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Just trying out some C on some of the project euler questions.

My question is why am I getting a floating point exception at run time on the following code?

#include <stdio.h>
int sum;
int counter;

sum = 0;
counter = 0;

for (counter = 0; counter <= 1000; counter++)
    if (1000 % counter == 0) 
        sum = sum + counter;

printf("Hello World");
printf("The answer should be %d", sum);



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What happens the first time in the loop, when counter is 0, and you divide by it to find the remainder? – Alok Singhal Dec 31 '09 at 17:32

4 Answers 4

up vote 6 down vote accepted

You start with counter = 0 and then do a "mod" with counter. This is a division by zero.

Hope this helps!

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Bingo! Mike, please close your Q. – Hamish Grubijan Dec 31 '09 at 17:26
Thanks! Good old brain fart. – user172632 Dec 31 '09 at 17:27

You are dividing 1000 by zero on the first iteration (calculating a reminder of something divided by 0). Why it crashed with a floating-point exception... I don't know. Maybe the compiler translated it into a floating-point operation. Maybe just a quirk of the implementation.

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I think the "floating point exception" message is operating system related. When the processor encounters a division by zero it executes a trap to the "divide by zero" handler of the system. Interestingly (and curiously), this handler on linux systems displays the "floating point exception" message. – 3lectrologos Dec 31 '09 at 18:26

1000 % 0 is a division by zero

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What happens when counter is 0? You try to compute 1000 % 0. You can't compute anything modulo 0, so you get an error.

Your if statement should read:

if (counter % 1000 == 0)
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The only values for which counter % 1000 is 0 are 0 and 1000, so I'm not sure that the second part of your answer is correct? In fact, since the code appears to be finding and summing factors of 1000, I think the correction OP needs is "for ( counter = 1;" – Tony van der Peet Dec 31 '09 at 18:08

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