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{-# OPTIONS_GHC -w #-}
{-# OPTIONS -XMagicHash -XBangPatterns -XTypeSynonymInstances -XFlexibleInstances -cpp #-}
#if __GLASGOW_HASKELL__ >= 710
{-# OPTIONS_GHC -XPartialTypeSignatures #-}
#endif
module HpcParser where
import HpcLexer
import qualified Data.Array as Happy_Data_Array
import qualified Data.Bits as Bits
import qualified GHC.Exts as Happy_GHC_Exts
import Control.Applicative(Applicative(..))
import Control.Monad (ap)
-- parser produced by Happy Version 1.19.12
newtype HappyAbsSyn = HappyAbsSyn HappyAny
#if __GLASGOW_HASKELL__ >= 607
type HappyAny = Happy_GHC_Exts.Any
#else
type HappyAny = forall a . a
#endif
newtype HappyWrap4 = HappyWrap4 (Spec)
happyIn4 :: (Spec) -> (HappyAbsSyn )
happyIn4 x = Happy_GHC_Exts.unsafeCoerce# (HappyWrap4 x)
{-# INLINE happyIn4 #-}
happyOut4 :: (HappyAbsSyn ) -> HappyWrap4
happyOut4 x = Happy_GHC_Exts.unsafeCoerce# x
{-# INLINE happyOut4 #-}
newtype HappyWrap5 = HappyWrap5 (L (ModuleName,[Tick]))
happyIn5 :: (L (ModuleName,[Tick])) -> (HappyAbsSyn )
happyIn5 x = Happy_GHC_Exts.unsafeCoerce# (HappyWrap5 x)
{-# INLINE happyIn5 #-}
happyOut5 :: (HappyAbsSyn ) -> HappyWrap5
happyOut5 x = Happy_GHC_Exts.unsafeCoerce# x
{-# INLINE happyOut5 #-}
newtype HappyWrap6 = HappyWrap6 ((ModuleName,[Tick]))
happyIn6 :: ((ModuleName,[Tick])) -> (HappyAbsSyn )
happyIn6 x = Happy_GHC_Exts.unsafeCoerce# (HappyWrap6 x)
{-# INLINE happyIn6 #-}
happyOut6 :: (HappyAbsSyn ) -> HappyWrap6
happyOut6 x = Happy_GHC_Exts.unsafeCoerce# x
{-# INLINE happyOut6 #-}
newtype HappyWrap7 = HappyWrap7 (L Tick)
happyIn7 :: (L Tick) -> (HappyAbsSyn )
happyIn7 x = Happy_GHC_Exts.unsafeCoerce# (HappyWrap7 x)
{-# INLINE happyIn7 #-}
happyOut7 :: (HappyAbsSyn ) -> HappyWrap7
happyOut7 x = Happy_GHC_Exts.unsafeCoerce# x
{-# INLINE happyOut7 #-}
newtype HappyWrap8 = HappyWrap8 (Tick)
happyIn8 :: (Tick) -> (HappyAbsSyn )
happyIn8 x = Happy_GHC_Exts.unsafeCoerce# (HappyWrap8 x)
{-# INLINE happyIn8 #-}
happyOut8 :: (HappyAbsSyn ) -> HappyWrap8
happyOut8 x = Happy_GHC_Exts.unsafeCoerce# x
{-# INLINE happyOut8 #-}
newtype HappyWrap9 = HappyWrap9 (L ExprTick)
happyIn9 :: (L ExprTick) -> (HappyAbsSyn )
happyIn9 x = Happy_GHC_Exts.unsafeCoerce# (HappyWrap9 x)
{-# INLINE happyIn9 #-}
happyOut9 :: (HappyAbsSyn ) -> HappyWrap9
happyOut9 x = Happy_GHC_Exts.unsafeCoerce# x
{-# INLINE happyOut9 #-}
newtype HappyWrap10 = HappyWrap10 (ExprTick)
happyIn10 :: (ExprTick) -> (HappyAbsSyn )
happyIn10 x = Happy_GHC_Exts.unsafeCoerce# (HappyWrap10 x)
{-# INLINE happyIn10 #-}
happyOut10 :: (HappyAbsSyn ) -> HappyWrap10
happyOut10 x = Happy_GHC_Exts.unsafeCoerce# x
{-# INLINE happyOut10 #-}
newtype HappyWrap11 = HappyWrap11 (Maybe String)
happyIn11 :: (Maybe String) -> (HappyAbsSyn )
happyIn11 x = Happy_GHC_Exts.unsafeCoerce# (HappyWrap11 x)
{-# INLINE happyIn11 #-}
