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I'm having a hard time figuring this out but how do I tell my finder statement to ignore the time of the Datetime field in the db?

def trips_leaving_in_two_weeks
  Trip.find(:all, :conditions => ["depart_date = ?", 2.weeks.from_now.to_date])
end

I want depart_date to come back as just a date but it keeps returning the time as well and causing this equality not to work. Is there someway to just compare against the dates? Thanks

Edit

Here's the code I'm using now that works:

Trip.find(:all, :conditions => ["DATE(depart_date) = ?", 2.weeks.from_now.to_date])
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depart_date is a date or a datetime? –  Mauricio Jan 28 '11 at 21:02
    
It's a datetime field. –  CalebHC Jan 28 '11 at 21:03

2 Answers 2

up vote 7 down vote accepted

Not sure which DB you're using but does this work?

"depart_date = DATE(?)"
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No, it's still returning nothing. The 2.weeks.from_now.to_date is getting passed in fine it's just that the depart_date in the comparison is returning as a datetime. So right now it's comparing a date to a datetime object. Thanks though –  CalebHC Jan 28 '11 at 21:07
    
Actually I switched the DATE() method around the depart_date and that worked! You get the accepted answer for getting me on the right path. :) Thanks –  CalebHC Jan 28 '11 at 21:18
4  
Try it the other way around: "DATE(depart_date) = ?", 2.weeks.from_now.to_date and it should work. –  Dylan Markow Jan 28 '11 at 21:19

I would use this approach:

Rails 3.x

Trip.where(
  :depart_date => 2.weeks.from_now.beginning_of_day..2.weeks.from_now.end_of_day
)

Rails 2.x

Trip.all(
:conditions => {
  :depart_date => 2.weeks.from_now.beginning_of_day..2.weeks.from_now.end_of_day
})

If you index the depart_date column this solution will be efficient as the query uses the index. This solution is DB neutral.

When calculated fields are used in a where clause, the performance degrades(unless there is a special index).

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