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I am about as nooby to this as it gets. Can someone please tell me how to fix this?

#include <stdio.h>

int main(int argc, const char * argv[])
    int sum;   
    sum = 50 + 25;
    "The sum of 50 and 25 is %i", sum ;

    return 0;
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2 Answers 2

Change the line:

"The sum of 50 and 25 is %i", sum ;


printf( "The sum of 50 and 25 is %i", sum );

The line in quotes by itself is a syntax error that just happens to be getting by the compiler (which is apparently throwing a warning instead).

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Actually, it's not a syntax error. It's an expression using the comma operator. That simply evaluates each expression separated by commas in order and the value of the comma expression as a whole is the value of the last subexpression (sum in this case). It is legal in C for an expression to be a statement unto itself. (That's what sum = 50 + 25; is, for example.) Since the first subexpression of the comma operator (a string literal) has no side effects, that line is equivalent to sum;, which is legal but strange because nothing is using the value and it has no side effects. So it warns. – Ken Thomases Jun 6 '12 at 8:12

You have this warning because of not using your sum value. To print it use NSLog

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This would normally be a correct answer, but the O.P. appears to be using straight C and not Objective C – Michael Dautermann Jun 5 '12 at 21:34
There are "xcode" and "objective-c" tags – Morion Jun 5 '12 at 21:51

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