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I am having trouble with a C++ object-orientated script. When I create an object, I wish to calculate an AttributeQ based on its attributes MyAValue, MyBValue, and MyCValue.

While using the Visual 2010 debugger, I noticed that TempAttribueQ seems to always be 0 (except before it is initialized of course). Assuming Delta != 0, BVal == Maximum, and DeltaA == DeltaC, then TempAttribueQ should be 1/3 not 0.

At first I thought it was a scope problem, but the variable is defined outside the if-else statements. I have tried initializing TempAttribueQ as some outrageous number, which it keeps up until the if-else statements when it becomes 0 when it shouldn't.

This is my code...

void SetMyAttribueQ(){

    double TempAVal = MyAValue;
    double TempBVal = MyBValue;
    double TempCVal = MyCValue;

    double Minimum = min(min(TempAVal, TempBVal), TempCVal);
    double Maximum = max(max(TempAVal, TempBVal), TempCVal);
    double Delta = Maximum - Minimum;

    double DeltaA = 0;
    double DeltaB = 0;
    double DeltaC = 0;

    double TempAttribueQ = 0;

    if(Delta == 0) {
        MyAttribueQ = TempAttribueQ; // this->SetMyAttribueQ(TempAttribueQ);
    }
    else {
        DeltaA = /* (a removed equation goes here... */
        DeltaB = /* (a removed equation goes here... */
        DeltaC = /* (a removed equation goes here... */

        if(AVal == Maximum)
            TempAttribueQ = (DeltaC - DeltaB);
        else if(BVal == Maximum)
            TempAttribueQ = (1/3) + (DeltaA - DeltaC);
        else
            TempAttribueQ = (2/3) + (DeltaB - DeltaA);

        MyAttribueQ = TempAttribueQ;
    }
}

What is preventing TempAttribueQ from getting a value of 1/3 or 2/3? Or, what is causing it to be set to be set to 0?

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4 Answers 4

up vote 3 down vote accepted

When you divide one integer by another, you get an integer result. Change either or both the constants to non-integer to fix it - C++ rules will result in the other being converted to floating point before the division takes place. All of the following will work:

  • 1.0 / 3.0
  • 1 / 3.0
  • 1.0 / 3

An integer will get converted back to a double invisibly, which is why you weren't seeing any errors in your code.

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Thanks, @Mark (and everyone else who replied). Ah, how all too often it's the simplest things that trip us up or slip our mind... I change the constants and the function works as intended. –  anon Sep 9 '11 at 23:49

Try 1.0/3.0 and 2.0/3.0. 1/3 and 2/3 are 0 due to integer division.

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@nightcracker: this question is about C++ –  Lie Ryan Sep 9 '11 at 22:15
    
@Lie Ryan: Yeah, fail, I noticed and I did delete my comment, but it didn't register or something >.< I removed it now though. –  orlp Sep 9 '11 at 22:16
    
I feel like I missed out on a good conversation. –  Patrick87 Sep 10 '11 at 0:01

1/3 == 0 due to integer division, which is set to TempAttribueQ.

You need to do 1./3 which will produce 0.3333333..

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1 is an integer and 3 is an integer so 1/3 uses integer arithmetic.

You want to use 1.0/3.0 to force double precision arithmetic.

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