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3717942589 | |||
b8e2743103 | |||
25bfe139e8 | |||
f2beb86d8a | |||
5024a2be4c | |||
fccee3e61c |
21
README.md
21
README.md
@ -11,12 +11,11 @@ tricu is the word for "tree" in Lojban: `(x1) is a tree of species/cultivar (x2)
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## Features
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- Tree Calculus operator: `t`
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- Assignments: `x = t t`
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- Immutable definitions
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- Lambda abstraction syntax: `id = (\a : a)`
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- Immutable definitions: `x = t t`
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- Lambda abstraction: `id = (a : a)`
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- List, Number, and String literals: `[(2) ("Hello")]`
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- Function application: `not (not false)`
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- Higher order/first-class functions: `map (\a : append a "!") [("Hello")]`
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- Higher order/first-class functions: `map (a : append a "!") [("Hello")]`
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- Intensionality blurs the distinction between functions and data (see REPL examples)
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- Simple module system for code organization
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@ -24,15 +23,15 @@ tricu is the word for "tree" in Lojban: `(x1) is a tree of species/cultivar (x2)
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```
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tricu < -- Anything after `--` on a single line is a comment
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tricu < id = (\a : a) -- Lambda abstraction is eliminated to tree calculus terms
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tricu < head (map (\i : append i " world!") [("Hello, ")])
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tricu < id = (a : a) -- Lambda abstraction is eliminated to tree calculus terms
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tricu < head (map (i : append i " world!") [("Hello, ")])
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tricu > "Hello, world!"
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tricu < id (head (map (\i : append i " world!") [("Hello, ")]))
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tricu < id (head (map (i : append i " world!") [("Hello, ")]))
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tricu > "Hello, world!"
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tricu < -- Intensionality! We can inspect the structure of a function or data.
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tricu < triage = (\a b c : t (t a b) c)
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tricu < test = triage "Leaf" (\z : "Stem") (\a b : "Fork")
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tricu < triage = (a b c : t (t a b) c)
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tricu < test = triage "Leaf" (z : "Stem") (a b : "Fork")
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tricu < test (t t)
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tricu > "Stem"
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tricu < -- We can even convert a term back to source code (/demos/toSource.tri)
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@ -55,9 +54,7 @@ tricu < !version -- Print tricu version
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## Installation and Use
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[Releases are available for Linux.](https://git.eversole.co/James/tricu/releases)
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Or you can easily build and run this project using [Nix](https://nixos.org/download/).
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You can easily build and run this project using [Nix](https://nixos.org/download/).
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- Quick Start (REPL):
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- `nix run git+https://git.eversole.co/James/tricu`
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|
@ -11,20 +11,17 @@ demo_true = t t
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not_TC? = t (t (t t) (t t t)) (t t (t t t))
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-- /demos/toSource.tri contains an explanation of `triage`
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demo_triage = \a b c : t (t a b) c
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demo_matchBool = (\ot of : demo_triage
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of
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(\_ : ot)
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(\_ _ : ot)
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)
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demo_triage = a b c : t (t a b) c
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demo_matchBool = a b : demo_triage b (_ : a) (_ _ : a)
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-- Lambda representation of the Boolean `not` function
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not_Lambda? = demo_matchBool demo_false demo_true
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-- Since tricu eliminates Lambda terms to SKI combinators, the tree form of many
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-- As tricu eliminates Lambda terms to SKI combinators, the tree form of many
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-- functions defined via Lambda terms are larger than the most efficient TC
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-- representation. Between different languages that evaluate to tree calculus
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-- terms, the exact implementation of Lambda elimination may differ and lead
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-- to different tree representations even if they share extensional behavior.
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-- representation possible. Between different languages that evaluate to tree
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-- calculus terms, the exact implementation of Lambda elimination may differ
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-- and lead to different trees even if they share extensional behavior.
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-- Let's see if these are the same:
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lambdaEqualsTC = equal? not_TC? not_Lambda?
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@ -18,47 +18,47 @@ main = exampleTwo
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-- / / \
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-- 4 5 6
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label = \node : head node
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label = node : head node
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left = (\node : if (emptyList? node)
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[]
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(if (emptyList? (tail node))
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[]
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left = node : (if (emptyList? node)
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[]
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(if (emptyList? (tail node))
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[]
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(head (tail node))))
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right = (\node : if (emptyList? node)
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[]
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(if (emptyList? (tail node))
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[]
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(if (emptyList? (tail (tail node)))
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[]
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right = node : (if (emptyList? node)
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[]
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(if (emptyList? (tail node))
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[]
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(if (emptyList? (tail (tail node)))
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[]
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(head (tail (tail node))))))
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processLevel = y (\self queue : if (emptyList? queue)
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[]
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(pair (map label queue) (self (filter
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(\node : not? (emptyList? node))
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processLevel = y (self queue : if (emptyList? queue)
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[]
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(pair (map label queue) (self (filter
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(node : not? (emptyList? node))
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(append (map left queue) (map right queue))))))
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levelOrderTraversal_ = \a : processLevel (t a t)
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levelOrderTraversal_ = a : processLevel (t a t)
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toLineString = y (\self levels : if (emptyList? levels)
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""
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(append
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(append (map (\x : append x " ") (head levels)) "")
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toLineString = y (self levels : if (emptyList? levels)
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""
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(append
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(append (map (x : append x " ") (head levels)) "")
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(if (emptyList? (tail levels)) "" (append (t (t 10 t) t) (self (tail levels))))))
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levelOrderToString = \s : toLineString (levelOrderTraversal_ s)
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levelOrderToString = s : toLineString (levelOrderTraversal_ s)
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flatten = foldl (\acc x : append acc x) ""
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flatten = foldl (acc x : append acc x) ""
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levelOrderTraversal = \s : append (t 10 t) (flatten (levelOrderToString s))
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levelOrderTraversal = s : append (t 10 t) (flatten (levelOrderToString s))
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exampleOne = levelOrderTraversal [("1")
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[("2") [("4") t t] t]
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exampleOne = levelOrderTraversal [("1")
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[("2") [("4") t t] t]
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[("3") [("5") t t] [("6") t t]]]
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||||
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||||
exampleTwo = levelOrderTraversal [("1")
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[("2") [("4") [("8") t t] [("9") t t]]
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[("6") [("10") t t] [("12") t t]]]
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exampleTwo = levelOrderTraversal [("1")
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[("2") [("4") [("8") t t] [("9") t t]]
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[("6") [("10") t t] [("12") t t]]]
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||||
[("3") [("5") [("11") t t] t] [("7") t t]]]
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||||
|
37
demos/patternMatching.tri
Normal file
37
demos/patternMatching.tri
Normal file
@ -0,0 +1,37 @@
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!import "../lib/patterns.tri" !Local
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||||
-- We can do conditional pattern matching by providing a list of lists, where
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-- each sublist contains a boolean expression and a function to return if said
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-- boolean expression evaluates to true.
