| 1 | -- |
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| 2 | -- Copyright (C) 2012 Attila Gobi - http://kp.elte.hu/sizechecking |
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| 3 | -- |
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| 4 | |
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| 5 | {-# LANGUAGE ScopedTypeVariables, ExistentialQuantification, Rank2Types #-} |
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| 6 | module Examples where |
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| 7 | |
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| 8 | import Lambda |
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| 9 | import SizedExp |
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| 10 | import Constraints() |
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| 11 | import Prelude ( ($), (+), (-), Int, (==), (*), (<), (>), (<=), (>=), (/=) ) |
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| 12 | import qualified Prelude as P |
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| 13 | import qualified Control.Monad as M |
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| 14 | import qualified Data.List as List |
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| 15 | |
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| 16 | head :: (SizedExp se ) => Size se ([l] -> l) |
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| 17 | head = bind headc body |
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| 18 | where |
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| 19 | body l = match l true P.const |
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| 20 | |
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| 21 | tail :: (SizedExp se ) => Size se ([l] -> [l]) |
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| 22 | tail = bind tailc body |
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| 23 | where body l = match l true (\_ xs -> xs) |
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| 24 | |
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| 25 | cons :: (SizedExp se) => Size se (x -> [x] -> [x]) |
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| 26 | cons = bind conss true |
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| 27 | |
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| 28 | t3 :: (SizedExp se) => Size se ( (a -> a) -> a -> a ) |
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| 29 | t3 = bind t3s body |
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| 30 | where body f x = f `app` (f `app` (f `app` x)) |
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| 31 | |
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| 32 | nil :: (SizedExp se) => Size se [x] |
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| 33 | nil = bind nils true |
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| 34 | |
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| 35 | map :: (SizedExp se) => Size se ( (a->b) -> [a] -> [b] ) |
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| 36 | map = bind smap body |
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| 37 | where body f l = match l nil |
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| 38 | ( \x xs -> cons `app` (f `app` x) `app` (map `app` f `app` xs )) |
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| 39 | |
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| 40 | heads :: (SizedExp se) => Size se ( [[a]] -> [a] ) |
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| 41 | heads = bind sheads $ \l -> map `app` head `app` l |
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| 42 | |
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| 43 | tails :: (SizedExp se) => Size se ( [[a]] -> [[a]] ) |
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| 44 | tails = bind stails $ \l -> map `app` tail `app` l |
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| 45 | |
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| 46 | append :: (SizedExp se) => Size se ([a] -> [a] -> [a]) |
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| 47 | append = bind appends body |
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| 48 | where body l1 l2 = match l1 l2 |
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| 49 | (\x xs -> cons `app` x `app` (append `app` xs `app` l2)) |
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| 50 | |
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| 51 | t27 :: (SizedExp se) => Size se ((a -> a) -> a -> a) |
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| 52 | t27 = bind (App t3s t3s) $ t3 `app` t3 |
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| 53 | |
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| 54 | t27_ :: (SizedExp se) => Size se ((a -> a) -> a -> a) |
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| 55 | t27_ = bind (App t3s t3s) $ |
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| 56 | \f -> t3 `app` t3 `app` f |
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| 57 | |
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| 58 | t27__ :: (SizedExp se) => Size se ((a -> a) -> a -> a) |
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| 59 | t27__ = bind (App t3s t3s) $ \f x -> |
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| 60 | t3 `app` t3 `app` f `app` x |