happyOut11 :: (HappyAbsSyn ) -> HappyWrap11
happyOut11 x = Happy_GHC_Exts.unsafeCoerce# x
{-# INLINE happyOut11 #-}
newtype HappyWrap12 = HappyWrap12 (Maybe Qualifier)
happyIn12 :: (Maybe Qualifier) -> (HappyAbsSyn )
happyIn12 x = Happy_GHC_Exts.unsafeCoerce# (HappyWrap12 x)
{-# INLINE happyIn12 #-}
happyOut12 :: (HappyAbsSyn ) -> HappyWrap12
happyOut12 x = Happy_GHC_Exts.unsafeCoerce# x
{-# INLINE happyOut12 #-}
newtype HappyWrap13 = HappyWrap13 (Maybe String)
happyIn13 :: (Maybe String) -> (HappyAbsSyn )
happyIn13 x = Happy_GHC_Exts.unsafeCoerce# (HappyWrap13 x)
{-# INLINE happyIn13 #-}
happyOut13 :: (HappyAbsSyn ) -> HappyWrap13
happyOut13 x = Happy_GHC_Exts.unsafeCoerce# x
{-# INLINE happyOut13 #-}
happyInTok :: (Token) -> (HappyAbsSyn )
happyInTok x = Happy_GHC_Exts.unsafeCoerce# x
{-# INLINE happyInTok #-}
happyOutTok :: (HappyAbsSyn ) -> (Token)
happyOutTok x = Happy_GHC_Exts.unsafeCoerce# x
{-# INLINE happyOutTok #-}
happyExpList :: HappyAddr
happyExpList = HappyA# "\x00\x00\x00\x00\x00\x00\x00\x00\x00\x10\x00\x00\x00\x00\x00\x00\x00\x02\x00\x00\x00\x00\x00\x00\x00\x00\x40\x00\x00\x42\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x04\x00\x00\x40\x00\x00\x00\x00\x02\x00\x10\x00\x00\x00\x10\x00\x00\x00\x00\x10\x00\x00\x00\x08\x00\x00\x80\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x04\x41\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x80\x00\x00\x00\x00\x08\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x01\x02\x00\x00\x00\x01\x00\x00\x00\x00\x00\x00\x08\x00\x00\x00\x20\x00\x00\x80\x00\x00\x00\x00\x04\x00\x40\x08\x00\x00\x00\x00\x00\x00\x04\x41\x00\x00\x00\x00\x01\x00\x00\x01\x00\x00\x00\x10\x00\x00\x00\x01\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00"#
{-# NOINLINE happyExpListPerState #-}
happyExpListPerState st =
token_strs_expected
where token_strs = ["error","%dummy","%start_parser","Spec","Modules","Module","TopTicks","TopTick","Ticks","Tick","optString","optQual","optCat","MODULE","TICK","EXPRESSION","ON","LINE","POSITION","FUNCTION","INSIDE","AT","':'","'-'","';'","'{'","'}'","int","string","cat","%eof"]
bit_start = st * 31
bit_end = (st + 1) * 31
read_bit = readArrayBit happyExpList
bits = map read_bit [bit_start..bit_end - 1]
bits_indexed = zip bits [0..30]
token_strs_expected = concatMap f bits_indexed
f (False, _) = []
f (True, nr) = [token_strs !! nr]
happyActOffsets :: HappyAddr
happyActOffsets = HappyA# "\x00\x00\x00\x00\x0e\x00\xf2\xff\x11\x00\x00\x00\x04\x00\x08\x00\x00\x00\x00\x00\x06\x00\x0a\x00\x07\x00\x10\x00\x13\x00\x0b\x00\x0c\x00\x12\x00\x00\x00\x00\x00\xff\xff\x00\x00\x00\x00\x15\x00\x14\x00\x00\x00\x00\x00\xfb\xff\x16\x00\x00\x00\x0f\x00\x17\x00\x19\x00\x1a\x00\x08\x00\x00\x00\x01\x00\x1b\x00\x18\x00\x1c\x00\x1e\x00\x00\x00\x00\x00\x00\x00\x00\x00"#
happyGotoOffsets :: HappyAddr
