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In Java how do you check if a number is a cube ?

The number can be between the range −2,147,483,648..2,147,483,647

Say for instance given the following numbers we can see that they are cubes

8 (2^3) - True
27 (3^3) - True
64 (4^3) - True
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thats what i mean sorry. – user2837251 Oct 2 '13 at 22:35
changed the question to reflect it – user2837251 Oct 2 '13 at 22:36
And in general this kind of check is a mathematical problem not a software one. While there is occasionally a "trick" or two one can use, they don't tend to be language-specific. – Hot Licks Oct 2 '13 at 22:37
@nachokk - I think he'd have to use cube root. And since the implementation of cube root would be floating-point, an integer result is not guaranteed. – Hot Licks Oct 2 '13 at 22:38
@HotLicks: rounding it to the nearest int should fix it though, right? The margin of error shouldn't be as high as .5. – Jeroen Vannevel Oct 2 '13 at 22:39

5 Answers 5

(-1291)^3 and 1291^3 are both already outside the range of an int in Java. So there are 2581 such numbers anyway. Honestly a lookup table might be the easiest and fastest thing.

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Small remark: 1290^3=2146689000 < Integer.MAX_VALUE (and -1290^3 > MIN_VALUE) – Benno Richters Aug 25 '14 at 10:29
Oops! yeah they're the last cubes not outside this range. I'll fix. – Sean Owen Aug 25 '14 at 10:33

Try to take a cubic root, round the result and take its cube:

int a = (int) Math.round(Math.pow(number_to_test, 1.0/3.0));
return (number_to_test == a * a * a);    
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Try some Math (java.lang.Math):

boolean isCube(double input) {
    double cubeRoot = Math.cbrt(input); // get the cube root
    return Math.round(cubeRoot) == cubeRoot; // determine if number is integral
    // Sorry for the stupid integrity determination. I tried to answer fast 
    // and really couldn't remember the better way to do that :)
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Note that this declares Double.POSITIVE_INFINITY a cube. Not that that's any more correct than declaring it not a cube – Eric Oct 2 '13 at 22:53
@Eric of course user must read some javadoc to deal with such special cases. But overall it is better than inventig a new bicycle. – oleg.lukyrych Oct 2 '13 at 22:57
You're assuming that the cube root routine will be exact for integers. It can be off by one ulp. – Hot Licks Oct 3 '13 at 0:14
I tried it and it does work for all ints, and well past it actually. – Sean Owen Oct 3 '13 at 7:07

Well, you could do the following (pseudocode)

double x = number;
int b = floor (x ^ (1.0/3.0))  // ^ is exponentiation
if (b*b*b == number || (b+1)*(b+1)*(b+1) == number)
    // it is a cube
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// ^ is not exponentiation in Java -- Math.pow() is. And there's a Math.cbrt() function. – Sean Owen Oct 2 '13 at 22:52
@SeanOwen: "pseudocode" – Eric Oct 2 '13 at 22:52
@SeanOwen I made it a habit to not write copy-pasteable code on SO. Like it or not. Besides, the java language is not suitable to convey a mathematical idea, so I prefer a more relaxed notation. – Ingo Oct 2 '13 at 22:55
@Ingo: import static java.lang.Math.* gets you pretty close – Eric Oct 2 '13 at 22:56
This isn't pseudo-code to me, since it's 90% the way to Java and formatted to be code. I think it's more confusing on SO to paste almost-Java. Why write bbb instead of b^3 for example, if this is the logic? – Sean Owen Oct 3 '13 at 6:53

Add a loop:

int inputNum = //whatever ;
int counter = 1;
boolean po3 = false;
while(counter<inputNum || po3==true){
  po3 = true;
 } else {
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This misses 0 and negative values, and continues far too long -- after counter^3 exceeds inputNum you can stop. – Sean Owen Oct 2 '13 at 22:47

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