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| 61 | |
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| 62 | pam :: (SizedExp se) => Size se ([a -> b] -> a -> [b]) |
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| 63 | pam = bind (AAbs 1 2 $ Abs 3 $ List (Var 1) (Abs 4 $ App (App (Var 2) (Var 4)) (Var 3))) $ \fl x -> match fl nil |
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| 64 | (\f fs -> cons `app` (f `app` x) `app` (pam `app` fs `app` x)) |
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| 65 | |
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| 66 | reverse :: (SizedExp se) => Size se([a] -> [a]) |
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| 67 | reverse = bind reverses $ \l -> match l |
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| 68 | nil |
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| 69 | ( |
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| 70 | \x xs -> append `app` (reverse `app` xs) `app` (cons `app` x `app` nil) |
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| 71 | ) |
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| 72 | |
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| 73 | addone :: (SizedExp se) => Size se ([P.Int] -> [P.Int]) |
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| 74 | addone = bind addones $ \l -> cons `app` 1 `app` l |
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| 75 | |
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| 76 | add3 :: (SizedExp se) => Size se ([P.Int] -> [P.Int]) |
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| 77 | add3 = bind (AAbs 0 1 $ List (Op (Var 0) '+' (Num 3)) (Var 1)) $ |
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| 78 | \l -> t3 `app` addone `app` l |
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| 79 | |
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| 80 | add3_ :: (SizedExp se) => Size se ([P.Int] -> [P.Int]) |
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| 81 | add3_ = bind (AAbs 0 1 $ List (Op (Var 0) '+' (Num 3)) (Var 1)) $ |
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| 82 | t3 `app` addone |
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| 83 | |
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| 84 | t9_ :: (SizedExp se) => Size se ((a -> a) -> a -> a) |
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| 85 | t9_ = bind ( Abs 0 $ App t3s (App t3s (Var 0))) $ |
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| 86 | \f -> t3 `app` (t3 `app` f) |
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| 87 | |
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| 88 | t9 :: (SizedExp se) => Size se ((a -> a) -> a -> a) |
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| 89 | t9 = bind ( Abs 0 $ App t3s (App t3s (Var 0))) $ |
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| 90 | \f x -> t3 `app` (t3 `app` f) `app` x |
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| 91 | |
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| 92 | add27s :: L |
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| 93 | add27s = AAbs 0 1 $ List (Op (Var 0) '+' (Num 27)) (Abs 2 Unsized) |
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| 94 | add27 :: (SizedExp se) => Size se ([P.Int] -> [P.Int]) |
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| 95 | add27 = bind add27s $ \x -> t27 `app` addone `app` x |
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| 96 | |
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| 97 | |
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| 98 | zipWiths :: L |
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| 99 | zipWiths = let q = App (Var 4) $ Op (Op (Var 5) '+' (Var 3)) '-' (Var 1) in |
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| 100 | (Abs 0 $ AAbs 1 2 $ AAbs 3 4 $ List (Var 1) (Abs 5 $ App (App (Var 0) (App (Var 2) (Var 5))) q )) |
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| 101 | zipWith :: (SizedExp se) => Size se ((a2 -> a1 -> a) -> [a2] -> [a1] -> [a]) |
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| 102 | zipWith = bind zipWiths $ \f l1 l2 -> |
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| 103 | match l1 |
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| 104 | nil |
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| 105 | ( |
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| 106 | \x xs -> match l2 |
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| 107 | true |
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| 108 | ( |
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| 109 | \y ys -> cons `app` (f `app` x `app` y) `app` (zipWith `app` f `app` xs `app` ys) |
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| 110 | ) |
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| 111 | ) |
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| 112 | appAll :: (SizedExp se) => Size se ( [a -> b] -> a -> [b] ) |
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| 113 | appAll = bind (AAbs 0 1 $ Abs 2 $ List (Var 0) (Abs 3 $ Var 1 `App` Var 3 `App` Var 2 ) ) $ \fl x -> match fl |
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| 114 | nil |
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| 115 | ( |
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| 116 | \f fs -> cons `app` (f `app` x) `app` (appAll `app` fs `app` x) |