happyGotoOffsets = HappyA# "\x05\x00\x20\x00\x0d\x00\x00\x00\x1f\x00\x00\x00\x21\x00\x25\x00\x00\x00\x00\x00\x00\x00\x00\x00\x26\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x1d\x00\x02\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x27\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x28\x00\x2e\x00\x02\x00\x29\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00"#
happyAdjustOffset :: Happy_GHC_Exts.Int# -> Happy_GHC_Exts.Int#
happyAdjustOffset off = off
happyDefActions :: HappyAddr
happyDefActions = HappyA# "\xf4\xff\x00\x00\xfc\xff\x00\x00\xfe\xff\xf5\xff\xf1\xff\xee\xff\xf2\xff\xfd\xff\x00\x00\x00\x00\xec\xff\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\xed\xff\xf9\xff\x00\x00\xf3\xff\xf0\xff\x00\x00\x00\x00\xfa\xff\xf8\xff\xf1\xff\x00\x00\xfb\xff\x00\x00\x00\x00\x00\x00\x00\x00\xee\xff\xf9\xff\x00\x00\xec\xff\x00\x00\x00\x00\x00\x00\xf6\xff\xf7\xff\xef\xff"#
happyCheck :: HappyAddr
happyCheck = HappyA# "\xff\xff\x02\x00\x07\x00\x02\x00\x12\x00\x00\x00\x04\x00\x08\x00\x06\x00\x08\x00\x05\x00\x10\x00\x04\x00\x0e\x00\x01\x00\x0e\x00\x02\x00\x09\x00\x01\x00\x06\x00\x10\x00\x05\x00\x10\x00\x0d\x00\x11\x00\x06\x00\x0f\x00\x0f\x00\x0d\x00\xff\xff\x0c\x00\x0a\x00\x03\x00\x02\x00\x0a\x00\x0f\x00\x0b\x00\x05\x00\x10\x00\x10\x00\x07\x00\x0f\x00\x0c\x00\x0f\x00\x11\x00\x08\x00\x07\x00\x09\x00\x08\x00\x03\x00\x09\x00\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff\xff"#
happyTable :: HappyAddr
happyTable = HappyA# "\x00\x00\x1c\x00\x20\x00\x1c\x00\xff\xff\x03\x00\x19\x00\x1d\x00\x1a\x00\x1d\x00\x02\x00\x09\x00\x0e\x00\x1e\x00\x04\x00\x2a\x00\x07\x00\x0f\x00\x0b\x00\x05\x00\x09\x00\x11\x00\x0c\x00\x14\x00\x13\x00\x10\x00\x18\x00\x17\x00\x24\x00\x00\x00\x16\x00\x19\x00\x14\x00\x09\x00\x28\x00\x21\x00\x22\x00\x02\x00\x1f\x00\x23\x00\x07\x00\x27\x00\x2b\x00\x2c\x00\x13\x00\x0c\x00\x07\x00\x11\x00\x25\x00\x24\x00\x28\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00"#
happyReduceArr = Happy_Data_Array.array (1, 19) [
(1 , happyReduce_1),
(2 , happyReduce_2),
(3 , happyReduce_3),
(4 , happyReduce_4),
(5 , happyReduce_5),
(6 , happyReduce_6),
(7 , happyReduce_7),
(8 , happyReduce_8),
(9 , happyReduce_9),
(10 , happyReduce_10),
(11 , happyReduce_11),
(12 , happyReduce_12),
(13 , happyReduce_13),
(14 , happyReduce_14),
(15 , happyReduce_15),
(16 , happyReduce_16),
(17 , happyReduce_17),
(18 , happyReduce_18),
(19 , happyReduce_19)
]
happy_n_terms = 19 :: Int
happy_n_nonterms = 10 :: Int
happyReduce_1 = happySpecReduce_2 0# happyReduction_1
happyReduction_1 happy_x_2
happy_x_1
= case happyOut9 happy_x_1 of { (HappyWrap9 happy_var_1) ->
case happyOut5 happy_x_2 of { (HappyWrap5 happy_var_2) ->
happyIn4
(Spec (happy_var_1 []) (happy_var_2 [])
)}}
happyReduce_2 = happySpecReduce_2 1# happyReduction_2
happyReduction_2 happy_x_2
happy_x_1
= case happyOut5 happy_x_1 of { (HappyWrap5 happy_var_1) ->
