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up vote 4 down vote favorite

How to convert Vector with string to String array in java?

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What different approaches have you tried so far ? – r15habh Sep 21 '11 at 13:09

7 Answers

up vote 8 down vote accepted

Try Vector.toArray(new String[0]).

P.S. Is there a reason why you're using Vector in preference to ArrayList?

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2  
new String[vector.size()] will give better performance as the new String[0] will be discarded. – Dorus Sep 21 '11 at 13:09
1  
@Dorus: Have you got any actual benchmarks to demonstrate this? – NPE Sep 21 '11 at 13:14
1  
No, was basing this on the javadoc "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. " My own benchmark shows new String[0] is faster shame shame. – Dorus Sep 21 '11 at 13:23
1  
new String[0] is faster when the collection is empty and you have made it a constant (as all empty arrays of a type are basically equal). Otherwise using the actual size() is marginally faster. – Peter Lawrey Sep 21 '11 at 13:33
up vote 3 down vote

here is the simple example

Vector<String> v = new Vector<String>();
String [] s = v.toArray(new String[v.size()]);
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up vote 3 down vote

simplest method would be String [] myArray = myVector.toArray(new String[0]);

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up vote 3 down vote 
Vector<String> vector = new Vector<String>();
String[] strings = vector.toArray(new String[vector.size()]);

Note that it is more efficient to pass a correctly-sized array new String[vector.size()] into the method, because in this case the method will use that array. Passing in new String[0] results in that array being discarded.

Here's the javadoc excerpt that describes this

Parameters:
a - the array into which the elements of this list are to be stored, if it is big enough; otherwise, a new array of the same runtime type is allocated for this purpose.

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I just tried this, looks like new String[0] is somehow faster. Oops :) – Dorus Sep 21 '11 at 13:25
@Dorus - I don't know what you "tried", but what I said remains true - see edited question for javadoc reference – Bohemian Sep 21 '11 at 22:33
up vote 0 down vote

try this example

  Vector token
  String[] criteria = new String[tokenVector.size()];
  tokenVector.toArray(criteria);
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up vote 0 down vote

Try this:

vector.toArray(new String[0]);

Edit: I just tried it out, new String[vector.size()] is slower then new String[0]. So ignore what i said before about vector.size(). String[0] is also shorter to write anyway.

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up vote -1 down vote

Vector.ToArray(T[])

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