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I want to remove duplicates from list, without changing order of unique elements in the list.

Jon Skeet & others have suggested to use following

list = list.Distinct().ToList();

removing duplicates from a list C#

Remove duplicates from a List in C#

Is it guaranteed that the order of unique elements would be same as before? If yes, please give a reference that confirms this as I couldn't find anything on it in documentation.

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3 Answers 3

up vote 20 down vote accepted

It's not guaranteed, but it's the most obvious implementation. It would be hard to implement in a streaming manner (i.e. such that it returned results as soon as it could, having read as little as it could) without returning them in order.

You might want to read my blog post on the Edulinq implementation of Distinct().

Note that even if this were guaranteed for LINQ to Objects (which personally I think it should be) that wouldn't mean anything for other LINQ providers such as LINQ to SQL.

The level of guarantees provided within LINQ to Objects is a little inconsistent sometimes, IMO. Some optimizations are documented, others not. Heck, some of the documentation is flat out wrong.

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I am accepting it because 1) It clearly answers my concern whether its guaranteed or not 2) The linked post delves deeper into undocumented aspects of Distinct 3) The linked post also has a sample implementation that can be used as reference to implement a Distinct on Lists with that guarantee. –  Nitesh Chordiya Jan 19 '11 at 13:28

Yes, in order of first occurrence in original list. It is guaranteed for .Net Framework 3.5

I did a little investigation with Reflector. After disassembling System.Core.dll, Version=3.5.0.0 you can see that Distinct() is an extension method, which looks like this:

public static class Emunmerable
{
    public static IEnumerable<TSource> Distinct<TSource>(this IEnumerable<TSource> source)
    {
        if (source == null)
            throw new ArgumentNullException("source");

        return DistinctIterator<TSource>(source, null);
    }
}

So, interesting here is DistinctIterator, which implements IEnumerable and IEnumerator. Here is simplified (goto and lables removed) implementation of this IEnumerator:

private sealed class DistinctIterator<TSource> : IEnumerable<TSource>, IEnumerable, IEnumerator<TSource>, IEnumerator, IDisposable
{
    private bool _enumeratingStarted;
    private IEnumerator<TSource> _sourceListEnumerator;
    public IEnumerable<TSource> _source;
    private HashSet<TSource> _hashSet;    
    private TSource _current;

    private bool MoveNext()
    {
        if (!_enumeratingStarted)
        {
            _sourceListEnumerator = _source.GetEnumerator();
            _hashSet = new HashSet<TSource>();
            _enumeratingStarted = true;
        }

        while(_sourceListEnumerator.MoveNext())
        {
            TSource element = _sourceListEnumerator.Current;

             if (!_hashSet.Add(element))
                 continue;

             _current = element;
             return true;
        }

        return false;
    }

    void IEnumerator.Reset()
    {
        throw new NotSupportedException();
    }

    TSource IEnumerator<TSource>.Current
    {
        get { return _current; }
    }

    object IEnumerator.Current
    {        
        get { return _current; }
    }
}

As you can see - enumerating goes in order provided by source enumerable (list, on which we are callin Distinct). Hashset used only for determining whether we already returned such element or not. If not, we are returning it, else - continue enumerating on source.

So, it is guaranteed, that Distinct() will return elements exactly in same order, which are provided by collection to which Distinct was applied.

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2  
Is it a well documented behavior? –  abatishchev Jan 19 '11 at 11:49
    
I mean, could you please give a link or reference that confirms this? The documentation doesn't say anything about it. –  Nitesh Chordiya Jan 19 '11 at 11:49
    
Yes, sure - see the link above –  Sergey Berezovskiy Jan 19 '11 at 11:53
    
The linked answer contains a reference to documentation that says: "The result sequence is unordered." –  mgronber Jan 19 '11 at 12:22
12  
@lazyberezovsky: When people talk about guarantees, they normally mean documented behaviour which is reasonable to rely upon. For example, the docs for GroupBy do specify behaviour, but the docs for Distinct don't. –  Jon Skeet Jan 19 '11 at 13:57

According to the documentation the sequence is unordered.

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1  
Additional info to find it: In the link, refer to the "Remarks" section. "The result sequence is unordered." –  Curtis Yallop May 6 at 23:46

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