case happyOut6 happy_x_2 of { (HappyWrap6 happy_var_2) ->
happyIn5
(happy_var_1 . ((:) happy_var_2)
)}}
happyReduce_3 = happySpecReduce_0 1# happyReduction_3
happyReduction_3 = happyIn5
(id
)
happyReduce_4 = happyReduce 5# 2# happyReduction_4
happyReduction_4 (happy_x_5 `HappyStk`
happy_x_4 `HappyStk`
happy_x_3 `HappyStk`
happy_x_2 `HappyStk`
happy_x_1 `HappyStk`
happyRest)
= case happyOutTok happy_x_2 of { (STR happy_var_2) ->
case happyOut7 happy_x_4 of { (HappyWrap7 happy_var_4) ->
happyIn6
((happy_var_2,happy_var_4 [])
) `HappyStk` happyRest}}
happyReduce_5 = happySpecReduce_2 3# happyReduction_5
happyReduction_5 happy_x_2
happy_x_1
= case happyOut7 happy_x_1 of { (HappyWrap7 happy_var_1) ->
case happyOut8 happy_x_2 of { (HappyWrap8 happy_var_2) ->
happyIn7
(happy_var_1 . ((:) happy_var_2)
)}}
happyReduce_6 = happySpecReduce_0 3# happyReduction_6
happyReduction_6 = happyIn7
(id
)
happyReduce_7 = happySpecReduce_1 4# happyReduction_7
happyReduction_7 happy_x_1
= case happyOut10 happy_x_1 of { (HappyWrap10 happy_var_1) ->
happyIn8
(ExprTick happy_var_1
)}
happyReduce_8 = happyReduce 6# 4# happyReduction_8
happyReduction_8 (happy_x_6 `HappyStk`
happy_x_5 `HappyStk`
happy_x_4 `HappyStk`
happy_x_3 `HappyStk`
happy_x_2 `HappyStk`
happy_x_1 `HappyStk`
happyRest)
= case happyOutTok happy_x_3 of { (STR happy_var_3) ->
case happyOut12 happy_x_4 of { (HappyWrap12 happy_var_4) ->
case happyOut13 happy_x_5 of { (HappyWrap13 happy_var_5) ->
happyIn8
(TickFunction happy_var_3 happy_var_4 happy_var_5
) `HappyStk` happyRest}}}
happyReduce_9 = happyReduce 5# 4# happyReduction_9
happyReduction_9 (happy_x_5 `HappyStk`
happy_x_4 `HappyStk`
happy_x_3 `HappyStk`
happy_x_2 `HappyStk`
happy_x_1 `HappyStk`
happyRest)
= case happyOutTok happy_x_2 of { (STR happy_var_2) ->
case happyOut7 happy_x_4 of { (HappyWrap7 happy_var_4) ->
happyIn8
(InsideFunction happy_var_2 (happy_var_4 [])
) `HappyStk` happyRest}}
happyReduce_10 = happySpecReduce_2 5# happyReduction_10
happyReduction_10 happy_x_2
happy_x_1
= case happyOut9 happy_x_1 of { (HappyWrap9 happy_var_1) ->
case happyOut10 happy_x_2 of { (HappyWrap10 happy_var_2) ->
happyIn9
(happy_var_1 . ((:) happy_var_2)
)}}
happyReduce_11 = happySpecReduce_0 5# happyReduction_11
happyReduction_11 = happyIn9
(id
)
happyReduce_12 = happyReduce 5# 6# happyReduction_12
happyReduction_12 (happy_x_5 `HappyStk`
happy_x_4 `HappyStk`
happy_x_3 `HappyStk`
happy_x_2 `HappyStk`
happy_x_1 `HappyStk`
happyRest)
= case happyOut11 happy_x_2 of { (HappyWrap11 happy_var_2) ->
case happyOut12 happy_x_3 of { (HappyWrap12 happy_var_3) ->
case happyOut13 happy_x_4 of { (HappyWrap13 happy_var_4) ->
happyIn10
(TickExpression False happy_var_2 happy_var_3 happy_var_4
) `HappyStk` happyRest}}}
happyReduce_13 = happySpecReduce_1 7# happyReduction_13
happyReduction_13 happy_x_1
= case happyOutTok happy_x_1 of { (STR happy_var_1) ->
