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I have a LINQ query which returns IEnumerable<List<int>> but i want to return only List<int> so i want to merge all my record in my IEnumerable<List<int>> to only one array.

Example :

IEnumerable<List<int>> iList = from number in
    (from no in Method() select no) select number;

I want to take all my result IEnumerable<List<int>> to only one List<int>

Hence, from source arrays: [1,2,3,4] and [5,6,7]

I want only one array [1,2,3,4,5,6,7]

Thanks

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5 Answers 5

up vote 135 down vote accepted

Try SelectMany()

var result = iList.SelectMany( i => i );
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2  
Thanks it's work –  Cédric Boivin Oct 19 '09 at 19:52
2  
Thanks, I always forget this one -- I know it's there, but I just spend way too much time Googling for it every time I need to use it. Bookmarking this answer. :-) –  BrainSlugs83 Dec 19 '13 at 18:51

With query syntax:

var values =
from inner in outer
from value in inner
select value;
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2  
+1 for the alternate syntax –  Tim Jarvis Oct 19 '09 at 19:57
    
Thanks exact syntax I was looking for, and so many SO answers list something else more verbose. –  SilverSideDown Feb 4 at 21:19
iList.SelectMany(x => x).ToArray()
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2  
+1 for getting the array part correct which everyone else missed. –  recursive Oct 19 '09 at 20:05
    
@recursive What did everyone else miss? .ToArray()? -- That's kind of circumstantial -- if you only need to iterate once -- or if the items are likely to change, then .ToArray() is definitely not what you want. But with static items that you're going to enumerate multiple times, .ToList() or .ToArray() will give a performance improvement (at the cost of slightly higher memory usage, which, is usually a pretty good deal). –  BrainSlugs83 Dec 19 '13 at 18:55
1  
Presumably the circumstances in this case require arrays, since that was specified in the question. –  recursive Dec 19 '13 at 21:49
1  
@recursive, if we are nitpicking, the OP says that he needs to return List<int>, so .ToList() would then be the correct choice. –  MEMark Feb 26 at 16:48

Like this?

var iList = Method().SelectMany(n => n);
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Yes thanks for your answer to –  Cédric Boivin Oct 19 '09 at 19:53

If you have a List<List<int>> k you can do

List<int> flatList= k.SelectMany( v => v).ToList();
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