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

Tue, 04 Mar 2008 15:45:20 +0000

author
mcimadamore
date
Tue, 04 Mar 2008 15:45:20 +0000
changeset 8
38bd6375f37d
parent 1
9a66ca7c79fa
child 19
adaa3fc51b60
permissions
-rw-r--r--

6663588: Compiler goes into infinite loop for Cyclic Inheritance test case
Summary: interplay between cyclic inheritance and tvar bounds hangs javac
Reviewed-by: jjg

duke@1 1 /*
duke@1 2 * Copyright 1999-2006 Sun Microsystems, Inc. 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
duke@1 7 * published by the Free Software Foundation. Sun designates this
duke@1 8 * particular file as subject to the "Classpath" exception as provided
duke@1 9 * by Sun 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 *
duke@1 21 * Please contact Sun Microsystems, Inc., 4150 Network Circle, Santa Clara,
duke@1 22 * CA 95054 USA or visit www.sun.com if you need additional information or
duke@1 23 * have any questions.
duke@1 24 */
duke@1 25
duke@1 26 package com.sun.tools.javac.comp;
duke@1 27
duke@1 28 import com.sun.tools.javac.util.*;
duke@1 29 import com.sun.tools.javac.util.JCDiagnostic.DiagnosticPosition;
duke@1 30 import com.sun.tools.javac.code.*;
duke@1 31 import com.sun.tools.javac.jvm.*;
duke@1 32 import com.sun.tools.javac.tree.*;
duke@1 33
duke@1 34 import com.sun.tools.javac.code.Type.*;
duke@1 35 import com.sun.tools.javac.code.Symbol.*;
duke@1 36 import com.sun.tools.javac.tree.JCTree.*;
duke@1 37
duke@1 38 import static com.sun.tools.javac.code.Flags.*;
duke@1 39 import static com.sun.tools.javac.code.Kinds.*;
duke@1 40 import static com.sun.tools.javac.code.TypeTags.*;
duke@1 41 import javax.lang.model.element.ElementVisitor;
duke@1 42
duke@1 43 /** Helper class for name resolution, used mostly by the attribution phase.
duke@1 44 *
duke@1 45 * <p><b>This is NOT part of any API supported by Sun Microsystems. If
duke@1 46 * you write code that depends on this, you do so at your own risk.
duke@1 47 * This code and its internal interfaces are subject to change or
duke@1 48 * deletion without notice.</b>
duke@1 49 */
duke@1 50 public class Resolve {
duke@1 51 protected static final Context.Key<Resolve> resolveKey =
duke@1 52 new Context.Key<Resolve>();
duke@1 53
duke@1 54 Name.Table names;
duke@1 55 Log log;
duke@1 56 Symtab syms;
duke@1 57 Check chk;
duke@1 58 Infer infer;
duke@1 59 ClassReader reader;
duke@1 60 TreeInfo treeinfo;
duke@1 61 Types types;
duke@1 62 public final boolean boxingEnabled; // = source.allowBoxing();
duke@1 63 public final boolean varargsEnabled; // = source.allowVarargs();
duke@1 64 private final boolean debugResolve;
duke@1 65
duke@1 66 public static Resolve instance(Context context) {
duke@1 67 Resolve instance = context.get(resolveKey);
duke@1 68 if (instance == null)
duke@1 69 instance = new Resolve(context);
duke@1 70 return instance;
duke@1 71 }
duke@1 72
duke@1 73 protected Resolve(Context context) {
duke@1 74 context.put(resolveKey, this);
duke@1 75 syms = Symtab.instance(context);
duke@1 76
duke@1 77 varNotFound = new
duke@1 78 ResolveError(ABSENT_VAR, syms.errSymbol, "variable not found");
duke@1 79 wrongMethod = new
duke@1 80 ResolveError(WRONG_MTH, syms.errSymbol, "method not found");
duke@1 81 wrongMethods = new
duke@1 82 ResolveError(WRONG_MTHS, syms.errSymbol, "wrong methods");
duke@1 83 methodNotFound = new
duke@1 84 ResolveError(ABSENT_MTH, syms.errSymbol, "method not found");
duke@1 85 typeNotFound = new
duke@1 86 ResolveError(ABSENT_TYP, syms.errSymbol, "type not found");
duke@1 87
duke@1 88 names = Name.Table.instance(context);
duke@1 89 log = Log.instance(context);
duke@1 90 chk = Check.instance(context);
duke@1 91 infer = Infer.instance(context);
duke@1 92 reader = ClassReader.instance(context);
duke@1 93 treeinfo = TreeInfo.instance(context);
duke@1 94 types = Types.instance(context);
duke@1 95 Source source = Source.instance(context);
duke@1 96 boxingEnabled = source.allowBoxing();
duke@1 97 varargsEnabled = source.allowVarargs();
duke@1 98 Options options = Options.instance(context);
duke@1 99 debugResolve = options.get("debugresolve") != null;
duke@1 100 }
duke@1 101
duke@1 102 /** error symbols, which are returned when resolution fails
duke@1 103 */
duke@1 104 final ResolveError varNotFound;
duke@1 105 final ResolveError wrongMethod;
duke@1 106 final ResolveError wrongMethods;
duke@1 107 final ResolveError methodNotFound;
duke@1 108 final ResolveError typeNotFound;
duke@1 109
duke@1 110 /* ************************************************************************
duke@1 111 * Identifier resolution
duke@1 112 *************************************************************************/
duke@1 113
duke@1 114 /** An environment is "static" if its static level is greater than
duke@1 115 * the one of its outer environment
duke@1 116 */
duke@1 117 static boolean isStatic(Env<AttrContext> env) {
duke@1 118 return env.info.staticLevel > env.outer.info.staticLevel;
duke@1 119 }
duke@1 120
duke@1 121 /** An environment is an "initializer" if it is a constructor or
duke@1 122 * an instance initializer.
duke@1 123 */
duke@1 124 static boolean isInitializer(Env<AttrContext> env) {
duke@1 125 Symbol owner = env.info.scope.owner;
duke@1 126 return owner.isConstructor() ||
duke@1 127 owner.owner.kind == TYP &&
duke@1 128 (owner.kind == VAR ||
duke@1 129 owner.kind == MTH && (owner.flags() & BLOCK) != 0) &&
duke@1 130 (owner.flags() & STATIC) == 0;
duke@1 131 }
duke@1 132
duke@1 133 /** Is class accessible in given evironment?
duke@1 134 * @param env The current environment.
duke@1 135 * @param c The class whose accessibility is checked.
duke@1 136 */
duke@1 137 public boolean isAccessible(Env<AttrContext> env, TypeSymbol c) {
duke@1 138 switch ((short)(c.flags() & AccessFlags)) {
duke@1 139 case PRIVATE:
duke@1 140 return
duke@1 141 env.enclClass.sym.outermostClass() ==
duke@1 142 c.owner.outermostClass();
duke@1 143 case 0:
duke@1 144 return
duke@1 145 env.toplevel.packge == c.owner // fast special case
duke@1 146 ||
duke@1 147 env.toplevel.packge == c.packge()
duke@1 148 ||
duke@1 149 // Hack: this case is added since synthesized default constructors
duke@1 150 // of anonymous classes should be allowed to access
duke@1 151 // classes which would be inaccessible otherwise.
duke@1 152 env.enclMethod != null &&
duke@1 153 (env.enclMethod.mods.flags & ANONCONSTR) != 0;
duke@1 154 default: // error recovery
duke@1 155 case PUBLIC:
duke@1 156 return true;
duke@1 157 case PROTECTED:
duke@1 158 return
duke@1 159 env.toplevel.packge == c.owner // fast special case
duke@1 160 ||
duke@1 161 env.toplevel.packge == c.packge()
duke@1 162 ||
duke@1 163 isInnerSubClass(env.enclClass.sym, c.owner);
duke@1 164 }
duke@1 165 }
duke@1 166 //where
duke@1 167 /** Is given class a subclass of given base class, or an inner class
duke@1 168 * of a subclass?
duke@1 169 * Return null if no such class exists.
duke@1 170 * @param c The class which is the subclass or is contained in it.
duke@1 171 * @param base The base class
duke@1 172 */
duke@1 173 private boolean isInnerSubClass(ClassSymbol c, Symbol base) {
duke@1 174 while (c != null && !c.isSubClass(base, types)) {
duke@1 175 c = c.owner.enclClass();
duke@1 176 }
duke@1 177 return c != null;
duke@1 178 }
duke@1 179
duke@1 180 boolean isAccessible(Env<AttrContext> env, Type t) {
duke@1 181 return (t.tag == ARRAY)
duke@1 182 ? isAccessible(env, types.elemtype(t))
duke@1 183 : isAccessible(env, t.tsym);
duke@1 184 }
duke@1 185
duke@1 186 /** Is symbol accessible as a member of given type in given evironment?
duke@1 187 * @param env The current environment.
duke@1 188 * @param site The type of which the tested symbol is regarded
duke@1 189 * as a member.
duke@1 190 * @param sym The symbol.
duke@1 191 */
duke@1 192 public boolean isAccessible(Env<AttrContext> env, Type site, Symbol sym) {
duke@1 193 if (sym.name == names.init && sym.owner != site.tsym) return false;
duke@1 194 ClassSymbol sub;
duke@1 195 switch ((short)(sym.flags() & AccessFlags)) {
duke@1 196 case PRIVATE:
duke@1 197 return
duke@1 198 (env.enclClass.sym == sym.owner // fast special case
duke@1 199 ||
duke@1 200 env.enclClass.sym.outermostClass() ==
duke@1 201 sym.owner.outermostClass())
duke@1 202 &&
duke@1 203 sym.isInheritedIn(site.tsym, types);
duke@1 204 case 0:
duke@1 205 return
duke@1 206 (env.toplevel.packge == sym.owner.owner // fast special case
duke@1 207 ||
duke@1 208 env.toplevel.packge == sym.packge())
duke@1 209 &&
duke@1 210 isAccessible(env, site)
duke@1 211 &&
duke@1 212 sym.isInheritedIn(site.tsym, types);
duke@1 213 case PROTECTED:
duke@1 214 return
duke@1 215 (env.toplevel.packge == sym.owner.owner // fast special case
duke@1 216 ||
duke@1 217 env.toplevel.packge == sym.packge()
duke@1 218 ||
duke@1 219 isProtectedAccessible(sym, env.enclClass.sym, site)
duke@1 220 ||
duke@1 221 // OK to select instance method or field from 'super' or type name
duke@1 222 // (but type names should be disallowed elsewhere!)
duke@1 223 env.info.selectSuper && (sym.flags() & STATIC) == 0 && sym.kind != TYP)
duke@1 224 &&
duke@1 225 isAccessible(env, site)
duke@1 226 &&
duke@1 227 // `sym' is accessible only if not overridden by
duke@1 228 // another symbol which is a member of `site'
duke@1 229 // (because, if it is overridden, `sym' is not strictly
duke@1 230 // speaking a member of `site'.)
duke@1 231 (sym.kind != MTH || sym.isConstructor() ||
duke@1 232 ((MethodSymbol)sym).implementation(site.tsym, types, true) == sym);
duke@1 233 default: // this case includes erroneous combinations as well
duke@1 234 return isAccessible(env, site);
duke@1 235 }
duke@1 236 }
duke@1 237 //where
duke@1 238 /** Is given protected symbol accessible if it is selected from given site
duke@1 239 * and the selection takes place in given class?
