-3

This program is about printing the float value t for different values of i, but it is printing same value every time. Even though the value of t is changing it is always printing zero for every value of n.

Why is this happening?

#include <stdio.h>

int main(){
    float n;
    float sum=0,t,s=1,i;
    scanf("%f",&n);
    for(i=0;i<n;i++){

        t=(100/(1+2i));
        printf("\n%f",t);
    }
}

Input: 5

Output:

0.000000
0.000000
0.000000
0.000000
0.000000

Here is that result in ideone.com.

6
5

The problem is here:

t=(100/(1+2i));

It seems you were intending to multiply 2 by i, but forget the multiplication operator *. What you have instead is 2i which is actually a complex number constant. Note that this is not standard C but a GCC extension (-pedantic switch raises a warning).

Add the multiplication operator and it should work as expected.

t=(100/(1+2*i));
6
  • also maybe convert to float else you get integer division. – Jean-François Fabre Aug 31 '18 at 17:47
  • @Jean-FrançoisFabre Not needed since i is declared as float. – dbush Aug 31 '18 at 17:49
  • true. Can you add that this is a gcc extension and not in the C norm? – Jean-François Fabre Aug 31 '18 at 18:43
  • @Jean-FrançoisFabre Done. – dbush Aug 31 '18 at 18:49
  • @Jean-FrançoisFabre If you save the result in a float complex you'll get a result of 0 - 50i. Not sure I understand the conversion. Changing 100 to 100.0 gets the expected result of 20 - 40i. – dbush Aug 31 '18 at 19:20

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