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I am struggling to find a good way to sort an NSArray like this:

It's an array of NSDictionarys, and I am using it to keep track of appearance of each word in a long string. So it might look somewhat like this:

[{"hello", 5}, {"world", 10}, {"this", 1}, {"that", 3}]

Now I want to sort this NSDictionary by the value, so that it looks like this:

[{"world", 10}, {"hello", 5}, {"that", 3}, {"this", 1}]

I have looked at NSSortDescriptor and the initWithKey method for the sortDesciptors, but it requires the name of the keys to be the same, which doesn't apply to my case.

What do you suggest me use in this case? Thank you in advance!

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Your design doesn't seem to match your plan. The inner collections shouldn't be dictionaries here. You're not gaining anything by it, and in fact it's just getting in your way. Either make them two-element arrays, or make the outer collection a dictionary with the words as keys and drop the nesting altogether. –  Josh Caswell Jun 30 '13 at 1:53
    
Does NSDictionary preserve order? –  Enzo Jun 30 '13 at 1:55
    
No, but you can get the keys sorted by the values whenever you like. –  Josh Caswell Jun 30 '13 at 1:55
    
I see! Yeah I thought my structure of the data was kind of convoluted as well, I'll probably change that. Thanks! –  Enzo Jun 30 '13 at 1:56
2  
Or, if you want to keep the inner dictionaries, you can use something like @[@{@"word": @"hello", @"value": @5}, @"word": @"world", @"value": @10}, @"word": @"this", @"value": @1}, @"word": @"that", @"value": @3}]. Then, at least you can sort by the value key.... –  lnafziger Jun 30 '13 at 4:07

2 Answers 2

up vote 4 down vote accepted

Maybe not the most efficient way ever, but this will do

NSArray * d = @[@{@"world": @10}, @{@"hello": @5}, @{@"that": @3}, @{@"this": @1}];
[d sortedArrayUsingComparator:^NSComparisonResult(NSDictionary * obj1, NSDictionary * obj2) {
    NSNumber * v1 = obj1[[obj1 allKeys][0]];
    NSNumber * v2 = obj2[[obj2 allKeys][0]];
    return [v1 compare:v2];
}];

Anyway, the data organization is not very suitable for the task. Since the inner data structure is a dictionary, gathering the value is rather cumbersome. You may consider making the inner one an array.

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Yeah I realized that. I will probably change the organization of the data. Thanks for helping! –  Enzo Jun 30 '13 at 1:57
1  
Not bad at all. Although I think this case demands a redesign, I definitely like the fact that a code solution to the problem as literally stated will be here for searchers with a similar problem. I was reluctant to post my answer, in fact. Kudos. –  Josh Caswell Jun 30 '13 at 2:00
    
@Josh thank you. I believe the case you're making about the data chosen by the OP is more than correct. My answer provides a "quick" solution to the problem as stated, but future searches will probably consider a redesign thank you yours. +1 –  Gabriele Petronella Jun 30 '13 at 2:05

Your design doesn't seem to match your plan. The inner collections shouldn't be dictionaries here. You're not gaining anything by it, and in fact it's just getting in your way. Either make them two-element arrays, or make the outer collection a dictionary with the words as keys and drop the nesting altogether.

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