jdk/src/share/classes/java/util/Map.java
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/*
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 * Copyright 1997-2006 Sun Microsystems, Inc.  All Rights Reserved.
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 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
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 *
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 * This code is free software; you can redistribute it and/or modify it
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 * under the terms of the GNU General Public License version 2 only, as
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 * published by the Free Software Foundation.  Sun designates this
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 * particular file as subject to the "Classpath" exception as provided
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 * by Sun in the LICENSE file that accompanied this code.
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 *
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 * This code is distributed in the hope that it will be useful, but WITHOUT
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 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
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 * FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License
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 * version 2 for more details (a copy is included in the LICENSE file that
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 * accompanied this code).
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 *
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 * You should have received a copy of the GNU General Public License version
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 * 2 along with this work; if not, write to the Free Software Foundation,
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 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
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 *
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 * Please contact Sun Microsystems, Inc., 4150 Network Circle, Santa Clara,
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 * CA 95054 USA or visit www.sun.com if you need additional information or
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 * have any questions.
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 */
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package java.util;
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/**
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 * An object that maps keys to values.  A map cannot contain duplicate keys;
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 * each key can map to at most one value.
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 *
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 * <p>This interface takes the place of the <tt>Dictionary</tt> class, which
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 * was a totally abstract class rather than an interface.
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 *
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 * <p>The <tt>Map</tt> interface provides three <i>collection views</i>, which
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 * allow a map's contents to be viewed as a set of keys, collection of values,
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 * or set of key-value mappings.  The <i>order</i> of a map is defined as
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 * the order in which the iterators on the map's collection views return their
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 * elements.  Some map implementations, like the <tt>TreeMap</tt> class, make
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 * specific guarantees as to their order; others, like the <tt>HashMap</tt>
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 * class, do not.
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 *
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 * <p>Note: great care must be exercised if mutable objects are used as map
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 * keys.  The behavior of a map is not specified if the value of an object is
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 * changed in a manner that affects <tt>equals</tt> comparisons while the
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 * object is a key in the map.  A special case of this prohibition is that it
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 * is not permissible for a map to contain itself as a key.  While it is
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 * permissible for a map to contain itself as a value, extreme caution is
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 * advised: the <tt>equals</tt> and <tt>hashCode</tt> methods are no longer
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 * well defined on such a map.
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 *
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 * <p>All general-purpose map implementation classes should provide two
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 * "standard" constructors: a void (no arguments) constructor which creates an
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 * empty map, and a constructor with a single argument of type <tt>Map</tt>,
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 * which creates a new map with the same key-value mappings as its argument.
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 * In effect, the latter constructor allows the user to copy any map,
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 * producing an equivalent map of the desired class.  There is no way to
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 * enforce this recommendation (as interfaces cannot contain constructors) but
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 * all of the general-purpose map implementations in the JDK comply.
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 *
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 * <p>The "destructive" methods contained in this interface, that is, the
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 * methods that modify the map on which they operate, are specified to throw
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 * <tt>UnsupportedOperationException</tt> if this map does not support the
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 * operation.  If this is the case, these methods may, but are not required
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 * to, throw an <tt>UnsupportedOperationException</tt> if the invocation would
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 * have no effect on the map.  For example, invoking the {@link #putAll(Map)}
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 * method on an unmodifiable map may, but is not required to, throw the
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 * exception if the map whose mappings are to be "superimposed" is empty.
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 *
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 * <p>Some map implementations have restrictions on the keys and values they
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 * may contain.  For example, some implementations prohibit null keys and
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 * values, and some have restrictions on the types of their keys.  Attempting
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 * to insert an ineligible key or value throws an unchecked exception,
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 * typically <tt>NullPointerException</tt> or <tt>ClassCastException</tt>.
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 * Attempting to query the presence of an ineligible key or value may throw an
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 * exception, or it may simply return false; some implementations will exhibit
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 * the former behavior and some will exhibit the latter.  More generally,
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 * attempting an operation on an ineligible key or value whose completion
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 * would not result in the insertion of an ineligible element into the map may
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 * throw an exception or it may succeed, at the option of the implementation.
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 * Such exceptions are marked as "optional" in the specification for this
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 * interface.
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 *
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 * <p>This interface is a member of the
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 * <a href="{@docRoot}/../technotes/guides/collections/index.html">
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 * Java Collections Framework</a>.
