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I have the following equals operator:

  bool operator==(const Duration& x, const Duration& y){
        return ( x.hrs == y.hrs, x.mins == y.mins, x.secs == y.secs );
    }

I have also tried:

 bool operator==(const Duration& x, const Duration& y){
        return ( (x.hrs == y.hrs) && (x.mins == y.mins) && (x.secs == y.secs) );
    }

In my main method I have:

  //Arbitrary Durations - Testing
    Duration dTest0 (01,45,12);
    Duration dTest1 (01,35,45);
    Duration dTest2 (01,35,45);
    Duration dTest3 (01,25,05);

    if ( dTest0 == dTest1 ){
        cout<< "broken" << endl;
    }
    else{
        cout<< "working" << endl;
        }

My program keeps outputting "broken" which suggests that dTest0 and dTest1 are infact equal... Where am I going wrong?

Additional: If I use x.getHours == y.getHours... It puts a red line under the "." and says: 'Error: a pointer to a bound function may only be used to call the function`.

Any advice would be appreciated. Thanks.

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1  
The second version is the correct one and it should work. Can you post a minimal example on ideone.com ? –  Luchian Grigore Dec 10 '12 at 15:52
1  
The error message is because if getHours is a method, you have to have x.getHours(). –  Luchian Grigore Dec 10 '12 at 15:53
    
show Duration class... –  neagoegab Dec 10 '12 at 15:53
    
Its working now with x.getHours() I was missing the (). I didn't realise they were required. Im a newbie and self studying from a book which doesnt seem to mention that. Thanks for your time @LuchianGrigore –  binary101 Dec 10 '12 at 15:59
1  
@qwertyRocker Just a heads up, () is the "function call" operator and is required to invoke a function. The only time it isn't required is when storing the value of the function in a pointer (durFunc = Duration::getHours;). So, whenever you need to invoke (execute, run, perform, however you want to look at it) a function make sure to include the () function operator. –  izuriel Dec 10 '12 at 16:12
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2 Answers

up vote 7 down vote accepted

The first implementation will only return true if x.secs == y.secs. The results of the first two comparisons will be discarded. The , operator evaluates to the value of its second operand, which in this case boils down to just x.secs == y.secs.

The second one, however, is correct. If it is not working, then you must be setting the values of hrs, mins, and secs incorrectly in the constructor of Duration.

The problem that you have with getHours is that you need to call it. It is a member function after all. So do x.getHours() instead of x.getHours.

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This was my problem (forgot to add () to it). Thank you for explaining it. I will mark correct as soon as it will allow me. Cheers. –  binary101 Dec 10 '12 at 16:01
    
@qwertyRocker, So what was the problem with the false positives? –  chris Dec 10 '12 at 16:03
    
@chris The problem was exactly as described above by Sftrabbit. I was using x.sec which always returned true and when i tried x.getSecsit wouldnt compile. I was missing the () and I should of been using x.getSecs(). Since changing them to the correct method name, its working as it should :D –  binary101 Dec 10 '12 at 16:08
    
@qwertyRocker, Why wan't x.secs working, though? Is it not the same value as returned by getSecs()? –  chris Dec 10 '12 at 16:18
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The first one is wrong. , does not work that way.

The second one is correct, assuming Duration is reasonable.

You may have a bug in your Duration constructor. I'd even think it is likely.

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