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I have implemented my own version of strcat function.
It works fine but valgrind complains.

    char *src=NULL;
    src=(char *) malloc(sizeof(char)*8);
    printf("******FINAL STR IS : %s ********",src);

void  xstrcat(char *src,const char *dest)
        int dlen=strlen(dest);
        int slen=strlen(src);
        int j=0;
        int i=0;
        char *temp=(char *) realloc(src,(slen+dlen+1)*sizeof(char));


==31775== Invalid read of size 4
==31775== Invalid read of size 4
==31775== Invalid read of size 1
==31775== Invalid read of size 1
==31775== 14 bytes in 1 blocks are definitely lost in loss record 1 of 1
==31775==    at 0x1B9053EE: realloc (vg_replace_malloc.c:197)
==31775==    by 0x8048606: xstrcat (in /user/gur27268/Computer_Systems/Socket/DevTest/UTI
==31775==    by 0x804850F: main (in /user/gur27268/Computer_Systems/Socket/DevTest/UTIL/a
==31775== LEAK SUMMARY:
==31775==    definitely lost: 14 bytes in 1 blocks.
==31775==    possibly lost:   0 bytes in 0 blocks.
==31775==    still reachable: 0 bytes in 0 blocks.
==31775==         suppressed: 0 bytes in 0 blocks.
==31775== Reachable blocks (those to which a pointer was found) are not shown.**
==31775== To see them, rerun with: --show-reachable=yes

I have freed src, but using realloc tends to this problem...

Any help would be appreciated..

share|improve this question
Do not misuse variable names! src is source: where things come from; dest is destination: where things go to –  pmg Mar 13 '11 at 14:29
@pmg: But it creates such entertaining bugs... –  Erik Mar 13 '11 at 14:35
please don't cast the return value of malloc( ); sizeof(char) is always 1. –  Pete Wilson Mar 13 '11 at 15:15

1 Answer 1

up vote 8 down vote accepted
void xstrcat(char *src,const char *dest) {

You're passing src by value, and xstrcat is working on and modifying its local copy. Any changes you make to src will not be reflected in the calling function.

void xstrcat(char **src,const char *dest) {
  // Work with *src

xstrcat(&src, ...)

This approach lets xstrcat modify main's src variable.

To quote a frequently mentioned sample:

void foo (int x) {
  x = 2;
void bar (int * x) {
  *x = 2;
int main() {
  foo(9); // foo cannot modify the literal 9
  int i = 1;
  foo(i); // foo cannot modify the variable i
  bar(&9); // This isn't legal - it can't be
  bar(&i); // bar modifies i
share|improve this answer
I am changing a block(contents) which is pointed to by str ,not the reference ,so no point of having the above issue....the above code works fine ,plz help me figure out that Valgrind issue....thanks –  Muse Mar 13 '11 at 14:16
@Sandeep: Erik is right. When you realloc src, it's pure luck that the underlying block containing the allocation you already have happens to be big enough for the new size, so the new address temp is the same as src and src still points to the data you want. This isn't the normal behavior of realloc. Try reallocating up to a much larger size, then your code will fail. –  Steve Jessop Mar 13 '11 at 14:20
newvar=realloc(oldvar, ...) is equivalent to char * newvar=malloc(...); memcpy(newvar, oldvar); free(oldvar); - You're freeing the original src and main never gets to know that –  Erik Mar 13 '11 at 14:20
Yeah thanks all , I got the point and fix the problem...thanks again... –  Muse Mar 13 '11 at 14:33

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