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This is an interview question.

There are some random numbers given (let's say in an integer array).

  1. How can we sort all the even numbers in ascending order first and then sort all the odd numbers in descending order.
  2. which Collection suits best.

Input numbers:

12 67 1 34 9 78 6 31

Output saved in Collection:

6 12 34 78 67 31 9 1 
share|improve this question
    
I'm not sure if this is a question you've been given (and are seeking answers to compare yours with) or if it's a question you plan to give. But either way, "incrementally" and "decrementally" don't mean what you're using them for. It should be "ascending" and "descending". –  Plutor Feb 15 '12 at 13:36
1  
@Plutor: Thanks for shooting it out. I am average at English!. I have changed the title. Btw this is a question asked. –  Kaipa M Sarma Feb 15 '12 at 13:47

12 Answers 12

up vote 10 down vote accepted

Any collection that supports sorting with a custom comparer will do - even an array. Implement your custom comparator as follows:

public int compare(int x, int y) {
    if (x&1 == y&1) {
        // Both numbers are odd or both numbers are even
        if (x&1 == 0) {
            // Both numbers are even: compare as usual
            return Integer.compare(x, y);
        } else {
            // Both numbers are odd: compare in reverse
            return Integer.compare(y, x);
        }
    }
    // One is odd, the other one is even
    if (x&1 == 0) {
        return -1;
    }
    return 1;
}
share|improve this answer
    
+1, fixed two typos. Method names should start with a lowercase and I changed "comparer" to "comparator" : ) –  TacticalCoder Feb 8 '12 at 14:09
    
You can't compare two integers by a - b - that won't work correctly in 25% of all cases assuming input over the whole range... –  Voo Feb 8 '12 at 14:15
    
@Voo I replaced the hacker's version of the comparator with the call to the official Integer.compare() method. Thanks! –  dasblinkenlight Feb 8 '12 at 14:30
1  
Its worth noting that -1 % 2 == -1 and 1 % 2 == 1 i.e. n % 2 has three possible results. A simple fix is to use (x & 1) == (y & 1) or ((x ^ y) & 1) == 0 –  Peter Lawrey Feb 8 '12 at 15:07
2  
@PeterLawrey Thanks! In my own code I use bit ops to check if a number is odd or even. I decided to go for a bit more expressive code with the remainder operator, and got it wrong :) –  dasblinkenlight Feb 8 '12 at 15:12

You could do as follows

public ArrayList<Integer> sort(Integer[] input) {
        int length = input.length;
        ArrayList<Integer> oddNumber = new ArrayList<Integer>(0);
        ArrayList<Integer> evenNumber = new ArrayList<Integer>(0);
        for (int i = 0; i < length; i++) {
            Integer val = input[i];
            if(isEven(val)){
                evenNumber.add(val);
            } else {
                oddNumber.add(val);
            }
        }
        Collections.sort(evenNumber);
        Collections.sort(oddNumber, Collections.reverseOrder());

        evenNumber.addAll(oddNumber);

        return evenNumber;
    }

    public boolean isEven(Integer x) {
        return x % 2 == 0;
    }

EDIT

I implemented a comparator based on Jesper algorithm.

public ArrayList<Integer> sort(Integer[] input) {
        ArrayList<Integer> output = new ArrayList<Integer>(0);
        output.addAll(Arrays.asList(input));

        Collections.sort(output, new EvenOddComparator());

        return output;
    }

    public class EvenOddComparator implements Comparator<Integer>
    {
        final int BEFORE = -1;
        final int EQUAL = 0;
        final int AFTER = 1;

        @Override
        public int compare(Integer o1, Integer o2) {
            if (o1 % 2 == 0 && o2 % 2 != 0) {
                return BEFORE;
            } else if (o1 % 2 != 0 && o2 % 2 == 0) {
                return AFTER;
            } else if (o1 % 2 == 0 && o2 % 2 == 0) {
                return o1.compareTo(o2);
            } else if (o1 % 2 != 0 && o2 % 2 != 0) {
                return o2.compareTo(o1);
            }
            return EQUAL;
        }

    }

Cheers.

share|improve this answer
    
The list oddNumber was never sorted. Ass the even number should be first there is no need to create another list, we can just add all that list. In addition we know that size of the result so there is no need to use 0 as begin size of ArrayList. Concluding the algorithm you have presented is not the best choice for an interview answer. –  Damian Leszczyński - Vash Feb 8 '12 at 14:08
    
Thanks for pointing the issue in my code. I fixed it. –  Xavier Balloy Feb 8 '12 at 14:15
    
Your welcome, but better then a sort method, you should use a Comparator implementation and focus on the algorithm. Please look at Jesper answer and try to implement that logic. –  Damian Leszczyński - Vash Feb 8 '12 at 14:18
    
Well, there's another version of the algorithm based on Jesper anwser ;) –  Xavier Balloy Feb 8 '12 at 14:52
    
That is better but the else is not required and the last return as EQUAL look like abnormal. –  Damian Leszczyński - Vash Feb 8 '12 at 15:38

If it is not required that you implement the whole sorting algorithm yourself, you could just use Collections.sort(list, comparator), and you'll need to supply your own Comparator<Integer> implementation that compares the numbers and returns a result so that the numbers are sorted in the order that is defined by the rules.

