8

I'm currently trying to convert an

Expression<Func<T,object>>

to an

Expression<Func<T,bool>> 

Currently the watch shows me that my expression holds

Expression<Func<T,object>> myExpression = model=>Convert(model.IsAnAirplane)

I'd like to simplify this to

Expression<Func<T,bool>> myExpression = model=>model.IsAnAirplane

Currently I only succeed at adding a convert, resulting in:

Expression<Func<T,bool>> myExpression = model=>Convert(Convert(model.IsAnAirplane))

But since the underlying type IS a bool, I should be able to scratch the converts entirely, right? I'm familiar with expression visitors etc, but still can't figure out how to remove the convert.

Edit: this accepted answer to this question Generic unboxing of Expression<Func<T, object>> to Expression<Func<T, TResult>> (that could be a possible duplicate) doesn't work for me ... as the expression gets translated by EF, you can see it does Convert(Convert()) instead of just removing the first convert... , this results in "Unable to cast the type 'System.Boolean' to type 'System.Object'. LINQ to Entities only supports casting EDM primitive or enumeration types."

6

You should be able to strip out any Convert wrappers using something like this:

Expression<Func<YourModel, object>> boxed = m => m.IsAnAirplane;

var unboxed = (Expression<Func<YourModel, bool>>)StripConvert(boxed);

// ...

public static LambdaExpression StripConvert<T>(Expression<Func<T, object>> source)
{
    Expression result = source.Body;
    // use a loop in case there are nested Convert expressions for some crazy reason
    while (((result.NodeType == ExpressionType.Convert)
               || (result.NodeType == ExpressionType.ConvertChecked))
           && (result.Type == typeof(object)))
    {
        result = ((UnaryExpression)result).Operand;
    }
    return Expression.Lambda(result, source.Parameters);
}

If you prefer, you could alter StripConvert to return Expression<Func<T,U>> instead of a plain LambdaExpression and perform the cast inside the method itself, but in that case you wouldn't be able to take advantage of type-inferencing for the method call.

  • This does exactly what I wanted, and works like a charm, thanks! – Michiel Cornille Nov 18 '15 at 8:09
  • Thanks, this really saved my butt – Andrew Harry Aug 17 '16 at 8:04

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.