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I need to prepend a single value to an IEnumerable (in this case, IEnumerable<string[]>). In order to do that, I'm creating a List<T> just to wrap the first value so that I can call Concat:

// get headers and data together
IEnumerable<string[]> headers = new List<string[]> {
    GetHeaders()
};
var all = headers.Concat(GetData());

Yuck. Is there a better way? And how would you handle the opposite case of appending a value?

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4 Answers 4

up vote 21 down vote accepted

I wrote custom extension methods to do this:

public static IEnumerable<T> Append<T>(this IEnumerable<T> source, T item)
{
    foreach (T i in source)
        yield return i;

    yield return item;
}

public static IEnumerable<T> Prepend<T>(this IEnumerable<T> source, T item)
{
    yield return item;

    foreach (T i in source)
        yield return i;
}

In your scenario, you would write:

var all = GetData().Prepend(GetHeaders());

As chilltemp commented, this does not mutate the original collection. In true Linq fashion, it generates a new IEnumerable<T>.

Note: An eager null argument check is recommended for source, but not shown for brevity.

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Nice! I have some in my library just like those. –  kbrimington Aug 4 '10 at 18:34
3  
Elegant. It should be noted that this will return a new IEnumerable<T> by enumerating the existing collection. It does not actually append/prepend the original collection. –  chilltemp Aug 4 '10 at 18:46

Use the Enumerable.Concat extension method. For appending values instead of prepending, you'd just call Concat in reverse. (ie: GetData().Concat(GetHeaders());)

If GetHeaders() returns a single string array, I'd personally probably wrap it in a single element array instead of a list:

 var all = (new[] {GetHeaders()}).Concat(GetData());
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GetHeaders() returns string[], GetData() returns IEnumerable<string>. Did you read my question? –  Gabe Moothart Aug 4 '10 at 18:34
    
@Gabe: This will work with string[] and IEnumerable<string> - arrays implement IEnumerable<T>. If your string[] is string, however, things are a bit different. Your question wasn't incredibly clear here. –  Reed Copsey Aug 4 '10 at 18:36
    
@Reed right, I commented before I say your edit –  Gabe Moothart Aug 4 '10 at 18:38
    
@Gabe: I'm still not sure exactly what you want - I put in another edit, that shows you how to preserve all elements as arrays... –  Reed Copsey Aug 4 '10 at 18:40
    
@Reed and my comment was wrong - GetData() returns IEnumerable<string[]>, sorry for the confusion. You should be able to infer the types from my question, though. –  Gabe Moothart Aug 4 '10 at 18:40

Rx contains StartWith method that prepends value to sequence. Also Return can wrap value as sequence so it can be appended via Concat.

        var c = new[] {4};
        var c1 = c.StartWith(1, 2, 3);
        var c2 = c1.Concat(EnumerableEx.Return(5));

        c2.Run(Console.Write); // 12345
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Another option is a helper method that creates a sequence out of a single item:

public static class EnumerableExt
{
    public static IEnumerable<T> One<T>(T item)
    {
        yield return item;
    }
}

...
//prepend:
EnumerableExt.One( GetHeaders() ).Concat( GetData() );

//append:
GetData().Concat( EnumerableExt.One( GetHeaders() );
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