore@359 2019 return;
mcimadamore@359 2020 }
mcimadamore@359 2021 }
mcimadamore@359 2022 }
mcimadamore@359 2023 }
mcimadamore@359 2024
mcimadamore@359 2025 /** Report a conflict between a user symbol and a synthetic symbol.
mcimadamore@359 2026 */
mcimadamore@359 2027 private void syntheticError(DiagnosticPosition pos, Symbol sym) {
mcimadamore@359 2028 if (!sym.type.isErroneous()) {
mcimadamore@359 2029 if (warnOnSyntheticConflicts) {
mcimadamore@359 2030 log.warning(pos, "synthetic.name.conflict", sym, sym.location());
mcimadamore@359 2031 }
mcimadamore@359 2032 else {
mcimadamore@359 2033 log.error(pos, "synthetic.name.conflict", sym, sym.location());
mcimadamore@359 2034 }
mcimadamore@359 2035 }
mcimadamore@359 2036 }
mcimadamore@359 2037
duke@1 2038 /** Check that class c does not implement directly or indirectly
duke@1 2039 * the same parameterized interface with two different argument lists.
duke@1 2040 * @param pos Position to be used for error reporting.
duke@1 2041 * @param type The type whose interfaces are checked.
duke@1 2042 */
duke@1 2043 void checkClassBounds(DiagnosticPosition pos, Type type) {
duke@1 2044 checkClassBounds(pos, new HashMap<TypeSymbol,Type>(), type);
duke@1 2045 }
duke@1 2046 //where
duke@1 2047 /** Enter all interfaces of type `type' into the hash table `seensofar'
duke@1 2048 * with their class symbol as key and their type as value. Make
duke@1 2049 * sure no class is entered with two different types.
duke@1 2050 */
duke@1 2051 void checkClassBounds(DiagnosticPosition pos,
duke@1 2052 Map<TypeSymbol,Type> seensofar,
duke@1 2053 Type type) {
duke@1 2054 if (type.isErroneous()) return;
duke@1 2055 for (List<Type> l = types.interfaces(type); l.nonEmpty(); l = l.tail) {
duke@1 2056 Type it = l.head;
duke@1 2057 Type oldit = seensofar.put(it.tsym, it);
duke@1 2058 if (oldit != null) {
duke@1 2059 List<Type> oldparams = oldit.allparams();
duke@1 2060 List<Type> newparams = it.allparams();
duke@1 2061 if (!types.containsTypeEquivalent(oldparams, newparams))
duke@1 2062 log.error(pos, "cant.inherit.diff.arg",
duke@1 2063 it.tsym, Type.toString(oldparams),
duke@1 2064 Type.toString(newparams));
duke@1 2065 }
duke@1 2066 checkClassBounds(pos, seensofar, it);
duke@1 2067 }
duke@1 2068 Type st = types.supertype(type);
duke@1 2069 if (st != null) checkClassBounds(pos, seensofar, st);
duke@1 2070 }
duke@1 2071
duke@1 2072 /** Enter interface into into set.
duke@1 2073 * If it existed already, issue a "repeated interface" error.
duke@1 2074 */
duke@1 2075 void checkNotRepeated(DiagnosticPosition pos, Type it, Set<Type> its) {
duke@1 2076 if (its.contains(it))
duke@1 2077 log.error(pos, "repeated.interface");
duke@1 2078 else {
duke@1 2079 its.add(it);
duke@1 2080 }
duke@1 2081 }
duke@1 2082
duke@1 2083 /* *************************************************************************
duke@1 2084 * Check annotations
duke@1 2085 **************************************************************************/
duke@1 2086
mcimadamore@629 2087 /**
mcimadamore@634 2088 * Recursively validate annotations values
mcimadamore@629 2089 */
mcimadamore@634 2090 void validateAnnotationTree(JCTree tree) {
mcimadamore@634 2091 class AnnotationValidator extends TreeScanner {
mcimadamore@629 2092 @Override
mcimadamore@629 2093 public void visitAnnotation(JCAnnotation tree) {
mcimadamore@629 2094 super.visitAnnotation(tree);
mcimadamore@629 2095 validateAnnotation(tree);
mcimadamore@629 2096 }
mcimadamore@629 2097 }
mcimadamore@634 2098 tree.accept(new AnnotationValidator());
mcimadamore@629 2099 }
mcimadamore@629 2100
duke@1 2101 /** Annotation types are restricted to primitives, String, an
duke@1 2102 * enum, an annotation, Class, Class<?>, Class<? extends
duke@1 2103 * Anything>, arrays of the preceding.
