src/share/classes/com/sun/tools/javac/code/Type.java

Tue, 28 Dec 2010 15:54:52 -0800

author
ohair
date
Tue, 28 Dec 2010 15:54:52 -0800
changeset 798
4868a36f6fd8
parent 795
7b99f98b3035
child 816
7c537f4298fb
permissions
-rw-r--r--

6962318: Update copyright year
Reviewed-by: xdono

duke@1 1 /*
ohair@798 2 * Copyright (c) 1999, 2010, 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.code;
duke@1 27
duke@1 28 import com.sun.tools.javac.util.*;
duke@1 29 import com.sun.tools.javac.code.Symbol.*;
duke@1 30
duke@1 31 import javax.lang.model.type.*;
duke@1 32
duke@1 33 import static com.sun.tools.javac.code.Flags.*;
duke@1 34 import static com.sun.tools.javac.code.Kinds.*;
duke@1 35 import static com.sun.tools.javac.code.BoundKind.*;
duke@1 36 import static com.sun.tools.javac.code.TypeTags.*;
duke@1 37
duke@1 38 /** This class represents Java types. The class itself defines the behavior of
duke@1 39 * the following types:
duke@1 40 * <pre>
duke@1 41 * base types (tags: BYTE, CHAR, SHORT, INT, LONG, FLOAT, DOUBLE, BOOLEAN),
duke@1 42 * type `void' (tag: VOID),
duke@1 43 * the bottom type (tag: BOT),
duke@1 44 * the missing type (tag: NONE).
duke@1 45 * </pre>
duke@1 46 * <p>The behavior of the following types is defined in subclasses, which are
duke@1 47 * all static inner classes of this class:
duke@1 48 * <pre>
duke@1 49 * class types (tag: CLASS, class: ClassType),
duke@1 50 * array types (tag: ARRAY, class: ArrayType),
duke@1 51 * method types (tag: METHOD, class: MethodType),
duke@1 52 * package types (tag: PACKAGE, class: PackageType),
duke@1 53 * type variables (tag: TYPEVAR, class: TypeVar),
duke@1 54 * type arguments (tag: WILDCARD, class: WildcardType),
duke@1 55 * polymorphic types (tag: FORALL, class: ForAll),
duke@1 56 * the error type (tag: ERROR, class: ErrorType).
duke@1 57 * </pre>
duke@1 58 *
jjg@581 59 * <p><b>This is NOT part of any supported API.
jjg@581 60 * If you write code that depends on this, you do so at your own risk.
duke@1 61 * This code and its internal interfaces are subject to change or
duke@1 62 * deletion without notice.</b>
duke@1 63 *
duke@1 64 * @see TypeTags
duke@1 65 */
duke@1 66 public class Type implements PrimitiveType {
duke@1 67
duke@1 68 /** Constant type: no type at all. */
duke@1 69 public static final JCNoType noType = new JCNoType(NONE);
duke@1 70
duke@1 71 /** If this switch is turned on, the names of type variables
duke@1 72 * and anonymous classes are printed with hashcodes appended.
duke@1 73 */
duke@1 74 public static boolean moreInfo = false;
duke@1 75
duke@1 76 /** The tag of this type.
duke@1 77 *
duke@1 78 * @see TypeTags
duke@1 79 */
duke@1 80 public int tag;
duke@1 81
duke@1 82 /** The defining class / interface / package / type variable
duke@1 83 */
duke@1 84 public TypeSymbol tsym;
duke@1 85
duke@1 86 /**
duke@1 87 * The constant value of this type, null if this type does not
duke@1 88 * have a constant value attribute. Only primitive types and
duke@1 89 * strings (ClassType) can have a constant value attribute.
duke@1 90 * @return the constant value attribute of this type
duke@1 91 */
duke@1 92 public Object constValue() {
duke@1 93 return null;
duke@1 94 }
duke@1 95
duke@1 96 public <R,S> R accept(Type.Visitor<R,S> v, S s) { return v.visitType(this, s); }
duke@1 97
duke@1 98 /** Define a type given its tag and type symbol
duke@1 99 */
duke@1 100 public Type(int tag, TypeSymbol tsym) {
duke@1 101 this.tag = tag;
duke@1 102 this.tsym = tsym;
duke@1 103 }
duke@1 104
duke@1 105 /** An abstract class for mappings from types to types
duke@1 106 */
duke@1 107 public static abstract class Mapping {
duke@1 108 private String name;
duke@1 109 public Mapping(String name) {
duke@1 110 this.name = name;
duke@1 111 }
duke@1 112 public abstract Type apply(Type t);
duke@1 113 public String toString() {
duke@1 114 return name;
duke@1 115 }
duke@1 116 }
duke@1 117
duke@1 118 /** map a type function over all immediate descendants of this type
duke@1 119 */
duke@1 120 public Type map(Mapping f) {
duke@1 121 return this;
duke@1 122 }
duke@1 123
duke@1 124 /** map a type function over a list of types
duke@1 125 */
duke@1 126 public static List<Type> map(List<Type> ts, Mapping f) {
duke@1 127 if (ts.nonEmpty()) {
duke@1 128 List<Type> tail1 = map(ts.tail, f);
duke@1 129 Type t = f.apply(ts.head);
duke@1 130 if (tail1 != ts.tail || t != ts.head)
duke@1 131 return tail1.prepend(t);
duke@1 132 }
duke@1 133 return ts;
duke@1 134 }
duke@1 135
duke@1 136 /** Define a constant type, of the same kind as this type
duke@1 137 * and with given constant value
duke@1 138 */
duke@1 139 public Type constType(Object constValue) {
duke@1 140 final Object value = constValue;
duke@1 141 assert tag <= BOOLEAN;
duke@1 142 return new Type(tag, tsym) {
duke@1 143 @Override
duke@1 144 public Object constValue() {
duke@1 145 return value;
duke@1 146 }
duke@1 147 @Override
duke@1 148 public Type baseType() {
duke@1 149 return tsym.type;
duke@1 150 }
duke@1 151 };
duke@1 152 }
duke@1 153
duke@1 154 /**
duke@1 155 * If this is a constant type, return its underlying type.
duke@1 156 * Otherwise, return the type itself.
duke@1 157 */
duke@1 158 public Type baseType() {
duke@1 159 return this;
duke@1 160 }
duke@1 161
duke@1 162 /** Return the base types of a list of types.
duke@1 163 */
duke@1 164 public static List<Type> baseTypes(List<Type> ts) {
duke@1 165 if (ts.nonEmpty()) {
duke@1 166 Type t = ts.head.baseType();
duke@1 167 List<Type> baseTypes = baseTypes(ts.tail);
duke@1 168 if (t != ts.head || baseTypes != ts.tail)
duke@1 169 return baseTypes.prepend(t);
duke@1 170 }
duke@1 171 return ts;
duke@1 172 }
duke@1 173
duke@1 174 /** The Java source which this type represents.
duke@1 175 */
duke@1 176 public String toString() {
duke@1 177 String s = (tsym == null || tsym.name == null)
duke@1 178 ? "<none>"
duke@1 179 : tsym.name.toString();
duke@1 180 if (moreInfo && tag == TYPEVAR) s = s + hashCode();
duke@1 181 return s;
duke@1 182 }
duke@1 183
duke@1 184 /**
duke@1 185 * The Java source which this type list represents. A List is
duke@1 186 * represented as a comma-spearated listing of the elements in
duke@1 187 * that list.
