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I have a collection like this

 List<int> {1,15,17,8,3};

how to get a flat string like "1-15-17-8-3" through LINQ query?

thank you

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1  
LINQ's Aggregate method should do this, but I don't know the C# lambda syntax well enough to test it out. –  CoderDennis Jul 7 '09 at 23:25
    
I posted a solution using Aggregate further down. –  Charles Jul 7 '09 at 23:49

5 Answers 5

up vote 9 down vote accepted

something like...

string mystring = string.Join("-", yourlist.Select( o => o.toString()).toArray()));

(Edit: Now its tested, and works fine)

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If that works...I like it. Very short, sweet, and to the point! –  Andrew Siemer Jul 7 '09 at 23:05
1  
This is the best answer. Note though, that the Join method used here has nothing to do with LINQ, it's a very useful method from the good old VB6 days.... –  andy Jul 7 '09 at 23:12
    
Sure, the linq bit is just the conversion of the Int list to a string array via a select and a toArray() –  Tim Jarvis Jul 7 '09 at 23:13
    
True, but it doesn't answer how to do this through LINQ. With strings, I definitely would use this or StringBuilder, but seeing how this would be done the LINQ way would be a great introduction to using Aggregate (my solution using Aggregate is posted further down) –  Charles Jul 7 '09 at 23:54

You can write an extension method and then call .ToString("-") on your IEnumerable object type as shown here:

int[] intArray = { 1, 2, 3 };
Console.WriteLine(intArray.ToString(","));
// output 1,2,3

List<string> list = new List<string>{"a","b","c"};
Console.WriteLine(intArray.ToString("|"));
// output a|b|c

Examples of extension method implementation are here:

http://coolthingoftheday.blogspot.com/2008/09/todelimitedstring-using-linq-and.html http://www.codemeit.com/linq/c-array-delimited-tostring.html

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Use Enumerable.Aggregate like so:

var intList = new[] {1,15,17,8,3};

string result = intList.Aggregate(string.Empty, (str, nextInt) => str + nextInt + "-");

This is the standard "LINQy" way of doing it - what you're wanting is the aggregate. You would use the same concept if you were coding in another language, say Python, where you would use reduce().

EDIT: That will get you "1-15-17-8-3-". You can lop off the last character to get what you're describing, and you can do that inside of Aggregate(), if you'd like:

string result = intList.Aggregate(string.Empty, (str, nextInt) => str + nextInt + "-", str => str.Substring(0, str.Length - 1));

The first argument is the seed, the second is function that will perform the aggregation, and the third argument is your selector - it allows you to make a final change to the aggregated value - as an example, your aggregate could be a numeric value and you want return the value as a formatted string.

HTH,

-Charles

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1  
Actually I think this is what you wanted... myList.Select(o => o.ToString()).Aggregate((s1,s2) => s1 + "-" + s2); –  Tim Jarvis Jul 7 '09 at 23:53
    
Aggregate is a good answer, but I personally find its harder to understand than a simple string.join() (just my own personal pref) –  Tim Jarvis Jul 7 '09 at 23:56
    
I second Tim J, thats how I prefer to do it. –  ccook Jul 8 '09 at 3:08
    
If the list contains many elements then all those string concatenations will affect the performance. You could use a StringBuilder for the accumulator instead. –  LukeH Jul 8 '09 at 9:18
    
(By the way, your second version will throw an exception if the list is empty.) –  LukeH Jul 8 '09 at 9:26
StringBuilder sb = new StringBuilder();

foreach(int i in collection)
{
    sb.Append(i.ToString() + "-");
}

string result = sb.ToString().SubString(0,sb.ToString().ToCharArray().Length - 2);

Something like this perhaps (off the top of my head that is!).

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The best answer is given by Tim J.

If, however, you wanted a pure LINQ solution then try something like this (much more typing, and much less readable than Tim J's answer):

string yourString = yourList.Aggregate
    (
        new StringBuilder(),
        (sb, x) => sb.Append(x).Append("-"),
        sb => (sb.Length > 0) ? sb.ToString(0, sb.Length - 1) : ""
    );

(This is a variation on Charles's answer, but uses a StringBuilder rather than string concatenation.)

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