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I'm trying to append a char to string.

I tried

char *string = malloc(strlen(text) * sizeof (char));
for(i=0, i <n; i++)
{
    j = i;
    while (j <= strlen(text))
    {
        string[strlen(string)] = text[i];
        j = j + n;
    }
    string[strlen(string)] = '\0';
    printf("%s", string);
    string = "";
}

My goal is creating variations of text.I got segmentation fault with this code. What am i doing wrong?

EDIT: to be more clear what i want to do is: lets say text = "asdfghjk" And for n = 3 i want the following output:

afj
sgk
dh
share|improve this question
    
Can you explain what you are trying to achieve ? –  cnicutar Oct 21 '11 at 18:42
    
Here is a hint: strlen is not an O(1) operation. It recomputes the string length (based on finding the trailing '\0') every time you call it. It's generally better to call it once and store that in a variable, updating the variable if you add to the string, than to call it three times. –  Chris Lutz Oct 21 '11 at 18:42
1  
You can't strlen(string) when the null terminator has not been set to string. This will produce segmentation fault. –  user482594 Oct 21 '11 at 18:44
    
I can't get logic of your code to be honest. For text="teststring" and n=3 (assuming all errors are fixed) you will get string="tttteeesss". I don't see any reason you would want to do it. –  mephisto123 Oct 21 '11 at 18:54
    
@mephisto123 i updated the question. –  Can Vural Oct 21 '11 at 19:02

5 Answers 5

up vote 1 down vote accepted

This is what you want.

// Params
char *text = "asdfghjk";
int n = 3;
// Code
int i, j, k, len = strlen(text);
char *s = malloc((len + 1) * sizeof (char));
for (i = 0, i < n; i++) {
    for (j = i, k = 0; j < len; j += n) s[k++] = text[j];
    s[k] = 0;
}
printf("%s\n", s);

First of all, a string with terminating zero will take strlen()+1 bytes of space. Not just strlen(). Second, don't ever use strlen() in a loop. Precalculate it in int and use it. Third, you had an error: you had text[i], but meant text[j]. Fourth, as authors of previous answers mentioned, you can not calculate a length of a string if it does not have terminating zero yet. Fifth, you don't need to clear a string after each iteration since overwriting its characters and adding new terminating zero will make it completely new string.

share|improve this answer

I would do something like:

char *AppendCharToString( const char *orig, char newChar )
{
   int oldLength = strlen(orig);
   char *result = malloc( oldLength+2 ); // one byte for the new char, one for the terminator
   strcpy(result, orig);
   result[oldLength] = newChar;
   result[oldLength+1] = 0;
   return result;
}
share|improve this answer
    
s/int/size_t/g –  Chris Lutz Oct 21 '11 at 18:45
    
If your strings are > the size of an integer, I wouldn't recommend this method. :-) (Of course you are right, but I'm old-school sometimes) –  EricS Oct 21 '11 at 18:47
    
True. I'm interested in what you would recommend for strings that large, though. –  Chris Lutz Oct 21 '11 at 18:49
    
You should use a size_t instead of an int. –  Marlon Oct 21 '11 at 19:17
    
For small additions, you could allocate your strings with some extra space at the end where you could store appended data. For larger additions, you could keep an array of memory buffers. C++ has std::deque for that sort of thing. You could mimic it even in plain C if you wanted to. A linked list of strings could work too. It really depends on if you need the strings to be contiguous. –  EricS Oct 21 '11 at 19:19

you should just create a new String, appending to it what you want, at the bottom where ` string[strlen(string)] = '\0'; printf("%s", string); string = new String("");

`

share|improve this answer
2  
This is C, not C++. –  Chris Lutz Oct 21 '11 at 18:44
string[strlen(string)] = '\0';

This won't work as expected. string won't be NULL-terminated so strlen() will look behind the end of the string for the \0 and won't find it. (and if it did you would overwrite \0 with \0). What you want is strlen(text) there. And then

char *string = malloc(strlen(text) + 1);

To have enough space.

share|improve this answer

Okay answer to problem as it was stated originally how to append a single character to the end of a string which DOES NOT have space allocated for it.

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

/* note that str can be NULL for a new string */
char *straddchr(char *str, int c) {
    size_t len = str ? 2+strlen(str) : 2;
    char *p = realloc(str, len); /* add space (need space for char and \0) */
    if ( !p ) 
        return str;
    str = p;
    str[len-2] = c; 
    str[len-1] = 0;
    return str;
}

int main() {
    char *str = NULL;
    str = malloc(5);
    strcpy(str, "Hell");
    str = straddchr(str, 'o');
    str = straddchr(str, ' ');
    str = straddchr(str, 'w');
    str = straddchr(str, 'o');
    str = straddchr(str, 'r');
    str = straddchr(str, 'l');
    str = straddchr(str, 'd');
    printf("%s\n", str);
}

And here is the second bit which inserts a character every 'n'th position

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

/* note that str can be NULL for a new string */
char *strinjectchr(char *str, int c, int n) {
    size_t len = str ? strlen(str) + n + 1: n + 1;
    str = realloc(str, len);
    char *p;
    int i;

    if ( len == 1+n ) { /* original string was NULL */
    str[n] = 0;
    return memset(str, c, len-1); /* just use memset and send it all back */
    }

    char *copy = strdup(str);
    for (i = 0, p = copy; *p != 0; p++) {
        str[i++] = *p;
        if ( (i > 0) && ((1+(p - copy))%n == 0) ) {
             str[i] = c;
             i++;
    }
    }
    str[len] = 0;
    free(copy);
    return str;
}

int main() {
    char *str = NULL;
    str = strinjectchr(str, 'X', 25);
    printf("str is: %s\n", str);
    str = strinjectchr(str, '-', 5);
    printf("str is: %s\n", str);
    str = strdup("ABCDEFGHIJKLMNOPQRSTUVWXYZ");
    str = strinjectchr(str, '\n', 3);
    printf("str is: %s\n", str);
}
share|improve this answer
    
The indentations are a bit off in the code, but you can fix those in an editor this is a bit painful here. –  Ahmed Masud Oct 21 '11 at 20:22

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