28 Commits
Author SHA1 Message Date
MasseR 9108ba9c8f Merge pull request 'Control the kitchen lights' (#1) from kitchen-lights into main
Reviewed-on: #1
2026-09-14 14:47:18 +03:00
MasseR 0f7c6ff98a Control the kitchen lights 2026-09-14 14:45:45 +03:00
MasseR aaba917a9b Test the SerializeUTCTime property 2026-09-12 20:25:24 +03:00
MasseR a3dd63f26c Update tests 2026-09-12 20:18:13 +03:00
MasseR b20320c779 Explicit state 2026-09-12 20:09:42 +03:00
MasseR e16010bf2f Backport serializable arrow 2026-09-12 16:27:12 +03:00
MasseR 1f786815e6 Laws 2026-09-12 12:25:02 +03:00
MasseR 54ef6b5cc3 Merge branch 'mem-leak' 2026-09-08 08:00:13 +03:00
MasseR 1edb2ac5a2 Fix memory memory leak
- Tuple to strict pair
- Self-recursive loops with more knot tying <- this was the thing
2026-09-08 07:58:50 +03:00
MasseR d3518e8ff2 Fix: rrdtool DS names must be <= 19 chars
sanitizeName now keeps the first 15 chars plus a 3-hex hash suffix
for names longer than 19 chars (rrdtool's hard limit on DS name
length). The previous replace-dots-only version produced names up to
31 chars, which rrdtool rejected with 'invalid DS format'.
2026-09-07 23:09:42 +03:00
MasseR e30a28c9ef Merge feat/ekg-rrd-metrics: ekg-core RTS metrics -> rrd export 2026-09-07 21:44:56 +03:00
MasseR f7849ac889 defaultMain: wire metricsAction worker and enable -with-rtsopts=-T 2026-09-07 21:37:17 +03:00
MasseR 0a4b7dbb01 Add metricsAction: supervised loop sampling ekg store to rrd via rrdtool 2026-09-07 21:34:15 +03:00
MasseR 88af6a3139 Add Metrics module: pure rrdtool argv builders for ekg samples 2026-09-07 21:30:42 +03:00
MasseR 055c02d0f2 flake: add rrdtool to devShell and wrap the shipped binary with HA_RRDTOOL 2026-09-07 21:24:42 +03:00
MasseR 7b6b529120 Merge feat/outbound-rate-limiting: drop excess outbound calls 2026-08-25 19:46:13 +03:00
MasseR ef4811f89b Drop redundant UUID import from ConnectionSpec 2026-08-25 19:39:40 +03:00
MasseR 9fadbae777 writerAction: drain, dedupe, and rate-limit outbound calls 2026-08-25 19:37:57 +03:00
MasseR 3f5aa4735c Add dedupeBatch: collapse outbound calls per target 2026-08-25 19:33:44 +03:00
MasseR 6bb96833e1 A lot of internals as I tried to do a switch based logic 2026-08-25 19:05:52 +03:00
MasseR 2730657952 Triggers instead of full state events 2026-08-25 13:13:50 +03:00
MasseR 771d702abd Test the bedroom spec 2026-08-25 12:41:42 +03:00
MasseR 7051eaf244 Test rest of the AFRP 2026-08-25 11:41:12 +03:00
MasseR 7a9f30e1be Tests with timers 2026-08-25 11:36:13 +03:00
MasseR aa8ea07249 Tests 2026-08-25 11:27:18 +03:00
MasseR 2664ca67c0 Debounce instead of delay 2026-08-25 10:47:38 +03:00
MasseR d341270ed1 rollup, sliding and fixed windows 2026-08-25 10:11:44 +03:00
MasseR dc55834507 Outdated comment 2026-08-21 16:21:08 +03:00
23 changed files with 2311 additions and 213 deletions
+5
View File
@@ -5,3 +5,8 @@ dist-newstyle
.worktrees/ .worktrees/
docs/superpowers docs/superpowers
*.hp
*.eventlog
*.eventlog.html
*.rrd
+11 -6
View File
@@ -1,6 +1,8 @@
{ mkDerivation, aeson, annotated-exception, async, base, bytestring { mkDerivation, aeson, annotated-exception, async, base, bytestring
, hedgehog, hspec, hspec-hedgehog, katip, lens, lens-aeson, lib , cereal, cereal-conduit, conduit, containers, directory, ekg-core
, network, stm, text, time, uuid, websockets , filepath, hedgehog, hspec, hspec-hedgehog, katip, lens
, lens-aeson, lib, network, process, stm, text, time
, unordered-containers, uuid, websockets
}: }:
mkDerivation { mkDerivation {
pname = "home-assistant-controller"; pname = "home-assistant-controller";
@@ -9,13 +11,16 @@ mkDerivation {
isLibrary = true; isLibrary = true;
isExecutable = true; isExecutable = true;
libraryHaskellDepends = [ libraryHaskellDepends = [
aeson annotated-exception async base bytestring katip lens aeson annotated-exception async base bytestring cereal
lens-aeson network stm text time uuid websockets cereal-conduit conduit containers directory ekg-core filepath katip
lens lens-aeson network process stm text time unordered-containers
uuid websockets
]; ];
executableHaskellDepends = [ base ]; executableHaskellDepends = [ base ];
testHaskellDepends = [ testHaskellDepends = [
aeson annotated-exception async base hedgehog hspec hspec-hedgehog aeson annotated-exception async base cereal containers directory
stm text time ekg-core hedgehog hspec hspec-hedgehog katip process stm text time
unordered-containers uuid
]; ];
license = lib.meta.getLicenseFromSpdxId "BSD-3-Clause"; license = lib.meta.getLicenseFromSpdxId "BSD-3-Clause";
mainProgram = "home-assistant-controller"; mainProgram = "home-assistant-controller";
+11 -1
View File
@@ -20,7 +20,15 @@
}); });
}); });
in rec { in rec {
packages.home-assistant-controller = pkgs.haskell.lib.justStaticExecutables hp.home-assistant-controller; packages.home-assistant-controller = pkgs.symlinkJoin {
name = "home-assistant-controller";
paths = [ (pkgs.haskell.lib.justStaticExecutables hp.home-assistant-controller) ];
nativeBuildInputs = [ pkgs.makeWrapper ];
postBuild = ''
wrapProgram $out/bin/home-assistant-controller \
--set HA_RRDTOOL ${pkgs.lib.getBin pkgs.rrdtool}/bin/rrdtool
'';
};
defaultPackage = packages.home-assistant-controller; defaultPackage = packages.home-assistant-controller;
devShell = hp.shellFor { devShell = hp.shellFor {
packages = h: [h.home-assistant-controller]; packages = h: [h.home-assistant-controller];
@@ -34,6 +42,8 @@
hp.graphmod hp.graphmod
hp.haskell-language-server hp.haskell-language-server
rrdtool
]; ];
}; };
} }
+29 -4
View File
@@ -62,9 +62,13 @@ library
exposed-modules: AFRP exposed-modules: AFRP
, HomeAssistant.Controller , HomeAssistant.Controller
, HomeAssistant.Controller.Bedroom , HomeAssistant.Controller.Bedroom
, HomeAssistant.Controller.Kitchen
, HomeAssistant.Controller.Children
, HomeAssistant.Controller.Ruuvi
, HomeAssistant.Runtime , HomeAssistant.Runtime
, HomeAssistant.Runtime.Bus , HomeAssistant.Runtime.Bus
, HomeAssistant.Runtime.Connection , HomeAssistant.Runtime.Connection
, HomeAssistant.Runtime.Metrics
, HomeAssistant.Runtime.Supervisor , HomeAssistant.Runtime.Supervisor
-- Modules included in this library but not exported. -- Modules included in this library but not exported.
@@ -88,6 +92,16 @@ library
, annotated-exception , annotated-exception
, uuid , uuid
, katip , katip
, containers
, ekg-core
, unordered-containers
, process
, directory
, cereal
, containers
, filepath
, conduit
, cereal-conduit
-- Directories containing source files. -- Directories containing source files.
hs-source-dirs: src hs-source-dirs: src
@@ -118,7 +132,7 @@ executable home-assistant-controller
-- Base language which the package is written in. -- Base language which the package is written in.
default-language: GHC2024 default-language: GHC2024
ghc-options: -threaded ghc-options: -threaded -with-rtsopts=-T
test-suite home-assistant-controller-test test-suite home-assistant-controller-test
-- Import common warning flags. -- Import common warning flags.
@@ -128,11 +142,16 @@ test-suite home-assistant-controller-test
default-language: GHC2024 default-language: GHC2024
-- Modules included in this executable, other than Main. -- Modules included in this executable, other than Main.
other-modules: BusSpec other-modules: AFRPLawsSpec
, AFRPSpec
, BackoffProp
, BedroomSpec
, BusSpec
, ConnectionSpec , ConnectionSpec
, MetricsSpec
, RuntimeSpec , RuntimeSpec
, SupervisorSpec , SupervisorSpec
, BackoffProp , Support
-- LANGUAGE extensions used by modules in this package. -- LANGUAGE extensions used by modules in this package.
-- other-extensions: -- other-extensions:
@@ -153,6 +172,7 @@ test-suite home-assistant-controller-test
hspec, hspec,
stm, stm,
aeson, aeson,
cereal,
text, text,
async, async,
hedgehog, hedgehog,
@@ -160,4 +180,9 @@ test-suite home-assistant-controller-test
annotated-exception, annotated-exception,
time, time,
uuid, uuid,
katip katip,
containers,
ekg-core,
unordered-containers,
process,
directory
+476 -87
View File
@@ -1,12 +1,16 @@
{-# LANGUAGE LambdaCase #-} {-# LANGUAGE LambdaCase #-}
{-# LANGUAGE Arrows #-}
module AFRP module AFRP
( Mealy(..) ( Mealy(..)
, Auto(..)
, DecodedAuto(..)
, eff , eff
, withEntities
, Event(..) , Event(..)
, hold , hold
, events , events
, switch -- , switch
, preMapAccum , preMapAccum
, preMapAccumRequest , preMapAccumRequest
, mapAccum , mapAccum
@@ -18,83 +22,308 @@ module AFRP
, (>>|) , (>>|)
, toEvent , toEvent
, lMerge , lMerge
, Pair(..)
, Request(..) , Request(..)
, SerializeUTCTime(..)
, SerializeLocalTime(..)
, edge , edge
, waitFor
, duration , duration
, tag , tag
, isEvent , isEvent
, delayEvent , delayEvent
, sample , sample
, rollup
, sliding
, debounce
, currentTime
, onEvent
, save
, load
, stepAuto
, stepAutoSerializing
) where ) where
import Control.Category (Category(..), (>>>)) import Control.Category (Category(..), (>>>))
import Prelude hiding ((.), id) import Prelude hiding ((.), id)
import Control.Arrow (Arrow(..), ArrowChoice(..), ArrowLoop(..)) import Control.Arrow (Arrow(..), ArrowChoice(..))
import Data.Time (UTCTime, NominalDiffTime, diffUTCTime, addUTCTime) import Data.Time (UTCTime (UTCTime), NominalDiffTime, diffUTCTime, addUTCTime, TimeZone, LocalTime (LocalTime), utcToLocalTime, Day (..), diffTimeToPicoseconds, picosecondsToDiffTime, TimeOfDay (TimeOfDay), diffLocalTime)
import Control.Monad.Fix (MonadFix (mfix))
import Data.Either (fromLeft) import Data.Either (fromLeft)
import Data.Bool (bool) import Data.Bool (bool)
import Data.UUID (UUID) import Data.UUID (UUID)
import qualified Data.Set as S
import qualified Data.Text as T
import Data.Serialize (Get, Putter, Serialize (put), runGet, get)
import qualified Data.ByteString as B
import Control.Exception (IOException, handle, throwIO)
import System.IO.Error (isDoesNotExistError)
import GHC.Generics (Generic)
import Data.Sequence (Seq, (|>))
import qualified Data.Foldable as F
import Control.Monad.IO.Class (MonadIO, liftIO)
import Conduit (ConduitT, (.|))
import qualified Data.Conduit.Cereal as CC
import qualified Conduit as C
data Codec s = Codec { getter :: !(Get s), putter :: !(Putter s) }
data State s = State {state :: !s, dirty :: !Bool}
deriving Functor
instance Semigroup s => Semigroup (State s) where
s1 <> s2 = State (state s1 <> state s2) (dirty s1 || dirty s2)
instance Monoid s => Monoid (State s) where
mempty = State mempty False
instance Applicative State where
pure a = State a False
s1 <*> s2 = State
{ state =
let a = state s2
f = state s1
in f a
, dirty = dirty s1 || dirty s2
}
mergeState :: State s1 -> State s2 -> State (s1, s2)
mergeState s1 s2 = (,) <$> s1 <*> s2
mergeCodec :: Codec s -> Codec s1 -> Codec (s, s1)
mergeCodec (Codec agetter aputter) (Codec bgetter bputter) = Codec (mergeGet agetter bgetter) (mergePut aputter bputter)
where
mergePut :: Putter s -> Putter s1 -> Putter (s, s1)
mergePut p1 p2 (s, s1) = p1 s >> p2 s1
mergeGet :: Get s -> Get s' -> Get (s, s')
mergeGet g1 g2 = (,) <$> g1 <*> g2
data Pair a b = Pair !a !b
data Request = Request data Request = Request
{ requestTime :: !UTCTime { requestTime :: !UTCTime
, requestTimeZone :: !TimeZone
, requestTraceId :: !UUID , requestTraceId :: !UUID
} } deriving (Show, Eq)
deriving Show
newtype Mealy eff a b = Mealy
{ runMealy :: forall m. MonadFix m => (forall x. eff x -> m x) -> Request -> a -> m (b, Mealy eff a b) } data Auto m a b
= Fun (Request -> a -> b) -- Stateless variant, needed at least for 'id'
| forall s. Stateful !(Codec s) !(State s) !(State s -> Request -> a -> m (b, State s)) -- State is explicitly part of it
instance Monad m => Functor (Auto m a) where
fmap f = \case
Fun x -> Fun $ \req -> f . x req
Stateful codec s x -> Stateful codec s $ \s' req a -> do
(a',s'') <- x s' req a
pure (f a', s'')
instance Monad m => Applicative (Auto m a) where
pure a = Fun (\_req -> const a)
fa <*> fb =
case (fa,fb) of
(Fun af, Fun bf) -> Fun $ \req -> (af req <*> bf req)
(Stateful codec s af, Fun bf) -> Stateful codec s
(\s' req x -> do
let a = bf req x
(h, s'') <- af s' req x
pure (h a, s'')
)
(Fun af, Stateful codec s bf) -> Stateful codec s
(\s' req x -> do
(a, s'') <- bf s' req x
let h = af req x
pure (h a, s'')
)
(Stateful acodec as af, Stateful bcodec bs bf) -> Stateful (mergeCodec acodec bcodec) (mergeState as bs)
(\s' req x -> do
(a, as') <- bf (snd <$> s') req x
(h, bs') <- af (fst <$> s') req x
pure (h a, mergeState bs' as')
)
instance (Monad m, Semigroup b) => Semigroup (Auto m a b) where
fa <> fb =
case (fa,fb) of
(Fun af, Fun bf) -> Fun (af <> bf)
(Stateful codec s af, Fun bf) -> Stateful codec s
(\s' req a -> do
(ab, s'') <- af s' req a
let bb = bf req a
pure (ab <> bb, s'')
)
(Fun af, Stateful codec s bf) -> Stateful codec s
(\s' req a -> do
let ab = af req a
(bb, s'') <- bf s' req a
pure (ab <> bb, s'')
)
(Stateful acodec as af , Stateful bcodec bs bf) -> Stateful (mergeCodec acodec bcodec) (mergeState as bs)
(\s req a -> do
(ab, as'') <- af (fst <$> s) req a
(bb, bs'') <- bf (snd <$> s) req a
pure (ab <> bb, mergeState as'' bs'')
)
instance (Monad m, Monoid b) => Monoid (Auto m a b) where
mempty = Fun $ \_req _ -> mempty
instance Monad m => Category (Auto m) where
id = Fun $ \_ -> id
af . ag =
case (af, ag) of
(Fun f, Fun g) -> Fun (\req -> f req . g req)
(Stateful codec s f, Fun g) -> Stateful codec s (\s' req -> f s' req . g req)
(Fun f, Stateful codec s g) -> Stateful codec s (\s' req -> fmap (first (f req)) . g s' req)
(Stateful fcodec fs f , Stateful gcodec gs g) ->
Stateful (mergeCodec fcodec gcodec) (mergeState fs gs) (\s req a -> do
(b, s') <- g (snd <$> s) req a
(c, s'') <- f (fst <$> s) req b
pure (c, mergeState s'' s'))
instance Monad m => Arrow (Auto m) where
arr f = Fun $ const f
first = \case
Fun f -> Fun $ \req -> first (f req)
Stateful codec s f -> Stateful codec s $ \s' req (b,d) -> do
(c, s'') <- f s' req b
pure ((c,d), s'')
instance Monad m => ArrowChoice (Auto m) where
left = \case
Fun f -> Fun $ \req ->
\case
Left b -> Left $ f req b
Right d -> Right d
Stateful codec s f -> Stateful codec s $ \s' req -> \case
Right d -> pure (Right d, s')
Left b -> do
(c, s'') <- f s' req b
pure (Left c, s'')
serialize :: Monad m => Auto eff a b -> ConduitT i B.ByteString m ()
serialize = \case
Fun _ -> CC.sourcePut (put ())
Stateful Codec{putter} s _ -> CC.sourcePut (putter (state s))
data DecodedAuto m a b
= Decoded (Auto m a b) -- decoded from serialized state
| FailDecode String (Auto m a b) -- gives back the original + errmsg
deserialize :: B.ByteString -> Auto m a b -> DecodedAuto m a b
deserialize bs = \case
Fun f -> Decoded (Fun f) -- no state to decode, success by default
Stateful codec s f ->
either
(\err -> FailDecode err (Stateful codec s f))
(\s' -> Decoded $ Stateful codec (pure s') f)
$ runGet (getter codec) bs
save :: FilePath -> Auto m a b -> IO (Auto m a b)
save path s
| isDirty s = do
-- Using conduit machinery as it handles the exception handling for me
() <- C.runResourceT $ C.runConduit (serialize s .| C.sinkFileCautious path)
pure $ cleanDirty s
| otherwise = pure s
where
cleanDirty :: Auto m a b -> Auto m a b
cleanDirty (Stateful codec s' f) = Stateful codec s'{dirty=False} f
cleanDirty a = a
isDirty :: Auto m a b -> Bool
isDirty (Stateful _ s' _) = dirty s'
isDirty _ = False
load :: forall m a b. FilePath -> Auto m a b -> IO (DecodedAuto m a b)
load path a = handle defaultOnMissingFile (flip deserialize a <$> B.readFile path)
where
defaultOnMissingFile :: IOException -> IO (DecodedAuto m a b)
defaultOnMissingFile e
| isDoesNotExistError e = pure $ FailDecode "State doesn't exist yet" a
| otherwise = throwIO e
-- | The set of entity ids an arrow subscribes to. Static: it does not
-- change as the machine steps, so the runtime can read it once to build
-- trigger subscriptions.