duke@1 2104 */
duke@1 2105 void validateAnnotationType(JCTree restype) {
duke@1 2106 // restype may be null if an error occurred, so don't bother validating it
duke@1 2107 if (restype != null) {
duke@1 2108 validateAnnotationType(restype.pos(), restype.type);
duke@1 2109 }
duke@1 2110 }
duke@1 2111
duke@1 2112 void validateAnnotationType(DiagnosticPosition pos, Type type) {
duke@1 2113 if (type.isPrimitive()) return;
duke@1 2114 if (types.isSameType(type, syms.stringType)) return;
duke@1 2115 if ((type.tsym.flags() & Flags.ENUM) != 0) return;
duke@1 2116 if ((type.tsym.flags() & Flags.ANNOTATION) != 0) return;
duke@1 2117 if (types.lowerBound(type).tsym == syms.classType.tsym) return;
duke@1 2118 if (types.isArray(type) && !types.isArray(types.elemtype(type))) {
duke@1 2119 validateAnnotationType(pos, types.elemtype(type));
duke@1 2120 return;
duke@1 2121 }
duke@1 2122 log.error(pos, "invalid.annotation.member.type");
duke@1 2123 }
duke@1 2124
duke@1 2125 /**
duke@1 2126 * "It is also a compile-time error if any method declared in an
duke@1 2127 * annotation type has a signature that is override-equivalent to
duke@1 2128 * that of any public or protected method declared in class Object
duke@1 2129 * or in the interface annotation.Annotation."
duke@1 2130 *
duke@1 2131 * @jls3 9.6 Annotation Types
duke@1 2132 */
duke@1 2133 void validateAnnotationMethod(DiagnosticPosition pos, MethodSymbol m) {
duke@1 2134 for (Type sup = syms.annotationType; sup.tag == CLASS; sup = types.supertype(sup)) {
duke@1 2135 Scope s = sup.tsym.members();
duke@1 2136 for (Scope.Entry e = s.lookup(m.name); e.scope != null; e = e.next()) {
duke@1 2137 if (e.sym.kind == MTH &&
duke@1 2138 (e.sym.flags() & (PUBLIC | PROTECTED)) != 0 &&
duke@1 2139 types.overrideEquivalent(m.type, e.sym.type))
duke@1 2140 log.error(pos, "intf.annotation.member.clash", e.sym, sup);
duke@1 2141 }
duke@1 2142 }
duke@1 2143 }
duke@1 2144
duke@1 2145 /** Check the annotations of a symbol.
duke@1 2146 */
duke@1 2147 public void validateAnnotations(List<JCAnnotation> annotations, Symbol s) {
duke@1 2148 if (skipAnnotations) return;
duke@1 2149 for (JCAnnotation a : annotations)
duke@1 2150 validateAnnotation(a, s);
duke@1 2151 }
duke@1 2152
jjg@308 2153 /** Check the type annotations
jjg@308 2154 */
jjg@308 2155 public void validateTypeAnnotations(List<JCTypeAnnotation> annotations, boolean isTypeParameter) {
jjg@308 2156 if (skipAnnotations) return;
jjg@308 2157 for (JCTypeAnnotation a : annotations)
jjg@308 2158 validateTypeAnnotation(a, isTypeParameter);
jjg@308 2159 }
jjg@308 2160
duke@1 2161 /** Check an annotation of a symbol.
