Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

The best way to remove duplicate values (NSString) from NSMutableArray in Objective-C?

Is this the easiest and right way to do it?

uniquearray = [[NSSet setWithArray:yourarray] allObjects];
share|improve this question
3  
You might want to clarify whether you want to eliminate references to the exact same object, or also those which are distinct objects but have the same values for every field. –  Amagrammer Jun 22 '09 at 16:07
    
Isn't there a way to do this without creating any copy of the array? –  hfossli Jul 3 at 9:52

8 Answers 8

up vote 85 down vote accepted

Your NSSet approach is the best if you're not worried about the order of the objects, but then again, if you're not worried about the order, then why aren't you storing them in an NSSet to begin with?

If you are worried about the order, loop over a copy of the array:

NSArray *copy = [mutableArray copy];
NSInteger index = [copy count] - 1;
for (id object in [copy reverseObjectEnumerator]) {
    if ([mutableArray indexOfObject:object inRange:NSMakeRange(0, index)] != NSNotFound) {
        [mutableArray removeObjectAtIndex:index];
    }
    index--;
}
[copy release];
share|improve this answer
    
When I use this code it crashes the app –  jcpennypincher Apr 17 '13 at 16:42
25  
If you need uniqueness AND order, simply use [NSOrderedSet orderedSetWithArray:array]; You can then get back an array via array = [orderedSet allObjects]; or just use NSOrderedSets instead of NSArray in the first place. –  Regexident May 14 '13 at 9:40
3  
@Regexident's solution is ideal. Just need to replace [orderedSet allObjects] with [orderedSet array] ! –  inket Aug 2 '13 at 22:14
    
Nice One ;) I like the answer that make the developer copy&paste without a lot of modifications, this is the answer that every iOS developer will like ;) @abo3atef –  Abo3atef Jan 7 at 7:20

I know this is an old question, but there is a more elegant way to remove duplicates in a NSArray.

If we use Object Operators from Key Value Coding we can do this:

uniquearray = [yourarray valueForKeyPath:@"@distinctUnionOfObjects.self"];
share|improve this answer
    
Yes, this is what I use too! This is a very powerful approach, which a lot of iOS developers do not know! –  Lefteris Oct 16 '13 at 11:54
    
I was surprised when I learned that this could be possible. I thought that many iOS developers could not know this that is why I decided to add this answer :) –  Tiago Almeida Oct 17 '13 at 8:52
3  
This doesn't maintain order of objects. –  Rudolf Adamkovic May 14 at 17:04
    
Yeah, it breaks the order. –  Rost Jul 7 at 20:47

Note that if you have a sorted array, you don't need to check against every other item in the array, just the last item. This should be much faster than checking against all items.

// sortedSourceArray is the source array, already sorted
NSMutableArray *newArray = [[NSMutableArray alloc] initWithObjects:[sortedSourceArray objectAtIndex:0]];
for (int i = 1; i < [sortedSourceArray count]; i++)
{
    if (![[sortedSourceArray objectAtIndex:i] isEqualToString:[sortedSourceArray objectAtIndex:(i-1)]])
    {
        [newArray addObject:[tempArray objectAtIndex:i]];
    }
}

It looks like the NSOrderedSet answers that are also suggested require a lot less code, but if you can't use an NSOrderedSet for some reason, and you have a sorted array, I believe my solution would be the fastest. I'm not sure how it compares with the speed of the NSOrderedSet solutions. Also note that my code is checking with isEqualToString:, so the same series of letters will not appear more than once in newArray. I'm not sure if the NSOrderedSet solutions will remove duplicates based on value or based on memory location.

My example assumes sortedSourceArray contains just NSStrings, just NSMutableStrings, or a mix of the two. If sortedSourceArray instead contains just NSNumbers or just NSDates, you can replace

if (![[sortedSourceArray objectAtIndex:i] isEqualToString:[sortedSourceArray objectAtIndex:(i-1)]])

with

if ([[sortedSourceArray objectAtIndex:i] compare:[sortedSourceArray objectAtIndex:(i-1)]] != NSOrderedSame)

and it should work perfectly. If sortedSourceArray contains a mix of NSStrings, NSNumbers, and/or NSDates, it will probably crash.

share|improve this answer

If you are targeting iOS 5+ (what covers the whole iOS world), best use NSOrderedSet. It removes duplicates and retains the order of your NSArray.

Just do

NSOrderedSet *orderedSet = [NSOrderedSet orderedSetWithArray:yourArray];

You can now convert it back to a unique NSArray

NSArray *uniqueArray = orderedSet.array;

Or just use the orderedSet because it has the same methods like an NSArray like objectAtIndex:, firstObject and so on.