data Mealy eff a b = Mealy
{ entities :: S.Set T.Text
, runMealy :: forall m. Monad m => (forall x. eff x -> m x) -> Auto m a b
}
instance Semigroup b => Semigroup (Mealy eff a b) where
Mealy ast af <> Mealy bst bf = Mealy (ast <> bst) $ \nt -> af nt <> bf nt
instance Monoid b => Monoid (Mealy eff a b) where
mempty = Mealy mempty $ \_nt -> mempty
-- where
-- m = Mealy mempty $ \_ _ _ -> pure (Pair mempty m)
eff :: (Request -> a -> eff b) -> Mealy eff a b eff :: (Request -> a -> eff b) -> Mealy eff a b
eff f = Mealy $ \nt req x -> eff f = Mealy mempty $ \nt -> do
nt (f req x) >>= \b -> pure (b, eff f) Stateful (Codec get put) (State () False) $ \s req a -> do
b <- nt (f req a)
pure (b, s)
-- | Override the static entity set of an arrow. Use when a combinator
-- (e.g. 'switch') hides continuation entities from the runtime's
-- startup subscription scan.
withEntities :: S.Set T.Text -> Mealy eff a b -> Mealy eff a b
withEntities es (Mealy _ f) = Mealy es f
instance Category (Mealy eff) where instance Category (Mealy eff) where
id = Mealy (\_ _ x -> pure (x, id)) id = Mealy mempty (\_ -> id)
(Mealy f) . (Mealy g) = Mealy $ \nt t a -> do (Mealy ast f) . (Mealy bst g) = Mealy (ast <> bst) $ \nt -> do
(b, g') <- g nt t a f nt . g nt
(c, f') <- f nt t b
pure (c, f' . g')
instance Arrow (Mealy eff) where instance Arrow (Mealy eff) where
arr f = Mealy $ \_ _ b -> pure (f b, arr f) arr f = Mealy mempty $ \_nt -> arr f
first (Mealy f) = Mealy $ \nt t (b,d) -> do first (Mealy st f) = Mealy st $ \nt -> first (f nt)
(c, f') <- f nt t b
pure ((c, d), first f')
instance ArrowChoice (Mealy eff) where instance ArrowChoice (Mealy eff) where
left (Mealy f) = Mealy $ \nt t -> \case left (Mealy st f) = Mealy st $ \nt -> left (f nt)
Left b -> do
(c, f') <- f nt t b
pure (Left c, left f')
Right d -> pure (Right d, left (Mealy f))
instance ArrowLoop (Mealy eff) where
loop (Mealy f) = Mealy $ \nt t b -> do
((c,_), f') <- mfix $ \((_,d), _) -> f nt t (b,d)
pure (c, loop f')
instance Functor (Mealy eff a) where instance Functor (Mealy eff a) where
fmap f (Mealy g) = Mealy $ \nt t a -> do fmap f (Mealy st g) = Mealy st $ \nt -> fmap f (g nt)
(b, g') <- g nt t a
pure (f b, fmap f g')
instance Applicative (Mealy eff a) where instance Applicative (Mealy eff a) where
pure b = Mealy $ \_ _ _ -> pure (b, pure b) pure b = Mealy mempty $ \_ -> pure b
Mealy f <*> Mealy x = Mealy $ \nt t a -> do Mealy ast f <*> Mealy bst x = Mealy (ast <> bst) $ \nt ->
(f', fNext) <- f nt t a f nt <*> x nt
(x', xNext) <- x nt t a
pure (f' x', fNext <*> xNext)
data Event a data Event a
= Tick = Tick
| Event a | Event a
deriving (Show, Functor, Foldable, Traversable) deriving (Show, Eq, Functor, Foldable, Traversable, Generic)
instance Serialize a => Serialize (Event a)
instance Semigroup (Event a) where
(<>) = lMerge
instance Monoid (Event a) where
mempty = Tick
hold :: (Serialize a, Eq a) => a -> Mealy m (Event a) a
hold def = mapAccum step def id
where
step prev = \case
Tick -> prev
Event new -> new
hold :: a -> Mealy eff (Event a) a
hold a = Mealy $ \_ _ -> \case
Tick -> pure (a, hold a)
Event a' -> pure (a', hold a')
events :: Mealy eff (Event a) (Either () a) events :: Mealy eff (Event a) (Either () a)
events = arr $ \case events = arr $ \case
@@ -108,51 +337,89 @@ isEvent _ = True
tag :: b -> Event a -> Event b tag :: b -> Event a -> Event b
tag b ev = b <$ ev tag b ev = b <$ ev
switch :: Mealy eff a (b, Event c) -> (c -> Mealy eff a b) -> Mealy eff a b -- switch :: Mealy eff a (b, Event c) -> (c -> Mealy eff a b) -> Mealy eff a b
switch (Mealy f) s = Mealy $ \nt t a -> do -- switch (Mealy st f) s = Mealy st $ \nt t a -> do
((b, ev), f') <- f nt t a -- Pair (b, ev) f' <- f nt t a
case ev of -- case ev of
Tick -> pure (b, switch f' s) -- Tick -> pure (Pair b (switch f' s))
Event x -> runMealy (s x) nt t a -- Event x -> runMealy (s x) nt t a
sample :: Mealy eff (a, Event b) (Event a) sample :: Mealy eff (a, Event b) (Event a)
sample = arr (uncurry tag) sample = arr (uncurry tag)
preMapAccum :: (x -> a -> x) -> x -> (x -> b) -> Mealy eff a b
preMapAccum f x extract = go x
where
go b = Mealy $ \_ _ a ->
let next = f b a
in pure (extract b, go next)
preMapAccumRequest :: (Request -> x -> a -> x) -> x -> (x -> b) -> Mealy eff a b preMapAccum' :: forall m x a b. (Monad m, Eq x, Serialize x) => (x -> a -> x) -> x -> (x -> b) -> Auto m a b
preMapAccumRequest f x extract = go x preMapAccum' f x extract = Stateful (Codec get put) (pure x) (\s _req a -> pure $ step s a)
where where
go b = Mealy $ \_ t a -> step :: State x -> a -> (b, State x)
let next = f t b a step s a = let s' = f (state s) a in (extract (state s), State s' (dirty s || state s /= s'))
in pure (extract b, go next)
mapAccum :: (x -> a -> x) -> x -> (x -> b) -> Mealy eff a b
mapAccum f x extract = go x mapAccum :: (Eq x, Serialize x) => (x -> a -> x) -> x -> (x -> b) -> Mealy eff a b
mapAccum step x extract = Mealy mempty $ \_nt -> mapAccum' step x extract
preMapAccum :: (Eq x, Serialize x) => (x -> a -> x) -> x -> (x -> b) -> Mealy eff a b
preMapAccum step x extract = Mealy mempty $ \_nt -> preMapAccum' step x extract
mapAccum' :: forall m x a b. (Monad m, Eq x, Serialize x) => (x -> a -> x) -> x -> (x -> b) -> Auto m a b
mapAccum' f x extract = Stateful (Codec get put) (pure x) (\s _req a -> pure $ step s a)
where where
go b = Mealy $ \_ _ a -> step :: State x -> a -> (b, State x)
let next = f b a step s a = let s' = f (state s) a in (extract s', State s' (dirty s || state s /= s'))
in pure (extract next, go next)
mapAccumRequest :: (Request -> x -> a -> x) -> x -> (x -> b) -> Mealy eff a b preMapAccumRequest :: (Serialize x, Eq x) => (Request -> x -> a -> x) -> x -> (x -> b) -> Mealy eff a b
mapAccumRequest f x extract = go x preMapAccumRequest step x extract = Mealy mempty $ \_ -> preMapAccumRequest' step x extract
preMapAccumRequest' :: forall m x a b. (Serialize x, Eq x, Monad m) => (Request -> x -> a -> x) -> x -> (x -> b) -> Auto m a b
preMapAccumRequest' f x extract = Stateful (Codec get put) (State x False) (\s req a -> pure $ step s req a)
where where
go b = Mealy $ \_ t a -> step :: State x -> Request -> a -> (b, State x)
let next = f t b a step s req a = let s' = f req (state s) a in (extract (state s), State s' (dirty s || state s /= s'))
in pure (extract next, go next)
data DelayState a = DelayState mapAccumRequest :: (Serialize x, Eq x) => (Request -> x -> a -> x) -> x -> (x -> b) -> Mealy eff a b
{ pending :: [(UTCTime, a)] mapAccumRequest step x extract = Mealy mempty $ \_ -> mapAccumRequest' step x extract
, output :: Event a
mapAccumRequest' :: forall m x a b. (Monad m, Serialize x, Eq x) => (Request -> x -> a -> x) -> x -> (x -> b) -> Auto m a b
mapAccumRequest' f x extract = Stateful (Codec get put) (State x False) (\s req a -> pure $ step s req a)
where
step :: State x -> Request -> a -> (b, State x)
step s req a = let s' = f req (state s) a in (extract s', State s' (dirty s || state s /= s'))
data DelayState x a = DelayState
{ pending :: x
, output :: !(Event a)
} }
deriving (Generic, Eq)
instance (Serialize x, Serialize a) => Serialize (DelayState x a)
delayEvent :: NominalDiffTime -> Mealy eff (Event a) (Event a) newtype SerializeUTCTime = SerializeUTCTime UTCTime
deriving (Eq, Show)
instance Serialize SerializeUTCTime where
put (SerializeUTCTime (UTCTime day time)) = do
put (toModifiedJulianDay day)
put (diffTimeToPicoseconds time)
get = do
day <- ModifiedJulianDay <$> get
time <- picosecondsToDiffTime <$> get
pure $ SerializeUTCTime (UTCTime day time)
newtype SerializeLocalTime = SerializeLocalTime LocalTime
deriving (Eq, Show)
instance Serialize SerializeLocalTime where
put (SerializeLocalTime (LocalTime day time)) = do
put (toModifiedJulianDay day)
let TimeOfDay h m s = time
put (h,m, toRational s)
get = do
day <- ModifiedJulianDay <$> get
(h,m,s) <- get
pure $ SerializeLocalTime (LocalTime day (TimeOfDay h m (fromRational s)))
delayEvent :: (Eq a, Serialize a) => NominalDiffTime -> Mealy eff (Event a) (Event a)
delayEvent delay = delayEvent delay =
mapAccumRequest step initial output mapAccumRequest step initial output
where where
@@ -164,17 +431,32 @@ delayEvent delay =
queued = queued =
case input of case input of
Tick -> pending st Tick -> pending st
Event x -> pending st ++ [(delay `addUTCTime` now, x)] Event x -> pending st ++ [(SerializeUTCTime $ delay `addUTCTime` now, x)]
in case queued of in case queued of
(due, x) : rest (SerializeUTCTime due, x) : rest
| due <= now -> | due <= now ->
DelayState rest (Event x) DelayState rest (Event x)
_ -> _ ->
DelayState queued Tick DelayState queued Tick
changes :: Eq a => Mealy eff a (Event a) debounce :: (Serialize a, Eq a) => NominalDiffTime -> Mealy eff (Event a) (Event a)
debounce delay =
mapAccumRequest step initial output
where
initial = DelayState Nothing Tick
step req st input =
let now = requestTime req
held = case input of
Tick -> pending st
Event x -> Just (SerializeUTCTime $ delay `addUTCTime` now, x)
in case held of
Just (SerializeUTCTime due, x)
| due <= now -> DelayState Nothing (Event x)
_ -> DelayState held Tick
changes :: (Serialize a, Eq a) => Mealy eff a (Event a)
changes = mapAccum go Nothing (maybe Tick snd) changes = mapAccum go Nothing (maybe Tick snd)
where where
go :: Eq a => Maybe (a, Event a) -> a -> Maybe (a, Event a) go :: Eq a => Maybe (a, Event a) -> a -> Maybe (a, Event a)
@@ -207,19 +489,126 @@ lMerge (Event a) _ = Event a
lMerge Tick (Event a) = Event a lMerge Tick (Event a) = Event a
edge :: Mealy eff Bool (Event ()) edge :: Mealy eff Bool (Event ())
edge = go False edge =
where mapAccum
go True = Mealy $ \_ _ -> \case (\(_, current) new -> (current, new))
True -> pure (Tick, go True) (False, False)
False -> pure (Tick, go False) (\(old, current) ->
go False = Mealy $ \_ _ -> \case if not old && current
True -> pure (Event (), go True) then Event ()
False -> pure (Tick, go False) else Tick)
data WaitingFor
= Waiting
| Pending { waitingForStart :: SerializeLocalTime, waitingForCurrent :: SerializeLocalTime }
deriving (Show, Eq, Generic)
instance Serialize WaitingFor
waitFor :: NominalDiffTime -> Mealy eff Bool (Event ())
waitFor delta =
mapAccumRequest step Waiting extract >>> edge
where
extract :: WaitingFor -> Bool
extract Waiting = False
extract Pending{waitingForStart=SerializeLocalTime s, waitingForCurrent=SerializeLocalTime e} =
e `diffLocalTime` s >= delta
step :: Request -> WaitingFor -> Bool -> WaitingFor
step _req _prev False = Waiting
step req prev True =
let now = SerializeLocalTime $ requestLocalTime req
in case prev of
Waiting -> Pending now now
pending -> pending{waitingForCurrent = now}
duration :: forall eff a. Mealy eff a NominalDiffTime duration :: forall eff a. Mealy eff a NominalDiffTime
duration = mapAccumRequest go (Nothing @(UTCTime, NominalDiffTime)) (maybe 0 snd) duration = mapAccumRequest go (Nothing @(SerializeUTCTime, SerializeUTCTime)) (maybe 0 delta)
where where
go :: Request -> Maybe (UTCTime, NominalDiffTime) -> a -> Maybe (UTCTime, NominalDiffTime) delta :: (SerializeUTCTime, SerializeUTCTime) -> NominalDiffTime
go req Nothing _ = Just $ (requestTime req, requestTime req `diffUTCTime` requestTime req) delta (SerializeUTCTime start, SerializeUTCTime end) = end `diffUTCTime` start
go req (Just (startTime, _)) _ = Just (startTime, requestTime req `diffUTCTime` startTime) go :: Request -> Maybe (SerializeUTCTime, SerializeUTCTime) -> a -> Maybe (SerializeUTCTime, SerializeUTCTime)
go req Nothing _ = Just (SerializeUTCTime $ requestTime req, SerializeUTCTime $ requestTime req)
go req (Just (startTime, _)) _ = Just (startTime, SerializeUTCTime $ requestTime req)
-- | Rollup, hold back bursty messages
--
-- Consider a case where you have a bursty set of data. You care to get an immediate response,
-- but don't want to spam the output.