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 *
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 * <p>Many methods in Collections Framework interfaces are defined
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 * in terms of the {@link Object#equals(Object) equals} method.  For
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 * example, the specification for the {@link #containsKey(Object)
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 * containsKey(Object key)} method says: "returns <tt>true</tt> if and
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 * only if this map contains a mapping for a key <tt>k</tt> such that
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 * <tt>(key==null ? k==null : key.equals(k))</tt>." This specification should
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 * <i>not</i> be construed to imply that invoking <tt>Map.containsKey</tt>
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 * with a non-null argument <tt>key</tt> will cause <tt>key.equals(k)</tt> to
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 * be invoked for any key <tt>k</tt>.  Implementations are free to
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 * implement optimizations whereby the <tt>equals</tt> invocation is avoided,
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 * for example, by first comparing the hash codes of the two keys.  (The
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 * {@link Object#hashCode()} specification guarantees that two objects with
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 * unequal hash codes cannot be equal.)  More generally, implementations of
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 * the various Collections Framework interfaces are free to take advantage of
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 * the specified behavior of underlying {@link Object} methods wherever the
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 * implementor deems it appropriate.
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 *
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 * @param <K> the type of keys maintained by this map
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 * @param <V> the type of mapped values
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 *
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 * @author  Josh Bloch
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 * @see HashMap
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 * @see TreeMap
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 * @see Hashtable
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 * @see SortedMap
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 * @see Collection
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 * @see Set
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 * @since 1.2
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 */
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public interface Map<K,V> {
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    // Query Operations
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    /**
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     * Returns the number of key-value mappings in this map.  If the
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     * map contains more than <tt>Integer.MAX_VALUE</tt> elements, returns
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     * <tt>Integer.MAX_VALUE</tt>.
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     *
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     * @return the number of key-value mappings in this map
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     */
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    int size();
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    /**
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     * Returns <tt>true</tt> if this map contains no key-value mappings.
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     *
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     * @return <tt>true</tt> if this map contains no key-value mappings
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     */
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    boolean isEmpty();
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    /**
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     * Returns <tt>true</tt> if this map contains a mapping for the specified
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     * key.  More formally, returns <tt>true</tt> if and only if
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     * this map contains a mapping for a key <tt>k</tt> such that
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     * <tt>(key==null ? k==null : key.equals(k))</tt>.  (There can be
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     * at most one such mapping.)
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     *
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     * @param key key whose presence in this map is to be tested
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     * @return <tt>true</tt> if this map contains a mapping for the specified
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     *         key
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     * @throws ClassCastException if the key is of an inappropriate type for
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     *         this map (optional)
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     * @throws NullPointerException if the specified key is null and this map
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     *         does not permit null keys (optional)
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     */
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    boolean containsKey(Object key);
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    /**
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     * Returns <tt>true</tt> if this map maps one or more keys to the
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     * specified value.  More formally, returns <tt>true</tt> if and only if
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     * this map contains at least one mapping to a value <tt>v</tt> such that
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     * <tt>(value==null ? v==null : value.equals(v))</tt>.  This operation
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     * will probably require time linear in the map size for most
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     * implementations of the <tt>Map</tt> interface.
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     *
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     * @param value value whose presence in this map is to be tested
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     * @return <tt>true</tt> if this map maps one or more keys to the
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     *         specified value
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     * @throws ClassCastException if the value is of an inappropriate type for
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     *         this map (optional)
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     * @throws NullPointerException if the specified value is null and this
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     *         map does not permit null values (optional)
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     */
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    boolean containsValue(Object value);
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    /**
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     * Returns the value to which the specified key is mapped,
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     * or {@code null} if this map contains no mapping for the key.
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     *
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     * <p>More formally, if this map contains a mapping from a key
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     * {@code k} to a value {@code v} such that {@code (key==null ? k==null :
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     * key.equals(k))}, then this method returns {@code v}; otherwise
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     * it returns {@code null}.  (There can be at most one such mapping.)
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     *
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     * <p>If this map permits null values, then a return value of
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     * {@code null} does not <i>necessarily</i> indicate that the map
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     * contains no mapping for the key; it's also possible that the map
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     * explicitly maps the key to {@code null}.  The {@link #containsKey
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     * containsKey} operation may be used to distinguish these two cases.