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||||
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value = 42
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main = match value [[(equal? "Hello") (_ : ", world!")] [(equal? 42) (_ : "The answer.")]]
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||||
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||||
-- < main
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-- > "The answer."
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||||
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||||
matchExample = (x : match x
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[[(equal? 1) (_ : "one")]
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[(equal? 2) (_ : "two")]
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||||
[(equal? 3) (_ : "three")]
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||||
[(equal? 4) (_ : "four")]
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||||
[(equal? 5) (_ : "five")]
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||||
[(equal? 6) (_ : "six")]
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||||
[(equal? 7) (_ : "seven")]
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[(equal? 8) (_ : "eight")]
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[(equal? 9) (_ : "nine")]
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[(equal? 10) (_ : "ten")]
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[ otherwise (_ : "I ran out of fingers!")]])
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||||
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||||
-- < matchExample 3
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-- > "three"
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||||
-- < matchExample 5
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||||
-- > "five"
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||||
-- < matchExample 9
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||||
-- > "nine"
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||||
-- < matchExample 11
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||||
-- > "I ran out of fingers!"
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-- < matchExample "three"
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-- > "I ran out of fingers!"
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-- < matchExample [("hello") ("world")]
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-- > "I ran out of fingers!"
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@ -3,11 +3,9 @@
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||||
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||||
main = size size
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||||
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||||
size = (\x :
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(y (\self x :
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compose succ
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||||
(triage
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(\x : x)
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||||
self
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||||
(\x y : compose (self x) (self y))
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||||
x)) x 0))
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||||
size = x : y (self x : compose succ (triage
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id
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self
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||||
(x y : compose (self x) (self y))
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||||
x)
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||||
) x 0
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||||
|
@ -18,25 +18,25 @@ main = toSource not?
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sourceLeaf = t (head "t")
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||||
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||||
-- Stem case
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||||
sourceStem = (\convert : (\a rest :
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||||
sourceStem = convert : (a rest :
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||||
t (head "(") -- Start with a left parenthesis "(".
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||||
(t (head "t") -- Add a "t"
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||||
(t (head " ") -- Add a space.
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||||
(convert a -- Recursively convert the argument.
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||||
(t (head ")") rest)))))) -- Close with ")" and append the rest.
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(t (head ")") rest))))) -- Close with ")" and append the rest.
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||||
-- Fork case
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||||
sourceFork = (\convert : (\a b rest :
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||||
sourceFork = convert : (a b rest :
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||||
t (head "(") -- Start with a left parenthesis "(".
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||||
(t (head "t") -- Add a "t"
|
||||
(t (head " ") -- Add a space.
|
||||
(convert a -- Recursively convert the first arg.
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||||
(t (head " ") -- Add another space.
|
||||
(convert b -- Recursively convert the second arg.
|
||||