rollup
:: (Serialize a, Eq a)
=> Int -- ^ How many items to pass through before burst protection
-> Int -- ^ How many seconds to collect the bursty data
-> Mealy eff (Event a) (Event [a])
rollup limit seconds =
mapAccumRequest
go
(Left Tick)
(either id (\(_, _, _, ev) -> ev))
where
go
:: Request
-> Either (Event [a]) (SerializeUTCTime, Int, Seq a, Event [a])
-> Event a
-> Either (Event [a]) (SerializeUTCTime, Int, Seq a, Event [a])
go _ (Left _) Tick =
Left Tick
go req (Left _) (Event a) =
Right
( SerializeUTCTime $ addUTCTime (fromIntegral seconds) (requestTime req)
, 1
, mempty
, Event [a]
)
go req (Right (SerializeUTCTime end, n, acc, _)) Tick
| requestTime req >= end =
Left (Event $ F.toList acc)
| otherwise =
Right (SerializeUTCTime end, n, acc, Tick)
go req (Right (SerializeUTCTime end, n, acc, _)) (Event a)
| requestTime req >= end =
Left (Event $ F.toList (acc |> a))
| n < limit =
Right (SerializeUTCTime end, n + 1, acc, Event [a])
| otherwise =
Right (SerializeUTCTime end, n + 1, acc |> a, Tick)
-- Sliding window into the events
sliding :: (Serialize a, Eq a) => Int -> Mealy eff (Event a) [a]
sliding size = mapAccum go [] id
where
go :: [a] -> Event a -> [a]
go acc Tick = acc
go acc (Event a) = let xs = acc ++ [a] in drop (max 0 (length xs - size)) xs
requestLocalTime :: Request -> LocalTime
requestLocalTime Request{requestTime, requestTimeZone} = utcToLocalTime requestTimeZone requestTime
currentTime :: Mealy eff a LocalTime
currentTime = Mealy mempty $ \_nt -> Fun $ \req _ ->
requestLocalTime req
stepAuto :: Monad m => Auto m a b -> Request -> a -> m (b, Auto m a b)
stepAuto (Fun f) req a = pure (f req a, Fun f)
stepAuto (Stateful codec s f) req a = do
(b, s') <- f s req a
pure (b, Stateful codec s' f)
stepAutoSerializing :: MonadIO m => FilePath -> Auto m a b -> Request -> a -> m (b, Auto m a b)
stepAutoSerializing path f req a = do
(b,x) <- stepAuto f req a
y <- liftIO $ save path x
pure (b,y)
onEvent :: Mealy eff a () -> Mealy eff (Event a) ()
onEvent f = events >>> (arr (const ()) ||| f)
+48 -32
View File
@@ -8,16 +8,13 @@ module HomeAssistant.Controller
, HASSEff(..) , HASSEff(..)
, HASS , HASS
, callService , callService
, callServiceDyn
, entityChangeEvent , entityChangeEvent
, entityChangeEvent' , entityChangeEvent'
, entityRead , entityRead
, entityRead' , entityRead'
, entityBool , entityBool
, entityBool' , entityBool'
, Ruuvi(..)
, ruuvi
, ruuviTemperatures
, ruuviPressures
, DoorState(..) , DoorState(..)
, light , light
, Presence(..) , Presence(..)
@@ -27,20 +24,25 @@ module HomeAssistant.Controller
, traceValue , traceValue
, switch , switch
, Target(..) , Target(..)
, brightness
, Light(..)
) where ) where
import AFRP (Mealy (..), eff, Event(..), hold, events, changes, filterA, (>>|), toEvent, Request) import AFRP (Mealy (..), eff, Event(..), events, filterA, (>>|), toEvent, Request)
import Control.Arrow (Arrow(..), returnA) import Control.Arrow (Arrow(..), returnA)
import Control.Category ((>>>)) import Control.Category ((>>>))
import Data.Aeson (Value) import Data.Aeson (Value, object, (.=))
import qualified Data.Text as T import qualified Data.Text as T
import qualified Data.Set as S
import Control.Lens (has, only, (^?), to) import Control.Lens (has, only, (^?), to)
import Data.Aeson.Lens (key, _String) import Data.Aeson.Lens (key, _String, _Integral)
import qualified Data.Text.Lens as TL import qualified Data.Text.Lens as TL
import Data.Bool (bool) import Data.Bool (bool)
import Data.Serialize (Serialize)
import GHC.Generics (Generic)
data Target = EntityId !T.Text | AreaId !T.Text data Target = EntityId !T.Text | AreaId !T.Text
deriving (Show,Eq) deriving (Show,Eq,Ord)
data Service = Service data Service = Service
{ serviceDomain :: T.Text { serviceDomain :: T.Text
@@ -60,38 +62,35 @@ type HASS a b = Mealy HASSEff a b
callService :: Service -> HASS a () callService :: Service -> HASS a ()
callService service = eff (\req _ -> CallService req service) callService service = eff (\req _ -> CallService req service)
callServiceDyn :: (a -> Service) -> HASS a ()
callServiceDyn mkService = eff (\req a -> CallService req (mkService a))
debug :: Show a => HASS a a debug :: Show a => HASS a a
debug = proc x -> do debug = proc x -> do
eff (const Debug) -< x eff (const Debug) -< x
returnA -< x returnA -< x
traceEvent :: Show a => HASS (Event a) (Event a) traceEvent :: Show a => HASS (Event a) (Event a)
traceEvent = Mealy $ \nt req -> \case traceEvent = proc ev -> do
Event a -> nt (Trace req a) >>= \() -> pure (Event a, traceEvent) case ev of
Tick -> pure (Tick, traceEvent) Event a -> eff Trace -< a
Tick -> returnA -< ()
returnA -< ev
traceValue :: Show a => HASS a a traceValue :: Show a => HASS a a
traceValue = proc x -> do traceValue = proc x -> do
eff Trace -< x eff Trace -< x
returnA -< x returnA -< x
ruuviTemperatures :: Mealy eff (Event Value) Double
ruuviTemperatures = entityRead @Double "sensor.ruuvitag_b168_temperature" >>> hold 0
ruuviPressures :: Mealy eff (Event Value) Double
ruuviPressures = entityRead "sensor.ruuvitag_b168_pressure" >>> hold 0
data Ruuvi = Ruuvi { ruuviTemperature :: Double, ruuviPressure :: Double }
deriving (Show, Eq)
ruuvi :: Mealy eff (Event Value) (Event Ruuvi)
ruuvi = (Ruuvi <$> ruuviTemperatures <*> ruuviPressures) >>> changes
data DoorState = Open | Closed data DoorState = Open | Closed
deriving (Show, Eq) deriving (Show, Eq, Generic)
instance Serialize DoorState
data Presence = Occupied | Unoccupied data Presence = Occupied | Unoccupied
deriving (Show, Eq) deriving (Show, Eq, Generic)
instance Serialize Presence
presence :: T.Text -> HASS (Event Value) (Event Presence) presence :: T.Text -> HASS (Event Value) (Event Presence)
presence entityId =entityBool entityId presence entityId =entityBool entityId
@@ -99,12 +98,21 @@ presence entityId =entityBool entityId
data Light
= Off
| On { brightnessPercentage :: Maybe Double }
-- Turn off lights when door is closed -- Turn off lights when door is closed
light :: [Target] -> Bool -> Service light :: [Target] -> Light -> Service
light targets b = Service light targets (On {brightnessPercentage}) = Service
{ serviceDomain="light" { serviceDomain="light"
, serviceName= bool "turn_off" "turn_on" b , serviceName= "turn_on"
, serviceData=fmap (\pct -> object ["brightness_pct" .= pct]) brightnessPercentage
, serviceTarget=targets
}
light targets Off = Service
{ serviceDomain="light"
, serviceName= "turn_off"
, serviceData=Nothing , serviceData=Nothing
, serviceTarget=targets , serviceTarget=targets
} }
@@ -123,20 +131,20 @@ entityChangeEvent :: T.Text -> Mealy eff (Event Value) (Event Value)
entityChangeEvent entityId = entityChangeEvent' entityId >>> toEvent entityChangeEvent entityId = entityChangeEvent' entityId >>> toEvent
entityChangeEvent' :: T.Text -> Mealy eff (Event Value) (Either () Value) entityChangeEvent' :: T.Text -> Mealy eff (Event Value) (Either () Value)
entityChangeEvent' entityId = events >>| filterA isEntity entityChangeEvent' entityId = Mealy (S.singleton entityId) $ runMealy (events >>| filterA isEntity)
where where
isEntity :: Value -> Bool isEntity :: Value -> Bool
isEntity = has (key "event" . key "data" . key "entity_id" . _String . only entityId) isEntity = has (key "event" . key "variables" . key "trigger" . key "entity_id" . _String . only entityId)
entityRead' :: (Read a) => T.Text -> Mealy eff (Event Value) (Either () a) entityRead' :: (Read a) => T.Text -> Mealy eff (Event Value) (Either () a)
entityRead' entityId = entityChangeEvent' entityId >>| (arr state >>> arr (maybe (Left ()) Right)) entityRead' entityId = entityChangeEvent' entityId >>| (arr state >>> arr (maybe (Left ()) Right))
where where
state v = v ^? key "event" . key "data" . key "new_state" . key "state" . _String . TL.unpacked . to read state v = v ^? key "event" . key "variables" . key "trigger" . key "to_state" . key "state" . _String . TL.unpacked . to read
entityBool' :: T.Text -> Mealy eff (Event Value) (Either () Bool) entityBool' :: T.Text -> Mealy eff (Event Value) (Either () Bool)
entityBool' entityId = entityChangeEvent' entityId >>| (arr state >>> arr (maybe (Left ()) Right)) entityBool' entityId = entityChangeEvent' entityId >>| (arr state >>> arr (maybe (Left ()) Right))
where where
state v = v ^? key "event" . key "data" . key "new_state" . key "state" . _String . TL.unpacked . to toBool state v = v ^? key "event" . key "variables" . key "trigger" . key "to_state" . key "state" . _String . TL.unpacked . to toBool
toBool = \case toBool = \case
"on" -> True "on" -> True
"off" -> False "off" -> False
@@ -147,3 +155,11 @@ entityRead entityId = entityRead' entityId >>> toEvent
entityBool :: T.Text -> Mealy eff (Event Value) (Event Bool) entityBool :: T.Text -> Mealy eff (Event Value) (Event Bool)
entityBool entityId = entityBool' entityId >>> toEvent entityBool entityId = entityBool' entityId >>> toEvent
brightness :: T.Text -> HASS (Event Value) (Event Int)
brightness entityId =
entityChangeEvent' entityId
>>| arr (maybe (Left ()) Right . eventBrightness)
>>> AFRP.toEvent
where
eventBrightness v = v ^? key "event" . key "variables" . key "trigger" . key "to_state" . key "attributes" . key "brightness" . _Integral
+9 -8
View File
@@ -46,7 +46,7 @@ bedroomPresenceController :: HASS (Event Value) ()
bedroomPresenceController = proc x -> do bedroomPresenceController = proc x -> do
p <- bedroomPresence -< x p <- bedroomPresence -< x
case p of case p of
Event Unoccupied -> callService createBedroomScene >>> callService (light bedroomLights False) -< () Event Unoccupied -> callService createBedroomScene >>> callService (light bedroomLights Off) -< ()
Event Occupied -> callService (activateScene "makuuhuone_lights_snapshot") -< () Event Occupied -> callService (activateScene "makuuhuone_lights_snapshot") -< ()
_ -> returnA -< () _ -> returnA -< ()
@@ -79,7 +79,7 @@ ikeaQuickButton entityId =
>>| arr (maybe (Left ()) Right . eventType) >>| arr (maybe (Left ()) Right . eventType)
>>> toEvent >>> toEvent
where where
eventType v = v ^? key "event" . key "data" . key "new_state" . key "attributes" . key "event_type" . _String . to toIkeaQuickButton . traversed eventType v = v ^? key "event" . key "variables" . key "trigger" . key "to_state" . key "attributes" . key "event_type" . _String . to toIkeaQuickButton . traversed
data BedroomControls data BedroomControls
@@ -98,14 +98,14 @@ bedroomButtonController :: HASS (Event Value) ()
bedroomButtonController = proc x -> do bedroomButtonController = proc x -> do
ev <- bedroomButton >>> traceEvent -< x ev <- bedroomButton >>> traceEvent -< x
case ev of case ev of
Event (Masse (OnButton ShortRelease)) -> callService (activateScene "scene.makuuhuone_masse") -< () -- this should be on release Event (Masse (OnButton ShortRelease)) -> callService (activateScene "scene.makuuhuone_masse") -< ()
Event (Masse (OnButton DoubleClick)) -> callService (activateScene "scene.makuuhuone_keski") -< () Event (Masse (OnButton DoubleClick)) -> callService (activateScene "scene.makuuhuone_keski") -< ()
Event (Masse (OnButton LongClick)) -> callService (activateScene "scene.makuuhuone_kirkas") -< () Event (Masse (OnButton LongClick)) -> callService (activateScene "scene.makuuhuone_kirkas") -< ()
Event (Masse (OffButton _)) -> callService (light [AreaId "makuuhuone"] False) -< () Event (Masse (OffButton _)) -> callService (light [AreaId "makuuhuone"] Off) -< ()
Event (Enishen (OnButton ShortRelease)) -> callService (activateScene "scene.makuuhuone_jemina") -< () Event (Enishen (OnButton ShortRelease)) -> callService (activateScene "scene.makuuhuone_jemina") -< ()
Event (Enishen (OnButton DoubleClick)) -> callService (activateScene "scene.makuuhuone_keski") -< () Event (Enishen (OnButton DoubleClick)) -> callService (activateScene "scene.makuuhuone_keski") -< ()
Event (Enishen (OnButton LongClick)) -> callService (activateScene "scene.makuuhuone_kirkas") -< () Event (Enishen (OnButton LongClick)) -> callService (activateScene "scene.makuuhuone_kirkas") -< ()
Event (Enishen (OffButton _)) -> callService (light [AreaId "makuuhuone"] False) -< () Event (Enishen (OffButton _)) -> callService (light [AreaId "makuuhuone"] Off) -< ()
_ -> returnA -< () _ -> returnA -< ()
@@ -131,11 +131,12 @@ door = entityBool "binary_sensor.makuuhuone_ovi_contact"
waitFor :: NominalDiffTime -> HASS a (Event ()) waitFor :: NominalDiffTime -> HASS a (Event ())
waitFor n = duration >>> arr (> n) >>> edge waitFor n = duration >>> arr (> n) >>> edge
delayedDoor :: HASS (Event Value) (Event DoorState) delayedDoor :: HASS (Event Value) (Event DoorState)
delayedDoor = door delayedDoor = door
>>> (AFRP.hold Open &&& AFRP.delayEvent 15) >>> AFRP.debounce 15
>>> AFRP.sample >>> AFRP.hold Open
>>> traceEvent >>> AFRP.changes
humidifierController :: HASS (Event Value) () humidifierController :: HASS (Event Value) ()
humidifierController = proc x -> do humidifierController = proc x -> do
+82
View File
@@ -0,0 +1,82 @@
{-# LANGUAGE Arrows #-}
{-# LANGUAGE OverloadedStrings #-}
module HomeAssistant.Controller.Children where
import HomeAssistant.Controller (HASS, callService, Target (AreaId), light, Light(..))
import AFRP (Event)
import qualified AFRP
import Control.Arrow (Arrow(..), (>>>))
import Data.Time (Day, TimeOfDay (..), localDay, LocalTime (..))
import Data.Time.Calendar.OrdinalDate (WeekOfYear, mondayStartWeek)
import Data.Functor.Contravariant (Predicate (..), (>$<))
-- Let's see building some reasonable interface for utctime
dow :: Day -> (WeekOfYear, Int)
dow = mondayStartWeek
weekday :: Predicate Day
weekday = Predicate (betweenInclusive 1 5 . snd . dow)
where
betweenInclusive a b c = c >= a && c <= b
time :: (Int, Int) -> Predicate TimeOfDay
time (h,m) = mconcat
[ Predicate (equals h . todHour)
, Predicate (equals m . todMin)
]
where
equals a b = a == b
atTime :: Predicate LocalTime -> HASS a (Event ())
atTime p = AFRP.currentTime
>>> arr (getPredicate p)
>>> AFRP.edge
-- I don't have any proper presence sensors in their bedroom
-- and they are notoriously bad at changing clothes in complete darkness
-- So I have set up an automation that attempts to turn on the lights sometime
-- before they leave for school and turns them off a bit later
-- Don't mconcat these predicates they have && behavior
-- if you mconcat the actual arrows, they combine the behaviors of the separate branches
-- essentially becoming || behavior
timersOff :: [Predicate LocalTime]
timersOff =
[ day 1 <> at (08,15)
, day 2 <> at (09,15)
, day 3 <> at (08,15)
, day 4 <> at (08,15)
, day 5 <> at (08,15)
, at (18,57) -- debug
]
where
dayOfWeek = snd . mondayStartWeek . localDay
at (h,m) = localTimeOfDay >$< Predicate (\TimeOfDay{todHour, todMin} -> todHour == h && todMin == m)
day n = dayOfWeek >$< Predicate (== n)
timersOn :: [Predicate LocalTime]
timersOn =
[ day 1 <> at (07,30)
, day 2 <> at (08,30)
, day 3 <> at (07,30)
, day 4 <> at (07,30)
, day 5 <> at (07,30)
, at (18,55) -- debug
]
where
dayOfWeek = snd . mondayStartWeek . localDay
at (h,m) = localTimeOfDay >$< Predicate (\TimeOfDay{todHour, todMin} -> todHour == h && todMin == m)
day n = dayOfWeek >$< Predicate (== n)
schoolLightController :: HASS a ()
schoolLightController = lightsOn <> lightsOff
lightsOn :: HASS a ()
lightsOn = foldMap atTime timersOn
>>> AFRP.onEvent (callService (light [AreaId "lasten_makuuhuone"] On{brightnessPercentage = Just 100}))
lightsOff :: HASS a ()
lightsOff = foldMap atTime timersOff
>>> AFRP.onEvent (callService (light [AreaId "lasten_makuuhuone"] Off))
+59
View File
@@ -0,0 +1,59 @@
{-# LANGUAGE OverloadedStrings #-}
{-# LANGUAGE Arrows #-}
module HomeAssistant.Controller.Kitchen where
import HomeAssistant.Controller
import AFRP (Event (..))
import qualified AFRP
import Data.Aeson (Value)
import Control.Arrow ((>>>), Arrow (..), returnA)
import Data.Bool (bool)
import GHC.Generics (Generic)
import Data.Serialize (Serialize)
import Prelude hiding (id)
import Data.Time (LocalTime(..), TimeOfDay (..))
