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World.java 68KB

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  1. /* *******************************************************************
  2. * Copyright (c) 2002 Palo Alto Research Center, Incorporated (PARC).
  3. * 2005 Contributors
  4. * All rights reserved.
  5. * This program and the accompanying materials are made available
  6. * under the terms of the Eclipse Public License v1.0
  7. * which accompanies this distribution and is available at
  8. * http://www.eclipse.org/legal/epl-v10.html
  9. *
  10. * Contributors:
  11. * PARC initial implementation
  12. * Adrian Colyer, Andy Clement, overhaul for generics, Abraham Nevado
  13. * ******************************************************************/
  14. package org.aspectj.weaver;
  15. import java.lang.ref.Reference;
  16. import java.lang.ref.ReferenceQueue;
  17. import java.lang.ref.SoftReference;
  18. import java.lang.ref.WeakReference;
  19. import java.util.ArrayList;
  20. import java.util.Collections;
  21. import java.util.HashMap;
  22. import java.util.HashSet;
  23. import java.util.Iterator;
  24. import java.util.List;
  25. import java.util.Map;
  26. import java.util.Properties;
  27. import java.util.Set;
  28. import java.util.WeakHashMap;
  29. import org.aspectj.bridge.IMessage;
  30. import org.aspectj.bridge.IMessage.Kind;
  31. import org.aspectj.bridge.IMessageHandler;
  32. import org.aspectj.bridge.ISourceLocation;
  33. import org.aspectj.bridge.Message;
  34. import org.aspectj.bridge.MessageUtil;
  35. import org.aspectj.bridge.context.PinpointingMessageHandler;
  36. import org.aspectj.util.IStructureModel;
  37. import org.aspectj.weaver.ResolvedType.Primitive;
  38. import org.aspectj.weaver.UnresolvedType.TypeKind;
  39. import org.aspectj.weaver.patterns.Declare;
  40. import org.aspectj.weaver.patterns.DeclareAnnotation;
  41. import org.aspectj.weaver.patterns.DeclareParents;
  42. import org.aspectj.weaver.patterns.DeclarePrecedence;
  43. import org.aspectj.weaver.patterns.DeclareSoft;
  44. import org.aspectj.weaver.patterns.DeclareTypeErrorOrWarning;
  45. import org.aspectj.weaver.patterns.Pointcut;
  46. import org.aspectj.weaver.patterns.TypePattern;
  47. import org.aspectj.weaver.tools.PointcutDesignatorHandler;
  48. import org.aspectj.weaver.tools.Trace;
  49. import org.aspectj.weaver.tools.TraceFactory;
  50. /**
  51. * A World is a collection of known types and crosscutting members.
  52. */
  53. public abstract class World implements Dump.INode {
  54. /** handler for any messages produced during resolution etc. */
  55. private IMessageHandler messageHandler = IMessageHandler.SYSTEM_ERR;
  56. /** handler for cross-reference information produced during the weaving process */
  57. private ICrossReferenceHandler xrefHandler = null;
  58. /** Currently 'active' scope in which to lookup (resolve) typevariable references */
  59. private TypeVariableDeclaringElement typeVariableLookupScope;
  60. /** The heart of the world, a map from type signatures to resolved types */
  61. protected TypeMap typeMap = new TypeMap(this);
  62. /** New pointcut designators this world supports */
  63. private Set<PointcutDesignatorHandler> pointcutDesignators;
  64. // see pr145963
  65. /** Should we create the hierarchy for binary classes and aspects */
  66. public static boolean createInjarHierarchy = true;
  67. /** Calculator for working out aspect precedence */
  68. private final AspectPrecedenceCalculator precedenceCalculator;
  69. /** All of the type and shadow mungers known to us */
  70. private final CrosscuttingMembersSet crosscuttingMembersSet = new CrosscuttingMembersSet(this);
  71. /** The structure model for the compilation */
  72. private IStructureModel model = null;
  73. /** for processing Xlint messages */
  74. private Lint lint = new Lint(this);
  75. /** XnoInline option setting passed down to weaver */
  76. private boolean XnoInline;
  77. /** XlazyTjp option setting passed down to weaver */
  78. private boolean XlazyTjp;
  79. /** XhasMember option setting passed down to weaver */
  80. private boolean XhasMember = false;
  81. /** Xpinpoint controls whether we put out developer info showing the source of messages */
  82. private boolean Xpinpoint = false;
  83. /** When behaving in a Java 5 way autoboxing is considered */
  84. private boolean behaveInJava5Way = false;
  85. /** Should timing information be reported (as info messages)? */
  86. private boolean timing = false;
  87. private boolean timingPeriodically = true;
  88. /** Determines if this world could be used for multiple compiles */
  89. private boolean incrementalCompileCouldFollow = false;
  90. /** The level of the aspectjrt.jar the code we generate needs to run on */
  91. private String targetAspectjRuntimeLevel = Constants.RUNTIME_LEVEL_DEFAULT;
  92. /** Flags for the new joinpoints that are 'optional': -Xjoinpoints:arrayconstruction -Xjoinpoints:synchronization */
  93. private boolean optionalJoinpoint_ArrayConstruction = false;
  94. private boolean optionalJoinpoint_Synchronization = false;
  95. private boolean addSerialVerUID = false;
  96. private Properties extraConfiguration = null;
  97. private boolean checkedAdvancedConfiguration = false;
  98. private boolean synchronizationPointcutsInUse = false;
  99. // Xset'table options
  100. private boolean runMinimalMemory = false;
  101. private boolean transientTjpFields = false;
  102. private boolean runMinimalMemorySet = false;
  103. private boolean shouldPipelineCompilation = true;
  104. private boolean shouldGenerateStackMaps = false;
  105. protected boolean bcelRepositoryCaching = xsetBCEL_REPOSITORY_CACHING_DEFAULT.equalsIgnoreCase("true");
  106. private boolean fastMethodPacking = false;
  107. private int itdVersion = 2; // defaults to 2nd generation itds
  108. // Minimal Model controls whether model entities that are not involved in relationships are deleted post-build
  109. private boolean minimalModel = true;
  110. private boolean useFinal = true;
  111. private boolean targettingRuntime1_6_10 = false;
  112. private boolean completeBinaryTypes = false;
  113. private boolean overWeaving = false;
  114. private static boolean systemPropertyOverWeaving = false;
  115. public boolean forDEBUG_structuralChangesCode = false;
  116. public boolean forDEBUG_bridgingCode = false;
  117. public boolean optimizedMatching = true;
  118. public boolean generateNewLvts = true;
  119. protected long timersPerJoinpoint = 25000;
  120. protected long timersPerType = 250;
  121. public int infoMessagesEnabled = 0; // 0=uninitialized, 1=no, 2=yes
  122. private static Trace trace = TraceFactory.getTraceFactory().getTrace(World.class);
  123. private boolean errorThreshold;
  124. private boolean warningThreshold;
  125. /**
  126. * A list of RuntimeExceptions containing full stack information for every type we couldn't find.
  127. */
  128. private List<RuntimeException> dumpState_cantFindTypeExceptions = null;
  129. static {
  130. try {
  131. String value = System.getProperty("aspectj.overweaving", "false");
  132. if (value.equalsIgnoreCase("true")) {
  133. System.out.println("ASPECTJ: aspectj.overweaving=true: overweaving switched ON");
  134. systemPropertyOverWeaving = true;
  135. }
  136. } catch (Throwable t) {
  137. System.err.println("ASPECTJ: Unable to read system properties");
  138. t.printStackTrace();
  139. }
  140. }
  141. public final Primitive BYTE = new Primitive("B", 1, 0);
  142. public final Primitive CHAR = new Primitive("C", 1, 1);
  143. public final Primitive DOUBLE = new Primitive("D", 2, 2);
  144. public final Primitive FLOAT = new Primitive("F", 1, 3);
  145. public final Primitive INT = new Primitive("I", 1, 4);
  146. public final Primitive LONG = new Primitive("J", 2, 5);
  147. public final Primitive SHORT = new Primitive("S", 1, 6);
  148. public final Primitive BOOLEAN = new Primitive("Z", 1, 7);
  149. public final Primitive VOID = new Primitive("V", 0, 8);
  150. /**
  151. * Insert the primitives
  152. */
  153. protected World() {
  154. super();
  155. // Dump.registerNode(this.getClass(), this);
  156. typeMap.put("B", BYTE);
  157. typeMap.put("S", SHORT);
  158. typeMap.put("I", INT);
  159. typeMap.put("J", LONG);
  160. typeMap.put("F", FLOAT);
  161. typeMap.put("D", DOUBLE);
  162. typeMap.put("C", CHAR);
  163. typeMap.put("Z", BOOLEAN);
  164. typeMap.put("V", VOID);
  165. precedenceCalculator = new AspectPrecedenceCalculator(this);
  166. }
  167. /**
  168. * Dump processing when a fatal error occurs
  169. */
  170. public void accept(Dump.IVisitor visitor) {
  171. // visitor.visitObject("Extra configuration:");
  172. // visitor.visitList(extraConfiguration.);
  173. visitor.visitObject("Shadow mungers:");
  174. visitor.visitList(crosscuttingMembersSet.getShadowMungers());
  175. visitor.visitObject("Type mungers:");
  176. visitor.visitList(crosscuttingMembersSet.getTypeMungers());
  177. visitor.visitObject("Late Type mungers:");
  178. visitor.visitList(crosscuttingMembersSet.getLateTypeMungers());
  179. if (dumpState_cantFindTypeExceptions != null) {
  180. visitor.visitObject("Cant find type problems:");
  181. visitor.visitList(dumpState_cantFindTypeExceptions);
  182. dumpState_cantFindTypeExceptions = null;
  183. }
  184. }
  185. // ==========================================================================
  186. // T Y P E R E S O L U T I O N
  187. // ==========================================================================
  188. /**
  189. * Resolve a type that we require to be present in the world
  190. */
  191. public ResolvedType resolve(UnresolvedType ty) {
  192. return resolve(ty, false);
  193. }
  194. /**
  195. * Attempt to resolve a type - the source location gives you some context in which resolution is taking place. In the case of an
  196. * error where we can't find the type - we can then at least report why (source location) we were trying to resolve it.
