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I have an NSArray which contains a few duplicate objects. I want to print which objects are getting duplicated, for example:

NSArray * array = [NSArray arrayWithObjects: A, B, C, A, B];

Now I want to print in my console A & B as these are duplicated.

How do I do this?

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1  
Define duplicate. How are the equal ? Same object or same content –  uchuugaka Mar 2 '13 at 12:52
1  
You mean as in "duplicate question"? –  Hot Licks Mar 2 '13 at 13:41

5 Answers 5

up vote 4 down vote accepted

Use an NSCountedSet and only print the elements that returns a number>1 for countForObject: method

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You can use NSCountedSet for this. you can add all the objects in a counted set, then use the countForObject: method to find out how often each object appears. read about NSCountedSet for further reference

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1  
30 seconds faster than me :) –  Kaan Dedeoglu Mar 2 '13 at 12:32

It's probably far from perfect, but it works

NSArray *array = [NSArray arrayWithObjects:@"a", @"b", @"b", @"v", @"f", @"f", nil];

NSMutableArray *un_array = [NSMutableArray array];
NSMutableArray *dupArray = [NSMutableArray array];

for (id obj in array)
{
    if (![un_array containsObject:obj])
        [un_array addObject:obj];
    else
        [dupArray addObject:obj];
}

NSLog(@"DUPLICATES:");
for (id obj in dupArray)
    NSLog(@"%@", [obj description]);
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This is essentially N-squared but curiously got up-voted. –  Hot Licks Mar 2 '13 at 13:42

Another approach is to sort the array and look for adjacent duplicates. Probably a little slower than using a hashed set approach, but the same basic "big O".

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Try My Logic:

for(int i=0; i < array.count; i++)
{
  for(int j=0; j< i; j++)
  {
    if([[array objectAtIndex:i] isEqualToString:[array objectAtIndex:j]] )
    {
        NSLog(@"%@",[array objectAtIndex:i]);
    }
  }
}
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@DownVote = most of have same logic but i have put answer with new logic then, why give me downvote first check it then give me down vote ...thanks :) –  iPatel Mar 2 '13 at 12:51
    
It's an N-squared algorithm, which could be pretty slow if N is large. Not unreasonable if N is small, though, since it's fairly simple. People tend to downvote N-squared stuff reflexively. –  Hot Licks Mar 2 '13 at 13:40
    
@HotLicks- i know that it is slow but it is unique answer here...also OP not mention here that hows long its array :( so, i m not wrong .! –  iPatel Mar 2 '13 at 13:45

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