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I have a method with the following signature:

void Method(Expression<Func<TSource, IEnumerable<TCollection>>> collectionSelector) {}

I need to get the result value of collectionSelector in order to compare the result with another instance of IEnumerable<TCollection>. I'm trying to achieve my objective as in the code below, but I got stuck while I was asked to provide parameter value:

var collectionSelectorFunc = collectionSelector.Compile();
var collection = collectionSelectorFunc.Invoke(collectionSelector.Parameters[0]./*???*/); 

How to put there the actual value of the parameter?

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There is no value because a parameter is a placeholder. A parameter represents a method argument (lambda argument in this case). You can call this function/expression with any value. There is no pre-set value.

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    That sounds reasonable. However, there exists a runtime value for each possible argument. Is there any callback for such case? Could I react when the collectionSelector is invoked from elsewhere with the specific argument provided? – Ryszard Dżegan Sep 2 '13 at 9:44
  • @yBee I'm not sure I understand what you're asking for. I think you should ask another question and explain in detail what exactly do you need and why. An example wouldn't hurt either. – svick Sep 2 '13 at 10:38
  • You can post a link to the question here if you want. Note, that an Expression<Func<TSource, IEnumerable<TCollection>>> is conceptually similar to a Func<TSource, IEnumerable<TCollection>>. You understand that you can invoke a Func with one argument only if you provide an argument. The Func is the callback, and inside of it (in its body) you can look at the concrete argument. – usr Sep 2 '13 at 10:40
  • I understand now. The Method is responsible for providing values for all ParameterExpressions. Therefore to solve my issue I need to provide the Method with another parameter - IEnumerable<TSource> source. Then each ParameterExpression value from collectionSelector would be taken from that source and I would be able to produce IEnumerable<TCollection> for each. – Ryszard Dżegan Sep 2 '13 at 13:07

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