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I have an array of characters declared as:

char *array[size];

When I perform a

printf("%s", array);

it gives me some garbage characters, why it is so?

http://www.cplusplus.com/reference/clibrary/cstdio/printf/

This url indicates printf takes in the format of: `int printf ( const char * format, ... );

#include <stdio.h>
#include <string.h>
#define size 20
#define buff 100
char line[buff];

int main ()
{
    char *array[100];
    char *sep = " \t\n";

    fgets(line, buff, stdin);

    int i;

    array[0] = strtok(line, sep);

    for (i = 1; i < size; i++) {
        array[i] = strtok(NULL, sep);

        if (array[i] == NULL)
            break;
    }

    return 0;
}
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5  
That is an array of pointers, not characters. –  wildplasser Oct 23 '11 at 10:45

4 Answers 4

up vote 1 down vote accepted

Your array is not initialized, and also you have an array of pointers, instead of an array of char's. It should be char* array = (char*)malloc(sizeof(char)*size);, if you want an array of char's. Now you have a pointer to the first element of the array.

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3  
new is not an operator in C –  Mat Oct 23 '11 at 10:47

You declare an array of characters like so:

char foo[size];

You seem to have it mixed up with char *, which is a pointer to a character. You could say

char *bar = foo;

which would make bar point to the contents of foo. (Or, actually, to the first character of foo.)

To then print the contents of the array, you can do one of the following:

// either print directly from foo:
printf("%s", foo);
// or print through bar:
printf("%s", bar);

Note, however, that C performs no initialization of the contents of variables, so unless you specifically set the contents to something, you'll get garbage. In addition, if that garbage doesn't happen to contain a \0; that is, a char with value 0, it will keep on outputting past the end of the array.

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1  
&foo is of type char(*)[size]: it isn't really compatible with char*, the type of bar. You could say: char *bar = foo; –  pmg Oct 23 '11 at 11:01
    
@pmg: That'll teach me not to write C code without testing it. Fixed, thanks. :) –  Sebastian Paaske Tørholm Oct 23 '11 at 11:15

Why are we making such a simple thing sound so difficult?

char array[SIZE];
... /* initialize array */
puts(array);   /* prints the string/char array and a new line */
/* OR */
printf("%s", array); /* prints the string as is, without a new line */

The char in array after the end of what you want to be your string (ie. if you want your string to read "Hello" that would be the next char after the 'o') must be the terminating NUL character '\0'. If you use a C function to read input that would automatically be appended to the end of your buffer. You would only need to worry about doing it manually if you were individually writing characters to your buffer or something for some reason.

EDIT: As with pmg's comment, the '\0' goes wherever you want the string to end, so if you wanted to shorten your string you could just move it up closer to the front, or to have an empty string you just have array[0] = '\0';. Doing so can also be used to tokenise smaller strings inside a single buffer, just as strtok does. ie. "Part1\0Part2\0Part3\0". But I think this is getting away from the scope of the question.

ie. you wanted to store the first 3 chars of the alphabet as a string (don't know why anyone would do it this way but it's just an example):

char array[4];
array[0] = 'a';
array[1] = 'b';
array[2] = 'c';
array[3] = '\0';
printf("%s\n", array);

If you have something like char array[] = "Hello"; the '\0' is automatically added for you.

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1  
-1: printf(array) does not "print the string as is". It interprets the string causing Undefined Behaviour it it contains any conversion specification. Use printf("%s", array) instead. –  pmg Oct 23 '11 at 11:24
    
woops my bad, c+p the puts(array) and changed it to printf. That was a pretty bad fail, prone to format string exploits too. –  AusCBloke Oct 23 '11 at 11:25
1  
Just revoked the -1. Now there's just a minor point in your answer: the zero terminator does not need to be the last char in the array. This is perfectly valid (though useless): char foo[7] = "foo\0bar"; --- foo[6] is 'r'; puts(foo); outputs "foo\n" –  pmg Oct 23 '11 at 11:30
    
Yeah I guess I didn't structure what I was saying very well, let me fix that. Cheers. –  AusCBloke Oct 23 '11 at 11:35
char *array[size];

array is not a char * with that, it's more like a char ** (pointer to an array of chars, with is similar to pointer to pointer to char).

If all you need is a C string, either:

char array[size];

and make sure you 0-terminate it properly, or

char *array;

and make sure you properly allocate and free storage for it (and 0-terminate it too).

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what do you mean by zero terminate the pointer to array of chars –  optimus Oct 23 '11 at 10:48
    
Strings in C are just an array of char values. The end of the string is signified by a char with the value 0. –  Mat Oct 23 '11 at 10:50
    
@liangteh In C all the string must be null terminated, so the last character must be a '\0' (a char of value 0) –  xanatos Oct 23 '11 at 10:50
    
there is no way I can use printf to print the array except for looping the array and check for NULL ? –  optimus Oct 23 '11 at 10:52
1  
That's not it at all. printf will do that if you pass it a char* and use the %s format specifier. BUT if your string doesn't end with a 0 (this is not a pointer, it is a char), it will go on and print whatever is stored in memory after your string, causing undefined behavior. –  Mat Oct 23 '11 at 10:54

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