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#include <stdio.h>
#include <string.h>
#include <stdlib.h>
#include <math.h>

int main(int argc, char *argv[]) {

printf("Write in this format: <operand1> <operator> <operand2>\n");
double result, op1, op2;

op1 = atof(argv[1]);
op2 = atof(argv[3]);

if(argv[2][0]=='+')
    result = op1 + op2;
if(argv[2][0]=='-')
    result = op1 - op2;
if(argv[2][0]=='/')
    result = op1 / op2;
if(argv[2][0]=='x')
    result = op1 * op2;

printf("Result: %f", result);

return 0;
}

I'm trying to make this work but it's causing a Segmentation fault. I've checked my code and I just can't find anything wrong with it. It's supposed to work like a simple calculator. And then I tried the man page for argv or argc and it says, "No manual entry for..." something like that. I mean, isn't there supposed to be one? Or do I have to update something? I'd appreciate it if anyone would reply whatever he/she think/s that can help. Thanks in advance!

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I think that this post is off-topic, but I'll help you anyway. What is the command that call to your program into your question? Why are you using argv[2][0] instead of argv[2]? Are you sure that your atof() function is working? –  Lucio Mar 11 '13 at 1:17
    
Oh, stupid me. It's supposed to be 2. It's working now. Thanks! –  Niks Mar 11 '13 at 1:39
    
This looks like C, not command line arguments to me. This MAY have been better asked on SO, I don't see anything to do with ubuntu at all here –  Journeyman Geek Mar 11 '13 at 2:16
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migrated from askubuntu.com Mar 11 '13 at 2:18

This question came from our site for Ubuntu users and developers.

1 Answer

Your code have a syntaxis/concept error in the four conditionals.

You are requesting argv[2][0] but it should be argv[2] instead:

  • argv[2][0] means: the position cero of a pointer to char (bad) in the third position in the array
  • argv[2] means: the content of the pointer to char that is in the third position in the array

That is why you get the Segmentation fault error.

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