  197. */
  198. public ResolvedType resolve(UnresolvedType ty, ISourceLocation isl) {
  199. ResolvedType ret = resolve(ty, true);
  200. if (ResolvedType.isMissing(ty)) {
  201. // IMessage msg = null;
  202. getLint().cantFindType.signal(WeaverMessages.format(WeaverMessages.CANT_FIND_TYPE, ty.getName()), isl);
  203. // if (isl!=null) {
  204. // msg = MessageUtil.error(WeaverMessages.format(WeaverMessages.
  205. // CANT_FIND_TYPE,ty.getName()),isl);
  206. // } else {
  207. // msg = MessageUtil.error(WeaverMessages.format(WeaverMessages.
  208. // CANT_FIND_TYPE,ty.getName()));
  209. // }
  210. // messageHandler.handleMessage(msg);
  211. }
  212. return ret;
  213. }
  214. /**
  215. * Convenience method for resolving an array of unresolved types in one hit. Useful for e.g. resolving type parameters in
  216. * signatures.
  217. */
  218. public ResolvedType[] resolve(UnresolvedType[] types) {
  219. if (types == null) {
  220. return ResolvedType.NONE;
  221. }
  222. ResolvedType[] ret = new ResolvedType[types.length];
  223. for (int i = 0; i < types.length; i++) {
  224. ret[i] = resolve(types[i]);
  225. }
  226. return ret;
  227. }
  228. /**
  229. * Resolve a type. This the hub of type resolution. The resolved type is added to the type map by signature.
  230. */
  231. public ResolvedType resolve(UnresolvedType ty, boolean allowMissing) {
  232. // special resolution processing for already resolved types.
  233. if (ty instanceof ResolvedType) {
  234. ResolvedType rty = (ResolvedType) ty;
  235. rty = resolve(rty);
  236. // A TypeVariableReferenceType may look like it is resolved (it extends ResolvedType) but the internal
  237. // type variable may not yet have been resolved
  238. if (!rty.isTypeVariableReference() || ((TypeVariableReferenceType) rty).isTypeVariableResolved()) {
  239. return rty;
  240. }
  241. }
  242. // dispatch back to the type variable reference to resolve its
  243. // constituent parts don't do this for other unresolved types otherwise
  244. // you'll end up in a
  245. // loop
  246. if (ty.isTypeVariableReference()) {
  247. return ty.resolve(this);
  248. }
  249. // if we've already got a resolved type for the signature, just return
  250. // it
  251. // after updating the world
  252. String signature = ty.getSignature();
  253. ResolvedType ret = typeMap.get(signature);
  254. if (ret != null) {
  255. ret.world = this; // Set the world for the RTX
  256. return ret;
  257. } else if (signature.equals("?") || signature.equals("*")) {
  258. // might be a problem here, not sure '?' should make it to here as a
  259. // signature, the
  260. // proper signature for wildcard '?' is '*'
  261. // fault in generic wildcard, can't be done earlier because of init
  262. // issues
  263. // TODO ought to be shared single instance representing this
  264. ResolvedType something = getWildcard();
  265. typeMap.put("?", something);
  266. return something;
  267. }
  268. // no existing resolved type, create one
  269. synchronized (buildingTypeLock) {
  270. if (ty.isArray()) {
  271. ResolvedType componentType = resolve(ty.getComponentType(), allowMissing);
  272. ret = new ArrayReferenceType(signature, "[" + componentType.getErasureSignature(), this, componentType);
  273. } else {
  274. ret = resolveToReferenceType(ty, allowMissing);
  275. if (!allowMissing && ret.isMissing()) {
  276. ret = handleRequiredMissingTypeDuringResolution(ty);
  277. }
  278. if (completeBinaryTypes) {
  279. completeBinaryType(ret);
  280. }
  281. }
  282. }
  283. // Pulling in the type may have already put the right entry in the map
  284. ResolvedType result = typeMap.get(signature);
  285. if (result == null && !ret.isMissing()) {
  286. ret = ensureRawTypeIfNecessary(ret);
  287. typeMap.put(signature, ret);
  288. return ret;
  289. }
  290. if (result == null) {
  291. return ret;
  292. } else {
  293. return result;
  294. }
  295. }
  296. private Object buildingTypeLock = new Object();
  297. // Only need one representation of '?' in a world - can be shared
  298. private BoundedReferenceType wildcard;
  299. private BoundedReferenceType getWildcard() {
  300. if (wildcard == null) {
  301. wildcard = new BoundedReferenceType(this);
  302. }
  303. return wildcard;
  304. }
  305. /**
  306. * Called when a type is resolved - enables its type hierarchy to be finished off before we proceed
  307. */
  308. protected void completeBinaryType(ResolvedType ret) {
  309. }
  310. /**
  311. * Return true if the classloader relating to this world is definetly the one that will define the specified class. Return false
  312. * otherwise or we don't know for certain.
  313. */
  314. public boolean isLocallyDefined(String classname) {
  315. return false;
  316. }
  317. /**
  318. * We tried to resolve a type and couldn't find it...
  319. */
  320. private ResolvedType handleRequiredMissingTypeDuringResolution(UnresolvedType ty) {
  321. // defer the message until someone asks a question of the type that we
  322. // can't answer
  323. // just from the signature.
  324. // MessageUtil.error(messageHandler,
  325. // WeaverMessages.format(WeaverMessages.CANT_FIND_TYPE,ty.getName()));
  326. if (dumpState_cantFindTypeExceptions == null) {
  327. dumpState_cantFindTypeExceptions = new ArrayList<RuntimeException>();
  328. }
  329. if (dumpState_cantFindTypeExceptions.size() < 100) { // limit growth
  330. dumpState_cantFindTypeExceptions.add(new RuntimeException("Can't find type " + ty.getName()));
  331. }
  332. return new MissingResolvedTypeWithKnownSignature(ty.getSignature(), this);
  333. }
  334. /**
  335. * Some TypeFactory operations create resolved types directly, but these won't be in the typeMap - this resolution process puts
  336. * them there. Resolved types are also told their world which is needed for the special autoboxing resolved types.
  337. */
  338. public ResolvedType resolve(ResolvedType ty) {
  339. if (ty.isTypeVariableReference()) {
  340. return ty; // until type variables have proper sigs...
  341. }
  342. ResolvedType resolved = typeMap.get(ty.getSignature());
  343. if (resolved == null) {
  344. resolved = ensureRawTypeIfNecessary(ty);
  345. typeMap.put(ty.getSignature(), resolved);
  346. resolved = ty;
  347. }
  348. resolved.world = this;
  349. return resolved;
  350. }
  351. /**
  352. * When the world is operating in 1.5 mode, the TypeMap should only contain RAW types and never directly generic types. The RAW
  353. * type will contain a reference to the generic type.
  354. *
  355. * @param type a possibly generic type for which the raw needs creating as it is not currently in the world
  356. * @return a type suitable for putting into the world
  357. */
  358. private ResolvedType ensureRawTypeIfNecessary(ResolvedType type) {
  359. if (!isInJava5Mode() || type.isRawType()) {
  360. return type;
  361. }
  362. // Key requirement here is if it is generic, create a RAW entry to be put in the map that points to it
  363. if (type instanceof ReferenceType && ((ReferenceType) type).getDelegate() != null && type.isGenericType()) {
  364. ReferenceType rawType = new ReferenceType(type.getSignature(), this);
  365. rawType.typeKind = UnresolvedType.TypeKind.RAW;
  366. ReferenceTypeDelegate delegate = ((ReferenceType) type).getDelegate();
  367. rawType.setDelegate(delegate);
  368. rawType.setGenericType((ReferenceType) type);
  369. return rawType;
  370. }
  371. // probably parameterized...
  372. return type;
  373. }
  374. /**
  375. * Convenience method for finding a type by name and resolving it in one step.
  376. */
  377. public ResolvedType resolve(String name) {
  378. // trace.enter("resolve", this, new Object[] {name});
  379. ResolvedType ret = resolve(UnresolvedType.forName(name));
  380. // trace.exit("resolve", ret);
  381. return ret;
  382. }
  383. public ReferenceType resolveToReferenceType(String name) {
  384. return (ReferenceType) resolve(name);
  385. }
  386. public ResolvedType resolve(String name, boolean allowMissing) {
  387. return resolve(UnresolvedType.forName(name), allowMissing);
  388. }
  389. /**
  390. * Resolve to a ReferenceType - simple, raw, parameterized, or generic. Raw, parameterized, and generic versions of a type share
  391. * a delegate.
  392. */
  393. private final ResolvedType resolveToReferenceType(UnresolvedType ty, boolean allowMissing) {
  394. if (ty.isParameterizedType()) {
  395. // ======= parameterized types ================
  396. ResolvedType rt = resolveGenericTypeFor(ty, allowMissing);
  397. if (rt.isMissing()) {
  398. return rt;
  399. }
  400. ReferenceType genericType = (ReferenceType) rt;
  401. ReferenceType parameterizedType = TypeFactory.createParameterizedType(genericType, ty.typeParameters, this);
  402. return parameterizedType;
  403. } else if (ty.isGenericType()) {
  404. // ======= generic types ======================
  405. ResolvedType rt = resolveGenericTypeFor(ty, false);
  406. if (rt.isMissing()) {
  407. return rt;
  408. }
  409. ReferenceType genericType = (ReferenceType) rt;
  410. return genericType;
  411. } else if (ty.isGenericWildcard()) {
  412. // ======= generic wildcard types =============
  413. return resolveGenericWildcardFor((WildcardedUnresolvedType) ty);
  414. } else {
  415. // ======= simple and raw types ===============
  416. String erasedSignature = ty.getErasureSignature();
  417. ReferenceType simpleOrRawType = new ReferenceType(erasedSignature, this);
  418. if (ty.needsModifiableDelegate()) {
  419. simpleOrRawType.setNeedsModifiableDelegate(true);
  420. }
  421. ReferenceTypeDelegate delegate = resolveDelegate(simpleOrRawType);
  422. if (delegate == null) {
  423. return new MissingResolvedTypeWithKnownSignature(ty.getSignature(), erasedSignature, this);
  424. }
  425. if (delegate.isGeneric() && behaveInJava5Way) {
  426. // ======== raw type ===========
  427. simpleOrRawType.typeKind = TypeKind.RAW;
  428. if (simpleOrRawType.hasNewInterfaces()) { // debug 375777
  429. throw new IllegalStateException(
  430. "Simple type promoted forced to raw, but it had new interfaces/superclass. Type is "
  431. + simpleOrRawType.getName());
  432. }
  433. ReferenceType genericType = makeGenericTypeFrom(delegate, simpleOrRawType);
  434. simpleOrRawType.setDelegate(delegate);
  435. genericType.setDelegate(delegate);
  436. simpleOrRawType.setGenericType(genericType);
  437. return simpleOrRawType;
  438. } else {
  439. // ======== simple type =========
  440. simpleOrRawType.setDelegate(delegate);
  441. return simpleOrRawType;
  442. }
  443. }
  444. }
  445. /**
  446. * Attempt to resolve a type that should be a generic type.