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     *
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     * @param key the key whose associated value is to be returned
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     * @return the value to which the specified key is mapped, or
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     *         {@code null} if this map contains no mapping for the key
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     * @throws ClassCastException if the key is of an inappropriate type for
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     *         this map (optional)
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     * @throws NullPointerException if the specified key is null and this map
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     *         does not permit null keys (optional)
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     */
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    V get(Object key);
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    // Modification Operations
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    /**
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     * Associates the specified value with the specified key in this map
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     * (optional operation).  If the map previously contained a mapping for
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     * the key, the old value is replaced by the specified value.  (A map
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     * <tt>m</tt> is said to contain a mapping for a key <tt>k</tt> if and only
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     * if {@link #containsKey(Object) m.containsKey(k)} would return
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     * <tt>true</tt>.)
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     *
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     * @param key key with which the specified value is to be associated
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     * @param value value to be associated with the specified key
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     * @return the previous value associated with <tt>key</tt>, or
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     *         <tt>null</tt> if there was no mapping for <tt>key</tt>.
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     *         (A <tt>null</tt> return can also indicate that the map
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     *         previously associated <tt>null</tt> with <tt>key</tt>,
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     *         if the implementation supports <tt>null</tt> values.)
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     * @throws UnsupportedOperationException if the <tt>put</tt> operation
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     *         is not supported by this map
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     * @throws ClassCastException if the class of the specified key or value
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     *         prevents it from being stored in this map
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     * @throws NullPointerException if the specified key or value is null
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     *         and this map does not permit null keys or values
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     * @throws IllegalArgumentException if some property of the specified key
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     *         or value prevents it from being stored in this map
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     */
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    V put(K key, V value);
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    /**
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     * Removes the mapping for a key from this map if it is present
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     * (optional operation).   More formally, if this map contains a mapping
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     * from key <tt>k</tt> to value <tt>v</tt> such that
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     * <code>(key==null ?  k==null : key.equals(k))</code>, that mapping
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     * is removed.  (The map can contain at most one such mapping.)
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     *
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     * <p>Returns the value to which this map previously associated the key,
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     * or <tt>null</tt> if the map contained no mapping for the key.
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     *
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     * <p>If this map permits null values, then a return value of
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     * <tt>null</tt> does not <i>necessarily</i> indicate that the map
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     * contained no mapping for the key; it's also possible that the map
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     * explicitly mapped the key to <tt>null</tt>.
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     *
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     * <p>The map will not contain a mapping for the specified key once the
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     * call returns.
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     *
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     * @param key key whose mapping is to be removed from the map
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     * @return the previous value associated with <tt>key</tt>, or
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     *         <tt>null</tt> if there was no mapping for <tt>key</tt>.
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     * @throws UnsupportedOperationException if the <tt>remove</tt> operation
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     *         is not supported by this map
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     * @throws ClassCastException if the key is of an inappropriate type for
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     *         this map (optional)
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     * @throws NullPointerException if the specified key is null and this
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     *         map does not permit null keys (optional)
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     */
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    V remove(Object key);
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    // Bulk Operations
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    /**
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     * Copies all of the mappings from the specified map to this map
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     * (optional operation).  The effect of this call is equivalent to that
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     * of calling {@link #put(Object,Object) put(k, v)} on this map once
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     * for each mapping from key <tt>k</tt> to value <tt>v</tt> in the
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     * specified map.  The behavior of this operation is undefined if the
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     * specified map is modified while the operation is in progress.
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     *
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     * @param m mappings to be stored in this map
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     * @throws UnsupportedOperationException if the <tt>putAll</tt> operation
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     *         is not supported by this map
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     * @throws ClassCastException if the class of a key or value in the
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     *         specified map prevents it from being stored in this map
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     * @throws NullPointerException if the specified map is null, or if
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     *         this map does not permit null keys or values, and the
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     *         specified map contains null keys or values
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     * @throws IllegalArgumentException if some property of a key or value in
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     *         the specified map prevents it from being stored in this map
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     */
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    void putAll(Map<? extends K, ? extends V> m);
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    /**
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     * Removes all of the mappings from this map (optional operation).
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     * The map will be empty after this call returns.
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     *
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     * @throws UnsupportedOperationException if the <tt>clear</tt> operation
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     *         is not supported by this map
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     */
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    void clear();
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    // Views
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    /**
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     * Returns a {@link Set} view of the keys contained in this map.