duke@1 240 * @param sym The symbol with protected access
duke@1 241 * @param c The class where the access takes place
duke@1 242 * @site The type of the qualifier
duke@1 243 */
duke@1 244 private
duke@1 245 boolean isProtectedAccessible(Symbol sym, ClassSymbol c, Type site) {
duke@1 246 while (c != null &&
duke@1 247 !(c.isSubClass(sym.owner, types) &&
duke@1 248 (c.flags() & INTERFACE) == 0 &&
duke@1 249 // In JLS 2e 6.6.2.1, the subclass restriction applies
duke@1 250 // only to instance fields and methods -- types are excluded
duke@1 251 // regardless of whether they are declared 'static' or not.
duke@1 252 ((sym.flags() & STATIC) != 0 || sym.kind == TYP || site.tsym.isSubClass(c, types))))
duke@1 253 c = c.owner.enclClass();
duke@1 254 return c != null;
duke@1 255 }
duke@1 256
duke@1 257 /** Try to instantiate the type of a method so that it fits
duke@1 258 * given type arguments and argument types. If succesful, return
duke@1 259 * the method's instantiated type, else return null.
duke@1 260 * The instantiation will take into account an additional leading
duke@1 261 * formal parameter if the method is an instance method seen as a member
duke@1 262 * of un underdetermined site In this case, we treat site as an additional
duke@1 263 * parameter and the parameters of the class containing the method as
duke@1 264 * additional type variables that get instantiated.
duke@1 265 *
duke@1 266 * @param env The current environment
duke@1 267 * @param site The type of which the method is a member.
duke@1 268 * @param m The method symbol.
duke@1 269 * @param argtypes The invocation's given value arguments.
duke@1 270 * @param typeargtypes The invocation's given type arguments.
duke@1 271 * @param allowBoxing Allow boxing conversions of arguments.
duke@1 272 * @param useVarargs Box trailing arguments into an array for varargs.
duke@1 273 */
duke@1 274 Type rawInstantiate(Env<AttrContext> env,
duke@1 275 Type site,
duke@1 276 Symbol m,
duke@1 277 List<Type> argtypes,
duke@1 278 List<Type> typeargtypes,
duke@1 279 boolean allowBoxing,
duke@1 280 boolean useVarargs,
duke@1 281 Warner warn)
duke@1 282 throws Infer.NoInstanceException {
duke@1 283 if (useVarargs && (m.flags() & VARARGS) == 0) return null;
duke@1 284 Type mt = types.memberType(site, m);
duke@1 285
duke@1 286 // tvars is the list of formal type variables for which type arguments
duke@1 287 // need to inferred.
duke@1 288 List<Type> tvars = env.info.tvars;
duke@1 289 if (typeargtypes == null) typeargtypes = List.nil();
duke@1 290 if (mt.tag != FORALL && typeargtypes.nonEmpty()) {
duke@1 291 // This is not a polymorphic method, but typeargs are supplied
duke@1 292 // which is fine, see JLS3 15.12.2.1
duke@1 293 } else if (mt.tag == FORALL && typeargtypes.nonEmpty()) {
duke@1 294 ForAll pmt = (ForAll) mt;
duke@1 295 if (typeargtypes.length() != pmt.tvars.length())
duke@1 296 return null;
duke@1 297 // Check type arguments are within bounds
duke@1 298 List<Type> formals = pmt.tvars;
duke@1 299 List<Type> actuals = typeargtypes;
duke@1 300 while (formals.nonEmpty() && actuals.nonEmpty()) {
duke@1 301 List<Type> bounds = types.subst(types.getBounds((TypeVar)formals.head),
duke@1 302 pmt.tvars, typeargtypes);
duke@1 303 for (; bounds.nonEmpty(); bounds = bounds.tail)
duke@1 304 if (!types.isSubtypeUnchecked(actuals.head, bounds.head, warn))
duke@1 305 return null;
duke@1 306 formals = formals.tail;
duke@1 307 actuals = actuals.tail;
duke@1 308 }
duke@1 309 mt = types.subst(pmt.qtype, pmt.tvars, typeargtypes);
duke@1 310 } else if (mt.tag == FORALL) {
duke@1 311 ForAll pmt = (ForAll) mt;
duke@1 312 List<Type> tvars1 = types.newInstances(pmt.tvars);
duke@1 313 tvars = tvars.appendList(tvars1);
duke@1 314 mt = types.subst(pmt.qtype, pmt.tvars, tvars1);
duke@1 315 }
duke@1 316
duke@1 317 // find out whether we need to go the slow route via infer
duke@1 318 boolean instNeeded = tvars.tail != null/*inlined: tvars.nonEmpty()*/;
duke@1 319 for (List<Type> l = argtypes;
duke@1 320 l.tail != null/*inlined: l.nonEmpty()*/ && !instNeeded;
duke@1 321 l = l.tail) {
duke@1 322 if (l.head.tag == FORALL) instNeeded = true;
duke@1 323 }
duke@1 324
duke@1 325 if (instNeeded)
duke@1 326 return
duke@1 327 infer.instantiateMethod(tvars,
duke@1 328 (MethodType)mt,
duke@1 329 argtypes,
duke@1 330 allowBoxing,
duke@1 331 useVarargs,
duke@1 332 warn);
duke@1 333 return
duke@1 334 argumentsAcceptable(argtypes, mt.getParameterTypes(),
duke@1 335 allowBoxing, useVarargs, warn)
duke@1 336 ? mt
duke@1 337 : null;
duke@1 338 }
duke@1 339
duke@1 340 /** Same but returns null instead throwing a NoInstanceException
duke@1 341 */
duke@1 342 Type instantiate(Env<AttrContext> env,
duke@1 343 Type site,
duke@1 344 Symbol m,
duke@1 345 List<Type> argtypes,
duke@1 346 List<Type> typeargtypes,
duke@1 347 boolean allowBoxing,
duke@1 348 boolean useVarargs,
duke@1 349 Warner warn) {
duke@1 350 try {
duke@1 351 return rawInstantiate(env, site, m, argtypes, typeargtypes,
duke@1 352 allowBoxing, useVarargs, warn);
duke@1 353 } catch (Infer.NoInstanceException ex) {
duke@1 354 return null;
duke@1 355 }
duke@1 356 }
duke@1 357
duke@1 358 /** Check if a parameter list accepts a list of args.
duke@1 359 */
duke@1 360 boolean argumentsAcceptable(List<Type> argtypes,
duke@1 361 List<Type> formals,
duke@1 362 boolean allowBoxing,
duke@1 363 boolean useVarargs,
duke@1 364 Warner warn) {
duke@1 365 Type varargsFormal = useVarargs ? formals.last() : null;
duke@1 366 while (argtypes.nonEmpty() && formals.head != varargsFormal) {
duke@1 367 boolean works = allowBoxing
duke@1 368 ? types.isConvertible(argtypes.head, formals.head, warn)
duke@1 369 : types.isSubtypeUnchecked(argtypes.head, formals.head, warn);
duke@1 370 if (!works) return false;
duke@1 371 argtypes = argtypes.tail;
duke@1 372 formals = formals.tail;
duke@1 373 }
duke@1 374 if (formals.head != varargsFormal) return false; // not enough args
duke@1 375 if (!useVarargs)
duke@1 376 return argtypes.isEmpty();
duke@1 377 Type elt = types.elemtype(varargsFormal);
duke@1 378 while (argtypes.nonEmpty()) {
duke@1 379 if (!types.isConvertible(argtypes.head, elt, warn))
duke@1 380 return false;
duke@1 381 argtypes = argtypes.tail;
duke@1 382 }
duke@1 383 return true;
duke@1 384 }
duke@1 385
duke@1 386 /* ***************************************************************************
duke@1 387 * Symbol lookup
duke@1 388 * the following naming conventions for arguments are used
duke@1 389 *
duke@1 390 * env is the environment where the symbol was mentioned
duke@1 391 * site is the type of which the symbol is a member
duke@1 392 * name is the symbol's name
duke@1 393 * if no arguments are given
duke@1 394 * argtypes are the value arguments, if we search for a method
duke@1 395 *
duke@1 396 * If no symbol was found, a ResolveError detailing the problem is returned.
duke@1 397 ****************************************************************************/
duke@1 398
duke@1 399 /** Find field. Synthetic fields are always skipped.
duke@1 400 * @param env The current environment.
duke@1 401 * @param site The original type from where the selection takes place.
duke@1 402 * @param name The name of the field.
duke@1 403 * @param c The class to search for the field. This is always
duke@1 404 * a superclass or implemented interface of site's class.
duke@1 405 */
duke@1 406 Symbol findField(Env<AttrContext> env,
duke@1 407 Type site,
duke@1 408 Name name,
duke@1 409 TypeSymbol c) {
duke@1 410 Symbol bestSoFar = varNotFound;
duke@1 411 Symbol sym;
duke@1 412 Scope.Entry e = c.members().lookup(name);
duke@1 413 while (e.scope != null) {
duke@1 414 if (e.sym.kind == VAR && (e.sym.flags_field & SYNTHETIC) == 0) {
duke@1 415 return isAccessible(env, site, e.sym)
duke@1 416 ? e.sym : new AccessError(env, site, e.sym);
duke@1 417 }
duke@1 418 e = e.next();
duke@1 419 }
duke@1 420 Type st = types.supertype(c.type);
duke@1 421 if (st != null && st.tag == CLASS) {
duke@1 422 sym = findField(env, site, name, st.tsym);
duke@1 423 if (sym.kind < bestSoFar.kind) bestSoFar = sym;
duke@1 424 }
duke@1 425 for (List<Type> l = types.interfaces(c.type);
duke@1 426 bestSoFar.kind != AMBIGUOUS && l.nonEmpty();
duke@1 427 l = l.tail) {
duke@1 428 sym = findField(env, site, name, l.head.tsym);
duke@1 429 if (bestSoFar.kind < AMBIGUOUS && sym.kind < AMBIGUOUS &&
duke@1 430 sym.owner != bestSoFar.owner)
duke@1 431 bestSoFar = new AmbiguityError(bestSoFar, sym);
duke@1 432 else if (sym.kind < bestSoFar.kind)
duke@1 433 bestSoFar = sym;
duke@1 434 }
duke@1 435 return bestSoFar;
duke@1 436 }
duke@1 437
duke@1 438 /** Resolve a field identifier, throw a fatal error if not found.
duke@1 439 * @param pos The position to use for error reporting.
duke@1 440 * @param env The environment current at the method invocation.
duke@1 441 * @param site The type of the qualifying expression, in which
duke@1 442 * identifier is searched.
duke@1 443 * @param name The identifier's name.
duke@1 444 */
duke@1 445 public VarSymbol resolveInternalField(DiagnosticPosition pos, Env<AttrContext> env,
duke@1 446 Type site, Name name) {
duke@1 447 Symbol sym = findField(env, site, name, site.tsym);
duke@1 448 if (sym.kind == VAR) return (VarSymbol)sym;
duke@1 449 else throw new FatalError(
duke@1 450 JCDiagnostic.fragment("fatal.err.cant.locate.field",
duke@1 451 name));
duke@1 452 }
duke@1 453
duke@1 454 /** Find unqualified variable or field with given name.
duke@1 455 * Synthetic fields always skipped.
duke@1 456 * @param env The current environment.
duke@1 457 * @param name The name of the variable or field.
