293

I have a list stored in resultlist as follows:

var resultlist = results.ToList();

It looks something like this:

ID FirstName  LastName
-- ---------  --------
1  Bill       Smith
2  John       Wilson
3  Doug       Berg

How do I remove ID 2 from the list?

0

10 Answers 10

517

List<T> has three methods you can use (the 3rd method is behind this link).

RemoveAt(int index) can be used if you know the index of the item. For example:

resultlist.RemoveAt(1);

Or you can use Remove(T item):

var itemToRemove = resultlist.Single(r => r.Id == 2);
resultList.Remove(itemToRemove);

When you are not sure the item really exists you can use SingleOrDefault. SingleOrDefault will return null if there is no item (Single will throw an exception when it can't find the item). Both will throw when there is a duplicate value (two items with the same id).

var itemToRemove = resultlist.SingleOrDefault(r => r.Id == 2);
if (itemToRemove != null)
    resultList.Remove(itemToRemove);
2
  • 6
    well, than maybe var itemsToRemove = resultlist.Where(r => r.Id == 2); foreach (var itemToRemove in ItemsToRemove) resultList.Remove(itemToRemove);
    – Vlad
    Apr 4, 2012 at 20:51
  • 1
    Shouldn't this be resultlist.Items.RemoveAt(1); ?
    – DreamTeK
    Oct 17, 2016 at 8:57
117

Short answer:

Remove (from list results)

results.RemoveAll(r => r.ID == 2); will remove the item with ID 2 in results (in place).

(the other two possible remove methods are explained here)

Filter (without removing from original list results):

var filtered = results.Where(f => f.ID != 2).ToList(); returns all items except the one with ID 2, which are then accessible via the filtered variable. The results list is not touched and still contains all list items.
Important: Variable filtered does not contain copies of the original objects, instead it refers to the same objects as the original list (except that some are filtered out). Hence you can still manipulate them through both variables (here in this example, filtered[0] and results[0] would refer to the same item, because the first item wasn't filtered out - the filtering occured on the 2nd item in the list which has ID==2).

Detailed answer:

I think .RemoveAll() is very flexible, because you can have a list of item IDs which you want to remove - please regard the following example.

If you have:

class myClass {
    public int ID; public string FirstName; public string LastName;
}

and assigned some values to results as follows (used for all examples below):

var results = new List<myClass> {
    new myClass { ID=1, FirstName="Bill", LastName="Smith" },   // results[0]
    new myClass { ID=2, FirstName="John", LastName="Wilson" },  // results[1]
    new myClass { ID=3, FirstName="Doug", LastName="Berg" },    // results[2]
    new myClass { ID=4, FirstName="Bill", LastName="Wilson" }   // results[3]
};

Then you can define a list of IDs to remove:

var removeList = new List<int>() { 2, 3 };

And simply use this to remove them:

results.RemoveAll(r => removeList.Any(a => a==r.ID));

It will remove the items 2 and 3 and keep the items 1 and 4 - as specified by the removeList. Note that this happens in place, so there is no additional assigment required.

Of course, you can also use it on single items like:

results.RemoveAll(r => r.ID==4);

where it will remove Bill with ID 4 in our example.

A last thing to mention is that lists have an indexer, that is, they can also be accessed like a dynamic array, i.e. results[3] will give you the 4th element in the results list (because the first element has the index 0, the 2nd has index 1 etc).

So if you want to remove all entries where the first name is the same as in the 4th element of the results list, you can simply do it this way:

results.RemoveAll(r => results[3].FirstName == r.FirstName);

Note that afterwards, only John and Doug will remain in the list, Bill is removed (the first and last element in the example). Important is that the list will shrink automatically, so it has only 2 elements left - and hence the largest allowed index after executing RemoveAll in this example is 1
(which is results.Count() - 1).

Some Trivia:
You can use this knowledge and create a local function

void myRemove()  { var last = results.Count() - 1; 
                   results.RemoveAll(r => results[last].FirstName == r.FirstName); }

What do you think will happen, if you call this function twice?
Like

myRemove(); myRemove(); 

(Assuming the list results contains all 4 elements as declared before you call the function twice)

Answer (click to show):

The first call will remove Bill at the first and last position, the second call will remove Doug and only John Wilson remains in the list.


Note: Since C# Version 8, you can as well write results[^1] which means
results[results.Count() - 1], i.e. the function above looks much simpler:

void myRemove()  =>  results.RemoveAll(r => results[^1].FirstName == r.FirstName); 

So you would not need the local variable last anymore (see indices and ranges). Furthermore, since it is a one-liner, you don't require the curly braces and can use => instead. For a list of all the new features in C#, look here.


