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I realize there have been a ton of posts related to this and I've researched extensively and can't seem to figure this out. It should be super simple. I simply need to generate a column domain with a dynamic column name. Something like

public IEnumerable<ColumnEntity> GetColumnDomain(string column)
{   List<ColumnEntity> columnEntities = new List<ColumnEntity>();
    var query = db.CITATIONs.Select(m => m."column").Distinct();
    ....
}

Where "column" is the dynamic parameter value. I started building and expression tree to dynamically generate the query expression

ParameterExpression pe = Expression.Parameter(typeof(CITATION), "c");
Expression theColumn = Expression.Property(pe, typeof(string).GetProperty(column));

But that is about it. Thanks in advance

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2 Answers

up vote 0 down vote accepted

Use the Expression.PropertyOrField() method to generate the member access. You'll also need to know the type of the column as well or it just won't work.

This could all be generalized into this generic method:

public static Expression<Func<TSource, TResult>>
    GenerateSelector<TSource, TResult>(string propertyOrFieldName)
{
    var parameter = Expression.Parameter(typeof(TSource));
    var body = Expression.Convert(
        // generate the appropriate member access
        Expression.PropertyOrField(parameter, propertyOrFieldName),
        typeof(TResult)
    );
    var expr = Expression.Lambda<Func<TSource, TResult>>(body, parameter);
    return expr;
}

Then you could just do:

public IEnumerable<ColumnEntity> GetColumnDomain<TColumn>(string column)
{
    var query = db.CITATIONs
        .Select(GenerateSelector<CITATION, TColumn>(column))
        .Distinct();
    // ...
}
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p.s., the convert might not be necessary and can probably be left out. If you do leave it out, you need to make sure you have the right type or you'll run into problems. –  Jeff Mercado Feb 6 '13 at 20:16
    
Thanks Jeff. That helped –  user2048150 Feb 6 '13 at 20:40
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So not entirely sure what you're after. But simply put:

    public PropertyInfo GetPropertyInfo<T>(Expression<Func<T, Object>> expression)
    {
        MemberExpression memberData = (MemberExpression)expression.Body;
        return (PropertyInfo)memberData.Member;
    }

this much will give you property info about the member, so if you have:

    PropertyInfo info = GetPropertyInfo<FileInfo>(file => file.FullName);
    Console.WriteLine(info.Name);

It will show the 'FullName' corresponding to the property you put in the expression.

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