duke@1 2162 */
duke@1 2163 public void validateAnnotation(JCAnnotation a, Symbol s) {
mcimadamore@634 2164 validateAnnotationTree(a);
duke@1 2165
duke@1 2166 if (!annotationApplicable(a, s))
duke@1 2167 log.error(a.pos(), "annotation.type.not.applicable");
duke@1 2168
duke@1 2169 if (a.annotationType.type.tsym == syms.overrideType.tsym) {
duke@1 2170 if (!isOverrider(s))
duke@1 2171 log.error(a.pos(), "method.does.not.override.superclass");
duke@1 2172 }
duke@1 2173 }
duke@1 2174
jjg@308 2175 public void validateTypeAnnotation(JCTypeAnnotation a, boolean isTypeParameter) {
jjg@308 2176 if (a.type == null)
jjg@308 2177 throw new AssertionError("annotation tree hasn't been attributed yet: " + a);
mcimadamore@634 2178 validateAnnotationTree(a);
jjg@308 2179
jjg@308 2180 if (!isTypeAnnotation(a, isTypeParameter))
jjg@308 2181 log.error(a.pos(), "annotation.type.not.applicable");
jjg@308 2182 }
jjg@308 2183
duke@1 2184 /** Is s a method symbol that overrides a method in a superclass? */
duke@1 2185 boolean isOverrider(Symbol s) {
duke@1 2186 if (s.kind != MTH || s.isStatic())
duke@1 2187 return false;
duke@1 2188 MethodSymbol m = (MethodSymbol)s;
duke@1 2189 TypeSymbol owner = (TypeSymbol)m.owner;
duke@1 2190 for (Type sup : types.closure(owner.type)) {
duke@1 2191 if (sup == owner.type)
duke@1 2192 continue; // skip "this"
duke@1 2193 Scope scope = sup.tsym.members();
duke@1 2194 for (Scope.Entry e = scope.lookup(m.name); e.scope != null; e = e.next()) {
duke@1 2195 if (!e.sym.isStatic() && m.overrides(e.sym, owner, types, true))
duke@1 2196 return true;
duke@1 2197 }
duke@1 2198 }
duke@1 2199 return false;
duke@1 2200 }
duke@1 2201
jjg@308 2202 /** Is the annotation applicable to type annotations */
jjg@308 2203 boolean isTypeAnnotation(JCTypeAnnotation a, boolean isTypeParameter) {
jjg@308 2204 Attribute.Compound atTarget =
jjg@308 2205 a.annotationType.type.tsym.attribute(syms.annotationTargetType.tsym);
jjg@308 2206 if (atTarget == null) return true;
jjg@308 2207 Attribute atValue = atTarget.member(names.value);
jjg@308 2208 if (!(atValue instanceof Attribute.Array)) return true; // error recovery
jjg@308 2209 Attribute.Array arr = (Attribute.Array) atValue;
jjg@308 2210 for (Attribute app : arr.values) {
jjg@308 2211 if (!(app instanceof Attribute.Enum)) return true; // recovery
jjg@308 2212 Attribute.Enum e = (Attribute.Enum) app;
jjg@308 2213 if (!isTypeParameter && e.value.name == names.TYPE_USE)
jjg@308 2214 return true;
jjg@308 2215 else if (isTypeParameter && e.value.name == names.TYPE_PARAMETER)
jjg@308 2216 return true;
jjg@308 2217 }
jjg@308 2218 return false;
jjg@308 2219 }
jjg@308 2220
duke@1 2221 /** Is the annotation applicable to the symbol? */
duke@1 2222 boolean annotationApplicable(JCAnnotation a, Symbol s) {
duke@1 2223 Attribute.Compound atTarget =
duke@1 2224 a.annotationType.type.tsym.attribute(syms.annotationTargetType.tsym);
duke@1 2225 if (atTarget == null) return true;
duke@1 2226 Attribute atValue = atTarget.member(names.value);
duke@1 2227 if (!(atValue instanceof Attribute.Array)) return true; // error recovery
duke@1 2228 Attribute.Array arr = (Attribute.Array) atValue;
duke@1 2229 for (Attribute app : arr.values) {
duke@1 2230 if (!(app instanceof Attribute.Enum)) return true; // recovery
duke@1 2231 Attribute.Enum e = (Attribute.Enum) app;
duke@1 2232 if (e.value.name == names.TYPE)
duke@1 2233 { if (s.kind == TYP) return true; }
duke@1 2234 else if (e.value.name == names.FIELD)
duke@1 2235 { if (s.kind == VAR && s.owner.kind != MTH) return true; }