duke@1 188 */
duke@1 189 public static String toString(List<Type> ts) {
duke@1 190 if (ts.isEmpty()) {
duke@1 191 return "";
duke@1 192 } else {
duke@1 193 StringBuffer buf = new StringBuffer();
duke@1 194 buf.append(ts.head.toString());
duke@1 195 for (List<Type> l = ts.tail; l.nonEmpty(); l = l.tail)
duke@1 196 buf.append(",").append(l.head.toString());
duke@1 197 return buf.toString();
duke@1 198 }
duke@1 199 }
duke@1 200
duke@1 201 /**
duke@1 202 * The constant value of this type, converted to String
duke@1 203 */
duke@1 204 public String stringValue() {
duke@1 205 assert constValue() != null;
duke@1 206 if (tag == BOOLEAN)
duke@1 207 return ((Integer) constValue()).intValue() == 0 ? "false" : "true";
duke@1 208 else if (tag == CHAR)
duke@1 209 return String.valueOf((char) ((Integer) constValue()).intValue());
duke@1 210 else
duke@1 211 return constValue().toString();
duke@1 212 }
duke@1 213
duke@1 214 /**
duke@1 215 * This method is analogous to isSameType, but weaker, since we
duke@1 216 * never complete classes. Where isSameType would complete a
duke@1 217 * class, equals assumes that the two types are different.
duke@1 218 */
duke@1 219 public boolean equals(Object t) {
duke@1 220 return super.equals(t);
duke@1 221 }
duke@1 222
duke@1 223 public int hashCode() {
duke@1 224 return super.hashCode();
duke@1 225 }
duke@1 226
duke@1 227 /** Is this a constant type whose value is false?
duke@1 228 */
duke@1 229 public boolean isFalse() {
duke@1 230 return
duke@1 231 tag == BOOLEAN &&
duke@1 232 constValue() != null &&
duke@1 233 ((Integer)constValue()).intValue() == 0;
duke@1 234 }
duke@1 235
duke@1 236 /** Is this a constant type whose value is true?
duke@1 237 */
duke@1 238 public boolean isTrue() {
duke@1 239 return
duke@1 240 tag == BOOLEAN &&
duke@1 241 constValue() != null &&
duke@1 242 ((Integer)constValue()).intValue() != 0;
duke@1 243 }
duke@1 244
duke@1 245 public String argtypes(boolean varargs) {
duke@1 246 List<Type> args = getParameterTypes();
duke@1 247 if (!varargs) return args.toString();
jjg@789 248 StringBuilder buf = new StringBuilder();
duke@1 249 while (args.tail.nonEmpty()) {
duke@1 250 buf.append(args.head);
duke@1 251 args = args.tail;
duke@1 252 buf.append(',');
duke@1 253 }
duke@1 254 if (args.head.tag == ARRAY) {
duke@1 255 buf.append(((ArrayType)args.head).elemtype);
duke@1 256 buf.append("...");
duke@1 257 } else {
duke@1 258 buf.append(args.head);
duke@1 259 }
duke@1 260 return buf.toString();
duke@1 261 }
duke@1 262
duke@1 263 /** Access methods.
duke@1 264 */
duke@1 265 public List<Type> getTypeArguments() { return List.nil(); }
duke@1 266 public Type getEnclosingType() { return null; }
duke@1 267 public List<Type> getParameterTypes() { return List.nil(); }
duke@1 268 public Type getReturnType() { return null; }
duke@1 269 public List<Type> getThrownTypes() { return List.nil(); }
duke@1 270 public Type getUpperBound() { return null; }
duke@1 271 public Type getLowerBound() { return null; }
duke@1 272
duke@1 273 public void setThrown(List<Type> ts) {
duke@1 274 throw new AssertionError();
duke@1 275 }
duke@1 276
duke@1 277 /** Navigation methods, these will work for classes, type variables,
duke@1 278 * foralls, but will return null for arrays and methods.
duke@1 279 */
duke@1 280
duke@1 281 /** Return all parameters of this type and all its outer types in order
duke@1 282 * outer (first) to inner (last).
duke@1 283 */
duke@1 284 public List<Type> allparams() { return List.nil(); }
duke@1 285
duke@1 286 /** Does this type contain "error" elements?
duke@1 287 */
duke@1 288 public boolean isErroneous() {
duke@1 289 return false;
duke@1 290 }
duke@1 291
duke@1 292 public static boolean isErroneous(List<Type> ts) {
duke@1 293 for (List<Type> l = ts; l.nonEmpty(); l = l.tail)
duke@1 294 if (l.head.isErroneous()) return true;
duke@1 295 return false;
duke@1 296 }
duke@1 297
duke@1 298 /** Is this type parameterized?
duke@1 299 * A class type is parameterized if it has some parameters.
duke@1 300 * An array type is parameterized if its element type is parameterized.
duke@1 301 * All other types are not parameterized.
duke@1 302 */
duke@1 303 public boolean isParameterized() {
duke@1 304 return false;
duke@1 305 }
duke@1 306
duke@1 307 /** Is this type a raw type?
duke@1 308 * A class type is a raw type if it misses some of its parameters.
duke@1 309 * An array type is a raw type if its element type is raw.
duke@1 310 * All other types are not raw.
duke@1 311 * Type validation will ensure that the only raw types
duke@1 312 * in a program are types that miss all their type variables.
duke@1 313 */
duke@1 314 public boolean isRaw() {
duke@1 315 return false;
duke@1 316 }
duke@1 317
duke@1 318 public boolean isCompound() {
duke@1 319 return tsym.completer == null
duke@1 320 // Compound types can't have a completer. Calling
duke@1 321 // flags() will complete the symbol causing the
duke@1 322 // compiler to load classes unnecessarily. This led
duke@1 323 // to regression 6180021.
duke@1 324 && (tsym.flags() & COMPOUND) != 0;
duke@1 325 }
duke@1 326
duke@1 327 public boolean isInterface() {
duke@1 328 return (tsym.flags() & INTERFACE) != 0;
duke@1 329 }
duke@1 330
mcimadamore@640 331 public boolean isFinal() {
mcimadamore@640 332 return (tsym.flags() & FINAL) != 0;
mcimadamore@640 333 }
mcimadamore@640 334
duke@1 335 public boolean isPrimitive() {
duke@1 336 return tag < VOID;
duke@1 337 }
duke@1 338
duke@1 339 /**
duke@1 340 * Does this type contain occurrences of type t?
duke@1 341 */
duke@1 342 public boolean contains(Type t) {
duke@1 343 return t == this;
duke@1 344 }
duke@1 345
duke@1 346 public static boolean contains(List<Type> ts, Type t) {
duke@1 347 for (List<Type> l = ts;
duke@1 348 l.tail != null /*inlined: l.nonEmpty()*/;
duke@1 349 l = l.tail)
duke@1 350 if (l.head.contains(t)) return true;
duke@1 351 return false;
duke@1 352 }
duke@1 353
mcimadamore@635 354 /** Does this type contain an occurrence of some type in 'ts'?
