1433 lines
45 KiB
Haskell
1433 lines
45 KiB
Haskell
{-# OPTIONS_GHC -fno-warn-unused-binds #-}
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{-# LANGUAGE ConstraintKinds
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, EmptyDataDecls
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, FlexibleContexts
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, FlexibleInstances
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, DeriveGeneric
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, GADTs
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, GeneralizedNewtypeDeriving
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, MultiParamTypeClasses
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, OverloadedStrings
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, QuasiQuotes
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, Rank2Types
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, TemplateHaskell
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, TypeFamilies
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, ScopedTypeVariables
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, TypeSynonymInstances
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#-}
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module Common.Test
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( tests
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, testLocking
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, migrateAll
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, cleanDB
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, RunDbMonad
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, Run
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, p1, p2, p3, p4, p5
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, l1, l2, l3
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, insert'
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, EntityField (..)
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, Foo (..)
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, Bar (..)
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, Person (..)
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, BlogPost (..)
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, Lord (..)
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, Deed (..)
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, Follow (..)
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, CcList (..)
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, Frontcover (..)
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, Article (..)
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, Tag (..)
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, ArticleTag (..)
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, Article2 (..)
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, Point (..)
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, Circle (..)
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, Numbers (..)
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) where
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import Control.Monad (forM_, replicateM, replicateM_, void)
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import Control.Monad.IO.Class (MonadIO(liftIO))
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import Control.Monad.Logger (MonadLogger (..), NoLoggingT, runNoLoggingT)
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import Control.Monad.Trans.Reader (ReaderT)
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import Data.Char (toLower, toUpper)
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import Data.Monoid ((<>))
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import Database.Esqueleto
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import Database.Persist.TH
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import Test.Hspec
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import UnliftIO
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import Data.Conduit (ConduitT, (.|), runConduit)
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import qualified Data.Conduit.List as CL
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import Control.Monad.Trans.Resource (MonadThrow)
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import qualified Data.List as L
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import qualified Data.Set as S
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import qualified Data.Text.Lazy.Builder as TLB
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import qualified Data.Text.Internal.Lazy as TL
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import qualified Database.Esqueleto.Internal.Sql as EI
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import qualified UnliftIO.Resource as R
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-- Test schema
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share [mkPersist sqlSettings, mkMigrate "migrateAll"] [persistUpperCase|
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Foo
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name Int
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Primary name
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Bar
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quux FooId
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Person
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name String
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age Int Maybe
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weight Int Maybe
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favNum Int
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deriving Eq Show
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BlogPost
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title String
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authorId PersonId
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deriving Eq Show
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Lord
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county String maxlen=100
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dogs Int Maybe
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Primary county
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deriving Show
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Deed
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contract String maxlen=100
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ownerId LordId maxlen=100
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Primary contract
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deriving Show
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Follow
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follower PersonId
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followed PersonId
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deriving Eq Show
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CcList
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names [String]
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Frontcover
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number Int
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title String
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Primary number
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deriving Eq Show
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Article
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title String
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frontcoverNumber Int
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Foreign Frontcover fkfrontcover frontcoverNumber
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deriving Eq Show
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Tag
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name String maxlen=100
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Primary name
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deriving Eq Show
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ArticleTag
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articleId ArticleId
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tagId TagId maxlen=100
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Primary articleId tagId
