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I used NSLog(@"%@",super) in a method(any method) and it is crashing.... Why? How to print the super contents?

Updated :

currentclassname : superClassName
{
}

and also if i use NSLog(@"%@", [super description]); It is printing "<currentclassname: 0x3db7230>" instead of superClassName... It is expected to print superClassName right.

Thanks in advance,

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5 Answers 5

up vote 5 down vote accepted

When encountering the keyword super and a method call on it, the compiler generates a different call - objc_msgSendSuper*() instead of the usual objc_msgSend*().

objc_msgSendSuper*() calls get an argument of type objc_super* instead of objc_object*:

struct objc_super {
   id receiver;
   Class class;
};

So, objc_super* values aren't special instances, they have to be used with the special objc_msgSendSuper*() functions.

Thus, as Alex says, just call -description directly on super - its value is meaningless outside of the context its in unless you specifically use it with a runtime function like objc_msgSendSuper().

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1  
+1. Great answer! –  Alex Reynolds May 27 '10 at 12:04
    
Good explanation... cleared many questions. –  Chandan Shetty SP May 28 '10 at 4:57

Use -description, e.g.:

NSLog(@"%@", [super description]);

If you have access to the superclass, you can override its -description method to return whatever information you want, or perhaps augment the class with a category.

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1  
Just interested - why variant in question does not work? Basically NSLog(@"%@",super) should call -description on super anyway, or not? –  Vladimir May 27 '10 at 11:44

super is a way to send a message to yourself and invoke the superclass's implementation rather than your own. It's not a separate object.

NSLog takes an object as the parameter to %@, and the object you mean to pass here is yourself.

Frankly, I'm surprised the code in question even compiles.

If you want to log your superclass's description of yourself rather than your own, then, as Alex Reynolds says, you must use a [super description] message for the parameter to NSLog. This sends the description message to yourself using your superclass's implementation, and passes the object that that message returns (the NSString object that is your superclass's description of yourself) as the parameter to NSLog.

But that's probably not necessary. If you have overridden description, that implementation can send [super description] and integrate that string* into the description string that it creates and returns. If you haven't overridden description, then a description message to self will hit the superclass's implementation anyway. Either way, pass self, not super, to your NSLog statements.

*There are several ways you could integrate the one string into the other; see the NSString docs for more details.

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and also if i use NSLog(@"%@", [super description]); It is printing <currentclassname: 0x3db7230> instead of superClassName... It is expected to print superClassName right.

No. Using [super aMethod] instead of [self aMethod] just gives you the implementation of -aMethod that the superclass would use if it hadn't been overridden. [self className] and [super className] both resolve to NSObject's implementation which (I guess) interrogates the object's isa instance variable to get the name.

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Try NSLog(@"%@",[super view]); or anthything like [super ANY_METHOD]; What exactaly are you trying to achieve from super?

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