duke@1 355 */
mcimadamore@635 356 public boolean containsAny(List<Type> ts) {
mcimadamore@635 357 for (Type t : ts)
mcimadamore@635 358 if (this.contains(t)) return true;
mcimadamore@635 359 return false;
mcimadamore@635 360 }
mcimadamore@635 361
mcimadamore@635 362 public static boolean containsAny(List<Type> ts1, List<Type> ts2) {
mcimadamore@635 363 for (Type t : ts1)
mcimadamore@635 364 if (t.containsAny(ts2)) return true;
duke@1 365 return false;
duke@1 366 }
duke@1 367
duke@1 368 public boolean isSuperBound() { return false; }
duke@1 369 public boolean isExtendsBound() { return false; }
duke@1 370 public boolean isUnbound() { return false; }
duke@1 371 public Type withTypeVar(Type t) { return this; }
duke@1 372
duke@1 373 /** The underlying method type of this type.
duke@1 374 */
duke@1 375 public MethodType asMethodType() { throw new AssertionError(); }
duke@1 376
duke@1 377 /** Complete loading all classes in this type.
duke@1 378 */
duke@1 379 public void complete() {}
duke@1 380
duke@1 381 public Object clone() {
duke@1 382 try {
duke@1 383 return super.clone();
duke@1 384 } catch (CloneNotSupportedException e) {
duke@1 385 throw new AssertionError(e);
duke@1 386 }
duke@1 387 }
duke@1 388
duke@1 389 public TypeSymbol asElement() {
duke@1 390 return tsym;
duke@1 391 }
duke@1 392
duke@1 393 public TypeKind getKind() {
duke@1 394 switch (tag) {
duke@1 395 case BYTE: return TypeKind.BYTE;
duke@1 396 case CHAR: return TypeKind.CHAR;
duke@1 397 case SHORT: return TypeKind.SHORT;
duke@1 398 case INT: return TypeKind.INT;
duke@1 399 case LONG: return TypeKind.LONG;
duke@1 400 case FLOAT: return TypeKind.FLOAT;
duke@1 401 case DOUBLE: return TypeKind.DOUBLE;
duke@1 402 case BOOLEAN: return TypeKind.BOOLEAN;
duke@1 403 case VOID: return TypeKind.VOID;
duke@1 404 case BOT: return TypeKind.NULL;
duke@1 405 case NONE: return TypeKind.NONE;
duke@1 406 default: return TypeKind.OTHER;
duke@1 407 }
duke@1 408 }
duke@1 409
duke@1 410 public <R, P> R accept(TypeVisitor<R, P> v, P p) {
duke@1 411 if (isPrimitive())
duke@1 412 return v.visitPrimitive(this, p);
duke@1 413 else
duke@1 414 throw new AssertionError();
duke@1 415 }
duke@1 416
duke@1 417 public static class WildcardType extends Type
duke@1 418 implements javax.lang.model.type.WildcardType {
duke@1 419
duke@1 420 public Type type;
duke@1 421 public BoundKind kind;
duke@1 422 public TypeVar bound;
duke@1 423
duke@1 424 @Override
duke@1 425 public <R,S> R accept(Type.Visitor<R,S> v, S s) {
duke@1 426 return v.visitWildcardType(this, s);
duke@1 427 }
duke@1 428
duke@1 429 public WildcardType(Type type, BoundKind kind, TypeSymbol tsym) {
duke@1 430 super(WILDCARD, tsym);
duke@1 431 assert(type != null);
duke@1 432 this.kind = kind;
duke@1 433 this.type = type;
duke@1 434 }
duke@1 435 public WildcardType(WildcardType t, TypeVar bound) {
duke@1 436 this(t.type, t.kind, t.tsym, bound);
duke@1 437 }
duke@1 438
duke@1 439 public WildcardType(Type type, BoundKind kind, TypeSymbol tsym, TypeVar bound) {
duke@1 440 this(type, kind, tsym);
duke@1 441 this.bound = bound;
duke@1 442 }
duke@1 443
mcimadamore@635 444 public boolean contains(Type t) {
mcimadamore@635 445 return kind != UNBOUND && type.contains(t);
mcimadamore@635 446 }
mcimadamore@635 447
duke@1 448 public boolean isSuperBound() {
duke@1 449 return kind == SUPER ||
duke@1 450 kind == UNBOUND;
duke@1 451 }
duke@1 452 public boolean isExtendsBound() {
duke@1 453 return kind == EXTENDS ||
duke@1 454 kind == UNBOUND;
duke@1 455 }
duke@1 456 public boolean isUnbound() {
duke@1 457 return kind == UNBOUND;
duke@1 458 }
duke@1 459
duke@1 460 public Type withTypeVar(Type t) {
duke@1 461 //-System.err.println(this+".withTypeVar("+t+");");//DEBUG
duke@1 462 if (bound == t)
duke@1 463 return this;
duke@1 464 bound = (TypeVar)t;
duke@1 465 return this;
duke@1 466 }
duke@1 467
duke@1 468 boolean isPrintingBound = false;
duke@1 469 public String toString() {
duke@1 470 StringBuffer s = new StringBuffer();
duke@1 471 s.append(kind.toString());
duke@1 472 if (kind != UNBOUND)
duke@1 473 s.append(type);
duke@1 474 if (moreInfo && bound != null && !isPrintingBound)
duke@1 475 try {
duke@1 476 isPrintingBound = true;
duke@1 477 s.append("{:").append(bound.bound).append(":}");
duke@1 478 } finally {
duke@1 479 isPrintingBound = false;
duke@1 480 }
duke@1 481 return s.toString();
duke@1 482 }
duke@1 483
duke@1 484 public Type map(Mapping f) {
duke@1 485 //- System.err.println(" (" + this + ").map(" + f + ")");//DEBUG
duke@1 486 Type t = type;
duke@1 487 if (t != null)
duke@1 488 t = f.apply(t);
duke@1 489 if (t == type)
duke@1 490 return this;
duke@1 491 else
duke@1 492 return new WildcardType(t, kind, tsym, bound);
duke@1 493 }
duke@1 494
duke@1 495 public Type getExtendsBound() {
duke@1 496 if (kind == EXTENDS)
duke@1 497 return type;
duke@1 498 else
duke@1 499 return null;
duke@1 500 }
duke@1 501
duke@1 502 public Type getSuperBound() {
duke@1 503 if (kind == SUPER)
duke@1 504 return type;
duke@1 505 else
duke@1 506 return null;
duke@1 507 }
duke@1 508
duke@1 509 public TypeKind getKind() {
duke@1 510 return TypeKind.WILDCARD;
duke@1 511 }
duke@1 512
duke@1 513 public <R, P> R accept(TypeVisitor<R, P> v, P p) {
duke@1 514 return v.visitWildcard(this, p);
duke@1 515 }
duke@1 516 }
duke@1 517
duke@1 518 public static class ClassType extends Type implements DeclaredType {
duke@1 519
duke@1 520 /** The enclosing type of this type. If this is the type of an inner
duke@1 521 * class, outer_field refers to the type of its enclosing
duke@1 522 * instance class, in all other cases it referes to noType.
duke@1 523 */
duke@1 524 private Type outer_field;
duke@1 525
duke@1 526 /** The type parameters of this type (to be set once class is loaded).