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deriving Eq Show
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Article2
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title String
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frontcoverId FrontcoverId
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deriving Eq Show
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Point
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x Int
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y Int
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name String
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Primary x y
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deriving Eq Show
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Circle
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centerX Int
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centerY Int
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name String
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Foreign Point fkpoint centerX centerY
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deriving Eq Show
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Numbers
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int Int
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double Double
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|]
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-- | this could be achieved with S.fromList, but not all lists
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-- have Ord instances
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sameElementsAs :: Eq a => [a] -> [a] -> Bool
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sameElementsAs l1' l2' = null (l1' L.\\ l2')
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-- | Helper for rounding to a specific digit
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-- Prelude> map (flip roundTo 12.3456) [0..5]
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-- [12.0, 12.3, 12.35, 12.346, 12.3456, 12.3456]
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roundTo :: (Fractional a, RealFrac a1, Integral b) => b -> a1 -> a
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roundTo n f =
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(fromInteger $ round $ f * (10^n)) / (10.0^^n)
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p1 :: Person
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p1 = Person "John" (Just 36) Nothing 1
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p2 :: Person
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p2 = Person "Rachel" Nothing (Just 37) 2
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p3 :: Person
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p3 = Person "Mike" (Just 17) Nothing 3
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p4 :: Person
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p4 = Person "Livia" (Just 17) (Just 18) 4
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p5 :: Person
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p5 = Person "Mitch" Nothing Nothing 5
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l1 :: Lord
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l1 = Lord "Cornwall" (Just 36)
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l2 :: Lord
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l2 = Lord "Dorset" Nothing
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l3 :: Lord
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l3 = Lord "Chester" (Just 17)
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testSelect :: Run -> Spec
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testSelect run = do
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describe "select" $ do
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it "works for a single value" $
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run $ do
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ret <- select $ return $ val (3 :: Int)
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liftIO $ ret `shouldBe` [ Value 3 ]
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it "works for a pair of a single value and ()" $
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run $ do
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ret <- select $ return (val (3 :: Int), ())
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liftIO $ ret `shouldBe` [ (Value 3, ()) ]
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it "works for a single ()" $
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run $ do
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ret <- select $ return ()
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liftIO $ ret `shouldBe` [ () ]
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it "works for a single NULL value" $
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run $ do
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ret <- select $ return nothing
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liftIO $ ret `shouldBe` [ Value (Nothing :: Maybe Int) ]
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testSelectSource :: Run -> Spec
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testSelectSource run = do
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describe "selectSource" $ do
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it "works for a simple example" $
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run $ do
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let query = selectSource $
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from $ \person ->
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return person
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p1e <- insert' p1
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ret <- runConduit $ query .| CL.consume
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liftIO $ ret `shouldBe` [ p1e ]
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it "can run a query many times" $
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run $ do
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let query = selectSource $
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from $ \person ->
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return person
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p1e <- insert' p1
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ret0 <- runConduit $ query .| CL.consume
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ret1 <- runConduit $ query .| CL.consume
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liftIO $ ret0 `shouldBe` [ p1e ]
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liftIO $ ret1 `shouldBe` [ p1e ]
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it "works on repro" $ do
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let selectPerson :: R.MonadResource m => String -> ConduitT () (Key Person) (SqlPersistT m) ()
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selectPerson name = do
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let source = selectSource $ from $ \person -> do
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where_ $ person ^. PersonName ==. val name
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return $ person ^. PersonId
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source .| CL.map unValue
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run $ do
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p1e <- insert' p1
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p2e <- insert' p2
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r1 <- runConduit $
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selectPerson (personName p1) .| CL.consume
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r2 <- runConduit $
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selectPerson (personName p2) .| CL.consume
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liftIO $ do
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r1 `shouldBe` [ entityKey p1e ]
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r2 `shouldBe` [ entityKey p2e ]
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testSelectFrom :: Run -> Spec
