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How can I prepend char c to char* myChar? I have c has a value of "A", and myChar has a value of "LL". How can I prepend c to myChar to make "ALL"?

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2  
what have you tried? what didn't work? –  Mitch Wheat Dec 20 '11 at 0:41
    
is this homework? The general approach, move everything along one character and then insert your new character at the beginning –  Keith Nicholas Dec 20 '11 at 0:42
    
First no, and second thank you –  Aspyn Dec 20 '11 at 0:43
    
@Keith: For that to work you need a guarantee that there is at least one byte of usable space at the end of the string, which might work for his application or it might not. –  David Grayson Dec 20 '11 at 0:43
    
most c string manipulations assume that there is memory, like strcat, etc. or constrains the operation with a 'n'. memory is usually a issue dealt with outside of the operation –  Keith Nicholas Dec 20 '11 at 0:47

3 Answers 3

up vote 3 down vote accepted

This should work:

#include <string.h>    
char * prepend(const char * str, char c)
{
    char * new_string = malloc(strlen(str)+2);  // add 2 to make room for the character we will prepend and the null termination character at the end
    new_string[0] = c;
    strcpy(new_string + 1, str);
    return new_string;
}

Just remember to free() the resulting new string when you are done using it, or else you will have a memory leak.

Also, if you are going to be doing this hundreds or thousands of times to the same string, then there are other ways you can do it that will be much more efficient.

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this doesn't prepend to his existing string, it makes a new one, you could copy it back to str, but more elegant to do it without mallocing –  Keith Nicholas Dec 20 '11 at 0:44
    
Another thing I forgot to mention: If you're serious about writing good code you should check the return value of malloc to make sure it is not NULL. If it is NULL then print a proper error message and exit. –  David Grayson Dec 20 '11 at 1:27

Well, first you need to figure out storage for your new string. If all I know about the source is a char *, I don't know whether it points to a buffer that I can overwrite and/or is long enough, or whether I need to allocate a new buffer.

To allocate a new buffer, it'd be something like this:

char * strprep(char c, const char * myChar)
{
    /* length, +1 for c, +1 for '\0'-terminator */
    char * newString = malloc(strlen(myChar) + 2);

    /* out-of-memory condition rolls downhill */
    if (newString == NULL) return NULL;

    /* populate the new string */
    newString[0] = c;
    strcpy(newString + 1, myChar);
    return newString;
}

To overwrite in place, you'll need to move the characters over to make room for the new start of string:

char * strprep(char c, char * myChar)
{
    int len = strlen(myChar);
    int i;

    /* Move over! */
    for (i = len; i >= 0; i--) myChar[i + 1] = myChar[i];

    /* Now plug in the new prefix. */
    myChar[0] = c;
    return c;
}

If your C library has it available, you can use memmove in place of the loop to shift the original characters up by one.

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Probably not the most efficient but this is a step in the right direction: this one is clearly direct approach -

  int main()
   {
      int i;
      char tempc;
      for (i=0; i<strlen(str); i++)
      {
        tempc = c;
        c = str[i];
        str[i] = tempc;            
         str[i+1] = c;
      }
       *(str[i+1]) = malloc(1);
       str[i+1] = '\0';
    }
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