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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?

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3 Answers 3

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.

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aha, thanks, I forget it. –  Muhammad Hewedy Apr 29 '10 at 16:03

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

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aha, thanks, I forget it. –  Muhammad Hewedy Apr 29 '10 at 16:04

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

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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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