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testSelectFrom run = do
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describe "select/from" $ do
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it "works for a simple example" $
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run $ do
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p1e <- insert' p1
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ret <- select $
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from $ \person ->
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return person
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liftIO $ ret `shouldBe` [ p1e ]
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it "works for a simple self-join (one entity)" $
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run $ do
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p1e <- insert' p1
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ret <- select $
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from $ \(person1, person2) ->
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return (person1, person2)
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liftIO $ ret `shouldBe` [ (p1e, p1e) ]
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it "works for a simple self-join (two entities)" $
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run $ do
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p1e <- insert' p1
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p2e <- insert' p2
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ret <- select $
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from $ \(person1, person2) ->
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return (person1, person2)
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liftIO $ ret `shouldSatisfy` sameElementsAs [ (p1e, p1e)
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, (p1e, p2e)
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, (p2e, p1e)
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, (p2e, p2e) ]
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it "works for a self-join via sub_select" $
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run $ do
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p1k <- insert p1
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p2k <- insert p2
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_f1k <- insert (Follow p1k p2k)
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_f2k <- insert (Follow p2k p1k)
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ret <- select $
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from $ \followA -> do
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let subquery =
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from $ \followB -> do
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where_ $ followA ^. FollowFollower ==. followB ^. FollowFollowed
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return $ followB ^. FollowFollower
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where_ $ followA ^. FollowFollowed ==. sub_select subquery
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return followA
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liftIO $ length ret `shouldBe` 2
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it "works for a self-join via exists" $
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run $ do
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p1k <- insert p1
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p2k <- insert p2
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_f1k <- insert (Follow p1k p2k)
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_f2k <- insert (Follow p2k p1k)
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ret <- select $
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from $ \followA -> do
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where_ $ exists $
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from $ \followB ->
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where_ $ followA ^. FollowFollower ==. followB ^. FollowFollowed
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return followA
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liftIO $ length ret `shouldBe` 2
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it "works for a simple projection" $
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run $ do
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p1k <- insert p1
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p2k <- insert p2
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ret <- select $
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from $ \p ->
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return (p ^. PersonId, p ^. PersonName)
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liftIO $ ret `shouldBe` [ (Value p1k, Value (personName p1))
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, (Value p2k, Value (personName p2)) ]
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it "works for a simple projection with a simple implicit self-join" $
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run $ do
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_ <- insert p1
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_ <- insert p2
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ret <- select $
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from $ \(pa, pb) ->
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return (pa ^. PersonName, pb ^. PersonName)
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liftIO $ ret `shouldSatisfy` sameElementsAs
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[ (Value (personName p1), Value (personName p1))
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, (Value (personName p1), Value (personName p2))
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, (Value (personName p2), Value (personName p1))
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, (Value (personName p2), Value (personName p2)) ]
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it "works with many kinds of LIMITs and OFFSETs" $
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run $ do
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[p1e, p2e, p3e, p4e] <- mapM insert' [p1, p2, p3, p4]
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let people = from $ \p -> do
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orderBy [asc (p ^. PersonName)]
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return p
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ret1 <- select $ do
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p <- people
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limit 2
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limit 1
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return p
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liftIO $ ret1 `shouldBe` [ p1e ]
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ret2 <- select $ do
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p <- people
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limit 1
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limit 2
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return p
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liftIO $ ret2 `shouldBe` [ p1e, p4e ]
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ret3 <- select $ do
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p <- people
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offset 3
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offset 2
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return p
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liftIO $ ret3 `shouldBe` [ p3e, p2e ]
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ret4 <- select $ do
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p <- people
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offset 3
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limit 5
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offset 2
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limit 3
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offset 1
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limit 2
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return p
