0

I would like to add additional where clauses to my query based on the value of a of a field (dateType)

  • if dateType = 1 then (StartDate <= Now && EndDate => Now) //specific date range
  • if dateType = 2 then (Period => Now.Month && Year =>Now.Year) //month
  • if dateType = 3 then (Period => Now.Month /4) //quarter

I tried the ternary operator but that doesnt work, here is the start of my query.

        var query = from e in context.Events
            join c in context.EventCategories on e.CategoryId equals c.CategoryId
            join o in context.Owners on e.OwnerId equals o.OwnerId
            where !e.IsDeleted 
                  && (e.DateType == 1 ? (e.StartDateTimeUtc <= DateTime.UtcNow && e.EndDateTimeUtc =>DateTime.UtcNow))

using EF Core 2.2

3
  • @GertArnold :) fair enough, it doesnt work :), i just posted what I have so far so that it doesnt seem like I want everyone to write the query for me, just need guidance on how to implement the select case – Zoinky Dec 31 '18 at 13:49
  • 2
    In the same pseudocode: use (dateType = 1 && (StartDate <= Now && EndDate > Now)) || (dateType = 2 && (Period => Now.Month && Year =>Now.Year) ... – Gert Arnold Dec 31 '18 at 13:52
  • woaaa thanks budd, thats what I was looking for, i feel like a dummy now :) – Zoinky Dec 31 '18 at 13:55
1

Final answer thanks to Gert Arnold providing direction in comments to OP

    var query = from e in context.Events
                    join c in context.EventCategories on e.CategoryId equals c.CategoryId
                    join o in context.Owners on e.OwnerId equals o.OwnerId
                    where !e.IsDeleted && (e.DateType == 1 && e.StartDateTimeUtc <= DateTime.UtcNow && e.EndDateTimeUtc >= DateTime.UtcNow) //specific date
                                           || (e.DateType == 2 && e.Period >= DateTime.UtcNow.Month && e.Year >= DateTime.UtcNow.Year) // month
                                           || (e.DateType == 3 && e.Period >= DateTime.UtcNow.Month / 3 && e.Year >= DateTime.UtcNow.Year) //quarter
0

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.