duke@1 458 */
duke@1 459 Symbol findVar(Env<AttrContext> env, Name name) {
duke@1 460 Symbol bestSoFar = varNotFound;
duke@1 461 Symbol sym;
duke@1 462 Env<AttrContext> env1 = env;
duke@1 463 boolean staticOnly = false;
duke@1 464 while (env1.outer != null) {
duke@1 465 if (isStatic(env1)) staticOnly = true;
duke@1 466 Scope.Entry e = env1.info.scope.lookup(name);
duke@1 467 while (e.scope != null &&
duke@1 468 (e.sym.kind != VAR ||
duke@1 469 (e.sym.flags_field & SYNTHETIC) != 0))
duke@1 470 e = e.next();
duke@1 471 sym = (e.scope != null)
duke@1 472 ? e.sym
duke@1 473 : findField(
duke@1 474 env1, env1.enclClass.sym.type, name, env1.enclClass.sym);
duke@1 475 if (sym.exists()) {
duke@1 476 if (staticOnly &&
duke@1 477 sym.kind == VAR &&
duke@1 478 sym.owner.kind == TYP &&
duke@1 479 (sym.flags() & STATIC) == 0)
duke@1 480 return new StaticError(sym);
duke@1 481 else
duke@1 482 return sym;
duke@1 483 } else if (sym.kind < bestSoFar.kind) {
duke@1 484 bestSoFar = sym;
duke@1 485 }
duke@1 486
duke@1 487 if ((env1.enclClass.sym.flags() & STATIC) != 0) staticOnly = true;
duke@1 488 env1 = env1.outer;
duke@1 489 }
duke@1 490
duke@1 491 sym = findField(env, syms.predefClass.type, name, syms.predefClass);
duke@1 492 if (sym.exists())
duke@1 493 return sym;
duke@1 494 if (bestSoFar.exists())
duke@1 495 return bestSoFar;
duke@1 496
duke@1 497 Scope.Entry e = env.toplevel.namedImportScope.lookup(name);
duke@1 498 for (; e.scope != null; e = e.next()) {
duke@1 499 sym = e.sym;
duke@1 500 Type origin = e.getOrigin().owner.type;
duke@1 501 if (sym.kind == VAR) {
duke@1 502 if (e.sym.owner.type != origin)
duke@1 503 sym = sym.clone(e.getOrigin().owner);
duke@1 504 return isAccessible(env, origin, sym)
duke@1 505 ? sym : new AccessError(env, origin, sym);
duke@1 506 }
duke@1 507 }
duke@1 508
duke@1 509 Symbol origin = null;
duke@1 510 e = env.toplevel.starImportScope.lookup(name);
duke@1 511 for (; e.scope != null; e = e.next()) {
duke@1 512 sym = e.sym;
duke@1 513 if (sym.kind != VAR)
duke@1 514 continue;
duke@1 515 // invariant: sym.kind == VAR
duke@1 516 if (bestSoFar.kind < AMBIGUOUS && sym.owner != bestSoFar.owner)
duke@1 517 return new AmbiguityError(bestSoFar, sym);
duke@1 518 else if (bestSoFar.kind >= VAR) {
duke@1 519 origin = e.getOrigin().owner;
duke@1 520 bestSoFar = isAccessible(env, origin.type, sym)
duke@1 521 ? sym : new AccessError(env, origin.type, sym);
duke@1 522 }
duke@1 523 }
duke@1 524 if (bestSoFar.kind == VAR && bestSoFar.owner.type != origin.type)
duke@1 525 return bestSoFar.clone(origin);
duke@1 526 else
duke@1 527 return bestSoFar;
duke@1 528 }
duke@1 529
duke@1 530 Warner noteWarner = new Warner();
duke@1 531
duke@1 532 /** Select the best method for a call site among two choices.
duke@1 533 * @param env The current environment.
duke@1 534 * @param site The original type from where the
duke@1 535 * selection takes place.
duke@1 536 * @param argtypes The invocation's value arguments,
duke@1 537 * @param typeargtypes The invocation's type arguments,
duke@1 538 * @param sym Proposed new best match.
duke@1 539 * @param bestSoFar Previously found best match.
duke@1 540 * @param allowBoxing Allow boxing conversions of arguments.
duke@1 541 * @param useVarargs Box trailing arguments into an array for varargs.
duke@1 542 */
duke@1 543 Symbol selectBest(Env<AttrContext> env,
duke@1 544 Type site,
duke@1 545 List<Type> argtypes,
duke@1 546 List<Type> typeargtypes,
duke@1 547 Symbol sym,
duke@1 548 Symbol bestSoFar,
duke@1 549 boolean allowBoxing,
duke@1 550 boolean useVarargs,
duke@1 551 boolean operator) {
duke@1 552 if (sym.kind == ERR) return bestSoFar;
duke@1 553 if (!sym.isInheritedIn(site.tsym, types)) return bestSoFar;
duke@1 554 assert sym.kind < AMBIGUOUS;
duke@1 555 try {
duke@1 556 if (rawInstantiate(env, site, sym, argtypes, typeargtypes,
duke@1 557 allowBoxing, useVarargs, Warner.noWarnings) == null) {
duke@1 558 // inapplicable
duke@1 559 switch (bestSoFar.kind) {
duke@1 560 case ABSENT_MTH: return wrongMethod.setWrongSym(sym);
duke@1 561 case WRONG_MTH: return wrongMethods;
duke@1 562 default: return bestSoFar;
duke@1 563 }
duke@1 564 }
duke@1 565 } catch (Infer.NoInstanceException ex) {
duke@1 566 switch (bestSoFar.kind) {
duke@1 567 case ABSENT_MTH:
duke@1 568 return wrongMethod.setWrongSym(sym, ex.getDiagnostic());
duke@1 569 case WRONG_MTH:
duke@1 570 return wrongMethods;
duke@1 571 default:
duke@1 572 return bestSoFar;
duke@1 573 }
duke@1 574 }
duke@1 575 if (!isAccessible(env, site, sym)) {
duke@1 576 return (bestSoFar.kind == ABSENT_MTH)
duke@1 577 ? new AccessError(env, site, sym)
duke@1 578 : bestSoFar;
duke@1 579 }
duke@1 580 return (bestSoFar.kind > AMBIGUOUS)
duke@1 581 ? sym
duke@1 582 : mostSpecific(sym, bestSoFar, env, site,
duke@1 583 allowBoxing && operator, useVarargs);
duke@1 584 }
duke@1 585
duke@1 586 /* Return the most specific of the two methods for a call,
duke@1 587 * given that both are accessible and applicable.
duke@1 588 * @param m1 A new candidate for most specific.
duke@1 589 * @param m2 The previous most specific candidate.
duke@1 590 * @param env The current environment.
duke@1 591 * @param site The original type from where the selection
duke@1 592 * takes place.
duke@1 593 * @param allowBoxing Allow boxing conversions of arguments.
duke@1 594 * @param useVarargs Box trailing arguments into an array for varargs.
duke@1 595 */
duke@1 596 Symbol mostSpecific(Symbol m1,
duke@1 597 Symbol m2,
duke@1 598 Env<AttrContext> env,
duke@1 599 Type site,
duke@1 600 boolean allowBoxing,
duke@1 601 boolean useVarargs) {
duke@1 602 switch (m2.kind) {
duke@1 603 case MTH:
duke@1 604 if (m1 == m2) return m1;
duke@1 605 Type mt1 = types.memberType(site, m1);
duke@1 606 noteWarner.unchecked = false;
duke@1 607 boolean m1SignatureMoreSpecific =
duke@1 608 (instantiate(env, site, m2, types.lowerBoundArgtypes(mt1), null,
duke@1 609 allowBoxing, false, noteWarner) != null ||
duke@1 610 useVarargs && instantiate(env, site, m2, types.lowerBoundArgtypes(mt1), null,
duke@1 611 allowBoxing, true, noteWarner) != null) &&
duke@1 612 !noteWarner.unchecked;
duke@1 613 Type mt2 = types.memberType(site, m2);
duke@1 614 noteWarner.unchecked = false;
duke@1 615 boolean m2SignatureMoreSpecific =
duke@1 616 (instantiate(env, site, m1, types.lowerBoundArgtypes(mt2), null,
duke@1 617 allowBoxing, false, noteWarner) != null ||
duke@1 618 useVarargs && instantiate(env, site, m1, types.lowerBoundArgtypes(mt2), null,
duke@1 619 allowBoxing, true, noteWarner) != null) &&
duke@1 620 !noteWarner.unchecked;
duke@1 621 if (m1SignatureMoreSpecific && m2SignatureMoreSpecific) {
duke@1 622 if (!types.overrideEquivalent(mt1, mt2))
duke@1 623 return new AmbiguityError(m1, m2);
duke@1 624 // same signature; select (a) the non-bridge method, or
duke@1 625 // (b) the one that overrides the other, or (c) the concrete
duke@1 626 // one, or (d) merge both abstract signatures
duke@1 627 if ((m1.flags() & BRIDGE) != (m2.flags() & BRIDGE)) {
duke@1 628 return ((m1.flags() & BRIDGE) != 0) ? m2 : m1;
duke@1 629 }
duke@1 630 // if one overrides or hides the other, use it
duke@1 631 TypeSymbol m1Owner = (TypeSymbol)m1.owner;
duke@1 632 TypeSymbol m2Owner = (TypeSymbol)m2.owner;
duke@1 633 if (types.asSuper(m1Owner.type, m2Owner) != null &&
duke@1 634 ((m1.owner.flags_field & INTERFACE) == 0 ||
duke@1 635 (m2.owner.flags_field & INTERFACE) != 0) &&
duke@1 636 m1.overrides(m2, m1Owner, types, false))
duke@1 637 return m1;
duke@1 638 if (types.asSuper(m2Owner.type, m1Owner) != null &&
duke@1 639 ((m2.owner.flags_field & INTERFACE) == 0 ||
duke@1 640 (m1.owner.flags_field & INTERFACE) != 0) &&
duke@1 641 m2.overrides(m1, m2Owner, types, false))
duke@1 642 return m2;
duke@1 643 boolean m1Abstract = (m1.flags() & ABSTRACT) != 0;
duke@1 644 boolean m2Abstract = (m2.flags() & ABSTRACT) != 0;
duke@1 645 if (m1Abstract && !m2Abstract) return m2;
duke@1 646 if (m2Abstract && !m1Abstract) return m1;
duke@1 647 // both abstract or both concrete
duke@1 648 if (!m1Abstract && !m2Abstract)
duke@1 649 return new AmbiguityError(m1, m2);
duke@1 650 // check for same erasure
duke@1 651 if (!types.isSameType(m1.erasure(types), m2.erasure(types)))
duke@1 652 return new AmbiguityError(m1, m2);
duke@1 653 // both abstract, neither overridden; merge throws clause and result type
duke@1 654 Symbol result;
duke@1 655 Type result2 = mt2.getReturnType();;
duke@1 656 if (mt2.tag == FORALL)
duke@1 657 result2 = types.subst(result2, ((ForAll)mt2).tvars, ((ForAll)mt1).tvars);
duke@1 658 if (types.isSubtype(mt1.getReturnType(), result2)) {
duke@1 659 result = m1;
duke@1 660 } else if (types.isSubtype(result2, mt1.getReturnType())) {
duke@1 661 result = m2;
duke@1 662 } else {
duke@1 663 // Theoretically, this can't happen, but it is possible
duke@1 664 // due to error recovery or mixing incompatible class files
duke@1 665 return new AmbiguityError(m1, m2);
duke@1 666 }
duke@1 667 result = result.clone(result.owner);
duke@1 668 result.type = (Type)result.type.clone();
duke@1 669 result.type.setThrown(chk.intersect(mt1.getThrownTypes(),
duke@1 670 mt2.getThrownTypes()));
duke@1 671 return result;
duke@1 672 }
duke@1 673 if (m1SignatureMoreSpecific) return m1;
duke@1 674 if (m2SignatureMoreSpecific) return m2;
duke@1 675 return new AmbiguityError(m1, m2);
duke@1 676 case AMBIGUOUS:
duke@1 677 AmbiguityError e = (AmbiguityError)m2;
duke@1 678 Symbol err1 = mostSpecific(m1, e.sym1, env, site, allowBoxing, useVarargs);
duke@1 679 Symbol err2 = mostSpecific(m1, e.sym2, env, site, allowBoxing, useVarargs);
duke@1 680 if (err1 == err2) return err1;
duke@1 681 if (err1 == e.sym1 && err2 == e.sym2) return m2;
duke@1 682 if (err1 instanceof AmbiguityError &&
duke@1 683 err2 instanceof AmbiguityError &&
duke@1 684 ((AmbiguityError)err1).sym1 == ((AmbiguityError)err2).sym1)
duke@1 685 return new AmbiguityError(m1, m2);
duke@1 686 else
duke@1 687 return new AmbiguityError(err1, err2);
duke@1 688 default:
duke@1 689 throw new AssertionError();
duke@1 690 }
duke@1 691 }
duke@1 692
duke@1 693 /** Find best qualified method matching given name, type and value
duke@1 694 * arguments.