DotNetFiddle: Run the demo

51
resultList = results.Where(x=>x.Id != 2).ToList();

There's a little Linq helper I like that's easy to implement and can make queries with "where not" conditions a little easier to read:

public static IEnumerable<T> ExceptWhere<T>(this IEnumerable<T> source, Predicate<T> predicate)
{
    return source.Where(x=>!predicate(x));
}

//usage in above situation
resultList = results.ExceptWhere(x=>x.Id == 2).ToList();
7
  • 2
    Another similar approach (that uses a predicate) is to use List.FindIndex/List.RemoteAt (which has the "nice" or "not so nice" feature of being a mutating operation).
    – user166390
    Apr 4, 2012 at 20:50
  • True, but be careful about saying that List's operation is mutating. List uses an array behind the scenes, and it can recreate its array with a smaller or larger capacity when it thinks that's necessary. Usually, removal is an in-place mutation of the existing array.
    – KeithS
    Apr 4, 2012 at 21:09
  • This isnt thread safe, and for its simplicity you can just use SingleOrDefault, it doesnt need to be contained in a static method
    – user1043000
    Aug 27, 2013 at 20:08
  • Nobody said it was thread-safe (and whether it is depends on what the threads are supposed to be doing; it may in fact be preferable to give a different in-memory construct to a worker thread versus letting them all work on one concurrent collection), and the OP wants all records except the one matching the predicate, so SingleOrDefault would in fact return exactly what they don't want. The "static method" is in fact an extension method, like most of Linq, and it works whenever what you don't want (one element or many) is easier to define than what you do.
    – KeithS
    Aug 27, 2013 at 22:44
  • fyi: learn.microsoft.com/en-us/dotnet/api/…
    – edelwater
    Apr 4, 2021 at 15:52
7

You don't specify what kind of list, but the generic List can use either the RemoveAt(index) method, or the Remove(obj) method:

// Remove(obj)
var item = resultList.Single(x => x.Id == 2);
resultList.Remove(item);

// RemoveAt(index)
resultList.RemoveAt(1);
6

There is another approach. It uses List.FindIndex and List.RemoveAt.

While I would probably use the solution presented by KeithS (just the simple Where/ToList) this approach differs in that it mutates the original list object. This can be a good (or a bad) "feature" depending upon expectations.

In any case, the FindIndex (coupled with a guard) ensures the RemoveAt will be correct if there are gaps in the IDs or the ordering is wrong, etc, and using RemoveAt (vs Remove) avoids a second O(n) search through the list.

Here is a LINQPad snippet:

var list = new List<int> { 1, 3, 2 };
var index = list.FindIndex(i => i == 2); // like Where/Single
if (index >= 0) {   // ensure item found
    list.RemoveAt(index);
}
list.Dump();        // results -> 1, 3

Happy coding.

6

More simplified:

resultList.Remove(resultList.Single(x => x.Id == 2));

there is no needing to create a new var object.

5

Try this code:

resultlist.Remove(resultlist.Find(x => x.ID == 2));
0

... or just resultlist.RemoveAt(1) if you know exactly the index.

0
0

If you don't want to mutate the original List<T> with .RemoveAt() but need a new List instead I find this very handy:

List<string> originalList = new List<string> { "Bill", "John", "Doug" };
List<string> updatedList = originalList.Where((_, index) => index != 1).ToList();
// { "Bill", "Doug" }
-2
{
    class Program
    {
        public static List<Product> list;
        static void Main(string[] args)
        {

            list = new List<Product>() { new Product() { ProductId=1, Name="Nike 12N0",Brand="Nike",Price=12000,Quantity=50},
                 new Product() { ProductId =2, Name = "Puma 560K", Brand = "Puma", Price = 120000, Quantity = 55 },
                 new Product() { ProductId=3, Name="WoodLand V2",Brand="WoodLand",Price=21020,Quantity=25},
                 new Product() { ProductId=4, Name="Adidas S52",Brand="Adidas",Price=20000,Quantity=35},
                 new Product() { ProductId=5, Name="Rebook SPEED2O",Brand="Rebook",Price=1200,Quantity=15}};


            Console.WriteLine("Enter ProductID to remove");
            int uno = Convert.ToInt32(Console.ReadLine());
            var itemToRemove = list.Find(r => r.ProductId == uno);
            if (itemToRemove != null)
                list.Remove(itemToRemove);
            Console.WriteLine($"{itemToRemove.ProductId}{itemToRemove.Name}{itemToRemove.Brand}{itemToRemove.Price}{ itemToRemove.Quantity}");
            Console.WriteLine("------------sucessfully Removed---------------");

            var query2 = from x in list select x;
            foreach (var item in query2)
            {
                /*Console.WriteLine(item.ProductId+" "+item.Name+" "+item.Brand+" "+item.Price+" "+item.Quantity );*/
                Console.WriteLine($"{item.ProductId}{item.Name}{item.Brand}{item.Price}{ item.Quantity}");
            }

        }

    }
}
1
  • 1
    Thank you for your interest in contributing to the Stack Overflow community. This question already has quite a few answers—including one that has been extensively validated by the community. Are you certain your approach hasn’t been given previously? If so, it would be useful to explain how your approach is different, under what circumstances your approach might be preferred, and/or why you think the previous answers aren’t sufficient. Can you kindly edit your answer to offer an explanation? Sep 28, 2023 at 18:10

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