duke@1 527 */
duke@1 528 public List<Type> typarams_field;
duke@1 529
duke@1 530 /** A cache variable for the type parameters of this type,
duke@1 531 * appended to all parameters of its enclosing class.
duke@1 532 * @see #allparams
duke@1 533 */
duke@1 534 public List<Type> allparams_field;
duke@1 535
duke@1 536 /** The supertype of this class (to be set once class is loaded).
duke@1 537 */
duke@1 538 public Type supertype_field;
duke@1 539
duke@1 540 /** The interfaces of this class (to be set once class is loaded).
duke@1 541 */
duke@1 542 public List<Type> interfaces_field;
duke@1 543
duke@1 544 public ClassType(Type outer, List<Type> typarams, TypeSymbol tsym) {
duke@1 545 super(CLASS, tsym);
duke@1 546 this.outer_field = outer;
duke@1 547 this.typarams_field = typarams;
duke@1 548 this.allparams_field = null;
duke@1 549 this.supertype_field = null;
duke@1 550 this.interfaces_field = null;
duke@1 551 /*
duke@1 552 // this can happen during error recovery
duke@1 553 assert
duke@1 554 outer.isParameterized() ?
duke@1 555 typarams.length() == tsym.type.typarams().length() :
duke@1 556 outer.isRaw() ?
duke@1 557 typarams.length() == 0 :
duke@1 558 true;
duke@1 559 */
duke@1 560 }
duke@1 561
duke@1 562 @Override
duke@1 563 public <R,S> R accept(Type.Visitor<R,S> v, S s) {
duke@1 564 return v.visitClassType(this, s);
duke@1 565 }
duke@1 566
duke@1 567 public Type constType(Object constValue) {
duke@1 568 final Object value = constValue;
duke@1 569 return new ClassType(getEnclosingType(), typarams_field, tsym) {
duke@1 570 @Override
duke@1 571 public Object constValue() {
duke@1 572 return value;
duke@1 573 }
duke@1 574 @Override
duke@1 575 public Type baseType() {
duke@1 576 return tsym.type;
duke@1 577 }
duke@1 578 };
duke@1 579 }
duke@1 580
duke@1 581 /** The Java source which this type represents.
duke@1 582 */
duke@1 583 public String toString() {
duke@1 584 StringBuffer buf = new StringBuffer();
duke@1 585 if (getEnclosingType().tag == CLASS && tsym.owner.kind == TYP) {
duke@1 586 buf.append(getEnclosingType().toString());
duke@1 587 buf.append(".");
duke@1 588 buf.append(className(tsym, false));
duke@1 589 } else {
duke@1 590 buf.append(className(tsym, true));
duke@1 591 }
duke@1 592 if (getTypeArguments().nonEmpty()) {
duke@1 593 buf.append('<');
duke@1 594 buf.append(getTypeArguments().toString());
duke@1 595 buf.append(">");
duke@1 596 }
duke@1 597 return buf.toString();
duke@1 598 }
duke@1 599 //where
duke@1 600 private String className(Symbol sym, boolean longform) {
jjg@113 601 if (sym.name.isEmpty() && (sym.flags() & COMPOUND) != 0) {
duke@1 602 StringBuffer s = new StringBuffer(supertype_field.toString());
duke@1 603 for (List<Type> is=interfaces_field; is.nonEmpty(); is = is.tail) {
duke@1 604 s.append("&");
duke@1 605 s.append(is.head.toString());
duke@1 606 }
duke@1 607 return s.toString();
jjg@113 608 } else if (sym.name.isEmpty()) {
duke@1 609 String s;
duke@1 610 ClassType norm = (ClassType) tsym.type;
duke@1 611 if (norm == null) {
duke@1 612 s = Log.getLocalizedString("anonymous.class", (Object)null);
duke@1 613 } else if (norm.interfaces_field != null && norm.interfaces_field.nonEmpty()) {
duke@1 614 s = Log.getLocalizedString("anonymous.class",
duke@1 615 norm.interfaces_field.head);
duke@1 616 } else {
duke@1 617 s = Log.getLocalizedString("anonymous.class",
duke@1 618 norm.supertype_field);
duke@1 619 }
duke@1 620 if (moreInfo)
duke@1 621 s += String.valueOf(sym.hashCode());
duke@1 622 return s;
duke@1 623 } else if (longform) {
duke@1 624 return sym.getQualifiedName().toString();
duke@1 625 } else {
duke@1 626 return sym.name.toString();
duke@1 627 }
duke@1 628 }
duke@1 629
duke@1 630 public List<Type> getTypeArguments() {
duke@1 631 if (typarams_field == null) {
duke@1 632 complete();
duke@1 633 if (typarams_field == null)
duke@1 634 typarams_field = List.nil();
duke@1 635 }
duke@1 636 return typarams_field;
duke@1 637 }
duke@1 638
mcimadamore@30 639 public boolean hasErasedSupertypes() {
mcimadamore@30 640 return isRaw();
mcimadamore@30 641 }
mcimadamore@30 642
duke@1 643 public Type getEnclosingType() {
duke@1 644 return outer_field;
duke@1 645 }
duke@1 646
duke@1 647 public void setEnclosingType(Type outer) {
duke@1 648 outer_field = outer;
duke@1 649 }
duke@1 650
duke@1 651 public List<Type> allparams() {
duke@1 652 if (allparams_field == null) {
duke@1 653 allparams_field = getTypeArguments().prependList(getEnclosingType().allparams());
duke@1 654 }
duke@1 655 return allparams_field;
duke@1 656 }
duke@1 657
duke@1 658 public boolean isErroneous() {
duke@1 659 return
duke@1 660 getEnclosingType().isErroneous() ||
duke@1 661 isErroneous(getTypeArguments()) ||
duke@1 662 this != tsym.type && tsym.type.isErroneous();
duke@1 663 }
duke@1 664
duke@1 665 public boolean isParameterized() {
duke@1 666 return allparams().tail != null;
duke@1 667 // optimization, was: allparams().nonEmpty();
duke@1 668 }
duke@1 669
duke@1 670 /** A cache for the rank. */
duke@1 671 int rank_field = -1;
duke@1 672
duke@1 673 /** A class type is raw if it misses some
duke@1 674 * of its type parameter sections.
