Rename a DFA's and NFA's states
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@ -9,6 +9,7 @@ import qualified Data.Map.Strict as Map
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import Data.Maybe
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import qualified Data.Set as Set
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import Data.Tuple
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import qualified Rextra.Dfa as Dfa
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import qualified Rextra.Nfa as Nfa
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@ -12,11 +12,14 @@ module Rextra.Dfa (
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-- ** Executing
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, transition
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, execute
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-- ** Renaming
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, rename
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) where
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import Data.List
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import qualified Data.Map.Strict as Map
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import qualified Data.Set as Set
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import Rextra.Util
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{-
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@ -76,3 +79,25 @@ execute :: (Ord s, Ord t) => Dfa s t -> [t] -> Bool
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execute dfa tokens =
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let finalState = foldl' (transition dfa) (entryState dfa) tokens
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in accepting $ getState dfa finalState
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{-
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- Renaming
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-}
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renameState :: (Ord s, Ord t) => State s t -> Rename s (State Int t)
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renameState state = do
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newTransitions <- renameValues getName $ transitions state
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newDefaultTransition <- getName $ defaultTransition state
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pure $ State { transitions = newTransitions
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, defaultTransition = newDefaultTransition
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, accepting = accepting state
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}
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renameAssoc :: (Ord s, Ord t) => (s, State s t) -> Rename s (Int, State Int t)
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renameAssoc (name, state) = (,) <$> getName name <*> renameState state
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rename :: (Ord s, Ord t) => Dfa s t -> Dfa Int t
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rename dfa = doRename $ do
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newStateMap <- renameMap renameAssoc $ stateMap dfa
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newEntryState <- getName $ entryState dfa
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pure $ Dfa { stateMap = newStateMap, entryState = newEntryState }
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@ -1,3 +1,5 @@
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{-# LANGUAGE TupleSections #-}
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module Rextra.Nfa (
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-- * Nondeterministic Finite Automaton
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Nfa
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@ -25,6 +27,8 @@ module Rextra.Nfa (
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, entryNdState
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, accepting
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, execute
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-- ** Renaming
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, rename
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) where
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import Data.List
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@ -186,3 +190,29 @@ execute :: (Ord s, Ord t) => Nfa s t -> [t] -> Bool
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execute nfa tokens =
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let finalNdState = foldr (transition nfa) (entryNdState nfa) tokens
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in accepting nfa finalNdState
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{-
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- Renaming
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-}
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renameTransition :: (Ord s) => (TransitionCondition t, s) -> Rename s (TransitionCondition t, Int)
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renameTransition (cond, s) = (cond,) <$> getName s
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renameState :: (Ord s) => State s t -> Rename s (State Int t)
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renameState state = do
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newTransitions <- mapM renameTransition $ transitions state
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newEpsilonTransitions <- renameSet getName $ epsilonTransitions state
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pure $ State { transitions = newTransitions, epsilonTransitions = newEpsilonTransitions }
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renameAssoc :: (Ord s, Ord t) => (s, State s t) -> Rename s (Int, State Int t)
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renameAssoc (name, state) = (,) <$> getName name <*> renameState state
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rename :: (Ord s, Ord t) => Nfa s t -> Nfa Int t
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rename nfa = doRename $ do
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newStateMap <- renameMap renameAssoc $ stateMap nfa
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newEntryState <- getName $ entryState nfa
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newExitStates <- renameSet getName $ exitStates nfa
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pure $ Nfa { stateMap = newStateMap
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, entryState = newEntryState
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, exitStates = newExitStates
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}
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@ -1,5 +1,15 @@
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{-# LANGUAGE TupleSections #-}
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module Rextra.Util
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( connectedElements
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-- * Renaming
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, Rename
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, doRename
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, getName
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, renameSet
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, renameMap
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, renameKeys
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, renameValues
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) where
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import Control.Monad
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@ -17,3 +27,30 @@ explore trans node = do
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connectedElements :: (Ord n) => (n -> Set.Set n) -> Set.Set n -> Set.Set n
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connectedElements trans startingNodes =
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flip execState Set.empty . mapM (explore trans) $ Set.toList startingNodes
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type Rename n = State (Int, Map.Map n Int)
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doRename :: Rename n a -> a
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doRename rename = evalState rename (0, Map.empty)
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getName :: (Ord n) => n -> Rename n Int
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getName thing = do
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(i, names) <- get
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case names Map.!? thing of
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Just name -> pure name
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Nothing -> i <$ put (i + 1, Map.insert thing i names)
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renameSet :: (Ord v2) => (v1 -> Rename n v2) -> Set.Set v1 -> Rename n (Set.Set v2)
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renameSet renameFunc s = Set.fromList <$> (mapM renameFunc $ Set.toList s)
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renameMap :: (Ord k2)
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=> ((k1, v1) -> Rename n (k2, v2))
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-> Map.Map k1 v1
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-> Rename n (Map.Map k2 v2)
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renameMap f m = Map.fromList <$> (mapM f $ Map.assocs m)
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renameKeys :: (Ord k2) => (k1 -> Rename n k2) -> Map.Map k1 v -> Rename n (Map.Map k2 v)
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renameKeys f = renameMap (\(k, v) -> (,v) <$> f k)
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renameValues :: (Ord k) => (v1 -> Rename n v2) -> Map.Map k v1 -> Rename n (Map.Map k v2)
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renameValues f = renameMap (\(k, v) -> (k,) <$> f v)
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