7

Working on a sorted list I came to a point I needed to implement a compareTo() function for primitive long values.

I'm not looking for the obvious naive implementation, but was wondering if there's an elegant one-liner code to do that (without creating a new Long(value)).

Maybe something like this:

@Override public int compareTo(MyClass that) {
    return (int) ((value - that.value) >>> 32);
}

Can anyone verify that would work and/or suggest another implementation?

13

One liner code to that:

int res = Long.compare(long x, long y) 

Your code wont work correctly for all values, try it for Integer.MIN_VALUE - Integer.MAX_VALUE and you will get +1

  • That's basically the naive implementation which translates to (x < y) ? -1 : ((x == y) ? 0 : 1) right? I'm wondering if there's something that wouldn't require 2 internal if-then calls, assuming it would be more efficient. – traveh Jun 28 '15 at 14:41
  • 1
    @traveh I would say correctness over performance. Besides, the method might already be optimized by the JDK anyway. – E_net4 Jun 28 '15 at 14:53
  • @E_net4 I agree in general, but for argument's sake let's assume it's a special case where performance is crucial. – traveh Jun 28 '15 at 14:57
  • I am not sure calling the JDK implementation naive is fair. I for one can not think of a more efficient correct implementation. – meriton Jun 28 '15 at 15:24
  • 1
    +1 - As a general rule, use built-in JDK functions for common tasks, because they're more likely to be intrinsified. – kdgregory Jun 28 '15 at 16:21
1

Your algorithm is incorrect, as it returns 0 when asked to compare 1 and 0:

(1 - 0) >>> 32
1 >>> 32
0

In general, I am not sure it is possible to compare longs without branch instructions, because the difference of two longs may not fit in a long without overflowing, which would change the sign of the difference.

I therefore agree with Evgeniy's answer that using the JDK implementation is likely the best approach.

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