happyIn11
(Just happy_var_1
)}
happyReduce_14 = happySpecReduce_0 7# happyReduction_14
happyReduction_14 = happyIn11
(Nothing
)
happyReduce_15 = happySpecReduce_3 8# happyReduction_15
happyReduction_15 happy_x_3
happy_x_2
happy_x_1
= case happyOutTok happy_x_3 of { (INT happy_var_3) ->
happyIn12
(Just (OnLine happy_var_3)
)}
happyReduce_16 = happyReduce 9# 8# happyReduction_16
happyReduction_16 (happy_x_9 `HappyStk`
happy_x_8 `HappyStk`
happy_x_7 `HappyStk`
happy_x_6 `HappyStk`
happy_x_5 `HappyStk`
happy_x_4 `HappyStk`
happy_x_3 `HappyStk`
happy_x_2 `HappyStk`
happy_x_1 `HappyStk`
happyRest)
= case happyOutTok happy_x_3 of { (INT happy_var_3) ->
case happyOutTok happy_x_5 of { (INT happy_var_5) ->
case happyOutTok happy_x_7 of { (INT happy_var_7) ->
case happyOutTok happy_x_9 of { (INT happy_var_9) ->
happyIn12
(Just (AtPosition happy_var_3 happy_var_5 happy_var_7 happy_var_9)
) `HappyStk` happyRest}}}}
happyReduce_17 = happySpecReduce_0 8# happyReduction_17
happyReduction_17 = happyIn12
(Nothing
)
happyReduce_18 = happySpecReduce_1 9# happyReduction_18
happyReduction_18 happy_x_1
= case happyOutTok happy_x_1 of { (CAT happy_var_1) ->
happyIn13
(Just happy_var_1
)}
happyReduce_19 = happySpecReduce_0 9# happyReduction_19
happyReduction_19 = happyIn13
(Nothing
)
happyNewToken action sts stk [] =
happyDoAction 18# notHappyAtAll action sts stk []
happyNewToken action sts stk (tk:tks) =
let cont i = happyDoAction i tk action sts stk tks in
case tk of {
ID "module" -> cont 1#;
ID "tick" -> cont 2#;
ID "expression" -> cont 3#;
ID "on" -> cont 4#;
ID "line" -> cont 5#;
ID "position" -> cont 6#;
ID "function" -> cont 7#;
ID "inside" -> cont 8#;
ID "at" -> cont 9#;
SYM ':' -> cont 10#;
SYM '-' -> cont 11#;
SYM ';' -> cont 12#;
SYM '{' -> cont 13#;
SYM '}' -> cont 14#;
INT happy_dollar_dollar -> cont 15#;
STR happy_dollar_dollar -> cont 16#;
CAT happy_dollar_dollar -> cont 17#;
_ -> happyError' ((tk:tks), [])
}
happyError_ explist 18# tk tks = happyError' (tks, explist)
happyError_ explist _ tk tks = happyError' ((tk:tks), explist)
newtype HappyIdentity a = HappyIdentity a
happyIdentity = HappyIdentity
happyRunIdentity (HappyIdentity a) = a
instance Functor HappyIdentity where
fmap f (HappyIdentity a) = HappyIdentity (f a)
instance Applicative HappyIdentity where
pure = HappyIdentity
(<*>) = ap
instance Monad HappyIdentity where
return = pure
(HappyIdentity p) >>= q = q p
happyThen :: () => HappyIdentity a -> (a -> HappyIdentity b) -> HappyIdentity b
happyThen = (>>=)
happyReturn :: () => a -> HappyIdentity a
happyReturn = (return)
happyThen1 m k tks = (>>=) m (\a -> k a tks)
happyReturn1 :: () => a -> b -> HappyIdentity a
happyReturn1 = \a tks -> (return) a
happyError' :: () => ([(Token)], [String]) -> HappyIdentity a
happyError' = HappyIdentity . (\(tokens, _) -> happyError tokens)
