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I have been stuck on this one for a while, I'm not an expert in C. Basically, I am trying to make a function that "safely" strcats a character to an existing char *.

I am trying to get the "dynamic allocation" method working from this example:

Using strcat in C

I have made a few modifications, I removed the var that's set by the realloc function (the compiler said that it returned void). I also modified it to only append one character instead of an array of characters. I figured this would change the "realloc" parameters, so instead of passing the length of the addition string, I just passed in "sizeof(char)" (x2 because the original had an extra sizeof char, i think because of the null terminator?)

char *buffer = NULL;

int mystrcat(char addition)
{
   realloc(buffer, strlen(buffer) + sizeof(char)*2);
   if (!buffer)
     return 0;
   strcat(buffer, addition);
   return 1;
}

I call it like this:

if(!safestrcat(str[i+j]))
    printf("Out of Memory");

For some reason, I am seeing this:

Unhandled exception at 0x60f0d540 (msvcr100d.dll) in myProg.exe: 0xC0000005: Access violation reading location 0x00000000.

And the debugger shows me strlen.asm at line 81:

main_loop:
    mov     eax,dword ptr [ecx]     ; read 4 bytes

I'm sorry if this is a newb question, but what is happening? Why is the addition char not being appending to the buffer?

Sorry I should add, that it compiles succesfully.

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4  
Your call to realloc is completely broken - you need to check for success and then reassign the result of the function to your existing pointer. –  Paul R May 9 '12 at 16:36
2  
Second parameter to strcat is const char * & not char as you are using –  another.anon.coward May 9 '12 at 16:38
1  
sizeof(char) is 1 by definition. Using it here just obscures the code … –  Konrad Rudolph May 9 '12 at 16:38
1  
In case of using gcc: It is a good idea to use -Wall to enable 'all' warnings, which would have pointed you to the type mismatch in the call to strcat(). –  alk May 9 '12 at 16:41
    
String concatenation is not idiomatic in C. Doing things like this is going to make your code error-prone and negate many of the benefits of C. The only function you should ever use to construct a string in C is snprintf, and you should know the desired final size before you even allocate the string. –  R.. May 9 '12 at 17:27

5 Answers 5

up vote 5 down vote accepted
  • You forgot one argument
  • sizeof(char) is 1 by definition
  • your realloc code is broken
  • strcat doesn’t take a char as its second argument
  • I’d just return the newly created string, like strcat does
char* mystrcat(char* buffer, char addition) {
    unsigned oldlen = strlen(buffer);
    buffer = realloc(buffer, oldlen + 2);
    if (buffer == NULL)
        return NULL;

    buffer[oldlen + 0] = addition;
    buffer[oldlen + 1] = '\0';
    return buffer;
}

However, pay attention to two things:

  1. You must call mystrcat with a valid, initialised pointer – same as strcat!
  2. In the case of failure, the function returns NULL – in that case, it’s the caller’s responsibility to ensure that the original buffer’s memory is freed. This means that you mustn’t call the function as

    buffer = mystrcat(buffer, 'x');
    

    – This may cause a memory leak.

So a correct usage would be:

char* something = "hello";
char* buffer = malloc(sizeof(something) + 1);
strcpy(buffer, something);

char* new_buffer = mystrcat(buffer, 'x');
if (new_buffer == NULL) {
    free(buffer);
    exit(1);
}

buffer = new_buffer;

Yes, convoluted. This is the price for safe memory operations.

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1  
If realloc fails then you leak memory. –  Paul R May 9 '12 at 16:42
1  
It is better to use another pointer for return value of realloc otherwise you end up leaking memory if realloc fails –  another.anon.coward May 9 '12 at 16:42
3  
@another.anon.coward I disagree. The client still has the pointer and should be responsible for freeing the memory. This function usually shouldn’t be responsible to free client-allocated memory, no? Of course, this is a matter of (documented) convention but I’d prefer to separate these concerns. –  Konrad Rudolph May 9 '12 at 16:44
    
@Konrad: buffer is a global in the OP's code (I know, I know...), so in this case it really is a memory leak. –  Paul R May 9 '12 at 16:46
5  
@KonradRudolph - Your code (and OP's code) invokes strlen(NULL) the first time it is called. This is the cause of OP's segfault. Try unsigned oldlen = buffer? strlen(buffer) : 0; –  Robᵩ May 9 '12 at 17:02

Loads of really good advice has been given in the other answers, but the reason that you are getting the access violation is because buffer starts out as NULL. Then you do strlen(buffer). strlen() works by counting the characters starting from the address passed in until it gets to a '\0'. So in your case, the first time in, you dereference a null pointer.

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Great point, this wasn't really made clear in the other answers (even though they gave me some great advice and code to fix the problem) –  Doug Molineux May 9 '12 at 17:46

Your call to realloc is completely broken - you need to check for success and then reassign the result of the function to your existing pointer.

You also need a char * to pass as the second parameter to strcat, not a char.

Change:

int mystrcat(char addition)
{
   realloc(buffer, strlen(buffer) + sizeof(char)*2);
   if (!buffer)
     return 0;
   strcat(buffer, addition);
   return 1;
}

to:

int mystrcat(char addition)
{
   char st[2] = { addition, '\0' };               // make temporary string to hold `addition`
   int len = buffer != NULL ? strlen(buffer) : 0; // NB: handle case where `buffer` has not yet been allocated
   char * tmp = realloc(buffer, len + 2);         // increase size of `buffer`
   if (!tmp)                                      // handle realloc failure
     return 0;
   buffer = tmp;
   strcat(buffer, st);                            // append `addition`
   return 1;
}
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1  
Explanation for OP: 1) st[2] handles the additional char + null terminator and can be passed as is to strcat. 2) Use a tmp buffer so that you do not modify the original string if reallocation fails and to prevent a memory leak. –  Joe May 9 '12 at 16:42
    
The call to strcat() is still mssing the & operator for the second parameter. –  alk May 9 '12 at 16:43
2  
@alk: st is char [2] which will decay to char*, there is no need for & –  another.anon.coward May 9 '12 at 16:44
1  
@alk: nope - I'm passing a temporary char *, st, as the second parameter. –  Paul R May 9 '12 at 16:44
1  
@Pete: no - you need a 0-terminated char * for strcat - a single char won't do. –  Paul R May 9 '12 at 16:48
char * mystrcat(char *str, char addition)
{
   size_t len;
   len = strlen(str);
   str = realloc(str, len + 2);
   if (!str)
     return NULL; /* ... */
   str[len++] = addition;
   str[len] = 0;
   return str;
}
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char *mystrcat(char *buffer, char addition) {
    char *bb;
    size_t ll;
    ll = buffer ? strlen(buffer) : 0;
    bb = realloc(buffer, ll + 2);
    if(!bb){
      fprintf(stderr, "Memory exhausted in function: mystrcat !\n");
      exit(EXIT_FAILURE);
    }
    buffer = bb; // Safe!!!
    buffer[ll] = addition;
    buffer[ll+1] = '\0';
    return buffer;
}

Something like that. So if no memory most likely you can't do anything at all until finish your application. If only your system not be shutdown.

It's a critical error! But you can see this message. In logs surely. No guaranties to work correctly if you pass bad prt buffer. For example if your forgot to set null terminator. Error occurs at strlen!

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