Day 20
This commit is contained in:
@@ -137,3 +137,10 @@ executable day19
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build-depends: base ^>=4.15.1.0, containers, MissingH
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hs-source-dirs: day19
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default-language: Haskell2010
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executable day20
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main-is: Main.hs
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other-modules: Commons Part1 Part2
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build-depends: base ^>=4.15.1.0, containers, MissingH
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hs-source-dirs: day20
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default-language: Haskell2010
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49
day20/Commons.hs
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49
day20/Commons.hs
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@@ -0,0 +1,49 @@
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{-# OPTIONS_GHC -Wno-unrecognised-pragmas #-}
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{-# HLINT ignore "Use tuple-section" #-}
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module Commons where
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import Data.List.Utils (split)
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import GHC.IO.Handle (isEOF)
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import Data.Map (Map, assocs, member, (!), fromList, empty, insert, toList, notMember)
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data Module = Broadcaster { outputs :: [String] } |
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FlipFlop { state :: Bool, outputs :: [String] } |
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Conjonction { inputs :: Map String Bool, outputs :: [String] } deriving (Show)
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type Modules = Map String Module
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parseModule :: String -> [String] -> (String, Module)
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parseModule "broadcaster" outputs = ("broadcaster", Broadcaster {outputs = outputs})
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parseModule ('%': name) outputs = (name, FlipFlop {state = False, outputs = outputs})
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parseModule ('&': name) outputs =
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(name, Conjonction {inputs = empty, outputs = outputs})
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computeInputs'' :: String -> [String] -> Modules -> Modules
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computeInputs'' _ [] modules = modules
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computeInputs'' name (h: t) modules
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| notMember h modules = computeInputs'' name t modules
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| otherwise =
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let output = modules ! h
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in case output of
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Conjonction i o -> computeInputs'' name t $ insert h Conjonction {inputs = insert name False i, outputs = o}
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modules
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_ -> computeInputs'' name t modules
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computeInputs' :: [(String, Module)] -> Modules -> Modules
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computeInputs' [] modules = modules
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computeInputs' ((name, m): t) modules = computeInputs' t $ computeInputs'' name (outputs m) modules
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computeInputs :: Modules -> Modules
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computeInputs modules = computeInputs' (toList modules) modules
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parseModules :: [(String, Module)] -> IO Modules
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parseModules otherModules = do done <- isEOF
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if done then return $ computeInputs $ fromList otherModules
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else do line <- getLine
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let (rawName: rawOutputs: _) = split " -> " line
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let cmodule = parseModule rawName $ split ", " rawOutputs
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parseModules $ otherModules ++ [cmodule]
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parse :: IO Modules
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parse = parseModules []
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12
day20/Main.hs
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12
day20/Main.hs
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@@ -0,0 +1,12 @@
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module Main where
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import Commons
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import qualified Part1
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import qualified Part2
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main = do modules <- parse
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let (part1Low, part1High) = Part1.pressButtonNTimes modules 1000
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print (part1Low * part1High)
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let part2Res = Part2.pressButtonUntilDone modules
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print $ foldl lcm 1 part2Res
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48
day20/Part1.hs
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48
day20/Part1.hs
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@@ -0,0 +1,48 @@
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module Part1 where
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import Commons
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import Data.Map (insert, foldr, (!), notMember)
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applyModule :: Modules -> Int -> Int -> String -> Bool -> String -> (String, [String], Bool, Modules, Int, Int)
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applyModule modules low high source p n
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| notMember n modules = (n, [], True, modules, low, high)
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| otherwise =
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let m = modules ! n
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in case m of
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Broadcaster o -> (n, o, p, modules, if not p then low + length o else low,
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if p then high + length o else high)
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FlipFlop s o -> if not p then let newFF = FlipFlop {state = not s, outputs = o}
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in (n, o, not s, insert n newFF modules,
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if s then low + length o else low,
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if not s then high + length o else high)
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else (n, [], s, modules, low, high)
