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I have a loop as follows:

foreach(x in myColl) 
{
    foreach(var y in x.MyList) 
    {
        result.Add(x.MyKey + y)
    }
}

That means within my inner loop I need access to a property of the current outer element.

I´m looking for a LINQ-statement but I´m unsure on it. I tried it by using

result = myColl
    .SelectMany(x => x.MyList)
    .SelectMany(x => /* how to get the key of the outer loop here */ + x)
share|improve this question
3  
Nested for each are easy to read, where a linq query may be more obscure. Why do you feel you need to use linq in this case? – Loofer Jan 29 at 13:24
up vote 12 down vote accepted

This is easy with query expressions:

(from x in myColl
 from y in x.MyList
 select x.MyKey + y).ToList()

This works because this translates to:

myColl
.SelectMany(x => x.MyList.Select(item => new { List = x, Item = item }))
.Select(x => ...) //rest of the query, whatever you like

The key is to keep both the list as well as the list items. Channel them through the query using an anonymous type (or any other container).

share|improve this answer
    
You need to name the anonymous properties. – Tamir Vered Jan 29 at 13:22
    
They get their default name from the expression. This does work. Thanks for the edit. – usr Jan 29 at 13:22
    
I'm pretty sure that second SelectMany should just be a Select, or it's likely to translate to the SelectMany overload in Tormod's answer. – juharr Jan 29 at 13:26
    
So easy... I knew it must work. Thanks :) – HimBromBeere Jan 29 at 13:27
    
The names doesn't have to be stated but the first SelectMany must receive a predicate which returns an IEnumerable and it doesn't... – Tamir Vered Jan 29 at 13:29

This is when I personally prefer query syntax

var result = from x in myCol1
             from y in x.MyList
             select x.MyKey + y;
share|improve this answer
    
So easy... I knew it must work. Thanks :) – HimBromBeere Jan 29 at 13:27

There is an overload of SelectMany which allows access to the "parent" element. ListOfList.SelectMany(list=>list.InnerList,(lst,element)=> HandleInnerListAndElementFromIt(lst,element))

 result = myColl.SelectMany(x => x.MyList,(x1,x2)=>DoSomething(x1,x2));

EDIT Added:

For your concrete example it looks like this:

result = myColl.SelectMany(x=>x.MyList,(x,y)=>x.MyKey+y));

Notice that there are two lambda parameters to the SelectMany method call.

First lambda will take the "x" and return a new Enumerable. x=>x.MyList

The second lambda takes the "x" and "y" and produce a new result. (x,y)=>x.MyKey+y

share|improve this answer
1  
I have to admit, although it looks cool and does what I need it´s quite hard to read. – HimBromBeere Jan 29 at 13:37
    
I can see that. I edited for clarity. Good luck. – Tormod Jan 29 at 14:31

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