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I have been seeking the best way in modifying a NSMutableArray which can hold multiple instances of the same object. I working also for iOS versions under 4.0 so using block is not the way to go.

Here's the situation:

I have an array like this:

ARRAY = [object1,object2,object3,object4,object5,object6,object7,object8];

Let's say that object2 object3 and object4 are actually the same objects. And object1 and object 7 as well. Then I would like to re-arrange the array so that the most occurrences appear first and so on. So the array would have to look like this:

[object2,object3,object4,object1,object7,object5,object6,object8];

Thank you very much in advance,

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What behaviour do you expect when you have two ‘groups’ of objects with the same size? Say object2,object3,object4 are the same object, and object1,object7,object8 are the same object. Since these two objects have the most occurrences, do their corresponding array elements need to be contiguous in the resulting array? –  Bavarious Jun 8 '11 at 10:53

3 Answers 3

There are a few ways of doing that, one of which is by using an auxiliary NSCountedSet instance and a function that uses that NSCountedSet for comparison:

NSInteger countedSort(id obj1, id obj2, void *context) {
    NSCountedSet *countedSet = context;
    NSUInteger obj1Count = [countedSet countForObject:obj1];
    NSUInteger obj2Count = [countedSet countForObject:obj2];

    if (obj1Count > obj2Count) return NSOrderedAscending;
    else if (obj1Count < obj2Count) return NSOrderedDescending;
    return NSOrderedSame;
}

and

NSMutableArray *array = …;

NSCountedSet *countedSet = [[[NSCountedSet alloc] initWithArray:array]
    autorelease];

[array sortUsingFunction:countedSort context:countedSet];

Edit: extremeboredom has cleverly noticed that if two different objects have same repeat count then their corresponding elements are not necessarily contiguous in the resulting array. This solution should only be used in case it’s not necessary for same objects to be contiguous.


Further edit: in case you need elements representing the same object to be contiguous, you could create a smaller array with the distinct elements only, sorted by their repeat count. Then, create another array with elements sorted by repeat count. Depending on your needs, you might not actually need the resulting array — maybe only distinctArray & the counted set suffice.

NSMutableArray *array = …;
NSCountedSet *countedSet = [[[NSCountedSet alloc] initWithArray:array]
    autorelease];

// Array with distinct elements only, sorted by their repeat count
NSArray *distinctArray = [[countedSet allObjects]
    sortedArrayUsingFunction:countedSort context:countedSet];

// Array with all the elements, where elements representing the same
// object are contiguous
NSMutableArray *sortedArray = [NSMutableArray arrayWithCapacity:[array count]];
for (id object in distinctArray) {
    for (NSUInteger i = 0; i < [countedSet countForObject:object]; i++) {
        [sortedArray addObject:object];
    }
}
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This sounds like a good idea, but it's not quite there. It would mix up objects for there there is more than one collection with the same number of multiple objects. The OP needs to determine how they want to order groups of objects with the same count, and incorporate that into the sort method. –  extremeboredom Jun 8 '11 at 10:45
    
@extr Ah, true that! I’ll post a comment on the question. –  Bavarious Jun 8 '11 at 10:51

What you need is NSBag, by Erica Sadun (GitHub). Simple use case:

NSArray *objArray = @[ @"a", @"a", @"b", @"B", @"c", @"cc", @"c"];      
NSBag       *aBag = NSBag.new;

for ( id thing in objArray )     [aBag add:thing];   // fill the bag

for ( id unique in aBag.objects )                    // count'em out
         NSLog(   @"%@,     %i", 
                  unique,   [aBag occurrencesOf:unique] );

OUTPUT:

cc, 1
b, 1
B, 1
c, 2
a, 2
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You can manage this by using isKindOfClass & isMemberOfClass instance methods. So simply loop through your Array and keep pushing items in new array based on your requirements

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