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liftIO $ ret4 `shouldBe` [ p4e, p3e ]
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ret5 <- select $ do
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p <- people
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offset 1000
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limit 1
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limit 1000
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offset 0
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return p
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liftIO $ ret5 `shouldBe` [ p1e, p4e, p3e, p2e ]
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it "works with non-id primary key" $
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run $ do
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let fc = Frontcover number ""
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number = 101
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Right thePk = keyFromValues [toPersistValue number]
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fcPk <- insert fc
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[Entity _ ret] <- select $ from return
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liftIO $ do
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ret `shouldBe` fc
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fcPk `shouldBe` thePk
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it "works when returning a custom non-composite primary key from a query" $
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run $ do
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let name = "foo"
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t = Tag name
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Right thePk = keyFromValues [toPersistValue name]
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tagPk <- insert t
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[Value ret] <- select $ from $ \t' -> return (t'^.TagId)
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liftIO $ do
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ret `shouldBe` thePk
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thePk `shouldBe` tagPk
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it "works when returning a composite primary key from a query" $
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run $ do
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let p = Point 10 20 ""
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thePk <- insert p
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[Value ppk] <- select $ from $ \p' -> return (p'^.PointId)
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liftIO $ ppk `shouldBe` thePk
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testSelectJoin :: Run -> Spec
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testSelectJoin run = do
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describe "select/JOIN" $ do
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it "works with a LEFT OUTER JOIN" $
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run $ do
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p1e <- insert' p1
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p2e <- insert' p2
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p3e <- insert' p3
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p4e <- insert' p4
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b12e <- insert' $ BlogPost "b" (entityKey p1e)
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b11e <- insert' $ BlogPost "a" (entityKey p1e)
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b31e <- insert' $ BlogPost "c" (entityKey p3e)
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ret <- select $
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from $ \(p `LeftOuterJoin` mb) -> do
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on (just (p ^. PersonId) ==. mb ?. BlogPostAuthorId)
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orderBy [ asc (p ^. PersonName), asc (mb ?. BlogPostTitle) ]
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return (p, mb)
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liftIO $ ret `shouldBe` [ (p1e, Just b11e)
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, (p1e, Just b12e)
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, (p4e, Nothing)
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, (p3e, Just b31e)
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, (p2e, Nothing) ]
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it "typechecks (A LEFT OUTER JOIN (B LEFT OUTER JOIN C))" $
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let _ = run $
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select $
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from $ \(a `LeftOuterJoin` (b `LeftOuterJoin` c)) ->
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let _ = [a, b, c] :: [ SqlExpr (Entity Person) ]
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in return a
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in return () :: IO ()
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it "typechecks ((A LEFT OUTER JOIN B) LEFT OUTER JOIN C)" $
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let _ = run $
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select $
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from $ \((a `LeftOuterJoin` b) `LeftOuterJoin` c) ->
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let _ = [a, b, c] :: [ SqlExpr (Entity Person) ]
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in return a
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in return () :: IO ()
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it "throws an error for using on without joins" $
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run (select $
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from $ \(p, mb) -> do
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on (just (p ^. PersonId) ==. mb ?. BlogPostAuthorId)
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orderBy [ asc (p ^. PersonName), asc (mb ?. BlogPostTitle) ]
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return (p, mb)
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) `shouldThrow` (\(OnClauseWithoutMatchingJoinException _) -> True)
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it "throws an error for using too many ons" $
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run (select $
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from $ \(p `FullOuterJoin` mb) -> do
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on (just (p ^. PersonId) ==. mb ?. BlogPostAuthorId)
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on (just (p ^. PersonId) ==. mb ?. BlogPostAuthorId)
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orderBy [ asc (p ^. PersonName), asc (mb ?. BlogPostTitle) ]
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return (p, mb)
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) `shouldThrow` (\(OnClauseWithoutMatchingJoinException _) -> True)
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it "works with ForeignKey to a non-id primary key returning one entity" $
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run $ do
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let fc = Frontcover number ""
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article = Article "Esqueleto supports composite pks!" number
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number = 101
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Right thePk = keyFromValues [toPersistValue number]
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fcPk <- insert fc
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insert_ article
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[Entity _ retFc] <- select $
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from $ \(a `InnerJoin` f) -> do
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on (f^.FrontcoverNumber ==. a^.ArticleFrontcoverNumber)
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return f
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liftIO $ do
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retFc `shouldBe` fc
