12

I have created a class as follows:

public class StringMatch
{
   public int line_num;
   public int num_of_words;
}

I have created a list

List<StringMatch> sm;

it has few elements in it.

How do I sort this list using the Comparison<T> comparison overload? The sorting must be done based on the num_of_words field.

20

You can use Linq OrderBy method for that -

sm = sm.OrderBy(i => i.num_of_words).ToList();
  • I wanted stable sorting and I found out that orderby does a stable sort. This was useful. Thanks!! – Kaushik Jan 3 '14 at 11:33
  • 1
    This makes a new list object. – Sentinel May 2 '18 at 11:44
19

You can write lambda expression comparing two objects like this:

sm.Sort((x,y)=>x.num_of_words.CompareTo(y.num_of_words));

you can inverse sorting adding -

sm.Sort((x,y)=>-x.num_of_words.CompareTo(y.num_of_words));
  • You dont need to use a lambda. Any delegate works just fine. – Gusdor Jan 3 '14 at 11:16
  • @Gusdor ok, wrong word used, thanks – wudzik Jan 3 '14 at 11:16
  • Nice code but how this works? – ifooi Jun 21 '16 at 10:21
2

There is a usage example on the official microsoft documentation. The example uses strings. Replace with int for your use.

private static int CompareDinosByLength(string x, string y)
{
   ...
}

List<string> dinosaurs = new List<string>();
dinosaurs.Add("Pachycephalosaurus");
dinosaurs.Add("Amargasaurus");
dinosaurs.Add("");
dinosaurs.Add(null);
dinosaurs.Add("Mamenchisaurus");
dinosaurs.Add("Deinonychus");
dinosaurs.Sort(CompareDinosByLength);

A little google goes a long way.

-1

Using Comparison is an older and more clunky way of sorting collections. My advice would be to use the OrderBy method found in Linq:

var orderedSm = sm.OrderBy(x => x.num_of_words).ToList();
  • 3
    This creates a new List object and does not meet the question requirements that the Sort overload be used. – Gusdor Jan 3 '14 at 11:17

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.