-- Kitchen has two "presence" sensors. One IKEA motion sensor and one SwitchBot presence sensor
data Motion = MotionDetected | MotionNotDetected | MotionUnknown
deriving (Show, Eq, Generic)
instance Serialize Motion
data Lights = LightsOn | LightsOff
deriving (Show)
kitchenMotion :: HASS (Event Value) Motion
kitchenMotion = entityBool "binary_sensor.kitchen_movement_occupancy"
>>> arr (fmap (bool MotionNotDetected MotionDetected))
>>> traceEvent
>>> AFRP.hold MotionUnknown
kitchenPresence :: HASS Motion Presence
kitchenPresence = (eventOccupied &&& eventUnoccupied)
>>> arr (uncurry AFRP.lMerge) >>> traceEvent
>>> AFRP.hold Unoccupied
where
eventOccupied :: HASS Motion (Event Presence)
eventOccupied = arr (== MotionDetected) >>> AFRP.edge >>> arr (fmap (const Occupied))
eventUnoccupied :: HASS Motion (Event Presence)
eventUnoccupied = arr (== MotionNotDetected) >>> AFRP.waitFor 300 >>> arr (AFRP.tag Unoccupied)
eventLights :: HASS Presence (Event Lights)
eventLights = AFRP.changes >>> arr (fmap presenceLights)
where
presenceLights Occupied = LightsOn
presenceLights Unoccupied = LightsOff
kitchenMotionController :: HASS (Event Value) ()
kitchenMotionController = proc x -> do
now <- AFRP.currentTime -< ()
p <- kitchenMotion >>> kitchenPresence -< x
ev <- eventLights -< p
traceEvent -< ev
case ev of
Event LightsOn | lightsAllowed now -> callServiceDyn (light [EntityId "light.kitchen_ceiling"]) -< On Nothing
Event LightsOff -> callServiceDyn (light [EntityId "light.kitchen_ceiling"]) -< Off
_ -> returnA -< ()
where
lightsAllowed (LocalTime _ tod) = not (tod > TimeOfDay 1 45 0 && tod < TimeOfDay 5 0 0)
+35
View File
@@ -0,0 +1,35 @@
{-# LANGUAGE Arrows #-}
{-# LANGUAGE OverloadedStrings #-}
module HomeAssistant.Controller.Ruuvi
( Ruuvi(..)
, ruuvi
, ruuviTemperatures
, ruuviPressures
, ruuviController
) where
import AFRP (Mealy, Event, hold, changes, rollup)
import Control.Category ((>>>))
import Data.Aeson (Value)
import HomeAssistant.Controller (entityRead, traceEvent, HASS)
import Control.Arrow (Arrow(..))
import GHC.Generics (Generic)
import Data.Serialize (Serialize)
ruuviTemperatures :: Mealy eff (Event Value) Double
ruuviTemperatures = entityRead @Double "sensor.ruuvitag_b168_temperature" >>> hold 0
ruuviPressures :: Mealy eff (Event Value) Double
ruuviPressures = entityRead "sensor.ruuvitag_b168_pressure" >>> hold 0
data Ruuvi = Ruuvi { ruuviTemperature :: Double, ruuviPressure :: Double }
deriving (Show, Eq, Generic)
instance Serialize Ruuvi
ruuvi :: Mealy eff (Event Value) (Event Ruuvi)
ruuvi = (Ruuvi <$> ruuviTemperatures <*> ruuviPressures) >>> changes
ruuviController :: HASS (Event Value) ()
ruuviController = ruuvi >>> rollup 1 30 >>> traceEvent >>> arr (const ())
+40 -16
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@@ -13,12 +13,12 @@ module HomeAssistant.Runtime
, runController , runController
) where ) where
import AFRP (Event (..), Mealy (..), Request (..)) import AFRP (Event (..), Mealy (..), Request (..), Auto, stepAutoSerializing, load, DecodedAuto (..))
import Control.Concurrent.Async (async, waitAny) import Control.Concurrent.Async (async, waitAny)
import Control.Concurrent.STM (atomically, dupTChan, readTChan) import Control.Concurrent.STM (atomically, dupTChan, readTChan)
import Data.Aeson (Value) import Data.Aeson (Value)
import qualified Data.Text as T import qualified Data.Text as T
import Data.Time (getCurrentTime) import Data.Time (getCurrentTime, getCurrentTimeZone)
import Data.Void (Void, absurd) import Data.Void (Void, absurd)
import HomeAssistant.Controller (HASS, HASSEff (..)) import HomeAssistant.Controller (HASS, HASSEff (..))
import HomeAssistant.Runtime.Bus import HomeAssistant.Runtime.Bus
@@ -31,12 +31,20 @@ import Data.UUID (UUID, toText)
import qualified Data.UUID.V4 as UUID.V4 import qualified Data.UUID.V4 as UUID.V4
import Katip (runKatipT, logF, sl, Severity (..), ls, Namespace (Namespace), runKatipContextT) import Katip (runKatipT, logF, sl, Severity (..), ls, Namespace (Namespace), runKatipContextT)
import Control.Monad.IO.Class (liftIO, MonadIO) import Control.Monad.IO.Class (liftIO, MonadIO)
import Control.Monad.Fix (MonadFix) import HomeAssistant.Controller.Ruuvi (ruuviController)
import HomeAssistant.Controller.Children (schoolLightController)
import Data.Maybe (fromMaybe)
import qualified System.Metrics
import qualified HomeAssistant.Runtime.Metrics
import System.FilePath ((</>))
import HomeAssistant.Controller.Kitchen (kitchenMotionController)
step :: (MonadFix m, MonadIO m) => (forall x. eff x -> m x) -> UUID -> Mealy eff a b -> a -> m (b, Mealy eff a b) step :: (MonadIO m) => FilePath -> UUID -> Auto m a b -> a -> m (b, Auto m a b)
step nt trace (Mealy f) a = do step path trace st a = do
now <- liftIO getCurrentTime now <- liftIO getCurrentTime
f nt (Request now trace) a tz <- liftIO getCurrentTimeZone
let req = Request now tz trace
stepAutoSerializing path st req a
data Controller = forall b. Controller T.Text (HASS (Event Value) b) Bool data Controller = forall b. Controller T.Text (HASS (Event Value) b) Bool
@@ -46,22 +54,30 @@ controllers =
, Controller "bedroom-button" bedroomButtonController False -- This works but leaving for vacation , Controller "bedroom-button" bedroomButtonController False -- This works but leaving for vacation
, Controller "bedroom-drawer" bedroomDrawerController True , Controller "bedroom-drawer" bedroomDrawerController True
, Controller "bedroom-humidifier" humidifierController True , Controller "bedroom-humidifier" humidifierController True
, Controller "ruuvi-controller" ruuviController False
, Controller "school-light-controller" schoolLightController True
, Controller "kitchen-motion-controller" kitchenMotionController True
] ]
-- | Steps the machine for every inbound message; service calls go to the -- | Steps the machine for every inbound message; service calls go to the
-- bus. A restart re-dups the inbound channel and starts from the machine's -- bus. A restart re-dups the inbound channel and starts from the machine's
-- initial state; messages broadcast during the restart window are lost. -- initial state; messages broadcast during the restart window are lost.
runController :: Bus -> Controller -> IO Void runController :: FilePath -> Bus -> Controller -> IO Void
runController bus (Controller name machine _enabled) = do runController rootDir bus (Controller name machine _enabled) = do
inbound <- atomically (dupTChan (busInbound bus)) inbound <- atomically (dupTChan (busInbound bus))
go inbound machine let ns = Namespace [name]
let workerDefinition = runMealy machine (runKatipContextT (busLogEnv bus) () ns . channelHassEval bus)
let path = rootDir </> T.unpack name
worker <- load path workerDefinition >>= \case
Decoded a -> pure a
FailDecode err a -> a <$ putStrLn ("Failed to load (" <> T.unpack name <> "): " <> err)
go path inbound worker
where where
go inbound f = do go path inbound f = do
msg <- atomically (readTChan inbound) msg <- atomically (readTChan inbound)
uuid <- UUID.V4.nextRandom uuid <- UUID.V4.nextRandom
let ns = Namespace [name] (_, next) <- step path uuid f msg
(_, f') <- step (runKatipContextT (busLogEnv bus) () ns . channelHassEval bus) uuid f (Event msg) go path inbound next
go inbound f'
defaultMain :: IO () defaultMain :: IO ()
defaultMain = withSocketsDo $ do defaultMain = withSocketsDo $ do
@@ -69,10 +85,18 @@ defaultMain = withSocketsDo $ do
withBus severity $ \bus -> do withBus severity $ \bus -> do
token <- getEnv "HA_TOKEN" token <- getEnv "HA_TOKEN"
host <- getEnv "HA_HOST" host <- getEnv "HA_HOST"
let workers = rootPath <- fromMaybe "/tmp/" <$> lookupEnv "HA_LIB_DIR"
[ ("reader", readerAction host 8123 token bus) store <- System.Metrics.newStore
System.Metrics.registerGcMetrics store
rrdPath <- fromMaybe "hass-controller.rrd" <$> lookupEnv "HA_RRD_PATH"
rrdtool <- fromMaybe "rrdtool" <$> lookupEnv "HA_RRDTOOL"
let active = [c | c@(Controller _ _ True) <- controllers]
ents = foldMap (\(Controller _ m _) -> entities m) active
workers =
[ ("reader", readerAction host 8123 token ents bus)
, ("writer", writerAction bus) , ("writer", writerAction bus)
] ++ [ (name, runController bus c) | c@(Controller name _ True) <- controllers ] ] ++ [ (name, runController rootPath bus c) | c@(Controller name _ True) <- controllers ]
++ [("metrics", HomeAssistant.Runtime.Metrics.metricsAction store rrdPath rrdtool)]
as <- mapM (\(name, act) -> async (supervised name defaultBackoff act)) workers as <- mapM (\(name, act) -> async (supervised name defaultBackoff act)) workers
(_, v) <- waitAny as (_, v) <- waitAny as
absurd v absurd v
+2 -2
View File
@@ -26,14 +26,14 @@ import Katip (LogEnv, closeScribes, mkHandleScribe, ColorStrategy (..), permitIt
import Control.Exception (bracket) import Control.Exception (bracket)
import System.IO (stdout) import System.IO (stdout)
import Data.UUID (toText) import Data.UUID (toText)
import AFRP (Request(..)) import AFRP (Request(..), Event(..))
import Control.Monad.IO.Class (MonadIO, liftIO) import Control.Monad.IO.Class (MonadIO, liftIO)
-- | Shared runtime state: inbound is a broadcast channel (controllers -- | Shared runtime state: inbound is a broadcast channel (controllers
-- read from 'dupTChan' copies), outbound queues service calls for the -- read from 'dupTChan' copies), outbound queues service calls for the
-- writer, conn holds the current websocket (Nothing before first connect). -- writer, conn holds the current websocket (Nothing before first connect).
data Bus = Bus data Bus = Bus
{ busInbound :: TChan Value { busInbound :: TChan (Event Value)
, busOutbound :: TChan (Request, Service) , busOutbound :: TChan (Request, Service)
, busConn :: TVar (Maybe Connection) , busConn :: TVar (Maybe Connection)
, busGen :: CallIdGen , busGen :: CallIdGen
+78 -23
View File
@@ -5,23 +5,30 @@ module HomeAssistant.Runtime.Connection
( readerAction ( readerAction
, writerAction , writerAction
, encodeService , encodeService
, dedupeBatch
) where ) where
import Control.Concurrent.STM import Control.Concurrent.STM
( atomically ( TChan
, atomically
, readTChan , readTChan
, readTVar , readTVar
, retry , retry
, tryReadTChan
, writeTChan , writeTChan
, writeTVar , writeTVar
) )
import Control.Concurrent.Async (race)
import Control.Concurrent (threadDelay)
import Control.Exception (onException) import Control.Exception (onException)
import Control.Exception.Annotated (throw) import Control.Exception.Annotated (throw)
import Control.Lens ((^?)) import Control.Lens ((^?))
import Control.Monad (forever) import Control.Monad (forever, forM_)
import Data.Aeson (Value, eitherDecode, encode, object, (.=)) import Data.Aeson (Value, eitherDecode, encode, object, (.=))
import Data.Aeson.Lens (key, _String) import Data.Aeson.Lens (key, _String)
import qualified Data.ByteString.Lazy as BL import Data.List (sort)
import qualified Data.Map.Strict as M
import qualified Data.Set as S
import qualified Data.Text as T import qualified Data.Text as T
import Data.Void (Void) import Data.Void (Void)
import HomeAssistant.Controller (Service (..), Target (..)) import HomeAssistant.Controller (Service (..), Target (..))
@@ -30,16 +37,16 @@ import HomeAssistant.Runtime.Supervisor (Fatal (..))
import qualified Network.WebSockets as WS import qualified Network.WebSockets as WS
import Katip (runKatipContextT, sl, logFM, Severity (..), ls) import Katip (runKatipContextT, sl, logFM, Severity (..), ls)
import Data.UUID (toText) import Data.UUID (toText)
import AFRP (Request(..)) import AFRP (Request(..), Event(..))
-- | Connect, authenticate, subscribe, then receive and broadcast forever. -- | Connect, authenticate, subscribe, then receive and broadcast forever.
-- Restarting this action reconnects. All setup sends happen before the -- Restarting this action reconnects. All setup sends happen before the
-- connection is published in the bus, so only the writer sends afterwards. -- connection is published in the bus, so only the writer sends afterwards.
readerAction :: String -> Int -> String -> Bus -> IO Void readerAction :: String -> Int -> String -> S.Set T.Text -> Bus -> IO Void
readerAction host port token bus = readerAction host port token ents bus =
WS.runClient host port "/api/websocket" $ \conn -> do WS.runClient host port "/api/websocket" $ \conn -> do
handshake conn token handshake conn token
subscribe bus conn subscribe bus conn ents
atomically $ writeTVar (busConn bus) (Just conn) atomically $ writeTVar (busConn bus) (Just conn)
putStrLn "[reader] connected" putStrLn "[reader] connected"
-- Unpublish on exit so the writer blocks and the backlog survives the outage. -- Unpublish on exit so the writer blocks and the backlog survives the outage.