duke@1 2236 else if (e.value.name == names.METHOD)
duke@1 2237 { if (s.kind == MTH && !s.isConstructor()) return true; }
duke@1 2238 else if (e.value.name == names.PARAMETER)
duke@1 2239 { if (s.kind == VAR &&
duke@1 2240 s.owner.kind == MTH &&
duke@1 2241 (s.flags() & PARAMETER) != 0)
duke@1 2242 return true;
duke@1 2243 }
duke@1 2244 else if (e.value.name == names.CONSTRUCTOR)
duke@1 2245 { if (s.kind == MTH && s.isConstructor()) return true; }
duke@1 2246 else if (e.value.name == names.LOCAL_VARIABLE)
duke@1 2247 { if (s.kind == VAR && s.owner.kind == MTH &&
duke@1 2248 (s.flags() & PARAMETER) == 0)
duke@1 2249 return true;
duke@1 2250 }
duke@1 2251 else if (e.value.name == names.ANNOTATION_TYPE)
duke@1 2252 { if (s.kind == TYP && (s.flags() & ANNOTATION) != 0)
duke@1 2253 return true;
duke@1 2254 }
duke@1 2255 else if (e.value.name == names.PACKAGE)
duke@1 2256 { if (s.kind == PCK) return true; }
jjg@308 2257 else if (e.value.name == names.TYPE_USE)
jjg@308 2258 { if (s.kind == TYP ||
jjg@308 2259 s.kind == VAR ||
jjg@308 2260 (s.kind == MTH && !s.isConstructor() &&
jjg@308 2261 s.type.getReturnType().tag != VOID))
jjg@308 2262 return true;
jjg@308 2263 }
duke@1 2264 else
duke@1 2265 return true; // recovery
duke@1 2266 }
duke@1 2267 return false;
duke@1 2268 }
duke@1 2269
duke@1 2270 /** Check an annotation value.
duke@1 2271 */
duke@1 2272 public void validateAnnotation(JCAnnotation a) {
duke@1 2273 if (a.type.isErroneous()) return;
duke@1 2274
mcimadamore@632 2275 // collect an inventory of the members (sorted alphabetically)
mcimadamore@632 2276 Set<MethodSymbol> members = new TreeSet<MethodSymbol>(new Comparator<Symbol>() {
mcimadamore@632 2277 public int compare(Symbol t, Symbol t1) {
mcimadamore@632 2278 return t.name.compareTo(t1.name);
mcimadamore@632 2279 }
mcimadamore@632 2280 });
duke@1 2281 for (Scope.Entry e = a.annotationType.type.tsym.members().elems;
duke@1 2282 e != null;
duke@1 2283 e = e.sibling)
duke@1 2284 if (e.sym.kind == MTH)
duke@1 2285 members.add((MethodSymbol) e.sym);
duke@1 2286
duke@1 2287 // count them off as they're annotated
duke@1 2288 for (JCTree arg : a.args) {
duke@1 2289 if (arg.getTag() != JCTree.ASSIGN) continue; // recovery
duke@1 2290 JCAssign assign = (JCAssign) arg;
duke@1 2291 Symbol m = TreeInfo.symbol(assign.lhs);
duke@1 2292 if (m == null || m.type.isErroneous()) continue;
duke@1 2293 if (!members.remove(m))
jjg@479 2294 log.error(assign.lhs.pos(), "duplicate.annotation.member.value",
duke@1 2295 m.name, a.type);
duke@1 2296 }
duke@1 2297
duke@1 2298 // all the remaining ones better have default values
mcimadamore@632 2299 ListBuffer<Name> missingDefaults = ListBuffer.lb();
mcimadamore@632 2300 for (MethodSymbol m : members) {
mcimadamore@632 2301 if (m.defaultValue == null && !m.type.isErroneous()) {
mcimadamore@632 2302 missingDefaults.append(m.name);
mcimadamore@632 2303 }
mcimadamore@632 2304 }
mcimadamore@632 2305 if (missingDefaults.nonEmpty()) {
mcimadamore@632 2306 String key = (missingDefaults.size() > 1)
mcimadamore@632 2307 ? "annotation.missing.default.value.1"
mcimadamore@632 2308 : "annotation.missing.default.value";
mcimadamore@632 2309 log.error(a.pos(), key, a.type, missingDefaults);
mcimadamore@632 2310 }
duke@1 2311
duke@1 2312 // special case: java.lang.annotation.Target must not have
duke@1 2313 // repeated values in its value member
duke@1 2314 if (a.annotationType.type.tsym != syms.annotationTargetType.tsym ||
duke@1 2315 a.args.tail == null)
duke@1 2316 return;