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Conjonction i o -> let newC = Conjonction {inputs = insert source p i, outputs = o}
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state = Data.Map.foldr (&&) True $ inputs newC
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in if state then (n, o, False, insert n newC modules, low + length o, high)
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else (n, o, True, insert n newC modules, low, high + length o)
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applyModules :: Modules -> Int -> Int -> String -> Bool -> [String] -> ([(String, [String], Bool)], Modules, Int, Int)
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applyModules modules low high _ _ [] = ([], modules, low, high)
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applyModules modules low high source p (h: t) =
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let (newS, outputs, newP, newModules, newLow, newHigh) = applyModule modules low high source p h
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(result, newNewModules, newNewLow, newNewHigh) = applyModules newModules newLow newHigh source p t
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in ((newS, outputs, newP): result, newNewModules, newNewLow, newNewHigh)
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applySteps :: Modules -> Int -> Int -> [(String, [String], Bool)] -> (Modules, Int, Int)
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applySteps modules low high [] = (modules, low, high)
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applySteps modules low high ((source, names, pulse): t) =
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let (result, newModules, newLow, newHigh) = applyModules modules low high source pulse names
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in applySteps newModules newLow newHigh (t ++ result)
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pressButton :: Modules -> (Modules, Int, Int)
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pressButton modules = applySteps modules 1 0 [("button", ["broadcaster"], False)]
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pressButtonNTimes' :: Modules -> Int -> Int -> Int -> Int -> (Int, Int)
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pressButtonNTimes' modules low high i n
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| i == n = (low, high)
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| otherwise = let (newModules, newLow, newHigh) = pressButton modules
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in pressButtonNTimes' newModules (low + newLow) (high + newHigh) (i + 1) n
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pressButtonNTimes :: Modules -> Int -> (Int, Int)
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pressButtonNTimes modules = pressButtonNTimes' modules 0 0 0
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51
day20/Part2.hs
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51
day20/Part2.hs
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@@ -0,0 +1,51 @@
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module Part2 where
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import Commons
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import Data.Map (insert, foldr, (!), notMember, toList, keys)
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applyModule :: Modules -> String -> String -> Bool -> String -> (String, [String], Bool, Modules, Bool)
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applyModule modules final source p n
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| notMember n modules = (n, [], True, modules, False)
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| otherwise =
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let m = modules ! n
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partFinal = n == final && p
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in case m of
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Broadcaster o -> (n, o, p, modules, partFinal)
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FlipFlop s o -> if not p then let newFF = FlipFlop {state = not s, outputs = o}
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in (n, o, not s, insert n newFF modules, partFinal)
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else (n, [], s, modules, partFinal)
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Conjonction i o -> let newC = Conjonction {inputs = insert source p i, outputs = o}
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state = Data.Map.foldr (&&) True $ inputs newC
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in if state then (n, o, False, insert n newC modules, n == final)
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else (n, o, True, insert n newC modules, partFinal)
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applyModules :: Modules -> String -> String -> Bool -> [String] -> ([(String, [String], Bool)], Modules, Bool)
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applyModules modules _ _ _ [] = ([], modules, False)
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applyModules modules final source p (h: t) =
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let (newS, outputs, newP, newModules, done) = applyModule modules final source p h
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(result, newNewModules, newDone) = applyModules newModules final source p t
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in ((newS, outputs, newP): result, newNewModules, done || newDone)
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applySteps :: Modules -> String -> [(String, [String], Bool)] -> (Modules, Bool)
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applySteps modules _ [] = (modules, False)
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applySteps modules final ((source, names, pulse): t) =
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let (result, newModules, done) = applyModules modules final source pulse names
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(newNewModules, newDone) = applySteps newModules final (t ++ result)
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in (newNewModules, done || newDone)
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pressButton :: Modules -> String -> (Modules, Bool)
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pressButton modules final = applySteps modules final [("button", ["broadcaster"], False)]
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getFinalConjonction :: Modules -> String
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getFinalConjonction = fst . head . filter (\ (_, v) -> "rx" `elem` outputs v) . toList
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pressButtonUntilDone' :: Modules -> String -> Int -> [Int] -> [Int]
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pressButtonUntilDone' modules final i nPresses
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| length nPresses == length (inputs (modules ! final)) = nPresses
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| otherwise =
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let (newModules, done) = pressButton modules final
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in pressButtonUntilDone' newModules final (i + 1) (if done then (i + 1): nPresses else nPresses)
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pressButtonUntilDone :: Modules -> [Int]
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pressButtonUntilDone modules = pressButtonUntilDone' modules (getFinalConjonction modules) 0 []
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