1

I have to distinct list of object but NOT only by ID because sometimes two different objects have same ID. I have class:

public class MessageDTO
{

    public MessageDTO(MessageDTO a)
    {
        this.MsgID = a.MsgID;
        this.Subject = a.Subject;
        this.MessageText = a.MessageText;
        this.ViewedDate = a.ViewedDate;
        this.CreatedDate = a.CreatedDate;
    }

    public int? MsgID { get; set; }
    public string Subject { get; set; }
    public string MessageText { get; set; }
    public System.DateTime? ViewedDate { get; set; }
    public System.DateTime? CreatedDate { get; set; }
}

How I can distinct list of:

List<MessageDTO> example;

Thanks

  • So what makes it distinct then? If you have two instances with the same ID and Subject, for example, but everything else is different, then which one do you want to keep? – Grant Jul 23 '14 at 4:41
  • I have to remove duplicate object who has duplicate object same all properties. Example MsgID, Subject, MessageText, ViewedDate and CreateDate. If some property is different, that object has to stay in list. – kat1330 Jul 23 '14 at 4:46
  • Using Matthew's answer, just compare all the fields in Equals: return a.MsgID == b.MsgID && a.Subject == b.Subject && ... – Grant Jul 23 '14 at 4:48
5

Use LINQ.

public class MessageDTOEqualityComparer : EqualityComparer<MessageDTO>
{
    public bool Equals(MessageDTO a, MessageDTO b)
    {
        // your logic, which checks each messages properties for whatever
        // grounds you need to deem them "equal." In your case, it sounds like
        // this will just be a matter of iterating through each property with an
        // if-not-equal-return-false block, then returning true at the end
    }

    public int GetHashCode(MessageDTO message)
    {
        // your logic, I'd probably just return the message ID if you can,
        // assuming that doesn't overlap too much and that it does
        // have to be equal on the two
    }
}

Then

return nonDistinct.Distinct(new MessageDTOEqualityComparer());

You can also avoid the need for an extra class by overriding object.Equals(object) and object.GetHashCode() and calling the empty overload of nonDistinct.Distinct(). Make sure you recognize the implications of this decision, though: for instance, those will then become the equality-testing functions in all non-explicit scopes of their use. This might be perfect and exactly what you need, or it could lead to some unexpected consequences. Just make sure you know what you're getting into.

2

I you want to use other properties, you should implement IEqualityComparer interface. More on: msdn

class MsgComparer : IEqualityComparer<MessageDTO>
{
    public bool Equals(MessageDTO x, MessageDTO Oy)
    {
    }

    // If Equals() returns true for a pair of objects 
    // then GetHashCode() must return the same value for these objects.

    public int GetHashCode(MessageDTO m)
    {
           //it must br overwritten also
    }

}

Then:

example.Distinct(new MsgComparer());

You could also overwrite Equals in MessageDTO class:

class MessageDTO 
{
    // rest of members
    public override bool Equals(object obj) 
    {
        // your stuff. See: http://msdn.microsoft.com/en-us/library/ms173147%28v=vs.80%29.aspx
    }
    public override int GetHashCode()
    {
    }
}

Then it's enough:

example.Distinct();
1

You could use the extension method DistinctBy from the MoreLinq library:

string[] source = { "first", "second", "third", "fourth", "fifth" };
var distinct = source.DistinctBy(word => word.Length);

See here:

0

I recommend you using solution of @Matthew Haugen

In case you don't want to create a new class for that, there is a way to use LINQ by grouping you list by distinct field(s) then select the first item on this group. For example:

example.(e => new { e.MsgID, e.Subject }).Select(grp => grp.FirstOrDefault());

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.