4

I have a device model:

public class DeviceModel
{
    public DateTime Added { get;set; }
}

And i want to select devices count, grouped by Added date (not Date and Time, but only date). My current implementation is not valid, because linq can't translate DateTime.Date to sql:

var result = (
    from device in DevicesRepository.GetAll()
    group device by new { Date = device.Added.Date } into g
    select new
        {
            Date = g.Key.Date,
            Count = g.Count()
        }
    ).OrderBy(nda => nda.Date);

How to change this query to make it work?

11

Well, according to this MSDN document, Date property is supported by LINQ to SQL and I'd assume that Entity Framework supports it as well.

Anyway, try this query (notice that I'm using TruncateTime method in order to avoid resolving the date repeatedly):

var result = from device in
                 (
                     from d in DevicesRepository.GetAll()
                     select new 
                     { 
                         Device = d, 
                         AddedDate = EntityFunctions.TruncateTime(d.Added) 
                     }
                 )
             orderby device.AddedDate
             group device by device.AddedDate into g
             select new
             {
                 Date = g.Key,
                 Count = g.Count()
             };

Hope this helps.

2
  • 3
    Unfortunallety, Date is not supported in EF6. About EntityFunctions, this class is obsolete, i used DbFunctions instead. But, this solution works. thanks. – alexmac Jan 17 '14 at 13:05
  • 1
    For further readers, the new not depricated method is: DbFunctions.TruncateTime() in using System.Data.Entity; – Christian Gollhardt Apr 5 '16 at 17:17
1

Use EntityFunctions.TruncateTime

var result = (
from device in DevicesRepository.GetAll()
group device by new { Date = EntityFunctions.TruncateTime(device.Added)} into g
select new
    {
        Date = g.Key.Date,
        Count = g.Count()
    }
).OrderBy(nda => nda.Date);

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.