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I have two NSArrays that I'm comparing — in the NSLog output they look identical, yet they don't equal each other somehow. If I convert the NSArray to an NSString I get the same exact result. Comparing them to themselves will be equal. How can I determine why one and two aren't equal? thank you.

- (void)confused:(NSArray *)two {

    NSArray *one = [NSArray arrayWithObjects:@"16777223", @"7", nil];
    NSArray *two = [[NSBundle bundleWithPath:@"/path/to/bundle"] executableArchitectures];

    // NSArray "two" shows as 16277223, 7 in NSLog

    if ([two firstObjectCommonWithArray:(NSArray *)one])
    {
        NSLog(@"- it's equal %@ %@", one, two);
        // if array one matches array two then this will output
    }
    else {
        NSLog(@"- it's NOT equal %@ %@", one, two);
    }

    return;
}

Here's the output from console:

myApp (
    16777223,
    7
)
myApp (
    16777223,
    7
)
myApp - it's NOT equal (
    16777223,
    7
)(
    16777223,
    7
)
share|improve this question
    
Can you include the creation of two? – Josh Caswell Jul 10 '12 at 1:48
    
it's directly related to my other question '[[NSBundle bundleWithPath:@"/path/to/bundle"] executableArchitectures]'; so the values of NSArray one in the above example would be @"16777223",@"7",nil – Joe Habadas Jul 10 '12 at 1:51
1  
Oh. That method returns an array of NSNumber, not NSString. That's your problem. – Josh Caswell Jul 10 '12 at 1:56
1  
Yep, if the object types are different they aren't likely to compare the same, even if they produce the same description dump. – Hot Licks Jul 10 '12 at 2:00
    
Okay, I've updated the question with how NSArray two is created. So the question really is how to represent NSArray one so that it would equal two? – Joe Habadas Jul 10 '12 at 2:05
up vote 1 down vote accepted

-[NSBundle executableArchitectures] returns an array of NSNumber objects, not NSString objects, so the array you're passing in doesn't have strings in it. If you change

NSArray *one = [NSArray arrayWithObjects:@"16777223",@"7", nil];

to

NSArray *one = [NSArray arrayWithObjects:[NSNumber numberWithUnsignedInteger:NSBundleExecutableArchitectureX86_64], 
                                         [NSNumber numberWithUnsignedInteger:NSBundleExecutableArchitectureI386], 
                  nil];

your code should work.

share|improve this answer
    
wow, so the mach-o part is built in? i had no idea, very cool. i'm going to try it right now — thanks! – Joe Habadas Jul 10 '12 at 2:08
    
You mean NSBundleExecutableArchitectureX86_64? Those are just names that you imported. They're defined in NSBundle.h, right above where executableArchitectures is declared. – Josh Caswell Jul 10 '12 at 2:09
1  
When you're using the values from an enum like this, it's always preferable to refer to them by their name, not value -- it improves readability and guards against possible changes in the value (however unlikely). – Josh Caswell Jul 10 '12 at 2:14
1  
== compares the NSArray objects' locations in memory; those definitely won't be equal. firstObjectCommonWithArray: or [one isEqual:two] should both work, though. Are they not? – Josh Caswell Jul 10 '12 at 2:29
2  
firstObjectCommonWithArray :returns the first object that is the same in the array, it is not for equality checks. – borrrden Jul 10 '12 at 2:50

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