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i have a linklist like bellow

        LinkedList<int> linked = new LinkedList<int>();
        var array = new int[] { 23, 55, 64, 65 };
        foreach (var item in array)
        {
            linked.AddLast(item);
        }

i add several integers in it now i want to find what is the index number of 64 in linklist ,
how can i do this .
Thanks

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1  
If you need a collection based on indexes, consider using List<T> instead of a linked list. –  dtb Nov 15 '12 at 8:09
1  
    
Are you sure that LinkedList is suited for your problem? –  Groo Nov 15 '12 at 8:12
    
yes , i have to use LinkedList –  Smartboy Nov 15 '12 at 8:13
    
The other way around how-do-i-get-the-n-th-element-in-a-linkedlistt –  nawfal Jun 2 '14 at 16:47

4 Answers 4

up vote 8 down vote accepted

The only way is to check element by element and increase a counter (by "only way", I am saying that other methods like LINQ need to do the same thing internally).

A hand-written extension method would look something like this:

public static class LinkedListExt
{
    public static int IndexOf<T>(this LinkedList<T> list, T item)
    {
        var count = 0;
        for (var node = list.First; node != null; node = node.Next, count++)
        {
            if (item.Equals(node.Value))
                return count;
        }
        return -1;
    }
}

But it can easily be done using LINQ as @L.B wrote (yielding the same time complexity).

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i am pointing your answer as correct because answer should always be easy to understand , even for nerds –  Smartboy Nov 15 '12 at 8:28
    
Thanks , alot @Groo –  Smartboy Nov 15 '12 at 8:30
    
@Smartboy: thanks, but LINQ is not that hard once you get used to it. I also prefer LINQ over manually iterating, it's more concise. This was just meant to show the algorithm. –  Groo Nov 15 '12 at 8:31
int index = linked.Select((item, inx) => new { item, inx })
                  .First(x=> x.item == 64).inx;
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it gives me the result , but can you please elaborate it –  Smartboy Nov 15 '12 at 8:16
    
Pointless with a circular linked list. @Smartboy: That's linq, Enumerable.Select and Enumerable.Where can incorporate the element's index. –  Tim Schmelter Nov 15 '12 at 8:21
    
@TimSchmelter I must be missing something. How do you create a circular linked list from LinkedList<int>? –  L.B Nov 15 '12 at 8:33
    
@Smartboy: when you use a Select extension method, it uses LinkedLists implementation of IEnumerable to simply iterate through elements, one at a time. The Select method then projects each element into a new instance of an anonymous class with two properties (item value "item", and its index "inx"), and the First method then accepts an anonymous method specifying a search predicate (takes an int, returns a bool) and returns the first element which satisfies the condition. One slight problem with First is that it throws an exception when no item is matched. –  Groo Nov 15 '12 at 8:36
    
@L.B: stackoverflow.com/a/2670199/284240 –  Tim Schmelter Nov 15 '12 at 9:05

I think you should make your own function to parse the list and check. The "Find" function returns only the first occurrence and,for you, it is possible to have 2 or more occurrences of 64 in the list.

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1  
I don't thing that's the problem in OP's case. IndexOf works the same way. –  Groo Nov 15 '12 at 8:25

Here is an alternate LINQ implementation that avoids creating anonymous objects and returns -1 if the item is not in the list:

int index = linked.Select((n, i) => n == 64 ? (int?)i : null).
            FirstOrDefault(n => n != null) ?? -1;

It converts the sequence of numbers to a sequence containing the index of a match or null otherwise. It takes the first of these if there is one, otherwise converts the default int? to -1.

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