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why do I get this warning in my code below:

- (IBAction)shareThisActionSheet:(id)sender
{
    int row = [sender tag]; //warning is here! Multiple methods named 'tag' found
    ...
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3 Answers 3

up vote 8 down vote accepted

Description

The problem is that the compiler sees more than one method named tag in the current translation unit, and these declarations have different return types. One is likely to be -[UIView tag], which returns an NSInteger. But it's also seen another declaration of tag, perhaps:

@interface MONDate
- (NSString *)tag;
@end

then the compiler sees an ambiguity - is sender a UIView? or is it a MONDate?

The compiler's warning you that it has to guess what sender's type is. That's really asking for undefined behavior.

Resolution

If you know the parameter's type, then specify it:

- (IBAction)shareThisActionSheet:(id)sender
{
 UIView * senderView = sender;
 int row = [senderView tag];
 ...

else, use something such as an isKindOfClass: condition to determine the type to declare the variable as before messaging it. as other answers show, you could also typecast.

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1  
+1 very well explained. But it should work in any case (using id), despite the warning.. right? –  Ankit Srivastava Jan 11 '12 at 11:24
    
@Ankit It won't work (ref: it's asking for undefined behavior). If all visible tag methods return an objc object, that's predictable. If one returns a CGRect and the other an objc object, the compiler may end up calling the wrong objc_msgSend variant you may smash part of your stack. If the compiler guesses the other way and is wrong, the CGRect may be messaged as an objc object. You could also slice memory, and if C++ is in there, it's even more complex. (cont) –  justin Jan 11 '12 at 11:36
    
(cont) The alternative would be to look at the assembly generated, for each warning generated. What's worse? You may not get the warning if you have not #included the type of the object that is passed as sender in the TU. –  justin Jan 11 '12 at 11:39
    
hmm.. now I get it. thanks. –  Ankit Srivastava Jan 11 '12 at 12:25
    
@Ankit you're welcome –  justin Jan 11 '12 at 12:27

The problem is that sender is defined as a (id) object. At compile time xcode does not know what kind of objects will get passed to your function.

If you write this function for a specific object type, you could you could write for example

- (IBAction)shareThisActionSheet:(UIButton*)sender

or you could hint the compiler the type of object with the call

int row = [(UIButton*)sender tag]; 
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Bastian is right you should convert your sender to button like this:

UIButton * button = (UIButton *)sender;
int row = button.tag;
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3  
if you think that I'm right, why do you post the same answer instead of upvoting mine ? –  Bastian Jan 11 '12 at 11:07
1  
Because i posted a bit different casting of sender(I think it is more correct because it is more visual) –  Stas Jan 11 '12 at 11:56

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