  447. */
  448. public ResolvedType resolveGenericTypeFor(UnresolvedType anUnresolvedType, boolean allowMissing) {
  449. // Look up the raw type by signature
  450. String rawSignature = anUnresolvedType.getRawType().getSignature();
  451. ResolvedType rawType = typeMap.get(rawSignature);
  452. if (rawType == null) {
  453. rawType = resolve(UnresolvedType.forSignature(rawSignature), allowMissing);
  454. typeMap.put(rawSignature, rawType);
  455. }
  456. if (rawType.isMissing()) {
  457. return rawType;
  458. }
  459. // Does the raw type know its generic form? (It will if we created the
  460. // raw type from a source type, it won't if its been created just
  461. // through
  462. // being referenced, e.g. java.util.List
  463. ResolvedType genericType = rawType.getGenericType();
  464. // There is a special case to consider here (testGenericsBang_pr95993
  465. // highlights it)
  466. // You may have an unresolvedType for a parameterized type but it
  467. // is backed by a simple type rather than a generic type. This occurs
  468. // for
  469. // inner types of generic types that inherit their enclosing types
  470. // type variables.
  471. if (rawType.isSimpleType() && (anUnresolvedType.typeParameters == null || anUnresolvedType.typeParameters.length == 0)) {
  472. rawType.world = this;
  473. return rawType;
  474. }
  475. if (genericType != null) {
  476. genericType.world = this;
  477. return genericType;
  478. } else {
  479. // Fault in the generic that underpins the raw type ;)
  480. ReferenceTypeDelegate delegate = resolveDelegate((ReferenceType) rawType);
  481. ReferenceType genericRefType = makeGenericTypeFrom(delegate, ((ReferenceType) rawType));
  482. ((ReferenceType) rawType).setGenericType(genericRefType);
  483. genericRefType.setDelegate(delegate);
  484. ((ReferenceType) rawType).setDelegate(delegate);
  485. return genericRefType;
  486. }
  487. }
  488. private ReferenceType makeGenericTypeFrom(ReferenceTypeDelegate delegate, ReferenceType rawType) {
  489. String genericSig = delegate.getDeclaredGenericSignature();
  490. if (genericSig != null) {
  491. return new ReferenceType(UnresolvedType.forGenericTypeSignature(rawType.getSignature(),
  492. delegate.getDeclaredGenericSignature()), this);
  493. } else {
  494. return new ReferenceType(UnresolvedType.forGenericTypeVariables(rawType.getSignature(), delegate.getTypeVariables()),
  495. this);
  496. }
  497. }
  498. /**
  499. * Go from an unresolved generic wildcard (represented by UnresolvedType) to a resolved version (BoundedReferenceType).
  500. */
  501. private ReferenceType resolveGenericWildcardFor(WildcardedUnresolvedType aType) {
  502. BoundedReferenceType ret = null;
  503. // FIXME asc doesnt take account of additional interface bounds (e.g. ? super R & Serializable - can you do that?)
  504. if (aType.isExtends()) {
  505. ResolvedType resolvedUpperBound = resolve(aType.getUpperBound());
  506. if (resolvedUpperBound.isMissing()) {
  507. return getWildcard();
  508. }
  509. ret = new BoundedReferenceType((ReferenceType)resolvedUpperBound, true, this);
  510. } else if (aType.isSuper()) {
  511. ResolvedType resolvedLowerBound = resolve(aType.getLowerBound());
  512. if (resolvedLowerBound.isMissing()) {
  513. return getWildcard();
  514. }
  515. ret = new BoundedReferenceType((ReferenceType)resolvedLowerBound, false, this);
  516. } else {
  517. // must be ? on its own!
  518. ret = getWildcard();
  519. }
  520. return ret;
  521. }
  522. /**
  523. * Find the ReferenceTypeDelegate behind this reference type so that it can fulfill its contract.
  524. */
  525. protected abstract ReferenceTypeDelegate resolveDelegate(ReferenceType ty);
  526. /**
  527. * Special resolution for "core" types like OBJECT. These are resolved just like any other type, but if they are not found it is
  528. * more serious and we issue an error message immediately.
  529. */
  530. // OPTIMIZE streamline path for core types? They are just simple types,
  531. // could look straight in the typemap?
  532. public ResolvedType getCoreType(UnresolvedType tx) {
  533. ResolvedType coreTy = resolve(tx, true);
  534. if (coreTy.isMissing()) {
  535. MessageUtil.error(messageHandler, WeaverMessages.format(WeaverMessages.CANT_FIND_CORE_TYPE, tx.getName()));
  536. }
  537. return coreTy;
  538. }
  539. /**
  540. * Lookup a type by signature, if not found then build one and put it in the map.
  541. */
  542. public ReferenceType lookupOrCreateName(UnresolvedType ty) {
  543. String signature = ty.getSignature();
  544. ReferenceType ret = lookupBySignature(signature);
  545. if (ret == null) {
  546. ret = ReferenceType.fromTypeX(ty, this);
  547. typeMap.put(signature, ret);
  548. }
  549. return ret;
  550. }
  551. /**
  552. * Lookup a reference type in the world by its signature. Returns null if not found.
  553. */
  554. public ReferenceType lookupBySignature(String signature) {
  555. return (ReferenceType) typeMap.get(signature);
  556. }
  557. // ==========================================================================
  558. // ===
  559. // T Y P E R E S O L U T I O N -- E N D
  560. // ==========================================================================
  561. // ===
  562. /**
  563. * Member resolution is achieved by resolving the declaring type and then looking up the member in the resolved declaring type.
  564. */
  565. public ResolvedMember resolve(Member member) {
  566. ResolvedType declaring = member.getDeclaringType().resolve(this);
  567. if (declaring.isRawType()) {
  568. declaring = declaring.getGenericType();
  569. }
  570. ResolvedMember ret;
  571. if (member.getKind() == Member.FIELD) {
  572. ret = declaring.lookupField(member);
  573. } else {
  574. ret = declaring.lookupMethod(member);
  575. }
  576. if (ret != null) {
  577. return ret;
  578. }
  579. return declaring.lookupSyntheticMember(member);
  580. }
  581. private boolean allLintIgnored = false;
  582. public void setAllLintIgnored() {
  583. allLintIgnored = true;
  584. }
  585. public boolean areAllLintIgnored() {
  586. return allLintIgnored;
  587. }
  588. public abstract IWeavingSupport getWeavingSupport();
  589. /**
  590. * Create an advice shadow munger from the given advice attribute
  591. */
  592. // public abstract Advice createAdviceMunger(AjAttribute.AdviceAttribute
  593. // attribute, Pointcut pointcut, Member signature);
  594. /**
  595. * Create an advice shadow munger for the given advice kind
  596. */
  597. public final Advice createAdviceMunger(AdviceKind kind, Pointcut p, Member signature, int extraParameterFlags,
  598. IHasSourceLocation loc, ResolvedType declaringAspect) {
  599. AjAttribute.AdviceAttribute attribute = new AjAttribute.AdviceAttribute(kind, p, extraParameterFlags, loc.getStart(),
  600. loc.getEnd(), loc.getSourceContext());
  601. return getWeavingSupport().createAdviceMunger(attribute, p, signature, declaringAspect);
  602. }
  603. /**
  604. * Same signature as org.aspectj.util.PartialOrder.PartialComparable.compareTo
  605. */
  606. public int compareByPrecedence(ResolvedType aspect1, ResolvedType aspect2) {
  607. return precedenceCalculator.compareByPrecedence(aspect1, aspect2);
  608. }
  609. public Integer getPrecedenceIfAny(ResolvedType aspect1, ResolvedType aspect2) {
  610. return precedenceCalculator.getPrecedenceIfAny(aspect1, aspect2);
  611. }
  612. /**
  613. * compares by precedence with the additional rule that a super-aspect is sorted before its sub-aspects
  614. */
  615. public int compareByPrecedenceAndHierarchy(ResolvedType aspect1, ResolvedType aspect2) {
  616. return precedenceCalculator.compareByPrecedenceAndHierarchy(aspect1, aspect2);
  617. }
  618. // simple property getter and setters
  619. // ===========================================================
  620. /**
  621. * Nobody should hold onto a copy of this message handler, or setMessageHandler won't work right.
  622. */
  623. public IMessageHandler getMessageHandler() {
  624. return messageHandler;
  625. }
  626. public void setMessageHandler(IMessageHandler messageHandler) {
  627. if (this.isInPinpointMode()) {
  628. this.messageHandler = new PinpointingMessageHandler(messageHandler);
  629. } else {
  630. this.messageHandler = messageHandler;
  631. }
  632. }
  633. /**
  634. * convenenience method for creating and issuing messages via the message handler - if you supply two locations you will get two
  635. * messages.
  636. */
  637. public void showMessage(Kind kind, String message, ISourceLocation loc1, ISourceLocation loc2) {
  638. if (loc1 != null) {
  639. messageHandler.handleMessage(new Message(message, kind, null, loc1));
  640. if (loc2 != null) {
  641. messageHandler.handleMessage(new Message(message, kind, null, loc2));
  642. }
  643. } else {
  644. messageHandler.handleMessage(new Message(message, kind, null, loc2));
  645. }
  646. }
  647. public void setCrossReferenceHandler(ICrossReferenceHandler xrefHandler) {
  648. this.xrefHandler = xrefHandler;
  649. }
  650. /**
  651. * Get the cross-reference handler for the world, may be null.