duke@1 675 * After validation, this is equivalent to:
duke@1 676 * allparams.isEmpty() && tsym.type.allparams.nonEmpty();
duke@1 677 */
duke@1 678 public boolean isRaw() {
duke@1 679 return
duke@1 680 this != tsym.type && // necessary, but not sufficient condition
duke@1 681 tsym.type.allparams().nonEmpty() &&
duke@1 682 allparams().isEmpty();
duke@1 683 }
duke@1 684
duke@1 685 public Type map(Mapping f) {
duke@1 686 Type outer = getEnclosingType();
duke@1 687 Type outer1 = f.apply(outer);
duke@1 688 List<Type> typarams = getTypeArguments();
duke@1 689 List<Type> typarams1 = map(typarams, f);
duke@1 690 if (outer1 == outer && typarams1 == typarams) return this;
duke@1 691 else return new ClassType(outer1, typarams1, tsym);
duke@1 692 }
duke@1 693
duke@1 694 public boolean contains(Type elem) {
duke@1 695 return
duke@1 696 elem == this
duke@1 697 || (isParameterized()
mcimadamore@635 698 && (getEnclosingType().contains(elem) || contains(getTypeArguments(), elem)))
mcimadamore@635 699 || (isCompound()
mcimadamore@635 700 && (supertype_field.contains(elem) || contains(interfaces_field, elem)));
duke@1 701 }
duke@1 702
duke@1 703 public void complete() {
duke@1 704 if (tsym.completer != null) tsym.complete();
duke@1 705 }
duke@1 706
duke@1 707 public TypeKind getKind() {
duke@1 708 return TypeKind.DECLARED;
duke@1 709 }
duke@1 710
duke@1 711 public <R, P> R accept(TypeVisitor<R, P> v, P p) {
duke@1 712 return v.visitDeclared(this, p);
duke@1 713 }
duke@1 714 }
duke@1 715
mcimadamore@30 716 public static class ErasedClassType extends ClassType {
mcimadamore@30 717 public ErasedClassType(Type outer, TypeSymbol tsym) {
mcimadamore@30 718 super(outer, List.<Type>nil(), tsym);
mcimadamore@30 719 }
mcimadamore@30 720
mcimadamore@30 721 @Override
mcimadamore@30 722 public boolean hasErasedSupertypes() {
mcimadamore@30 723 return true;
mcimadamore@30 724 }
mcimadamore@30 725 }
mcimadamore@30 726
duke@1 727 public static class ArrayType extends Type
duke@1 728 implements javax.lang.model.type.ArrayType {
duke@1 729
duke@1 730 public Type elemtype;
duke@1 731
duke@1 732 public ArrayType(Type elemtype, TypeSymbol arrayClass) {
duke@1 733 super(ARRAY, arrayClass);
duke@1 734 this.elemtype = elemtype;
duke@1 735 }
duke@1 736
duke@1 737 @Override
duke@1 738 public <R,S> R accept(Type.Visitor<R,S> v, S s) {
duke@1 739 return v.visitArrayType(this, s);
duke@1 740 }
duke@1 741
duke@1 742 public String toString() {
duke@1 743 return elemtype + "[]";
duke@1 744 }
duke@1 745
duke@1 746 public boolean equals(Object obj) {
duke@1 747 return
duke@1 748 this == obj ||
duke@1 749 (obj instanceof ArrayType &&
duke@1 750 this.elemtype.equals(((ArrayType)obj).elemtype));
duke@1 751 }
duke@1 752
duke@1 753 public int hashCode() {
duke@1 754 return (ARRAY << 5) + elemtype.hashCode();
duke@1 755 }
duke@1 756
mcimadamore@795 757 public boolean isVarargs() {
mcimadamore@795 758 return false;
mcimadamore@795 759 }
mcimadamore@795 760
duke@1 761 public List<Type> allparams() { return elemtype.allparams(); }
duke@1 762
duke@1 763 public boolean isErroneous() {
duke@1 764 return elemtype.isErroneous();
duke@1 765 }
duke@1 766
duke@1 767 public boolean isParameterized() {
duke@1 768 return elemtype.isParameterized();
duke@1 769 }
duke@1 770
duke@1 771 public boolean isRaw() {
duke@1 772 return elemtype.isRaw();
duke@1 773 }
duke@1 774
mcimadamore@795 775 public ArrayType makeVarargs() {
mcimadamore@795 776 return new ArrayType(elemtype, tsym) {
mcimadamore@795 777 @Override
mcimadamore@795 778 public boolean isVarargs() {
mcimadamore@795 779 return true;
mcimadamore@795 780 }
mcimadamore@795 781 };
mcimadamore@795 782 }
mcimadamore@795 783
duke@1 784 public Type map(Mapping f) {
duke@1 785 Type elemtype1 = f.apply(elemtype);
duke@1 786 if (elemtype1 == elemtype) return this;
duke@1 787 else return new ArrayType(elemtype1, tsym);
duke@1 788 }
duke@1 789
duke@1 790 public boolean contains(Type elem) {
duke@1 791 return elem == this || elemtype.contains(elem);
duke@1 792 }
duke@1 793
duke@1 794 public void complete() {
duke@1 795 elemtype.complete();
duke@1 796 }
duke@1 797
duke@1 798 public Type getComponentType() {
duke@1 799 return elemtype;
duke@1 800 }
duke@1 801
duke@1 802 public TypeKind getKind() {
duke@1 803 return TypeKind.ARRAY;
duke@1 804 }
duke@1 805
duke@1 806 public <R, P> R accept(TypeVisitor<R, P> v, P p) {
duke@1 807 return v.visitArray(this, p);
duke@1 808 }
duke@1 809 }
duke@1 810
duke@1 811 public static class MethodType extends Type
duke@1 812 implements Cloneable, ExecutableType {
duke@1 813
duke@1 814 public List<Type> argtypes;
duke@1 815 public Type restype;
duke@1 816 public List<Type> thrown;
duke@1 817
duke@1 818 public MethodType(List<Type> argtypes,
duke@1 819 Type restype,
duke@1 820 List<Type> thrown,
duke@1 821 TypeSymbol methodClass) {
duke@1 822 super(METHOD, methodClass);
duke@1 823 this.argtypes = argtypes;
duke@1 824 this.restype = restype;
duke@1 825 this.thrown = thrown;
duke@1 826 }
duke@1 827
duke@1 828 @Override
duke@1 829 public <R,S> R accept(Type.Visitor<R,S> v, S s) {
duke@1 830 return v.visitMethodType(this, s);
duke@1 831 }
duke@1 832
duke@1 833 /** The Java source which this type represents.
duke@1 834 *
duke@1 835 * XXX 06/09/99 iris This isn't correct Java syntax, but it probably
duke@1 836 * should be.
