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I'm learning C today. I've been coding in managed languages (Java, C#, Python, etc.) for some time now. I thought I was understanding the details of pointers, but then I wrote the following code that worked as expected, but generated an 'incompatible pointer type' warning.

void setText(char* output) {
    //code to set output to whatever, no problems here.
}

int main(int argc, const char* argv[]) {
    char output[10];

    setText(&output);

    //[EDITED] ...other test code which printf's and further manipulates output.

    return 0;
}

So I googled, and ended up changing the line

setText(&output);

to

setText(output);

which got rid of the warning. But now I don't know why the first one was working at all. I was sending the address of an address as far as I can tell (because char* x; is essentially the same as char x[];). What am I misunderstanding and why do both of these work?

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It's kind of hard to tell you why setText was working without seeing its implementation. Although, if all setText does is set a variable, after which the program exits, how can you really tell if the program is doing what you want? –  jwodder Jul 3 '11 at 20:27
2  
T * is not the same as T [K]. See e.g. c-faq.com/~scs/cgi-bin/faqcat.cgi?sec=aryptr –  delnan Jul 3 '11 at 20:29
    
@delnan: Link seems broken –  Cameron Jul 4 '11 at 22:04
    
@Cameron: It isn't for me right now - perhaps you hit a short outage. Could you try again? –  delnan Jul 5 '11 at 13:47
    
@delnan: That must have been it, works for me too now :-) –  Cameron Jul 5 '11 at 14:17
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1 Answer 1

up vote 17 down vote accepted

The type of output is char [10], which decays to a char * in the context of a function call (which is why the second variant works).

The type of &output is char (*)[10], i.e. a pointer-to-array. This is not the same thing, hence the compiler warning. However, the value of &output (an address) is equivalent to the value of output (once it has decayed to a char *), so the end result is "as expected".

This may sound like pedantry, but there is a fairly important difference. Try the following:

void foo(const char *p)
{
    printf("%s\n", p);
}

int main(void)
{
    char output[][6] = { "Hello", "world" };

    foo(output[0] + 1);
    foo(&output[0] + 1);
}

Recommended reading is the C FAQ on arrays and pointers, in particular question 6.3 and 6.12.

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1  
And it "works" despite the warning because they both end up pointing to the same place. –  Richard Pennington Jul 3 '11 at 20:27
1  
Nice example. It really helps illustrate what's actually going on here. –  htw Jul 3 '11 at 20:33
    
Yes, that example did help. Thank you. –  atheaos Jul 3 '11 at 20:54
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