71

I only found a way to do it the opposite way round: create a comma separated string from an int list or array, but not on how to convert input like string str = "1,2,3,4,5"; to an array or list of ints.

Here is my implementation (inspired by this post by Eric Lippert):

    public static IEnumerable<int> StringToIntList(string str)
    {
        if (String.IsNullOrEmpty(str))
        {
            yield break;
        }

        var chunks = str.Split(',').AsEnumerable();

        using (var rator = chunks.GetEnumerator())
        {
            while (rator.MoveNext())
            {
                int i = 0;

                if (Int32.TryParse(rator.Current, out i))
                {
                    yield return i;
                }
                else
                {
                    continue;
                }
            }
        }
    }

Do you think this is a good approach or is there a more easy, maybe even built in way?

EDIT: Sorry for any confusion, but the method needs to handle invalid input like "1,2,,,3" or "###, 5," etc. by skipping it.

1
  • You are needlessly complicating your code by not using foreach. The post you're copying from is solving a completely different problem.
    – SLaks
    Nov 19, 2009 at 14:24

8 Answers 8

87

You should use a foreach loop, like this:

public static IEnumerable<int> StringToIntList(string str) {
    if (String.IsNullOrEmpty(str))
        yield break;

    foreach(var s in str.Split(',')) {
        int num;
        if (int.TryParse(s, out num))
            yield return num;
    }
}

Note that like your original post, this will ignore numbers that couldn't be parsed.

If you want to throw an exception if a number couldn't be parsed, you can do it much more simply using LINQ:

return (str ?? "").Split(',').Select<string, int>(int.Parse);
0
81

If you don't want to have the current error handling behaviour, it's really easy:

return text.Split(',').Select(x => int.Parse(x));

Otherwise, I'd use an extra helper method (as seen this morning!):

public static int? TryParseInt32(string text)
{
    int value;
    return int.TryParse(text, out value) ? value : (int?) null;
}

and:

return text.Split(',').Select<string, int?>(TryParseInt32)
                      .Where(x => x.HasValue)
                      .Select(x => x.Value);

or if you don't want to use the method group conversion:

return text.Split(',').Select(t => t.TryParseInt32(t)
                      .Where(x => x.HasValue)
                      .Select(x => x.Value);

or in query expression form:

return from t in text.Split(',')
       select TryParseInt32(t) into x
       where x.HasValue
       select x.Value;
13
  • For a java/c# guy, your answers always seem very functional to me :=)
    – Peter
    Nov 19, 2009 at 14:25
  • When it comes to LINQ, that's not entirely surprising :)
    – Jon Skeet
    Nov 19, 2009 at 14:26
  • 5
    Some people might prefer the lambda which has better type inference. I like to provide options :)
    – Jon Skeet
    Nov 19, 2009 at 14:32
  • 1
    As a shortcut you can use Select(int.Parse). Sep 25, 2013 at 0:31
  • 1
    @BimalDas: Yes, because otherwise the result will be an IEnumerable<int?> instead of an IEnumerable<int>.
    – Jon Skeet
    Feb 24, 2017 at 7:02
35

Without using a lambda function and for valid inputs only, I think it's clearer to do this:

Array.ConvertAll<string, int>(value.Split(','), Convert.ToInt32);
1
  • 3
    i found I did not need this part <string, int>
    – Valamas
    Mar 27, 2012 at 23:46
8

Let us assume that you will be reading the string from the console. Import System.Linq and try this one:

int[] input = Console.ReadLine()
            .Split(',', StringSplitOptions.RemoveEmptyEntries)
            .Select(int.Parse)
            .ToArray();
7

This has been asked before. .Net has a built-in ConvertAll function for converting between an array of one type to an array of another type. You can combine this with Split to separate the string to an array of strings

Example function:

 static int[] ToIntArray(this string value, char separator)
 {
     return Array.ConvertAll(value.Split(separator), s=>int.Parse(s));
 }

Taken from here

7

--EDIT-- It looks like I took his question heading too literally - he was asking for an array of ints rather than a List --EDIT ENDS--

Yet another helper method...

private static int[] StringToIntArray(string myNumbers)
{
    List<int> myIntegers = new List<int>();
    Array.ForEach(myNumbers.Split(",".ToCharArray()), s =>
    {
        int currentInt;
        if (Int32.TryParse(s, out currentInt))
            myIntegers.Add(currentInt);
    });
    return myIntegers.ToArray();
}

quick test code for it, too...

static void Main(string[] args)
{
    string myNumbers = "1,2,3,4,5";
    int[] myArray = StringToIntArray(myNumbers);
    Console.WriteLine(myArray.Sum().ToString()); // sum is 15.

    myNumbers = "1,2,3,4,5,6,bad";
    myArray = StringToIntArray(myNumbers);
    Console.WriteLine(myArray.Sum().ToString()); // sum is 21

    Console.ReadLine();
}
2

This is for longs, but you can modify it easily to work with ints.

private static long[] ConvertStringArrayToLongArray(string str)
{
    return str.Split(",".ToCharArray()).Select(x => long.Parse(x.ToString())).ToArray();
}
5
  • This will throw on unparsable numbers; he appears to want to skip them.
    – SLaks
    Nov 19, 2009 at 14:22
  • This does not do the same thing. His version handles non-integers gracefully by skipping them.
    – mqp
    Nov 19, 2009 at 14:22
  • Good point, but I was going by the input example he provided: string str = "1,2,3,4,5"
    – dcp
    Nov 19, 2009 at 14:25
  • This won't work at all; you forgot to call Split. This will enumerate over each character in the string, and will throw on the ,.
    – SLaks
    Nov 19, 2009 at 14:28
  • oops, you're right. Sorry, I've corrected it. But this only works for valid inputs.
    – dcp
    Nov 19, 2009 at 14:37
1

I don't see why taking out the enumerator explicitly offers you any advantage over using a foreach. There's also no need to call AsEnumerable on chunks.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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