duke@1 837 */
duke@1 838 public String toString() {
duke@1 839 return "(" + argtypes + ")" + restype;
duke@1 840 }
duke@1 841
duke@1 842 public boolean equals(Object obj) {
duke@1 843 if (this == obj)
duke@1 844 return true;
duke@1 845 if (!(obj instanceof MethodType))
duke@1 846 return false;
duke@1 847 MethodType m = (MethodType)obj;
duke@1 848 List<Type> args1 = argtypes;
duke@1 849 List<Type> args2 = m.argtypes;
duke@1 850 while (!args1.isEmpty() && !args2.isEmpty()) {
duke@1 851 if (!args1.head.equals(args2.head))
duke@1 852 return false;
duke@1 853 args1 = args1.tail;
duke@1 854 args2 = args2.tail;
duke@1 855 }
duke@1 856 if (!args1.isEmpty() || !args2.isEmpty())
duke@1 857 return false;
duke@1 858 return restype.equals(m.restype);
duke@1 859 }
duke@1 860
duke@1 861 public int hashCode() {
duke@1 862 int h = METHOD;
duke@1 863 for (List<Type> thisargs = this.argtypes;
duke@1 864 thisargs.tail != null; /*inlined: thisargs.nonEmpty()*/
duke@1 865 thisargs = thisargs.tail)
duke@1 866 h = (h << 5) + thisargs.head.hashCode();
duke@1 867 return (h << 5) + this.restype.hashCode();
duke@1 868 }
duke@1 869
duke@1 870 public List<Type> getParameterTypes() { return argtypes; }
duke@1 871 public Type getReturnType() { return restype; }
duke@1 872 public List<Type> getThrownTypes() { return thrown; }
duke@1 873
duke@1 874 public void setThrown(List<Type> t) {
duke@1 875 thrown = t;
duke@1 876 }
duke@1 877
duke@1 878 public boolean isErroneous() {
duke@1 879 return
duke@1 880 isErroneous(argtypes) ||
duke@1 881 restype != null && restype.isErroneous();
duke@1 882 }
duke@1 883
duke@1 884 public Type map(Mapping f) {
duke@1 885 List<Type> argtypes1 = map(argtypes, f);
duke@1 886 Type restype1 = f.apply(restype);
duke@1 887 List<Type> thrown1 = map(thrown, f);
duke@1 888 if (argtypes1 == argtypes &&
duke@1 889 restype1 == restype &&
duke@1 890 thrown1 == thrown) return this;
duke@1 891 else return new MethodType(argtypes1, restype1, thrown1, tsym);
duke@1 892 }
duke@1 893
duke@1 894 public boolean contains(Type elem) {
duke@1 895 return elem == this || contains(argtypes, elem) || restype.contains(elem);
duke@1 896 }
duke@1 897
duke@1 898 public MethodType asMethodType() { return this; }
duke@1 899
duke@1 900 public void complete() {
duke@1 901 for (List<Type> l = argtypes; l.nonEmpty(); l = l.tail)
duke@1 902 l.head.complete();
duke@1 903 restype.complete();
duke@1 904 for (List<Type> l = thrown; l.nonEmpty(); l = l.tail)
duke@1 905 l.head.complete();
duke@1 906 }
duke@1 907
duke@1 908 public List<TypeVar> getTypeVariables() {
duke@1 909 return List.nil();
duke@1 910 }
duke@1 911
duke@1 912 public TypeSymbol asElement() {
duke@1 913 return null;
duke@1 914 }
duke@1 915
duke@1 916 public TypeKind getKind() {
duke@1 917 return TypeKind.EXECUTABLE;
duke@1 918 }
duke@1 919
duke@1 920 public <R, P> R accept(TypeVisitor<R, P> v, P p) {
duke@1 921 return v.visitExecutable(this, p);
duke@1 922 }
duke@1 923 }
duke@1 924
duke@1 925 public static class PackageType extends Type implements NoType {
duke@1 926
duke@1 927 PackageType(TypeSymbol tsym) {
duke@1 928 super(PACKAGE, tsym);
duke@1 929 }
duke@1 930
duke@1 931 @Override
duke@1 932 public <R,S> R accept(Type.Visitor<R,S> v, S s) {
duke@1 933 return v.visitPackageType(this, s);
duke@1 934 }
duke@1 935
duke@1 936 public String toString() {
duke@1 937 return tsym.getQualifiedName().toString();
duke@1 938 }
duke@1 939
duke@1 940 public TypeKind getKind() {
duke@1 941 return TypeKind.PACKAGE;
duke@1 942 }
duke@1 943
duke@1 944 public <R, P> R accept(TypeVisitor<R, P> v, P p) {
duke@1 945 return v.visitNoType(this, p);
duke@1 946 }
duke@1 947 }
duke@1 948
duke@1 949 public static class TypeVar extends Type implements TypeVariable {
duke@1 950
jjg@789 951 /** The upper bound of this type variable; set from outside.
duke@1 952 * Must be nonempty once it is set.
duke@1 953 * For a bound, `bound' is the bound type itself.
duke@1 954 * Multiple bounds are expressed as a single class type which has the
duke@1 955 * individual bounds as superclass, respectively interfaces.
duke@1 956 * The class type then has as `tsym' a compiler generated class `c',
duke@1 957 * which has a flag COMPOUND and whose owner is the type variable
duke@1 958 * itself. Furthermore, the erasure_field of the class
duke@1 959 * points to the first class or interface bound.
duke@1 960 */
duke@1 961 public Type bound = null;
jjg@789 962
jjg@789 963 /** The lower bound of this type variable.
jjg@789 964 * TypeVars don't normally have a lower bound, so it is normally set
jjg@789 965 * to syms.botType.
jjg@789 966 * Subtypes, such as CapturedType, may provide a different value.
jjg@789 967 */
duke@1 968 public Type lower;
duke@1 969
duke@1 970 public TypeVar(Name name, Symbol owner, Type lower) {
duke@1 971 super(TYPEVAR, null);
duke@1 972 tsym = new TypeSymbol(0, name, this, owner);
duke@1 973 this.lower = lower;
duke@1 974 }
duke@1 975
duke@1 976 public TypeVar(TypeSymbol tsym, Type bound, Type lower) {
duke@1 977 super(TYPEVAR, tsym);
duke@1 978 this.bound = bound;
duke@1 979 this.lower = lower;
duke@1 980 }
duke@1 981
duke@1 982 @Override
duke@1 983 public <R,S> R accept(Type.Visitor<R,S> v, S s) {
duke@1 984 return v.visitTypeVar(this, s);
duke@1 985 }
duke@1 986
jjg@789 987 @Override
duke@1 988 public Type getUpperBound() { return bound; }
duke@1 989
duke@1 990 int rank_field = -1;
duke@1 991
jjg@789 992 @Override
duke@1 993 public Type getLowerBound() {
duke@1 994 return lower;
duke@1 995 }
duke@1 996
duke@1 997 public TypeKind getKind() {
duke@1 998 return TypeKind.TYPEVAR;
duke@1 999 }
duke@1 1000
mcimadamore@79 1001 public boolean isCaptured() {
mcimadamore@79 1002 return false;
mcimadamore@79 1003 }
mcimadamore@79 1004
duke@1 1005 public <R, P> R accept(TypeVisitor<R, P> v, P p) {
duke@1 1006 return v.visitTypeVariable(this, p);
duke@1 1007 }
duke@1 1008 }
duke@1 1009
duke@1 1010 /** A captured type variable comes from wildcards which can have
duke@1 1011 * both upper and lower bound. CapturedType extends TypeVar with
duke@1 1012 * a lower bound.
