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Tried to googled it but with no luck. How can I find the second maximum number in an array with the smallest complexity?

code OR idea will be much help.

I can loop through an array and look for the maximum number after that, I have the maximum number and then loop the array again to find the second the same way.

But for sure it is not efficient.

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Something like this stackoverflow.com/questions/852439/…. And then take the second item. –  YoupTube Feb 11 '13 at 10:41
    
What do you mean by 'smallest complexity'? –  Phil Feb 11 '13 at 10:44
1  
Define "complexity", are we talking clear maintainable code? Or computational efficiency? –  Massif Feb 11 '13 at 10:44
    
The fastest and most efficient algorithm –  slash1z Feb 11 '13 at 10:45

6 Answers 6

You could sort the array and choose the item at the second index, but the following O(n) loop will be much faster.

int[] myArray = new int[] { 0, 1, 2, 3, 13, 8, 5 };
int largest = int.MinValue;
int second = int.MinValue;
foreach (int i in myArray)
{
 if (i > largest)
 {
  second = largest;
  largest = i;
 }
else if (i > second)
    second = i;
}

System.Console.WriteLine(second);

OR

Try this (using LINQ):

int secondHighest = (from number in test
                             orderby number descending
                             select number).Distinct().Skip(1).First()

How to get the second highest number in an array in Visual C#?

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I liked that Linq solution, Is it efficient? please explain. –  slash1z Feb 11 '13 at 10:51
    
yes efficient and good also.............. Its sorting the numbers in the order "descending" and then skipping first one and getting the Second one. –  andy Feb 11 '13 at 10:52
    
Yes i tried that working good! and very nice approach, How can I 'measure' the complexity in that? –  slash1z Feb 11 '13 at 10:58
    
Minor add, You should add Distinct() before Skipping 1. –  slash1z Feb 11 '13 at 11:05
    
Question : in the LINQ implementation, will it actually sort the whole array ? Indeed, this is not theoretically required (the first solution that you propose doesn't sort it, it just walks through once) –  Myobis Jun 12 '13 at 7:50
public static int F(int[] array)
{
    array = array.OrderByDescending(c => c).Distinct().ToArray();
    switch (array.Count())
    {
        case 0:
            return -1;
        case 1:
            return array[0];
    }
    return array[1];
}
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Sort the array and take the second to last value?

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1  
Sorting is not exactly a smaller complexity. He's getting O(n) right now. Sorting will only increase it to O(n lg n), unless RADIX is used. –  Achrome Feb 11 '13 at 10:42

It's not like that your structure is a tree...It's just a simple array, right?

The best solution is to sort the array. And depending on descending or ascending, display the second or the 2nd last element respectively.

The other alternative is to use some inbuilt methods, to get the initial max. Pop that element, and then search for the max again. Don't know C#, so can't give the direct code.

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You can do with O(n) instead of O(2n) or O(n log n). –  Joey Feb 11 '13 at 10:47

You'd want to sort the numbers, then just take the second largest. Here's a snippet without any consideration of efficiency:

var numbers = new int[] { 3, 5, 1, 5, 4 };
var result=numbers.OrderByDescending(x=>x).Distinct().Skip(1).First();
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This should be a very easy to understand program to find 2nd largest number

int[] a = new int[5]{5,2,3,6,9};

        Console.WriteLine("Array");
        foreach(int i in a)
        {
            Console.WriteLine(i);
        }
        Console.WriteLine("Sorting");
        Array.Sort(a);
        foreach(int c in a)
        {
            Console.WriteLine(c);
        }
        Console.WriteLine("reverse");
        Array.Reverse(a);
        foreach(int t in a)
        {
            Console.WriteLine(t);
        }
        Console.WriteLine("Sec highest no is");
        Console.WriteLine(a[1]);
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