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I'm building a program for the Euler projects question 3, and while that might not really matter as a result I'm current trying to make this code take a number and test if it is prime or not. Now then before I get to troubleshoot the function it gives me the error "floating point exception" right after inputting the number. Here's the code:

int main()
{
    int input;
    cout << "Enter number: " << endl;
    cin>> input;
    int i = input/2;
    int c;
    for (i>0; i--;) {
        c= input%i;
        if (c==0 || i == 1)
            cout << "not prime" << endl;
        else
            cout << "prime" << endl;
    }
    return 0;
}

so essentially why is it giving me a floating point exception and what does that even mean?

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3  
Something is wrong with your for loop. –  Lazer Nov 21 '10 at 7:24
    
the floating point exception has many reasons but depending on your code, I do agree with Pete and I think c= input%i; is the cause of the problem and I hope my answer helps you.. –  TopDeveloper Nov 21 '10 at 7:38

3 Answers 3

up vote 10 down vote accepted

A "floating point number" is how computers usually represent numbers that are not integers -- basically, a number with a decimal point. In C++ you declare them with float instead of int. A floating point exception is an error that occurs when you try to do something impossible with a floating point number, such as divide by zero.

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Okay, well let me make sure I understand my own code before I try to fix it. The for lop will only execute if i > 0 right? Then the only time it will divide later is c= input%i So it should never divide by 0? –  Samuraisoulification Nov 21 '10 at 7:29
    
If you look carefully at your loop, you'll see there is a way that its body can get run once with i == 0. –  Crashworks Nov 21 '10 at 7:30
    
if i == 1? So a for loop's increment/decrement happens at the end of the loop even though you write it at the top? –  Samuraisoulification Nov 21 '10 at 7:35
    
Yes, thats the entire reason for a for loop. The loop runs, then it does something (in your case i--) then it runs the loop again until the condition at the top is no longer true. –  Pete Nov 21 '10 at 7:37
1  
@Crashworks: they appear also on integer arithmetic. And actually more often, since default options on many compilers is to generate programs where FPE are not raised for floating point operations (1/0 = inf, etc). However, you cannot avoid SIGFPE for integer arithmetic. Therefore, when SIGFPE is raised, the culprit is almost always integer arithmetic (this is the case here). The answer is incorrect, since the behaviour here has nothing to do with floating point numbers, but with integer division by zero. –  Alexandre C. May 21 '11 at 9:44
for (i>0; i--;)

is probably wrong and should be

for (; i>0; i--)

instead. Note where I put the semicolons. The condition goes in the middle, not at the start.

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Lots of reasons for a floating point exception. Looking at your code your for loop seems to be a bit "incorrect". Looks like a possible division by zero.

for (i>0; i--;){
c= input%i;

Thats division by zero at some point since you are decrementing i.

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so the for loop automatically decrements i the first time through? –  Samuraisoulification Nov 21 '10 at 7:31
    
I think you need to make some use of breakpoints and try to think through the solution a bit more. You dont want us to just give you an answer that will work, do you? –  Pete Nov 21 '10 at 7:36

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