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fcPk `shouldBe` thePk
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it "works with a ForeignKey to a non-id primary key returning both entities" $
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run $ do
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let fc = Frontcover number ""
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article = Article "Esqueleto supports composite pks!" number
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number = 101
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Right thePk = keyFromValues [toPersistValue number]
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fcPk <- insert fc
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insert_ article
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[(Entity _ retFc, Entity _ retArt)] <- select $
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from $ \(a `InnerJoin` f) -> do
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on (f^.FrontcoverNumber ==. a^.ArticleFrontcoverNumber)
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return (f, a)
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liftIO $ do
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retFc `shouldBe` fc
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retArt `shouldBe` article
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fcPk `shouldBe` thePk
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articleFkfrontcover retArt `shouldBe` thePk
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|
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it "works with a non-id primary key returning one entity" $
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run $ do
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let fc = Frontcover number ""
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article = Article2 "Esqueleto supports composite pks!" thePk
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number = 101
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Right thePk = keyFromValues [toPersistValue number]
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fcPk <- insert fc
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|
insert_ article
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[Entity _ retFc] <- select $
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from $ \(a `InnerJoin` f) -> do
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on (f^.FrontcoverId ==. a^.Article2FrontcoverId)
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return f
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liftIO $ do
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retFc `shouldBe` fc
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fcPk `shouldBe` thePk
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|
|
|
it "works with a composite primary key" $
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|
pendingWith "Persistent does not create the CircleFkPoint constructor. See: https://github.com/yesodweb/persistent/issues/341"
|
|
{-
|
|
run $ do
|
|
let p = Point x y ""
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c = Circle x y ""
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x = 10
|
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y = 15
|
|
Right thePk = keyFromValues [toPersistValue x, toPersistValue y]
|
|
pPk <- insert p
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insert_ c
|
|
[Entity _ ret] <- select $ from $ \(c' `InnerJoin` p') -> do
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on (p'^.PointId ==. c'^.CircleFkpoint)
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|
return p'
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|
liftIO $ do
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|
ret `shouldBe` p
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pPk `shouldBe` thePk
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|
-}
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|
|
it "works when joining via a non-id primary key" $
|
|
run $ do
|
|
let fc = Frontcover number ""
|
|
article = Article "Esqueleto supports composite pks!" number
|
|
tag = Tag "foo"
|
|
otherTag = Tag "ignored"
|
|
number = 101
|
|
insert_ fc
|
|
insert_ otherTag
|
|
artId <- insert article
|
|
tagId <- insert tag
|
|
insert_ $ ArticleTag artId tagId
|
|
[(Entity _ retArt, Entity _ retTag)] <- select $
|
|
from $ \(a `InnerJoin` at `InnerJoin` t) -> do
|
|
on (t^.TagId ==. at^.ArticleTagTagId)
|
|
on (a^.ArticleId ==. at^.ArticleTagArticleId)
|
|
return (a, t)
|
|
liftIO $ do
|
|
retArt `shouldBe` article
|
|
retTag `shouldBe` tag
|
|
|
|
it "respects the associativity of joins" $
|
|
run $ do
|
|
void $ insert p1
|
|
ps <- select . from $
|
|
\((p :: SqlExpr (Entity Person))
|
|
`LeftOuterJoin`
|
|
((_q :: SqlExpr (Entity Person))
|
|
`InnerJoin` (_r :: SqlExpr (Entity Person)))) -> do
|
|
on (val False) -- Inner join is empty
|
|
on (val True)
|
|
return p
|
|
liftIO $ (entityVal <$> ps) `shouldBe` [p1]
|
|
|
|
|
|
|
|
testSelectWhere :: Run -> Spec
|
|
testSelectWhere run = do
|
|
describe "select/where_" $ do
|
|
it "works for a simple example with (==.)" $
|
|
run $ do
|
|
p1e <- insert' p1
|
|
_ <- insert' p2
|
|
_ <- insert' p3
|
|
ret <- select $
|
|
from $ \p -> do
|
|
where_ (p ^. PersonName ==. val "John")
|
|
return p
|
|
liftIO $ ret `shouldBe` [ p1e ]
|
|
|
|
it "works for a simple example with (==.) and (||.)" $
|
|
run $ do
|
|
p1e <- insert' p1
|
|
p2e <- insert' p2
|
|
_ <- insert' p3
|
|
ret <- select $
|
|
from $ \p -> do
|
|
where_ (p ^. PersonName ==. val "John" ||. p ^. PersonName ==. val "Rachel")
|
|
return p
|
|
liftIO $ ret `shouldBe` [ p1e, p2e ]
|
|
|
|
it "works for a simple example with (>.) [uses val . Just]" $
|
|
run $ do
|
|
p1e <- insert' p1
|
|
_ <- insert' p2
|
|
_ <- insert' p3
|
|
ret <- select $
|
|
from $ \p -> do
|
|
where_ (p ^. PersonAge >. val (Just 17))
|
|
return p
|
|
liftIO $ ret `shouldBe` [ p1e ]
|
|
|
|
it "works for a simple example with (>.) and not_ [uses just . val]" $
|
|
run $ do
|
|
_ <- insert' p1
|
|
_ <- insert' p2
|
|
p3e <- insert' p3
|
|
ret <- select $
|
|
from $ \p -> do
|
|
where_ (not_ $ p ^. PersonAge >. just (val 17))
|
|
return p
|
|
liftIO $ ret `shouldBe` [ p3e ]
|
|
|
|
it "works with avg_" $
|
|
run $ do
|
|
_ <- insert' p1
|
|
_ <- insert' p2
|
|
_ <- insert' p3
|
|
_ <- insert' p4
|
|
ret <- select $
|
|
from $ \p->
|
|
return $ joinV $ avg_ (p ^. PersonAge)
|
|
let testV :: Double
|
|
testV = roundTo (4 :: Integer) $ (36 + 17 + 17) / (3 :: Double)
|
|
|
|
retV :: [Value (Maybe Double)]
|
|
retV = map (Value . fmap (roundTo (4 :: Integer)) . unValue) (ret :: [Value (Maybe Double)])
|
|
liftIO $ retV `shouldBe` [ Value $ Just testV ]
|
|
|
|
it "works with min_" $
|
|
run $ do
|
|
_ <- insert' p1
|
|
_ <- insert' p2
|
|
_ <- insert' p3
|
|
_ <- insert' p4
|
|
ret <- select $
|
|
from $ \p->
|
|
return $ joinV $ min_ (p ^. PersonAge)
|
|
liftIO $ ret `shouldBe` [ Value $ Just (17 :: Int) ]
|
|
|
|
it "works with max_" $
|
|
run $ do
|
|
_ <- insert' p1
|
|
_ <- insert' p2
|
|
_ <- insert' p3
|
|
_ <- insert' p4
|
|
ret <- select $
|
|
from $ \p->
|
|
return $ joinV $ max_ (p ^. PersonAge)
|
|
liftIO $ ret `shouldBe` [ Value $ Just (36 :: Int) ]
|
|
|
|
it "works with lower_" $
|
|
run $ do
|
|
p1e <- insert' p1
|
|
p2e@(Entity _ bob) <- insert' $ Person "bob" (Just 36) Nothing 1
|
|
|
|
-- lower(name) == 'john'
|
|
ret1 <- select $
|
|
from $ \p-> do
|
|
where_ (lower_ (p ^. PersonName) ==. val (map toLower $ personName p1))
|
|
return p
|
|
liftIO $ ret1 `shouldBe` [ p1e ]
|
|
|
|
-- name == lower('BOB')
|
|
ret2 <- select $
|
|
from $ \p-> do
|
|
where_ (p ^. PersonName ==. lower_ (val $ map toUpper $ personName bob))
|
|
return p
|
|
liftIO $ ret2 `shouldBe` [ p2e ]
|
|
|
|
it "works with round_" $
|
|
run $ do
|
|
ret <- select $ return $ round_ (val (16.2 :: Double))
|
|
liftIO $ ret `shouldBe` [ Value (16 :: Double) ]
|
|
|
|
it "works with isNothing" $
|
|
run $ do
|
|
_ <- insert' p1
|
|
p2e <- insert' p2
|
|
_ <- insert' p3
|
|
ret <- select $
|
|
from $ \p -> do
|
|
where_ $ isNothing (p ^. PersonAge)
|
|
return p
|
|
liftIO $ ret `shouldBe` [ p2e ]
|
|
|
|
it "works with not_ . isNothing" $
|
|
run $ do
|
|
p1e <- insert' p1
|
|
_ <- insert' p2
|
|
ret <- select $
|
|
