Utilities.getDistance(uni, enemyuni) <= uni.getAttackRange()

Utilities.getDistance returns double and getAttackRange returns int. The above code is part of an if statement and it needs to be true. So is the comparison valid?

Thanks

  • Did you try it? Did it work? – Rohit Jain Nov 8 '12 at 20:26
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    Have you tried it your self?? A simple test in java code could have sufficed. check my answer for the same – Fr_nkenstien Nov 8 '12 at 20:31
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    It is valid, but you may get interesting results in edge cases if you don't specify a precision on the double... – PinnyM Nov 8 '12 at 20:31
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    With the caveat from @PinnyM, I should point out that converting int to double is lossless, but promoting long to double is lossy. That is, there are some values of type long for which no exact value of type double exists, so the conversion will lose information. Not so with int to double, but also true with int to float. – Nathan Ryan Nov 8 '12 at 20:36
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    @NathanD.Ryan Yes, I was actually testing with the correct stuff, but simplified it the wrong way for the comment. In the meantime I fixed another minor issue with my code, so here is the smallest long that fails: long l = (1L << 53) + 1; double d = l; System.out.println((long)d == l); – Marko Topolnik Nov 8 '12 at 21:22
up vote 59 down vote accepted

Yes, it's valid - it will promote the int to a double before performing the comparison.

See JLS section 15.20.1 (Numerical Comparison Operators) which links to JLS section 5.6.2 (Binary Numeric Promotion).

From the latter:

Widening primitive conversion (§5.1.2) is applied to convert either or both operands as specified by the following rules:

  • If either operand is of type double, the other is converted to double.

  • ...

When performing operations (including comparisons) with two different numerical types, Java will perform an implicit widening conversion. This means that when you compare a double with an int, the int is converted to a double so that Java can then compare the values as two doubles. So the short answer is yes, comparing an int and a double is valid, with a caveat.

The problem is that that you should not compare two floating-piont values for equality using ==, <=, or >= operators because of possible errors in precision. Also, you need to be careful about the special values which a double can take: NaN, POSITIVE_INFINITY, and NEGATIVE_INFINITY. I strongly suggest you do some research and learn about these problems when comparing doubles.

  • Funny thing is this is my professors code. But yea I will investigate the subject now – Tasos Nov 8 '12 at 20:35
  • @Crone For a school assignment, you probably can ignore these edge cases, but you should still know about them. Choosing to ignore them is preferrably than complete ignorance. – Code-Apprentice Nov 8 '12 at 20:39
  • I don't see anything wrong with comparing a double with <= or >= against an int. Only exact equality might be questionable. – Marko Topolnik Nov 8 '12 at 20:43
  • @MarkoTopolnik <= or >= may give undesirable results in some cases, just like == does. – Code-Apprentice Nov 8 '12 at 20:45
  • "Some cases" is not as unpredictable as you picture it and when calculating Euclidian distance, it would be perfectly alright. – Marko Topolnik Nov 8 '12 at 20:51

This should be fine. In floating point operation/comparisons, if one argument is floating/double then other one being int is also promoted to the same.

yes it is absolutely valid compare int datatype and double datatype..

int i =10;
double j= 10.0;
 if (i==j)
{
System.out.println("IT IS TRUE");
}

It will be ok.

Java will simply return true of the numerical value is equal:

    int n = 10;
    double f = 10.0;
    System.out.println(f==n);

The code above prints true.

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    You must be careful (and usually even avoid) comparing floating-point values with the == operator. – Code-Apprentice Nov 8 '12 at 20:37
  • And what do you want to compare these 2 values with ? – Mickaël A. Nov 8 '12 at 20:41
  • All ints are exactly representable as double. – Marko Topolnik Nov 8 '12 at 20:41

Yes it valid, and your code should work as expected without any glitch, but this is not the best practice, static code analyzers like SonarQube shows this as a "Major" "Bug",

Major Bug img from sonarQube

Major Bug description from sonarQube

so, the right way to do this can be,

Double.compare(val1,val2)==0 

if any parameter are not floating point variable, they will be promoted to floating point.

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