Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

How do I append a single char to a string in C?

i.e

char* str = "blablabla";
char c = 'H';
str_append(str,c); /* blablablaH */
share|improve this question
    
With the proviso that your definition of a string in line 1 needs to be a char array with enough memory allocated to it (as detailed in the answers), try strncat(str,&c,1); for the actual appending. –  Chris Johnson Apr 23 '12 at 11:49

7 Answers 7

up vote 8 down vote accepted
char* str = "blablabla";     

You should not modify this string at all. It resides in implementation defined read only region. Modifying it causes Undefined Behavior.

You need a char array not a string literal.

Good Read:
What is the difference between char a[] = "string"; and char *p = "string";

share|improve this answer

I do not think you can declare a string like that in c. You may only do that for const char* and of course you can not modify a const char * as it is const.

You may use dynamic char array but you will have to take care of the reallocation.

EDIT: in fact this syntax compiles correctly. Still you can should not modify what str points to if it is initialized in the way you do it (from string literal)

share|improve this answer
1  
char *ptr = "string" is perfectly valid in C. –  Alok Save Apr 23 '12 at 11:37
1  
@Als - yes that's right. I thought it is not but it seems it's ok. However you still can not modify the array. –  Ivaylo Strandjev Apr 23 '12 at 11:38
1  
Yes, You cannot modify the string literal it's not an array to begin with. –  Alok Save Apr 23 '12 at 11:39
    
@Als again I agree - it is a literal :) –  Ivaylo Strandjev Apr 23 '12 at 11:42

To append a char to a string in C, you first have to ensure that the memory buffer containing the string is large enough to accomodate an extra character. In your example program, you'd have to allocate a new, additional, memory block because the given literal string cannot be modified.

Here's a sample:

#include <stdlib.h>

int main()
{
    char *str = "blablabla";
    char c = 'H';

    size_t len = strlen(str);
    char *str2 = malloc(len + 1 + 1 ); /* one for extra char, one for trailing zero */
    strcpy(str2, str);
    str2[len] = c;
    str2[len + 1] = '\0';

    printf( "%s\n", str2 ); /* prints "blablablaH" */

    free( str2 );
}

First, use malloc to allocate a new chunk of memory which is large enough to accomodate all characters of the input string, the extra char to append - and the final zero. Then call strcpy to copy the input string into the new buffer. Finally, change the last two bytes in the new buffer to tack on the character to add as well as the trailing zero.

share|improve this answer
    
The comment about using sizeof is incorrect. sizeof str is either 4 or 8 depending on whether you are compiling 32 or 64 bit code. –  JeremyP May 21 at 2:20
    
Also, always use a format specifier in printf. Imagine if str contained a %s char sequence in it. –  JeremyP May 21 at 2:21
    
@JeremyP The sizeof comment is indeed imprecise. I meant that you can call sizeof("blablablah"), I'll just remove the comment altogether since the compiler may well be smart enough to notice that it can const-fold the call. As for the format specifier - you're correct of course, a very embarrasing error. I'll update my answer. –  Frerich Raabe May 21 at 7:01

C does not have strings per se -- what you have is a char pointer pointing to some read-only memory containing the characters "blablabla\0". In order to append a character there, you need a) writable memory and b) enough space for the string in its new form. The string literal "blablabla\0" has neither.

The solutions are:

1) Use malloc() et al. to dynamically allocate memory. (Don't forget to free() afterwards.)
2) Use a char array.

When working with strings, consider using strn* variants of the str* functions -- they will help you stay within memory bounds.

share|improve this answer

Easiest way to append two strings:

char * append(char * string1, char * string2)
{
    char * result = NULL;
    asprintf(&result, "%s%s", string1, string2);
    return result;
}
share|improve this answer
2  
If you have the non-standard asprintf function; it's not defined either by the C language or by POSIX. –  Keith Thompson May 9 '13 at 2:02
    
Aren't you returning a reference to local variable? –  Abhishek Sep 25 '13 at 4:53
    
I never had a problem with it, maybe asprintf allocs the memory. –  Lay González Feb 7 at 19:38
2  
@Abhishek asprintf mallocs enough space to put the resultant string in it. Apparently, it is available in the GNU glibc and most versions of BSD (counting OS X as a version of BSD). –  JeremyP May 21 at 2:06

Create a new string (string + char)

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

#define ERR_MESSAGE__NO_MEM "Memoria insufficiente!"
#define allocator(element, type) _allocator(element, sizeof(type))

/** Allocator function (safe alloc) */
void *_allocator(size_t element, size_t typeSize)
{
    void *ptr = NULL;
    /* check alloc */
    if( (ptr = calloc(element, typeSize)) == NULL)
    {printf(ERR_MESSAGE__NO_MEM); exit(1);}
    /* return pointer */
    return ptr;
}

/** Append function (safe mode) */
char *append(const char *input, const char c)
{
    char *newString, *ptr;

    /* alloc */
    newString = allocator((strlen(input) + 2), char);
    /* Copy old string in new (with pointer) */
    ptr = newString;
    for(; *input; input++) {*ptr = *input; ptr++;}
    /* Copy char at end */
    *ptr = c;
    /* return new string (for dealloc use free().) */
    return newString;
}

/** Program main */
int main (int argc, const char *argv[])
{
    char *input = "Ciao Mondo"; // i am italian :), this is "Hello World"
    char c = '!';
    char *newString;

    newString = append(input, c);
    printf("%s\n",newString);
    /* dealloc */
    free(newString);
    newString = NULL;

    exit(0);
}

              0   1   2   3    4    5   6   7   8   9  10   11
newString is [C] [i] [a] [o] [\32] [M] [o] [n] [d] [o] [!] [\0]

Don't alter the array size ([len +1], etc.) without know its exact size, it may damage other data. alloc an array with the new size and put the old data inside instead, remember that, for a char array, the last value must be \0; calloc() sets all values to \0, which is excellent for char arrays.

I hope this helps.

share|improve this answer

here's it, it WORKS 100%

char* appending(char *cArr, const char c)

{

int len = strlen(cArr);

cArr[len + 1] = cArr[len];

cArr[len] = c;

return cArr;


}
share|improve this answer
    
That works only if the string pointed to by cArr is writable and if it has enough room to add another character. –  Keith Thompson May 9 '13 at 2:03
    
-1 since it only works "100%" for very small values of "100". –  Frerich Raabe May 21 at 7:03

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.