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I'm struggling with this a bit...

I'm creating a new NSMutableArray like so

NSMutableArray *myArray = [NSMutableArray arrayWithObjects:[db getRandomCustomObject], [db GetRandomCustomObject], [db getRandomCustomObject], nil];

The getRandomObject method looks at another array grabs a random object pointer and places it in myArray.

The problem I'm having is that it's just storing a pointer... so if myArray gets a duplicate randomObject they both have the same memory address location.

I want all objects in myArray to be their own objects... not pointers to the object in another array. I want them to all have their own unique memory location.

I'm thinking maybe in the getRandomCustomObject method I need to do a copyWithZone or something similar before the return?

Can anyone provide me the full sample code to do what I'm attempting? I've tried looking at NSCopying protocol and override copyWithZone method for my custom object but I can't figure out how to do it (still a newb)

Thanks!

share|improve this question
up vote 1 down vote accepted

Implement NSCopying protocol on your objects and use copy method then inside of getRandomCustomObject method.

Interface:

@interface SomeBaseObject : NSObject <NSCopying>{
    int       _someInt;
    NSString* _someString;
}

@property(nonatomic, assign)int someInt;
@property(nonatomic, copy)NSString* someString;

@end

and implementation:

@implementation SomeBaseObject

@synthesize 
someInt    = _someInt,
someString = _someString;

-(id)init{
    self = [super init];
    if(self){
        self.someInt = -1; //or any other value you need here
        self.someString = nil;
    }
    return self;
}

-(id)copyWithZone:(NSZone *)zone{
    SomeBaseObject* copy = [[[self class] allocWithZone:zone]init];
    copy.someInt= self.someInt;
    copy.someString = self.someString
    return copy;
}

@end
share|improve this answer
    
yea, I thought that was what I might have to do. But I need the sample code on how to do that. I couldn't figure it out from documentation – sayguh Nov 21 '11 at 15:43
    
It's not that scary as it seems :) I'll edit my answer to add some simple code – Ariel Nov 21 '11 at 15:47
    
Perfect, thanks a lot – sayguh Nov 21 '11 at 16:11

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