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I've got a class X, Y and Z and need a way to have one method to return an IEnumerable of X, Y or Z, something like :

public IEnumerable<T> BuildList<T>(String sql)
    return Query<T>(sql);

Where Query is a custom method to do SQL queries and mapping the result to a IEnumerable of T.

I want to use it like :

var x_items = BuildList<X>("select * from table_x");
var y_items = BuildList<Y>("select * from table_y");
var z_items = BuildList<Z>("select * from table_z");

Is the problem the Query-method or I'm I just doing the generics wrong?

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Well that looks okay - what error are you getting? What benefit is this really providing over calling just Query? You haven't really provided enough information for us to help you... –  Jon Skeet Jul 5 '11 at 11:51
The info is thin, I know - sorry. I cannot call Query-directly cuz' it's located in a data access layer. Errors I'm getting: 'T' must be a non-abstract type with a public parameterless constructor in order to use it as parameter 'TStorage' in the generic type or method 'Data.SQL.SqlDataAccessLayerBase.Query<TStorage>(string, params Data.SQL.SqlParameter[])' and error #2 "The type 'T' must be a reference type in order to use it as parameter 'TStorage' in the generic type or method 'Data.SQL.SqlDataAccessLayerBase.Query<TStorage>(string, params Data.SQL.SqlParameter[])'". Does that help? –  Weholt Jul 5 '11 at 12:09

2 Answers 2

up vote 4 down vote accepted

Given the compiler error you've given in the comment, it sounds like you just need a type constraint on T:

public IEnumerable<T> BuildList<T>(String sql) where T : class, new()
    return Query<T>(sql);
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It worked! Thanks a lot! This really made my day :-) –  Weholt Jul 5 '11 at 12:41

type of T should be exist in dbcontext

share|improve this answer
What do you mean by “exist”? Anyway, this is probably not the problem. –  Konrad Rudolph Jul 5 '11 at 12:05
i think the question is vague,but in EF the when we quering by Query<T> the type of T should be known ,shouldent be? –  DeveloperX Jul 5 '11 at 12:11
The type is known, it’s either X, Y or Z. –  Konrad Rudolph Jul 5 '11 at 12:15

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