duke@1 695 * @param env The current environment.
duke@1 696 * @param site The original type from where the selection
duke@1 697 * takes place.
duke@1 698 * @param name The method's name.
duke@1 699 * @param argtypes The method's value arguments.
duke@1 700 * @param typeargtypes The method's type arguments
duke@1 701 * @param allowBoxing Allow boxing conversions of arguments.
duke@1 702 * @param useVarargs Box trailing arguments into an array for varargs.
duke@1 703 */
duke@1 704 Symbol findMethod(Env<AttrContext> env,
duke@1 705 Type site,
duke@1 706 Name name,
duke@1 707 List<Type> argtypes,
duke@1 708 List<Type> typeargtypes,
duke@1 709 boolean allowBoxing,
duke@1 710 boolean useVarargs,
duke@1 711 boolean operator) {
duke@1 712 return findMethod(env,
duke@1 713 site,
duke@1 714 name,
duke@1 715 argtypes,
duke@1 716 typeargtypes,
duke@1 717 site.tsym.type,
duke@1 718 true,
duke@1 719 methodNotFound,
duke@1 720 allowBoxing,
duke@1 721 useVarargs,
duke@1 722 operator);
duke@1 723 }
duke@1 724 // where
duke@1 725 private Symbol findMethod(Env<AttrContext> env,
duke@1 726 Type site,
duke@1 727 Name name,
duke@1 728 List<Type> argtypes,
duke@1 729 List<Type> typeargtypes,
duke@1 730 Type intype,
duke@1 731 boolean abstractok,
duke@1 732 Symbol bestSoFar,
duke@1 733 boolean allowBoxing,
duke@1 734 boolean useVarargs,
duke@1 735 boolean operator) {
duke@1 736 for (Type ct = intype; ct.tag == CLASS; ct = types.supertype(ct)) {
duke@1 737 ClassSymbol c = (ClassSymbol)ct.tsym;
duke@1 738 if ((c.flags() & (ABSTRACT | INTERFACE)) == 0)
duke@1 739 abstractok = false;
duke@1 740 for (Scope.Entry e = c.members().lookup(name);
duke@1 741 e.scope != null;
duke@1 742 e = e.next()) {
duke@1 743 //- System.out.println(" e " + e.sym);
duke@1 744 if (e.sym.kind == MTH &&
duke@1 745 (e.sym.flags_field & SYNTHETIC) == 0) {
duke@1 746 bestSoFar = selectBest(env, site, argtypes, typeargtypes,
duke@1 747 e.sym, bestSoFar,
duke@1 748 allowBoxing,
duke@1 749 useVarargs,
duke@1 750 operator);
duke@1 751 }
duke@1 752 }
duke@1 753 //- System.out.println(" - " + bestSoFar);
duke@1 754 if (abstractok) {
duke@1 755 Symbol concrete = methodNotFound;
duke@1 756 if ((bestSoFar.flags() & ABSTRACT) == 0)
duke@1 757 concrete = bestSoFar;
duke@1 758 for (List<Type> l = types.interfaces(c.type);
duke@1 759 l.nonEmpty();
duke@1 760 l = l.tail) {
duke@1 761 bestSoFar = findMethod(env, site, name, argtypes,
duke@1 762 typeargtypes,
duke@1 763 l.head, abstractok, bestSoFar,
duke@1 764 allowBoxing, useVarargs, operator);
duke@1 765 }
duke@1 766 if (concrete != bestSoFar &&
duke@1 767 concrete.kind < ERR && bestSoFar.kind < ERR &&
duke@1 768 types.isSubSignature(concrete.type, bestSoFar.type))
duke@1 769 bestSoFar = concrete;
duke@1 770 }
duke@1 771 }
duke@1 772 return bestSoFar;
duke@1 773 }
duke@1 774
duke@1 775 /** Find unqualified method matching given name, type and value arguments.
duke@1 776 * @param env The current environment.
duke@1 777 * @param name The method's name.
duke@1 778 * @param argtypes The method's value arguments.
duke@1 779 * @param typeargtypes The method's type arguments.
duke@1 780 * @param allowBoxing Allow boxing conversions of arguments.
duke@1 781 * @param useVarargs Box trailing arguments into an array for varargs.
duke@1 782 */
duke@1 783 Symbol findFun(Env<AttrContext> env, Name name,
duke@1 784 List<Type> argtypes, List<Type> typeargtypes,
duke@1 785 boolean allowBoxing, boolean useVarargs) {
duke@1 786 Symbol bestSoFar = methodNotFound;
duke@1 787 Symbol sym;
duke@1 788 Env<AttrContext> env1 = env;
duke@1 789 boolean staticOnly = false;
duke@1 790 while (env1.outer != null) {
duke@1 791 if (isStatic(env1)) staticOnly = true;
duke@1 792 sym = findMethod(
duke@1 793 env1, env1.enclClass.sym.type, name, argtypes, typeargtypes,
duke@1 794 allowBoxing, useVarargs, false);
duke@1 795 if (sym.exists()) {
duke@1 796 if (staticOnly &&
duke@1 797 sym.kind == MTH &&
duke@1 798 sym.owner.kind == TYP &&
duke@1 799 (sym.flags() & STATIC) == 0) return new StaticError(sym);
duke@1 800 else return sym;
duke@1 801 } else if (sym.kind < bestSoFar.kind) {
duke@1 802 bestSoFar = sym;
duke@1 803 }
duke@1 804 if ((env1.enclClass.sym.flags() & STATIC) != 0) staticOnly = true;
duke@1 805 env1 = env1.outer;
duke@1 806 }
duke@1 807
duke@1 808 sym = findMethod(env, syms.predefClass.type, name, argtypes,
duke@1 809 typeargtypes, allowBoxing, useVarargs, false);
duke@1 810 if (sym.exists())
duke@1 811 return sym;
duke@1 812
duke@1 813 Scope.Entry e = env.toplevel.namedImportScope.lookup(name);
duke@1 814 for (; e.scope != null; e = e.next()) {
duke@1 815 sym = e.sym;
duke@1 816 Type origin = e.getOrigin().owner.type;
duke@1 817 if (sym.kind == MTH) {
duke@1 818 if (e.sym.owner.type != origin)
duke@1 819 sym = sym.clone(e.getOrigin().owner);
duke@1 820 if (!isAccessible(env, origin, sym))
duke@1 821 sym = new AccessError(env, origin, sym);
duke@1 822 bestSoFar = selectBest(env, origin,
duke@1 823 argtypes, typeargtypes,
duke@1 824 sym, bestSoFar,
duke@1 825 allowBoxing, useVarargs, false);
duke@1 826 }
duke@1 827 }
duke@1 828 if (bestSoFar.exists())
duke@1 829 return bestSoFar;
duke@1 830
duke@1 831 e = env.toplevel.starImportScope.lookup(name);
duke@1 832 for (; e.scope != null; e = e.next()) {
duke@1 833 sym = e.sym;
duke@1 834 Type origin = e.getOrigin().owner.type;
duke@1 835 if (sym.kind == MTH) {
duke@1 836 if (e.sym.owner.type != origin)
duke@1 837 sym = sym.clone(e.getOrigin().owner);
duke@1 838 if (!isAccessible(env, origin, sym))
duke@1 839 sym = new AccessError(env, origin, sym);
duke@1 840 bestSoFar = selectBest(env, origin,
duke@1 841 argtypes, typeargtypes,
duke@1 842 sym, bestSoFar,
duke@1 843 allowBoxing, useVarargs, false);
duke@1 844 }
duke@1 845 }
duke@1 846 return bestSoFar;
duke@1 847 }
duke@1 848
duke@1 849 /** Load toplevel or member class with given fully qualified name and
duke@1 850 * verify that it is accessible.
duke@1 851 * @param env The current environment.
duke@1 852 * @param name The fully qualified name of the class to be loaded.
duke@1 853 */
duke@1 854 Symbol loadClass(Env<AttrContext> env, Name name) {
duke@1 855 try {
duke@1 856 ClassSymbol c = reader.loadClass(name);
duke@1 857 return isAccessible(env, c) ? c : new AccessError(c);
duke@1 858 } catch (ClassReader.BadClassFile err) {
duke@1 859 throw err;
duke@1 860 } catch (CompletionFailure ex) {
duke@1 861 return typeNotFound;
duke@1 862 }
duke@1 863 }
duke@1 864
duke@1 865 /** Find qualified member type.
duke@1 866 * @param env The current environment.
duke@1 867 * @param site The original type from where the selection takes
duke@1 868 * place.
duke@1 869 * @param name The type's name.
duke@1 870 * @param c The class to search for the member type. This is
duke@1 871 * always a superclass or implemented interface of
duke@1 872 * site's class.
duke@1 873 */
duke@1 874 Symbol findMemberType(Env<AttrContext> env,
duke@1 875 Type site,
duke@1 876 Name name,
duke@1 877 TypeSymbol c) {
duke@1 878 Symbol bestSoFar = typeNotFound;
duke@1 879 Symbol sym;
duke@1 880 Scope.Entry e = c.members().lookup(name);
duke@1 881 while (e.scope != null) {
duke@1 882 if (e.sym.kind == TYP) {
duke@1 883 return isAccessible(env, site, e.sym)
duke@1 884 ? e.sym
duke@1 885 : new AccessError(env, site, e.sym);
duke@1 886 }
duke@1 887 e = e.next();
duke@1 888 }
duke@1 889 Type st = types.supertype(c.type);
duke@1 890 if (st != null && st.tag == CLASS) {
duke@1 891 sym = findMemberType(env, site, name, st.tsym);
duke@1 892 if (sym.kind < bestSoFar.kind) bestSoFar = sym;
duke@1 893 }
duke@1 894 for (List<Type> l = types.interfaces(c.type);
duke@1 895 bestSoFar.kind != AMBIGUOUS && l.nonEmpty();
duke@1 896 l = l.tail) {
duke@1 897 sym = findMemberType(env, site, name, l.head.tsym);
duke@1 898 if (bestSoFar.kind < AMBIGUOUS && sym.kind < AMBIGUOUS &&
duke@1 899 sym.owner != bestSoFar.owner)
duke@1 900 bestSoFar = new AmbiguityError(bestSoFar, sym);
duke@1 901 else if (sym.kind < bestSoFar.kind)
duke@1 902 bestSoFar = sym;
duke@1 903 }
duke@1 904 return bestSoFar;
duke@1 905 }
duke@1 906
duke@1 907 /** Find a global type in given scope and load corresponding class.
duke@1 908 * @param env The current environment.
duke@1 909 * @param scope The scope in which to look for the type.
duke@1 910 * @param name The type's name.