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| 117 | ) |
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| 118 | |
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| 119 | conspack :: (SizedExp se) => Size se (P.Int -> [P.Int] -> [P.Int]) |
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| 120 | conspack = bind (Abs 0 $ AAbs 1 2 $ List (Op (Var 1) '+' (Num 1)) (Abs 3 Unsized)) $ \x l -> |
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| 121 | match l (cons `app` x `app` l) |
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| 122 | (\hd tl -> iff (x == hd) ( |
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| 123 | cons `app` x `app` l |
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| 124 | ) ( |
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| 125 | cons `app` hd `app` (conspack `app` x `app` tl) |
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| 126 | ) |
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| 127 | ) |
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| 128 | |
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| 129 | cprod :: (SizedExp se) => Size se ([P.Int] -> [P.Int] -> [[P.Int]]) |
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| 130 | cprod = known (AAbs 0 1 $ AAbs 2 3 $ List (Op (Var 0) '*' (Var 2)) $ Abs 4 $ List (Num 2) $ Abs 5 Unsized) |
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| 131 | |
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| 132 | sqdiff :: SizedExp se => Size se ([Int] -> [Int] -> [[Int]]) |
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| 133 | sqdiff = bind (let sq l = Op l '*' l in AAbs 0 1 $ AAbs 2 3 $ List (sq $ Op (Var 0) '-' (Var 2)) $ Abs 4 $ List (Num 2) $ Abs 5 Unsized) $ |
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| 134 | \l1 l2 -> match l1 (cprod `app` l2 `app` l2) |
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| 135 | (\_ tl1 -> match l2 (cprod `app` l1 `app` l1) |
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| 136 | (\_ tl2 -> sqdiff `app` tl1 `app` tl2)) |
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| 137 | |
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| 138 | replace :: SizedExp se => Size se (Int -> [Int] -> [Int]) |
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| 139 | replace = bind (Abs 0 $ AAbs 1 2 $ List (Var 1) (Abs 3 Unsized)) $ |
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| 140 | \x l -> match l nil (\hd tl -> cons `app` (x+hd) `app` tl) |
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| 141 | |
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| 142 | scalarProd :: (SizedExp se0) => Size se0 ([Int] -> [Int] -> [Int]) |
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| 143 | scalarProd = bind (AAbs 0 1 $ AAbs 2 3 $ List (Num 1) (Abs 4 Unsized)) $ |
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| 144 | \l1 l2 -> match l1 ( |
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| 145 | match l2 ( cons `app` 0 `app` nil ) |
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| 146 | (\_ _ -> true) |
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| 147 | ) ( \hd1 tl1 -> |
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| 148 | match l2 true |
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| 149 | ( \hd2 tl2 -> replace `app` (hd1 * hd2) `app` (scalarProd `app` tl1 `app` tl2) ) |
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| 150 | ) |
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| 151 | |
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| 152 | mlist :: SizedExp se => Size se (a -> [a -> x] -> [x]) |
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| 153 | mlist = bind (Abs 0 $ AAbs 1 2 $ List (Var 1) (Abs 3 $ Var 2 `App` Var 3 `App` Var 0)) |
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| 154 | $ \x l -> match l nil (\f fs -> cons `app` (f `app` x) `app` (mlist `app` x `app` fs)) |
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| 155 | |
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| 156 | strange :: (SizedExp se) => Size se ([Int] -> [Int]) |
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| 157 | strange = bind (AAbs 0 1 $ List (Num 2) (Abs 2 Unsized)) $ \l1 -> |
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| 158 | let b = match l1 nil (\x1 l2 -> match l2 nil (\x2 l3 -> cons `app` x2 `app` (cons `app` x1 `app` nil))) |
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| 159 | in match b (cons `app` 0 `app` (cons `app` 0 `app` nil)) (\x xs -> b) |
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| 160 | |
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| 161 | |
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| 162 | take4 :: SizedExp se => Size se (([a] -> [a]) -> [[a]]) |
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| 163 | take4 = bind (Abs 0 $ List (Num 1) (Abs 2 (Var 0 `App` (Var 0 `App` List (Num 0) (Abs 1 Bottom))))) $ |
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| 164 | \f ->cons `app` (f `app` (f `app` nil) ) `app` nil |
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| 165 | |
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| 166 | |
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| 167 | merge :: SizedExp se => Size se ([Int] -> [Int] -> [Int]) |
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| 168 | merge = bind (AAbs 0 1 $ AAbs 2 3 $ List (Op (Var 0) '+' (Var 2)) (Abs 4 Unsized))$ |