A membership check with contains is even faster on the NSOrderedSet than it would be on an NSArray

For more checkout the NSOrderedSet Reference

share|improve this answer

Available in OS X v10.7 and later.

If you are worried about the order,right way to do

NSArray *no = [[NSOrderedSet orderedSetWithArray:originalArray]allObjects];

Here is the code of removing duplicates values from NSArray in Order.

share|improve this answer

Yes, using NSSet is a sensible approach.

To add to Jim Puls' answer, here's an alternative approach to stripping duplicates while retaining order:

// Initialise a new, empty mutable array 
NSMutableArray *unique = [NSMutableArray array];

for (id obj in originalArray) {
    if (![unique containsObject:obj]) {
        [unique addObject:obj];
    }
}

It's essentially the same approach as Jim's but copies unique items to a fresh mutable array rather than deleting duplicates from the original. This makes it slightly more memory efficient in the case of a large array with lots of duplicates (no need to make a copy of the entire array), and is in my opinion a little more readable.

Note that in either case, checking to see if an item is already included in the target array (using containsObject: in my example, or indexOfObject:inRange: in Jim's) doesn't scale well for large arrays. Those checks run in O(N) time, meaning that if you double the size of the original array then each check will take twice as long to run. Since you're doing the check for each object in the array, you'll also be running more of those more expensive checks. The overall algorithm (both mine and Jim's) runs in O(N2) time, which gets expensive quickly as the original array grows.

To get that down to O(N) time you could use a NSMutableSet to store a record of items already added to the new array, since NSSet lookups are O(1) rather than O(N). In other words, checking to see whether an element is a member of an NSSet takes the same time regardless of how many elements are in the set.

Code using this approach would look something like this:

NSMutableArray *unique = [NSMutableArray array];
NSMutableSet *seen = [NSMutableSet set];

for (id obj in originalArray) {
    if (![seen containsObject:obj]) {
        [unique addObject:obj];
        [seen addObject:obj];
    }
}

This still seems a little wasteful though; we're still generating a new array when the question made clear that the original array is mutable, so we should be able to de-dupe it in place and save some memory. Something like this:

NSMutableSet *seen = [NSMutableSet set];
NSUInteger i = 0;

while (i < [originalArray count]) {
    id obj = [originalArray objectAtIndex:i];

    if ([seen containsObject:obj]) {
        [originalArray removeObjectAtIndex:i];
        // NB: we *don't* increment i here; since
        // we've removed the object previously at
        // index i, [originalArray objectAtIndex:i]
        // now points to the next object in the array.
    } else {
        [seen addObject:obj];
        i++;
    }
}

UPDATE: Yuri Niyazov pointed out that my last answer actually runs in O(N2) because removeObjectAtIndex: probably runs in O(N) time.

(He says "probably" because we don't know for sure how it's implemented; but one possible implementation is that after deleting the object at index X the method then loops through every element from index X+1 to the last object in the array, moving them to the previous index. If that's the case then that is indeed O(N) performance.)

So, what to do? It depends on the situation. If you've got a large array and you're only expecting a small number of duplicates then the in-place de-duplication will work just fine and save you having to build up a duplicate array. If you've got an array where you're expecting lots of duplicates then building up a separate, de-duped array is probably the best approach. The take-away here is that big-O notation only describes the characteristics of an algorithm, it won't tell you definitively which is best for any given circumstance.

share|improve this answer
    
maybe this is interesting ridiculousfish.com/blog/posts/array.html –  vikingosegundo Oct 15 '13 at 15:57

just use this simple code :

NSArray *hasDuplicates = /* (...) */;
NSArray *noDuplicates = [[NSSet setWithArray: hasDuplicates] allObjects];

since nsset doesn't allow duplicate values and all objects returns an array

share|improve this answer
    
Worked for me. All you have to do is sorting your NSArray again as NSSet returns an unsorted NSArray. –  lindinax Jan 20 at 10:50
    
Or simply use NSOrderedSetinsteed of NSSet. –  lindinax Jan 20 at 10:59

Here is the code of removing duplicates values from NSMutable Array..it will work for you. myArray is your Mutable Array that you want to remove duplicates values..

for(int j = 0; j < [myMutableArray count]; j++){
    for( k = j+1;k < [myMutableArray count];k++){
    NSString *str1 = [myMutableArray objectAtIndex:j];
    NSString *str2 = [myMutableArray objectAtIndex:k];
    if([str1 isEqualToString:str2])
        [myMutableArray removeObjectAtIndex:k];
    }
 } // Now print your array and will see there is no repeated value
share|improve this answer
    
This will crash always. This logic is completely wrong. –  Ganesh Apr 5 '13 at 10:20

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.