@@ -62,23 +69,34 @@ expectType expected msg =
Just t | t == expected -> pure () Just t | t == expected -> pure ()
_ -> throw (Fatal $ "expected " <> expected <> ", got: " <> T.pack (show msg)) _ -> throw (Fatal $ "expected " <> expected <> ", got: " <> T.pack (show msg))
subscribe :: Bus -> WS.Connection -> IO () subscribe :: Bus -> WS.Connection -> S.Set T.Text -> IO ()
subscribe bus conn = do subscribe bus conn ents =
sid <- generateCallId (busGen bus) forM_ (S.toList ents) $ \entityId -> do
WS.sendTextData conn $ encode $ object print entityId
[ "id" .= sid sid <- generateCallId (busGen bus)
, "type" .= ("subscribe_events" :: T.Text) WS.sendTextData conn $ encode $ object
, "event_type" .= ("state_changed" :: T.Text) [ "id" .= sid
] , "type" .= ("subscribe_trigger" :: T.Text)
, "trigger" .= object
[ "platform" .= ("state" :: T.Text)
, "entity_id" .= entityId
]
]
-- | Undecodable messages are skipped: reconnecting cannot fix a decode -- | Undecodable messages are skipped: reconnecting cannot fix a decode
-- problem, so crashing here would only produce a hot restart loop. -- problem, so crashing here would only produce a hot restart loop.
--
-- Each read races a one-second timeout: a timeout broadcasts 'Tick' so
-- time-based primitives (debounce, rollup, fixed, ...) keep advancing
-- even when no state changes arrive.
receiveLoop :: Bus -> WS.Connection -> IO Void receiveLoop :: Bus -> WS.Connection -> IO Void
receiveLoop bus conn = forever $ do receiveLoop bus conn = forever $ do
msg <- WS.receiveData conn :: IO BL.ByteString winner <- race (threadDelay 1_000_000) (WS.receiveData conn)
case eitherDecode msg of case winner of
Left err -> putStrLn $ "[reader] skipping undecodable message: " <> err Left () -> atomically $ writeTChan (busInbound bus) Tick
Right v -> atomically $ writeTChan (busInbound bus) v Right msg -> case eitherDecode msg of
Left err -> putStrLn $ "[reader] skipping undecodable message: " <> err
Right v -> atomically $ writeTChan (busInbound bus) (Event v)
receiveJSON :: WS.Connection -> IO Value receiveJSON :: WS.Connection -> IO Value
receiveJSON conn = do receiveJSON conn = do
@@ -87,16 +105,41 @@ receiveJSON conn = do
Left err -> throw (Fatal $ "Invalid JSON from Home Assistant: " <> T.pack err) Left err -> throw (Fatal $ "Invalid JSON from Home Assistant: " <> T.pack err)
Right x -> pure x Right x -> pure x
writerAction :: Bus -> IO Void -- | Floor between sends within a batch: 100ms, so a many-distinct-target
writerAction bus = forever $ do -- flood still caps at ~10 sends/sec even after dedupe.
(request, svc) <- atomically $ readTChan (busOutbound bus) minInterval :: Int
conn <- atomically $ readTVar (busConn bus) >>= maybe retry pure minInterval = 100000
-- | Non-blocking drain of everything queued on a channel. Returns items
-- oldest-first (FIFO from the channel), so prepending the blocking
-- `readTChan` item keeps the whole batch oldest-first for `dedupeBatch`.
drainTry :: TChan a -> IO [a]
drainTry chan = go []
where
go acc = do
m <- atomically $ tryReadTChan chan
case m of
Nothing -> pure (reverse acc)
Just x -> go (x : acc)
sendWithId :: Bus -> WS.Connection -> Request -> Service -> IO ()
sendWithId bus conn request svc = do
callId <- generateCallId (busGen bus) callId <- generateCallId (busGen bus)
let textData = encode $ encodeService callId svc let textData = encode $ encodeService callId svc
runKatipContextT (busLogEnv bus) (sl "traceId" (toText (requestTraceId request))) "connection" $ runKatipContextT (busLogEnv bus) (sl "traceId" (toText (requestTraceId request))) "connection" $
logFM DebugS (ls textData) logFM DebugS (ls textData)
WS.sendTextData conn textData WS.sendTextData conn textData
writerAction :: Bus -> IO Void
writerAction bus = forever $ do
first <- atomically $ readTChan (busOutbound bus)
rest <- drainTry (busOutbound bus)
let deduped = dedupeBatch (first : rest)
conn <- atomically $ readTVar (busConn bus) >>= maybe retry pure
forM_ deduped $ \(request, svc) -> do
sendWithId bus conn request svc
threadDelay minInterval
encodeService :: Int -> Service -> Value encodeService :: Int -> Service -> Value
encodeService callId Service{..} = object $ encodeService callId Service{..} = object $
[ "id" .= callId [ "id" .= callId
@@ -106,6 +149,18 @@ encodeService callId Service{..} = object $
, "target" .= targetObject serviceTarget , "target" .= targetObject serviceTarget
] <> maybe [] (\d -> ["service_data" .= d]) serviceData ] <> maybe [] (\d -> ["service_data" .= d]) serviceData
-- | Collapse a drained batch of outbound calls: the newest call per
-- `(domain, service, sorted-targets)` survives; older duplicates are
-- dropped. `serviceData` is not part of the key, so a newer `turn_on`
-- with different brightness supersedes an older one to the same target.
dedupeBatch :: [(Request, Service)] -> [(Request, Service)]
dedupeBatch = M.elems . foldl' ins M.empty
where
ins m (req, svc) = M.insert (dedupeKey svc) (req, svc) m
dedupeKey :: Service -> (T.Text, T.Text, [Target])
dedupeKey Service{..} = (serviceDomain, serviceName, sort serviceTarget)
-- | A single target encodes as a scalar; multiple encode as a list. Empty -- | A single target encodes as a scalar; multiple encode as a list. Empty
-- lists are omitted so Home Assistant receives only populated keys. -- lists are omitted so Home Assistant receives only populated keys.
targetObject :: [Target] -> Value targetObject :: [Target] -> Value
+119
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@@ -0,0 +1,119 @@
{-# LANGUAGE OverloadedStrings #-}
module HomeAssistant.Runtime.Metrics
( DsType (..)
, DsSpec (..)
, dsTypeOf
, sanitizeName
, buildSchema
, buildCreateArgs
, buildUpdateArgs
, ensureRrd
, sampleAndUpdate
, metricsAction
) where
import Control.Concurrent (threadDelay)
import Control.Monad (forever, unless)
import Data.Char (ord)
import Data.Int (Int64)
import Data.List (intercalate, sortBy)
import Data.Ord (comparing)
import Data.Text (Text)
import Data.Void (Void)
import Numeric (showHex)
import qualified Data.Text as T
import qualified Data.HashMap.Strict as HM
import qualified System.Metrics as M (Value (..), Sample, Store, sampleAll)
import System.Directory (doesFileExist)
import System.Process (callProcess)
data DsType = Derive | Gauge
deriving (Eq, Show)
data DsSpec = DsSpec
{ dsEkgName :: Text
, dsName :: String
, dsType :: DsType
}
deriving (Eq, Show)
dsTypeOf :: M.Value -> Maybe DsType
dsTypeOf (M.Counter _) = Just Derive
dsTypeOf (M.Gauge _) = Just Gauge
dsTypeOf _ = Nothing
-- | Maps an ekg metric label to a valid rrd DS name (≤19 chars, [A-Za-z0-9_]).
-- Long names keep the first 15 chars plus a 3-hex hash suffix for uniqueness.
sanitizeName :: Text -> String
sanitizeName name
| length sanitized <= 19 = sanitized
| otherwise = take 15 sanitized ++ "_" ++ paddedHash
where
sanitized = T.unpack (T.replace "." "_" name)
paddedHash = let h = showHex (sum (map ord sanitized) `mod` 4096) ""
in replicate (3 - length h) '0' ++ h
buildSchema :: M.Sample -> [DsSpec]
buildSchema sample =
sortBy (comparing dsName)
[ DsSpec ekgName (sanitizeName ekgName) dt
| (ekgName, val) <- HM.toList sample
, Just dt <- [dsTypeOf val]
]
buildCreateArgs :: FilePath -> Int -> [(String, DsType)] -> [String]
buildCreateArgs path step specs =
["create", path, "--step", show step]
++ concatMap dsArg specs
++ rras
where
dsArg (name, Derive) = ["DS:" ++ name ++ ":DERIVE:20:0:U"]
dsArg (name, Gauge) = ["DS:" ++ name ++ ":GAUGE:20:0:U"]
rras =
[ "RRA:AVERAGE:0.5:1:6000"
, "RRA:MAX:0.5:1:6000"
, "RRA:AVERAGE:0.5:360:1680"
, "RRA:MAX:0.5:360:1680"
]
buildUpdateArgs :: FilePath -> [String] -> [Maybe Int64] -> [String]
buildUpdateArgs path names values =
[ "update"
, path
, "--template"
, intercalate ":" names
, "N:" ++ intercalate ":" (map renderValue values)
]
where
renderValue Nothing = "U"
renderValue (Just n) = show n
lookupValue :: M.Sample -> Text -> Maybe Int64
lookupValue sample name = case HM.lookup name sample of
Just (M.Counter n) -> Just n
Just (M.Gauge n) -> Just n
_ -> Nothing
ensureRrd :: FilePath -> FilePath -> [DsSpec] -> IO ()
ensureRrd rrdtool rrdPath schema = do
exists <- doesFileExist rrdPath
unless exists $
callProcess rrdtool (buildCreateArgs rrdPath 10 (map toPair schema))
where
toPair s = (dsName s, dsType s)
sampleAndUpdate :: M.Store -> FilePath -> FilePath -> [DsSpec] -> IO ()
sampleAndUpdate store rrdtool rrdPath schema = do
sample <- M.sampleAll store
let names = map dsName schema
values = map (lookupValue sample . dsEkgName) schema
callProcess rrdtool (buildUpdateArgs rrdPath names values)
metricsAction :: M.Store -> FilePath -> FilePath -> IO Void
metricsAction store rrdPath rrdtool = do
schema <- buildSchema <$> M.sampleAll store
ensureRrd rrdtool rrdPath schema
forever $ do
sampleAndUpdate store rrdtool rrdPath schema
threadDelay 10000000
+256
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@@ -0,0 +1,256 @@
module AFRPLawsSpec (spec) where
import AFRP
import Control.Arrow (arr, first, left, (***), (+++))
import Control.Category ((>>>))
import qualified Control.Category as Cat (id)
import Data.Functor.Identity (Identity (..))
import Hedgehog (Gen, PropertyT)
import qualified Hedgehog.Gen as Gen
import qualified Hedgehog.Range as Range
import Support (fakeRequest)
import Test.Hspec (Spec, describe, it)
import Test.Hspec.Hedgehog (forAll, forAllWith, hedgehog, (===))
-- | Law tests for the Mealy instances. Two machines count as equal when
-- they emit equal outputs on every input sequence, so each law runs both
-- sides on generated inputs.
runPure :: Mealy Identity a b -> [a] -> [b]
runPure m = go (runMealy m id)
where
go _ [] = []
go w (a : as) = case runIdentity (stepAuto w fakeRequest a) of
(b, w') -> b : go w' as
-- | Machines wrap functions and have no Show; name them for forAll instead.
forAllMealy :: Gen (Mealy Identity a b) -> PropertyT IO (Mealy Identity a b)
forAllMealy = forAllWith (const "<mealy>")
intGen :: Gen Int
intGen = Gen.int (Range.linear (-5) 5)
ints :: Gen [Int]
ints = Gen.list (Range.linear 0 30) intGen
intPairs :: Gen [(Int, Int)]
intPairs = Gen.list (Range.linear 0 30) ((,) <$> intGen <*> intGen)
intEithers :: Gen [Either Int Int]
intEithers = Gen.list (Range.linear 0 30) $
Gen.choice [Left <$> intGen, Right <$> intGen]
nestedPairs :: Gen [((Int, Int), Int)]
nestedPairs = Gen.list (Range.linear 0 30) ((,) <$> ((,) <$> intGen <*> intGen) <*> intGen)
nestedEithers :: Gen [Either (Either Int Int) Int]
nestedEithers = Gen.list (Range.linear 0 30) $
Gen.choice
[ Left <$> Gen.choice [Left <$> intGen, Right <$> intGen]
, Right <$> intGen
]
-- | Stateful Int machines: the arrow variables of the laws.
statefulGen :: Gen (Mealy Identity Int Int)
statefulGen = Gen.choice
[ (\k -> mapAccum (+) k id) <$> intGen
, (\k -> preMapAccum (+) k id) <$> intGen
, (\k -> mapAccum (*) 1 (+ k)) <$> intGen
]
eventArrowGen :: Gen (Mealy Identity Int (Event Int))
eventArrowGen = Gen.choice
[ pure changes
, (\k -> mapAccum (+) k Event) <$> intGen
, (\k -> preMapAccum (+) k (Event . (* 2))) <$> intGen
]
funArrowGen :: Gen (Mealy Identity Int (Int -> Int))
funArrowGen = Gen.choice
[ (\k -> mapAccum (+) k (*)) <$> intGen
, pure (preMapAccum (*) 1 (+))
]
spec :: Spec
spec = describe "Mealy laws" $ do
semigroupSpec
monoidSpec
categorySpec
arrowSpec
arrowChoiceSpec
functorSpec
applicativeSpec
semigroupSpec :: Spec
semigroupSpec = describe "Semigroup (<>)" $ do
it "(a <> b) <> c = a <> (b <> c)" $ hedgehog $ do
a <- forAllMealy eventArrowGen
b <- forAllMealy eventArrowGen
c <- forAllMealy eventArrowGen
xs <- forAll ints
runPure ((a <> b) <> c) xs === runPure (a <> (b <> c)) xs
monoidSpec :: Spec
monoidSpec = describe "Monoid" $ do
it "mempty <> a = a" $ hedgehog $ do
a <- forAllMealy eventArrowGen
xs <- forAll ints
runPure (mempty <> a) xs === runPure a xs
it "a <> mempty = a" $ hedgehog $ do
a <- forAllMealy eventArrowGen
xs <- forAll ints
runPure (a <> mempty) xs === runPure a xs
categorySpec :: Spec
categorySpec = describe "Category" $ do
it "id >>> f = f" $ hedgehog $ do
f <- forAllMealy statefulGen
xs <- forAll ints
runPure (Cat.id >>> f) xs === runPure f xs
it "f >>> id = f" $ hedgehog $ do
f <- forAllMealy statefulGen
xs <- forAll ints
runPure (f >>> Cat.id) xs === runPure f xs
it "(f >>> g) >>> h = f >>> (g >>> h)" $ hedgehog $ do
f <- forAllMealy statefulGen
g <- forAllMealy statefulGen
h <- forAllMealy statefulGen
xs <- forAll ints
runPure ((f >>> g) >>> h) xs === runPure (f >>> (g >>> h)) xs
arrowSpec :: Spec
arrowSpec = describe "Arrow" $ do
it "arr id = id" $ hedgehog $ do
xs <- forAll ints
runPure (arr id :: Mealy Identity Int Int) xs === runPure Cat.id xs
it "arr (f >>> g) = arr f >>> arr g" $ hedgehog $ do
p <- forAll intGen
q <- forAll intGen
xs <- forAll ints
let f = (+ p)
g = (* q)
runPure (arr (f >>> g)) xs === runPure (arr f >>> arr g) xs
it "first (arr f) = arr (first f)" $ hedgehog $ do
p <- forAll intGen
ps <- forAll intPairs
let f = (+ p)
runPure (first (arr f)) ps === runPure (arr (first f)) ps
it "first (f >>> g) = first f >>> first g" $ hedgehog $ do
f <- forAllMealy statefulGen
g <- forAllMealy statefulGen
ps <- forAll intPairs
runPure (first (f >>> g)) ps === runPure (first f >>> first g) ps
it "first f >>> arr fst = arr fst >>> f" $ hedgehog $ do
f <- forAllMealy statefulGen
ps <- forAll intPairs
runPure (first f >>> arr fst) ps === runPure (arr fst >>> f) ps
it "first f >>> arr (id *** g) = arr (id *** g) >>> first f" $ hedgehog $ do
f <- forAllMealy statefulGen
p <- forAll intGen
ps <- forAll intPairs
let g = (* p)
runPure (first f >>> arr (id *** g)) ps
=== runPure (arr (id *** g) >>> first f) ps
it "first (first f) >>> arr assoc = arr assoc >>> first f" $ hedgehog $ do
f <- forAllMealy statefulGen
ts <- forAll nestedPairs
let assoc ((a, b), c) = (a, (b, c))
runPure (first (first f) >>> arr assoc) ts
=== runPure (arr assoc >>> first f) ts
arrowChoiceSpec :: Spec
arrowChoiceSpec = describe "ArrowChoice" $ do
it "left (arr f) = arr (left f)" $ hedgehog $ do
p <- forAll intGen
es <- forAll intEithers
let f = (+ p)
runPure (left (arr f)) es === runPure (arr (left f)) es
it "left (f >>> g) = left f >>> left g" $ hedgehog $ do
f <- forAllMealy statefulGen
g <- forAllMealy statefulGen
es <- forAll intEithers
runPure (left (f >>> g)) es === runPure (left f >>> left g) es
it "f >>> arr Left = arr Left >>> left f" $ hedgehog $ do
f <- forAllMealy statefulGen
xs <- forAll ints
runPure (f >>> arr (Left @Int @Int)) xs
=== runPure (arr (Left @Int @Int) >>> left f) xs
it "left f >>> arr (id +++ g) = arr (id +++ g) >>> left f" $ hedgehog $ do
f <- forAllMealy statefulGen
p <- forAll intGen
es <- forAll intEithers
let g = (* p)
runPure (left f >>> arr (id +++ g)) es
=== runPure (arr (id +++ g) >>> left f) es
it "left (left f) >>> arr assocsum = arr assocsum >>> left f" $ hedgehog $ do
f <- forAllMealy statefulGen
es <- forAll nestedEithers
let assocsum (Left (Left x)) = Left x
assocsum (Left (Right y)) = Right (Left y)
assocsum (Right z) = Right (Right z)
runPure (left (left f) >>> arr assocsum) es
=== runPure (arr assocsum >>> left f) es
functorSpec :: Spec
functorSpec = describe "Functor" $ do
it "fmap id = id" $ hedgehog $ do
m <- forAllMealy statefulGen
xs <- forAll ints
runPure (fmap id m) xs === runPure m xs
it "fmap (f . g) = fmap f . fmap g" $ hedgehog $ do
m <- forAllMealy statefulGen
p <- forAll intGen
q <- forAll intGen
xs <- forAll ints
let f = (+ p)
g = (* q)
runPure (fmap (f . g) m) xs === runPure (fmap f (fmap g m)) xs
applicativeSpec :: Spec
applicativeSpec = describe "Applicative" $ do
it "pure id <*> v = v" $ hedgehog $ do
v <- forAllMealy statefulGen
xs <- forAll ints
runPure (pure id <*> v) xs === runPure v xs
it "pure f <*> pure x = pure (f x)" $ hedgehog $ do
p <- forAll intGen
x <- forAll intGen
xs <- forAll ints
let f = (+ p)
runPure (pure f <*> pure x) xs === runPure (pure (f x)) xs
it "u <*> pure y = pure ($ y) <*> u" $ hedgehog $ do
u <- forAllMealy funArrowGen
y <- forAll intGen
xs <- forAll ints
runPure (u <*> pure y) xs === runPure (pure ($ y) <*> u) xs
it "pure (.) <*> u <*> v <*> w = u <*> (v <*> w)" $ hedgehog $ do
u <- forAllMealy funArrowGen
v <- forAllMealy funArrowGen
w <- forAllMealy statefulGen
xs <- forAll ints
runPure (pure (.) <*> u <*> v <*> w) xs
=== runPure (u <*> (v <*> w)) xs
it "fmap f x = pure f <*> x" $ hedgehog $ do
x <- forAllMealy statefulGen
p <- forAll intGen
xs <- forAll ints
let f = (+ p)
runPure (fmap f x) xs === runPure (pure f <*> x) xs
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{-# LANGUAGE OverloadedStrings #-}
module AFRPSpec (spec) where
import Control.Arrow (arr, (&&&), first, left)
import Control.Category ((>>>))
import Control.Monad.Fix (MonadFix (..))
