12

Here ,I am trying to convert map values into String array but i am getting

Error

ERROR/AndroidRuntime(23588): Caused by: java.lang.ClassCastException: [Ljava.lang.Object;

Code

Map<String,String> contactNumber = new HashMap<String,String>(); 

String results [] =  (String[]) contactNumber.values().toArray();
25

You should use the other toArray(T[] a) method.

String[] result = contactNumber.values().toArray(new String[0]);
  • But the order got changed. How can I fetch values in the same order as in the map – Jarin Rocks Feb 13 '19 at 8:16
  • @JarinRocks HashMap doesn't have ordering. If you would like to preserve insertion order, use LinkedHashMap. Other ordering use TreeMap. – user802421 Feb 13 '19 at 8:37
  • Thanks I found it some where and done its working now. – Jarin Rocks Feb 13 '19 at 9:38
7

You can't perform the cast like this. Instead, call the other toArray method:

String[] result = contactNumber.values().toArray(new String[0]);
4

You are invoking the toArray() method on the Collection interface which returns an Object array. Switching instead to toArray(T[] a) should help you solve the problem. The javadocs should help clarify the answer further.

/**
 * Returns an array containing all of the elements in this collection.
 * If this collection makes any guarantees as to what order its elements
 * are returned by its iterator, this method must return the elements in
 * the same order.
 *
 * <p>The returned array will be "safe" in that no references to it are
 * maintained by this collection.  (In other words, this method must
 * allocate a new array even if this collection is backed by an array).
 * The caller is thus free to modify the returned array.
 *
 * <p>This method acts as bridge between array-based and collection-based
 * APIs.
 *
 * @return an array containing all of the elements in this collection
 */
Object[] toArray();

/**
 * Returns an array containing all of the elements in this collection;
 * the runtime type of the returned array is that of the specified array.
 * If the collection fits in the specified array, it is returned therein.
 * Otherwise, a new array is allocated with the runtime type of the
 * specified array and the size of this collection.
 *
 * <p>If this collection fits in the specified array with room to spare
 * (i.e., the array has more elements than this collection), the element
 * in the array immediately following the end of the collection is set to
 * <tt>null</tt>.  (This is useful in determining the length of this
 * collection <i>only</i> if the caller knows that this collection does
 * not contain any <tt>null</tt> elements.)
 *
 * <p>If this collection makes any guarantees as to what order its elements
 * are returned by its iterator, this method must return the elements in
 * the same order.
 *
 * <p>Like the {@link #toArray()} method, this method acts as bridge between
 * array-based and collection-based APIs.  Further, this method allows
 * precise control over the runtime type of the output array, and may,
 * under certain circumstances, be used to save allocation costs.
 *
 * <p>Suppose <tt>x</tt> is a collection known to contain only strings.
 * The following code can be used to dump the collection into a newly
 * allocated array of <tt>String</tt>:
 *
 * <pre>
 *     String[] y = x.toArray(new String[0]);</pre>
 *
 * Note that <tt>toArray(new Object[0])</tt> is identical in function to
 * <tt>toArray()</tt>.
 *
 * @param a the array into which the elements of this collection are to be
 *        stored, if it is big enough; otherwise, a new array of the same
 *        runtime type is allocated for this purpose.
 * @return an array containing all of the elements in this collection
 * @throws ArrayStoreException if the runtime type of the specified array
 *         is not a supertype of the runtime type of every element in
 *         this collection
 * @throws NullPointerException if the specified array is null
 */
<T> T[] toArray(T[] a);

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.