(t (head ")") rest)))))))) -- Close with ")" and append the rest.
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||||
(t (head ")") rest))))))) -- Close with ")" and append the rest.
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||||
|
||||
-- Wrapper around triage
|
||||
toSource_ = y (\self arg :
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||||
toSource_ = y (self arg :
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||||
triage
|
||||
sourceLeaf -- `triage` "a" case, Leaf
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||||
(sourceStem self) -- `triage` "b" case, Stem
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||||
@ -44,7 +44,7 @@ toSource_ = y (\self arg :
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||||
arg) -- The term to be inspected
|
||||
|
||||
-- toSource takes a single TC term and returns a String
|
||||
toSource = \v : toSource_ v ""
|
||||
toSource = v : toSource_ v ""
|
||||
|
||||
exampleOne = toSource true -- OUT: "(t t)"
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||||
exampleTwo = toSource not? -- OUT: "(t (t (t t) (t t t)) (t t (t t t)))"
|
||||
|
85
flake.nix
85
flake.nix
@ -2,57 +2,46 @@
|
||||
description = "tricu";
|
||||
|
||||
inputs = {
|
||||
nixpkgs = {
|
||||
url = "https://github.com/nh2/nixpkgs/archive/ede5282c487a1fd2de64303ba59adad6726f1225.tar.gz";
|
||||
type = "tarball";
|
||||
flake = false;
|
||||
};
|
||||
static-haskell-nix = {
|
||||
url = "github:nh2/static-haskell-nix";
|
||||
flake = false;
|
||||
};
|
||||
nixpkgs.url = "github:NixOS/nixpkgs";
|
||||
flake-utils.url = "github:numtide/flake-utils";
|
||||
};
|
||||
|
||||
outputs = { self, nixpkgs, static-haskell-nix }:
|
||||
let
|
||||
system = "x86_64-linux";
|
||||
compiler = "ghc948";
|
||||
packageName = "tricu";
|
||||
outputs = { self, nixpkgs, flake-utils }:
|
||||
flake-utils.lib.eachDefaultSystem (system:
|
||||
let
|
||||
pkgs = nixpkgs.legacyPackages.${system};
|
||||
packageName = "tricu";
|
||||
containerPackageName = "${packageName}-container";
|
||||
|
||||
overlay = self: super: {
|
||||
haskell = super.haskell // {
|
||||
packages = super.haskell.packages // {
|
||||
${compiler} = super.haskell.packages.${compiler}.override {
|
||||
overrides = final: prev: {
|
||||
${packageName} = prev.callCabal2nix packageName ./. {};
|
||||
};
|
||||
};
|
||||
};
|
||||
customGHC = pkgs.haskellPackages.ghcWithPackages (hpkgs: with hpkgs; [
|
||||
megaparsec
|
||||
]);
|
||||
|
||||
haskellPackages = pkgs.haskellPackages;
|
||||
|
||||
enableSharedExecutables = false;
|
||||
enableSharedLibraries = false;
|
||||
|
||||
tricu = pkgs.haskell.lib.justStaticExecutables self.packages.${system}.default;
|
||||
in {
|
||||
|
||||
packages.${packageName} =
|
||||
haskellPackages.callCabal2nix packageName self rec {};
|
||||
|
||||
packages.default = self.packages.${system}.${packageName};
|
||||
defaultPackage = self.packages.${system}.default;
|
||||
|
||||
devShells.default = pkgs.mkShell {
|
||||
buildInputs = with pkgs; [
|
||||
haskellPackages.cabal-install
|
||||
haskellPackages.ghc-events
|
||||
haskellPackages.ghcid
|
||||
customGHC
|
||||
upx
|
||||
];
|
||||
inputsFrom = builtins.attrValues self.packages.${system};
|
||||
};
|
||||
};
|
||||
devShell = self.devShells.${system}.default;
|
||||
|
||||
overlays = [overlay];
|
||||
|
||||
normalPkgs = import nixpkgs { inherit overlays system; };
|
||||
|
||||
survey = import "${static-haskell-nix}/survey" { inherit compiler normalPkgs; };
|
||||
|
||||
tricuStatic = survey.haskellPackages.${packageName};
|
||||
|
||||
in {
|
||||
packages.${system}.default = tricuStatic;
|
||||
|
||||
devShells.default = normalPkgs.mkShell {
|
||||
buildInputs = with normalPkgs; [
|
||||
normalPkgs.haskellPackages.cabal-install
|
||||
normalPkgs.haskellPackages.ghc-events
|
||||
normalPkgs.haskellPackages.ghcid
|
||||
normalPkgs.upx
|
||||
];
|
||||
inputsFrom = builtins.attrValues self.packages.${system};
|
||||
};
|
||||
|
||||
devShell = self.devShells.${system}.default;
|
||||
};
|
||||
});
|
||||
}
|
||||
|
||||
|
64
lib/base.tri
64
lib/base.tri
@ -1,74 +1,74 @@
|
||||
false = t
|
||||
_ = t
|
||||
true = t t
|
||||
id = \a : a
|
||||
const = \a b : a
|
||||
id = a : a
|
||||
const = a b : a
|
||||
pair = t
|
||||
if = \cond then else : t (t else (t t then)) t cond
|
||||
if = cond then else : t (t else (t t then)) t cond
|
||||
|
||||
y = ((\mut wait fun : wait mut (\x : fun (wait mut x)))
|
||||
(\x : x x)
|
||||
(\a0 a1 a2 : t (t a0) (t t a2) a1))
|
||||
y = ((mut wait fun : wait mut (x : fun (wait mut x)))
|
||||
(x : x x)
|
||||
(a0 a1 a2 : t (t a0) (t t a2) a1))
|
||||
|
||||
compose = \f g x : f (g x)
|
||||
compose = f g x : f (g x)
|
||||
|
||||
triage = \leaf stem fork : t (t leaf stem) fork
|
||||
test = triage "Leaf" (\_ : "Stem") (\_ _ : "Fork")
|
||||
triage = leaf stem fork : t (t leaf stem) fork
|
||||
test = triage "Leaf" (_ : "Stem") (_ _ : "Fork")
|
||||
|
||||
matchBool = (\ot of : triage
|
||||
matchBool = (ot of : triage
|
||||
of
|
||||
(\_ : ot)
|
||||
(\_ _ : ot)
|
||||
(_ : ot)
|
||||
(_ _ : ot)
|
||||
)
|
||||
|
||||
lAnd = (triage
|
||||
(\_ : false)
|
||||
(\_ x : x)
|
||||
(\_ _ x : x))
|
||||
(_ : false)
|
||||
(_ x : x)
|
||||
(_ _ x : x))
|
||||
|
||||
lOr = (triage
|
||||
(\x : x)
|
||||
(\_ _ : true)
|
||||
(\_ _ _ : true))
|
||||
(x : x)
|
||||
(_ _ : true)
|
||||
(_ _ _ : true))
|
||||
|
||||
matchPair = \a : triage _ _ a
|
||||
matchPair = a : triage _ _ a
|
||||
|
||||
not? = matchBool false true
|
||||
and? = matchBool id (\_ : false)
|
||||
and? = matchBool id (_ : false)
|
||||
|
||||
or? = (\x z :