  652. */
  653. public ICrossReferenceHandler getCrossReferenceHandler() {
  654. return xrefHandler;
  655. }
  656. public void setTypeVariableLookupScope(TypeVariableDeclaringElement scope) {
  657. typeVariableLookupScope = scope;
  658. }
  659. public TypeVariableDeclaringElement getTypeVariableLookupScope() {
  660. return typeVariableLookupScope;
  661. }
  662. public List<DeclareParents> getDeclareParents() {
  663. return crosscuttingMembersSet.getDeclareParents();
  664. }
  665. public List<DeclareAnnotation> getDeclareAnnotationOnTypes() {
  666. return crosscuttingMembersSet.getDeclareAnnotationOnTypes();
  667. }
  668. public List<DeclareAnnotation> getDeclareAnnotationOnFields() {
  669. return crosscuttingMembersSet.getDeclareAnnotationOnFields();
  670. }
  671. public List<DeclareAnnotation> getDeclareAnnotationOnMethods() {
  672. return crosscuttingMembersSet.getDeclareAnnotationOnMethods();
  673. }
  674. public List<DeclareTypeErrorOrWarning> getDeclareTypeEows() {
  675. return crosscuttingMembersSet.getDeclareTypeEows();
  676. }
  677. public List<DeclareSoft> getDeclareSoft() {
  678. return crosscuttingMembersSet.getDeclareSofts();
  679. }
  680. public CrosscuttingMembersSet getCrosscuttingMembersSet() {
  681. return crosscuttingMembersSet;
  682. }
  683. public IStructureModel getModel() {
  684. return model;
  685. }
  686. public void setModel(IStructureModel model) {
  687. this.model = model;
  688. }
  689. public Lint getLint() {
  690. return lint;
  691. }
  692. public void setLint(Lint lint) {
  693. this.lint = lint;
  694. }
  695. public boolean isXnoInline() {
  696. return XnoInline;
  697. }
  698. public void setXnoInline(boolean xnoInline) {
  699. XnoInline = xnoInline;
  700. }
  701. public boolean isXlazyTjp() {
  702. return XlazyTjp;
  703. }
  704. public void setXlazyTjp(boolean b) {
  705. XlazyTjp = b;
  706. }
  707. public boolean isHasMemberSupportEnabled() {
  708. return XhasMember;
  709. }
  710. public void setXHasMemberSupportEnabled(boolean b) {
  711. XhasMember = b;
  712. }
  713. public boolean isInPinpointMode() {
  714. return Xpinpoint;
  715. }
  716. public void setPinpointMode(boolean b) {
  717. Xpinpoint = b;
  718. }
  719. public boolean useFinal() {
  720. return useFinal;
  721. }
  722. public boolean isMinimalModel() {
  723. ensureAdvancedConfigurationProcessed();
  724. return minimalModel;
  725. }
  726. public boolean isTargettingRuntime1_6_10() {
  727. ensureAdvancedConfigurationProcessed();
  728. return targettingRuntime1_6_10;
  729. }
  730. public void setBehaveInJava5Way(boolean b) {
  731. behaveInJava5Way = b;
  732. }
  733. /**
  734. * Set the timing option (whether to collect timing info), this will also need INFO messages turned on for the message handler
  735. * being used. The reportPeriodically flag should be set to false under AJDT so numbers just come out at the end.
  736. */
  737. public void setTiming(boolean timersOn, boolean reportPeriodically) {
  738. timing = timersOn;
  739. timingPeriodically = reportPeriodically;
  740. }
  741. /**
  742. * Set the error and warning threashold which can be taken from CompilerOptions (see bug 129282)
  743. *
  744. * @param errorThreshold
  745. * @param warningThreshold
  746. */
  747. public void setErrorAndWarningThreshold(boolean errorThreshold, boolean warningThreshold) {
  748. this.errorThreshold = errorThreshold;
  749. this.warningThreshold = warningThreshold;
  750. }
  751. /**
  752. * @return true if ignoring the UnusedDeclaredThrownException and false if this compiler option is set to error or warning
  753. */
  754. public boolean isIgnoringUnusedDeclaredThrownException() {
  755. // the 0x800000 is CompilerOptions.UnusedDeclaredThrownException
  756. // which is ASTNode.bit24
  757. return errorThreshold||warningThreshold;
  758. // if ((errorThreshold & 0x800000) != 0 || (warningThreshold & 0x800000) != 0) {
  759. // return false;
  760. // }
  761. // return true;
  762. }
  763. public void performExtraConfiguration(String config) {
  764. if (config == null) {
  765. return;
  766. }
  767. // Bunch of name value pairs to split
  768. extraConfiguration = new Properties();
  769. int pos = -1;
  770. while ((pos = config.indexOf(",")) != -1) {
  771. String nvpair = config.substring(0, pos);
  772. int pos2 = nvpair.indexOf("=");
  773. if (pos2 != -1) {
  774. String n = nvpair.substring(0, pos2);
  775. String v = nvpair.substring(pos2 + 1);
  776. extraConfiguration.setProperty(n, v);
  777. }
  778. config = config.substring(pos + 1);
  779. }
  780. if (config.length() > 0) {
  781. int pos2 = config.indexOf("=");
  782. if (pos2 != -1) {
  783. String n = config.substring(0, pos2);
  784. String v = config.substring(pos2 + 1);
  785. extraConfiguration.setProperty(n, v);
  786. }
  787. }
  788. ensureAdvancedConfigurationProcessed();
  789. }
  790. public boolean areInfoMessagesEnabled() {
  791. if (infoMessagesEnabled == 0) {
  792. infoMessagesEnabled = (messageHandler.isIgnoring(IMessage.INFO) ? 1 : 2);
  793. }
  794. return infoMessagesEnabled == 2;
  795. }
  796. /**
  797. * may return null
  798. */
  799. public Properties getExtraConfiguration() {
  800. return extraConfiguration;
  801. }
  802. public final static String xsetAVOID_FINAL = "avoidFinal"; // default true
  803. public final static String xsetWEAVE_JAVA_PACKAGES = "weaveJavaPackages"; // default
  804. // false
  805. // -
  806. // controls
  807. // LTW
  808. public final static String xsetWEAVE_JAVAX_PACKAGES = "weaveJavaxPackages"; // default
  809. // false
  810. // -
  811. // controls
  812. // LTW
  813. public final static String xsetCAPTURE_ALL_CONTEXT = "captureAllContext"; // default
  814. // false
  815. public final static String xsetRUN_MINIMAL_MEMORY = "runMinimalMemory"; // default
  816. // true
  817. public final static String xsetDEBUG_STRUCTURAL_CHANGES_CODE = "debugStructuralChangesCode"; // default
  818. // false
  819. public final static String xsetDEBUG_BRIDGING = "debugBridging"; // default
  820. // false
  821. public final static String xsetTRANSIENT_TJP_FIELDS = "makeTjpFieldsTransient"; // default false
  822. public final static String xsetBCEL_REPOSITORY_CACHING = "bcelRepositoryCaching";
  823. public final static String xsetPIPELINE_COMPILATION = "pipelineCompilation";
  824. public final static String xsetGENERATE_STACKMAPS = "generateStackMaps";
  825. public final static String xsetPIPELINE_COMPILATION_DEFAULT = "true";
  826. public final static String xsetCOMPLETE_BINARY_TYPES = "completeBinaryTypes";
  827. public final static String xsetCOMPLETE_BINARY_TYPES_DEFAULT = "false";
  828. public final static String xsetTYPE_DEMOTION = "typeDemotion";
  829. public final static String xsetTYPE_DEMOTION_DEBUG = "typeDemotionDebug";
  830. public final static String xsetTYPE_REFS = "useWeakTypeRefs";
  831. public final static String xsetBCEL_REPOSITORY_CACHING_DEFAULT = "true";
  832. public final static String xsetFAST_PACK_METHODS = "fastPackMethods"; // default true
  833. public final static String xsetOVERWEAVING = "overWeaving";
  834. public final static String xsetOPTIMIZED_MATCHING = "optimizedMatching";
  835. public final static String xsetTIMERS_PER_JOINPOINT = "timersPerJoinpoint";
  836. public final static String xsetTIMERS_PER_FASTMATCH_CALL = "timersPerFastMatchCall";
  837. public final static String xsetITD_VERSION = "itdVersion";
  838. public final static String xsetITD_VERSION_ORIGINAL = "1";
  839. public final static String xsetITD_VERSION_2NDGEN = "2";
  840. public final static String xsetITD_VERSION_DEFAULT = xsetITD_VERSION_2NDGEN;
  841. public final static String xsetMINIMAL_MODEL = "minimalModel";
  842. public final static String xsetTARGETING_RUNTIME_1610 = "targetRuntime1_6_10";
  843. // This option allows you to prevent AspectJ adding local variable tables - some tools (e.g. dex) may
  844. // not like what gets created because even though it is valid, the bytecode they are processing has
  845. // unexpected quirks that mean the table entries are violated in the code. See issue:
  846. // https://bugs.eclipse.org/bugs/show_bug.cgi?id=470658
  847. public final static String xsetGENERATE_NEW_LVTS="generateNewLocalVariableTables";
  848. public boolean isInJava5Mode() {
  849. return behaveInJava5Way;
  850. }
  851. public boolean isTimingEnabled() {
  852. return timing;
  853. }
  854. public void setTargetAspectjRuntimeLevel(String s) {
  855. targetAspectjRuntimeLevel = s;
  856. }
  857. public void setOptionalJoinpoints(String jps) {
  858. if (jps == null) {
  859. return;
  860. }
  861. if (jps.indexOf("arrayconstruction") != -1) {
  862. optionalJoinpoint_ArrayConstruction = true;
  863. }
  864. if (jps.indexOf("synchronization") != -1) {
  865. optionalJoinpoint_Synchronization = true;
  866. }
  867. }
  868. public boolean isJoinpointArrayConstructionEnabled() {
  869. return optionalJoinpoint_ArrayConstruction;
  870. }
  871. public boolean isJoinpointSynchronizationEnabled() {
  872. return optionalJoinpoint_Synchronization;
  873. }
  874. public String getTargetAspectjRuntimeLevel() {
  875. return targetAspectjRuntimeLevel;
  876. }
  877. // OPTIMIZE are users falling foul of not supplying -1.5 and so targetting
  878. // the old runtime?
  879. public boolean isTargettingAspectJRuntime12() {
  880. boolean b = false; // pr116679
  881. if (!isInJava5Mode()) {
  882. b = true;
  883. } else {
  884. b = getTargetAspectjRuntimeLevel().equals(org.aspectj.weaver.Constants.RUNTIME_LEVEL_12);
  885. }
  886. // System.err.println("Asked if targetting runtime 1.2 , returning: "+b);
  887. return b;
  888. }
  889. /*
  890. * Map of types in the world, can have 'references' to expendable ones which can be garbage collected to recover memory. An
  891. * expendable type is a reference type that is not exposed to the weaver (ie just pulled in for type resolution purposes).
  892. * Generic types have their raw form added to the map, which has a pointer to the underlying generic.