The comparator would have to implement these rules:

  1. If first number is even and second number is odd, return -1 (because even numbers must come before odd numbers).
  2. If first number is odd and second number is even, return 1 (because even numbers must come before odd numbers).
  3. If both numbers are even: Compare both numbers, return -1 if first < second, 0 if equal, 1 if first > second (sorts even numbers ascending).
  4. If both numbers are odd: Compare both numbers, return 1 if first < second, 0 if equal, -1 if first > second (sorts odd numbers descending).

If you have the numbers in an array instead of a List, then use Arrays.sort(array, comparator).

share|improve this answer

Here's the code :

@Override
public int compare(Integer o1, Integer o2) {
    if (o1 % 2 ==0) 
    {
        if (o2 % 2 == 0)
        {
            if (o1 < o2)
                return -1;
            else
                return 1;
        }
        //if (o2 % 2 != 0)
        else
        {
            return -1;
        }
    }
    else 
    {
        if (o2 % 2 != 0)
        {
            if (o1 < o2)
                return 1;
            else
                return -1;
        }
        //if (o2 % 2 == 0)
        else
        {
            return 1;
        }
    }
}
share|improve this answer

I dont think any one Collection is necessarily better than the other, I would use something that extends a list rather than a set though and definitely not a map.

What I would do is that in my Collection.sort call, I would check if the number mod 2 (number%2) is zero then I would would do a simple compareTo otherwise I would do an Integer.MAX_INT - oddNumber and then do a compareTo. That way the larger the odd number the smaller the generated number and it will be sorted to the end of the list in a descending order.

Integer num1 = (o1%2 == 0)? new Integer(o1) : new Integer(Integer.MAX_INT - o1);
Integer num2 = (o2%2 == 0)? new Integer(o2) : new Integer(Integer.MAX_INT - o2);
return num1.compareTo(num2);

Above is just sudo code, don't take it too literally, its just to give you an idea.

share|improve this answer
    
Creating a new instance of Integer is not a best choice, instead of new try to use static method Integer.valueOf(int) –  Damian Leszczyński - Vash Feb 8 '12 at 13:58
    
The problem here is that odd numbers can appear before even numbers. e.g. 1 would appears before 2. –  Peter Lawrey Feb 8 '12 at 15:04
    
It will work because all odd numbers will be sorted to the end of the list because they are sorted as if their value is MAX_INT - oddNum. @Vash thanks for the improvement, as I stated it was just sudocode to give everyone an idea of what should be done. –  Ali Feb 8 '12 at 17:50

You can use one data structure which holds all the numbers and then, create two SortedSets, one for odd and one for even. The sorted set can take a Comparator as a parameter which allows you to sort elements while you enter data.

Once that you will have gone through all the numbers, create a new collection which merges the two sorted sets.

You can also replace the sorted sets by using two Lists. Once that you have added all the numbers, call Collections.sort() on the lists and then merge as before.

share|improve this answer

If all numbers are positive, you can multiply your odd numbers by "-1", do a standard sort, then again multiply all odd numbers by "-1".

If you want the order as in a question, you'll also have to swap "negative" and "positive" array parts before the 2nd multiplication.

Total overhead: 3 more loops in addition to a chosen sort algorithm.

List<Integer> numbers = new ArrayList<Integer>();
//add some numbers here
//12 67 1 34 9 78 6 31 <-- in the list
for (int i = 0; i < numbers.size(); i++) {
    if (numbers.get(i) % 2 == 1) {
       numbers.set(i, numbers.get(i) * (-1));
    }
}
//12 -67 -1 34 -9 78 6 -31 <-- before sort
sort(numbers);
//-67 -31 -9 -1 6 12 34 78 <-- after sort
swapNegativeAndPositiveParts(numbers);
//6 12 34 78 -67 -31 -9 -1 <-- after swap
for (int i = 0; i < numbers.size(); i++) {
    if (numbers.get(i) % 2 == 1) {
       numbers.set(i, numbers.get(i) * (-1));
    }
}
//6 12 34 78 67 31 9 1  <-- after second multiplication
share|improve this answer
    
The sorting with OP rules is possible with single run, only thing that we have to establish the contract of sorting. –  Damian Leszczyński - Vash Feb 8 '12 at 14:02
    
btw -1 % 2 == -1 –  Peter Lawrey Feb 8 '12 at 15:09
    
@Peter Lawrey: heh, really. –  Roman Feb 8 '12 at 16:13

Ad1. We need to create a Comparator<Tnteger> that works with this rules.