duke@1 2317
duke@1 2318 if (a.args.head.getTag() != JCTree.ASSIGN) return; // error recovery
duke@1 2319 JCAssign assign = (JCAssign) a.args.head;
duke@1 2320 Symbol m = TreeInfo.symbol(assign.lhs);
duke@1 2321 if (m.name != names.value) return;
duke@1 2322 JCTree rhs = assign.rhs;
duke@1 2323 if (rhs.getTag() != JCTree.NEWARRAY) return;
duke@1 2324 JCNewArray na = (JCNewArray) rhs;
duke@1 2325 Set<Symbol> targets = new HashSet<Symbol>();
duke@1 2326 for (JCTree elem : na.elems) {
duke@1 2327 if (!targets.add(TreeInfo.symbol(elem))) {
duke@1 2328 log.error(elem.pos(), "repeated.annotation.target");
duke@1 2329 }
duke@1 2330 }
duke@1 2331 }
duke@1 2332
duke@1 2333 void checkDeprecatedAnnotation(DiagnosticPosition pos, Symbol s) {
duke@1 2334 if (allowAnnotations &&
duke@1 2335 lint.isEnabled(Lint.LintCategory.DEP_ANN) &&
duke@1 2336 (s.flags() & DEPRECATED) != 0 &&
duke@1 2337 !syms.deprecatedType.isErroneous() &&
duke@1 2338 s.attribute(syms.deprecatedType.tsym) == null) {
jjg@612 2339 log.warning(Lint.LintCategory.DEP_ANN,
jjg@612 2340 pos, "missing.deprecated.annotation");
duke@1 2341 }
duke@1 2342 }
duke@1 2343
duke@1 2344 /* *************************************************************************
duke@1 2345 * Check for recursive annotation elements.
duke@1 2346 **************************************************************************/
duke@1 2347
duke@1 2348 /** Check for cycles in the graph of annotation elements.
duke@1 2349 */
duke@1 2350 void checkNonCyclicElements(JCClassDecl tree) {
duke@1 2351 if ((tree.sym.flags_field & ANNOTATION) == 0) return;
duke@1 2352 assert (tree.sym.flags_field & LOCKED) == 0;
duke@1 2353 try {
duke@1 2354 tree.sym.flags_field |= LOCKED;
duke@1 2355 for (JCTree def : tree.defs) {
duke@1 2356 if (def.getTag() != JCTree.METHODDEF) continue;
duke@1 2357 JCMethodDecl meth = (JCMethodDecl)def;
duke@1 2358 checkAnnotationResType(meth.pos(), meth.restype.type);
duke@1 2359 }
duke@1 2360 } finally {
duke@1 2361 tree.sym.flags_field &= ~LOCKED;
duke@1 2362 tree.sym.flags_field |= ACYCLIC_ANN;
duke@1 2363 }
duke@1 2364 }
duke@1 2365
duke@1 2366 void checkNonCyclicElementsInternal(DiagnosticPosition pos, TypeSymbol tsym) {
duke@1 2367 if ((tsym.flags_field & ACYCLIC_ANN) != 0)
duke@1 2368 return;
duke@1 2369 if ((tsym.flags_field & LOCKED) != 0) {
duke@1 2370 log.error(pos, "cyclic.annotation.element");
duke@1 2371 return;
duke@1 2372 }
duke@1 2373 try {
duke@1 2374 tsym.flags_field |= LOCKED;
duke@1 2375 for (Scope.Entry e = tsym.members().elems; e != null; e = e.sibling) {
duke@1 2376 Symbol s = e.sym;
duke@1 2377 if (s.kind != Kinds.MTH)
duke@1 2378 continue;
duke@1 2379 checkAnnotationResType(pos, ((MethodSymbol)s).type.getReturnType());
duke@1 2380 }
duke@1 2381 } finally {
duke@1 2382 tsym.flags_field &= ~LOCKED;
duke@1 2383 tsym.flags_field |= ACYCLIC_ANN;
duke@1 2384 }
duke@1 2385 }
duke@1 2386
duke@1 2387 void checkAnnotationResType(DiagnosticPosition pos, Type type) {
duke@1 2388 switch (type.tag) {
duke@1 2389 case TypeTags.CLASS:
duke@1 2390 if ((type.tsym.flags() & ANNOTATION) != 0)
duke@1 2391 checkNonCyclicElementsInternal(pos, type.tsym);
duke@1 2392 break;
duke@1 2393 case TypeTags.ARRAY:
duke@1 2394 checkAnnotationResType(pos, types.elemtype(type));
duke@1 2395 break;
duke@1 2396 default:
duke@1 2397 break; // int etc
duke@1 2398 }
duke@1 2399 }
duke@1 2400
duke@1 2401 /* *************************************************************************
duke@1 2402 * Check for cycles in the constructor call graph.
