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Okey, I have two strings containing numbers like shown here using debugger:

String 1

(gdb) po [event creator_id]
123456789
(gdb) p [event creator_id]
$1 = (NSString *) 0xad81d10

String 2

(gdb) po [delegate userid]
123456789
(gdb) p [delegate userid]
$2 = (NSString *) 0x7451b40

Now I want to check if they are equal to each other and therein lies the problem.

The if-statement below will for some reason not return true:

if ([[delegate userid] isEqualToString: [event creator_id]]) {

    NSLog(@"They are equal!");

}

Can someone please explain to me how this can happen? Thank you for your time!

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Is there a possibility of trailing space? –  trojanfoe Jul 31 '12 at 8:16
    
Is [[delegate userid] isKindOfClass:[NSString class]] == YES && [[event creator_id] isKindOfClass:[NSString class]] == YES –  msk Jul 31 '12 at 8:17
    
Double-check there's no white space or invisible characters, maybe? –  rickster Jul 31 '12 at 8:18
    
double-checking! gimme a sec! –  Alexander Longbeach Jul 31 '12 at 8:21
    
@MSK It seems that [event creator_id] isnt really an NSString. But why does it show up in debugger as one if it really isn't? A failed cast that didn't result in an error?? –  Alexander Longbeach Jul 31 '12 at 8:26

2 Answers 2

up vote 2 down vote accepted

It could be because either of below is FALSE

[[delegate userid] isKindOfClass:[NSString class]]

[[event creator_id] isKindOfClass:[NSString class]]

po is "print-object" it prints the description (which is string) of object. The description property is available at NSObject level.

Hope it helps you.

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Many methods return an id that can be assigned to any NSObject pointer without generating a compiler error or warning. And the gdb "p" command uses only the type information generated from the source code and does not determine the actual class at runtime.

Example:

NSString *s;
s = [NSArray arrayWithObject:@"Hello World"];

In the debugger:

(gdb) po s
<__NSArrayI 0x8ec70a0>(
Hello World
)

(gdb) p s
$1 = (NSString *) 0x8ec70a0

So "po" knows the actual class, but "p" does not.

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Thank you for the explanation :)! –  Alexander Longbeach Jul 31 '12 at 9:10

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