1

I have a list of strings like:

abcd@domain.com
efgh@domain.com
ijkl@domain.com;mnop@domain.com;qrst@domain.com
uvwx@domain.com
yz@domain.com

I would like to want it as:

abcd@domain.com
efgh@domain.com
ijkl@domain.com
mnop@domain.com
qrst@domain.com
uvwx@domain.com
yz@domain.com

So I wrote the code below and it works as expected.

foreach (var email in emailAddressesOnRequest)
{
    if (!string.IsNullOrEmpty(email) && email.Contains(';'))
    {
        emailAddressesOnRequest.AddRange(email.Split(';').ToList());
        emailAddressesOnRequest.Remove(email);
    }
}

Is there any way to simply it to LINQ ForEach?

3
  • 5
    List.ForEach is not LINQ, it's a method that existed already before LINQ. – Tim Schmelter Aug 22 '16 at 11:10
  • How to make it LINQ ForEach then? – good-to-know Aug 22 '16 at 11:11
  • 1
    Have you noticed that your foreach throws an exception if you modify the list during enumeration? You could fix it by using: foreach (var email in emailAddressesOnRequest.ToList()){...} – Tim Schmelter Aug 22 '16 at 11:21
5

What you are looking for is to iterate through the collection and for each item to return an item of a different kind. For that use Select.

Because in your case you possibly want to return from each item a collection of items, and don't want to have them in nested collections use SelectMany on the result of the Split(';') method.

List<string> values = new List<string>
{
    "abcd@domain.com",
    "efgh@domain.com",
    null,
    "ijkl@domain.com; mnop @domain.com; qrst @domain.com",
    "uvwx@domain.com",
    "yz@domain.com"
};

var result = values.Where(value => !string.IsNullOrWhiteSpace(value))
                   .SelectMany(value => value.Split(';')).ToList();

And in query syntax:

var result = (from value in values
             where !string.IsNullOrWhiteSpace(value)
             from email in value.Split(';')
             select email).ToList();
6
  • 1
    OP uses string.IsNullOrEmpty, so maybe it can be null. Apart from that nice and simple solution. – Tim Schmelter Aug 22 '16 at 11:15
  • better would be to omit null values, he doesn't remove them from the list either. But i guess it's actually not needed at all if the list cannot contain nulls. – Tim Schmelter Aug 22 '16 at 11:18
  • @TimSchmelter - What do you mean? – Gilad Green Aug 22 '16 at 11:19
  • the Where removes them, OP's foreach just skips those values so they remain in the list. – Tim Schmelter Aug 22 '16 at 11:20
  • @TimSchmelter - Ahh ok ya :) thought I missed something – Gilad Green Aug 22 '16 at 11:21
1
var query = from line in emailAddressesOnRequest
            where !String.IsNullOrEmpty(line)
            from email in line.Split(';')
            select email;
1

What helped me a lot to understand ling was The standard LINQ operators

If you split each string into substrings by semicolon, you get a collection of string sequences, or an IEnumerable<IEnumerable<string>>

The IEnumareable extension function to convert them to an IEnumerable<string> is Enumerable.SelectMany. When iterating over a SelectMany it is like you do a nested foreach:

List<string[]> listOfStringArrays = ...
List<string> outputList = new List<string>();
foreach (string[] stringArray in listOfStringArrays)
{
     foreach (string str in stringArray)
     {
         outputList.Add(str);
     }
}

In your example the inner foreach is done using AddRange.

Using Select and Split you convert your collection of strings to a sequence of string sequences. SelectMany will make it a sequence of strings:

IEnumerable<string> myInputStrings = ...
IEnumerable<string> outputStrings = inputStrings
    .Select(inputString => inputString.Split(';'))
    .SelectMany(splitResult => splitResult);

The Select will take each of the inputStrings, and split them by semicolon. The output is a string array, which implements IEnumerable<string>, even if your input didn't have a semicolon.

The SelectMany concatenates every string sequence of you sequence of string sequences. The result is one sequence of strings.

To convert to array or list use ToArray() or ToList().

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