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Trying to call this function in C without any real luck:

int sendcommand(char str[256], char reply[256])

I have tried many variations such as this:

char request[] = "help";
char response[];
int result = sendcommand( request, *response );

I've actually done a bit of C and C++ but for some reason I'm missing the boat on something rather basic here.

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what error are you getting? –  Gabriel Dec 29 '11 at 2:55
    
That second parm is just wrong. –  Hot Licks Dec 29 '11 at 2:59

2 Answers 2

up vote 6 down vote accepted

You can see that your call is wrong without even knowing what is right...

int sendcommand(char str[256], char reply[256])

Two formal parameters with the same signature.

char request[] = "help";
char response[];

Two real parameters with the same type.

So why do you use a different syntax when you pass them?


That's not all that is wrong here of course, you need to declare the response parameter with a size sufficient for the return value. Declaring it to the size specified for the formal parameter is safest.

char request[] = "help";
char response[256];
int result = sendcommand( request, response );
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Great stuff guys. This brought back some clarity from my old Think C days on the Mac in the 80s. I had to fix one other minor thing which was to set my project to compile to C++. Appreciate the help though I do feel a little embarrassed to ask about something so trivial. C/C++ is just so counter-intuitive after years of Java/C#. –  Cat Man Do Dec 29 '11 at 3:05

response is a pointer, but you're dereferencing it to a char, when the function takes a char*.

This should work:

int result = sendcommand(request, response);
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1  
+1, as long as response has some space allocated for it. And response isn't a pointer, it's an array. –  Carl Norum Dec 29 '11 at 2:56

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