import Data.Foldable (for_)
import AFRP
import Data.Functor.Identity (Identity (..))
import Data.List (sort)
import Data.Serialize (get, put, runGet, runPut)
import qualified Data.Set as S
import qualified Data.Text as T
import Data.Time (Day (..), NominalDiffTime, LocalTime(..), TimeOfDay(..), UTCTime (..), picosecondsToDiffTime, utc)
import Data.UUID (nil)
import Hedgehog
import qualified Hedgehog.Gen as Gen
import qualified Hedgehog.Range as Range
import Test.Hspec
import Test.Hspec.Hedgehog
fakeRequest :: Request
fakeRequest = Request (sec 0) utc nil
sec :: Integer -> UTCTime
sec n = UTCTime (toEnum 0) (fromIntegral n)
untime :: SerializeUTCTime -> UTCTime
untime (SerializeUTCTime t) = t
runPure :: Mealy Identity a b -> [a] -> [b]
runPure m = go (runMealy m id)
where
go _ [] = []
go w (a : as) = case runIdentity (stepAuto w fakeRequest a) of
(b, w') -> b : go w' as
-- | Run a Mealy with a per-step wall clock (seconds since the day-0 epoch).
runTimed :: Mealy Identity a b -> [(Integer, a)] -> [b]
runTimed m = go (runMealy m id)
where
go _ [] = []
go w ((s, a) : as) =
case runIdentity (stepAuto w (Request (sec s) utc nil) a) of
(b, w') -> b : go w' as
-- | A minimal State monad for observing effectful arrows (e.g. whenA gating).
newtype St a = St { unSt :: Int -> (a, Int) }
instance Functor St where
fmap f (St g) = St $ \s -> let (a, s') = g s in (f a, s')
instance Applicative St where
pure a = St (\s -> (a, s))
St f <*> St x = St $ \s -> let (f', s') = f s; (a, s'') = x s' in (f' a, s'')
instance Monad St where
St m >>= k = St $ \s -> let (a, s') = m s; (b, s'') = unSt (k a) s' in (b, s'')
instance MonadFix St where
mfix f = St $ \s -> let (a, s') = unSt (f a) s in (a, s')
runStEff :: Mealy St a b -> Int -> [a] -> ([b], Int)
runStEff m = go (runMealy m id)
where
go _ s [] = ([], s)
go w s (a : rest) = case unSt (stepAuto w fakeRequest a) s of
((b, w'), s') -> let (bs, s'') = go w' s' rest in (b : bs, s'')
spec :: Spec
spec = describe "AFRP" $ do
entitiesSpec
holdSpec
eventsSpec
isEventSpec
tagSpec
toEventSpec
lMergeSpec
changesSpec
edgeSpec
filterASpec
slidingSpec
mapAccumSpec
preMapAccumSpec
durationSpec
delayEventSpec
debounceSpec
rollupSpec
serializeSpec
effSpec
mapAccumRequestSpec
preMapAccumRequestSpec
whenASpec
thenASpec
sampleSpec
holdSpec :: Spec
holdSpec = describe "hold" $ do
it "holds initial value until an Event arrives" $
runPure (hold 'a') [Tick, Event 'b', Tick, Event 'c']
`shouldBe` ['a', 'b', 'b', 'c']
it "never changes on Tick" $
runPure (hold (0 :: Int)) (replicate 5 Tick) `shouldBe` replicate 5 (0 :: Int)
eventsSpec :: Spec
eventsSpec = describe "events" $ do
it "converts Tick to Left () and Event a to Right a" $
runPure events [Tick, Event 'a', Tick, Event 'b']
`shouldBe` [Left (), Right 'a', Left (), Right 'b']
isEventSpec :: Spec
isEventSpec = describe "isEvent" $ do
it "returns False for Tick" $
isEvent Tick `shouldBe` False
it "returns True for Event x" $
isEvent (Event ()) `shouldBe` True
tagSpec :: Spec
tagSpec = describe "tag" $ do
it "replaces value preserving structure" $ do
tag 'b' Tick `shouldBe` Tick
tag 'b' (Event 'a') `shouldBe` Event 'b'
toEventSpec :: Spec
toEventSpec = describe "toEvent" $ do
it "round-trips through events" $
runPure toEvent [Left (), Right 'a', Left ()]
`shouldBe` [Tick, Event 'a', Tick]
it "is inverse of events modulo Event/Either" $
runPure (events >>> toEvent) [Tick, Event 'a', Event 'b']
`shouldBe` [Tick, Event 'a', Event 'b']
lMergeSpec :: Spec
lMergeSpec = describe "lMerge" $ do
it "both Tick gives Tick" $
lMerge (Tick :: Event Int) (Tick :: Event Int) `shouldBe` Tick
it "prefers left Event" $
lMerge (Event (1 :: Int)) (Event (2 :: Int)) `shouldBe` Event (1 :: Int)
it "prefers right Event if left is Tick" $
lMerge Tick (Event (2 :: Int)) `shouldBe` Event (2 :: Int)
it "Tick is a left identity" $
hedgehog $ do
e <- forAll eventGen
lMerge Tick e === e
it "Tick is a right identity" $
hedgehog $ do
e <- forAll eventGen
lMerge e Tick === e
it "is associative" $
hedgehog $ do
a <- forAll eventGen
b <- forAll eventGen
c <- forAll eventGen
lMerge a (lMerge b c) === lMerge (lMerge a b) c
changesSpec :: Spec
changesSpec = describe "changes" $ do
it "first output is always Tick" $
runPure changes "hello" !! 0 `shouldBe` Tick
it "outputs Event only on value change" $
runPure changes "aaaabbbcca"
`shouldBe` [Tick, Tick, Tick, Tick
, Event 'b', Tick, Tick
, Event 'c', Tick
, Event 'a'
]
it "first output is Tick, subsequent outputs are Event iff value changed" $
hedgehog $ do
xs <- forAll $ Gen.list (Range.linear 0 100) Gen.alpha
let out = runPure changes xs
length out === length xs
case out of
[] -> pure ()
(Tick : rest) -> do
let triples = zip3 xs (drop 1 xs) rest
for_ triples $ \(prev, curr, o) ->
if prev /= curr
then o === Event curr
else o === Tick
_ -> failure
edgeSpec :: Spec
edgeSpec = describe "edge" $ do
it "emits Event () only on rising edge" $
runPure edge [False, True, True, False, True]
`shouldBe` [Tick, Event (), Tick, Tick, Event ()]
it "starts from False, so first True is a rising edge" $
runPure edge [True, False, True]
`shouldBe` [Event (), Tick, Event ()]
it "Event () only on False -> True transition" $
hedgehog $ do
bs <- forAll $ Gen.list (Range.linear 0 50) Gen.bool
let out = runPure edge bs
length out === length bs
case (bs, out) of
([], []) -> pure ()
(b : _, o : _) -> do
if b then o === Event () else o === Tick
let triples = zip3 bs (drop 1 bs) (drop 1 out)
for_ triples $ \(prev, curr, o') ->
if not prev && curr
then o' === Event ()
else o' === Tick
_ -> failure
filterASpec :: Spec
filterASpec = describe "filterA" $ do
it "lets through values matching predicate" $
runPure (filterA (even @Int)) [1, 2, 3, 4]
`shouldBe` [Left (), Right 2, Left (), Right 4]
it "output is Right a iff predicate holds" $
hedgehog $ do
threshold <- forAll $ Gen.int (Range.linear (-10) 10)
let p = (> threshold)
xs <- forAll $ Gen.list (Range.linear 0 50) (Gen.int (Range.linear (-20) 20))
let out = runPure (filterA p) xs
length out === length xs
for_ (zip xs out) $ \(x, o) ->
if p x
then o === Right x
else o === Left ()
slidingSpec :: Spec
slidingSpec = describe "sliding" $ do
it "accumulates events up to the window size" $
runPure (sliding (3 :: Int)) [Event (1 :: Int), Event 2, Event 3, Event 4]
`shouldBe` [[1], [1, 2], [1, 2, 3], [2, 3, 4]]
it "Ticks don't change the accumulator" $
runPure (sliding 2) [Event (1 :: Int), Tick, Event 2]
`shouldBe` [[1], [1], [1, 2]]
it "empty list stays empty" $
runPure (sliding (5 :: Int)) ([] :: [Event Int]) `shouldBe` []
it "output length never exceeds window size" $
hedgehog $ do
n <- forAll $ Gen.int (Range.constant 1 10)
evs <- forAll $ Gen.list (Range.linear 0 20) (Gen.frequency
[(3, Event <$> Gen.alpha), (1, pure Tick)])
let out = runPure (sliding n) evs
for_ out $ \xs -> assert (length xs <= n)
mapAccumSpec :: Spec
mapAccumSpec = describe "mapAccum" $ do
it "running sum" $
runPure (mapAccum (+) (0 :: Int) id) [1, 2, 3]
`shouldBe` [1, 3, 6]
it "post-state extraction: output uses state after applying f" $
runPure (mapAccum (\s x -> s ++ [x]) ([] :: [Int]) id) [1, 2, 3]
`shouldBe` [[1], [1, 2], [1, 2, 3]]
it "output equals running sum of all inputs so far" $
hedgehog $ do
xs <- forAll $ Gen.list (Range.linear 0 50) (Gen.int (Range.linear (-100) 100))
let out = runPure (mapAccum (+) (0 :: Int) id) xs
length out === length xs
for_ (zip3 [0 ..] xs out) $ \(i, _x, cur) ->
cur === sum (take (i + 1) xs)
preMapAccumSpec :: Spec
preMapAccumSpec = describe "preMapAccum" $ do
it "running sum with pre-state extraction" $
runPure (preMapAccum (+) (0 :: Int) id) [1, 2, 3]
`shouldBe` [0, 1, 3]
it "pre-state extraction: output uses state before applying f" $
runPure (preMapAccum (\s x -> s ++ [x]) ([] :: [Int]) id) [1, 2, 3]
`shouldBe` [[], [1], [1, 2]]
it "output equals running sum before current input" $
hedgehog $ do
xs <- forAll $ Gen.list (Range.linear 0 50) (Gen.int (Range.linear (-100) 100))
let out = runPure (preMapAccum (+) (0 :: Int) id) xs
length out === length xs
for_ (zip3 [0 ..] xs out) $ \(i, _x, cur) ->
cur === sum (take i xs)
durationSpec :: Spec
durationSpec = describe "duration" $ do
it "first sample is 0, then elapsed time since first sample" $
runTimed duration [(0, 'a'), (5, 'b'), (10, 'c')]
`shouldBe` [0, 5, 10]
it "measures from the first observation, not the most recent" $
runTimed duration [(2, 'a'), (3, 'b'), (7, 'c')]
`shouldBe` [0, 1, 5]
it "output i equals times[i] - times[0]" $
hedgehog $ do
secs <- forAll $ Gen.list (Range.linear 0 50) (Gen.int (Range.linear 0 1000))
let out = runTimed duration [(fromIntegral s, ()) | s <- secs]
length out === length secs
case secs of
[] -> pure ()
(t0 : _) -> for_ (zip secs out) $ \(s, d) ->
d === fromIntegral (s - t0)
delayEventSpec :: Spec
delayEventSpec = describe "delayEvent" $ do
let delay = 5 :: NominalDiffTime
it "emits a queued event once the delay has elapsed" $
runTimed (delayEvent delay)
[(0, Event 'a'), (3, Tick), (6, Tick)]
`shouldBe` [Tick, Tick, Event 'a']
it "preserves order when multiple events are queued" $
runTimed (delayEvent delay)
[(0, Event 'a'), (1, Event 'b'), (10, Tick), (12, Tick)]
`shouldBe` [Tick, Tick, Event 'a', Event 'b']
it "emits nothing on pure Tick input" $
runTimed (delayEvent delay) [(0, Tick :: Event Char), (10, Tick)]
`shouldBe` [Tick, Tick]
it "emits exactly one output Event per input Event" $
hedgehog $ do
evs <- forAll $ Gen.list (Range.linear 0 30) eventGen
let evs' = evs ++ replicate 3 Tick
n = length [() | Event _ <- evs]
out = runTimed (delayEvent (1 :: NominalDiffTime))
(zip [0, 2 ..] evs')
length [() | Event _ <- out] === n
debounceSpec :: Spec
debounceSpec = describe "debounce" $ do
let delay = 5 :: NominalDiffTime
it "fires the last event after the quiet period" $
runTimed (debounce delay)
[(0, Event 'a'), (3, Tick), (6, Tick)]
`shouldBe` [Tick, Tick, Event 'a']
it "a newer event before firing resets the timer" $
runTimed (debounce delay)
[(0, Event 'a'), (3, Event 'b'), (6, Tick), (8, Tick)]
`shouldBe` [Tick, Tick, Tick, Event 'b']
it "collapses a burst into a single emission" $
runTimed (debounce delay)
[(0, Event 'a'), (1, Event 'b'), (2, Event 'c'), (10, Tick)]
`shouldBe` [Tick, Tick, Tick, Event 'c']
it "emits no more output Events than input Events" $
hedgehog $ do
evs <- forAll $ Gen.list (Range.linear 0 30) eventGen
let nIn = length [() | Event _ <- evs]
out = runTimed (debounce (1 :: NominalDiffTime))
(zip [0, 2 ..] evs)
nOut = length [() | Event _ <- out]
assert (nOut <= nIn)
rollupSpec :: Spec
rollupSpec = describe "rollup" $ do
it "passes the first `limit` events through immediately, then bursts" $
runTimed (rollup 2 10)
[ (0, Event 'a'), (1, Event 'b')
, (2, Event 'c'), (3, Event 'd')
, (12, Tick)
]
`shouldBe` [ Event ['a'], Event ['b']
, Tick, Tick
, Event ['c', 'd']
]
it "flushes the accumulator when the window ends on a Tick" $
runTimed (rollup 1 10)
[(0, Event 'a'), (1, Event 'b'), (2, Tick), (12, Tick)]
`shouldBe` [Event ['a'], Tick, Tick, Event ['b']]
it "is idle (Tick) until the first Event" $
runTimed (rollup 2 10) [(0, Tick :: Event Char), (1, Tick)]
`shouldBe` [Tick, Tick]
it "every input Event appears exactly once across the outputs" $
hedgehog $ do
limit <- forAll $ Gen.int (Range.constant 1 5)
evs <- forAll $ Gen.list (Range.linear 0 30) eventGen
let evs' = evs ++ replicate 10 Tick
times = [0 ..]