duke@1 1013 */
duke@1 1014 public static class CapturedType extends TypeVar {
duke@1 1015
duke@1 1016 public WildcardType wildcard;
duke@1 1017
duke@1 1018 public CapturedType(Name name,
duke@1 1019 Symbol owner,
duke@1 1020 Type upper,
duke@1 1021 Type lower,
duke@1 1022 WildcardType wildcard) {
duke@1 1023 super(name, owner, lower);
duke@1 1024 assert lower != null;
duke@1 1025 this.bound = upper;
duke@1 1026 this.lower = lower;
duke@1 1027 this.wildcard = wildcard;
duke@1 1028 }
duke@1 1029
duke@1 1030 @Override
duke@1 1031 public <R,S> R accept(Type.Visitor<R,S> v, S s) {
duke@1 1032 return v.visitCapturedType(this, s);
duke@1 1033 }
duke@1 1034
duke@1 1035 @Override
mcimadamore@79 1036 public boolean isCaptured() {
mcimadamore@79 1037 return true;
mcimadamore@79 1038 }
mcimadamore@79 1039
mcimadamore@79 1040 @Override
duke@1 1041 public String toString() {
duke@1 1042 return "capture#"
mcimadamore@288 1043 + (hashCode() & 0xFFFFFFFFL) % Printer.PRIME
duke@1 1044 + " of "
duke@1 1045 + wildcard;
duke@1 1046 }
duke@1 1047 }
duke@1 1048
duke@1 1049 public static abstract class DelegatedType extends Type {
duke@1 1050 public Type qtype;
duke@1 1051 public DelegatedType(int tag, Type qtype) {
duke@1 1052 super(tag, qtype.tsym);
duke@1 1053 this.qtype = qtype;
duke@1 1054 }
duke@1 1055 public String toString() { return qtype.toString(); }
duke@1 1056 public List<Type> getTypeArguments() { return qtype.getTypeArguments(); }
duke@1 1057 public Type getEnclosingType() { return qtype.getEnclosingType(); }
duke@1 1058 public List<Type> getParameterTypes() { return qtype.getParameterTypes(); }
duke@1 1059 public Type getReturnType() { return qtype.getReturnType(); }
duke@1 1060 public List<Type> getThrownTypes() { return qtype.getThrownTypes(); }
duke@1 1061 public List<Type> allparams() { return qtype.allparams(); }
duke@1 1062 public Type getUpperBound() { return qtype.getUpperBound(); }
duke@1 1063 public Object clone() { DelegatedType t = (DelegatedType)super.clone(); t.qtype = (Type)qtype.clone(); return t; }
duke@1 1064 public boolean isErroneous() { return qtype.isErroneous(); }
duke@1 1065 }
duke@1 1066
duke@1 1067 public static class ForAll extends DelegatedType
duke@1 1068 implements Cloneable, ExecutableType {
duke@1 1069 public List<Type> tvars;
duke@1 1070
duke@1 1071 public ForAll(List<Type> tvars, Type qtype) {
duke@1 1072 super(FORALL, qtype);
duke@1 1073 this.tvars = tvars;
duke@1 1074 }
duke@1 1075
duke@1 1076 @Override
duke@1 1077 public <R,S> R accept(Type.Visitor<R,S> v, S s) {
duke@1 1078 return v.visitForAll(this, s);
duke@1 1079 }
duke@1 1080
duke@1 1081 public String toString() {
duke@1 1082 return "<" + tvars + ">" + qtype;
duke@1 1083 }
duke@1 1084
duke@1 1085 public List<Type> getTypeArguments() { return tvars; }
duke@1 1086
duke@1 1087 public void setThrown(List<Type> t) {
duke@1 1088 qtype.setThrown(t);
duke@1 1089 }
duke@1 1090
duke@1 1091 public Object clone() {
duke@1 1092 ForAll result = (ForAll)super.clone();
duke@1 1093 result.qtype = (Type)result.qtype.clone();
duke@1 1094 return result;
duke@1 1095 }
duke@1 1096
duke@1 1097 public boolean isErroneous() {
duke@1 1098 return qtype.isErroneous();
duke@1 1099 }
duke@1 1100
mcimadamore@299 1101 /**
mcimadamore@299 1102 * Replaces this ForAll's typevars with a set of concrete Java types
mcimadamore@396 1103 * and returns the instantiated generic type. Subclasses should override
mcimadamore@299 1104 * in order to check that the list of types is a valid instantiation
mcimadamore@299 1105 * of the ForAll's typevars.
mcimadamore@299 1106 *
mcimadamore@299 1107 * @param actuals list of actual types
mcimadamore@299 1108 * @param types types instance
mcimadamore@299 1109 * @return qtype where all occurrences of tvars are replaced
mcimadamore@299 1110 * by types in actuals
mcimadamore@299 1111 */
mcimadamore@299 1112 public Type inst(List<Type> actuals, Types types) {
mcimadamore@299 1113 return types.subst(qtype, tvars, actuals);
mcimadamore@299 1114 }
mcimadamore@299 1115
mcimadamore@396 1116 /**
mcimadamore@396 1117 * Kind of type-constraint derived during type inference
mcimadamore@396 1118 */
mcimadamore@396 1119 public enum ConstraintKind {
mcimadamore@396 1120 /**
mcimadamore@396 1121 * upper bound constraint (a type variable must be instantiated
mcimadamore@396 1122 * with a type T, where T is a subtype of all the types specified by
mcimadamore@396 1123 * its EXTENDS constraints).
mcimadamore@396 1124 */
mcimadamore@396 1125 EXTENDS,
mcimadamore@396 1126 /**
mcimadamore@396 1127 * lower bound constraint (a type variable must be instantiated
mcimadamore@396 1128 * with a type T, where T is a supertype of all the types specified by
mcimadamore@396 1129 * its SUPER constraints).
mcimadamore@396 1130 */
mcimadamore@396 1131 SUPER,
mcimadamore@396 1132 /**
mcimadamore@396 1133 * equality constraint (a type variable must be instantiated to the type
mcimadamore@396 1134 * specified by its EQUAL constraint.
mcimadamore@396 1135 */
mcimadamore@396 1136 EQUAL;
mcimadamore@396 1137 }
mcimadamore@396 1138
mcimadamore@396 1139 /**
mcimadamore@396 1140 * Get the type-constraints of a given kind for a given type-variable of
mcimadamore@396 1141 * this ForAll type. Subclasses should override in order to return more
mcimadamore@396 1142 * accurate sets of constraints.
mcimadamore@396 1143 *
mcimadamore@396 1144 * @param tv the type-variable for which the constraint is to be retrieved
mcimadamore@396 1145 * @param ck the constraint kind to be retrieved
mcimadamore@396 1146 * @return the list of types specified by the selected constraint
mcimadamore@396 1147 */
mcimadamore@396 1148 public List<Type> getConstraints(TypeVar tv, ConstraintKind ck) {
mcimadamore@396 1149 return List.nil();
mcimadamore@396 1150 }
mcimadamore@396 1151
duke@1 1152 public Type map(Mapping f) {
duke@1 1153 return f.apply(qtype);
duke@1 1154 }
duke@1 1155
duke@1 1156 public boolean contains(Type elem) {
duke@1 1157 return qtype.contains(elem);
duke@1 1158 }
duke@1 1159
duke@1 1160 public MethodType asMethodType() {
duke@1 1161 return qtype.asMethodType();
duke@1 1162 }
duke@1 1163
duke@1 1164 public void complete() {
duke@1 1165 for (List<Type> l = tvars; l.nonEmpty(); l = l.tail) {
duke@1 1166 ((TypeVar)l.head).bound.complete();
duke@1 1167 }
duke@1 1168 qtype.complete();
duke@1 1169 }
duke@1 1170
duke@1 1171 public List<TypeVar> getTypeVariables() {
duke@1 1172 return List.convert(TypeVar.class, getTypeArguments());
duke@1 1173 }
duke@1 1174
duke@1 1175 public TypeKind getKind() {
duke@1 1176 return TypeKind.EXECUTABLE;
duke@1 1177 }
duke@1 1178
duke@1 1179 public <R, P> R accept(TypeVisitor<R, P> v, P p) {
duke@1 1180 return v.visitExecutable(this, p);
duke@1 1181 }
duke@1 1182 }
duke@1 1183
duke@1 1184 /** A class for instantiatable variables, for use during type
duke@1 1185 * inference.
