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Tell me please why this function may take '\0' as second argument, compile and crash?

char var[9];
/*some initialization of var */
strcat(var, '\0');
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up vote 4 down vote accepted

That function takes a const char * as the second parameter. You're passing an int.

char *strcat(char *restrict s1, const char *restrict s2);

You're basically tricking strcat into dereferencing \0 as a pointer - it dereferences NULL.

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Thanks alot for fast answer. – Andrew Sheremetiev Feb 24 '12 at 10:13

The second argument to strcat should be a pointer to a null-terminated array of characters. Your code shouldn't even compile, but if it does, then The result would be undefined behaviour.

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Thanks you too ) – Andrew Sheremetiev Feb 24 '12 at 10:15
    
It's perfectly okay for it to compile, '\0' is the int 0, a null pointer constant, so the call is strcat(var, NULL);. Wrong but valid. Undefined behaviour only if strcat doesn't check for null pointers and deal with them appropriately (that means, in practice, it will be UB). – Daniel Fischer Feb 24 '12 at 12:33
    
@DanielFischer: Ah yes, that's a good point; it's valid in this case because it's constant 0. – Oliver Charlesworth Feb 24 '12 at 12:37

If the comment is meant to describe the following line (as opposed to act as a place-holder for some actual initialization that's omitted), there's a second scenario:

Since strcat() needs to find the end of the first argument in order to figure out where to start concatenating, and you pass it an un-initialized character array, it might well step outside valid memory while looking for the first string's terminating character. Reading outside valid memory can cause crashes on some platforms.

So, it's possible the second argument has nothing to do with why it breaks, although that is, of course, also wrong.

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char var[9]; /*some initialization of var */ – Andrew Sheremetiev Feb 24 '12 at 10:22

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