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Why is m always = 0? The x and y members of someClass are integers.

float getSlope(someClass a, someClass b)
{           
    float m = (a.y - b.y) / (a.x - b.x);
    cout << " m = " << m << "\n";
    return m;
}
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7 Answers 7

up vote 18 down vote accepted

Integer division occurs, then the result, which is an integer, is assigned as a float. If the result is less than 1 then it ends up as 0.

You'll want to cast the expressions to floats first before dividing, e.g.

float m = (float)(a.y - b.y) / (float)(a.x - b.x);
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1  
..And watch out for division by zero! –  GrahamS Mar 28 '11 at 9:18
    
@GrahamS - It's not that dangerous to divide by 0, when we're talking about floating point numbers. You could safely divide any float number by 0.0 or -0.0, will give you inf. But yes, if it's unexpected, it will cause problems. –  Kiril Kirov Mar 28 '11 at 9:45
    
@Kiril Kirov: Yeah it won't cause an exception/crash like integer division-by-zero does, but it leaves you with either +INF, -INF or NaN which will probably cause the OP further problems when he tries to use m. –  GrahamS Mar 28 '11 at 9:51
    
@GrahamS - yep, I absolutely agree with that (: –  Kiril Kirov Mar 28 '11 at 9:54
    
@BoltClock isn't it enough to cast any one of the elements of the expression to float? e.g. (static_cast<float>(a.y)-b.y)/(a.x-b.x) –  juanchopanza Mar 28 '11 at 10:08

You need to use cast. I see the other answers, and they will really work, but as the tag is C++ I'd suggest you to use static_cast:

float m = static_cast< float >( a.y - b.y ) / static_cast< float >( a.x - b.x );
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he does an integer divide, which means 3 / 4 = 0. cast one of the brackets to float

 (float)(a.y - b.y) / (a.x - b.x);
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You should be aware that in evaluating an expression containing integers, the temporary results from each stage of evaluation are also rounded to be integers. In your assignment to float m, the value is only converted to the real-number capable float type after the integer arithmetic. This means that, for example, 3 / 4 would already be a "0" value before becoming 0.0. You need to force the conversion to float to happen earlier. You can do this by using the syntax float(value) on any of a.y, b.y, a.x, b.x, a.y - b.y, or a.x - b.x: it doesn't matter when it's done as long as one of the terms is a float before the division happens, e.g.

float m = float(a.y - b.y) / (a.x - b.x); 
float m = (float(a.y) - b.y) / (a.x - b.x); 
...etc...
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if (a.y - b.y) is less than (a.x - b.x), m is always zero.

so cast it like this.

float m = ((float)(a.y - b.y)) / ((float)(a.x - b.x));
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Because (a.y - b.y) is probably less then (a.x - b.x) and in your code the casting is done after the divide operation so the result is an integer so 0.

You should cast to float before the / operation

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You are performing calculations on integers and assigning its result to float. So compiler is implicitly converting your integer result into float

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