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I am very confused about this... Here is an extract from my code..

float m = 0.0, c = 0.0;
printf("toprightx = %d bottomrightx = %d toprighty = %d bottomrighty = %d\n",
    toprightx, bottomrightx, toprighty, bottomrighty);
// find m and c for symmetry line
if (toprightx == bottomrightx) {
  m = (-toprighty + bottomrighty);
}
else {
  m = (-toprighty + bottomrighty) / (toprightx - bottomrightx);
}

c = -toprighty - (m * toprightx);

printf("m = %f and c = %f\n", m, c);

And here is the output:

toprightx = 241 bottomrightx = 279 toprighty = 174 bottomrighty = 321
m = -3.000000 and c = 549.000000

Why is the output rounding m and c? I have declared them as floats so I don't understand why the code is returning integers. The correct value of m should be -3.8684.

(Note that toprightx, bottomrightx, toprighty, bottomrighty have been declared as integers further up in the code.)

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5  
Classic........ –  Mehrdad Jul 17 '11 at 21:48
1  
I'm not a C programmer, but I'm pretty sure it does integer math first (due to the variables being used) and stuffs the result in the float. You'd need to define the other variables as floats. –  D.N. Jul 17 '11 at 21:48
    
Why would 'toprightx, bottomrightx' be different? if 'toprightx' is less shouldn't it be 'topleftx' [or just 'left']? –  Random832 Jul 17 '11 at 21:49
3  
@PaulPRO: Why have you offered a bounty? What are you looking for here? –  Lightness Races in Orbit Sep 22 '11 at 13:07
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7 Answers

up vote 13 down vote accepted

Note that toprightx, bottomrightx, toprighty, bottomrighty have been declared as integers further up in the code.

There's your answer. Calculations that involve only integers are performed in integer math, including divisions. It doesn't matter that the result is then assigned to a float.

To fix this, either declare at least one of the x/y values as float or cast it to float in the calculation.

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That's because you're using only int's on your calculations, so C++ uses integer calculation for them. Just cast one of your int variables to float and you'll be good.

Changing this statement m = (-toprighty + bottomrighty) / (toprightx - bottomrightx); to m = (-toprighty + bottomrighty) / (float)(toprightx - bottomrightx); will do that.

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Here's a hint for you:

m = (-toprighty + bottomrighty) / (toprightx - bottomrightx);
       ^int        ^int              ^int        ^int

All of those operations will be performed using integer division (truncating floating points) and then cast to float. Try instead:

m = float(-toprighty + bottomrighty) / (toprightx - bottomrightx);
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2  
+1 for the h int, and for using a cast on the numerator. A cast on the denominator works too, but that cast is hiding from the human reader of the code. Casting the numerator makes it blatantly obvious to even the casual reader that a floating point result is desired. –  David Hammen Jul 17 '11 at 23:29
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Casting(implicitly, as you're doing) a float to an int will truncate the data that won't fit in the new type.

Note that your data isn't being rounded either, it's being truncated.

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Try casting the divisor to a floating point number, to force the division to use floating point arithmetic:

m = (-toprighty + bottomrighty) / (float)(toprightx - bottomrightx);
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If you are only going to cast one of the numerator or denominator, it is much better to cast the numerator. Why hide that cast from the human reader? –  David Hammen Jul 17 '11 at 23:30
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declare toprightx, bottomrightx, toprighty, bottomrighty as floats or cast them to floats before asking for mixed arithmetic.

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You are performing integer division on this line:

(-toprighty + bottomrighty) / (toprightx - bottomrightx);

Since topright, bottomrighty, toprightx, and bottomrightx are all integers, the result of that equation will also be an integer. After the equaition calculates an integer you are assigning it to a float. It is equivalent to:

float m = -3;

You could do something like this instead:

(-toprighty + bottomrighty + 0.0) / (toprightx - bottomrightx);
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