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I'm new to C, and don't get why the first function works but not the second.

1st:

int main(int argc, char** argv) {
    char charTest[80] = "this is a test";
    char *test = &charTest;
    strcpy(test, "one");

    printf("%s", test);

    return (EXIT_SUCCESS);
}

2nd:

int main(int argc, char** argv) {
    char *test;
    test = malloc(80);
    strcpy(test, "one");

    printf("%s", test);

    return (EXIT_SUCCESS);
}

Can someone please tell me why? Thank you ;) :) .

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11  
In what way does it not work? –  trojanfoe Mar 17 '12 at 23:02
    
That first function has some funny business in it too - are you sure it works? It certainly shouldn't compile without warnings. –  Carl Norum Mar 17 '12 at 23:03
    
...did you get those backward? Every indication of C I have tells me the second will almost work, but not the first, but you indicated the opposite. I can provide a detailed answer about pointers in C, but if it's not what you're looking for I'd rather not. –  FrankieTheKneeMan Mar 17 '12 at 23:04
1  
Wow, downvote flood –  Seth Carnegie Mar 17 '12 at 23:07
2  
@Seth: Incorrect answer flood, actually –  Kendall Frey Mar 17 '12 at 23:08

1 Answer 1

The first example should not compile, as you are trying to use &charTest which is of type char (*)[80] to initialize a char*. You probably meant:

char *test = &charTest[0];

or alternatively:

char *test = charTest;

In the second case, when you use the name of the array as an rvalue-expression, it decays into a pointer to the first element. That is, the compiler will implicitly translate it to the more explicit version: &charTest[0].

The second example compiles only in C, if you are working in C, you should ask C questions and don't tag them with C++. In C++ it is an error as you need an explicit cast to turn the result of malloc (which is a void*) into a char*:

char * test = static_cast<char*>( malloc(80) );  // awkward C++

In this second program you are leaking memory (wether in C or C++). You should free the memory that you dynamically allocated.

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