  893. */
  894. public static class TypeMap {
  895. // Strategy for entries in the expendable map
  896. public final static int DONT_USE_REFS = 0; // Hang around forever
  897. public final static int USE_WEAK_REFS = 1; // Collected asap
  898. public final static int USE_SOFT_REFS = 2; // Collected when short on memory
  899. public List<String> addedSinceLastDemote;
  900. public List<String> writtenClasses;
  901. private static boolean debug = false;
  902. public static boolean useExpendableMap = true; // configurable for reliable testing
  903. private boolean demotionSystemActive;
  904. private boolean debugDemotion = false;
  905. public int policy = USE_WEAK_REFS;
  906. // Map of types that never get thrown away
  907. final Map<String, ResolvedType> tMap = new HashMap<String, ResolvedType>();
  908. // Map of types that may be ejected from the cache if we need space
  909. final Map<String, Reference<ResolvedType>> expendableMap = Collections
  910. .synchronizedMap(new WeakHashMap<String, Reference<ResolvedType>>());
  911. private final World w;
  912. // profiling tools...
  913. private boolean memoryProfiling = false;
  914. private int maxExpendableMapSize = -1;
  915. private int collectedTypes = 0;
  916. private final ReferenceQueue<ResolvedType> rq = new ReferenceQueue<ResolvedType>();
  917. TypeMap(World w) {
  918. // Demotion activated when switched on and loadtime weaving or in AJDT
  919. demotionSystemActive = w.isDemotionActive() && (w.isLoadtimeWeaving() || w.couldIncrementalCompileFollow());
  920. addedSinceLastDemote = new ArrayList<String>();
  921. writtenClasses = new ArrayList<String>();
  922. this.w = w;
  923. memoryProfiling = false;// !w.getMessageHandler().isIgnoring(Message.
  924. // INFO);
  925. }
  926. // For testing
  927. public Map<String, Reference<ResolvedType>> getExpendableMap() {
  928. return expendableMap;
  929. }
  930. // For testing
  931. public Map<String, ResolvedType> getMainMap() {
  932. return tMap;
  933. }
  934. public int demote() {
  935. return demote(false);
  936. }
  937. /**
  938. * Go through any types added during the previous file weave. If any are suitable for demotion, then put them in the
  939. * expendable map where GC can claim them at some point later. Demotion means: the type is not an aspect, the type is not
  940. * java.lang.Object, the type is not primitive and the type is not affected by type mungers in any way. Further refinements
  941. * of these conditions may allow for more demotions.
  942. *
  943. * @return number of types demoted
  944. */
  945. public int demote(boolean atEndOfCompile) {
  946. if (!demotionSystemActive) {
  947. return 0;
  948. }
  949. if (debugDemotion) {
  950. System.out.println("Demotion running " + addedSinceLastDemote);
  951. }
  952. boolean isLtw = w.isLoadtimeWeaving();
  953. int demotionCounter = 0;
  954. if (isLtw) {
  955. // Loadtime weaving demotion strategy
  956. for (String key : addedSinceLastDemote) {
  957. ResolvedType type = tMap.get(key);
  958. if (type != null && !type.isAspect() && !type.equals(UnresolvedType.OBJECT) && !type.isPrimitiveType()) {
  959. List<ConcreteTypeMunger> typeMungers = type.getInterTypeMungers();
  960. if (typeMungers == null || typeMungers.size() == 0) {
  961. tMap.remove(key);
  962. insertInExpendableMap(key, type);
  963. demotionCounter++;
  964. }
  965. }
  966. }
  967. addedSinceLastDemote.clear();
  968. } else {
  969. // Compile time demotion strategy
  970. List<String> forRemoval = new ArrayList<String>();
  971. for (String key : addedSinceLastDemote) {
  972. ResolvedType type = tMap.get(key);
  973. if (type == null) {
  974. // TODO not 100% sure why it is not there, where did it go?
  975. forRemoval.add(key);
  976. continue;
  977. }
  978. if (!writtenClasses.contains(type.getName())) { // COSTLY
  979. continue;
  980. }
  981. if (type != null && !type.isAspect() && !type.equals(UnresolvedType.OBJECT) && !type.isPrimitiveType()) {
  982. List<ConcreteTypeMunger> typeMungers = type.getInterTypeMungers();
  983. if (typeMungers == null || typeMungers.size() == 0) {
  984. /*
  985. * if (type.isNested()) { try { ReferenceType rt = (ReferenceType) w.resolve(type.getOutermostType());
  986. * if (!rt.isMissing()) { ReferenceTypeDelegate delegate = ((ReferenceType) type).getDelegate(); boolean
  987. * isWeavable = delegate == null ? false : delegate.isExposedToWeaver(); boolean hasBeenWoven = delegate
  988. * == null ? false : delegate.hasBeenWoven(); if (isWeavable && !hasBeenWoven) { // skip demotion of
  989. * this inner type for now continue; } } } catch (ClassCastException cce) { cce.printStackTrace();
  990. * System.out.println("outer of " + key + " is not a reftype? " + type.getOutermostType()); // throw new
  991. * IllegalStateException(cce); } }
  992. */
  993. ReferenceTypeDelegate delegate = ((ReferenceType) type).getDelegate();
  994. boolean isWeavable = delegate == null ? false : delegate.isExposedToWeaver();
  995. boolean hasBeenWoven = delegate == null ? false : delegate.hasBeenWoven();
  996. if (!isWeavable || hasBeenWoven) {
  997. if (debugDemotion) {
  998. System.out.println("Demoting " + key);
  999. }
  1000. forRemoval.add(key);
  1001. tMap.remove(key);
  1002. insertInExpendableMap(key, type);
  1003. demotionCounter++;
  1004. }
  1005. } else {
  1006. // no need to try this again, it will never be demoted
  1007. writtenClasses.remove(type.getName());
  1008. forRemoval.add(key);
  1009. }
  1010. } else {
  1011. writtenClasses.remove(type.getName());
  1012. // no need to try this again, it will never be demoted
  1013. forRemoval.add(key);
  1014. }
  1015. }
  1016. addedSinceLastDemote.removeAll(forRemoval);
  1017. }
  1018. if (debugDemotion) {
  1019. System.out.println("Demoted " + demotionCounter + " types. Types remaining in fixed set #" + tMap.keySet().size()
  1020. + ". addedSinceLastDemote size is " + addedSinceLastDemote.size());
  1021. System.out.println("writtenClasses.size() = " + writtenClasses.size() + ": " + writtenClasses);
  1022. }
  1023. if (atEndOfCompile) {
  1024. if (debugDemotion) {
  1025. System.out.println("Clearing writtenClasses");
  1026. }
  1027. writtenClasses.clear();
  1028. }
  1029. return demotionCounter;
  1030. }
  1031. private void insertInExpendableMap(String key, ResolvedType type) {
  1032. if (useExpendableMap) {
  1033. if (!expendableMap.containsKey(key)) {
  1034. if (policy == USE_SOFT_REFS) {
  1035. expendableMap.put(key, new SoftReference<ResolvedType>(type));
  1036. } else {
  1037. expendableMap.put(key, new WeakReference<ResolvedType>(type));
  1038. }
  1039. }
  1040. }
  1041. }
  1042. /**
  1043. * Add a new type into the map, the key is the type signature. Some types do *not* go in the map, these are ones involving
  1044. * *member* type variables. The reason is that when all you have is the signature which gives you a type variable name, you
  1045. * cannot guarantee you are using the type variable in the same way as someone previously working with a similarly named
  1046. * type variable. So, these do not go into the map: - TypeVariableReferenceType. - ParameterizedType where a member type
  1047. * variable is involved. - BoundedReferenceType when one of the bounds is a type variable.
  1048. *
  1049. * definition: "member type variables" - a tvar declared on a generic method/ctor as opposed to those you see declared on a
  1050. * generic type.
  1051. */
  1052. public ResolvedType put(String key, ResolvedType type) {
  1053. if (!type.isCacheable()) {
  1054. return type;
  1055. }
  1056. if (type.isParameterizedType() && type.isParameterizedWithTypeVariable()) {
  1057. if (debug) {
  1058. System.err
  1059. .println("Not putting a parameterized type that utilises member declared type variables into the typemap: key="
  1060. + key + " type=" + type);
  1061. }
  1062. return type;
  1063. }
  1064. if (type.isTypeVariableReference()) {
  1065. if (debug) {
  1066. System.err.println("Not putting a type variable reference type into the typemap: key=" + key + " type=" + type);
  1067. }
  1068. return type;
  1069. }
  1070. // this test should be improved - only avoid putting them in if one
  1071. // of the
  1072. // bounds is a member type variable
  1073. if (type instanceof BoundedReferenceType) {
  1074. if (debug) {
  1075. System.err.println("Not putting a bounded reference type into the typemap: key=" + key + " type=" + type);
  1076. }
  1077. return type;
  1078. }
  1079. if (type instanceof MissingResolvedTypeWithKnownSignature) {
  1080. if (debug) {
  1081. System.err.println("Not putting a missing type into the typemap: key=" + key + " type=" + type);
  1082. }
  1083. return type;
  1084. }
  1085. if ((type instanceof ReferenceType) && (((ReferenceType) type).getDelegate() == null) && w.isExpendable(type)) {
  1086. if (debug) {
  1087. System.err.println("Not putting expendable ref type with null delegate into typemap: key=" + key + " type="
  1088. + type);
  1089. }
  1090. return type;
  1091. }
  1092. // TODO should this be in as a permanent assertion?
  1093. if ((type instanceof ReferenceType) && type.getWorld().isInJava5Mode()
  1094. && (((ReferenceType) type).getDelegate() != null) && type.isGenericType()) {
  1095. throw new BCException("Attempt to add generic type to typemap " + type.toString() + " (should be raw)");
  1096. }
  1097. if (w.isExpendable(type)) {
  1098. if (useExpendableMap) {
  1099. // Dont use reference queue for tracking if not profiling...
