125

Is there a way to take a List and convert it into a comma separated string?

I know I can just loop and build it, but somehow I think some of you guys a more cool way of doing it?

I really want to learn these types of 'tricks', so please explain or link to the docs on the method you use.

202
List<int> list = ...;
string.Join(",", list.Select(n => n.ToString()).ToArray())
17
  • 7
    Clever but slow and bloated, as it allocates one string per element. Using a StringBuilder would be much more efficient. – Steven Sudit Oct 6 '09 at 23:49
  • 3
    From what I saw online(quick search) String.Join is faster than using a StringBuilder. – Yuriy Faktorovich Oct 6 '09 at 23:51
  • 4
    stackoverflow.com/questions/585860/…, you are incorrect Steven – Yuriy Faktorovich Oct 6 '09 at 23:53
  • 6
    I think Steven is referring to the n.ToString() part rather than the String.Join. – Larsenal Oct 6 '09 at 23:53
  • 10
    Larsenal: but StringBuilder.Append(Int32) internally calls ToString on the integer anyway. StringBuilder doesn't magically avoid the cost of allocating a string for each element; it just tucks it nicely out of sight. – itowlson Oct 7 '09 at 0:03
122

Simple solution is

List<int> list = new List<int>() {1,2,3};
string.Join<int>(",", list)

I used it just now in my code, working funtastic.

3
  • 1
    Thank! this is beautiful approach – Irfan Ashraf Mar 16 '17 at 7:39
  • 2
    This is a better approach then the accepted answer one. With this approach you don't have to import Linq and this is faster. – JoKeRxbLaCk May 22 '19 at 9:58
  • Cool! I never knew string.Join has generic overloads. Thanks. – mrmashal Jan 22 '20 at 13:59
11
List<int> list = new List<int> { 1, 2, 3 };
Console.WriteLine(String.Join(",", list.Select(i => i.ToString()).ToArray()));
1
  • Great if you can't use .NET 4 – Greg Woods Apr 9 '13 at 11:42
6

For approximately one gazillion solutions to a slightly more complicated version of this problem -- many of which are slow, buggy, or don't even compile -- see the comments to my article on this subject:

https://docs.microsoft.com/en-us/archive/blogs/ericlippert/comma-quibbling

and the StackOverflow commentary:

Eric Lippert's challenge "comma-quibbling", best answer?

2
  • Thanks for the link. This string concatenation problem has turned out to be more complex, and more educational, than I had expected! – Steven Sudit Oct 7 '09 at 17:38
  • I guess it's old so it doesn't count, but this is not an answer. – Dave Cousineau Sep 27 '20 at 19:59
4

For extra coolness I would make this an extension method on IEnumerable<T> so that it works on any IEnumerable:

public static class IEnumerableExtensions {
  public static string BuildString<T>(this IEnumerable<T> self, string delim = ",") {
    return string.Join(delim, self)        
  }
}

Use it as follows:

List<int> list = new List<int> { 1, 2, 3 };
Console.WriteLine(list.BuildString(", "));
4
  • Two possible optimizations: 1) Append the delimeter after each item regardless, then remove the extra one after the loop ends. 2) Specify a capacity for the StringBuilder. – Steven Sudit Oct 7 '09 at 1:05
  • 1
    If you dig out Reflector, it turns out that Join sums up the lengths to precalculate the buffer size, and also "primes the pump" by appending the first string outside the loop, and then, inside the loop, unconditionally appending the delimiter before the next string. Combined with some unsafe/internal tricks, it should be very fast. – Steven Sudit Oct 7 '09 at 13:36
  • @Steven: followed your advice. – cdiggins Oct 19 '09 at 16:43
  • 1
    You hardcode the delimiter in your extension and ignore the passed in value for a delimiter, and missed the semicolon. It should be return string.Join(delim, self); – Andrew Jul 24 '19 at 1:41
1

Seems reasonablly fast.

IList<int> listItem = Enumerable.Range(0, 100000).ToList();
var result = listItem.Aggregate<int, StringBuilder, string>(new StringBuilder(), (strBuild, intVal) => { strBuild.Append(intVal); strBuild.Append(","); return strBuild; }, (strBuild) => strBuild.ToString(0, strBuild.Length - 1));
1

My "clever" entry:

        List<int> list = new List<int> { 1, 2, 3 };
        StringBuilder sb = new StringBuilder();
        var y = list.Skip(1).Aggregate(sb.Append(x.ToString()),
                    (sb1, x) =>  sb1.AppendFormat(",{0}",x));

        // A lot of mess to remove initial comma
        Console.WriteLine(y.ToString().Substring(1,y.Length - 1));

Just haven't figured how to conditionally add the comma.

4
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    Please don't write Select with side effects in the lambda. In this case you aren't even using y, so your Select is essentially just a foreach - so write it as such. – Pavel Minaev Oct 7 '09 at 0:05
  • I wasn't suggesting this as a good solution. OP wanted something more interesting than foreach. – Larsenal Oct 7 '09 at 0:07
  • Yeah, but abusing Select as foreach goes past "interesting" and into, well, "abuse". A more interesting approach here would be to use Enumerable.Aggregate with StringBuilder as a seed value - try that. – Pavel Minaev Oct 7 '09 at 0:09
  • Good idea. I have to step out, but I may give that a whirl. – Larsenal Oct 7 '09 at 0:10
0

you can use, the System.Linq library; It is more efficient:

using System.Linq;
string str =string.Join(",", MyList.Select(x => x.NombreAtributo));

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