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I've built a C application, and when I build it, it shows no errors, but when I run it, it gives me the error "Segmentation Fault: 11". If it helps, here is the code I am using:

#include <stdio.h>
int main(char *argv[]) {
printf("The project path is: ./Projects/%c", argv[1]);
return 0;
}
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5 Answers 5

up vote 1 down vote accepted

You have a number of problems:

  • The signature for main is an argument count followed by an array of C strings.
  • You should always check the count before using the array.
  • The array is of strings so you need %s to print them.

This should work:

#include <stdio.h>
int main(int argc, char *argv[]) {
    if (argc < 2)
        fprintf (stderr, "Wrong number of arguments\n");
    else
        printf ("The project path is: ./Projects/%s\n", argv[1]);
    return 0;
}
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I was going throught all the responses, and I made sure to try everyone, but I didn't find that I was meant to be using %s instead of %c on the printf, and from now on, I'll remember to check there is enough command line arguments. Thanks :) –  Matthew Apr 10 '12 at 9:49

The correct main prototyped syntax is

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

Also %c conversion specification in printf prints a character, to print a string use %s.

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  1. Change the signature to int main(int, char*[]);
  2. What arguments are you passing to the process? If you're not passing any argv[1] is out of range
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I am passing 1 argument to the program, which is the project name. But it still doesn't print out the entered string when I use argv[1] –  Matthew Apr 10 '12 at 9:44

In addition to the other suggestions, you may need to revisit your printf format. %c is used to print a single character, and argv[1] is char *. Either use argv[1][0] or some such, or use the string format specifier, %s.

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First, change your main to:

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

Second, you have a mismatch between what you're passing to printf, and what you've told it you're going to pass. argv[1] is a pointer to characters, not a character. You need/want to use the %s conversion to print it out:

printf("The project path is: ./Projects/%s", argv[1]);

In this specific case, it's not really mandatory to check for enough arguments, because even if you don't pass any command line arguments, argv will contain at least argv[0] followed by a null pointer. As such, using argv[1] is safe, but if you haven't passed a command line argument, may print as something like (null).

Nonetheless, you generally want to check the value of argc before using argv. In this case, you can get away with it, but only more or less by accident. Trying to use argv[2] the same way could give undefined behavior.

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