from $ \p -> do
|
|
where_ $ not_ (isNothing (p ^. PersonAge))
|
|
return p
|
|
liftIO $ ret `shouldBe` [ p1e ]
|
|
|
|
it "works for a many-to-many implicit join" $
|
|
run $ do
|
|
p1e@(Entity p1k _) <- insert' p1
|
|
p2e@(Entity p2k _) <- insert' p2
|
|
_ <- insert' p3
|
|
p4e@(Entity p4k _) <- insert' p4
|
|
f12 <- insert' (Follow p1k p2k)
|
|
f21 <- insert' (Follow p2k p1k)
|
|
f42 <- insert' (Follow p4k p2k)
|
|
f11 <- insert' (Follow p1k p1k)
|
|
ret <- select $
|
|
from $ \(follower, follows, followed) -> do
|
|
where_ $ follower ^. PersonId ==. follows ^. FollowFollower &&.
|
|
followed ^. PersonId ==. follows ^. FollowFollowed
|
|
orderBy [ asc (follower ^. PersonName)
|
|
, asc (followed ^. PersonName) ]
|
|
return (follower, follows, followed)
|
|
liftIO $ ret `shouldBe` [ (p1e, f11, p1e)
|
|
, (p1e, f12, p2e)
|
|
, (p4e, f42, p2e)
|
|
, (p2e, f21, p1e) ]
|
|
|
|
it "works for a many-to-many explicit join" $
|
|
run $ do
|
|
p1e@(Entity p1k _) <- insert' p1
|
|
p2e@(Entity p2k _) <- insert' p2
|
|
_ <- insert' p3
|
|
p4e@(Entity p4k _) <- insert' p4
|
|
f12 <- insert' (Follow p1k p2k)
|
|
f21 <- insert' (Follow p2k p1k)
|
|
f42 <- insert' (Follow p4k p2k)
|
|
f11 <- insert' (Follow p1k p1k)
|
|
ret <- select $
|
|
from $ \(follower `InnerJoin` follows `InnerJoin` followed) -> do
|
|
on $ followed ^. PersonId ==. follows ^. FollowFollowed
|
|
on $ follower ^. PersonId ==. follows ^. FollowFollower
|
|
orderBy [ asc (follower ^. PersonName)
|
|
, asc (followed ^. PersonName) ]
|
|
return (follower, follows, followed)
|
|
liftIO $ ret `shouldBe` [ (p1e, f11, p1e)
|
|
, (p1e, f12, p2e)
|
|
, (p4e, f42, p2e)
|
|
, (p2e, f21, p1e) ]
|
|
|
|
it "works for a many-to-many explicit join with LEFT OUTER JOINs" $
|
|
run $ do
|
|
p1e@(Entity p1k _) <- insert' p1
|
|
p2e@(Entity p2k _) <- insert' p2
|
|
p3e <- insert' p3
|
|
p4e@(Entity p4k _) <- insert' p4
|
|
f12 <- insert' (Follow p1k p2k)
|
|
f21 <- insert' (Follow p2k p1k)
|
|
f42 <- insert' (Follow p4k p2k)
|
|
f11 <- insert' (Follow p1k p1k)
|
|
ret <- select $
|
|
from $ \(follower `LeftOuterJoin` mfollows `LeftOuterJoin` mfollowed) -> do
|
|
on $ mfollowed ?. PersonId ==. mfollows ?. FollowFollowed
|
|
on $ just (follower ^. PersonId) ==. mfollows ?. FollowFollower
|
|
orderBy [ asc ( follower ^. PersonName)
|
|
, asc (mfollowed ?. PersonName) ]
|
|
return (follower, mfollows, mfollowed)
|
|
liftIO $ ret `shouldBe` [ (p1e, Just f11, Just p1e)
|
|
, (p1e, Just f12, Just p2e)
|
|
, (p4e, Just f42, Just p2e)
|
|
, (p3e, Nothing, Nothing)
|
|
, (p2e, Just f21, Just p1e) ]
|
|
|
|
it "works with a composite primary key" $
|
|
run $ do
|
|
let p = Point x y ""
|
|
x = 10
|
|
y = 15
|
|
Right thePk = keyFromValues [toPersistValue x, toPersistValue y]
|
|
pPk <- insert p
|
|
[Entity _ ret] <- select $ from $ \p' -> do
|
|
where_ (p'^.PointId ==. val pPk)
|
|
return p'
|
|
liftIO $ do
|
|
ret `shouldBe` p
|
|
pPk `shouldBe` thePk
|
|
|
|
|
|
|
|
testSelectOrderBy :: Run -> Spec
|
|
testSelectOrderBy run = do
|
|
describe "select/orderBy" $ do
|
|
it "works with a single ASC field" $
|
|
run $ do
|
|
p1e <- insert' p1
|
|
p2e <- insert' p2
|
|
p3e <- insert' p3
|
|
ret <- select $
|
|
from $ \p -> do
|
|
orderBy [asc $ p ^. PersonName]
|
|
return p
|
|
liftIO $ ret `shouldBe` [ p1e, p3e, p2e ]
|
|
|
|
it "works with a sub_select" $
|
|
run $ do
|
|
[p1k, p2k, p3k, p4k] <- mapM insert [p1, p2, p3, p4]
|
|
[b1k, b2k, b3k, b4k] <- mapM (insert . BlogPost "") [p1k, p2k, p3k, p4k]
|
|
ret <- select $
|
|
from $ \b -> do
|
|
orderBy [desc $ sub_select $
|
|
from $ \p -> do
|
|
where_ (p ^. PersonId ==. b ^. BlogPostAuthorId)
|
|
return (p ^. PersonName)
|
|
]
|
|
return (b ^. BlogPostId)
|
|
liftIO $ ret `shouldBe` (Value <$> [b2k, b3k, b4k, b1k])
|
|
|
|
it "works with asc random_" $
|
|
run $ do
|
|
_p1e <- insert' p1
|
|
_p2e <- insert' p2
|
|
_p3e <- insert' p3
|
|
_p4e <- insert' p4
|
|
rets <-
|
|
fmap S.fromList $
|
|
replicateM 11 $
|
|
select $
|
|
from $ \p -> do
|
|
orderBy [asc (random_ :: SqlExpr (Value Double))]
|
|
return (p ^. PersonId :: SqlExpr (Value PersonId))
|
|
-- There are 2^4 = 16 possible orderings. The chance
|
|
-- of 11 random samplings returning the same ordering
|
|
-- is 1/2^40, so this test should pass almost everytime.
|
|
liftIO $ S.size rets `shouldSatisfy` (>2)
|
|
|
|
it "works on a composite primary key" $
|
|
run $ do
|
|
let ps = [Point 2 1 "", Point 1 2 ""]
|
|
mapM_ insert ps
|
|
eps <- select $
|
|
from $ \p' -> do
|
|
orderBy [asc (p'^.PointId)]
|
|
return p'
|
|
liftIO $ map entityVal eps `shouldBe` reverse ps
|
|
|
|
|
|
|
|
testSelectDistinct :: Run -> Spec
|
|
testSelectDistinct run = do
|
|
describe "SELECT DISTINCT" $ do
|
|
let selDistTest
|
|
:: ( forall m. RunDbMonad m
|
|
=> SqlQuery (SqlExpr (Value String))
|
|
-> SqlPersistT (R.ResourceT m) [Value String])
|
|
-> IO ()
|
|
selDistTest q = run $ do
|
|
p1k <- insert p1
|
|
let (t1, t2, t3) = ("a", "b", "c")
|
|
mapM_ (insert . flip BlogPost p1k) [t1, t3, t2, t2, t1]
|
|
ret <- q $
|
|
from $ \b -> do
|
|
let title = b ^. BlogPostTitle
|
|
orderBy [asc title]
|
|
return title
|
|
liftIO $ ret `shouldBe` [ Value t1, Value t2, Value t3 ]
|
|
|
|
it "works on a simple example (select . distinct)" $
|
|
selDistTest (select . distinct)
|
|
|
|
it "works on a simple example (distinct (return ()))" $
|
|
selDistTest (\act -> select $ distinct (return ()) >> act)
|
|
|
|
|
|
|
|
testCoasleceDefault :: Run -> Spec
|
|
testCoasleceDefault run = do
|
|
describe "coalesce/coalesceDefault" $ do
|
|
it "works on a simple example" $
|
|
run $ do
|
|
mapM_ insert' [p1, p2, p3, p4, p5]
|
|
ret1 <- select $
|
|
from $ \p -> do
|
|
orderBy [asc (p ^. PersonId)]
|
|
return (coalesce [p ^. PersonAge, p ^. PersonWeight])
|
|
liftIO $ ret1 `shouldBe` [ Value (Just (36 :: Int))
|
|
, Value (Just 37)
|
|
, Value (Just 17)
|
|
, Value (Just 17)
|
|
, Value Nothing
|
|
]
|
|
|
|
ret2 <- select $
|
|
from $ \p -> do
|
|
orderBy [asc (p ^. PersonId)]
|
|
return (coalesceDefault [p ^. PersonAge, p ^. PersonWeight] (p ^. PersonFavNum))
|
|
liftIO $ ret2 `shouldBe` [ Value (36 :: Int)
|
|
, Value 37
|
|
, Value 17
|
|
, Value 17
|
|
, Value 5
|
|
]
|
|
|
|
it "works with sub-queries" $
|
|
run $ do
|
|
p1id <- insert p1
|
|
p2id <- insert p2
|
|
p3id <- insert p3
|
|
_ <- insert p4
|
|
_ <- insert p5
|
|
_ <- insert $ BlogPost "a" p1id
|
|
_ <- insert $ BlogPost "b" p2id
|
|
_ <- insert $ BlogPost "c" p3id
|
|
ret <- select $
|
|
from $ \b -> do
|
|
let sub =
|
|
from $ \p -> do
|
|
where_ (p ^. PersonId ==. b ^. BlogPostAuthorId)
|
|
return $ p ^. PersonAge
|
|
return $ coalesceDefault [sub_select sub] (val (42 :: Int))
|
|
liftIO $ ret `shouldBe` [ Value (36 :: Int)
|
|
, Value 42
|
|
, Value 17
|
|
]
|
|
|
|
|
|
|
|
testDelete :: Run -> Spec
|
|
testDelete run = do
|
|
describe "delete" $
|
|
it "works on a simple example" $
|
|
run $ do
|
|
p1e <- insert' p1
|
|
p2e <- insert' p2
|
|
p3e <- insert' p3
|
|
let getAll = select $
|
|
from $ \p -> do
|
|
orderBy [asc (p ^. PersonName)]
|
|
return p
|
|
ret1 <- getAll
|
|
liftIO $ ret1 `shouldBe` [ p1e, p3e, p2e ]
|
|
() <- delete $
|
|
from $ \p ->
|
|
where_ (p ^. PersonName ==. val (personName p1))
|
|
ret2 <- getAll
|
|
liftIO $ ret2 `shouldBe` [ p3e, p2e ]
|
|
n <- deleteCount $
|
|
from $ \p ->
|
|
return ((p :: SqlExpr (Entity Person)) `seq` ())
|
|
ret3 <- getAll
|
|
liftIO $ (n, ret3) `shouldBe` (2, [])
|
|
|
|
|
|
|
|
testUpdate :: Run -> Spec
|
|
testUpdate run = do
|
|
describe "update" $ do
|
|
|
|
it "works with a subexpression having COUNT(*)" $
|
|
run $ do
|
|
p1k <- insert p1
|
|
p2k <- insert p2
|
|
p3k <- insert p3
|
|
replicateM_ 3 (insert $ BlogPost "" p1k)
|
|
replicateM_ 7 (insert $ BlogPost "" p3k)
|
|
let blogPostsBy p =
|
|
from $ \b -> do
|
|
where_ (b ^. BlogPostAuthorId ==. p ^. PersonId)
|
|
return countRows
|
|
() <- update $ \p -> do
|
|
set p [ PersonAge =. just (sub_select (blogPostsBy p)) ]
|
|
ret <- select $
|
|
from $ \p -> do
|
|
orderBy [ asc (p ^. PersonName) ]
|
|
return p
|
|
liftIO $ ret `shouldBe` [ Entity p1k p1 { personAge = Just 3 }
|
|
, Entity p3k p3 { personAge = Just 7 }
|
|
, Entity p2k p2 { personAge = Just 0 } ]
|
|
|
|
it "works with a composite primary key" $
|
|
pendingWith "Need refactor to support composite pks on ESet"
|
|
{-
|
|
run $ do
|
|
let p = Point x y ""
|
|
x = 10
|
|
y = 15
|
|
newX = 20