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     * The set is backed by the map, so changes to the map are
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     * reflected in the set, and vice-versa.  If the map is modified
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     * while an iteration over the set is in progress (except through
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     * the iterator's own <tt>remove</tt> operation), the results of
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     * the iteration are undefined.  The set supports element removal,
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     * which removes the corresponding mapping from the map, via the
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     * <tt>Iterator.remove</tt>, <tt>Set.remove</tt>,
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     * <tt>removeAll</tt>, <tt>retainAll</tt>, and <tt>clear</tt>
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     * operations.  It does not support the <tt>add</tt> or <tt>addAll</tt>
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     * operations.
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     *
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     * @return a set view of the keys contained in this map
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     */
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    Set<K> keySet();
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    /**
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     * Returns a {@link Collection} view of the values contained in this map.
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     * The collection is backed by the map, so changes to the map are
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     * reflected in the collection, and vice-versa.  If the map is
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     * modified while an iteration over the collection is in progress
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     * (except through the iterator's own <tt>remove</tt> operation),
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     * the results of the iteration are undefined.  The collection
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     * supports element removal, which removes the corresponding
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     * mapping from the map, via the <tt>Iterator.remove</tt>,
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     * <tt>Collection.remove</tt>, <tt>removeAll</tt>,
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     * <tt>retainAll</tt> and <tt>clear</tt> operations.  It does not
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     * support the <tt>add</tt> or <tt>addAll</tt> operations.
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     *
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     * @return a collection view of the values contained in this map
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     */
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    Collection<V> values();
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   323
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    /**
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     * Returns a {@link Set} view of the mappings contained in this map.
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     * The set is backed by the map, so changes to the map are
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     * reflected in the set, and vice-versa.  If the map is modified
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     * while an iteration over the set is in progress (except through
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     * the iterator's own <tt>remove</tt> operation, or through the
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     * <tt>setValue</tt> operation on a map entry returned by the
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     * iterator) the results of the iteration are undefined.  The set
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     * supports element removal, which removes the corresponding
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     * mapping from the map, via the <tt>Iterator.remove</tt>,
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     * <tt>Set.remove</tt>, <tt>removeAll</tt>, <tt>retainAll</tt> and
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     * <tt>clear</tt> operations.  It does not support the
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     * <tt>add</tt> or <tt>addAll</tt> operations.
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     *
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     * @return a set view of the mappings contained in this map
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     */
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    Set<Map.Entry<K, V>> entrySet();
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   341
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    /**
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     * A map entry (key-value pair).  The <tt>Map.entrySet</tt> method returns
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     * a collection-view of the map, whose elements are of this class.  The
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     * <i>only</i> way to obtain a reference to a map entry is from the
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     * iterator of this collection-view.  These <tt>Map.Entry</tt> objects are
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     * valid <i>only</i> for the duration of the iteration; more formally,
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     * the behavior of a map entry is undefined if the backing map has been
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     * modified after the entry was returned by the iterator, except through
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     * the <tt>setValue</tt> operation on the map entry.
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     *
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     * @see Map#entrySet()
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     * @since 1.2
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     */
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    interface Entry<K,V> {
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        /**
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         * Returns the key corresponding to this entry.
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         *
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         * @return the key corresponding to this entry
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         * @throws IllegalStateException implementations may, but are not
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         *         required to, throw this exception if the entry has been
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         *         removed from the backing map.
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         */
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        K getKey();
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   365
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        /**
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         * Returns the value corresponding to this entry.  If the mapping
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         * has been removed from the backing map (by the iterator's
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         * <tt>remove</tt> operation), the results of this call are undefined.
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         *
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         * @return the value corresponding to this entry
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         * @throws IllegalStateException implementations may, but are not
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         *         required to, throw this exception if the entry has been
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         *         removed from the backing map.
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         */
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        V getValue();
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   377
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   378
        /**
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   379
         * Replaces the value corresponding to this entry with the specified
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         * value (optional operation).  (Writes through to the map.)  The
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         * behavior of this call is undefined if the mapping has already been
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         * removed from the map (by the iterator's <tt>remove</tt> operation).
