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I have 2 Nsarray where objects of 2 arrays are same may be indexes of the object differs, but it should print both are equal irrespective of there indexes

NSArray *arr1 = [[NSArray alloc]initWithObjects:@"aa",@"bb",@"1",@"cc", nil];
NSArray *arr2 = [[NSArray alloc]initWithObjects:@"bb",@"cc",@"1",@"aa", nil];

if([arr1 isEqualToArray:arr2])
{
    NSLog(@"equal");
}
else
{
    NSLog(@"Not equal");
}

the above code is printing 'Not equal' but it should print 'equal' how can i do this

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1  
This is best -> stackoverflow.com/a/15710166/1059705 –  Bala Apr 27 '13 at 5:19

6 Answers 6

Those two arrays are not equal. Two arrays are equal is they both have the same objects in the same order.

If you want to compare with no regard to order then you need to use two NSSet objects.

NSSet *set1 = [NSSet setWithArray:arr1];
NSSet *set2 = [NSSet setWithArray:arr2];

if ([set1 isEqualToSet:set2]) {
    // equal
}
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3  
Remark: This method ignores duplicates, e.g. @[@1, @2] and @[@1, @1, @2, @2] are considered equal. But it is not obvious from the question if this is the desired behaviour or not. –  Martin R Dec 11 '12 at 8:36

Try this. What I am doing is make a copy of your first array & remove copy elements from the second array. If its empty then its equal, else not equal.

This has lesser memory foot print than @rmaddy solution. You create a duplicate of only one array not both arrays...

NSMutableArray *copyArray;
if([arr1 count] >= [arr2 count])
{
    copyArray = [NSMutableArray arrayWithArray:arr1];
    [copyArray removeObjectsInArray:arr2];
}
else //c(arr2) > c(arr1)
{
    copyArray = [NSMutableArray arrayWithArray:arr2];
    [copyArray removeObjectsInArray:arr1];
}

if([copyArray count] != 0)
    NSLog('Not Equal');
else
    NSLog('Equal');

UPDATE1: If you want to use arr2 after this then its been changed. You need to make a copy of it, then in that case memory-wise its same as what rmaddy solution takes. But still this solution is superior since, NSSet creation time is far more than NSArray - source.

UPDATE2: Updated to make the answer more comprehensive incase one array is bigger than other.

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removeObjectsInArray: has a void return type. That won't work as-is. –  rmaddy Dec 11 '12 at 6:59
2  
Perhaps you meant to call -removeObjectsFromArray:, then take a -count compared to 0 (inventive, I like it). –  CodaFi Dec 11 '12 at 7:01
    
this is reasonable. –  Pranjal Bikash Das Dec 11 '12 at 7:04
1  
This method wrongly reports arrays as equal if arr2 contains "more" elements than arr1, eg. arr1 = @[@1, @2], arr2 = @[@1, @2, @3]. - And why do think that arr2 is modified by this method? –  Martin R Dec 11 '12 at 8:28
1  
Still does not work (sorry :-). Try arr1 = @[@1, @1, @1] and arr2 = @[@1, @2]. - And removeObjectsInArray modifies only the receiver copyArray, not the argument arr1 or arr2. –  Martin R Dec 11 '12 at 10:14

Most of the answers here actually do not work for fairly common cases (see their comments). There is a very good data structure that will solve this problem: NSCountedSet:

https://developer.apple.com/library/ios/documentation/cocoa/reference/foundation/Classes/NSCountedSet_Class/Reference/Reference.html

The counted set is unordered, but does care about the number of items present, so you don't end up with @[1, @1, @2] == @[@1, @2, @2].

NSArray *array1 = @[@1, @1, @2];
NSArray *array2 = @[@1, @2, @2];

NSCountedSet *set1 = [[NSCountedSet alloc] initWithArray:array1];
NSCountedSet *set2 = [[NSCountedSet alloc] initWithArray:array2];

BOOL isEqual = [set1 isEqualToSet:set2];
NSLog(@"isEqual:%d", isEqual);
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Unfortunately this class does not fit the [ios] tag –  voromax Jan 15 at 23:05
    
Sorry, why? NSCountedSet has been available in iOS since 2.0: developer.apple.com/library/ios/documentation/cocoa/reference/… –  OC Rickard Jan 16 at 16:33
2  
Just realized my original answer referenced the mac docs, so sorry for the confusion. The class is available for iOS too -- updated answer to correct the link. –  OC Rickard Jan 16 at 16:34

Just like rmaddy said, those NSArrays are not equal. Try this:

-(BOOL)compareArrayIgnoreIndexes:(NSArray*)arrayOne toArray:(NSArray*)arrayTwo{
    NSSet *setOne=[[NSSet alloc]initWithArray:arrayOne];
    NSSet *setTwo=[[NSSet alloc]initWithArray:arrayTwo];
    return [setOne isEqualToSet:setTwo];
}
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I found the solution,,we can achieve that by sorting the array elements

 NSArray *arr1 = [[NSArray alloc]initWithObjects:@"a2223a",@"ab33b",@"a1acdf",@"ac23c45", nil];
    NSArray *arr11 =  [arr1 sortedArrayUsingSelector:@selector(localizedCompare:)];
    NSArray *arr2 = [[NSArray alloc]initWithObjects:@"ab33b",@"ac23c45",@"a1acdf",@"a2223a", nil];
    NSArray *arr22= [arr2 sortedArrayUsingSelector:@selector(localizedCompare:)];
    if([arr11 isEqualToArray:arr22])
    {
        NSLog(@"equal");
    }
    else
    {
        NSLog(@"Not equal");
    }
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Wow, this is verbose... –  CodaFi Dec 11 '12 at 7:05
    
@CodaFi no more so than the other answers once you include the two original arrays. –  rmaddy Dec 11 '12 at 7:10
    
@rmaddy: He's performing two sorts on a total of three arrays. Tell me that's not inefficient? –  CodaFi Dec 11 '12 at 7:11
    
@CodaFi I see two sorts on two arrays. –  rmaddy Dec 11 '12 at 7:14
2  
/*a total of three arrays*/, and I see no argument against the sorting. It's expensive in most cases (but I will admit that there is a temporary speed boost after an initial sort, but only if the same array is being sorted twice). –  CodaFi Dec 11 '12 at 7:16
This can be done by using one NSMutableArray.The main point to be remembered is that the larger array should be saved in NSMutableArray. Otherwise it wont work as expected. The code is given below.

NSArray *array1 = [NSArray arrayWithObjects:@"One", @"Two", @"Three", nil];
NSArray *array2 = [NSArray arrayWithObjects:@"Two", @"Three", @"One", nil];
NSMutableArray *intermediate = [NSMutableArray arrayWithArray:array1];
[intermediate removeObjectsInArray:array2];
NSUInteger difference = [intermediate count];//returns the number of difference between two arrays.
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This solution is identical to Srikar's solution posted earlier. And it does not work reliably for the same reasons, see my comments above. –  Martin R Dec 12 '12 at 13:48

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