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Suppose you are given an array of unsorted integers as

A = {3,4,5,1,4,2}

Input : 6 Output : {5,1}, {4,2}

How can I do this in O(n) or O(log n). Any suggestions will be appreciated.

Update: Can we write something more efficient than this?

for(int i=0;i<array.length-1;i++)  
{  
    if(array[i]+array[i+1]==6)  
        System.out.println("{"+array[i]+","+array[i+1]+"}");  
}  
share|improve this question
    
This and your other thread are rather similar. Is this homework? – birryree Dec 4 '11 at 6:01
    
If this is homework, homework tag should be added. – Beginner Dec 4 '11 at 6:02
    
Yes this is a part of an assignment. I have added that tag. – AKIWEB Dec 4 '11 at 6:02
    
possible duplicate of [Given two arrays a and b .Find all pairs of elements (a1,b1) such that a1 belongs to Array A and b1 belongs to Array B whose sum a1+b1 = k ](stackoverflow.com/questions/3815116/…) – RC. Dec 4 '11 at 6:23
    
see also stackoverflow.com/questions/5630363/… – RC. Dec 4 '11 at 6:24
up vote 3 down vote accepted

If the numbers stored in the input array are only positive then I'd create another array K of k+1 ArrayList elements. Where k is the number you need them to add up to. Only two numbers less than k can add up to k (assuming we deal with positive ints} or in special case {0,k}. Then I would iterate through all elements of input array and for each int m that is less or equal to k I'd take its index and add that index to the array of ArrayList K at index m. Then I would iterate through first half of the array K and for each index i that has some ints stored in it I would find complementary index [k-i] and see if there are any values in it. If there are then those are your pairs. And btw this is O(n).

public static void findElemtsThatSumTo( int data[], int k){
    List arrayK[]= new List[k+1];
    for(int i=0; i<arrayK.length; i++)
        arrayK[i]= new ArrayList<Integer>();

    for(int i=0; i<data.length; i++){
        if(data[i]<=k)
            arrayK[data[i]].add(i);
    }

    for(int i=0; i<arrayK.length/2; i++){
        if(!arrayK[i].isEmpty() && !arrayK[k-i].isEmpty())
        {
            for(Object index: arrayK[i])
                for(Object otherIndex: arrayK[k-i])
                    System.out.println("Numbers at indeces ["+index.toString()+", "+otherIndex.toString()+"] add up to "+k+".");
        }
    }

}
share|improve this answer
    
Thanks for the detailed solution. On this array input {6,4,5,1,4,2,0} I am getting answer as Numbers at indeces [6, 0] add up to 6. Numbers at indeces [3, 2] add up to 6. Numbers at indeces [5, 1] add up to 6. Numbers at indeces [5, 4] add up to 6. Is there something wrong? – AKIWEB Dec 4 '11 at 7:37
    
indeces [6, 0] -> {0,6} 0+6=6 okay indeces [3,2] -> {1, 5} 1+5=6 okay etc... – Mr1159pm Dec 4 '11 at 7:53
    
but [3, 2] and [5, 4] are not right I guess. – AKIWEB Dec 4 '11 at 7:54
    
these are ineces, not values. Your array indeces are zero based so item at index 5 is integer 2 and item at index 4 is integer 4 so 2+4 is 6. All seems okay. You could convert that println statement to print values instead of indeces but indeces are more useful (IMO) as you can have the same number at manyy different indeces. – Mr1159pm Dec 4 '11 at 7:58

As with your other question, O(log n) is impossible, since you have to examine the entire array. But O(n) is more or less possible.

If your range of possible integers is relatively small — that is, if it's within a constant factor of n — then you can write:

final boolean[] seen = new boolean[max - min + 1];
for(final int a : A)
{
    if(seen[input - a - min])
        System.out.println("{" + (input - a) + "," + a + "}");
    seen[a - min] = true;
}

If not, you can do the same thing, but using a HashSet<Integer> instead of an array:

final Set<Integer> seen = new HashSet<Integer>();
for(final int a : A)
{
    if(seen.contains(input - a))
        System.out.println("{" + (input - a) + "," + a + "}");
    seen.add(a);
}

but that will not have guaranteed O(n) time.

share|improve this answer
    
Can you explain what's the problem with HashSet method as you said it's not guaranteed O(n) time. – AKIWEB Dec 4 '11 at 6:57

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