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I have just started with squeryl and have no answer for how make querie like that

SELECT ref label FROM x_table WHERE ref like x% or lable like x% where x some value from the user, especialy I haven't found analog of the sign % in squeryl or how can I use it.

My version:val products = from(AppDB.productTable) (s => where ((s.label like value) or (s.ref like value)) select(s)) doesn't work correct.

val value : Option[String] I get from the user.

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2 Answers

up vote 1 down vote accepted

You can try to optionize your fields, like this:

val products = from(AppDB.productTable) (s => 
  where ((Some(s.label) like value) or (Some(s.ref) like value)) 
  select(s))

That will compile as the query will be comparing an Option[String] to an Option[String]. Squeryl will handle the option state internally.

If you are simply looking to add the wildcard to what you are comparing, assuming both sides of the like clause are of the type Option[String], then you can do this:

s.label like value.map(_ + "%")
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No in this case we get an erorr like is not a member of Some[Option[String]]... –  arussinov Dec 26 '12 at 20:01
    
s.ref is an Option[String] and value is an Option[String]? What was the error you were receiving originally? –  jcern Dec 26 '12 at 20:02
    
Yes, I was looking how to add the wildcard, so that is ok, thanks, but it works only with Option[String] and will not work with String for example right? –  arussinov Dec 26 '12 at 20:52
    
as for the code @jcern suggested in the top of the answer, it gives an error "like is not a member of Some[Option[String]]" –  arussinov Dec 26 '12 at 21:02
    
If value was a string, you could simply make the right hand side (value + "%"). –  jcern Dec 26 '12 at 21:12
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You can use shorter version:

AppDB.productTable.where ((s.label like value) or (s.ref like value))

and option fields are for nullable columns

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No, in this way it doesn't behave as necessary, if you need to get all rows where label or ref contains value you have to use a wild card –  arussinov Dec 29 '12 at 0:42
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