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I am trying to create a simple integer variable and can't get it to accept a value.
Why does the NSLog print out i=(null)?

int i;
i = 0;
NSLog(@"i=%@", i);

How do I create a simple index for an array?....

Thank you...

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1 Answer 1

up vote 9 down vote accepted

You are creating the integer just fine, the problem is you cannot output it like that. %@ is used to output objective c objects, not simple c types.

try:

int i;
i=0;
NSLog(@"i=%d",i);
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That makes sense, but the same thing happens when I try use NSUInteger. Also the program crashes when I do any operation on the value of i, such as i++.... –  Michael Nov 30 '09 at 6:46
    
Maybe post the code that crashes... as you've described it, I don't understand why it wouldn't work. –  Alex Deem Nov 30 '09 at 6:51
3  
@Michael: NSInteger is a typedef to either long or int, depending on the platform. It's not an object. The corresponding object is a NSNumber. i++ shouldn't be a problem. It crashes in NSLog. Without i++ you try to print the object at address 0x0 which is equal to nil. This is valid. But with i++ you try to access the object at address 0x1 which is protected memory and therefore it crashes when you access it. –  Georg Schölly Nov 30 '09 at 6:53
    
Thank you gs... That cleared it up. –  Michael Nov 30 '09 at 7:00

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