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.
 struct TokenizerT_ {
    char* separators;
    char* tks;
    char* cur_pos;
    char* next;
  };

  typedef struct TokenizerT_ TokenizerT;

  TokenizerT *TKCreate(char *separators, char *ts) 
  { 
    TokenizerT *tokenizer;
    tokenizer = (TokenizerT*)malloc(sizeof(TokenizerT));

    //some manipulation here

    tokenizer->tks = (char*) malloc (strlen(str)* sizeof(char));
    tokenizer->tks=str;
    printf("size of tokenizer->tks is %zu\n", strlen(tokenizer->tks)); //this prints out the correct number (e.g. 7)
    return tokenizer;
  }

  int main(int argc, char **argv)
  {
    TokenizerT *tk = TKCreate(argv[1], argv[2]);
    printf("tk->tks: %zu\n", strlen(tk->tks)); //HOWEVER, this prints out the wrong number (e.g. 1)
  }

As seen from the above code, I'm working with pointers to structs. For some reason I am not receiving back the correct length for tk->tks. I cannot understand this because it should be the same size as tks in my TKCreate function. Can someone explain this please?

share|improve this question

3 Answers 3

up vote 2 down vote accepted

I suspect str, the definition of which is not shown in your code snippet, is a local variable defined in TKCreate(). If so, you're assigning tokenizer->tks to have the value of str, which points to a proper string inside the scope of TKCreate() but upon exiting TKCreate(), the stack contents (including parameters and local variables) are freed and wiped out so when you try to reference that pointer outside the scope of TKCreate() all bets are off.

One plausible fix is to allocate the storage for tokenizer->tks dynamically, so it persists after you exit TKCreate(). I see you do that with a call to malloc but then you overwrite that with an explicit assignment from str. Instead you should copy the contents of str (using strcpy) into the dynamically allocated memory via: strcpy(tokenizer->tks, str);

share|improve this answer
    
you're right. how can i fix this? –  user1363410 Sep 26 '12 at 5:45
    
I just added a second paragraph to explain the fix. See if that helps. –  Marc Cohen Sep 26 '12 at 5:48

You should strcpy the contents of str to tokenizer->tks, because when you use the assign operator, you're losing the pointer malloc gave you, creating a memory leak and pointing tokenizer->tks to a local variable, which will be destroyed after the function's return.

So, the approach would be something like this:

tokenizer->tks = (char *)malloc ((strlen(str) + 1) * sizeof(char));
strcpy(tokenizer->tks, str);

Another thing:

Don't forget to free ->tks before you free tk itself.

So, after the printf, you should use:

free(tk->tks);
free(tk);

There's no problem in not freeing the structure and the string (which is in another memory location and not inside the structure's memory space, that's why you have to free they both), if your program is that small, because after it's executed, the program's memory will be wiped out anyways. But if you intend to implement this function on a fully-working and big program, freeing the memory is a good action.

share|improve this answer
    
strlen(str) + 1, please! –  Jonathan Leffler Sep 26 '12 at 6:07
    
@JonathanLeffler Good catch! –  Flávio Toribio Sep 26 '12 at 6:10

It is not clear where str is defined, but if it is a local variable in the function, your problem is likely that it goes out of scope, so the data gets overwritten.

You're leaking memory because you've forgotten to use strcpy() or memcpy() or memmove() to copy the value in str over the allocated space, and you overwrite the only pointer to the newly allocated memory with the pointer str. If you copied, you would be writing out of bounds because you forgot to allocate enough space for the trailing null as well as the string. You should also check that the allocation succeeds.

Bogus code:

tokenizer->tks = (char*) malloc (strlen(str)* sizeof(char));
tokenizer->tks = str;

Fixed code:

size_t len = strlen(str) + 1;
tokenizer->tks = (char *)malloc(len);
if (tokenizer->tks == 0)
    ...error handling...
memmove(tokenizer->tks, str, len);

Using memmove() or memcpy() can outperform strcpy() handily (see Why is Python faster than C for some illustrations and timing). There are those who would excoriate you (and me) for using the cast on malloc(); I understand why they argue as they do, but I don't fully agree with them (and usually use the cast myself). Since sizeof(char) is 1 by definition, there's no particular need to multiply by it, though there's no harm done in doing so, either.

share|improve this answer

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.