  1. If we compare a even number with odd number then even is always greater.
  2. If we compare two odd number the result is as we would like to desc sort.
  3. If we compare two even number the result is as we would like to asc sort.

Ad2. I do not understand.

share|improve this answer

I would normalise all the numbers and then sort them.

public static void main(String[] args) {
    int[] values = {Integer.MIN_VALUE, 0, Integer.MAX_VALUE - 1, Integer.MIN_VALUE + 1, -1, 1, Integer.MAX_VALUE};
    for (int i = 0; i < values.length; i++) {
        int value = encode(values[i]);
        assert decode(value) == values[i];
        values[i] = value;
    }
    Arrays.sort(values);
    for (int i = 0; i < values.length; i++)
        // give back the original value.
        values[i] = decode(values[i]);
    System.out.println(Arrays.toString(values));
}

private static int decode(int value) {
    return value >= 0
            ? Integer.MAX_VALUE - (value << 1)
            : Integer.MIN_VALUE + (value << 1);
}

private static int encode(int value) {
    return (value & 1) == 0
            ? (value >> 1) + Integer.MIN_VALUE / 2
            : Integer.MAX_VALUE / 2 - (value >> 1);
}

prints

[-2147483648, 0, 2147483646, 2147483647, 1, -1, -2147483647]

There is extra shifting here so very large numbers are not mangled. (which is why the number is divided by two)

share|improve this answer

Like this:

var list = new List<int>{1,5,2,6,3,9,10,11,12};

var sorted = list.Where (l => l%2 ==0).OrderBy (l=>l).Union(list.Where (l => l%2 != 0).OrderByDescending (l=>l));
share|improve this answer

I just coded a fast example, as below:

public class CustomSorting {
    public static void main(String[] args) {
        Integer[] intArray = new Integer[] {12, 67, 1, 34, 9, 78, 6, 31};
        Arrays.sort(intArray, new Comparator() {
            @Override
            public int compare(Object obj1, Object obj2) {
                Integer int1 = (Integer) obj1;
                Integer int2 = (Integer) obj2;

                int mod1 = Math.abs(int1%2);
                int mod2 = Math.abs(int2%2);

                return ((mod1 == mod2) ? ((mod1 == 0) ? int1.compareTo(int2) : int2.compareTo(int1)) : ((mod1 < mod2) ? -1 : 1));
            }
        });
    }
}

Output:

[6, 12, 34, 78, 67, 31, 9, 1]

share|improve this answer
    
Interesting... can you explain the return statement? it's a little hard to read. –  Ali Feb 8 '12 at 17:55
    
Ali, it is similar to the logic posted by dasblinkenlight user...just used ternary operator to replace if's and else's. –  bchetty Feb 8 '12 at 18:15

package com.java.util.collection;

import java.util.Arrays; import java.util.Collections;

public class EvenOddSorting {

public static void eventOddSort(int[] arr) {
    int i =0;
    int j =arr.length-1;
    while(i<j) {
        if(isEven(arr[i]) && isOdd(arr[j])) {
            i++;
            j--;
        } else if(!isEven(arr[i]) && !isOdd(arr[j])) {
            swap(i,j,arr);
        } else if(isEven(arr[i])){
            i++;
        } else{
            j--;
        }

    }   
    display(arr);
    // even number sorting
    Arrays.sort(arr,0,i);
    insertionSort(arr,i,arr.length);
    // odd number sorting
    display(arr);

}

/**
 * Instead of insertion sort, you can use merge or quick sort.
 * @param arr
 * @param firstIndex
 * @param lastIndex
 */
public static void insertionSort(int[] arr, int firstIndex, int lastIndex){
    for(int i=firstIndex+1;i<lastIndex;i++){
        int key =arr[i];
        int j=i-1;
        while(j>=firstIndex  && key > arr[j]) {
            arr[j+1] = arr[j];
            arr[j] =key;
            j=j-1;
        }
        System.out.println("\nAfter "+(i+1) +"  Iteration : ");
        display(arr);
    }
}

public static void display(int[] arr) {
    System.out.println("\n");
    for(int val:arr){
        System.out.print(val +"  ");
    }
}

private static void swap(int pos1, int pos2, int[] arr) {
    int temp = arr[pos1];
    arr[pos1]= arr[pos2];
    arr[pos2]= temp;
}

public static boolean isOdd(int i) {
    return (i & 1) != 0;
}
public static boolean isEven(int i) {
    return (i & 1) == 0;
}
public static void main(String[] args) {
    int arr[]={12, 67, 1, 34, 9, 78, 6, 31};
    eventOddSort(arr);
}

}

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