out = runTimed (rollup limit 5) (zip times evs')
emitted = concat [xs | Event xs <- out]
sort emitted === sort [x | Event x <- evs]
eventGen :: Gen (Event Char)
eventGen = Gen.frequency
[ (3, Event <$> Gen.alpha)
, (1, pure Tick)
]
timeGen :: Gen SerializeUTCTime
timeGen = do
day <- ModifiedJulianDay . fromIntegral <$> Gen.int (Range.linear 0 100000)
pico <- picosecondsToDiffTime . fromIntegral
<$> Gen.int (Range.linear 0 (86400 * 10 ^ (12 :: Int) - 1))
pure $ SerializeUTCTime (UTCTime day pico)
localTimeGen :: Gen SerializeLocalTime
localTimeGen = do
day <- ModifiedJulianDay . fromIntegral <$> genInt 0 100000
tod <- TimeOfDay <$> genInt 0 23 <*> genInt 0 59 <*> (fromIntegral <$> genInt 0 60)
pure $ SerializeLocalTime (LocalTime day tod)
where
genInt a b = Gen.int (Range.linear a b)
serializeSpec :: Spec
serializeSpec = do
describe "SerializeUTCTime" $ do
it "get (put x) == pure x" $
hedgehog $ do
x <- forAll timeGen
tripping x (runPut . put) (runGet get)
describe "SerializeLocalTime" $ do
it "get (put x) == pure x" $
hedgehog $ do
x <- forAll localTimeGen
tripping x (runPut . put) (runGet get)
effSpec :: Spec
effSpec = describe "eff" $ do
it "lifts a pure effect function into a stateless Mealy" $
runPure (eff (\_ x -> Identity (x + 1))) [1, 2, 3]
`shouldBe` [2 :: Int, 3, 4]
it "output equals f(input) for every step" $
hedgehog $ do
xs <- forAll $ Gen.list (Range.linear 0 50) (Gen.int (Range.linear (-100) 100))
let out = runPure (eff (\_ x -> Identity (x * 2))) xs
out === map (* 2) xs
mapAccumRequestSpec :: Spec
mapAccumRequestSpec = describe "mapAccumRequest" $ do
it "accumulates request times, post-state extraction" $
runTimed (mapAccumRequest (\req s _ -> s ++ [SerializeUTCTime (requestTime req)]) [] (map untime))
[(0, 'a'), (5, 'b'), (10, 'c')]
`shouldBe` [ [sec 0], [sec 0, sec 5], [sec 0, sec 5, sec 10] ]
it "output i is every request time seen so far" $
hedgehog $ do
secs' <- forAll $ Gen.list (Range.linear 0 30) (Gen.int (Range.linear 0 100))
let out = runTimed (mapAccumRequest (\req s _ -> s ++ [SerializeUTCTime (requestTime req)]) [] (map untime))
[(fromIntegral s, ()) | s <- secs']
expected = [ map (sec . fromIntegral) (take (i + 1) secs') | i <- [0 .. length secs' - 1] ]
out === expected
preMapAccumRequestSpec :: Spec
preMapAccumRequestSpec = describe "preMapAccumRequest" $ do
it "accumulates request times, pre-state extraction" $
runTimed (preMapAccumRequest (\req s _ -> s ++ [SerializeUTCTime (requestTime req)]) [] (map untime))
[(0, 'a'), (5, 'b'), (10, 'c')]
`shouldBe` [ [], [sec 0], [sec 0, sec 5] ]
it "output i is every request time before the current step" $
hedgehog $ do
secs' <- forAll $ Gen.list (Range.linear 0 30) (Gen.int (Range.linear 0 100))
let out = runTimed (preMapAccumRequest (\req s _ -> s ++ [SerializeUTCTime (requestTime req)]) [] (map untime))
[(fromIntegral s, ()) | s <- secs']
expected = [ map (sec . fromIntegral) (take i secs') | i <- [0 .. length secs' - 1] ]
out === expected
whenASpec :: Spec
whenASpec = describe "whenA" $ do
let counter = eff (\_ (_ :: Int) -> St (\s -> ((), s + 1)))
it "output is always () regardless of the predicate" $
fst (runStEff (whenA (> 5) counter) 0 [1, 6, 2, 7])
`shouldBe` [(), (), (), ()]
it "runs the inner arrow only when the predicate holds" $
snd (runStEff (whenA (> 5) counter) 0 [1, 6, 2, 7])
`shouldBe` 2
it "never runs the inner arrow when the predicate is always false" $
snd (runStEff (whenA (const False) counter) 0 [1, 6, 2, 7])
`shouldBe` 0
it "runs the inner arrow on every input when the predicate is always true" $
snd (runStEff (whenA (const True) counter) 0 [1, 6, 2, 7])
`shouldBe` 4
thenASpec :: Spec
thenASpec = describe "thenA" $ do
it "short-circuits on Left and continues on Right" $
runPure (filterA (even @Int) `thenA` filterA (> 3)) [1..6]
`shouldBe` [Left (), Left (), Left (), Right 4, Left (), Right 6]
it "(>>|) is an infix alias for thenA" $
runPure (filterA (even @Int) >>| filterA (> 3)) [1..6]
`shouldBe` [Left (), Left (), Left (), Right 4, Left (), Right 6]
it "second stage runs only when the first produces Right" $
hedgehog $ do
xs <- forAll $ Gen.list (Range.linear 0 30) (Gen.int (Range.linear (-20) 20))
let out = runPure (filterA (even @Int) >>| filterA (> 0)) xs
expected =
[ if odd x then Left ()
else if x > 0 then Right x
else Left ()
| x <- xs ]
out === expected
sampleSpec :: Spec
sampleSpec = describe "sample" $ do
it "tags the current value onto the Event structure" $
runPure sample [(1, Tick), (2, Event 'a'), (3, Tick)]
`shouldBe` [Tick, Event @Int 2, Tick]
it "output is Event a iff the input event is present" $
hedgehog $ do
vals <- forAll $ Gen.list (Range.linear 0 30) (Gen.int (Range.linear 0 100))
evs <- forAll $ Gen.list (Range.linear 0 30) eventGen
let n = min (length vals) (length evs)
ps = take n $ zip vals evs
out = runPure sample ps
for_ (zip ps out) $ \((v, ev), o) ->
o === tag v ev
-- | A stateless arrow carrying a fixed entity set, for testing propagation.
subscribed :: S.Set T.Text -> Mealy Identity Int Int
subscribed ents = Mealy ents $ \_ -> Fun $ \_ a -> a
-- | Same as 'subscribed' but yields a function, for testing '<*>'.
subscribedF :: S.Set T.Text -> Mealy Identity Int (Int -> Int)
subscribedF ents = Mealy ents $ \_ -> Fun $ \_ a -> (a +)
entitiesSpec :: Spec
entitiesSpec = describe "entities" $ do
it "id carries no entities" $
entities (arr id :: Mealy Identity Int Int) `shouldBe` S.empty
it "arr carries no entities" $
entities (arr (+ 1) :: Mealy Identity Int Int) `shouldBe` S.empty
it "eff carries no entities" $
entities (eff (\_ x -> Identity (x + 1 :: Int))) `shouldBe` S.empty
it "primitive combinators carry no entities" $ do
entities (hold 'a') `shouldBe` S.empty
entities (changes @Int) `shouldBe` S.empty
entities edge `shouldBe` S.empty
entities (sliding (3 :: Int) :: Mealy Identity (Event Int) [Int]) `shouldBe` S.empty
it "Category (.) unions entity sets" $
entities (subscribed (S.singleton "a") >>> subscribed (S.singleton "b"))
`shouldBe` S.fromList ["a", "b"]
it "Applicative (<*>) unions entity sets" $
entities (subscribedF (S.singleton "a") <*> subscribed (S.singleton "b"))
`shouldBe` S.fromList ["a", "b"]
it "Arrow (&&&) unions entity sets" $
entities (subscribed (S.singleton "a") &&& subscribed (S.singleton "b"))
`shouldBe` S.fromList ["a", "b"]
it "(>>>) unions entity sets" $
entities (subscribed (S.singleton "a") >>> arr id >>> subscribed (S.singleton "b"))
`shouldBe` S.fromList ["a", "b"]
it "left preserves the entity set" $
entities (left (subscribed (S.singleton "a")) :: Mealy Identity (Either Int Int) (Either Int Int))
`shouldBe` S.singleton "a"
it "first preserves the entity set" $
entities (first (subscribed (S.singleton "a")) :: Mealy Identity (Int, Int) (Int, Int))
`shouldBe` S.singleton "a"
it "fmap preserves the entity set" $
entities (fmap (+ 1) (subscribed (S.singleton "a")))
`shouldBe` S.singleton "a"
+134
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@@ -0,0 +1,134 @@
{-# LANGUAGE OverloadedStrings #-}
module BedroomSpec (spec) where
import AFRP (Event (..), entities)
import qualified Data.Set as S
import qualified Data.Text as T
import Data.Aeson (Value)
import HomeAssistant.Controller
import HomeAssistant.Controller.Bedroom
import Support
import Test.Hspec
masseButton :: T.Text -> Event Value
masseButton = Event . buttonEvent "event.bedroom_quick_remote_masse_action"
enishenButton :: T.Text -> Event Value
enishenButton = Event . buttonEvent "event.bedroom_quick_jemina_action"
drawerState :: T.Text -> Event Value
drawerState = Event . stateEvent "binary_sensor.bedroom_nightstand_drawer_sensor_masse_contact"
spec :: Spec
spec = describe "Bedroom" $ do
entitySpec
drawerSpec
buttonSpec
entitySpec :: Spec
entitySpec = describe "entities" $ do
it "entityChangeEvent' registers its entity id" $
entities (entityChangeEvent' "sensor.foo")
`shouldBe` S.singleton "sensor.foo"
it "entityRead / entityBool inherit the entity id" $ do
entities (entityRead @Double "sensor.bar") `shouldBe` S.singleton "sensor.bar"
entities (entityBool "binary_sensor.baz") `shouldBe` S.singleton "binary_sensor.baz"
it "bedroomDrawerController subscribes to the drawer sensor" $
entities bedroomDrawerController
`shouldBe` S.singleton "binary_sensor.bedroom_nightstand_drawer_sensor_masse_contact"
it "bedroomButtonController subscribes to both remote event entities" $
entities bedroomButtonController
`shouldBe` S.fromList
[ "event.bedroom_quick_remote_masse_action"
, "event.bedroom_quick_jemina_action"
]
it "bedroomPresenceController subscribes to the presence sensor" $
entities bedroomPresenceController
`shouldBe` S.singleton "binary_sensor.presence_sensor_bedroom_occupancy"
it "humidifierController subscribes to the door sensor" $
entities humidifierController
`shouldBe` S.singleton "binary_sensor.makuuhuone_ovi_contact"
drawerSpec :: Spec
drawerSpec = describe "bedroomDrawerController" $ do
let entity = EntityId "switch.bedroom_drawer_light_masse"
it "turns the drawer light on when the drawer opens" $
services (runHASS bedroomDrawerController [drawerState "on"])
`shouldBe` [[switch [entity] True]]
it "turns the drawer light off when the drawer closes" $
services (runHASS bedroomDrawerController [drawerState "off"])
`shouldBe` [[switch [entity] False]]
it "toggles the light as the drawer opens and closes" $
services (runHASS bedroomDrawerController
[ drawerState "on", drawerState "off", drawerState "on" ])
`shouldBe` [ [switch [entity] True]
, [switch [entity] False]
, [switch [entity] True]
]
it "ignores state events for other entities" $
services (runHASS bedroomDrawerController
[Event (stateEvent "binary_sensor.some_other_contact" "on")])
`shouldBe` [[]]
it "does nothing on Tick" $
services (runHASS bedroomDrawerController [Tick])
`shouldBe` [[]]
buttonSpec :: Spec
buttonSpec = describe "bedroomButtonController" $ do
let area = AreaId "makuuhuone"
it "Masse single click turns on his nightstand scene (lowest)" $
services (runHASS bedroomButtonController [masseButton "1_short_release"])
`shouldBe` [[activateScene "scene.makuuhuone_masse"]]
it "Masse double click turns on the middle scene" $
services (runHASS bedroomButtonController [masseButton "1_double_press"])
`shouldBe` [[activateScene "scene.makuuhuone_keski"]]
it "Masse long click turns on the bright scene" $
services (runHASS bedroomButtonController [masseButton "1_long_press"])
`shouldBe` [[activateScene "scene.makuuhuone_kirkas"]]
it "Masse off click turns the bedroom lights off" $
services (runHASS bedroomButtonController [masseButton "2_short_release"])
`shouldBe` [[light [area] Off]]
it "Enishen single click turns on her nightstand scene (lowest)" $
services (runHASS bedroomButtonController [enishenButton "1_short_release"])
`shouldBe` [[activateScene "scene.makuuhuone_jemina"]]
it "Enishen double click turns on the middle scene" $
services (runHASS bedroomButtonController [enishenButton "1_double_press"])
`shouldBe` [[activateScene "scene.makuuhuone_keski"]]
it "Enishen long click turns on the bright scene" $
services (runHASS bedroomButtonController [enishenButton "1_long_press"])
`shouldBe` [[activateScene "scene.makuuhuone_kirkas"]]
it "Enishen off click turns the bedroom lights off" $
services (runHASS bedroomButtonController [enishenButton "2_short_release"])
`shouldBe` [[light [area] Off]]
it "ignores the initial press (scene only fires on release)" $
services (runHASS bedroomButtonController [masseButton "1_initial_press"])
`shouldBe` [[]]
it "ignores button events for other entities" $
services (runHASS bedroomButtonController
[Event (buttonEvent "event.some_other_action" "1_short_release")])
`shouldBe` [[]]
it "does nothing on Tick" $
services (runHASS bedroomButtonController [Tick])
`shouldBe` [[]]
+7 -7
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@@ -2,7 +2,7 @@
module BusSpec (spec) where module BusSpec (spec) where
import AFRP (Request (..)) import AFRP (Request (..), Event (..))
import Control.Concurrent.STM import Control.Concurrent.STM
( atomically ( atomically
, dupTChan , dupTChan
@@ -10,7 +10,7 @@ import Control.Concurrent.STM
, writeTChan , writeTChan
) )
import Data.Aeson (Value (..)) import Data.Aeson (Value (..))
import Data.Time (UTCTime (..)) import Data.Time (UTCTime (..), utc)
import Data.UUID (nil) import Data.UUID (nil)
import HomeAssistant.Controller (HASSEff (..), Service (..), Target(..)) import HomeAssistant.Controller (HASSEff (..), Service (..), Target(..))
import HomeAssistant.Runtime.Bus import HomeAssistant.Runtime.Bus
@@ -22,15 +22,15 @@ spec = describe "Bus" $ do
it "broadcasts inbound messages to every dup'd channel in order" $ withBus InfoS $ \bus -> do it "broadcasts inbound messages to every dup'd channel in order" $ withBus InfoS $ \bus -> do
p1 <- atomically $ dupTChan (busInbound bus) p1 <- atomically $ dupTChan (busInbound bus)
p2 <- atomically $ dupTChan (busInbound bus) p2 <- atomically $ dupTChan (busInbound bus)
atomically $ writeTChan (busInbound bus) (Number 1) atomically $ writeTChan (busInbound bus) (Event (Number 1))
atomically $ writeTChan (busInbound bus) (Number 2) atomically $ writeTChan (busInbound bus) (Event (Number 2))
r1 <- atomically $ (,) <$> readTChan p1 <*> readTChan p1 r1 <- atomically $ (,) <$> readTChan p1 <*> readTChan p1
r2 <- atomically $ (,) <$> readTChan p2 <*> readTChan p2 r2 <- atomically $ (,) <$> readTChan p2 <*> readTChan p2
r1 `shouldBe` (Number 1, Number 2) r1 `shouldBe` (Event (Number 1), Event (Number 2))
r2 `shouldBe` (Number 1, Number 2) r2 `shouldBe` (Event (Number 1), Event (Number 2))
it "channelHassEval writes CallService to the outbound channel" $ withBus InfoS $ \bus -> do it "channelHassEval writes CallService to the outbound channel" $ withBus InfoS $ \bus -> do
let req = Request (UTCTime (toEnum 0) 0) nil let req = Request (UTCTime (toEnum 0) 0) utc nil
svc = Service "light" "turn_on" Nothing [EntityId "light.bedroom_masse"] svc = Service "light" "turn_on" Nothing [EntityId "light.bedroom_masse"]
runKatipContextT (busLogEnv bus) () (Namespace ["test"]) $ runKatipContextT (busLogEnv bus) () (Namespace ["test"]) $
channelHassEval bus (CallService req svc) channelHassEval bus (CallService req svc)
+68 -21
View File
@@ -2,31 +2,78 @@
module ConnectionSpec (spec) where module ConnectionSpec (spec) where
import AFRP (Request(..))