duke@1 2403 **************************************************************************/
duke@1 2404
duke@1 2405 /** Check for cycles in the graph of constructors calling other
duke@1 2406 * constructors.
duke@1 2407 */
duke@1 2408 void checkCyclicConstructors(JCClassDecl tree) {
duke@1 2409 Map<Symbol,Symbol> callMap = new HashMap<Symbol, Symbol>();
duke@1 2410
duke@1 2411 // enter each constructor this-call into the map
duke@1 2412 for (List<JCTree> l = tree.defs; l.nonEmpty(); l = l.tail) {
duke@1 2413 JCMethodInvocation app = TreeInfo.firstConstructorCall(l.head);
duke@1 2414 if (app == null) continue;
duke@1 2415 JCMethodDecl meth = (JCMethodDecl) l.head;
duke@1 2416 if (TreeInfo.name(app.meth) == names._this) {
duke@1 2417 callMap.put(meth.sym, TreeInfo.symbol(app.meth));
duke@1 2418 } else {
duke@1 2419 meth.sym.flags_field |= ACYCLIC;
duke@1 2420 }
duke@1 2421 }
duke@1 2422
duke@1 2423 // Check for cycles in the map
duke@1 2424 Symbol[] ctors = new Symbol[0];
duke@1 2425 ctors = callMap.keySet().toArray(ctors);
duke@1 2426 for (Symbol caller : ctors) {
duke@1 2427 checkCyclicConstructor(tree, caller, callMap);
duke@1 2428 }
duke@1 2429 }
duke@1 2430
duke@1 2431 /** Look in the map to see if the given constructor is part of a
duke@1 2432 * call cycle.
duke@1 2433 */
duke@1 2434 private void checkCyclicConstructor(JCClassDecl tree, Symbol ctor,
duke@1 2435 Map<Symbol,Symbol> callMap) {
duke@1 2436 if (ctor != null && (ctor.flags_field & ACYCLIC) == 0) {
duke@1 2437 if ((ctor.flags_field & LOCKED) != 0) {
duke@1 2438 log.error(TreeInfo.diagnosticPositionFor(ctor, tree),
duke@1 2439 "recursive.ctor.invocation");
duke@1 2440 } else {
duke@1 2441 ctor.flags_field |= LOCKED;
duke@1 2442 checkCyclicConstructor(tree, callMap.remove(ctor), callMap);
duke@1 2443 ctor.flags_field &= ~LOCKED;
duke@1 2444 }
duke@1 2445 ctor.flags_field |= ACYCLIC;
duke@1 2446 }
duke@1 2447 }
duke@1 2448
duke@1 2449 /* *************************************************************************
duke@1 2450 * Miscellaneous
duke@1 2451 **************************************************************************/
duke@1 2452
duke@1 2453 /**
duke@1 2454 * Return the opcode of the operator but emit an error if it is an
duke@1 2455 * error.
duke@1 2456 * @param pos position for error reporting.
duke@1 2457 * @param operator an operator
duke@1 2458 * @param tag a tree tag
duke@1 2459 * @param left type of left hand side
duke@1 2460 * @param right type of right hand side
duke@1 2461 */
duke@1 2462 int checkOperator(DiagnosticPosition pos,
duke@1 2463 OperatorSymbol operator,
duke@1 2464 int tag,
duke@1 2465 Type left,
duke@1 2466 Type right) {
duke@1 2467 if (operator.opcode == ByteCodes.error) {
duke@1 2468 log.error(pos,
duke@1 2469 "operator.cant.be.applied",
duke@1 2470 treeinfo.operatorName(tag),
mcimadamore@80 2471 List.of(left, right));
duke@1 2472 }
duke@1 2473 return operator.opcode;
duke@1 2474 }
duke@1 2475
duke@1 2476
duke@1 2477 /**
duke@1 2478 * Check for division by integer constant zero
duke@1 2479 * @param pos Position for error reporting.