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| 169 | \l1 l2 -> match l1 l2 ( |
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| 170 | \x xs -> match l2 l1 ( |
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| 171 | \y ys -> iff (x>y) (cons `app` x `app` (merge `app` xs `app` l2)) |
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| 172 | (cons `app` y `app` (merge `app` l1 `app` ys)) |
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| 173 | ) |
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| 174 | ) |
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| 175 | |
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| 176 | split1 :: SizedExp se => Size se ([Int] -> [Int]) |
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| 177 | split1 = bind (AAbs 0 1 $ List (Op (Op (Var 0) '+' (Num 1))'/' (Num 2)) (Abs 2 Unsized)) $ |
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| 178 | \z -> match z nil (\y ys -> cons `app` y `app` (split2 `app` ys)) |
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| 179 | |
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| 180 | split2 :: SizedExp se => Size se ([Int] -> [Int]) |
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| 181 | split2 = bind (AAbs 0 1 $ List (Op (Var 0) '/' (Num 2)) (Abs 2 Unsized)) $ |
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| 182 | \z -> match z nil (\y ys -> split1 `app` ys) |
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| 183 | |
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| 184 | ms = AAbs 0 1 $ List (Var 0) (Abs 4 Unsized) |
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| 185 | mergesort :: SizedExp se => Size se ([Int] -> [Int]) |
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| 186 | mergesort = bind ms $ |
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| 187 | \l -> match l nil (\x xs -> |
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| 188 | merge `app` (mergesort `app` (split1 `app` l)) `app` (mergesort `app` (split2 `app` l)) |
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| 189 | ) |
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| 190 | |
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| 191 | last :: SizedExp se => Size se ([a] -> a) |
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| 192 | last = bind (AAbs 0 1 $ App (Var 1) (Num 0)) $ |
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| 193 | \l -> match l true (\x xs -> match xs x (\_ _ -> last `app` xs)) |
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| 194 | |
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| 195 | charm :: SizedExp se => Size se (([a] -> [a]) -> a) |
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| 196 | charm = bind (Abs 0 $ App (AAbs 2 3 $ App (Var 3) (Num 0)) (App (Var 0) (List (Num 0) $ Abs 1 Bottom))) $ |
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| 197 | \ f -> last `app` (f `app` nil) |
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| 198 | |
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| 199 | fix :: SizedExp se => Size se ((a -> a) -> a) |
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| 200 | fix = bind (Abs 2 $ App yComb (Var 2)) $ |
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| 201 | \f -> f `app` (fix `app` f) |
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| 202 | |
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| 203 | transpose :: SizedExp se => Size se ([[a]] -> [[a]]) |
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| 204 | transpose = bind transposec $ \l -> match l true $ |
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| 205 | \l1 xss -> match l1 true $ |
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| 206 | \x xs -> cons `app` (cons `app` x `app` (heads `app` xss)) |
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| 207 | `app` (transpose `app` (cons `app` xs `app` (tails `app` xss))) |
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| 208 | transposec = AAbs 18 5 $ List len fun |
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| 209 | where |
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| 210 | len = AAbs 19 6 (Var 19) `App` (Var 5 `App` Num 0) |
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| 211 | fun = Abs 8 $ List (Var 18) (Abs 9 $ AAbs 19 6 (Var 6 `App` Var 8) `App` (Var 5 `App` Var 9)) |
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| 212 | |
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| 213 | comps = Abs 2 $ Abs 3 $ Abs 4 $ App (Var 2) (App (Var 3) (Var 4)) |
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| 214 | comp :: (SizedExp se) => Size se ( (b->c) -> (a->b) -> a->c ) |
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| 215 | comp = bind comps $ \f g x -> f `app` (g `app` x) |
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| 216 | |
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| 217 | test1s = Abs 2 $ AAbs 19 6 $ Var 2 `App` List (Var 19) (Var 6) |
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| 218 | test1 :: (SizedExp se) => Size se (([a] -> [b]) -> [a] -> [b]) |
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| 219 | test1 = bind test1s $ \f l -> match (f `app` l) nil (\x xs -> f `app` l) |
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| 220 | |
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| 221 | |