|
||||
or? = (x z :
|
||||
matchBool
|
||||
(matchBool true true z)
|
||||
(matchBool true false z)
|
||||
x)
|
||||
|
||||
xor? = (\x z :
|
||||
xor? = (x z :
|
||||
matchBool
|
||||
(matchBool false true z)
|
||||
(matchBool true false z)
|
||||
x)
|
||||
|
||||
equal? = y (\self : triage
|
||||
equal? = y (self : triage
|
||||
(triage
|
||||
true
|
||||
(\_ : false)
|
||||
(\_ _ : false))
|
||||
(\ax :
|
||||
(_ : false)
|
||||
(_ _ : false))
|
||||
(ax :
|
||||
triage
|
||||
false
|
||||
(self ax)
|
||||
(\_ _ : false))
|
||||
(\ax ay :
|
||||
(_ _ : false))
|
||||
(ax ay :
|
||||
triage
|
||||
false
|
||||
(\_ : false)
|
||||
(\bx by : lAnd (self ax bx) (self ay by))))
|
||||
(_ : false)
|
||||
(bx by : lAnd (self ax bx) (self ay by))))
|
||||
|
||||
succ = y (\self :
|
||||
succ = y (self :
|
||||
triage
|
||||
1
|
||||
t
|
||||
(triage
|
||||
(t (t t))
|
||||
(\_ tail : t t (self tail))
|
||||
(_ tail : t t (self tail))
|
||||
t))
|
||||
|
74
lib/list.tri
74
lib/list.tri
@ -1,68 +1,70 @@
|
||||
!import "base.tri" !Local
|
||||
|
||||
matchList = \a b : triage a _ b
|
||||
_ = t
|
||||
|
||||
emptyList? = matchList true (\_ _ : false)
|
||||
head = matchList t (\head _ : head)
|
||||
tail = matchList t (\_ tail : tail)
|
||||
matchList = a b : triage a _ b
|
||||
|
||||
append = y (\self : matchList
|
||||
(\k : k)
|
||||
(\h r k : pair h (self r k)))
|
||||
emptyList? = matchList true (_ _ : false)
|
||||
head = matchList t (head _ : head)
|
||||
tail = matchList t (_ tail : tail)
|
||||
|
||||
lExist? = y (\self x : matchList
|
||||
append = y (self : matchList
|
||||
(k : k)
|
||||
(h r k : pair h (self r k)))
|
||||
|
||||
lExist? = y (self x : matchList
|
||||
false
|
||||
(\h z : or? (equal? x h) (self x z)))
|
||||
(h z : or? (equal? x h) (self x z)))
|
||||
|
||||
map_ = y (\self :
|
||||
map_ = y (self :
|
||||
matchList
|
||||
(\_ : t)
|
||||
(\head tail f : pair (f head) (self tail f)))
|
||||
map = \f l : map_ l f
|
||||
(_ : t)
|
||||
(head tail f : pair (f head) (self tail f)))
|
||||
map = f l : map_ l f
|
||||
|
||||
filter_ = y (\self : matchList
|
||||
(\_ : t)
|
||||
(\head tail f : matchBool (t head) id (f head) (self tail f)))
|
||||
filter = \f l : filter_ l f
|
||||
filter_ = y (self : matchList
|
||||
(_ : t)
|
||||
(head tail f : matchBool (t head) id (f head) (self tail f)))
|
||||
filter = f l : filter_ l f
|
||||
|
||||
foldl_ = y (\self f l x : matchList (\acc : acc) (\head tail acc : self f tail (f acc head)) l x)
|
||||
foldl = \f x l : foldl_ f l x
|
||||
foldl_ = y (self f l x : matchList (acc : acc) (head tail acc : self f tail (f acc head)) l x)
|
||||
foldl = f x l : foldl_ f l x
|
||||
|
||||
foldr_ = y (\self x f l : matchList x (\head tail : f (self x f tail) head) l)
|
||||
foldr = \f x l : foldr_ x f l
|
||||
foldr_ = y (self x f l : matchList x (head tail : f (self x f tail) head) l)
|
||||
foldr = f x l : foldr_ x f l
|
||||
|
||||
length = y (\self : matchList
|
||||
length = y (self : matchList
|
||||
0
|
||||
(\_ tail : succ (self tail)))
|
||||
(_ tail : succ (self tail)))
|
||||
|
||||
reverse = y (\self : matchList
|
||||
reverse = y (self : matchList
|
||||
t
|
||||
(\head tail : append (self tail) (pair head t)))
|
||||
(head tail : append (self tail) (pair head t)))
|
||||
|
||||
snoc = y (\self x : matchList
|
||||
snoc = y (self x : matchList
|
||||
(pair x t)
|
||||
(\h z : pair h (self x z)))
|
||||
(h z : pair h (self x z)))
|
||||
|
||||
count = y (\self x : matchList
|
||||
count = y (self x : matchList
|
||||
0
|
||||
(\h z : matchBool
|
||||
(h z : matchBool
|
||||
(succ (self x z))
|
||||
(self x z)
|
||||
(equal? x h)))
|
||||
|
||||
last = y (\self : matchList
|
||||
last = y (self : matchList
|
||||
t
|
||||
(\hd tl : matchBool
|
||||
(hd tl : matchBool
|
||||
hd
|
||||
(self tl)
|
||||
(emptyList? tl)))
|
||||
|
||||
all? = y (\self pred : matchList
|
||||
all? = y (self pred : matchList
|
||||
true
|
||||
(\h z : and? (pred h) (self pred z)))
|
||||
(h z : and? (pred h) (self pred z)))
|
||||
|
||||
any? = y (\self pred : matchList
|
||||
any? = y (self pred : matchList
|
||||
false
|
||||
(\h z : or? (pred h) (self pred z)))
|
||||
(h z : or? (pred h) (self pred z)))
|
||||
|
||||
intersect = \xs ys : filter (\x : lExist? x ys) xs
|
||||
intersect = xs ys : filter (x : lExist? x ys) xs
|
||||
|
@ -1,36 +1,24 @@
|
||||
!import "list.tri" !Local
|
||||
!import "base.tri" !Local
|
||||
!import "list.tri" List
|
||||
|
||||
match_ = y (\self value patterns :
|
||||
match_ = y (self value patterns :
|
||||
triage
|
||||
t
|
||||
(\_ : t)
|
||||
(\pattern rest :
|
||||
(_ : t)
|
||||
(pattern rest :
|
||||
triage
|
||||
t
|
||||
(\_ : t)
|
||||
(\test result :
|
||||
(_ : t)
|
||||
(test result :
|
||||
if (test value)
|
||||
(result value)
|
||||
(self value rest))
|
||||
pattern)
|
||||
patterns)
|
||||
|
||||
match = (\value patterns :
|
||||
match_ value (map (\sublist :
|
||||
pair (head sublist) (head (tail sublist)))
|
||||
match = (value patterns :
|
||||
match_ value (List.map (sublist :
|
||||
pair (List.head sublist) (List.head (List.tail sublist)))
|
||||
patterns))
|
||||
|
||||
otherwise = const (t t)
|
||||
|
||||
matchExample = (\x : match x
|
||||
[[(equal? 1) (\_ : "one")]
|
||||
[(equal? 2) (\_ : "two")]
|
||||
[(equal? 3) (\_ : "three")]
|
||||
[(equal? 4) (\_ : "four")]
|
||||
[(equal? 5) (\_ : "five")]
|
||||
[(equal? 6) (\_ : "six")]
|
||||
[(equal? 7) (\_ : "seven")]
|
||||
[(equal? 8) (\_ : "eight")]
|
||||
[(equal? 9) (\_ : "nine")]
|
||||
[(equal? 10) (\_ : "ten")]
|
||||
[ otherwise (\_ : "I ran out of fingers!")]])