duke@1 2480 * @param operator The operator for the expression
duke@1 2481 * @param operand The right hand operand for the expression
duke@1 2482 */
duke@1 2483 void checkDivZero(DiagnosticPosition pos, Symbol operator, Type operand) {
duke@1 2484 if (operand.constValue() != null
duke@1 2485 && lint.isEnabled(Lint.LintCategory.DIVZERO)
duke@1 2486 && operand.tag <= LONG
duke@1 2487 && ((Number) (operand.constValue())).longValue() == 0) {
duke@1 2488 int opc = ((OperatorSymbol)operator).opcode;
duke@1 2489 if (opc == ByteCodes.idiv || opc == ByteCodes.imod
duke@1 2490 || opc == ByteCodes.ldiv || opc == ByteCodes.lmod) {
jjg@612 2491 log.warning(Lint.LintCategory.DIVZERO, pos, "div.zero");
duke@1 2492 }
duke@1 2493 }
duke@1 2494 }
duke@1 2495
duke@1 2496 /**
duke@1 2497 * Check for empty statements after if
duke@1 2498 */
duke@1 2499 void checkEmptyIf(JCIf tree) {
duke@1 2500 if (tree.thenpart.getTag() == JCTree.SKIP && tree.elsepart == null && lint.isEnabled(Lint.LintCategory.EMPTY))
jjg@612 2501 log.warning(Lint.LintCategory.EMPTY, tree.thenpart.pos(), "empty.if");
duke@1 2502 }
duke@1 2503
duke@1 2504 /** Check that symbol is unique in given scope.
duke@1 2505 * @param pos Position for error reporting.
duke@1 2506 * @param sym The symbol.
duke@1 2507 * @param s The scope.
duke@1 2508 */
duke@1 2509 boolean checkUnique(DiagnosticPosition pos, Symbol sym, Scope s) {
duke@1 2510 if (sym.type.isErroneous())
duke@1 2511 return true;
duke@1 2512 if (sym.owner.name == names.any) return false;
duke@1 2513 for (Scope.Entry e = s.lookup(sym.name); e.scope == s; e = e.next()) {
duke@1 2514 if (sym != e.sym &&
duke@1 2515 sym.kind == e.sym.kind &&
duke@1 2516 sym.name != names.error &&
mcimadamore@252 2517 (sym.kind != MTH || types.hasSameArgs(types.erasure(sym.type), types.erasure(e.sym.type)))) {
duke@1 2518 if ((sym.flags() & VARARGS) != (e.sym.flags() & VARARGS))
duke@1 2519 varargsDuplicateError(pos, sym, e.sym);
mcimadamore@252 2520 else if (sym.kind == MTH && !types.overrideEquivalent(sym.type, e.sym.type))
mcimadamore@252 2521 duplicateErasureError(pos, sym, e.sym);
duke@1 2522 else
duke@1 2523 duplicateError(pos, e.sym);
duke@1 2524 return false;
duke@1 2525 }
duke@1 2526 }
duke@1 2527 return true;
duke@1 2528 }
mcimadamore@252 2529 //where
mcimadamore@252 2530 /** Report duplicate declaration error.
mcimadamore@252 2531 */
mcimadamore@252 2532 void duplicateErasureError(DiagnosticPosition pos, Symbol sym1, Symbol sym2) {
mcimadamore@252 2533 if (!sym1.type.isErroneous() && !sym2.type.isErroneous()) {
mcimadamore@252 2534 log.error(pos, "name.clash.same.erasure", sym1, sym2);
mcimadamore@252 2535 }
mcimadamore@252 2536 }
duke@1 2537
duke@1 2538 /** Check that single-type import is not already imported or top-level defined,
duke@1 2539 * but make an exception for two single-type imports which denote the same type.
duke@1 2540 * @param pos Position for error reporting.
duke@1 2541 * @param sym The symbol.
duke@1 2542 * @param s The scope
duke@1 2543 */
duke@1 2544 boolean checkUniqueImport(DiagnosticPosition pos, Symbol sym, Scope s) {
duke@1 2545 return checkUniqueImport(pos, sym, s, false);
duke@1 2546 }
duke@1 2547
duke@1 2548 /** Check that static single-type import is not already imported or top-level defined,
duke@1 2549 * but make an exception for two single-type imports which denote the same type.
duke@1 2550 * @param pos Position for error reporting.
duke@1 2551 * @param sym The symbol.
