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I'm trying to make a program that finds the root of an equation. Everything about my program works just fine, except for the equation itself: it keeps returning wrong values (1, infinity, 0, ...).

This is the function I'm evaluating:

double f(x) {
    return exp(-x)-sin(M_PI*x/2.);
}

For example, f(.3) should be .287, but it returns 1.000. Weird thing is, I tried the exact same code on another computer a while ago and it worked just fine.

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what is the function signature? double f(x) is ill formed. –  Elazar May 28 '13 at 0:51
1  
@Elazar: As of C90, it's not ill formed; it's an old style (pre-ANSI) definition, with the type of x defaulting to int. As of C99, the "implicit int" rule was dropped, and it's a constraint violation, requiring a diagnostic. –  Keith Thompson May 28 '13 at 2:14
    
@KeithThompson thanks. you can see from my answer that I know about the default-to-int - or could have guessed that, since everything defaults to int, for some reason... I assume f(x){ } is a well-formed function that gets an int and returns an int, too :P . I will be happy to know what were K&R thinking. –  Elazar May 28 '13 at 2:28
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4 Answers 4

up vote 7 down vote accepted
double f(x) {
    return exp(-x)-sin(M_PI*x/2.);
}

The type for x is not declared, so it defaults to int.

You pass .3, so it coerced to int and become 0.

exp(-0)-sin(M_PI*0/2.) == exp(0)-sin(0) == 1.0-0 == 1.0

Please find yourself a better compiler, and turn on warnings.

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Probably you should cast your variable. That usually happens to me with divisions.

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double f(double x) {
 ......
}
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That was it. I feel stupid now. :( –  Natasha Rocha May 28 '13 at 0:59
    
Nah, not to worry. Happens to everybody. –  Arthur Dent May 28 '13 at 1:01
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#include <stdio.h>
#include <math.h>

double f(double x) {
    return exp(-x)-sin(M_PI*x/2.);
}

int main(void){
    printf(".3 = %f",f(.3));
    getchar();
    return 0;
}

results: '.3 = 0.286828'

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