|
||||
|
88
src/Eval.hs
88
src/Eval.hs
@ -62,27 +62,39 @@ evalAST env term
|
||||
elimLambda :: TricuAST -> TricuAST
|
||||
elimLambda = go
|
||||
where
|
||||
-- η-reduction
|
||||
go (SLambda [v] (SApp f (SVar x)))
|
||||
| v == x && not (isFree v f) = elimLambda f
|
||||
-- Triage optimization
|
||||
go (SLambda [a] (SLambda [b] (SLambda [c] body)))
|
||||
| body == triageBody = _TRIAGE
|
||||
where
|
||||
triageBody =
|
||||
SApp (SApp TLeaf (SApp (SApp TLeaf (SVar a)) (SVar b))) (SVar c)
|
||||
-- Composition optimization
|
||||
go (SLambda [f] (SLambda [g] (SLambda [x] body)))
|
||||
| body == SApp (SVar f) (SApp (SVar g) (SVar x)) = _B
|
||||
-- General elimination
|
||||
go (SLambda [v] (SList xs))
|
||||
= elimLambda (SLambda [v] (foldr wrapTLeaf TLeaf xs))
|
||||
where wrapTLeaf m r = SApp (SApp TLeaf m) r
|
||||
go (SLambda (v:vs) body)
|
||||
| null vs = toSKI v (elimLambda body)
|
||||
| otherwise = elimLambda (SLambda [v] (SLambda vs body))
|
||||
go (SApp f g) = SApp (elimLambda f) (elimLambda g)
|
||||
go x = x
|
||||
go term
|
||||
| etaReduction term = elimLambda $ etaReduceResult term
|
||||
| triagePattern term = _TRI
|
||||
| composePattern term = _B
|
||||
| lambdaList term = elimLambda $ lambdaListResult term
|
||||
| nestedLambda term = nestedLambdaResult term
|
||||
| application term = applicationResult term
|
||||
| otherwise = term
|
||||
|
||||
etaReduction (SLambda [v] (SApp f (SVar x))) = v == x && not (isFree v f)
|
||||
etaReduction _ = False
|
||||
etaReduceResult (SLambda [_] (SApp f _)) = f
|
||||
|
||||
triagePattern (SLambda [a] (SLambda [b] (SLambda [c] body))) = body == triageBody a b c
|
||||
triagePattern _ = False
|
||||
|
||||
composePattern (SLambda [f] (SLambda [g] (SLambda [x] body))) = body == composeBody f g x
|
||||
composePattern _ = False
|
||||
|
||||
lambdaList (SLambda [_] (SList _)) = True
|
||||
lambdaList _ = False
|
||||
lambdaListResult (SLambda [v] (SList xs)) = SLambda [v] (foldr wrapTLeaf TLeaf xs)
|
||||
wrapTLeaf m r = SApp (SApp TLeaf m) r
|
||||
|
||||
nestedLambda (SLambda (_:_) _) = True
|
||||
nestedLambda _ = False
|
||||
nestedLambdaResult (SLambda (v:vs) body)
|
||||
| null vs = toSKI v (elimLambda body)
|
||||
| otherwise = elimLambda (SLambda [v] (SLambda vs body))
|
||||
|
||||
application (SApp _ _) = True
|
||||
application _ = False
|
||||
applicationResult (SApp f g) = SApp (elimLambda f) (elimLambda g)
|
||||
|
||||
toSKI x (SVar y)
|
||||
| x == y = _I
|
||||
@ -90,30 +102,38 @@ elimLambda = go
|
||||
toSKI x t@(SApp n u)
|
||||
| not (isFree x t) = SApp _K t
|
||||
| otherwise = SApp (SApp _S (toSKI x n)) (toSKI x u)
|
||||
toSKI x (SList xs)
|
||||
| not (isFree x (SList xs)) = SApp _K (SList xs)
|
||||
| otherwise = SList (map (toSKI x) xs)
|
||||
toSKI x t
|
||||
| not (isFree x t) = SApp _K t
|
||||
| otherwise = errorWithoutStackTrace "Unhandled toSKI conversion"
|
||||
|
||||
_S = parseSingle "t (t (t t t)) t"
|
||||
_K = parseSingle "t t"
|
||||
_I = parseSingle "t (t (t t)) t"
|
||||
_B = parseSingle "t (t (t t (t (t (t t t)) t))) (t t)"
|
||||
_TRIAGE = parseSingle "t (t (t t (t (t (t t t))))) t"
|
||||
-- Combinators and special forms
|
||||
_S = parseSingle "t (t (t t t)) t"
|
||||
_K = parseSingle "t t"
|
||||
_I = parseSingle "t (t (t t)) t"
|
||||
_B = parseSingle "t (t (t t (t (t (t t t)) t))) (t t)"
|
||||
_TRI = parseSingle "t (t (t t (t (t (t t t))))) t"
|
||||
|
||||
-- Pattern bodies
|
||||
triageBody a b c = SApp (SApp TLeaf (SApp (SApp TLeaf (SVar a)) (SVar b))) (SVar c)
|
||||
composeBody f g x = SApp (SVar f) (SApp (SVar g) (SVar x))
|
||||
|
||||
isFree :: String -> TricuAST -> Bool
|
||||
isFree x = Set.member x . freeVars
|
||||
|
||||
freeVars :: TricuAST -> Set.Set String
|
||||
freeVars (SVar v ) = Set.singleton v
|
||||
freeVars (SInt _ ) = Set.empty
|
||||
freeVars (SStr _ ) = Set.empty
|
||||
freeVars (SList s ) = foldMap freeVars s
|
||||
freeVars (SLambda v b ) = foldr Set.delete (freeVars b) v
|
||||
freeVars (SApp f a ) = freeVars f <> freeVars a
|
||||
freeVars TLeaf = Set.empty
|
||||
freeVars (TFork l r ) = freeVars l <> freeVars r
|
||||
freeVars (SDef _ _ b) = freeVars b
|
||||
freeVars (TStem t ) = freeVars t
|
||||
freeVars (TFork l r ) = freeVars l <> freeVars r
|
||||
freeVars (SLambda v b ) = foldr Set.delete (freeVars b) v
|
||||
freeVars (SInt _ ) = Set.empty
|
||||
freeVars (SStr _ ) = Set.empty
|
||||
freeVars TLeaf = Set.empty
|
||||
freeVars _ = Set.empty
|
||||
|
||||
reorderDefs :: Env -> [TricuAST] -> [TricuAST]
|
||||
@ -131,7 +151,7 @@ reorderDefs env defs
|
||||
graph = buildDepGraph defsOnly
|
||||
sortedDefs = sortDeps graph
|
||||
defMap = Map.fromList [(name, def) | def@(SDef name _ _) <- defsOnly]
|
||||
orderedDefs = map (\name -> defMap Map.! name) sortedDefs
|
||||
orderedDefs = map (defMap Map.!) sortedDefs
|
||||
|
||||
freeVarsDefs = foldMap snd defsWithFreeVars
|
||||
freeVarsOthers = foldMap freeVars others
|
||||
@ -139,8 +159,8 @@ reorderDefs env defs
|
||||
validNames = Set.fromList defNames `Set.union` Set.fromList (Map.keys env)
|
||||
missingDeps = Set.toList (allFreeVars `Set.difference` validNames)
|
||||
|
||||
isDef (SDef _ _ _) = True
|
||||
isDef _ = False
|
||||
isDef SDef {} = True
|
||||
isDef _ = False
|
||||
|
||||
buildDepGraph :: [TricuAST] -> Map.Map String (Set.Set String)
|
||||
buildDepGraph topDefs
|
||||
|
23
src/Lexer.hs
23
src/Lexer.hs
@ -41,7 +41,6 @@ tricuLexer = do
|
||||
, try stringLiteral
|
||||
, assign
|
||||
, colon
|
||||
, backslash
|
||||
, openParen
|
||||
, closeParen
|
||||
, openBracket
|
||||
@ -94,9 +93,6 @@ assign = char '=' $> LAssign
|
||||
colon :: Lexer LToken
|
||||
colon = char ':' $> LColon
|
||||
|
||||
backslash :: Lexer LToken
|
||||
backslash = char '\\' $> LBackslash
|
||||
|
||||
openParen :: Lexer LToken
|
||||
openParen = char '(' $> LOpenParen
|
||||
|
||||
@ -126,7 +122,22 @@ integerLiteral = do
|
||||
stringLiteral :: Lexer LToken
|
||||
stringLiteral = do
|
||||
char '"'
|
||||
content <- many (noneOf ['"'])
|
||||
char '"' --"
|
||||
content <- manyTill Lexer.charLiteral (char '"')
|
||||
return (LStringLiteral content)
|
||||
|
||||
charLiteral :: Lexer Char
|
||||
charLiteral = escapedChar <|> normalChar
|
||||
where
|
||||
normalChar = noneOf ['"', '\\']
|
||||
escapedChar = do
|
||||
void $ char '\\'
|
||||
c <- oneOf ['n', 't', 'r', 'f', 'b', '\\', '"', '\'']
|
||||
return $ case c of
|
||||
'n' -> '\n'
|
||||
't' -> '\t'
|
||||
'r' -> '\r'
|
||||
'f' -> '\f'
|
||||
'b' -> '\b'
|
||||
'\\' -> '\\'
|
||||
'"' -> '"'
|
||||
'\'' -> '\''
|
||||
|
53
src/Main.hs
53
src/Main.hs
@ -63,18 +63,17 @@ main = do
|
||||
case args of
|
||||
Repl -> do
|
||||
putStrLn "Welcome to the tricu REPL"
|
||||
putStrLn "You can exit with `CTRL+D` or the `!exit` command.`"
|
||||
putStrLn "You may exit with `CTRL+D` or the `!exit` command."
