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Well, I'm creating a custom SEL like:

NSArray *tableArray = [NSArray arrayWithObjects:@"aaa", @"bbb", nil];
for ( NSString *table in tableArray ){
    SEL customSelector = NSSelectorFromString([NSString stringWithFormat:@"abcWith%@", table]);
    [self performSelector:customSelector withObject:0];
}

I got a error: Terminating app due to uncaught exception 'NSInvalidArgumentException', reason: '-[Sync aaaWithaaa]: unrecognized selector sent to instance

but if i run it with the real method name it works!

[self performSelector:@selector(aaaWithaaa:) withObject:0];

How to solve it out? thanks!

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4 Answers

up vote 6 down vote accepted

You've already created selector from string - pass it to performSelector: method:

[self performSelector:customSelector withObject:0];

Edit: Mind, that if your method takes parameter then you must use colon when create selector from it:

// Note that you may need colon here:
[NSString stringWithFormat:@"abcWith%@:", table]
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Thanks, I updated my question –  user843910 Apr 9 '12 at 13:42
    
Your are right! The colon! –  user843910 Apr 9 '12 at 14:09
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NSArray *tableArray = [NSArray arrayWithObjects:@"aaa", @"bbb", nil];

for ( NSString *table in tableArray ){
     SEL customSelector = NSSelectorFromString([NSString stringWithFormat:@"abcWith%@:", table]);
     [self performSelector:customSelector withObject:0];
 }
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- (id)performSelector:(SEL)aSelector withObject:(id)anObject

First argument is SEL type.

SEL customSelector = NSSelectorFromString([NSString stringWithFormat:@"abcWith%@", table]);
[self performSelector:customSelector withObject:0];
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Close.

The difference is that with @selector(aaaWithaaa:) you pass a method name but with @selector(customSelector:) you're passing a variable of type SEL (with a spare colon).

Instead, you just need:

[self performSelector:customSelector withObject:0];

The other difference is that you write your string with a colon at the end, but you stringWithFormat: has none. It's important; it means that the method takes a parameter. If your method has a parameter, it needs to be there, i.e.,

[NSString stringWithFormat:@"abcWith%@:", table]
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Thanks, I updated my question –  user843910 Apr 9 '12 at 13:42
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