duke@1 911 */
duke@1 912 Symbol findGlobalType(Env<AttrContext> env, Scope scope, Name name) {
duke@1 913 Symbol bestSoFar = typeNotFound;
duke@1 914 for (Scope.Entry e = scope.lookup(name); e.scope != null; e = e.next()) {
duke@1 915 Symbol sym = loadClass(env, e.sym.flatName());
duke@1 916 if (bestSoFar.kind == TYP && sym.kind == TYP &&
duke@1 917 bestSoFar != sym)
duke@1 918 return new AmbiguityError(bestSoFar, sym);
duke@1 919 else if (sym.kind < bestSoFar.kind)
duke@1 920 bestSoFar = sym;
duke@1 921 }
duke@1 922 return bestSoFar;
duke@1 923 }
duke@1 924
duke@1 925 /** Find an unqualified type symbol.
duke@1 926 * @param env The current environment.
duke@1 927 * @param name The type's name.
duke@1 928 */
duke@1 929 Symbol findType(Env<AttrContext> env, Name name) {
duke@1 930 Symbol bestSoFar = typeNotFound;
duke@1 931 Symbol sym;
duke@1 932 boolean staticOnly = false;
duke@1 933 for (Env<AttrContext> env1 = env; env1.outer != null; env1 = env1.outer) {
duke@1 934 if (isStatic(env1)) staticOnly = true;
duke@1 935 for (Scope.Entry e = env1.info.scope.lookup(name);
duke@1 936 e.scope != null;
duke@1 937 e = e.next()) {
duke@1 938 if (e.sym.kind == TYP) {
duke@1 939 if (staticOnly &&
duke@1 940 e.sym.type.tag == TYPEVAR &&
duke@1 941 e.sym.owner.kind == TYP) return new StaticError(e.sym);
duke@1 942 return e.sym;
duke@1 943 }
duke@1 944 }
duke@1 945
duke@1 946 sym = findMemberType(env1, env1.enclClass.sym.type, name,
duke@1 947 env1.enclClass.sym);
duke@1 948 if (staticOnly && sym.kind == TYP &&
duke@1 949 sym.type.tag == CLASS &&
duke@1 950 sym.type.getEnclosingType().tag == CLASS &&
duke@1 951 env1.enclClass.sym.type.isParameterized() &&
duke@1 952 sym.type.getEnclosingType().isParameterized())
duke@1 953 return new StaticError(sym);
duke@1 954 else if (sym.exists()) return sym;
duke@1 955 else if (sym.kind < bestSoFar.kind) bestSoFar = sym;
duke@1 956
duke@1 957 JCClassDecl encl = env1.baseClause ? (JCClassDecl)env1.tree : env1.enclClass;
duke@1 958 if ((encl.sym.flags() & STATIC) != 0)
duke@1 959 staticOnly = true;
duke@1 960 }
duke@1 961
duke@1 962 if (env.tree.getTag() != JCTree.IMPORT) {
duke@1 963 sym = findGlobalType(env, env.toplevel.namedImportScope, name);
duke@1 964 if (sym.exists()) return sym;
duke@1 965 else if (sym.kind < bestSoFar.kind) bestSoFar = sym;
duke@1 966
duke@1 967 sym = findGlobalType(env, env.toplevel.packge.members(), name);
duke@1 968 if (sym.exists()) return sym;
duke@1 969 else if (sym.kind < bestSoFar.kind) bestSoFar = sym;
duke@1 970
duke@1 971 sym = findGlobalType(env, env.toplevel.starImportScope, name);
duke@1 972 if (sym.exists()) return sym;
duke@1 973 else if (sym.kind < bestSoFar.kind) bestSoFar = sym;
duke@1 974 }
duke@1 975
duke@1 976 return bestSoFar;
duke@1 977 }
duke@1 978
duke@1 979 /** Find an unqualified identifier which matches a specified kind set.
duke@1 980 * @param env The current environment.
duke@1 981 * @param name The indentifier's name.
duke@1 982 * @param kind Indicates the possible symbol kinds
duke@1 983 * (a subset of VAL, TYP, PCK).
duke@1 984 */
duke@1 985 Symbol findIdent(Env<AttrContext> env, Name name, int kind) {
duke@1 986 Symbol bestSoFar = typeNotFound;
duke@1 987 Symbol sym;
duke@1 988
duke@1 989 if ((kind & VAR) != 0) {
duke@1 990 sym = findVar(env, name);
duke@1 991 if (sym.exists()) return sym;
duke@1 992 else if (sym.kind < bestSoFar.kind) bestSoFar = sym;
duke@1 993 }
duke@1 994
duke@1 995 if ((kind & TYP) != 0) {
duke@1 996 sym = findType(env, name);
duke@1 997 if (sym.exists()) return sym;
duke@1 998 else if (sym.kind < bestSoFar.kind) bestSoFar = sym;
duke@1 999 }
duke@1 1000
duke@1 1001 if ((kind & PCK) != 0) return reader.enterPackage(name);
duke@1 1002 else return bestSoFar;
duke@1 1003 }
duke@1 1004
duke@1 1005 /** Find an identifier in a package which matches a specified kind set.
duke@1 1006 * @param env The current environment.
duke@1 1007 * @param name The identifier's name.
duke@1 1008 * @param kind Indicates the possible symbol kinds
duke@1 1009 * (a nonempty subset of TYP, PCK).
duke@1 1010 */
duke@1 1011 Symbol findIdentInPackage(Env<AttrContext> env, TypeSymbol pck,
duke@1 1012 Name name, int kind) {
duke@1 1013 Name fullname = TypeSymbol.formFullName(name, pck);
duke@1 1014 Symbol bestSoFar = typeNotFound;
duke@1 1015 PackageSymbol pack = null;
duke@1 1016 if ((kind & PCK) != 0) {
duke@1 1017 pack = reader.enterPackage(fullname);
duke@1 1018 if (pack.exists()) return pack;
duke@1 1019 }
duke@1 1020 if ((kind & TYP) != 0) {
duke@1 1021 Symbol sym = loadClass(env, fullname);
duke@1 1022 if (sym.exists()) {
duke@1 1023 // don't allow programs to use flatnames
duke@1 1024 if (name == sym.name) return sym;
duke@1 1025 }
duke@1 1026 else if (sym.kind < bestSoFar.kind) bestSoFar = sym;
duke@1 1027 }
duke@1 1028 return (pack != null) ? pack : bestSoFar;
duke@1 1029 }
duke@1 1030
duke@1 1031 /** Find an identifier among the members of a given type `site'.
duke@1 1032 * @param env The current environment.
duke@1 1033 * @param site The type containing the symbol to be found.
duke@1 1034 * @param name The identifier's name.
duke@1 1035 * @param kind Indicates the possible symbol kinds
duke@1 1036 * (a subset of VAL, TYP).
duke@1 1037 */
duke@1 1038 Symbol findIdentInType(Env<AttrContext> env, Type site,
duke@1 1039 Name name, int kind) {
duke@1 1040 Symbol bestSoFar = typeNotFound;
duke@1 1041 Symbol sym;
duke@1 1042 if ((kind & VAR) != 0) {
duke@1 1043 sym = findField(env, site, name, site.tsym);
duke@1 1044 if (sym.exists()) return sym;
duke@1 1045 else if (sym.kind < bestSoFar.kind) bestSoFar = sym;
duke@1 1046 }
duke@1 1047
duke@1 1048 if ((kind & TYP) != 0) {
duke@1 1049 sym = findMemberType(env, site, name, site.tsym);
duke@1 1050 if (sym.exists()) return sym;
duke@1 1051 else if (sym.kind < bestSoFar.kind) bestSoFar = sym;
duke@1 1052 }
duke@1 1053 return bestSoFar;
duke@1 1054 }
duke@1 1055
duke@1 1056 /* ***************************************************************************
duke@1 1057 * Access checking
duke@1 1058 * The following methods convert ResolveErrors to ErrorSymbols, issuing
duke@1 1059 * an error message in the process
duke@1 1060 ****************************************************************************/
duke@1 1061
duke@1 1062 /** If `sym' is a bad symbol: report error and return errSymbol
duke@1 1063 * else pass through unchanged,
duke@1 1064 * additional arguments duplicate what has been used in trying to find the
duke@1 1065 * symbol (--> flyweight pattern). This improves performance since we
duke@1 1066 * expect misses to happen frequently.
duke@1 1067 *
duke@1 1068 * @param sym The symbol that was found, or a ResolveError.
duke@1 1069 * @param pos The position to use for error reporting.
duke@1 1070 * @param site The original type from where the selection took place.
duke@1 1071 * @param name The symbol's name.
duke@1 1072 * @param argtypes The invocation's value arguments,
duke@1 1073 * if we looked for a method.
duke@1 1074 * @param typeargtypes The invocation's type arguments,
duke@1 1075 * if we looked for a method.
duke@1 1076 */
duke@1 1077 Symbol access(Symbol sym,
duke@1 1078 DiagnosticPosition pos,
duke@1 1079 Type site,
duke@1 1080 Name name,
duke@1 1081 boolean qualified,
duke@1 1082 List<Type> argtypes,
duke@1 1083 List<Type> typeargtypes) {
duke@1 1084 if (sym.kind >= AMBIGUOUS) {
duke@1 1085 // printscopes(site.tsym.members());//DEBUG
duke@1 1086 if (!site.isErroneous() &&
duke@1 1087 !Type.isErroneous(argtypes) &&
duke@1 1088 (typeargtypes==null || !Type.isErroneous(typeargtypes)))
duke@1 1089 ((ResolveError)sym).report(log, pos, site, name, argtypes, typeargtypes);
duke@1 1090 do {
duke@1 1091 sym = ((ResolveError)sym).sym;
duke@1 1092 } while (sym.kind >= AMBIGUOUS);
duke@1 1093 if (sym == syms.errSymbol // preserve the symbol name through errors
duke@1 1094 || ((sym.kind & ERRONEOUS) == 0 // make sure an error symbol is returned
duke@1 1095 && (sym.kind & TYP) != 0))
duke@1 1096 sym = new ErrorType(name, qualified?site.tsym:syms.noSymbol).tsym;
duke@1 1097 }
duke@1 1098 return sym;
duke@1 1099 }
duke@1 1100
duke@1 1101 /** Same as above, but without type arguments and arguments.
duke@1 1102 */
duke@1 1103 Symbol access(Symbol sym,
duke@1 1104 DiagnosticPosition pos,
duke@1 1105 Type site,
duke@1 1106 Name name,
duke@1 1107 boolean qualified) {
duke@1 1108 if (sym.kind >= AMBIGUOUS)
duke@1 1109 return access(sym, pos, site, name, qualified, List.<Type>nil(), null);
duke@1 1110 else
duke@1 1111 return sym;
duke@1 1112 }
duke@1 1113
duke@1 1114 /** Check that sym is not an abstract method.
duke@1 1115 */
duke@1 1116 void checkNonAbstract(DiagnosticPosition pos, Symbol sym) {
duke@1 1117 if ((sym.flags() & ABSTRACT) != 0)
duke@1 1118 log.error(pos, "abstract.cant.be.accessed.directly",
duke@1 1119 kindName(sym), sym, sym.location());
duke@1 1120 }
duke@1 1121
duke@1 1122 /* ***************************************************************************
duke@1 1123 * Debugging
duke@1 1124 ****************************************************************************/
duke@1 1125
duke@1 1126 /** print all scopes starting with scope s and proceeding outwards.
duke@1 1127 * used for debugging.
