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How can I write this LINQ query by using the extension method syntax?

var query = from a in sequenceA
            from b in sequenceB
            select ...; 
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3 Answers 3

up vote 31 down vote accepted

For your future reference, all questions of this form are answered by section 7.16 of the C# specification.

Your specific question is answered by this paragraph:

A query expression with a second from clause followed by a select clause

from x1 in e1
from x2 in e2
select v

is translated into

( e1 ) . SelectMany( x1 => e2 , ( x1 , x2 ) => v )

So your query:

var query = from a in sequenceA            
            from b in sequenceB
            select ...;  

Is the same as

var query =  ( sequenceA ) . SelectMany( a => sequenceB , ( a , b ) => ... )

(Note that of course this assumes that the "..." is an expression, and not, say, an expression followed by a query continuation.)

hdv's answer points out that

var query =  ( sequenceA ) . SelectMany( 
    a => ( sequenceB ) . Select( b => ... ) );

would also be a logically valid translation, though it is not the translation we actually perform. In the early days of LINQ implementation, this was the translation we chose. However, as you pile on more from clauses, it makes the lambdas nest more and more deeply, which then presents the compiler with an enormous problem in type inference. This choice of translation wrecks compiler performance, so we introduced the transparent identifier mechanism to give us a much cheaper way to represent the seamntics of deeply nested scopes.

If these subjects interest you:

For more thoughts on why deeply nested lambdas present a hard problem for the compiler to solve, see:

For more information about transparent identifiers, see this post from Wes Dyer, who implemented them in C# 3.0:

And my series of articles about them:

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Note that the "C# Language Specification" is a downloadable Word document and is therefore not indexed by most search engines and not readable online. Maybe Microsoft could change that in future! –  Olivier Jacot-Descombes Sep 11 at 18:55
var query = sequenceA.SelectMany(a => sequenceB.Select(b => ...));

Edit: as pointed out by Eric Lippert in the comments, this gives the same results, but is intentionally not how it is translated internally. See his answer for another way to call SelectMany, which does correspond to the original. Also, added the omitted b => for clarity.

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Would a non nested variant like var query = sequenceA.SelectMany(a => sequenceB).Select(...); also work? –  Olivier Jacot-Descombes Feb 2 '12 at 16:21
@OlivierJacot-Descombes That's also possible, but that means you cannot refer to a from within the second Select's parameter. –  hvd Feb 2 '12 at 17:00
@hdv: Neither of you are correct. You are right to point out that in Olivier's comment, he has lost the range variable a. But in both of your translations you've both lost the range variable b. Where did b go in your translation? What if ... refers to b? You need another lambda in there somewhere! –  Eric Lippert Feb 2 '12 at 17:35
@EricLippert The "b =>" is part of the "..." that needs to be filled in. –  hvd Feb 2 '12 at 17:37
@EricLippert I see in your answer that you write it using another SelectMany overload, but as I understand it, it means the same thing as what I answered. I would much appreciate it if you would correct me if that's wrong. –  hvd Feb 2 '12 at 17:39

Another way to write it would be:

var query = a.Join(b, i => new { }, j => new { }, (i, j) => new { i = i, j = j });
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Nested from-statements and SelectMany both flatten nested enumerations. I.e. they convert an enumeration of enumerations into one flat enumeration containing all the elements of the nested enumerations of the source. They don't join two unrelated enumerations. –  Olivier Jacot-Descombes Sep 30 '14 at 16:12
What I did is a cross-join, same as other options which you've listed. The result enumeration is also flat. Go ahead and try it :) . –  Bogdan Verbenets Sep 30 '14 at 16:50
Example: Input string[][] nested = new string[][] { new string[] { "a", "b", "c" }, new string[] { "AA", "BB", "CC", "DD" }, new string[] { "1", "2", "3" }, };. Expected output: "a", "b", "c", "AA", "BB", "CC", "DD", "1", "2", "3" –  Olivier Jacot-Descombes Sep 30 '14 at 17:49

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