  1100. if (policy == USE_WEAK_REFS) {
  1101. if (memoryProfiling) {
  1102. expendableMap.put(key, new WeakReference<ResolvedType>(type, rq));
  1103. } else {
  1104. expendableMap.put(key, new WeakReference<ResolvedType>(type));
  1105. }
  1106. } else if (policy == USE_SOFT_REFS) {
  1107. if (memoryProfiling) {
  1108. expendableMap.put(key, new SoftReference<ResolvedType>(type, rq));
  1109. } else {
  1110. expendableMap.put(key, new SoftReference<ResolvedType>(type));
  1111. }
  1112. // } else {
  1113. // expendableMap.put(key, type);
  1114. }
  1115. }
  1116. if (memoryProfiling && expendableMap.size() > maxExpendableMapSize) {
  1117. maxExpendableMapSize = expendableMap.size();
  1118. }
  1119. return type;
  1120. } else {
  1121. if (demotionSystemActive) {
  1122. // System.out.println("Added since last demote " + key);
  1123. addedSinceLastDemote.add(key);
  1124. }
  1125. return tMap.put(key, type);
  1126. }
  1127. }
  1128. public void report() {
  1129. if (!memoryProfiling) {
  1130. return;
  1131. }
  1132. checkq();
  1133. w.getMessageHandler().handleMessage(
  1134. MessageUtil.info("MEMORY: world expendable type map reached maximum size of #" + maxExpendableMapSize
  1135. + " entries"));
  1136. w.getMessageHandler().handleMessage(
  1137. MessageUtil.info("MEMORY: types collected through garbage collection #" + collectedTypes + " entries"));
  1138. }
  1139. public void checkq() {
  1140. if (!memoryProfiling) {
  1141. return;
  1142. }
  1143. Reference<? extends ResolvedType> r = null;
  1144. while ((r=rq.poll()) != null) {
  1145. collectedTypes++;
  1146. }
  1147. }
  1148. /**
  1149. * Lookup a type by its signature, always look in the real map before the expendable map
  1150. */
  1151. public ResolvedType get(String key) {
  1152. checkq();
  1153. ResolvedType ret = tMap.get(key);
  1154. if (ret == null) {
  1155. if (policy == USE_WEAK_REFS) {
  1156. WeakReference<ResolvedType> ref = (WeakReference<ResolvedType>) expendableMap.get(key);
  1157. if (ref != null) {
  1158. ret = ref.get();
  1159. // if (ret==null) {
  1160. // expendableMap.remove(key);
  1161. // }
  1162. }
  1163. } else if (policy == USE_SOFT_REFS) {
  1164. SoftReference<ResolvedType> ref = (SoftReference<ResolvedType>) expendableMap.get(key);
  1165. if (ref != null) {
  1166. ret = ref.get();
  1167. // if (ret==null) {
  1168. // expendableMap.remove(key);
  1169. // }
  1170. }
  1171. // } else {
  1172. // return (ResolvedType) expendableMap.get(key);
  1173. }
  1174. }
  1175. return ret;
  1176. }
  1177. /** Remove a type from the map */
  1178. public ResolvedType remove(String key) {
  1179. ResolvedType ret = tMap.remove(key);
  1180. if (ret == null) {
  1181. if (policy == USE_WEAK_REFS) {
  1182. WeakReference<ResolvedType> wref = (WeakReference<ResolvedType>) expendableMap.remove(key);
  1183. if (wref != null) {
  1184. ret = wref.get();
  1185. }
  1186. } else if (policy == USE_SOFT_REFS) {
  1187. SoftReference<ResolvedType> wref = (SoftReference<ResolvedType>) expendableMap.remove(key);
  1188. if (wref != null) {
  1189. ret = wref.get();
  1190. }
  1191. // } else {
  1192. // ret = (ResolvedType) expendableMap.remove(key);
  1193. }
  1194. }
  1195. return ret;
  1196. }
  1197. public void classWriteEvent(String classname) {
  1198. // that is a name com.Foo and not a signature Lcom/Foo; boooooooooo!
  1199. if (demotionSystemActive) {
  1200. writtenClasses.add(classname);
  1201. }
  1202. if (debugDemotion) {
  1203. System.out.println("Class write event for " + classname);
  1204. }
  1205. }
  1206. public void demote(ResolvedType type) {
  1207. String key = type.getSignature();
  1208. if (debugDemotion) {
  1209. addedSinceLastDemote.remove(key);
  1210. }
  1211. tMap.remove(key);
  1212. insertInExpendableMap(key, type);
  1213. }
  1214. // public ResolvedType[] getAllTypes() {
  1215. // List/* ResolvedType */results = new ArrayList();
  1216. //
  1217. // collectTypes(expendableMap, results);
  1218. // collectTypes(tMap, results);
  1219. // return (ResolvedType[]) results.toArray(new
  1220. // ResolvedType[results.size()]);
  1221. // }
  1222. //
  1223. // private void collectTypes(Map map, List/* ResolvedType */results) {
  1224. // for (Iterator iterator = map.keySet().iterator();
  1225. // iterator.hasNext();) {
  1226. // String key = (String) iterator.next();
  1227. // ResolvedType type = get(key);
  1228. // if (type != null)
  1229. // results.add(type);
  1230. // else
  1231. // System.err.println("null!:" + key);
  1232. // }
  1233. // }
  1234. }
  1235. /**
  1236. * This class is used to compute and store precedence relationships between aspects.
  1237. */
  1238. private static class AspectPrecedenceCalculator {
  1239. private final World world;
  1240. private final Map<PrecedenceCacheKey, Integer> cachedResults;
  1241. public AspectPrecedenceCalculator(World forSomeWorld) {
  1242. world = forSomeWorld;
  1243. cachedResults = new HashMap<PrecedenceCacheKey, Integer>();
  1244. }
  1245. /**
  1246. * Ask every declare precedence in the world to order the two aspects. If more than one declare precedence gives an
  1247. * ordering, and the orderings conflict, then that's an error.
  1248. */
  1249. public int compareByPrecedence(ResolvedType firstAspect, ResolvedType secondAspect) {
  1250. PrecedenceCacheKey key = new PrecedenceCacheKey(firstAspect, secondAspect);
  1251. if (cachedResults.containsKey(key)) {
  1252. return (cachedResults.get(key)).intValue();
  1253. } else {
  1254. int order = 0;
  1255. DeclarePrecedence orderer = null; // Records the declare
  1256. // precedence statement that
  1257. // gives the first ordering
  1258. for (Iterator<Declare> i = world.getCrosscuttingMembersSet().getDeclareDominates().iterator(); i.hasNext();) {
  1259. DeclarePrecedence d = (DeclarePrecedence) i.next();
  1260. int thisOrder = d.compare(firstAspect, secondAspect);
  1261. if (thisOrder != 0) {
  1262. if (orderer == null) {
  1263. orderer = d;
  1264. }
  1265. if (order != 0 && order != thisOrder) {
  1266. ISourceLocation[] isls = new ISourceLocation[2];
  1267. isls[0] = orderer.getSourceLocation();
  1268. isls[1] = d.getSourceLocation();
  1269. Message m = new Message("conflicting declare precedence orderings for aspects: "
  1270. + firstAspect.getName() + " and " + secondAspect.getName(), null, true, isls);
  1271. world.getMessageHandler().handleMessage(m);
  1272. } else {
  1273. order = thisOrder;
  1274. }
  1275. }
  1276. }
  1277. cachedResults.put(key, new Integer(order));
  1278. return order;
  1279. }
  1280. }
  1281. public Integer getPrecedenceIfAny(ResolvedType aspect1, ResolvedType aspect2) {
  1282. return cachedResults.get(new PrecedenceCacheKey(aspect1, aspect2));
  1283. }
  1284. public int compareByPrecedenceAndHierarchy(ResolvedType firstAspect, ResolvedType secondAspect) {
  1285. if (firstAspect.equals(secondAspect)) {
  1286. return 0;
  1287. }
  1288. int ret = compareByPrecedence(firstAspect, secondAspect);
  1289. if (ret != 0) {
  1290. return ret;
  1291. }
  1292. if (firstAspect.isAssignableFrom(secondAspect)) {
  1293. return -1;
  1294. } else if (secondAspect.isAssignableFrom(firstAspect)) {
  1295. return +1;
  1296. }
  1297. return 0;
  1298. }
  1299. private static class PrecedenceCacheKey {
  1300. public ResolvedType aspect1;
  1301. public ResolvedType aspect2;
  1302. public PrecedenceCacheKey(ResolvedType a1, ResolvedType a2) {
  1303. aspect1 = a1;
  1304. aspect2 = a2;
  1305. }
  1306. @Override
  1307. public boolean equals(Object obj) {
  1308. if (!(obj instanceof PrecedenceCacheKey)) {
  1309. return false;
  1310. }
  1311. PrecedenceCacheKey other = (PrecedenceCacheKey) obj;
  1312. return (aspect1 == other.aspect1 && aspect2 == other.aspect2);
  1313. }
  1314. @Override
  1315. public int hashCode() {
  1316. return aspect1.hashCode() + aspect2.hashCode();
  1317. }
  1318. }
  1319. }
  1320. public void validateType(UnresolvedType type) {
  1321. }
  1322. // --- with java5 we can get into a recursive mess if we aren't careful when
  1323. // resolving types (*cough* java.lang.Enum) ---
  1324. public boolean isDemotionActive() {
  1325. return true;
  1326. }
  1327. // --- this first map is for java15 delegates which may try and recursively
  1328. // access the same type variables.