duke@1 1128 */
duke@1 1129 public void printscopes(Scope s) {
duke@1 1130 while (s != null) {
duke@1 1131 if (s.owner != null)
duke@1 1132 System.err.print(s.owner + ": ");
duke@1 1133 for (Scope.Entry e = s.elems; e != null; e = e.sibling) {
duke@1 1134 if ((e.sym.flags() & ABSTRACT) != 0)
duke@1 1135 System.err.print("abstract ");
duke@1 1136 System.err.print(e.sym + " ");
duke@1 1137 }
duke@1 1138 System.err.println();
duke@1 1139 s = s.next;
duke@1 1140 }
duke@1 1141 }
duke@1 1142
duke@1 1143 void printscopes(Env<AttrContext> env) {
duke@1 1144 while (env.outer != null) {
duke@1 1145 System.err.println("------------------------------");
duke@1 1146 printscopes(env.info.scope);
duke@1 1147 env = env.outer;
duke@1 1148 }
duke@1 1149 }
duke@1 1150
duke@1 1151 public void printscopes(Type t) {
duke@1 1152 while (t.tag == CLASS) {
duke@1 1153 printscopes(t.tsym.members());
duke@1 1154 t = types.supertype(t);
duke@1 1155 }
duke@1 1156 }
duke@1 1157
duke@1 1158 /* ***************************************************************************
duke@1 1159 * Name resolution
duke@1 1160 * Naming conventions are as for symbol lookup
duke@1 1161 * Unlike the find... methods these methods will report access errors
duke@1 1162 ****************************************************************************/
duke@1 1163
duke@1 1164 /** Resolve an unqualified (non-method) identifier.
duke@1 1165 * @param pos The position to use for error reporting.
duke@1 1166 * @param env The environment current at the identifier use.
duke@1 1167 * @param name The identifier's name.
duke@1 1168 * @param kind The set of admissible symbol kinds for the identifier.
duke@1 1169 */
duke@1 1170 Symbol resolveIdent(DiagnosticPosition pos, Env<AttrContext> env,
duke@1 1171 Name name, int kind) {
duke@1 1172 return access(
duke@1 1173 findIdent(env, name, kind),
duke@1 1174 pos, env.enclClass.sym.type, name, false);
duke@1 1175 }
duke@1 1176
duke@1 1177 /** Resolve an unqualified method identifier.
duke@1 1178 * @param pos The position to use for error reporting.
duke@1 1179 * @param env The environment current at the method invocation.
duke@1 1180 * @param name The identifier's name.
duke@1 1181 * @param argtypes The types of the invocation's value arguments.
duke@1 1182 * @param typeargtypes The types of the invocation's type arguments.
duke@1 1183 */
duke@1 1184 Symbol resolveMethod(DiagnosticPosition pos,
duke@1 1185 Env<AttrContext> env,
duke@1 1186 Name name,
duke@1 1187 List<Type> argtypes,
duke@1 1188 List<Type> typeargtypes) {
duke@1 1189 Symbol sym = findFun(env, name, argtypes, typeargtypes, false, env.info.varArgs=false);
duke@1 1190 if (varargsEnabled && sym.kind >= WRONG_MTHS) {
duke@1 1191 sym = findFun(env, name, argtypes, typeargtypes, true, false);
duke@1 1192 if (sym.kind >= WRONG_MTHS)
duke@1 1193 sym = findFun(env, name, argtypes, typeargtypes, true, env.info.varArgs=true);
duke@1 1194 }
duke@1 1195 if (sym.kind >= AMBIGUOUS) {
duke@1 1196 sym = access(
duke@1 1197 sym, pos, env.enclClass.sym.type, name, false, argtypes, typeargtypes);
duke@1 1198 }
duke@1 1199 return sym;
duke@1 1200 }
duke@1 1201
duke@1 1202 /** Resolve a qualified method identifier
duke@1 1203 * @param pos The position to use for error reporting.
duke@1 1204 * @param env The environment current at the method invocation.
duke@1 1205 * @param site The type of the qualifying expression, in which
duke@1 1206 * identifier is searched.
duke@1 1207 * @param name The identifier's name.
duke@1 1208 * @param argtypes The types of the invocation's value arguments.
duke@1 1209 * @param typeargtypes The types of the invocation's type arguments.
duke@1 1210 */
duke@1 1211 Symbol resolveQualifiedMethod(DiagnosticPosition pos, Env<AttrContext> env,
duke@1 1212 Type site, Name name, List<Type> argtypes,
duke@1 1213 List<Type> typeargtypes) {
duke@1 1214 Symbol sym = findMethod(env, site, name, argtypes, typeargtypes, false,
duke@1 1215 env.info.varArgs=false, false);
duke@1 1216 if (varargsEnabled && sym.kind >= WRONG_MTHS) {
duke@1 1217 sym = findMethod(env, site, name, argtypes, typeargtypes, true,
duke@1 1218 false, false);
duke@1 1219 if (sym.kind >= WRONG_MTHS)
duke@1 1220 sym = findMethod(env, site, name, argtypes, typeargtypes, true,
duke@1 1221 env.info.varArgs=true, false);
duke@1 1222 }
duke@1 1223 if (sym.kind >= AMBIGUOUS) {
duke@1 1224 sym = access(sym, pos, site, name, true, argtypes, typeargtypes);
duke@1 1225 }
duke@1 1226 return sym;
duke@1 1227 }
duke@1 1228
duke@1 1229 /** Resolve a qualified method identifier, throw a fatal error if not
duke@1 1230 * found.
duke@1 1231 * @param pos The position to use for error reporting.
duke@1 1232 * @param env The environment current at the method invocation.
duke@1 1233 * @param site The type of the qualifying expression, in which
duke@1 1234 * identifier is searched.
duke@1 1235 * @param name The identifier's name.
duke@1 1236 * @param argtypes The types of the invocation's value arguments.
duke@1 1237 * @param typeargtypes The types of the invocation's type arguments.
duke@1 1238 */
duke@1 1239 public MethodSymbol resolveInternalMethod(DiagnosticPosition pos, Env<AttrContext> env,
duke@1 1240 Type site, Name name,
duke@1 1241 List<Type> argtypes,
duke@1 1242 List<Type> typeargtypes) {
duke@1 1243 Symbol sym = resolveQualifiedMethod(
duke@1 1244 pos, env, site, name, argtypes, typeargtypes);
duke@1 1245 if (sym.kind == MTH) return (MethodSymbol)sym;
duke@1 1246 else throw new FatalError(
duke@1 1247 JCDiagnostic.fragment("fatal.err.cant.locate.meth",
duke@1 1248 name));
duke@1 1249 }
duke@1 1250
duke@1 1251 /** Resolve constructor.
duke@1 1252 * @param pos The position to use for error reporting.
duke@1 1253 * @param env The environment current at the constructor invocation.
duke@1 1254 * @param site The type of class for which a constructor is searched.
duke@1 1255 * @param argtypes The types of the constructor invocation's value
duke@1 1256 * arguments.
duke@1 1257 * @param typeargtypes The types of the constructor invocation's type
duke@1 1258 * arguments.
duke@1 1259 */
duke@1 1260 Symbol resolveConstructor(DiagnosticPosition pos,
duke@1 1261 Env<AttrContext> env,
duke@1 1262 Type site,
duke@1 1263 List<Type> argtypes,
duke@1 1264 List<Type> typeargtypes) {
duke@1 1265 Symbol sym = resolveConstructor(pos, env, site, argtypes, typeargtypes, false, env.info.varArgs=false);
duke@1 1266 if (varargsEnabled && sym.kind >= WRONG_MTHS) {
duke@1 1267 sym = resolveConstructor(pos, env, site, argtypes, typeargtypes, true, false);
duke@1 1268 if (sym.kind >= WRONG_MTHS)
duke@1 1269 sym = resolveConstructor(pos, env, site, argtypes, typeargtypes, true, env.info.varArgs=true);
duke@1 1270 }
duke@1 1271 if (sym.kind >= AMBIGUOUS) {
duke@1 1272 sym = access(sym, pos, site, names.init, true, argtypes, typeargtypes);
duke@1 1273 }
duke@1 1274 return sym;
duke@1 1275 }
duke@1 1276
duke@1 1277 /** Resolve constructor.
duke@1 1278 * @param pos The position to use for error reporting.
duke@1 1279 * @param env The environment current at the constructor invocation.
duke@1 1280 * @param site The type of class for which a constructor is searched.
duke@1 1281 * @param argtypes The types of the constructor invocation's value
duke@1 1282 * arguments.
duke@1 1283 * @param typeargtypes The types of the constructor invocation's type
duke@1 1284 * arguments.
duke@1 1285 * @param allowBoxing Allow boxing and varargs conversions.
duke@1 1286 * @param useVarargs Box trailing arguments into an array for varargs.
duke@1 1287 */
duke@1 1288 Symbol resolveConstructor(DiagnosticPosition pos, Env<AttrContext> env,
duke@1 1289 Type site, List<Type> argtypes,
duke@1 1290 List<Type> typeargtypes,
duke@1 1291 boolean allowBoxing,
duke@1 1292 boolean useVarargs) {
duke@1 1293 Symbol sym = findMethod(env, site,
duke@1 1294 names.init, argtypes,
duke@1 1295 typeargtypes, allowBoxing,
duke@1 1296 useVarargs, false);
duke@1 1297 if ((sym.flags() & DEPRECATED) != 0 &&
duke@1 1298 (env.info.scope.owner.flags() & DEPRECATED) == 0 &&
duke@1 1299 env.info.scope.owner.outermostClass() != sym.outermostClass())
duke@1 1300 chk.warnDeprecated(pos, sym);
duke@1 1301 return sym;
duke@1 1302 }
duke@1 1303
duke@1 1304 /** Resolve a constructor, throw a fatal error if not found.
duke@1 1305 * @param pos The position to use for error reporting.
duke@1 1306 * @param env The environment current at the method invocation.
duke@1 1307 * @param site The type to be constructed.
duke@1 1308 * @param argtypes The types of the invocation's value arguments.
duke@1 1309 * @param typeargtypes The types of the invocation's type arguments.
duke@1 1310 */
duke@1 1311 public MethodSymbol resolveInternalConstructor(DiagnosticPosition pos, Env<AttrContext> env,
duke@1 1312 Type site,
duke@1 1313 List<Type> argtypes,
duke@1 1314 List<Type> typeargtypes) {
duke@1 1315 Symbol sym = resolveConstructor(
duke@1 1316 pos, env, site, argtypes, typeargtypes);
duke@1 1317 if (sym.kind == MTH) return (MethodSymbol)sym;
duke@1 1318 else throw new FatalError(
duke@1 1319 JCDiagnostic.fragment("fatal.err.cant.locate.ctor", site));
duke@1 1320 }
duke@1 1321
duke@1 1322 /** Resolve operator.
duke@1 1323 * @param pos The position to use for error reporting.
duke@1 1324 * @param optag The tag of the operation tree.
duke@1 1325 * @param env The environment current at the operation.
duke@1 1326 * @param argtypes The types of the operands.
duke@1 1327 */
duke@1 1328 Symbol resolveOperator(DiagnosticPosition pos, int optag,
duke@1 1329 Env<AttrContext> env, List<Type> argtypes) {
duke@1 1330 Name name = treeinfo.operatorName(optag);
duke@1 1331 Symbol sym = findMethod(env, syms.predefClass.type, name, argtypes,
duke@1 1332 null, false, false, true);
duke@1 1333 if (boxingEnabled && sym.kind >= WRONG_MTHS)
duke@1 1334 sym = findMethod(env, syms.predefClass.type, name, argtypes,
duke@1 1335 null, true, false, true);
duke@1 1336 return access(sym, pos, env.enclClass.sym.type, name,
duke@1 1337 false, argtypes, null);
duke@1 1338 }
duke@1 1339
duke@1 1340 /** Resolve operator.
duke@1 1341 * @param pos The position to use for error reporting.
duke@1 1342 * @param optag The tag of the operation tree.
duke@1 1343 * @param env The environment current at the operation.
duke@1 1344 * @param arg The type of the operand.
duke@1 1345 */
duke@1 1346 Symbol resolveUnaryOperator(DiagnosticPosition pos, int optag, Env<AttrContext> env, Type arg) {
duke@1 1347 return resolveOperator(pos, optag, env, List.of(arg));
duke@1 1348 }
duke@1 1349
duke@1 1350 /** Resolve binary operator.