import Data.Aeson (object, (.=)) import Data.Aeson (object, (.=))
import Data.Maybe (fromJust)
import Data.Text (Text) import Data.Text (Text)
import Data.Time (UTCTime (..), utc)
import Data.UUID (fromString)
import HomeAssistant.Controller (Service (..), Target(..)) import HomeAssistant.Controller (Service (..), Target(..))
import HomeAssistant.Runtime.Connection (encodeService) import HomeAssistant.Runtime.Connection (encodeService, dedupeBatch)
import Test.Hspec import Test.Hspec
spec :: Spec spec :: Spec
spec = describe "encodeService" $ do spec = do
it "encodes a call_service message" $ describe "encodeService" $ do
encodeService 7 (Service "light" "turn_on" Nothing [EntityId "light.bedroom_masse"]) it "encodes a call_service message" $
`shouldBe` object encodeService 7 (Service "light" "turn_on" Nothing [EntityId "light.bedroom_masse"])
[ "id" .= (7 :: Int) `shouldBe` object
, "type" .= ("call_service" :: Text) [ "id" .= (7 :: Int)
, "domain" .= ("light" :: Text) , "type" .= ("call_service" :: Text)
, "service" .= ("turn_on" :: Text) , "domain" .= ("light" :: Text)
, "target" .= object ["entity_id" .= ("light.bedroom_masse" :: Text)] , "service" .= ("turn_on" :: Text)
] , "target" .= object ["entity_id" .= ("light.bedroom_masse" :: Text)]
]
it "includes service_data when present" $ it "includes service_data when present" $
encodeService 8 (Service "light" "turn_on" (Just (object ["brightness" .= (200 :: Int)])) [EntityId "light.bedroom_masse"]) encodeService 8 (Service "light" "turn_on" (Just (object ["brightness" .= (200 :: Int)])) [EntityId "light.bedroom_masse"])
`shouldBe` object `shouldBe` object
[ "id" .= (8 :: Int) [ "id" .= (8 :: Int)
, "type" .= ("call_service" :: Text) , "type" .= ("call_service" :: Text)
, "domain" .= ("light" :: Text) , "domain" .= ("light" :: Text)
, "service" .= ("turn_on" :: Text) , "service" .= ("turn_on" :: Text)
, "target" .= object ["entity_id" .= ("light.bedroom_masse" :: Text)] , "target" .= object ["entity_id" .= ("light.bedroom_masse" :: Text)]
, "service_data" .= object ["brightness" .= (200 :: Int)] , "service_data" .= object ["brightness" .= (200 :: Int)]
] ]
describe "dedupeBatch" $ do
it "collapses identical calls to one" $
let batch = [ (req 1, lightOn [AreaId "x"])
, (req 2, lightOn [AreaId "x"])
, (req 3, lightOn [AreaId "x"])
]
in dedupeBatch batch `shouldBe` [(req 3, lightOn [AreaId "x"])]
it "keeps same-target different-service calls separate" $
let batch = [ (req 1, lightOn [AreaId "x"])
, (req 2, lightOff [AreaId "x"])
]
result = dedupeBatch batch
in length result `shouldBe` 2
it "newest call wins for the same key" $
let batch = [ (req 1, lightOn [AreaId "x"])
, (req 2, lightOn [AreaId "x"])
, (req 3, lightOn [AreaId "x"])
]
in map requestTraceId (map fst (dedupeBatch batch)) `shouldBe`
[fromJust (fromString "00000000-0000-0000-0000-000000000003")]
it "treats target lists in different order as the same key" $
let batch = [ (req 1, lightOn [EntityId "a", EntityId "b"])
, (req 2, lightOn [EntityId "b", EntityId "a"])
]
in length (dedupeBatch batch) `shouldBe` 1
req :: Int -> Request
req n = Request (UTCTime (toEnum 0) (fromIntegral (0 :: Int))) utc
(fromJust (fromString uuid))
where
pad i = replicate (12 - length (show i)) '0' <> show i
uuid = "00000000-0000-0000-0000-" <> pad n
lightOn :: [Target] -> Service
lightOn targets = Service "light" "turn_on" Nothing targets
lightOff :: [Target] -> Service
lightOff targets = Service "light" "turn_off" Nothing targets
+8
View File
@@ -1,16 +1,24 @@
module Main (main) where module Main (main) where
import Test.Hspec (hspec) import Test.Hspec (hspec)
import qualified AFRPLawsSpec
import qualified AFRPSpec
import qualified BackoffProp import qualified BackoffProp
import qualified BedroomSpec
import qualified BusSpec import qualified BusSpec
import qualified ConnectionSpec import qualified ConnectionSpec
import qualified MetricsSpec
import qualified RuntimeSpec import qualified RuntimeSpec
import qualified SupervisorSpec import qualified SupervisorSpec
main :: IO () main :: IO ()
main = hspec $ do main = hspec $ do
AFRPLawsSpec.spec
AFRPSpec.spec
BedroomSpec.spec
BusSpec.spec BusSpec.spec
ConnectionSpec.spec ConnectionSpec.spec
MetricsSpec.spec
RuntimeSpec.spec RuntimeSpec.spec
SupervisorSpec.spec SupervisorSpec.spec
BackoffProp.spec BackoffProp.spec
+150
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@@ -0,0 +1,150 @@
{-# LANGUAGE OverloadedStrings #-}
module MetricsSpec (spec) where
import Data.HashMap.Strict (HashMap)
import qualified Data.HashMap.Strict as HM
import Data.Int (Int64)
import Data.Text (Text)
import HomeAssistant.Runtime.Metrics
( DsType (..)
, DsSpec (..)
, dsTypeOf
, sanitizeName
, buildSchema
, buildCreateArgs
, buildUpdateArgs
, ensureRrd
, sampleAndUpdate
, metricsAction
)
import qualified System.Metrics as M (Value (..))
import Test.Hspec
import Control.Exception (try, SomeException)
import System.Directory (findExecutable, getTemporaryDirectory, removeFile)
import System.Exit (ExitCode (ExitSuccess))
import System.Process (readProcessWithExitCode)
import qualified System.Metrics as Metrics
import qualified System.Metrics.Counter as Counter
import qualified System.Metrics.Gauge as Gauge
spec :: Spec
spec = do
describe "dsTypeOf" $ do
it "maps Counter to Derive" $
dsTypeOf (M.Counter 1000) `shouldBe` Just Derive
it "maps Gauge to Gauge" $
dsTypeOf (M.Gauge 500) `shouldBe` Just Gauge
it "maps Label to Nothing" $
dsTypeOf (M.Label "hello") `shouldBe` Nothing
describe "sanitizeName" $ do
it "replaces dots with underscores for short names" $
sanitizeName ("rts.gc.cpu_ms" :: Text) `shouldBe` "rts_gc_cpu_ms"
it "shortens names longer than 19 chars to 15 chars + _ + 3 hex" $ do
let result = sanitizeName ("rts.gc.par_balanced_bytes_copied" :: Text)
length result `shouldBe` 19
take 15 result `shouldBe` "rts_gc_par_bala"
drop 15 result `shouldBe` "_" ++ drop 16 result
it "is deterministic (same input -> same output)" $
sanitizeName ("rts.gc.peak_megabytes_allocated" :: Text)
`shouldBe` sanitizeName ("rts.gc.peak_megabytes_allocated" :: Text)
describe "buildSchema" $ do
it "builds sorted DsSpecs from counters and gauges, skipping labels" $
let sample :: HashMap Text M.Value
sample = HM.fromList
[ ("x.allocated", M.Counter 1000)
, ("a.bytes_used", M.Gauge 500)
, ("c.label_thing", M.Label "irrelevant")
]
in buildSchema sample `shouldBe`
[ DsSpec "a.bytes_used" "a_bytes_used" Gauge
, DsSpec "x.allocated" "x_allocated" Derive
]
it "produces dsName <= 19 chars for long ekg GC metric names" $
let sample :: HashMap Text M.Value
sample = HM.fromList
[ ("rts.gc.par_balanced_bytes_copied", M.Gauge 1)
, ("rts.gc.peak_megabytes_allocated", M.Gauge 2)
, ("rts.gc.cumulative_bytes_used", M.Counter 3)
]
in map (length . dsName) (buildSchema sample) `shouldSatisfy` all (<= 19)
describe "buildCreateArgs" $ do
it "builds create argv with mixed DERIVE and GAUGE DSes and RRAs" $
buildCreateArgs "test.rrd" 10
[ ("ds1", Derive)
, ("ds2", Gauge)
]
`shouldBe`
[ "create"
, "test.rrd"
, "--step"
, "10"
, "DS:ds1:DERIVE:20:0:U"
, "DS:ds2:GAUGE:20:0:U"
, "RRA:AVERAGE:0.5:1:6000"
, "RRA:MAX:0.5:1:6000"
, "RRA:AVERAGE:0.5:360:1680"
, "RRA:MAX:0.5:360:1680"
]
describe "buildUpdateArgs" $ do
it "builds update argv with numeric values" $
buildUpdateArgs "test.rrd" ["ds1", "ds2"] [Just 100, Just 200]
`shouldBe`
[ "update"
, "test.rrd"
, "--template"
, "ds1:ds2"
, "N:100:200"
]
it "renders Nothing as U (unknown)" $
buildUpdateArgs "test.rrd" ["ds1", "ds2"] [Just 100, Nothing]
`shouldBe`
[ "update"
, "test.rrd"
, "--template"
, "ds1:ds2"
, "N:100:U"
]
it "renders all-Nothing as all-U" $
buildUpdateArgs "test.rrd" ["ds1"] [Nothing]
`shouldBe`
[ "update"
, "test.rrd"
, "--template"
, "ds1"
, "N:U"
]
describe "end-to-end (rrdtool-gated)" $ do
it "creates an rrd, samples, and updates it" $ do
mRrdtool <- findExecutable "rrdtool"
case mRrdtool of
Nothing -> pendingWith "rrdtool not on PATH"
Just rrdtool -> do
store <- Metrics.newStore
c <- Metrics.createCounter "test.counter" store
g <- Metrics.createGauge "test.gauge" store
Counter.inc c
Gauge.set g 42
tmp <- getTemporaryDirectory
let rrdPath = tmp ++ "/hass-controller-metrics-test.rrd"
_ <- try (removeFile rrdPath) :: IO (Either SomeException ())
schema <- buildSchema <$> Metrics.sampleAll store
ensureRrd rrdtool rrdPath schema
sampleAndUpdate store rrdtool rrdPath schema
(rc, out, _) <- readProcessWithExitCode rrdtool ["fetch", rrdPath, "AVERAGE"] ""
rc `shouldBe` ExitSuccess
length out `shouldSatisfy` (> 0)
_ <- try (removeFile rrdPath) :: IO (Either SomeException ())
return ()
+8 -6
View File
@@ -16,9 +16,9 @@ spec = pure ()
-- putStrLn "Before the delay" -- putStrLn "Before the delay"
-- threadDelay 100000 -- let the controller dup its inbound channel -- threadDelay 100000 -- let the controller dup its inbound channel
-- putStrLn "After the delay" -- putStrLn "After the delay"
-- atomically $ writeTChan (busInbound bus) (doorEvent "on") -- initial value: no change event -- atomically $ writeTChan (busInbound bus) (Event (doorEvent "on")) -- initial value: no change event
-- atomically $ writeTChan (busInbound bus) (doorEvent "off") -- door closes: lights on -- atomically $ writeTChan (busInbound bus) (Event (doorEvent "off")) -- door closes: lights on
-- atomically $ writeTChan (busInbound bus) (doorEvent "on") -- door opens: lights off -- atomically $ writeTChan (busInbound bus) (Event (doorEvent "on")) -- door opens: lights off
-- putStrLn "After the writes" -- putStrLn "After the writes"
-- Right (_, svc1) <- boundedRead (busOutbound bus) -- Right (_, svc1) <- boundedRead (busOutbound bus)
-- Right (_, svc2) <- boundedRead (busOutbound bus) -- Right (_, svc2) <- boundedRead (busOutbound bus)
@@ -32,9 +32,11 @@ spec = pure ()
-- doorEvent :: Text -> Value -- doorEvent :: Text -> Value
-- doorEvent state = object -- doorEvent state = object
-- [ "event" .= object -- [ "event" .= object
-- [ "data" .= object -- [ "variables" .= object
-- [ "entity_id" .= ("binary_sensor.makuuhuone_ovi_contact" :: Text) -- [ "trigger" .= object
-- , "new_state" .= object ["state" .= state] -- [ "entity_id" .= ("binary_sensor.makuuhuone_ovi_contact" :: Text)
-- , "to_state" .= object ["state" .= state]
-- ]
-- ] -- ]
-- ] -- ]
-- ] -- ]
+89
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@@ -0,0 +1,89 @@
{-# LANGUAGE OverloadedStrings #-}
module Support
( Acc(..)
, interp
, runHASS
, services
, fakeRequest
, sec
, stateEvent
, buttonEvent
) where
import Control.Monad.Fix (MonadFix (..))
import Data.Aeson (Value, object, (.=))
import qualified Data.Text as T
import Data.Time (UTCTime (..), utc)
import Data.UUID (nil)
import AFRP (Mealy (..), Request (..), stepAuto)
import HomeAssistant.Controller (HASSEff (..), Service)
fakeRequest :: Request
fakeRequest = Request (sec 0) utc nil
sec :: Integer -> UTCTime
sec n = UTCTime (toEnum 0) (fromIntegral n)
-- | A pure Writer-like monad accumulating `Service` calls per step.
newtype Acc a = Acc { runAcc :: [Service] -> (a, [Service]) }
instance Functor Acc where
fmap f (Acc g) = Acc $ \s -> let (a, s') = g s in (f a, s')
instance Applicative Acc where
pure a = Acc (\s -> (a, s))
Acc f <*> Acc x = Acc $ \s -> let (f', s') = f s; (a, s'') = x s' in (f' a, s'')
instance Monad Acc where
Acc m >>= k = Acc $ \s -> let (a, s') = m s; (b, s'') = runAcc (k a) s' in (b, s'')
instance MonadFix Acc where
mfix f = Acc $ \s -> let (a, s') = runAcc (f a) s in (a, s')
-- | Interpret `HASSEff` in `Acc`: record `CallService`, drop tracing/debug.
interp :: HASSEff a -> Acc a
interp (CallService _ svc) = Acc $ \s -> ((), s ++ [svc])
interp (Debug _) = pure ()
interp (Trace _ _) = pure ()
-- | Run a HASS arrow over a list of inputs, collecting per-step emitted services.
runHASS :: Mealy HASSEff a b -> [a] -> [(b, [Service])]
runHASS m = go (runMealy m interp)
where
go _ [] = []
go w (a : as) =
case runAcc (stepAuto w fakeRequest a) [] of
((b, w'), svcs) -> (b, svcs) : go w' as
services :: [(b, [Service])] -> [[Service]]
services = map snd
-- | Build a state-trigger payload matching `entityChangeEvent'` / `entityBool'`
-- lenses. The subscribe_trigger websocket event wraps the trigger datum under
-- `event.variables.trigger`, with `entity_id` and `to_state.state` fields.
stateEvent :: T.Text -> T.Text -> Value
stateEvent entityId state = object
[ "event" .= object
[ "variables" .= object
[ "trigger" .= object
[ "entity_id" .= entityId
, "to_state" .= object [ "state" .= state ]
]
]
]
]
-- | Build an Ikea button trigger payload matching `ikeaQuickButton` lenses.
buttonEvent :: T.Text -> T.Text -> Value
buttonEvent entityId eventType = object
[ "event" .= object
[ "variables" .= object
[ "trigger" .= object
[ "entity_id" .= entityId
, "to_state" .= object
[ "attributes" .= object [ "event_type" .= eventType ] ]
]
]
]
]