  1329. // --- I would rather stash this against a reference type - but we don't
  1330. // guarantee referencetypes are unique for
  1331. // so we can't :(
  1332. private final Map<Class<?>, TypeVariable[]> workInProgress1 = new HashMap<Class<?>, TypeVariable[]>();
  1333. public TypeVariable[] getTypeVariablesCurrentlyBeingProcessed(Class<?> baseClass) {
  1334. return workInProgress1.get(baseClass);
  1335. }
  1336. public void recordTypeVariablesCurrentlyBeingProcessed(Class<?> baseClass, TypeVariable[] typeVariables) {
  1337. workInProgress1.put(baseClass, typeVariables);
  1338. }
  1339. public void forgetTypeVariablesCurrentlyBeingProcessed(Class<?> baseClass) {
  1340. workInProgress1.remove(baseClass);
  1341. }
  1342. public void setAddSerialVerUID(boolean b) {
  1343. addSerialVerUID = b;
  1344. }
  1345. public boolean isAddSerialVerUID() {
  1346. return addSerialVerUID;
  1347. }
  1348. /** be careful calling this - pr152257 */
  1349. public void flush() {
  1350. typeMap.expendableMap.clear();
  1351. }
  1352. public void ensureAdvancedConfigurationProcessed() {
  1353. // Check *once* whether the user has switched asm support off
  1354. if (!checkedAdvancedConfiguration) {
  1355. Properties p = getExtraConfiguration();
  1356. if (p != null) {
  1357. String s = p.getProperty(xsetBCEL_REPOSITORY_CACHING, xsetBCEL_REPOSITORY_CACHING_DEFAULT);
  1358. bcelRepositoryCaching = s.equalsIgnoreCase("true");
  1359. if (!bcelRepositoryCaching) {
  1360. getMessageHandler().handleMessage(
  1361. MessageUtil
  1362. .info("[bcelRepositoryCaching=false] AspectJ will not use a bcel cache for class information"));
  1363. }
  1364. // ITD Versions
  1365. // 1 is the first version in use up to AspectJ 1.6.8
  1366. // 2 is from 1.6.9 onwards
  1367. s = p.getProperty(xsetITD_VERSION, xsetITD_VERSION_DEFAULT);
  1368. if (s.equals(xsetITD_VERSION_ORIGINAL)) {
  1369. itdVersion = 1;
  1370. }
  1371. s = p.getProperty(xsetAVOID_FINAL, "false");
  1372. if (s.equalsIgnoreCase("true")) {
  1373. useFinal = false; // if avoidFinal=true, then set useFinal to false
  1374. }
  1375. s = p.getProperty(xsetMINIMAL_MODEL, "true");
  1376. if (s.equalsIgnoreCase("false")) {
  1377. minimalModel = false;
  1378. }
  1379. s = p.getProperty(xsetTARGETING_RUNTIME_1610, "false");
  1380. if (s.equalsIgnoreCase("true")) {
  1381. targettingRuntime1_6_10 = true;
  1382. }
  1383. s = p.getProperty(xsetFAST_PACK_METHODS, "true");
  1384. fastMethodPacking = s.equalsIgnoreCase("true");
  1385. s = p.getProperty(xsetPIPELINE_COMPILATION, xsetPIPELINE_COMPILATION_DEFAULT);
  1386. shouldPipelineCompilation = s.equalsIgnoreCase("true");
  1387. s = p.getProperty(xsetGENERATE_STACKMAPS, "false");
  1388. shouldGenerateStackMaps = s.equalsIgnoreCase("true");
  1389. s = p.getProperty(xsetCOMPLETE_BINARY_TYPES, xsetCOMPLETE_BINARY_TYPES_DEFAULT);
  1390. completeBinaryTypes = s.equalsIgnoreCase("true");
  1391. if (completeBinaryTypes) {
  1392. getMessageHandler().handleMessage(
  1393. MessageUtil.info("[completeBinaryTypes=true] Completion of binary types activated"));
  1394. }
  1395. s = p.getProperty(xsetTYPE_DEMOTION); // default is: ON
  1396. if (s != null) {
  1397. boolean b = typeMap.demotionSystemActive;
  1398. if (b && s.equalsIgnoreCase("false")) {
  1399. System.out.println("typeDemotion=false: type demotion switched OFF");
  1400. typeMap.demotionSystemActive = false;
  1401. } else if (!b && s.equalsIgnoreCase("true")) {
  1402. System.out.println("typeDemotion=true: type demotion switched ON");
  1403. typeMap.demotionSystemActive = true;
  1404. }
  1405. }
  1406. s = p.getProperty(xsetOVERWEAVING, "false");
  1407. if (s.equalsIgnoreCase("true")) {
  1408. overWeaving = true;
  1409. }
  1410. s = p.getProperty(xsetTYPE_DEMOTION_DEBUG, "false");
  1411. if (s.equalsIgnoreCase("true")) {
  1412. typeMap.debugDemotion = true;
  1413. }
  1414. s = p.getProperty(xsetTYPE_REFS, "true");
  1415. if (s.equalsIgnoreCase("false")) {
  1416. typeMap.policy = TypeMap.USE_SOFT_REFS;
  1417. }
  1418. runMinimalMemorySet = p.getProperty(xsetRUN_MINIMAL_MEMORY) != null;
  1419. s = p.getProperty(xsetRUN_MINIMAL_MEMORY, "false");
  1420. runMinimalMemory = s.equalsIgnoreCase("true");
  1421. // if (runMinimalMemory)
  1422. // getMessageHandler().handleMessage(MessageUtil.info(
  1423. // "[runMinimalMemory=true] Optimizing bcel processing (and cost of performance) to use less memory"
  1424. // ));
  1425. s = p.getProperty(xsetDEBUG_STRUCTURAL_CHANGES_CODE, "false");
  1426. forDEBUG_structuralChangesCode = s.equalsIgnoreCase("true");
  1427. s = p.getProperty(xsetTRANSIENT_TJP_FIELDS,"false");
  1428. transientTjpFields = s.equalsIgnoreCase("true");
  1429. s = p.getProperty(xsetDEBUG_BRIDGING, "false");
  1430. forDEBUG_bridgingCode = s.equalsIgnoreCase("true");
  1431. s = p.getProperty(xsetGENERATE_NEW_LVTS,"true");
  1432. generateNewLvts = s.equalsIgnoreCase("true");
  1433. if (!generateNewLvts) {
  1434. getMessageHandler().handleMessage(MessageUtil.info("[generateNewLvts=false] for methods without an incoming local variable table, do not generate one"));
  1435. }
  1436. s = p.getProperty(xsetOPTIMIZED_MATCHING, "true");
  1437. optimizedMatching = s.equalsIgnoreCase("true");
  1438. if (!optimizedMatching) {
  1439. getMessageHandler().handleMessage(MessageUtil.info("[optimizedMatching=false] optimized matching turned off"));
  1440. }
  1441. s = p.getProperty(xsetTIMERS_PER_JOINPOINT, "25000");
  1442. try {
  1443. timersPerJoinpoint = Integer.parseInt(s);
  1444. } catch (Exception e) {
  1445. getMessageHandler().handleMessage(MessageUtil.error("unable to process timersPerJoinpoint value of " + s));
  1446. timersPerJoinpoint = 25000;
  1447. }
  1448. s = p.getProperty(xsetTIMERS_PER_FASTMATCH_CALL, "250");
  1449. try {
  1450. timersPerType = Integer.parseInt(s);
  1451. } catch (Exception e) {
  1452. getMessageHandler().handleMessage(MessageUtil.error("unable to process timersPerType value of " + s));
  1453. timersPerType = 250;
  1454. }
  1455. }
  1456. try {
  1457. if (systemPropertyOverWeaving) {
  1458. overWeaving = true;
  1459. }
  1460. String value = null;
  1461. value = System.getProperty("aspectj.typeDemotion", "false");
  1462. if (value.equalsIgnoreCase("true")) {
  1463. System.out.println("ASPECTJ: aspectj.typeDemotion=true: type demotion switched ON");
  1464. typeMap.demotionSystemActive = true;
  1465. }
  1466. value = System.getProperty("aspectj.minimalModel", "false");
  1467. if (value.equalsIgnoreCase("true")) {
  1468. System.out.println("ASPECTJ: aspectj.minimalModel=true: minimal model switched ON");
  1469. minimalModel = true;
  1470. }
  1471. } catch (Throwable t) {
  1472. System.err.println("ASPECTJ: Unable to read system properties");
  1473. t.printStackTrace();
  1474. }
  1475. checkedAdvancedConfiguration = true;
  1476. }
  1477. }
  1478. public boolean isRunMinimalMemory() {
  1479. ensureAdvancedConfigurationProcessed();
  1480. return runMinimalMemory;
  1481. }
  1482. public boolean isTransientTjpFields() {
  1483. ensureAdvancedConfigurationProcessed();
  1484. return transientTjpFields;
  1485. }
  1486. public boolean isRunMinimalMemorySet() {
  1487. ensureAdvancedConfigurationProcessed();
  1488. return runMinimalMemorySet;
  1489. }
  1490. public boolean shouldFastPackMethods() {
  1491. ensureAdvancedConfigurationProcessed();
  1492. return fastMethodPacking;
  1493. }
  1494. public boolean shouldPipelineCompilation() {
  1495. ensureAdvancedConfigurationProcessed();
  1496. return shouldPipelineCompilation;
  1497. }
  1498. public boolean shouldGenerateStackMaps() {
  1499. ensureAdvancedConfigurationProcessed();
  1500. return shouldGenerateStackMaps;
  1501. }
  1502. public void setIncrementalCompileCouldFollow(boolean b) {
  1503. incrementalCompileCouldFollow = b;
  1504. }
  1505. public boolean couldIncrementalCompileFollow() {
  1506. return incrementalCompileCouldFollow;
  1507. }
  1508. public void setSynchronizationPointcutsInUse() {
  1509. if (trace.isTraceEnabled()) {
  1510. trace.enter("setSynchronizationPointcutsInUse", this);
  1511. }
  1512. synchronizationPointcutsInUse = true;
  1513. if (trace.isTraceEnabled()) {
  1514. trace.exit("setSynchronizationPointcutsInUse");
  1515. }
  1516. }
  1517. public boolean areSynchronizationPointcutsInUse() {
  1518. return synchronizationPointcutsInUse;
  1519. }
  1520. /**
  1521. * Register a new pointcut designator handler with the world - this can be used by any pointcut parsers attached to the world.
  1522. *
  1523. * @param designatorHandler handler for the new pointcut
  1524. */
  1525. public void registerPointcutHandler(PointcutDesignatorHandler designatorHandler) {
  1526. if (pointcutDesignators == null) {
  1527. pointcutDesignators = new HashSet<PointcutDesignatorHandler>();
  1528. }
  1529. pointcutDesignators.add(designatorHandler);
  1530. }
  1531. public Set<PointcutDesignatorHandler> getRegisteredPointcutHandlers() {
  1532. if (pointcutDesignators == null) {
  1533. return Collections.emptySet();
  1534. }
  1535. return pointcutDesignators;
  1536. }
  1537. public void reportMatch(ShadowMunger munger, Shadow shadow) {
  1538. }
  1539. public boolean isOverWeaving() {
  1540. return overWeaving;
  1541. }
  1542. public void reportCheckerMatch(Checker checker, Shadow shadow) {
  1543. }
  1544. /**
  1545. * @return true if this world has the activation and scope of application of the aspects controlled via aop.xml files
  1546. */
  1547. public boolean isXmlConfigured() {
  1548. return false;
  1549. }
  1550. public boolean isAspectIncluded(ResolvedType aspectType) {
  1551. return true;
  1552. }
  1553. /**
  1554. * Determine if the named aspect requires a particular type around in order to be useful. The type is named in the aop.xml file
  1555. * against the aspect.