duke@1 1351 * @param pos The position to use for error reporting.
duke@1 1352 * @param optag The tag of the operation tree.
duke@1 1353 * @param env The environment current at the operation.
duke@1 1354 * @param left The types of the left operand.
duke@1 1355 * @param right The types of the right operand.
duke@1 1356 */
duke@1 1357 Symbol resolveBinaryOperator(DiagnosticPosition pos,
duke@1 1358 int optag,
duke@1 1359 Env<AttrContext> env,
duke@1 1360 Type left,
duke@1 1361 Type right) {
duke@1 1362 return resolveOperator(pos, optag, env, List.of(left, right));
duke@1 1363 }
duke@1 1364
duke@1 1365 /**
duke@1 1366 * Resolve `c.name' where name == this or name == super.
duke@1 1367 * @param pos The position to use for error reporting.
duke@1 1368 * @param env The environment current at the expression.
duke@1 1369 * @param c The qualifier.
duke@1 1370 * @param name The identifier's name.
duke@1 1371 */
duke@1 1372 Symbol resolveSelf(DiagnosticPosition pos,
duke@1 1373 Env<AttrContext> env,
duke@1 1374 TypeSymbol c,
duke@1 1375 Name name) {
duke@1 1376 Env<AttrContext> env1 = env;
duke@1 1377 boolean staticOnly = false;
duke@1 1378 while (env1.outer != null) {
duke@1 1379 if (isStatic(env1)) staticOnly = true;
duke@1 1380 if (env1.enclClass.sym == c) {
duke@1 1381 Symbol sym = env1.info.scope.lookup(name).sym;
duke@1 1382 if (sym != null) {
duke@1 1383 if (staticOnly) sym = new StaticError(sym);
duke@1 1384 return access(sym, pos, env.enclClass.sym.type,
duke@1 1385 name, true);
duke@1 1386 }
duke@1 1387 }
duke@1 1388 if ((env1.enclClass.sym.flags() & STATIC) != 0) staticOnly = true;
duke@1 1389 env1 = env1.outer;
duke@1 1390 }
duke@1 1391 log.error(pos, "not.encl.class", c);
duke@1 1392 return syms.errSymbol;
duke@1 1393 }
duke@1 1394
duke@1 1395 /**
duke@1 1396 * Resolve `c.this' for an enclosing class c that contains the
duke@1 1397 * named member.
duke@1 1398 * @param pos The position to use for error reporting.
duke@1 1399 * @param env The environment current at the expression.
duke@1 1400 * @param member The member that must be contained in the result.
duke@1 1401 */
duke@1 1402 Symbol resolveSelfContaining(DiagnosticPosition pos,
duke@1 1403 Env<AttrContext> env,
duke@1 1404 Symbol member) {
duke@1 1405 Name name = names._this;
duke@1 1406 Env<AttrContext> env1 = env;
duke@1 1407 boolean staticOnly = false;
duke@1 1408 while (env1.outer != null) {
duke@1 1409 if (isStatic(env1)) staticOnly = true;
duke@1 1410 if (env1.enclClass.sym.isSubClass(member.owner, types) &&
duke@1 1411 isAccessible(env, env1.enclClass.sym.type, member)) {
duke@1 1412 Symbol sym = env1.info.scope.lookup(name).sym;
duke@1 1413 if (sym != null) {
duke@1 1414 if (staticOnly) sym = new StaticError(sym);
duke@1 1415 return access(sym, pos, env.enclClass.sym.type,
duke@1 1416 name, true);
duke@1 1417 }
duke@1 1418 }
duke@1 1419 if ((env1.enclClass.sym.flags() & STATIC) != 0)
duke@1 1420 staticOnly = true;
duke@1 1421 env1 = env1.outer;
duke@1 1422 }
duke@1 1423 log.error(pos, "encl.class.required", member);
duke@1 1424 return syms.errSymbol;
duke@1 1425 }
duke@1 1426
duke@1 1427 /**
duke@1 1428 * Resolve an appropriate implicit this instance for t's container.
duke@1 1429 * JLS2 8.8.5.1 and 15.9.2
duke@1 1430 */
duke@1 1431 Type resolveImplicitThis(DiagnosticPosition pos, Env<AttrContext> env, Type t) {
duke@1 1432 Type thisType = (((t.tsym.owner.kind & (MTH|VAR)) != 0)
duke@1 1433 ? resolveSelf(pos, env, t.getEnclosingType().tsym, names._this)
duke@1 1434 : resolveSelfContaining(pos, env, t.tsym)).type;
duke@1 1435 if (env.info.isSelfCall && thisType.tsym == env.enclClass.sym)
duke@1 1436 log.error(pos, "cant.ref.before.ctor.called", "this");
duke@1 1437 return thisType;
duke@1 1438 }
duke@1 1439
duke@1 1440 /* ***************************************************************************
duke@1 1441 * Methods related to kinds
duke@1 1442 ****************************************************************************/
duke@1 1443
duke@1 1444 /** A localized string describing a given kind.
duke@1 1445 */
duke@1 1446 static JCDiagnostic kindName(int kind) {
duke@1 1447 switch (kind) {
duke@1 1448 case PCK: return JCDiagnostic.fragment("kindname.package");
duke@1 1449 case TYP: return JCDiagnostic.fragment("kindname.class");
duke@1 1450 case VAR: return JCDiagnostic.fragment("kindname.variable");
duke@1 1451 case VAL: return JCDiagnostic.fragment("kindname.value");
duke@1 1452 case MTH: return JCDiagnostic.fragment("kindname.method");
duke@1 1453 default : return JCDiagnostic.fragment("kindname",
duke@1 1454 Integer.toString(kind)); //debug
duke@1 1455 }
duke@1 1456 }
duke@1 1457
duke@1 1458 static JCDiagnostic kindName(Symbol sym) {
duke@1 1459 switch (sym.getKind()) {
duke@1 1460 case PACKAGE:
duke@1 1461 return JCDiagnostic.fragment("kindname.package");
duke@1 1462
duke@1 1463 case ENUM:
duke@1 1464 case ANNOTATION_TYPE:
duke@1 1465 case INTERFACE:
duke@1 1466 case CLASS:
duke@1 1467 return JCDiagnostic.fragment("kindname.class");
duke@1 1468
duke@1 1469 case TYPE_PARAMETER:
duke@1 1470 return JCDiagnostic.fragment("kindname.type.variable");
duke@1 1471
duke@1 1472 case ENUM_CONSTANT:
duke@1 1473 case FIELD:
duke@1 1474 case PARAMETER:
duke@1 1475 case LOCAL_VARIABLE:
duke@1 1476 case EXCEPTION_PARAMETER:
duke@1 1477 return JCDiagnostic.fragment("kindname.variable");
duke@1 1478
duke@1 1479 case METHOD:
duke@1 1480 case CONSTRUCTOR:
duke@1 1481 case STATIC_INIT:
duke@1 1482 case INSTANCE_INIT:
duke@1 1483 return JCDiagnostic.fragment("kindname.method");
duke@1 1484
duke@1 1485 default:
duke@1 1486 if (sym.kind == VAL)
duke@1 1487 // I don't think this can happen but it can't harm
duke@1 1488 // playing it safe --ahe
duke@1 1489 return JCDiagnostic.fragment("kindname.value");
duke@1 1490 else
duke@1 1491 return JCDiagnostic.fragment("kindname", sym.getKind()); // debug
duke@1 1492 }
duke@1 1493 }
duke@1 1494
duke@1 1495 /** A localized string describing a given set of kinds.
duke@1 1496 */
duke@1 1497 static JCDiagnostic kindNames(int kind) {
duke@1 1498 StringBuffer key = new StringBuffer();
duke@1 1499 key.append("kindname");
duke@1 1500 if ((kind & VAL) != 0)
duke@1 1501 key.append(((kind & VAL) == VAR) ? ".variable" : ".value");
duke@1 1502 if ((kind & MTH) != 0) key.append(".method");
duke@1 1503 if ((kind & TYP) != 0) key.append(".class");
duke@1 1504 if ((kind & PCK) != 0) key.append(".package");
duke@1 1505 return JCDiagnostic.fragment(key.toString(), kind);
duke@1 1506 }
duke@1 1507
duke@1 1508 /** A localized string describing the kind -- either class or interface --
duke@1 1509 * of a given type.
duke@1 1510 */
duke@1 1511 static JCDiagnostic typeKindName(Type t) {
duke@1 1512 if (t.tag == TYPEVAR ||
duke@1 1513 t.tag == CLASS && (t.tsym.flags() & COMPOUND) != 0)
duke@1 1514 return JCDiagnostic.fragment("kindname.type.variable.bound");
duke@1 1515 else if (t.tag == PACKAGE)
duke@1 1516 return JCDiagnostic.fragment("kindname.package");
duke@1 1517 else if ((t.tsym.flags_field & ANNOTATION) != 0)
duke@1 1518 return JCDiagnostic.fragment("kindname.annotation");
duke@1 1519 else if ((t.tsym.flags_field & INTERFACE) != 0)
duke@1 1520 return JCDiagnostic.fragment("kindname.interface");
duke@1 1521 else
duke@1 1522 return JCDiagnostic.fragment("kindname.class");
duke@1 1523 }
duke@1 1524
duke@1 1525 /** A localized string describing the kind of a missing symbol, given an
duke@1 1526 * error kind.
duke@1 1527 */
duke@1 1528 static JCDiagnostic absentKindName(int kind) {
duke@1 1529 switch (kind) {
duke@1 1530 case ABSENT_VAR:
duke@1 1531 return JCDiagnostic.fragment("kindname.variable");
duke@1 1532 case WRONG_MTHS: case WRONG_MTH: case ABSENT_MTH:
duke@1 1533 return JCDiagnostic.fragment("kindname.method");
duke@1 1534 case ABSENT_TYP:
duke@1 1535 return JCDiagnostic.fragment("kindname.class");
duke@1 1536 default:
duke@1 1537 return JCDiagnostic.fragment("kindname", kind);
duke@1 1538 }
duke@1 1539 }
duke@1 1540
duke@1 1541 /* ***************************************************************************
duke@1 1542 * ResolveError classes, indicating error situations when accessing symbols
duke@1 1543 ****************************************************************************/
duke@1 1544
duke@1 1545 public void logAccessError(Env<AttrContext> env, JCTree tree, Type type) {
duke@1 1546 AccessError error = new AccessError(env, type.getEnclosingType(), type.tsym);
duke@1 1547 error.report(log, tree.pos(), type.getEnclosingType(), null, null, null);
duke@1 1548 }
duke@1 1549
duke@1 1550 /** Root class for resolve errors.
duke@1 1551 * Instances of this class indicate "Symbol not found".
duke@1 1552 * Instances of subclass indicate other errors.
duke@1 1553 */
duke@1 1554 private class ResolveError extends Symbol {
duke@1 1555
duke@1 1556 ResolveError(int kind, Symbol sym, String debugName) {
duke@1 1557 super(kind, 0, null, null, null);
duke@1 1558 this.debugName = debugName;
duke@1 1559 this.sym = sym;
duke@1 1560 }
duke@1 1561
duke@1 1562 /** The name of the kind of error, for debugging only.
duke@1 1563 */
duke@1 1564 final String debugName;
duke@1 1565
duke@1 1566 /** The symbol that was determined by resolution, or errSymbol if none
duke@1 1567 * was found.
duke@1 1568 */
duke@1 1569 final Symbol sym;
duke@1 1570
duke@1 1571 /** The symbol that was a close mismatch, or null if none was found.
duke@1 1572 * wrongSym is currently set if a simgle method with the correct name, but
duke@1 1573 * the wrong parameters was found.