|
||||
putStrLn "Try typing `!` with tab completion for more commands."
|
||||
repl Map.empty
|
||||
Evaluate { file = filePaths, form = form } -> do
|
||||
result <- case filePaths of
|
||||
[] -> do
|
||||
t <- getContents
|
||||
pure $ runTricu t
|
||||
[] -> runTricuT <$> getContents
|
||||
(filePath:restFilePaths) -> do
|
||||
initialEnv <- evaluateFile filePath
|
||||
finalEnv <- foldM evaluateFileWithContext initialEnv restFilePaths
|
||||
pure $ mainResult finalEnv
|
||||
let fRes = formatResult form result
|
||||
let fRes = formatT form result
|
||||
putStr fRes
|
||||
TDecode { file = filePaths } -> do
|
||||
value <- case filePaths of
|
||||
@ -82,8 +81,48 @@ main = do
|
||||
(filePath:_) -> readFile filePath
|
||||
putStrLn $ decodeResult $ result $ evalTricu Map.empty $ parseTricu value
|
||||
|
||||
runTricu :: String -> T
|
||||
runTricu input =
|
||||
-- Simple interfaces
|
||||
|
||||
runTricu :: String -> String
|
||||
runTricu = formatT TreeCalculus . runTricuT
|
||||
|
||||
runTricuT :: String -> T
|
||||
runTricuT input =
|
||||
let asts = parseTricu input
|
||||
finalEnv = evalTricu Map.empty asts
|
||||
in result finalEnv
|
||||
|
||||
runTricuEnv :: Env -> String -> String
|
||||
runTricuEnv env = formatT TreeCalculus . runTricuTEnv env
|
||||
|
||||
runTricuTEnv :: Env -> String -> T
|
||||
runTricuTEnv env input =
|
||||
let asts = parseTricu input
|
||||
finalEnv = evalTricu env asts
|
||||
in result finalEnv
|
||||
|
||||
runTricuWithEnvT :: String -> (Env, T)
|
||||
runTricuWithEnvT input =
|
||||
let asts = parseTricu input
|
||||
finalEnv = evalTricu Map.empty asts
|
||||
in (finalEnv, result finalEnv)
|
||||
|
||||
runTricuWithEnv :: String -> (Env, String)
|
||||
runTricuWithEnv input =
|
||||
let asts = parseTricu input
|
||||
finalEnv = evalTricu Map.empty asts
|
||||
res = result finalEnv
|
||||
in (finalEnv, formatT TreeCalculus res)
|
||||
|
||||
runTricuEnvWithEnvT :: Env -> String -> (Env, T)
|
||||
runTricuEnvWithEnvT env input =
|
||||
let asts = parseTricu input
|
||||
finalEnv = evalTricu env asts
|
||||
in (finalEnv, result finalEnv)
|
||||
|
||||
runTricuEnvWithEnv :: Env -> String -> (Env, String)
|
||||
runTricuEnvWithEnv env input =
|
||||
let asts = parseTricu input
|
||||
finalEnv = evalTricu env asts
|
||||
res = result finalEnv
|
||||
in (finalEnv, formatT TreeCalculus res)
|
@ -130,7 +130,6 @@ parseFunctionM = do
|
||||
parseLambdaM :: ParserM TricuAST
|
||||
parseLambdaM = do
|
||||
let ident = (\case LIdentifier _ -> True; _ -> False)
|
||||
_ <- satisfyM (== LBackslash)
|
||||
params <- some (satisfyM ident)
|
||||
_ <- satisfyM (== LColon)
|
||||
scnParserM
|
||||
@ -145,11 +144,11 @@ parseLambdaExpressionM = choice
|
||||
|
||||
parseAtomicLambdaM :: ParserM TricuAST
|
||||
parseAtomicLambdaM = choice
|
||||
[ parseVarM
|
||||
[ try parseLambdaM
|
||||
, parseVarM
|
||||
, parseTreeLeafM
|
||||
, parseLiteralM
|
||||
, parseListLiteralM
|
||||
, try parseLambdaM
|
||||
, between (satisfyM (== LOpenParen)) (satisfyM (== LCloseParen)) parseLambdaExpressionM
|
||||
]
|
||||
|
||||
@ -205,7 +204,8 @@ parseTreeLeafOrParenthesizedM = choice
|
||||
|
||||
parseAtomicM :: ParserM TricuAST
|
||||
parseAtomicM = choice
|
||||
[ parseVarM
|
||||
[ try parseLambdaM
|
||||
, parseVarM
|
||||
, parseTreeLeafM
|
||||
, parseListLiteralM
|
||||
, parseGroupedM
|
||||
|
21
src/REPL.hs
21
src/REPL.hs
@ -6,23 +6,22 @@ import Lexer
|
||||
import Parser
|
||||
import Research
|
||||
|
||||
import Control.Exception (IOException, SomeException, catch, displayException)
|
||||
import Control.Exception (IOException, SomeException, catch
|
||||
, displayException)
|
||||
import Control.Monad (forM_)
|
||||
import Control.Monad.IO.Class (liftIO)
|
||||
import Control.Monad.Catch (handle, MonadCatch)
|
||||
import Control.Monad.IO.Class (liftIO)
|
||||
import Control.Monad.Trans.Class (lift)
|
||||
import Control.Monad.Trans.Maybe (MaybeT(..), runMaybeT)
|
||||
import Data.Char (isSpace, isUpper)
|
||||
import Data.List ( dropWhile
|
||||
, dropWhileEnd
|
||||
, isPrefixOf)
|
||||
import System.Console.Haskeline
|
||||
import Paths_tricu (version)
|
||||
import Data.List (dropWhile, dropWhileEnd, isPrefixOf)
|
||||
import Data.Version (showVersion)
|
||||
import qualified Data.Text as T
|
||||
import qualified Data.Text.IO as T
|
||||
import Paths_tricu (version)
|
||||
import System.Console.Haskeline