parser tks = happyRunIdentity happySomeParser where
happySomeParser = happyThen (happyParse 0# tks) (\x -> happyReturn (let {(HappyWrap4 x') = happyOut4 x} in x'))
happySeq = happyDoSeq
type L a = [a] -> [a]
type ModuleName = String
data Spec
= Spec [ExprTick] [(ModuleName,[Tick])]
deriving (Show)
data ExprTick
= TickExpression Bool (Maybe String) (Maybe Qualifier) (Maybe String)
deriving (Show)
data Tick
= ExprTick ExprTick
| TickFunction String (Maybe Qualifier) (Maybe String)
| InsideFunction String [Tick]
deriving (Show)
data Qualifier = OnLine Int
| AtPosition Int Int Int Int
deriving (Show)
hpcParser :: String -> IO Spec
hpcParser filename = do
txt <- readFile filename
let tokens = initLexer txt
return $ parser tokens
happyError e = error $ show (take 10 e)
{-# LINE 1 "templates/GenericTemplate.hs" #-}
-- $Id: GenericTemplate.hs,v 1.26 2005/01/14 14:47:22 simonmar Exp $
-- Do not remove this comment. Required to fix CPP parsing when using GCC and a clang-compiled alex.
#if __GLASGOW_HASKELL__ > 706
#define LT(n,m) ((Happy_GHC_Exts.tagToEnum# (n Happy_GHC_Exts.<# m)) :: Bool)
#define GTE(n,m) ((Happy_GHC_Exts.tagToEnum# (n Happy_GHC_Exts.>=# m)) :: Bool)
#define EQ(n,m) ((Happy_GHC_Exts.tagToEnum# (n Happy_GHC_Exts.==# m)) :: Bool)
#else
#define LT(n,m) (n Happy_GHC_Exts.<# m)
#define GTE(n,m) (n Happy_GHC_Exts.>=# m)
#define EQ(n,m) (n Happy_GHC_Exts.==# m)
#endif
data Happy_IntList = HappyCons Happy_GHC_Exts.Int# Happy_IntList
infixr 9 `HappyStk`
data HappyStk a = HappyStk a (HappyStk a)
-----------------------------------------------------------------------------
-- starting the parse
happyParse start_state = happyNewToken start_state notHappyAtAll notHappyAtAll
-----------------------------------------------------------------------------
-- Accepting the parse
-- If the current token is ERROR_TOK, it means we've just accepted a partial
-- parse (a %partial parser). We must ignore the saved token on the top of
-- the stack in this case.
happyAccept 0# tk st sts (_ `HappyStk` ans `HappyStk` _) =
happyReturn1 ans
happyAccept j tk st sts (HappyStk ans _) =
(happyTcHack j (happyTcHack st)) (happyReturn1 ans)
-----------------------------------------------------------------------------
-- Arrays only: do the next action
happyDoAction i tk st
= {- nothing -}
case action of
0# -> {- nothing -}
happyFail (happyExpListPerState ((Happy_GHC_Exts.I# (st)) :: Int)) i tk st
-1# -> {- nothing -}
happyAccept i tk st
n | LT(n,(0# :: Happy_GHC_Exts.Int#)) -> {- nothing -}
(happyReduceArr Happy_Data_Array.! rule) i tk st
where rule = (Happy_GHC_Exts.I# ((Happy_GHC_Exts.negateInt# ((n Happy_GHC_Exts.+# (1# :: Happy_GHC_Exts.Int#))))))
n -> {- nothing -}
happyShift new_state i tk st
where new_state = (n Happy_GHC_Exts.-# (1# :: Happy_GHC_Exts.Int#))
where off = happyAdjustOffset (indexShortOffAddr happyActOffsets st)