|
|
newY = 25
|
|
Right newPk = keyFromValues [toPersistValue newX, toPersistValue newY]
|
|
insert_ p
|
|
() <- update $ \p' -> do
|
|
set p' [PointId =. val newPk]
|
|
[Entity _ ret] <- select $ from $ return
|
|
liftIO $ do
|
|
ret `shouldBe` Point newX newY []
|
|
-}
|
|
|
|
it "GROUP BY works with COUNT" $
|
|
run $ do
|
|
p1k <- insert p1
|
|
p2k <- insert p2
|
|
p3k <- insert p3
|
|
replicateM_ 3 (insert $ BlogPost "" p1k)
|
|
replicateM_ 7 (insert $ BlogPost "" p3k)
|
|
ret <- select $
|
|
from $ \(p `LeftOuterJoin` b) -> do
|
|
on (p ^. PersonId ==. b ^. BlogPostAuthorId)
|
|
groupBy (p ^. PersonId)
|
|
let cnt = count (b ^. BlogPostId)
|
|
orderBy [ asc cnt ]
|
|
return (p, cnt)
|
|
liftIO $ ret `shouldBe` [ (Entity p2k p2, Value (0 :: Int))
|
|
, (Entity p1k p1, Value 3)
|
|
, (Entity p3k p3, Value 7) ]
|
|
|
|
it "GROUP BY works with COUNT and InnerJoin" $
|
|
run $ do
|
|
l1k <- insert l1
|
|
l3k <- insert l3
|
|
mapM_ (\k -> insert $ Deed k l1k) (map show [1..3 :: Int])
|
|
|
|
mapM_ (\k -> insert $ Deed k l3k) (map show [4..10 :: Int])
|
|
|
|
(ret :: [(Value (Key Lord), Value Int)]) <- select $ from $
|
|
\ ( lord `InnerJoin` deed ) -> do
|
|
on $ lord ^. LordId ==. deed ^. DeedOwnerId
|
|
groupBy (lord ^. LordId)
|
|
return (lord ^. LordId, count $ deed ^. DeedId)
|
|
liftIO $ ret `shouldMatchList` [ (Value l3k, Value 7)
|
|
, (Value l1k, Value 3) ]
|
|
|
|
it "GROUP BY works with HAVING" $
|
|
run $ do
|
|
p1k <- insert p1
|
|
_p2k <- insert p2
|
|
p3k <- insert p3
|
|
replicateM_ 3 (insert $ BlogPost "" p1k)
|
|
replicateM_ 7 (insert $ BlogPost "" p3k)
|
|
ret <- select $
|
|
from $ \(p `LeftOuterJoin` b) -> do
|
|
on (p ^. PersonId ==. b ^. BlogPostAuthorId)
|
|
let cnt = count (b ^. BlogPostId)
|
|
groupBy (p ^. PersonId)
|
|
having (cnt >. (val 0))
|
|
orderBy [ asc cnt ]
|
|
return (p, cnt)
|
|
liftIO $ ret `shouldBe` [ (Entity p1k p1, Value (3 :: Int))
|
|
, (Entity p3k p3, Value 7) ]
|
|
|
|
|
|
|
|
testListOfValues :: Run -> Spec
|
|
testListOfValues run = do
|
|
describe "lists of values" $ do
|
|
it "IN works for valList" $
|
|
run $ do
|
|
p1k <- insert p1
|
|
p2k <- insert p2
|
|
_p3k <- insert p3
|
|
ret <- select $
|
|
from $ \p -> do
|
|
where_ (p ^. PersonName `in_` valList (personName <$> [p1, p2]))
|
|
return p
|
|
liftIO $ ret `shouldBe` [ Entity p1k p1
|
|
, Entity p2k p2 ]
|
|
|
|
it "IN works for valList (null list)" $
|
|
run $ do
|
|
_p1k <- insert p1
|
|
_p2k <- insert p2
|
|
_p3k <- insert p3
|
|
ret <- select $
|
|
from $ \p -> do
|
|
where_ (p ^. PersonName `in_` valList [])
|
|
return p
|
|
liftIO $ ret `shouldBe` []
|
|
|
|
it "IN works for subList_select" $
|
|
run $ do
|
|
p1k <- insert p1
|
|
_p2k <- insert p2
|
|
p3k <- insert p3
|
|
_ <- insert (BlogPost "" p1k)
|
|
_ <- insert (BlogPost "" p3k)
|
|
ret <- select $
|
|
from $ \p -> do
|
|
let subquery =
|
|
from $ \bp -> do
|
|
orderBy [ asc (bp ^. BlogPostAuthorId) ]
|
|
return (bp ^. BlogPostAuthorId)
|
|
where_ (p ^. PersonId `in_` subList_select subquery)
|
|
return p
|
|
liftIO $ ret `shouldBe` [ Entity p1k p1
|
|
, Entity p3k p3 ]
|
|
|
|
it "NOT IN works for subList_select" $
|
|
run $ do
|
|
p1k <- insert p1
|
|
p2k <- insert p2
|
|
p3k <- insert p3
|
|
_ <- insert (BlogPost "" p1k)
|
|
_ <- insert (BlogPost "" p3k)
|
|
ret <- select $
|
|
from $ \p -> do
|
|
let subquery =
|
|
from $ \bp ->
|
|
return (bp ^. BlogPostAuthorId)
|
|
where_ (p ^. PersonId `notIn` subList_select subquery)
|
|
return p
|
|
liftIO $ ret `shouldBe` [ Entity p2k p2 ]
|
|
|
|
it "EXISTS works for subList_select" $
|
|
run $ do
|
|
p1k <- insert p1
|
|
_p2k <- insert p2
|
|
p3k <- insert p3
|
|
_ <- insert (BlogPost "" p1k)
|
|
_ <- insert (BlogPost "" p3k)
|
|
ret <- select $
|
|
from $ \p -> do
|
|
where_ $ exists $
|
|
from $ \bp -> do
|
|
where_ (bp ^. BlogPostAuthorId ==. p ^. PersonId)
|
|
orderBy [asc (p ^. PersonName)]
|
|
return p
|
|
liftIO $ ret `shouldBe` [ Entity p1k p1
|
|
, Entity p3k p3 ]
|
|
|
|
it "EXISTS works for subList_select" $
|
|
run $ do
|
|
p1k <- insert p1
|
|
p2k <- insert p2
|
|
p3k <- insert p3
|
|
_ <- insert (BlogPost "" p1k)
|
|
_ <- insert (BlogPost "" p3k)
|
|
ret <- select $
|
|
from $ \p -> do
|
|
where_ $ notExists $
|
|
from $ \bp -> do
|
|
where_ (bp ^. BlogPostAuthorId ==. p ^. PersonId)
|
|
return p
|
|
liftIO $ ret `shouldBe` [ Entity p2k p2 ]
|
|
|
|
|
|
|
|
|
|
|
|
testListFields :: Run -> Spec
|
|
testListFields run = do
|
|
describe "list fields" $ do
|
|
-- <https://github.com/prowdsponsor/esqueleto/issues/100>
|
|
it "can update list fields" $
|
|
run $ do
|
|
cclist <- insert $ CcList []
|
|
update $ \p -> do
|
|
set p [ CcListNames =. val ["fred"]]
|
|
where_ (p ^. CcListId ==. val cclist)
|
|
|
|
|
|
|
|
|
|
|
|
testInsertsBySelect :: Run -> Spec
|
|
testInsertsBySelect run = do
|
|
describe "inserts by select" $ do
|
|
it "IN works for insertSelect" $
|
|
run $ do
|
|
_ <- insert p1
|
|
_ <- insert p2
|
|
_ <- insert p3
|
|
insertSelect $ from $ \p -> do
|
|
return $ BlogPost <# val "FakePost" <&> (p ^. PersonId)
|
|
ret <- select $ from (\(_::(SqlExpr (Entity BlogPost))) -> return countRows)
|
|
liftIO $ ret `shouldBe` [Value (3::Int)]
|
|
|
|
|
|
|
|
|
|
|
|
testInsertsBySelectReturnsCount :: Run -> Spec
|
|
testInsertsBySelectReturnsCount run = do
|
|
describe "inserts by select, returns count" $ do
|
|
it "IN works for insertSelectCount" $
|
|
run $ do
|
|
_ <- insert p1
|
|
_ <- insert p2
|
|
_ <- insert p3
|
|
cnt <- insertSelectCount $ from $ \p -> do
|
|
return $ BlogPost <# val "FakePost" <&> (p ^. PersonId)
|
|
ret <- select $ from (\(_::(SqlExpr (Entity BlogPost))) -> return countRows)
|
|
liftIO $ ret `shouldBe` [Value (3::Int)]
|
|
liftIO $ cnt `shouldBe` 3
|
|
|
|
|
|
|
|
|
|
|
|
testMathFunctions :: Run -> Spec
|
|
testMathFunctions run = do
|
|
describe "Math-related functions" $ do
|
|
it "rand returns result in random order" $
|
|
run $ do
|
|
replicateM_ 20 $ do
|
|
_ <- insert p1
|
|
_ <- insert p2
|
|
_ <- insert p3
|
|
_ <- insert p4
|
|
_ <- insert $ Person "Jane" Nothing Nothing 0
|
|
_ <- insert $ Person "Mark" Nothing Nothing 0
|
|
_ <- insert $ Person "Sarah" Nothing Nothing 0
|
|
insert $ Person "Paul" Nothing Nothing 0
|
|
ret1 <- fmap (map unValue) $ select $ from $ \p -> do
|
|
orderBy [rand]
|
|
return (p ^. PersonId)
|
|
ret2 <- fmap (map unValue) $ select $ from $ \p -> do
|
|
orderBy [rand]
|
|
return (p ^. PersonId)
|
|
|
|
liftIO $ (ret1 == ret2) `shouldBe` False
|
|
|
|
it "castNum works for multiplying Int and Double" $
|
|
run $ do
|
|
mapM_ insert [Numbers 2 3.4, Numbers 7 1.1]
|
|
ret <-
|
|
select $
|
|
from $ \n -> do
|
|
let r = castNum (n ^. NumbersInt) *. n ^. NumbersDouble
|
|
orderBy [asc r]
|
|
return r
|
|
liftIO $ length ret `shouldBe` 2
|
|
let [Value a, Value b] = ret
|
|
liftIO $ max (abs (a - 6.8)) (abs (b - 7.7)) `shouldSatisfy` (< 0.01)
|
|
|
|
|
|
|
|
|
|
|
|
testCase :: Run -> Spec
|
|
testCase run = do
|
|
describe "case" $ do
|
|
it "Works for a simple value based when - False" $
|
|
run $ do
|
|
ret <- select $
|
|
return $
|
|
case_
|
|
[ when_ (val False) then_ (val (1 :: Int)) ]
|
|
(else_ (val 2))
|
|
|
|
liftIO $ ret `shouldBe` [ Value 2 ]
|
|
|
|
it "Works for a simple value based when - True" $
|
|
run $ do
|
|
ret <- select $
|
|
return $
|
|
case_
|
|
[ when_ (val True) then_ (val (1 :: Int)) ]
|
|
(else_ (val 2))
|
|
|
|
liftIO $ ret `shouldBe` [ Value 1 ]
|
|
|
|
it "works for a semi-complicated query" $
|
|
run $ do
|
|
_ <- insert p1
|
|
_ <- insert p2
|
|
_ <- insert p3
|
|
_ <- insert p4
|
|
_ <- insert p5
|
|
ret <- select $
|
|
return $
|
|
case_
|
|
[ when_
|
|
(exists $ from $ \p -> do
|
|
where_ (p ^. PersonName ==. val "Mike"))
|
|
then_
|
|
(sub_select $ from $ \v -> do
|
|
let sub =
|
|
from $ \c -> do
|
|
where_ (c ^. PersonName ==. val "Mike")
|
|
return (c ^. PersonFavNum)
|
|
where_ (v ^. PersonFavNum >. sub_select sub)
|
|
return $ count (v ^. PersonName) +. val (1 :: Int)) ]
|
|
(else_ $ val (-1))
|
|
|
|
liftIO $ ret `shouldBe` [ Value (3) ]
|
|
|
|
|
|
|
|
|
|
|
|
testLocking :: WithConn (NoLoggingT IO) [TL.Text] -> Spec
|
|
testLocking withConn = do
|
|
describe "locking" $ do
|
|
-- The locking clause is the last one, so try to use many
|
|
-- others to test if it's at the right position. We don't
|
|
-- care about the text of the rest, nor with the RDBMS'
|
|
-- reaction to the clause.