|
||||
|
||||
import qualified Data.Map as Map
|
||||
import qualified Data.Text as T
|
||||
import qualified Data.Text.IO as T
|
||||
|
||||
repl :: Env -> IO ()
|
||||
repl env = runInputT settings (withInterrupt (loop env Decode))
|
||||
@ -153,7 +152,7 @@ repl env = runInputT settings (withInterrupt (loop env Decode))
|
||||
newEnv = evalTricu env asts
|
||||
case Map.lookup "!result" newEnv of
|
||||
Just r -> do
|
||||
putStrLn $ "tricu > " ++ formatResult form r
|
||||
putStrLn $ "tricu > " ++ formatT form r
|
||||
Nothing -> pure ()
|
||||
return newEnv
|
||||
|
||||
@ -183,7 +182,7 @@ repl env = runInputT settings (withInterrupt (loop env Decode))
|
||||
liftIO $ writeFile filepath ""
|
||||
outputStrLn "File created..."
|
||||
forM_ definitions $ \(name, value) -> do
|
||||
let content = name ++ " = " ++ formatResult TreeCalculus value ++ "\n"
|
||||
let content = name ++ " = " ++ formatT TreeCalculus value ++ "\n"
|
||||
outputStrLn $ "Writing definition: " ++ name ++ " with length " ++ show (length content)
|
||||
liftIO $ appendFile filepath content
|
||||
outputStrLn $ "Saved " ++ show (length definitions) ++ " definitions to " ++ p
|
||||
|
@ -15,7 +15,7 @@ data T = Leaf | Stem T | Fork T T
|
||||
-- Abstract Syntax Tree for tricu
|
||||
data TricuAST
|
||||
= SVar String
|
||||
| SInt Int
|
||||
| SInt Integer
|
||||
| SStr String
|
||||
| SList [TricuAST]
|
||||
| SDef String [String] TricuAST
|
||||
@ -33,12 +33,11 @@ data LToken
|
||||
= LKeywordT
|
||||
| LIdentifier String
|
||||
| LNamespace String
|
||||
| LIntegerLiteral Int
|
||||
| LIntegerLiteral Integer
|
||||
| LStringLiteral String
|
||||
| LAssign
|
||||
| LColon
|
||||
| LDot
|
||||
| LBackslash
|
||||
| LOpenParen
|
||||
| LCloseParen
|
||||
| LOpenBracket
|
||||
@ -85,9 +84,9 @@ _not = Fork (Fork _true (Fork Leaf _false)) Leaf
|
||||
|
||||
-- Marshalling
|
||||
ofString :: String -> T
|
||||
ofString str = ofList $ map (ofNumber . fromEnum) str
|
||||
ofString str = ofList $ map (ofNumber . toInteger . fromEnum) str
|
||||
|
||||
ofNumber :: Int -> T
|
||||
ofNumber :: Integer -> T
|
||||
ofNumber 0 = Leaf
|
||||
ofNumber n =
|
||||
Fork
|
||||
@ -97,7 +96,7 @@ ofNumber n =
|
||||
ofList :: [T] -> T
|
||||
ofList = foldr Fork Leaf
|
||||
|
||||
toNumber :: T -> Either String Int
|
||||
toNumber :: T -> Either String Integer
|
||||
toNumber Leaf = Right 0
|
||||
toNumber (Fork Leaf rest) = case toNumber rest of
|
||||
Right n -> Right (2 * n)
|
||||
@ -109,7 +108,7 @@ toNumber _ = Left "Invalid Tree Calculus number"
|
||||
|
||||
toString :: T -> Either String String
|
||||
toString tc = case toList tc of
|
||||
Right list -> traverse (fmap toEnum . toNumber) list
|
||||
Right list -> traverse (fmap (toEnum . fromInteger) . toNumber) list
|
||||
Left err -> Left "Invalid Tree Calculus string"
|
||||
|
||||
toList :: T -> Either String [T]
|
||||
@ -120,13 +119,13 @@ toList (Fork x rest) = case toList rest of
|
||||
toList _ = Left "Invalid Tree Calculus list"
|
||||
|
||||
-- Outputs
|
||||
formatResult :: EvaluatedForm -> T -> String
|
||||
formatResult TreeCalculus = toSimpleT . show
|
||||
formatResult FSL = show
|
||||
formatResult AST = show . toAST
|
||||
formatResult Ternary = toTernaryString
|
||||
formatResult Ascii = toAscii
|
||||
formatResult Decode = decodeResult
|
||||
formatT :: EvaluatedForm -> T -> String
|
||||
formatT TreeCalculus = toSimpleT . show
|
||||
formatT FSL = show
|
||||
formatT AST = show . toAST
|
||||
formatT Ternary = toTernaryString
|
||||
formatT Ascii = toAscii
|
||||
formatT Decode = decodeResult
|
||||
|
||||
toSimpleT :: String -> String
|
||||
toSimpleT s = T.unpack
|
||||
@ -167,7 +166,7 @@ decodeResult tc =
|
||||
(_, _, Right n) -> show n
|
||||
(_, Right xs@(_:_), _) -> "[" ++ intercalate ", " (map decodeResult xs) ++ "]"
|
||||
(_, Right [], _) -> "[]"
|
||||
_ -> formatResult TreeCalculus tc
|
||||
_ -> formatT TreeCalculus tc
|
||||
where
|
||||
isCommonChar c =
|
||||
let n = fromEnum c
|
||||
|
121
test/Spec.hs
121
test/Spec.hs
@ -21,8 +21,8 @@ import qualified Data.Set as Set
|
||||
main :: IO ()
|
||||
main = defaultMain tests
|
||||
|
||||
runTricu :: String -> String
|
||||
runTricu s = show $ result (evalTricu Map.empty $ parseTricu s)
|
||||
tricuTestString :: String -> String
|
||||
tricuTestString s = show $ result (evalTricu Map.empty $ parseTricu s)
|
||||
|
||||
