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I have a very simple program to print the chars in a string but for some reason it is not working:

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

void * print_chars(char *process_string) {
    int i;
    int string_len;

    string_len = strlen(process_string);

    printf("String is %s, and its length is %d", process_string, string_len);

    for(i = 0; i < string_len; i++) {
        printf(process_string[i]);
    }

    printf("\n");
}

int main(void) {
    char *process_string;

    process_string = "This is the parent process.";

    print_chars(process_string);

    return 0;
}

When I run it in Netbeans, I get the following:

RUN FAILED (exit value 1, total time: 98ms)

If I remove the line

printf(process_string[i]);

the program runs but nothing prints out to the console (obviously).

Any ideas what I'm missing here?

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4  
By putting that C++ tag there, you should be accepting when someone tells you to just use std::string and std::string::length. –  chris Nov 19 '12 at 16:08
3  
Are you paying attention to the warnings you get when you try to compile? –  antlersoft Nov 19 '12 at 16:09
1  
Why is your print_chars function returning a void *?? And to print the string, use printf( "%s", process_string ); –  Praetorian Nov 19 '12 at 16:10
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3 Answers

up vote 4 down vote accepted

There are a couple of problems.

One is that you're not seeing any output from the printf("String is %s, and its length is %d", ...). This is because standard output is line buffered by default, and you are not including a newline, so it never actually decides that there's a line ready to print. If you change the format string to add a \n, you will see the output from this command.

The second is that you are passing a char into the first argument of printf(), where it expects a char *. This causes it to crash, as it tries to interpret that character as a pointer. You want to pass something like printf(process_string) instead. However, it's generally a bad idea to pass a variable string directly into the first argument of printf(); instead, you should pass a format string that includes %s, and pass the string in as the corresponding argument: printf("%s\n", process_string). Or, if you want to print it character by character, printf("%c", process_string[i]), followed by a printf("\n") to flush the buffer and actually see the output. Or if you're doing it character by character, putchar(process_string[i]) will be simpler than printf().

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You need a format in the line

printf(process_string[i]);

i.e.

printf("%c", process_string[i]);
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2  
Yes, I'm amazed the posted code actually compiled. But maybe the posted code isn't correct either. –  john Nov 19 '12 at 16:10
    
So am I - wish people read the manual page and understand it. –  Ed Heal Nov 19 '12 at 16:12
    
That's correct solution, but you've failed to explain why the old code was wrong: the computer is trying to interpret the characters as memory addresses, and reading from an address that does not exist causes a program crash. –  ams Nov 19 '12 at 16:17
    
Yes I did - I mentioned that you need a format in the line in question. I am pretty sure that the person can look up the library function. He did ask what is missing. –  Ed Heal Nov 19 '12 at 16:33
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printf() expects, as first parameter, a pointer to char. What you are passing is a char, not a pointer to one.

Anyway, printf() is not the function to use here. Try putc()...

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