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I am wondering complexity of following if statement

if (isTrue()) //case 1

VS

if(isTrue()==true) //case 2

And isTrue defined as

boolean isTrue(){
//lots of calculation and return true false based on that.
 return output;
}

I was thinking, complexity of if (isTrue()) is lower then if(isTrue()==true) because on case 2 require additional comparison for equals.

What about space complexity?

Any different thought?

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1  
How is there an additional comparison? –  Dave Newton Mar 16 '13 at 19:20
    
because compiler have to check function output with its right side value and then to test with if condition –  minhaz Mar 16 '13 at 19:24
1  
@minhaz Most compilers would probably just optimize out those ifs entirely, since isTrue will only ever return true. –  Jeffrey Mar 16 '13 at 19:28
1  
@minhaz There's no difference between if (foo) and if (foo == true). if (foo) still has to check foo for true. –  Dave Newton Mar 16 '13 at 19:32
1  
@DaveNewton That's not correct. By the same logic you give, 'if (foo == true)' has to check 'foo == true' for being true. A compiler would be expected to optimise all the excess crud away but it's not the same thing. –  EJP Mar 17 '13 at 0:20

3 Answers 3

Both of them are same in speed/space. But second way is weird for C/C++ programmers.

The different is, second way is just less readable.

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5  
and weird for Java programmers too. –  TofuBeer Mar 16 '13 at 19:21

They are equivalent. And when doing global optimizations condition is removed altogether.

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if complier does the optimization that also increase processing right? –  minhaz Mar 16 '13 at 19:39

The second case (checking for ==true) can get problematic if you or someone else redefines the value of true.

Let's say that we have the following C code:

#define true 2

bool isEqual(int a, int b)
{
    return (a == b);
}

if (isEqual(5, 5)) {
    printf("isEqual #1\n");
}

if (isEqual(5, 5) == true) {
    printf("isEqual #2\n");
}

The output from this code will be

isEqual #1


So the shorter form where you leave out ==true is preferable not only because it leads to less verbose code but also because you avoid potential problems like these.

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