duke@1 2552 * @param s The scope
duke@1 2553 * @param staticImport Whether or not this was a static import
duke@1 2554 */
duke@1 2555 boolean checkUniqueStaticImport(DiagnosticPosition pos, Symbol sym, Scope s) {
duke@1 2556 return checkUniqueImport(pos, sym, s, true);
duke@1 2557 }
duke@1 2558
duke@1 2559 /** Check that single-type import is not already imported or top-level defined,
duke@1 2560 * but make an exception for two single-type imports which denote the same type.
duke@1 2561 * @param pos Position for error reporting.
duke@1 2562 * @param sym The symbol.
duke@1 2563 * @param s The scope.
duke@1 2564 * @param staticImport Whether or not this was a static import
duke@1 2565 */
duke@1 2566 private boolean checkUniqueImport(DiagnosticPosition pos, Symbol sym, Scope s, boolean staticImport) {
duke@1 2567 for (Scope.Entry e = s.lookup(sym.name); e.scope != null; e = e.next()) {
duke@1 2568 // is encountered class entered via a class declaration?
duke@1 2569 boolean isClassDecl = e.scope == s;
duke@1 2570 if ((isClassDecl || sym != e.sym) &&
duke@1 2571 sym.kind == e.sym.kind &&
duke@1 2572 sym.name != names.error) {
duke@1 2573 if (!e.sym.type.isErroneous()) {
duke@1 2574 String what = e.sym.toString();
duke@1 2575 if (!isClassDecl) {
duke@1 2576 if (staticImport)
duke@1 2577 log.error(pos, "already.defined.static.single.import", what);
duke@1 2578 else
duke@1 2579 log.error(pos, "already.defined.single.import", what);
duke@1 2580 }
duke@1 2581 else if (sym != e.sym)
duke@1 2582 log.error(pos, "already.defined.this.unit", what);
duke@1 2583 }
duke@1 2584 return false;
duke@1 2585 }
duke@1 2586 }
duke@1 2587 return true;
duke@1 2588 }
duke@1 2589
duke@1 2590 /** Check that a qualified name is in canonical form (for import decls).
duke@1 2591 */
duke@1 2592 public void checkCanonical(JCTree tree) {
duke@1 2593 if (!isCanonical(tree))
duke@1 2594 log.error(tree.pos(), "import.requires.canonical",
duke@1 2595 TreeInfo.symbol(tree));
duke@1 2596 }
duke@1 2597 // where
duke@1 2598 private boolean isCanonical(JCTree tree) {
duke@1 2599 while (tree.getTag() == JCTree.SELECT) {
duke@1 2600 JCFieldAccess s = (JCFieldAccess) tree;
duke@1 2601 if (s.sym.owner != TreeInfo.symbol(s.selected))
duke@1 2602 return false;
duke@1 2603 tree = s.selected;
duke@1 2604 }
duke@1 2605 return true;
duke@1 2606 }
duke@1 2607
duke@1 2608 private class ConversionWarner extends Warner {
duke@1 2609 final String key;
duke@1 2610 final Type found;
duke@1 2611 final Type expected;
duke@1 2612 public ConversionWarner(DiagnosticPosition pos, String key, Type found, Type expected) {
duke@1 2613 super(pos);
duke@1 2614 this.key = key;
duke@1 2615 this.found = found;
duke@1 2616 this.expected = expected;
duke@1 2617 }
duke@1 2618
jjg@398 2619 @Override
duke@1 2620 public void warnUnchecked() {
duke@1 2621 boolean warned = this.warned;
duke@1 2622 super.warnUnchecked();
duke@1 2623 if (warned) return; // suppress redundant diagnostics
mcimadamore@89 2624 Object problem = diags.fragment(key);
duke@1 2625 Check.this.warnUnchecked(pos(), "prob.found.req", problem, found, expected);
duke@1 2626 }
duke@1 2627 }
duke@1 2628
duke@1 2629 public Warner castWarner(DiagnosticPosition pos, Type found, Type expected) {
duke@1 2630 return new ConversionWarner(pos, "unchecked.cast.to.type", found, expected);
duke@1 2631 }
duke@1 2632
duke@1 2633 public Warner convertWarner(DiagnosticPosition pos, Type found, Type expected) {
duke@1 2634 return new ConversionWarner(pos, "unchecked.assign", found, expected);
duke@1 2635 }
duke@1 2636 }

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