|
|
let sanityCheck kind syntax = do
|
|
let complexQuery =
|
|
from $ \(p1' `InnerJoin` p2') -> do
|
|
on (p1' ^. PersonName ==. p2' ^. PersonName)
|
|
where_ (p1' ^. PersonFavNum >. val 2)
|
|
orderBy [desc (p2' ^. PersonAge)]
|
|
limit 3
|
|
offset 9
|
|
groupBy (p1' ^. PersonId)
|
|
having (countRows <. val (0 :: Int))
|
|
return (p1', p2')
|
|
queryWithClause1 = do
|
|
r <- complexQuery
|
|
locking kind
|
|
return r
|
|
queryWithClause2 = do
|
|
locking ForUpdate
|
|
r <- complexQuery
|
|
locking ForShare
|
|
locking kind
|
|
return r
|
|
queryWithClause3 = do
|
|
locking kind
|
|
complexQuery
|
|
toText conn q =
|
|
let (tlb, _) = EI.toRawSql EI.SELECT (conn, EI.initialIdentState) q
|
|
in TLB.toLazyText tlb
|
|
[complex, with1, with2, with3] <-
|
|
runNoLoggingT $ withConn $ \conn -> return $
|
|
map (toText conn) [complexQuery, queryWithClause1, queryWithClause2, queryWithClause3]
|
|
let expected = complex <> "\n" <> syntax
|
|
(with1, with2, with3) `shouldBe` (expected, expected, expected)
|
|
|
|
it "looks sane for ForUpdate" $ sanityCheck ForUpdate "FOR UPDATE"
|
|
it "looks sane for ForShare" $ sanityCheck ForShare "FOR SHARE"
|
|
it "looks sane for LockInShareMode" $ sanityCheck LockInShareMode "LOCK IN SHARE MODE"
|
|
|
|
|
|
|
|
|
|
|
|
testCountingRows :: Run -> Spec
|
|
testCountingRows run = do
|
|
describe "counting rows" $ do
|
|
forM_ [ ("count (test A)", count . (^. PersonAge), 4)
|
|
, ("count (test B)", count . (^. PersonWeight), 5)
|
|
, ("countRows", const countRows, 5)
|
|
, ("countDistinct", countDistinct . (^. PersonAge), 2) ] $
|
|
\(title, countKind, expected) ->
|
|
it (title ++ " works as expected") $
|
|
run $ do
|
|
mapM_ insert
|
|
[ Person "" (Just 1) (Just 1) 1
|
|
, Person "" (Just 2) (Just 1) 1
|
|
, Person "" (Just 2) (Just 1) 1
|
|
, Person "" (Just 2) (Just 2) 1
|
|
, Person "" Nothing (Just 3) 1]
|
|
[Value n] <- select $ from $ return . countKind
|
|
liftIO $ (n :: Int) `shouldBe` expected
|
|
|
|
|
|
|
|
|
|
|
|
tests :: Run -> Spec
|
|
tests run = do
|
|
describe "Tests that are common to all backends" $ do
|
|
testSelect run
|
|
testSelectSource run
|
|
testSelectFrom run
|
|
testSelectJoin run
|
|
testSelectWhere run
|
|
testSelectOrderBy run
|
|
testSelectDistinct run
|
|
testCoasleceDefault run
|
|
testDelete run
|
|
testUpdate run
|
|
testListOfValues run
|
|
testListFields run
|
|
testInsertsBySelect run
|
|
testMathFunctions run
|
|
testCase run
|
|
testCountingRows run
|
|
|
|
|
|
|
|
|
|
insert' :: ( Functor m
|
|
, BaseBackend backend ~ PersistEntityBackend val
|
|
, PersistStore backend
|
|
, MonadIO m
|
|
, PersistEntity val )
|
|
=> val -> ReaderT backend m (Entity val)
|
|
insert' v = flip Entity v <$> insert v
|
|
|
|
|
|
type RunDbMonad m = ( MonadUnliftIO m
|
|
, MonadIO m
|
|
, MonadLogger m
|
|
, MonadThrow m )
|
|
|
|
type Run = forall a. (forall m. RunDbMonad m => SqlPersistT (R.ResourceT m) a) -> IO a
|
|
|
|
type WithConn m a = RunDbMonad m => (SqlBackend -> R.ResourceT m a) -> m a
|
|
|
|
-- With SQLite and in-memory databases, a separate connection implies a
|
|
-- separate database. With 'actual databases', the data is persistent and
|
|
-- thus must be cleaned after each test.
|
|
-- TODO: there is certainly a better way...
|
|
cleanDB
|
|
:: (forall m. RunDbMonad m
|
|
=> SqlPersistT (R.ResourceT m) ())
|
|
cleanDB = do
|
|
delete $ from $ \(_ :: SqlExpr (Entity Foo)) -> return ()
|
|
delete $ from $ \(_ :: SqlExpr (Entity Bar)) -> return ()
|
|
|
|
delete $ from $ \(_ :: SqlExpr (Entity BlogPost)) -> return ()
|
|
delete $ from $ \(_ :: SqlExpr (Entity Follow)) -> return ()
|
|
delete $ from $ \(_ :: SqlExpr (Entity Person)) -> return ()
|
|
|
|
delete $ from $ \(_ :: SqlExpr (Entity Deed)) -> return ()
|
|
delete $ from $ \(_ :: SqlExpr (Entity Lord)) -> return ()
|
|
|
|
delete $ from $ \(_ :: SqlExpr (Entity CcList)) -> return ()
|
|
|
|
delete $ from $ \(_ :: SqlExpr (Entity ArticleTag)) -> return ()
|
|
delete $ from $ \(_ :: SqlExpr (Entity Article)) -> return ()
|
|
delete $ from $ \(_ :: SqlExpr (Entity Article2)) -> return ()
|
|
delete $ from $ \(_ :: SqlExpr (Entity Tag)) -> return ()
|
|
delete $ from $ \(_ :: SqlExpr (Entity Frontcover)) -> return ()
|
|
|
|
delete $ from $ \(_ :: SqlExpr (Entity Circle)) -> return ()
|
|
delete $ from $ \(_ :: SqlExpr (Entity Point)) -> return ()
|
|
|
|
delete $ from $ \(_ :: SqlExpr (Entity Numbers)) -> return ()
|