duke@1 1574 */
duke@1 1575 Symbol wrongSym;
duke@1 1576
duke@1 1577 /** An auxiliary explanation set in case of instantiation errors.
duke@1 1578 */
duke@1 1579 JCDiagnostic explanation;
duke@1 1580
duke@1 1581
duke@1 1582 public <R, P> R accept(ElementVisitor<R, P> v, P p) {
duke@1 1583 throw new AssertionError();
duke@1 1584 }
duke@1 1585
duke@1 1586 /** Print the (debug only) name of the kind of error.
duke@1 1587 */
duke@1 1588 public String toString() {
duke@1 1589 return debugName + " wrongSym=" + wrongSym + " explanation=" + explanation;
duke@1 1590 }
duke@1 1591
duke@1 1592 /** Update wrongSym and explanation and return this.
duke@1 1593 */
duke@1 1594 ResolveError setWrongSym(Symbol sym, JCDiagnostic explanation) {
duke@1 1595 this.wrongSym = sym;
duke@1 1596 this.explanation = explanation;
duke@1 1597 return this;
duke@1 1598 }
duke@1 1599
duke@1 1600 /** Update wrongSym and return this.
duke@1 1601 */
duke@1 1602 ResolveError setWrongSym(Symbol sym) {
duke@1 1603 this.wrongSym = sym;
duke@1 1604 this.explanation = null;
duke@1 1605 return this;
duke@1 1606 }
duke@1 1607
duke@1 1608 public boolean exists() {
duke@1 1609 switch (kind) {
duke@1 1610 case HIDDEN:
duke@1 1611 case ABSENT_VAR:
duke@1 1612 case ABSENT_MTH:
duke@1 1613 case ABSENT_TYP:
duke@1 1614 return false;
duke@1 1615 default:
duke@1 1616 return true;
duke@1 1617 }
duke@1 1618 }
duke@1 1619
duke@1 1620 /** Report error.
duke@1 1621 * @param log The error log to be used for error reporting.
duke@1 1622 * @param pos The position to be used for error reporting.
duke@1 1623 * @param site The original type from where the selection took place.
duke@1 1624 * @param name The name of the symbol to be resolved.
duke@1 1625 * @param argtypes The invocation's value arguments,
duke@1 1626 * if we looked for a method.
duke@1 1627 * @param typeargtypes The invocation's type arguments,
duke@1 1628 * if we looked for a method.
duke@1 1629 */
duke@1 1630 void report(Log log, DiagnosticPosition pos, Type site, Name name,
duke@1 1631 List<Type> argtypes, List<Type> typeargtypes) {
duke@1 1632 if (name != name.table.error) {
duke@1 1633 JCDiagnostic kindname = absentKindName(kind);
duke@1 1634 String idname = name.toString();
duke@1 1635 String args = "";
duke@1 1636 String typeargs = "";
duke@1 1637 if (kind >= WRONG_MTHS && kind <= ABSENT_MTH) {
duke@1 1638 if (isOperator(name)) {
duke@1 1639 log.error(pos, "operator.cant.be.applied",
duke@1 1640 name, Type.toString(argtypes));
duke@1 1641 return;
duke@1 1642 }
duke@1 1643 if (name == name.table.init) {
duke@1 1644 kindname = JCDiagnostic.fragment("kindname.constructor");
duke@1 1645 idname = site.tsym.name.toString();
duke@1 1646 }
duke@1 1647 args = "(" + Type.toString(argtypes) + ")";
duke@1 1648 if (typeargtypes != null && typeargtypes.nonEmpty())
duke@1 1649 typeargs = "<" + Type.toString(typeargtypes) + ">";
duke@1 1650 }
duke@1 1651 if (kind == WRONG_MTH) {
duke@1 1652 log.error(pos,
duke@1 1653 "cant.apply.symbol" + (explanation != null ? ".1" : ""),
duke@1 1654 wrongSym.asMemberOf(site, types),
duke@1 1655 wrongSym.location(site, types),
duke@1 1656 typeargs,
duke@1 1657 Type.toString(argtypes),
duke@1 1658 explanation);
duke@1 1659 } else if (site.tsym.name.len != 0) {
duke@1 1660 if (site.tsym.kind == PCK && !site.tsym.exists())
duke@1 1661 log.error(pos, "doesnt.exist", site.tsym);
duke@1 1662 else
duke@1 1663 log.error(pos, "cant.resolve.location",
duke@1 1664 kindname, idname, args, typeargs,
duke@1 1665 typeKindName(site), site);
duke@1 1666 } else {
duke@1 1667 log.error(pos, "cant.resolve", kindname, idname, args, typeargs);
duke@1 1668 }
duke@1 1669 }
duke@1 1670 }
duke@1 1671 //where
duke@1 1672 /** A name designates an operator if it consists
duke@1 1673 * of a non-empty sequence of operator symbols +-~!/*%&|^<>=
duke@1 1674 */
duke@1 1675 boolean isOperator(Name name) {
duke@1 1676 int i = 0;
duke@1 1677 while (i < name.len &&
duke@1 1678 "+-~!*/%&|^<>=".indexOf(name.byteAt(i)) >= 0) i++;
duke@1 1679 return i > 0 && i == name.len;
duke@1 1680 }
duke@1 1681 }
duke@1 1682
duke@1 1683 /** Resolve error class indicating that a symbol is not accessible.
duke@1 1684 */
duke@1 1685 class AccessError extends ResolveError {
duke@1 1686
duke@1 1687 AccessError(Symbol sym) {
duke@1 1688 this(null, null, sym);
duke@1 1689 }
duke@1 1690
duke@1 1691 AccessError(Env<AttrContext> env, Type site, Symbol sym) {
duke@1 1692 super(HIDDEN, sym, "access error");
duke@1 1693 this.env = env;
duke@1 1694 this.site = site;
duke@1 1695 if (debugResolve)
duke@1 1696 log.error("proc.messager", sym + " @ " + site + " is inaccessible.");
duke@1 1697 }
duke@1 1698
duke@1 1699 private Env<AttrContext> env;
duke@1 1700 private Type site;
duke@1 1701
duke@1 1702 /** Report error.
duke@1 1703 * @param log The error log to be used for error reporting.
duke@1 1704 * @param pos The position to be used for error reporting.
duke@1 1705 * @param site The original type from where the selection took place.
duke@1 1706 * @param name The name of the symbol to be resolved.
duke@1 1707 * @param argtypes The invocation's value arguments,
duke@1 1708 * if we looked for a method.
duke@1 1709 * @param typeargtypes The invocation's type arguments,
duke@1 1710 * if we looked for a method.
duke@1 1711 */
duke@1 1712 void report(Log log, DiagnosticPosition pos, Type site, Name name,
duke@1 1713 List<Type> argtypes, List<Type> typeargtypes) {
duke@1 1714 if (sym.owner.type.tag != ERROR) {
duke@1 1715 if (sym.name == sym.name.table.init && sym.owner != site.tsym)
duke@1 1716 new ResolveError(ABSENT_MTH, sym.owner, "absent method " + sym).report(
duke@1 1717 log, pos, site, name, argtypes, typeargtypes);
duke@1 1718 if ((sym.flags() & PUBLIC) != 0
duke@1 1719 || (env != null && this.site != null
duke@1 1720 && !isAccessible(env, this.site)))
duke@1 1721 log.error(pos, "not.def.access.class.intf.cant.access",
duke@1 1722 sym, sym.location());
duke@1 1723 else if ((sym.flags() & (PRIVATE | PROTECTED)) != 0)
duke@1 1724 log.error(pos, "report.access", sym,
duke@1 1725 TreeInfo.flagNames(sym.flags() & (PRIVATE | PROTECTED)),
duke@1 1726 sym.location());
duke@1 1727 else
duke@1 1728 log.error(pos, "not.def.public.cant.access",
duke@1 1729 sym, sym.location());
duke@1 1730 }
duke@1 1731 }
duke@1 1732 }
duke@1 1733
duke@1 1734 /** Resolve error class indicating that an instance member was accessed
duke@1 1735 * from a static context.
duke@1 1736 */
duke@1 1737 class StaticError extends ResolveError {
duke@1 1738 StaticError(Symbol sym) {
duke@1 1739 super(STATICERR, sym, "static error");
duke@1 1740 }
duke@1 1741
duke@1 1742 /** Report error.
duke@1 1743 * @param log The error log to be used for error reporting.
duke@1 1744 * @param pos The position to be used for error reporting.
duke@1 1745 * @param site The original type from where the selection took place.
duke@1 1746 * @param name The name of the symbol to be resolved.
duke@1 1747 * @param argtypes The invocation's value arguments,
duke@1 1748 * if we looked for a method.
duke@1 1749 * @param typeargtypes The invocation's type arguments,
duke@1 1750 * if we looked for a method.
duke@1 1751 */
duke@1 1752 void report(Log log,
duke@1 1753 DiagnosticPosition pos,
duke@1 1754 Type site,
duke@1 1755 Name name,
duke@1 1756 List<Type> argtypes,
duke@1 1757 List<Type> typeargtypes) {
duke@1 1758 String symstr = ((sym.kind == TYP && sym.type.tag == CLASS)
duke@1 1759 ? types.erasure(sym.type)
duke@1 1760 : sym).toString();
duke@1 1761 log.error(pos, "non-static.cant.be.ref",
duke@1 1762 kindName(sym), symstr);
duke@1 1763 }
duke@1 1764 }
duke@1 1765
duke@1 1766 /** Resolve error class indicating an ambiguous reference.
duke@1 1767 */
duke@1 1768 class AmbiguityError extends ResolveError {
duke@1 1769 Symbol sym1;
duke@1 1770 Symbol sym2;
duke@1 1771
duke@1 1772 AmbiguityError(Symbol sym1, Symbol sym2) {
duke@1 1773 super(AMBIGUOUS, sym1, "ambiguity error");
duke@1 1774 this.sym1 = sym1;
duke@1 1775 this.sym2 = sym2;
duke@1 1776 }
duke@1 1777
duke@1 1778 /** Report error.
duke@1 1779 * @param log The error log to be used for error reporting.
duke@1 1780 * @param pos The position to be used for error reporting.
duke@1 1781 * @param site The original type from where the selection took place.
duke@1 1782 * @param name The name of the symbol to be resolved.
duke@1 1783 * @param argtypes The invocation's value arguments,
duke@1 1784 * if we looked for a method.
duke@1 1785 * @param typeargtypes The invocation's type arguments,
duke@1 1786 * if we looked for a method.
duke@1 1787 */
duke@1 1788 void report(Log log, DiagnosticPosition pos, Type site, Name name,
duke@1 1789 List<Type> argtypes, List<Type> typeargtypes) {
duke@1 1790 AmbiguityError pair = this;
duke@1 1791 while (true) {
duke@1 1792 if (pair.sym1.kind == AMBIGUOUS)
duke@1 1793 pair = (AmbiguityError)pair.sym1;
duke@1 1794 else if (pair.sym2.kind == AMBIGUOUS)
duke@1 1795 pair = (AmbiguityError)pair.sym2;
duke@1 1796 else break;
duke@1 1797 }
duke@1 1798 Name sname = pair.sym1.name;
duke@1 1799 if (sname == sname.table.init) sname = pair.sym1.owner.name;
duke@1 1800 log.error(pos, "ref.ambiguous", sname,
duke@1 1801 kindName(pair.sym1),
duke@1 1802 pair.sym1,
duke@1 1803 pair.sym1.location(site, types),
duke@1 1804 kindName(pair.sym2),
duke@1 1805 pair.sym2,
duke@1 1806 pair.sym2.location(site, types));
duke@1 1807 }
duke@1 1808 }
duke@1 1809 }

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