duke@1 1186 */
duke@1 1187 public static class UndetVar extends DelegatedType {
duke@1 1188 public List<Type> lobounds = List.nil();
duke@1 1189 public List<Type> hibounds = List.nil();
duke@1 1190 public Type inst = null;
duke@1 1191
duke@1 1192 @Override
duke@1 1193 public <R,S> R accept(Type.Visitor<R,S> v, S s) {
duke@1 1194 return v.visitUndetVar(this, s);
duke@1 1195 }
duke@1 1196
duke@1 1197 public UndetVar(Type origin) {
duke@1 1198 super(UNDETVAR, origin);
duke@1 1199 }
duke@1 1200
duke@1 1201 public String toString() {
duke@1 1202 if (inst != null) return inst.toString();
duke@1 1203 else return qtype + "?";
duke@1 1204 }
duke@1 1205
duke@1 1206 public Type baseType() {
duke@1 1207 if (inst != null) return inst.baseType();
duke@1 1208 else return this;
duke@1 1209 }
duke@1 1210 }
duke@1 1211
duke@1 1212 /** Represents VOID or NONE.
duke@1 1213 */
duke@1 1214 static class JCNoType extends Type implements NoType {
duke@1 1215 public JCNoType(int tag) {
duke@1 1216 super(tag, null);
duke@1 1217 }
duke@1 1218
duke@1 1219 @Override
duke@1 1220 public TypeKind getKind() {
duke@1 1221 switch (tag) {
duke@1 1222 case VOID: return TypeKind.VOID;
duke@1 1223 case NONE: return TypeKind.NONE;
duke@1 1224 default:
duke@1 1225 throw new AssertionError("Unexpected tag: " + tag);
duke@1 1226 }
duke@1 1227 }
duke@1 1228
duke@1 1229 @Override
duke@1 1230 public <R, P> R accept(TypeVisitor<R, P> v, P p) {
duke@1 1231 return v.visitNoType(this, p);
duke@1 1232 }
duke@1 1233 }
duke@1 1234
duke@1 1235 static class BottomType extends Type implements NullType {
duke@1 1236 public BottomType() {
duke@1 1237 super(TypeTags.BOT, null);
duke@1 1238 }
duke@1 1239
duke@1 1240 @Override
duke@1 1241 public TypeKind getKind() {
duke@1 1242 return TypeKind.NULL;
duke@1 1243 }
duke@1 1244
duke@1 1245 @Override
duke@1 1246 public <R, P> R accept(TypeVisitor<R, P> v, P p) {
duke@1 1247 return v.visitNull(this, p);
duke@1 1248 }
duke@1 1249
duke@1 1250 @Override
duke@1 1251 public Type constType(Object value) {
duke@1 1252 return this;
duke@1 1253 }
duke@1 1254
duke@1 1255 @Override
duke@1 1256 public String stringValue() {
duke@1 1257 return "null";
duke@1 1258 }
duke@1 1259 }
duke@1 1260
duke@1 1261 public static class ErrorType extends ClassType
duke@1 1262 implements javax.lang.model.type.ErrorType {
duke@1 1263
jjg@110 1264 private Type originalType = null;
jjg@110 1265
jjg@110 1266 public ErrorType(Type originalType, TypeSymbol tsym) {
duke@1 1267 super(noType, List.<Type>nil(), null);
duke@1 1268 tag = ERROR;
jjg@110 1269 this.tsym = tsym;
jjg@110 1270 this.originalType = (originalType == null ? noType : originalType);
duke@1 1271 }
duke@1 1272
jjg@110 1273 public ErrorType(ClassSymbol c, Type originalType) {
jjg@110 1274 this(originalType, c);
duke@1 1275 c.type = this;
duke@1 1276 c.kind = ERR;
duke@1 1277 c.members_field = new Scope.ErrorScope(c);
duke@1 1278 }
duke@1 1279
jjg@110 1280 public ErrorType(Name name, TypeSymbol container, Type originalType) {
jjg@110 1281 this(new ClassSymbol(PUBLIC|STATIC|ACYCLIC, name, null, container), originalType);
duke@1 1282 }
duke@1 1283
duke@1 1284 @Override
duke@1 1285 public <R,S> R accept(Type.Visitor<R,S> v, S s) {
duke@1 1286 return v.visitErrorType(this, s);
duke@1 1287 }
duke@1 1288
duke@1 1289 public Type constType(Object constValue) { return this; }
duke@1 1290 public Type getEnclosingType() { return this; }
duke@1 1291 public Type getReturnType() { return this; }
duke@1 1292 public Type asSub(Symbol sym) { return this; }
duke@1 1293 public Type map(Mapping f) { return this; }
duke@1 1294
duke@1 1295 public boolean isGenType(Type t) { return true; }
duke@1 1296 public boolean isErroneous() { return true; }
duke@1 1297 public boolean isCompound() { return false; }
duke@1 1298 public boolean isInterface() { return false; }
duke@1 1299
duke@1 1300 public List<Type> allparams() { return List.nil(); }
duke@1 1301 public List<Type> getTypeArguments() { return List.nil(); }
duke@1 1302
duke@1 1303 public TypeKind getKind() {
duke@1 1304 return TypeKind.ERROR;
duke@1 1305 }
duke@1 1306
jjg@110 1307 public Type getOriginalType() {
jjg@110 1308 return originalType;
jjg@110 1309 }
jjg@110 1310
duke@1 1311 public <R, P> R accept(TypeVisitor<R, P> v, P p) {
duke@1 1312 return v.visitError(this, p);
duke@1 1313 }
duke@1 1314 }
duke@1 1315
duke@1 1316 /**
duke@1 1317 * A visitor for types. A visitor is used to implement operations
duke@1 1318 * (or relations) on types. Most common operations on types are
duke@1 1319 * binary relations and this interface is designed for binary
duke@1 1320 * relations, that is, operations on the form
duke@1 1321 * Type&nbsp;&times;&nbsp;S&nbsp;&rarr;&nbsp;R.
duke@1 1322 * <!-- In plain text: Type x S -> R -->
duke@1 1323 *
duke@1 1324 * @param <R> the return type of the operation implemented by this
duke@1 1325 * visitor; use Void if no return type is needed.
duke@1 1326 * @param <S> the type of the second argument (the first being the
duke@1 1327 * type itself) of the operation implemented by this visitor; use
duke@1 1328 * Void if a second argument is not needed.
duke@1 1329 */
duke@1 1330 public interface Visitor<R,S> {
duke@1 1331 R visitClassType(ClassType t, S s);
duke@1 1332 R visitWildcardType(WildcardType t, S s);
duke@1 1333 R visitArrayType(ArrayType t, S s);
duke@1 1334 R visitMethodType(MethodType t, S s);
duke@1 1335 R visitPackageType(PackageType t, S s);
duke@1 1336 R visitTypeVar(TypeVar t, S s);
duke@1 1337 R visitCapturedType(CapturedType t, S s);
duke@1 1338 R visitForAll(ForAll t, S s);
duke@1 1339 R visitUndetVar(UndetVar t, S s);
duke@1 1340 R visitErrorType(ErrorType t, S s);
duke@1 1341 R visitType(Type t, S s);
duke@1 1342 }
duke@1 1343 }

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