While looking in the code of the method:

Integer.toHexString

I found the following code :

public static String toHexString(int i) {
    return toUnsignedString(i, 4);
}

private static String toUnsignedString(int i, int shift) {
    char[] buf = new char[32];
    int charPos = 32;
    int radix = 1 << shift;
    int mask = radix - 1;
    do {
        buf[--charPos] = digits[i & mask];
        i >>>= shift;
    } while (i != 0);

    return new String(buf, charPos, (32 - charPos));
}

The question is, in toUnsignedString, why we create a char arr of 32 chars?

up vote 9 down vote accepted

32 characters is how much you need to represent an int in binary (base-2, shift of 1, used by toBinaryString).

It could be sized exactly, but I guess it has never made business sense to attempt that optimisation.

Because that method is also called by toBinaryString(), and an int is up to 32 digits in binary.

Because the max value for an int in Java is : 2^31 - 1

  • aha, thanks, I forget it. It seemed to be very dump Question. Thanks all guyz. – Muhammad Hewedy Apr 29 '10 at 16:04

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