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         *
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         * @param value new value to be stored in this entry
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   385
         * @return old value corresponding to the entry
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   386
         * @throws UnsupportedOperationException if the <tt>put</tt> operation
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         *         is not supported by the backing map
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         * @throws ClassCastException if the class of the specified value
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         *         prevents it from being stored in the backing map
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         * @throws NullPointerException if the backing map does not permit
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   391
         *         null values, and the specified value is null
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   392
         * @throws IllegalArgumentException if some property of this value
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   393
         *         prevents it from being stored in the backing map
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   394
         * @throws IllegalStateException implementations may, but are not
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   395
         *         required to, throw this exception if the entry has been
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   396
         *         removed from the backing map.
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   397
         */
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   398
        V setValue(V value);
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diff changeset
   399
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   400
        /**
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   401
         * Compares the specified object with this entry for equality.
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   402
         * Returns <tt>true</tt> if the given object is also a map entry and
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   403
         * the two entries represent the same mapping.  More formally, two
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   404
         * entries <tt>e1</tt> and <tt>e2</tt> represent the same mapping
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   405
         * if<pre>
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   406
         *     (e1.getKey()==null ?
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   407
         *      e2.getKey()==null : e1.getKey().equals(e2.getKey()))  &amp;&amp;
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   408
         *     (e1.getValue()==null ?
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   409
         *      e2.getValue()==null : e1.getValue().equals(e2.getValue()))
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   410
         * </pre>
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   411
         * This ensures that the <tt>equals</tt> method works properly across
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   412
         * different implementations of the <tt>Map.Entry</tt> interface.
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   413
         *
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   414
         * @param o object to be compared for equality with this map entry
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   415
         * @return <tt>true</tt> if the specified object is equal to this map
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   416
         *         entry
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   417
         */
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   418
        boolean equals(Object o);
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   419
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   420
        /**
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   421
         * Returns the hash code value for this map entry.  The hash code
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   422
         * of a map entry <tt>e</tt> is defined to be: <pre>
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   423
         *     (e.getKey()==null   ? 0 : e.getKey().hashCode()) ^
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   424
         *     (e.getValue()==null ? 0 : e.getValue().hashCode())
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   425
         * </pre>
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   426
         * This ensures that <tt>e1.equals(e2)</tt> implies that
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   427
         * <tt>e1.hashCode()==e2.hashCode()</tt> for any two Entries
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   428
         * <tt>e1</tt> and <tt>e2</tt>, as required by the general
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   429
         * contract of <tt>Object.hashCode</tt>.
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   430
         *
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   431
         * @return the hash code value for this map entry
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   432
         * @see Object#hashCode()
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   433
         * @see Object#equals(Object)
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   434
         * @see #equals(Object)
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   435
         */
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   436
        int hashCode();
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   437
    }
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diff changeset
   438
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   439
    // Comparison and hashing
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diff changeset
   440
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parents:
diff changeset
   441
    /**
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   442
     * Compares the specified object with this map for equality.  Returns
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diff changeset
   443
     * <tt>true</tt> if the given object is also a map and the two maps
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diff changeset
   444
     * represent the same mappings.  More formally, two maps <tt>m1</tt> and
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parents:
diff changeset
   445
     * <tt>m2</tt> represent the same mappings if
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   446
     * <tt>m1.entrySet().equals(m2.entrySet())</tt>.  This ensures that the
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   447
     * <tt>equals</tt> method works properly across different implementations
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   448
     * of the <tt>Map</tt> interface.
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   449
     *
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diff changeset
   450
     * @param o object to be compared for equality with this map
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   451
     * @return <tt>true</tt> if the specified object is equal to this map
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   452
     */
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   453
    boolean equals(Object o);
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   454
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parents:
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   455
    /**
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   456
     * Returns the hash code value for this map.  The hash code of a map is
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   457
     * defined to be the sum of the hash codes of each entry in the map's
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   458
     * <tt>entrySet()</tt> view.  This ensures that <tt>m1.equals(m2)</tt>
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parents:
diff changeset
   459
     * implies that <tt>m1.hashCode()==m2.hashCode()</tt> for any two maps
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parents:
diff changeset
   460
     * <tt>m1</tt> and <tt>m2</tt>, as required by the general contract of
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   461
     * {@link Object#hashCode}.
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   462
     *
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   463
     * @return the hash code value for this map
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   464
     * @see Map.Entry#hashCode()
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   465
     * @see Object#equals(Object)
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   466
     * @see #equals(Object)
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   467
     */
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   468
    int hashCode();
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   469
}