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Guys I'm generating a string which rappresent a path to a file, concatenating a macro and a string. The function is this:

char *userPath(char *username)
{
   char *path = (char*)malloc(sizeof(char) * (strlen(MAILBOXES) + strlen(username) + 1));
   path[0] = '\0';
   strcat(path, MAILBOXES);
   strcat(path, "/");
   strcat(path, username);
   return path;
}

The returned pointer reference a correct string, but after some call to this function the process throws out a very very bad * glibc detected ./mmboxd: malloc(): memory corruption: 0x085310a8 ** with the relative backtrace. I know it's here the problem, since I started having this error once implemented it, and also because the only malloc I use is here. What's wrong with this piece of code?

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6  
Casting malloc isn't necessary, and sizeof(char) is 1 by definition, so you can simplify the malloc call to char *path = malloc(STRLEN(MAILBOXES) + strlen(username) + 2); –  John Bode Apr 28 '11 at 18:14
2  
@John Bode - Some people (not myself necessarily) say that you should use char *path = malloc(sizeof *path * whatever); so that if you change the type of path (to, say, wchar_t *) the malloc will adjust the size accordingly. –  Chris Lutz Apr 28 '11 at 18:20
    
Writing sizeof *path is arguably reasonable, but sizeof(char) is definitely not. –  R.. Apr 28 '11 at 20:35
    
@Chris Lutz: actually, that's my normal paradigm, but I figured I'd keep this as simple as possible. –  John Bode Apr 28 '11 at 20:44

8 Answers 8

up vote 9 down vote accepted

The +1 should be +2 to take into account the separator you add and the null terminator. And you can omit sizeof(char), which will always be 1.

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Here's the problem:

   char *path = (char*)malloc(sizeof(char) * (strlen(MAILBOXES) + strlen(username) + 1));

You're allocating enough memory for a) all the characters in MAILBOXES, b) all the characters in username, and c) the '/' character, but you're forgetting d) the terminating '\0' character! So + 1 should be + 2

There are a few other oddities about your code, but they're not wrong, just things that could be better:

  1. You don't need to cast the return value of malloc in C, and some (like me) consider it bad style for various reasons that you're more than capable of Googling.
  2. sizeof(char) is always 1 (this is defined in the standard). Some people say to keep it in for symmetry. Some say take it out since it's one. Some say change it to sizeof *path, so that if you change path to a wchar_t * the malloc will correctly adjust to keep allocating the right size.
  3. Using strcat to write the first bit of data to a string is potentially inefficient. Why not drop the path[0] = '\0'; line and just use strcpy for the first bit of data?
  4. You calculate the lengths of all of the strings, but then you throw them away and use strcat, which will re-traverse the (previously calculated) lengths to find the right spot. If you stored the results of your two strlen calls, you wouldn't need to use strcat and unnecessarily keep recalculating where the end of the string is.
  5. Using strcat to append a single character is inefficient.
  6. You don't check the return value of malloc for success or failure before you use it.
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Thanks! I'm googling to better undestand wyh is a god pratice to not cast the malloc and I'll use strcpy for the first byte –  Damiano Barbati Apr 28 '11 at 18:31
    
Better not to use strcpy and strcat at all. Instead use snprintf(path, len, MAILBOXES "/%s", username); where len is the same as the argument you passed to malloc. This way there is no danger of overflow. –  R.. Apr 28 '11 at 20:41
    
@R.. - If the malloc didn't fail (which is something else I forgot to mention) there's no danger of overflow either way, once the OP corrects the off-by-one error. –  Chris Lutz Apr 28 '11 at 20:47
    
I mean if OP had done it with snprintf then the question would have been "why is the last character being truncated?" rather than "why do I have memory corruption?" and OP probably would have figured it out without even having to ask. –  R.. Apr 28 '11 at 21:00

You don't appear to have allowed space for the zero-terminator. You should be allocating an extra char for that.

I'm assuming that the +1 in the malloc() is for the path separator. Make it +2 and you'll have space for the terminating null character.

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When you allocate the "path" string you forgot to add the length of the "/" char that you add between MAILBOXES and username.

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It appears you would need to malloc an another byte for zero termination.

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You need to allocate one extra byte for null character "\x00" as the string terminator in C strings.

Currently you allocate only one extra byte for / character.

So try +2 instead of +1

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You're not budgeting in a char for the terminating null. Your malloc length should be +2, not +1.

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Your +1 in the end of malloc() accounts for the /. But you need space for the null character at the end, which is added by strcat(). So it's a +2.

char *path = (char*)malloc(sizeof(char) * (strlen(MAILBOXES) + strlen(username) + 2));
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Be sure to format your code as code (I fixed it) or *'s will disappear and change to italics. Also you can do away with the cast. –  R.. Apr 28 '11 at 20:38
    
@R.. Thank you VM. –  karlphillip Apr 28 '11 at 21:32

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