off_i = (off Happy_GHC_Exts.+# i)
check = if GTE(off_i,(0# :: Happy_GHC_Exts.Int#))
then EQ(indexShortOffAddr happyCheck off_i, i)
else False
action
| check = indexShortOffAddr happyTable off_i
| otherwise = indexShortOffAddr happyDefActions st
indexShortOffAddr (HappyA# arr) off =
Happy_GHC_Exts.narrow16Int# i
where
i = Happy_GHC_Exts.word2Int# (Happy_GHC_Exts.or# (Happy_GHC_Exts.uncheckedShiftL# high 8#) low)
high = Happy_GHC_Exts.int2Word# (Happy_GHC_Exts.ord# (Happy_GHC_Exts.indexCharOffAddr# arr (off' Happy_GHC_Exts.+# 1#)))
low = Happy_GHC_Exts.int2Word# (Happy_GHC_Exts.ord# (Happy_GHC_Exts.indexCharOffAddr# arr off'))
off' = off Happy_GHC_Exts.*# 2#
{-# INLINE happyLt #-}
happyLt x y = LT(x,y)
readArrayBit arr bit =
Bits.testBit (Happy_GHC_Exts.I# (indexShortOffAddr arr ((unbox_int bit) `Happy_GHC_Exts.iShiftRA#` 4#))) (bit `mod` 16)
where unbox_int (Happy_GHC_Exts.I# x) = x
data HappyAddr = HappyA# Happy_GHC_Exts.Addr#
-----------------------------------------------------------------------------
-- HappyState data type (not arrays)
-----------------------------------------------------------------------------
-- Shifting a token
happyShift new_state 0# tk st sts stk@(x `HappyStk` _) =
let i = (case Happy_GHC_Exts.unsafeCoerce# x of { (Happy_GHC_Exts.I# (i)) -> i }) in
-- trace "shifting the error token" $
happyDoAction i tk new_state (HappyCons (st) (sts)) (stk)
happyShift new_state i tk st sts stk =
happyNewToken new_state (HappyCons (st) (sts)) ((happyInTok (tk))`HappyStk`stk)
-- happyReduce is specialised for the common cases.
happySpecReduce_0 i fn 0# tk st sts stk
= happyFail [] 0# tk st sts stk
happySpecReduce_0 nt fn j tk st@((action)) sts stk
= happyGoto nt j tk st (HappyCons (st) (sts)) (fn `HappyStk` stk)
happySpecReduce_1 i fn 0# tk st sts stk
= happyFail [] 0# tk st sts stk
happySpecReduce_1 nt fn j tk _ sts@((HappyCons (st@(action)) (_))) (v1`HappyStk`stk')
= let r = fn v1 in
happySeq r (happyGoto nt j tk st sts (r `HappyStk` stk'))
happySpecReduce_2 i fn 0# tk st sts stk
= happyFail [] 0# tk st sts stk
happySpecReduce_2 nt fn j tk _ (HappyCons (_) (sts@((HappyCons (st@(action)) (_))))) (v1`HappyStk`v2`HappyStk`stk')
= let r = fn v1 v2 in
happySeq r (happyGoto nt j tk st sts (r `HappyStk` stk'))
happySpecReduce_3 i fn 0# tk st sts stk
= happyFail [] 0# tk st sts stk
happySpecReduce_3 nt fn j tk _ (HappyCons (_) ((HappyCons (_) (sts@((HappyCons (st@(action)) (_))))))) (v1`HappyStk`v2`HappyStk`v3`HappyStk`stk')
= let r = fn v1 v2 v3 in
happySeq r (happyGoto nt j tk st sts (r `HappyStk` stk'))
happyReduce k i fn 0# tk st sts stk
= happyFail [] 0# tk st sts stk
happyReduce k nt fn j tk st sts stk
= case happyDrop (k Happy_GHC_Exts.-# (1# :: Happy_GHC_Exts.Int#)) sts of
sts1@((HappyCons (st1@(action)) (_))) ->
let r = fn stk in -- it doesn't hurt to always seq here...