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| 222 | test2s = Abs 2 $ AAbs 18 5 $ appends `App` (Var 2 `App` List (Var 18) (Var 5)) `App` |
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| 223 | (appends `App` (Var 2 `App` List (Var 18) (Var 5)) `App` List (Var 18) (Var 5)) |
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| 224 | test2 :: (SizedExp se) => Size se (([a] -> [a]) -> [a] -> [a]) |
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| 225 | test2 = bind test2s $ \f l -> append `app` (f `app` l) `app` (append `app` (f `app` l) `app` l) |
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| 226 | |
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| 227 | data TestCase = forall a . TestCase P.String (forall se. SizedExp se => Size se a) |
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| 228 | |
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| 229 | tests :: [TestCase] |
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| 230 | tests = [ |
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| 231 | TestCase "append" append |
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| 232 | , TestCase "reverse" reverse |
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| 233 | , TestCase "heads" heads |
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| 234 | , TestCase "map" map |
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| 235 | , TestCase "pam" pam |
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| 236 | , TestCase "head" head |
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| 237 | , TestCase "tail" tail |
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| 238 | , TestCase "t3" t3 |
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| 239 | , TestCase "t9" t9 |
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| 240 | -- , TestCase "t9_" t9_ -- too few arguments in definition |
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| 241 | -- , TestCase "t27" t27 |
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| 242 | -- , TestCase "t27_" t27_ |
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| 243 | , TestCase "t27__" t27__ |
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| 244 | , TestCase "addone" addone |
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| 245 | , TestCase "add3" add3 |
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| 246 | -- , TestCase "add3_" add3_ -- too few arguments in definition |
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| 247 | , TestCase "add27" add27 |
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| 248 | , TestCase "zipWith" zipWith |
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| 249 | , TestCase "appAll" appAll |
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| 250 | , TestCase "conspack" conspack |
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| 251 | , TestCase "scalarProd" scalarProd |
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| 252 | , TestCase "sqdiff" sqdiff |
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| 253 | , TestCase "mlist" mlist |
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| 254 | , TestCase "strange" strange |
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| 255 | , TestCase "take4" take4 |
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| 256 | , TestCase "charm" charm |
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| 257 | , TestCase "comp" comp |
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| 258 | , TestCase "merge" merge |
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| 259 | , TestCase "split1" split1 |
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| 260 | , TestCase "split2" split2 |
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| 261 | , TestCase "mergesort" mergesort |
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| 262 | ] |
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| 263 | |
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| 264 | runTests = do |
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| 265 | failed <- M.forM tests $ \(TestCase name test) -> do |
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| 266 | P.print " +++++++++++++++++++++++++++++++" |
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| 267 | P.print $ " + Proving " P.++ name |
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| 268 | P.print " +++++++++++++++++++++++++++++++" |
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| 269 | |
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| 270 | s <- prove test |
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| 271 | M.return [name | P.not s] |
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| 272 | |
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| 273 | let f = P.concat failed |
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| 274 | if List.null f then |
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| 275 | P.putStrLn "All ok." |
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| 276 | else do |
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| 277 | P.putStr "\n\nFailed test cases: " |
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| 278 | P.putStrLn $ List.intercalate ", " f |
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| 279 | |
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