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Why does this code throw NumberFormatException?

int a = Integer.parseInt("1111111111111111111111111111111111111111");

How to get the value of int for that String?

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4  
The String (viewed from the perspective as an int) exceeds Integer.MAX_VALUE (which is 2^31). –  Josh M Sep 3 '13 at 17:25
    
    
That String is a not a valid int. –  Sotirios Delimanolis Sep 3 '13 at 17:26
1  
int has a maximum value of 2,147,483,647. Are you trying to parse a binary representation instead? If you are, you've got 40 bits there, so it still won't fit (int only stores 32). –  Robert Harvey Sep 3 '13 at 17:26
    
There is no "value of int for that String". –  SLaks Sep 3 '13 at 17:28

3 Answers 3

The value that you're attempting to parse is much bigger than the biggest allowable int value (Integer.MAX_VALUE, or 2147483647), so a NumberFormatException is thrown. It is bigger than the biggest allowable long also (Long.MAX_VALUE, or 9223372036854775807L), so you'll need a BigInteger to store that value.

BigInteger veryBig = new BigInteger("1111111111111111111111111111111111111111");

From BigInteger Javadocs:

Immutable arbitrary-precision integers.

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This is because the number string is pretty large for an int . Probably this requires a BigInteger .

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There is no integer value for that string. That's why it's throwing an exception. The maximum value for an integer is 2147483647, and your value clearly exceeds that.

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