  1556. *
  1557. * @return true if there is a type missing that this aspect really needed around
  1558. */
  1559. public boolean hasUnsatisfiedDependency(ResolvedType aspectType) {
  1560. return false;
  1561. }
  1562. public TypePattern getAspectScope(ResolvedType declaringType) {
  1563. return null;
  1564. }
  1565. public Map<String, ResolvedType> getFixed() {
  1566. return typeMap.tMap;
  1567. }
  1568. public Map<String, Reference<ResolvedType>> getExpendable() {
  1569. return typeMap.expendableMap;
  1570. }
  1571. /**
  1572. * Ask the type map to demote any types it can - we don't want them anchored forever.
  1573. */
  1574. public void demote() {
  1575. typeMap.demote();
  1576. }
  1577. // protected boolean isExpendable(ResolvedType type) {
  1578. // if (type.equals(UnresolvedType.OBJECT))
  1579. // return false;
  1580. // if (type == null)
  1581. // return false;
  1582. // boolean isExposed = type.isExposedToWeaver();
  1583. // boolean nullDele = (type instanceof ReferenceType) ? ((ReferenceType) type).getDelegate() != null : true;
  1584. // if (isExposed || !isExposed && nullDele)
  1585. // return false;
  1586. // return !type.isPrimitiveType();
  1587. // }
  1588. /**
  1589. * Reference types we don't intend to weave may be ejected from the cache if we need the space.
  1590. */
  1591. protected boolean isExpendable(ResolvedType type) {
  1592. return !type.equals(UnresolvedType.OBJECT) && !type.isExposedToWeaver() && !type.isPrimitiveType()
  1593. && !type.isPrimitiveArray();
  1594. }
  1595. // map from aspect > excluded types
  1596. // memory issue here?
  1597. private Map<ResolvedType, Set<ResolvedType>> exclusionMap = new HashMap<ResolvedType, Set<ResolvedType>>();
  1598. public Map<ResolvedType, Set<ResolvedType>> getExclusionMap() {
  1599. return exclusionMap;
  1600. }
  1601. private TimeCollector timeCollector = null;
  1602. /**
  1603. * Record the time spent matching a pointcut - this will accumulate over the lifetime of this world/weaver and be reported every
  1604. * 25000 join points.
  1605. */
  1606. public void record(Pointcut pointcut, long timetaken) {
  1607. if (timeCollector == null) {
  1608. ensureAdvancedConfigurationProcessed();
  1609. timeCollector = new TimeCollector(this);
  1610. }
  1611. timeCollector.record(pointcut, timetaken);
  1612. }
  1613. /**
  1614. * Record the time spent fastmatching a pointcut - this will accumulate over the lifetime of this world/weaver and be reported
  1615. * every 250 types.
  1616. */
  1617. public void recordFastMatch(Pointcut pointcut, long timetaken) {
  1618. if (timeCollector == null) {
  1619. ensureAdvancedConfigurationProcessed();
  1620. timeCollector = new TimeCollector(this);
  1621. }
  1622. timeCollector.recordFastMatch(pointcut, timetaken);
  1623. }
  1624. public void reportTimers() {
  1625. if (timeCollector != null && !timingPeriodically) {
  1626. timeCollector.report();
  1627. timeCollector = new TimeCollector(this);
  1628. }
  1629. }
  1630. private static class TimeCollector {
  1631. private World world;
  1632. long joinpointCount;
  1633. long typeCount;
  1634. long perJoinpointCount;
  1635. long perTypes;
  1636. Map<String, Long> joinpointsPerPointcut = new HashMap<String, Long>();
  1637. Map<String, Long> timePerPointcut = new HashMap<String, Long>();
  1638. Map<String, Long> fastMatchTimesPerPointcut = new HashMap<String, Long>();
  1639. Map<String, Long> fastMatchTypesPerPointcut = new HashMap<String, Long>();
  1640. TimeCollector(World world) {
  1641. this.perJoinpointCount = world.timersPerJoinpoint;
  1642. this.perTypes = world.timersPerType;
  1643. this.world = world;
  1644. this.joinpointCount = 0;
  1645. this.typeCount = 0;
  1646. this.joinpointsPerPointcut = new HashMap<String, Long>();
  1647. this.timePerPointcut = new HashMap<String, Long>();
  1648. }
  1649. public void report() {
  1650. long totalTime = 0L;
  1651. for (String p : joinpointsPerPointcut.keySet()) {
  1652. totalTime += timePerPointcut.get(p);
  1653. }
  1654. world.getMessageHandler().handleMessage(
  1655. MessageUtil.info("Pointcut matching cost (total=" + (totalTime / 1000000) + "ms for " + joinpointCount
  1656. + " joinpoint match calls):"));
  1657. for (String p : joinpointsPerPointcut.keySet()) {
  1658. StringBuffer sb = new StringBuffer();
  1659. sb.append("Time:" + (timePerPointcut.get(p) / 1000000) + "ms (jps:#" + joinpointsPerPointcut.get(p)
  1660. + ") matching against " + p);
  1661. world.getMessageHandler().handleMessage(MessageUtil.info(sb.toString()));
  1662. }
  1663. world.getMessageHandler().handleMessage(MessageUtil.info("---"));
  1664. totalTime = 0L;
  1665. for (String p : fastMatchTimesPerPointcut.keySet()) {
  1666. totalTime += fastMatchTimesPerPointcut.get(p);
  1667. }
  1668. world.getMessageHandler().handleMessage(
  1669. MessageUtil.info("Pointcut fast matching cost (total=" + (totalTime / 1000000) + "ms for " + typeCount
  1670. + " fast match calls):"));
  1671. for (String p : fastMatchTimesPerPointcut.keySet()) {
  1672. StringBuffer sb = new StringBuffer();
  1673. sb.append("Time:" + (fastMatchTimesPerPointcut.get(p) / 1000000) + "ms (types:#" + fastMatchTypesPerPointcut.get(p)
  1674. + ") fast matching against " + p);
  1675. world.getMessageHandler().handleMessage(MessageUtil.info(sb.toString()));
  1676. }
  1677. world.getMessageHandler().handleMessage(MessageUtil.info("---"));
  1678. }
  1679. void record(Pointcut pointcut, long timetakenInNs) {
  1680. joinpointCount++;
  1681. String pointcutText = pointcut.toString();
  1682. Long jpcounter = joinpointsPerPointcut.get(pointcutText);
  1683. if (jpcounter == null) {
  1684. jpcounter = 1L;
  1685. } else {
  1686. jpcounter++;
  1687. }
  1688. joinpointsPerPointcut.put(pointcutText, jpcounter);
  1689. Long time = timePerPointcut.get(pointcutText);
  1690. if (time == null) {
  1691. time = timetakenInNs;
  1692. } else {
  1693. time += timetakenInNs;
  1694. }
  1695. timePerPointcut.put(pointcutText, time);
  1696. if (world.timingPeriodically) {
  1697. if ((joinpointCount % perJoinpointCount) == 0) {
  1698. long totalTime = 0L;
  1699. for (String p : joinpointsPerPointcut.keySet()) {
  1700. totalTime += timePerPointcut.get(p);
  1701. }
  1702. world.getMessageHandler().handleMessage(
  1703. MessageUtil.info("Pointcut matching cost (total=" + (totalTime / 1000000) + "ms for " + joinpointCount
  1704. + " joinpoint match calls):"));
  1705. for (String p : joinpointsPerPointcut.keySet()) {
  1706. StringBuffer sb = new StringBuffer();
  1707. sb.append("Time:" + (timePerPointcut.get(p) / 1000000) + "ms (jps:#" + joinpointsPerPointcut.get(p)
  1708. + ") matching against " + p);
  1709. world.getMessageHandler().handleMessage(MessageUtil.info(sb.toString()));
  1710. }
  1711. world.getMessageHandler().handleMessage(MessageUtil.info("---"));
  1712. }
  1713. }
  1714. }
  1715. void recordFastMatch(Pointcut pointcut, long timetakenInNs) {
  1716. typeCount++;
  1717. String pointcutText = pointcut.toString();
  1718. Long typecounter = fastMatchTypesPerPointcut.get(pointcutText);
  1719. if (typecounter == null) {
  1720. typecounter = 1L;
  1721. } else {
  1722. typecounter++;
  1723. }
  1724. fastMatchTypesPerPointcut.put(pointcutText, typecounter);
  1725. Long time = fastMatchTimesPerPointcut.get(pointcutText);
  1726. if (time == null) {
  1727. time = timetakenInNs;
  1728. } else {
  1729. time += timetakenInNs;
  1730. }
  1731. fastMatchTimesPerPointcut.put(pointcutText, time);
  1732. if (world.timingPeriodically) {
  1733. if ((typeCount % perTypes) == 0) {
  1734. long totalTime = 0L;
  1735. for (String p : fastMatchTimesPerPointcut.keySet()) {
  1736. totalTime += fastMatchTimesPerPointcut.get(p);
  1737. }
  1738. world.getMessageHandler().handleMessage(
  1739. MessageUtil.info("Pointcut fast matching cost (total=" + (totalTime / 1000000) + "ms for " + typeCount
  1740. + " fast match calls):"));
  1741. for (String p : fastMatchTimesPerPointcut.keySet()) {
  1742. StringBuffer sb = new StringBuffer();
  1743. sb.append("Time:" + (fastMatchTimesPerPointcut.get(p) / 1000000) + "ms (types:#"
  1744. + fastMatchTypesPerPointcut.get(p) + ") fast matching against " + p);
  1745. world.getMessageHandler().handleMessage(MessageUtil.info(sb.toString()));
  1746. }
  1747. world.getMessageHandler().handleMessage(MessageUtil.info("---"));
  1748. }
  1749. }
  1750. }
  1751. }
  1752. public TypeMap getTypeMap() {
  1753. return typeMap;
  1754. }
  1755. public static void reset() {
  1756. // ResolvedType.resetPrimitives();
  1757. }
  1758. /**
  1759. * Returns the version of ITD that this world wants to create. The default is the new style (2) but in some cases where there
  1760. * might be a clash, the old style can be used. It is set through the option -Xset:itdVersion=1
  1761. *
  1762. * @return the ITD version this world wants to create - 1=oldstyle 2=new, transparent style
  1763. */
  1764. public int getItdVersion() {
  1765. return itdVersion;
  1766. }
  1767. // if not loadtime weaving then we are compile time weaving or post-compile time weaving
  1768. public abstract boolean isLoadtimeWeaving();
  1769. public void classWriteEvent(char[][] compoundName) {
  1770. // override if interested in write events
  1771. }
  1772. }