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What is the purpose of the strdup() function in C?

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there is also strdupa() (in the GNU C library), a nice function that is similar to strdup(), but allocates memory on the stack. Your program don't need to free the memory explicitly as in case with strdup(), it will be freed automatically when you exit the function where strdupa() was called – dmityugov Oct 31 '08 at 13:05
@dmityugov: +1 for strdupa(). That function is especially entertaining to use if you speak Polish :). – slacker Apr 8 '10 at 17:57
strdupa is dangerous and should not be used unless you've already determined that strlen is very small. But then you could just use a fixed-size array on the stack. – R.. Dec 29 '10 at 16:34
@slacker google translate isn't being helpful... What does strdup/strdupa mean in Polish? – haneefmubarak Mar 7 at 16:47
@haneefmubarak here – anatolyg Sep 30 at 17:02

9 Answers 9

up vote 230 down vote accepted

Exactly what it sounds like (assuming you're used to the abbreviated way in which C and UNIX assigns words), it duplicates strings.

Keeping in mind it's actually not part of the ISO C standard itself (it's a POSIX thing), it's effectively doing the same as the following code:

char *strdup (const char *s) {
    char *d = malloc (strlen (s) + 1);   // Space for length plus nul
    if (d == NULL) return NULL;          // No memory
    strcpy (d,s);                        // Copy the characters
    return d;                            // Return the new string

In other words:

  1. It tries to allocate enough memory to hold the old string (plus a null character to mark the end of the string).
  2. If the allocation failed, it sets errno to ENOMEM and returns NULL immediately (setting of errno to ENOMEM is something malloc does so we don't need to explicitly do it in our strdup).
  3. Otherwise the allocation worked so we copy the old string to the new string and return the new address (which the caller is responsible for freeing at some point).

Keep in mind that's the conceptual definition. Any library writer worth their salary may have provided heavily optimised code targeting the particular processor being used.

If you're part of the crowd that abhors multiple exit points in functions (I don't unless it affects readability, which I don't believe to be the case for such a short function), you can write the code as:

char *strdup (const char *s) {
    char *d = malloc (strlen (s) + 1);   // Allocate memory
    if (d != NULL) strcpy (d,s);         // Copy string if okay
    return d;                            // Return new memory
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It is worth noting, that as Pax' sample implementation implies, strdup(NULL) is undefined and not something you can expect to behave in any predicable way. – unwind May 22 '09 at 10:14
Also, I think malloc() would set errno, so you shouldn't have to set it yourself. I think. – Chris Lutz Jun 8 '09 at 3:58
With the existence of strcpy, what's the point of strdup? Safer for string copy? – Alcott Feb 28 '12 at 0:51
@Alcot, strdup is for those situations where you want heap memory allocated for the string copy. Otherwise you have to do it yourself. If you already have a big enough buffer (malloc'ed or otherwise), yes, use strcpy. – paxdiablo Feb 28 '12 at 1:15
@acgtyrant: if, by standard, you mean the ISO standard (the real C standard), no, it's not part of it. It is part of the POSIX standard. However, there are plenty of C implementations that provide it, despite not being an official part of ISO C. However, even if they didn't, the five-liner in this answer should be more than sufficient. – paxdiablo Apr 16 '14 at 10:37

From strdup man:

The strdup() function shall return a pointer to a new string, which is a duplicate of the string pointed to by s1. The returned pointer can be passed to free(). A null pointer is returned if the new string cannot be created.

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It makes a duplicate copy of the string passed in by running a malloc and strcpy of the string passed in. The malloc'ed buffer is returned to the caller, hence the need to run free on the return value.

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The most valuable thing it does is give you another string identical to the first, without requiring you to allocate memory (location and size) yourself. But, as noted, you still need to free it (but which doesn't require a quantity calculation, either.)

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No point repeating the other answers, but please note that strdup() can do anything it wants from a C perspective, since it is not part of any C standard. It is however defined by POSIX.1-2001.

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+1: interesting and informative. :) – andandandand Nov 3 '10 at 15:37
Is strdup() portable? No, not available in non-POSIX environment (trivially implementable anyway). But to say a POSIX function can do anything is quite pedantic. POSIX is another standard that's as good as C's and even more popular. – Blue Moon May 9 '14 at 8:58
@BlueMoon I think the point is that a C implementation that claims no conformance to POSIX may still provide a strdup function as an extension. On such an implementation, there's no guarantee that that strdup behaves the same way as the POSIX function. I don't know of any such implementations, but a legitimate non-malicious implementation might provide char *strdup(char *) for historic reasons, and reject attempts to pass in a const char *. – hvd Mar 6 at 22:19
What is the difference between C standard and POSIX ? By C standard you mean, it does not exist in C standard libraries? – Koray Tugay Mar 22 at 11:35
@KorayTugay They are different standards. Better to treat them as unrelated unless you know that the standard for a particular C function conforms to the POSIX standard, and that your compiler/library conforms to the standard for that function. – Matthew Read Mar 23 at 19:40
char * strdup(const char * s)
  size_t len = 1+strlen(s);
  char *p = malloc(len);

  return p ? memcpy(p, s, len) : NULL;

Maybe the code is a bit faster than with strcpy() as the \0 char doesn't need to be searched again (It already was with strlen()).

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+1 for better implementation than the accepted answer, and for using the return value of memcpy correctly. – R.. Dec 29 '10 at 16:36
Thanks. In my personal implementation I make it even "worse". return memcpy(malloc(len), s, len); as I prefer the crash on allocation rather than the NULL on allocation failure. – Patrick Schlüter Dec 30 '10 at 21:00
@tristopia dereferencing NULL doesn't have to crash; it's undefined. If you want to be sure it crashes, write an emalloc which calls abort upon fail. – Dave Dec 30 '11 at 3:28
I know that, but my implementation is guaranteed to run only on Solaris or Linux (by the very nature of the app). – Patrick Schlüter Dec 30 '11 at 13:01
@tristopia: It's good to be in the habit of doing things the best way. Get in the habit of using emalloc even if it's not necessary on Solaris or Linux so that you'll be using it in the future when you write code on other platforms. – ArtOfWarfare Feb 28 at 20:20

strdup() does dynamic memory allocation for the character array including the end character '\0' and returns the address of the heap memory:

char *strdup (const char *s)
    char *p = malloc (strlen (s) + 1);   // allocate memory
    if (p != NULL)
        strcpy (p,s);                    // copy string
    return p;                            // return the memory

So, what it does is give us another string identical to the string given by its argument, without requiring us to allocate memory. But we still need to free it, later.

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The strdup() function is a shorthand for string duplicate, it takes in a parameter as a string constant or a string literal and allocates just enough space for the string and writes the corresponding characters in the space allocated and finally returns the address of the allocated space to the calling routine.

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The strdup() function allocates sufficient memory for a copy of the string str, does the copy, and returns a pointer to it.

The pointer may subsequently be used as an argument to the function free(3).

If insufficient memory is available, NULL is returned and errno is set to ENOMEM.

The strndup() function copies at most len characters from the string str always NULL terminating the copied string.

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