happyDoSeq r (happyGoto nt j tk st1 sts1 r)
happyMonadReduce k nt fn 0# tk st sts stk
= happyFail [] 0# tk st sts stk
happyMonadReduce k nt fn j tk st sts stk =
case happyDrop k (HappyCons (st) (sts)) of
sts1@((HappyCons (st1@(action)) (_))) ->
let drop_stk = happyDropStk k stk in
happyThen1 (fn stk tk) (\r -> happyGoto nt j tk st1 sts1 (r `HappyStk` drop_stk))
happyMonad2Reduce k nt fn 0# tk st sts stk
= happyFail [] 0# tk st sts stk
happyMonad2Reduce k nt fn j tk st sts stk =
case happyDrop k (HappyCons (st) (sts)) of
sts1@((HappyCons (st1@(action)) (_))) ->
let drop_stk = happyDropStk k stk
off = happyAdjustOffset (indexShortOffAddr happyGotoOffsets st1)
off_i = (off Happy_GHC_Exts.+# nt)
new_state = indexShortOffAddr happyTable off_i
in
happyThen1 (fn stk tk) (\r -> happyNewToken new_state sts1 (r `HappyStk` drop_stk))
happyDrop 0# l = l
happyDrop n (HappyCons (_) (t)) = happyDrop (n Happy_GHC_Exts.-# (1# :: Happy_GHC_Exts.Int#)) t
happyDropStk 0# l = l
happyDropStk n (x `HappyStk` xs) = happyDropStk (n Happy_GHC_Exts.-# (1#::Happy_GHC_Exts.Int#)) xs
-----------------------------------------------------------------------------
-- Moving to a new state after a reduction
happyGoto nt j tk st =
{- nothing -}
happyDoAction j tk new_state
where off = happyAdjustOffset (indexShortOffAddr happyGotoOffsets st)
off_i = (off Happy_GHC_Exts.+# nt)
new_state = indexShortOffAddr happyTable off_i
-----------------------------------------------------------------------------
-- Error recovery (ERROR_TOK is the error token)
-- parse error if we are in recovery and we fail again
happyFail explist 0# tk old_st _ stk@(x `HappyStk` _) =
let i = (case Happy_GHC_Exts.unsafeCoerce# x of { (Happy_GHC_Exts.I# (i)) -> i }) in
-- trace "failing" $
happyError_ explist i tk
{- We don't need state discarding for our restricted implementation of
"error". In fact, it can cause some bogus parses, so I've disabled it
for now --SDM
-- discard a state
happyFail ERROR_TOK tk old_st CONS(HAPPYSTATE(action),sts)
(saved_tok `HappyStk` _ `HappyStk` stk) =
-- trace ("discarding state, depth " ++ show (length stk)) $
DO_ACTION(action,ERROR_TOK,tk,sts,(saved_tok`HappyStk`stk))
-}
-- Enter error recovery: generate an error token,
-- save the old token and carry on.
happyFail explist i tk (action) sts stk =
-- trace "entering error recovery" $
happyDoAction 0# tk action sts ((Happy_GHC_Exts.unsafeCoerce# (Happy_GHC_Exts.I# (i))) `HappyStk` stk)
-- Internal happy errors:
notHappyAtAll :: a
notHappyAtAll = error "Internal Happy error\n"
-----------------------------------------------------------------------------
-- Hack to get the typechecker to accept our action functions
happyTcHack :: Happy_GHC_Exts.Int# -> a -> a
happyTcHack x y = y
{-# INLINE happyTcHack #-}
-----------------------------------------------------------------------------
-- Seq-ing. If the --strict flag is given, then Happy emits
-- happySeq = happyDoSeq
-- otherwise it emits
-- happySeq = happyDontSeq
happyDoSeq, happyDontSeq :: a -> b -> b
happyDoSeq a b = a `seq` b
happyDontSeq a b = b
-----------------------------------------------------------------------------
-- Don't inline any functions from the template. GHC has a nasty habit
-- of deciding to inline happyGoto everywhere, which increases the size of
-- the generated parser quite a bit.
{-# NOINLINE happyDoAction #-}
{-# NOINLINE happyTable #-}
{-# NOINLINE happyCheck #-}
{-# NOINLINE happyActOffsets #-}
{-# NOINLINE happyGotoOffsets #-}
{-# NOINLINE happyDefActions #-}
{-# NOINLINE happyShift #-}
{-# NOINLINE happySpecReduce_0 #-}
{-# NOINLINE happySpecReduce_1 #-}
{-# NOINLINE happySpecReduce_2 #-}
{-# NOINLINE happySpecReduce_3 #-}
{-# NOINLINE happyReduce #-}
{-# NOINLINE happyMonadReduce #-}
{-# NOINLINE happyGoto #-}
{-# NOINLINE happyFail #-}
-- end of Happy Template.
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