tests :: TestTree
|
||||
tests = testGroup "Tricu Tests"
|
||||
@ -51,7 +51,22 @@ lexer = testGroup "Lexer Tests"
|
||||
|
||||
, testCase "Lex escaped characters in strings" $ do
|
||||
let input = "\"hello\\nworld\""
|
||||
expect = Right [LStringLiteral "hello\\nworld"]
|
||||
expect = Right [LStringLiteral "hello\nworld"]
|
||||
runParser tricuLexer "" input @?= expect
|
||||
|
||||
, testCase "Lex multiple escaped characters in strings" $ do
|
||||
let input = "\"tab:\\t newline:\\n quote:\\\" backslash:\\\\\""
|
||||
expect = Right [LStringLiteral "tab:\t newline:\n quote:\" backslash:\\"]
|
||||
runParser tricuLexer "" input @?= expect
|
||||
|
||||
, testCase "Lex escaped characters in string literals" $ do
|
||||
let input = "x = \"line1\\nline2\\tindented\""
|
||||
expect = Right [LIdentifier "x", LAssign, LStringLiteral "line1\nline2\tindented"]
|
||||
runParser tricuLexer "" input @?= expect
|
||||
|
||||
, testCase "Lex empty string with escape sequence" $ do
|
||||
let input = "\"\\\"\""
|
||||
expect = Right [LStringLiteral "\""]
|
||||
runParser tricuLexer "" input @?= expect
|
||||
|
||||
, testCase "Lex mixed literals" $ do
|
||||
@ -87,7 +102,7 @@ parser = testGroup "Parser Tests"
|
||||
Right _ -> assertFailure "Expected failure when trying to assign the value of T"
|
||||
|
||||
, testCase "Parse function definitions" $ do
|
||||
let input = "x = (\\a b c : a)"
|
||||
let input = "x = (a b c : a)"
|
||||
expect = SDef "x" [] (SLambda ["a"] (SLambda ["b"] (SLambda ["c"] (SVar "a"))))
|
||||
parseSingle input @?= expect
|
||||
|
||||
@ -107,7 +122,7 @@ parser = testGroup "Parser Tests"
|
||||
parseSingle input @?= expect
|
||||
|
||||
, testCase "Parse function with applications" $ do
|
||||
let input = "f = (\\x : t x)"
|
||||
let input = "f = (x : t x)"
|
||||
expect = SDef "f" [] (SLambda ["x"] (SApp TLeaf (SVar "x")))
|
||||
parseSingle input @?= expect
|
||||
|
||||
@ -149,22 +164,22 @@ parser = testGroup "Parser Tests"
|
||||
parseSingle input @?= expect
|
||||
|
||||
, testCase "Parse nested parentheses in function body" $ do
|
||||
let input = "f = (\\x : t (t (t t)))"
|
||||
let input = "f = (x : t (t (t t)))"
|
||||
expect = SDef "f" [] (SLambda ["x"] (SApp TLeaf (SApp TLeaf (SApp TLeaf TLeaf))))
|
||||
parseSingle input @?= expect
|
||||
|
||||
, testCase "Parse lambda abstractions" $ do
|
||||
let input = "(\\a : a)"
|
||||
let input = "(a : a)"
|
||||
expect = (SLambda ["a"] (SVar "a"))
|
||||
parseSingle input @?= expect
|
||||
|
||||
, testCase "Parse multiple arguments to lambda abstractions" $ do
|
||||
let input = "x = (\\a b : a)"
|
||||
let input = "x = (a b : a)"
|
||||
expect = SDef "x" [] (SLambda ["a"] (SLambda ["b"] (SVar "a")))
|
||||
parseSingle input @?= expect
|
||||
|
||||
, testCase "Grouping T terms with parentheses in function application" $ do
|
||||
let input = "x = (\\a : a)\nx (t)"
|
||||
let input = "x = (a : a)\nx (t)"
|
||||
expect = [SDef "x" [] (SLambda ["a"] (SVar "a")),SApp (SVar "x") TLeaf]
|
||||
parseTricu input @?= expect
|
||||
|
||||
@ -251,7 +266,7 @@ simpleEvaluation = testGroup "Evaluation Tests"
|
||||
, testCase "Immutable definitions" $ do
|
||||
let input = "x = t t\nx = t\nx"
|
||||
env = evalTricu Map.empty (parseTricu input)
|
||||
result <- try (evaluate (runTricu input)) :: IO (Either SomeException String)
|
||||
result <- try (evaluate (tricuTestString input)) :: IO (Either SomeException String)
|
||||
case result of
|
||||
Left _ -> return ()
|
||||
Right _ -> assertFailure "Expected evaluation error"
|
||||
@ -259,7 +274,7 @@ simpleEvaluation = testGroup "Evaluation Tests"
|
||||
|
||||
, testCase "Apply identity to Boolean Not" $ do
|
||||
let not = "(t (t (t t) (t t t)) t)"
|
||||
let input = "x = (\\a : a)\nx " ++ not
|
||||
let input = "x = (a : a)\nx " ++ not
|
||||
env = evalTricu Map.empty (parseTricu input)
|
||||
result env @?= Fork (Fork (Stem Leaf) (Fork Leaf Leaf)) Leaf
|
||||
]
|
||||
@ -267,85 +282,85 @@ simpleEvaluation = testGroup "Evaluation Tests"
|
||||
lambdas :: TestTree
|
||||
lambdas = testGroup "Lambda Evaluation Tests"
|
||||
[ testCase "Lambda Identity Function" $ do
|
||||
let input = "id = (\\x : x)\nid t"
|
||||
runTricu input @?= "Leaf"
|
||||
let input = "id = (x : x)\nid t"
|
||||
tricuTestString input @?= "Leaf"
|
||||
|
||||
, testCase "Lambda Constant Function (K combinator)" $ do
|
||||
let input = "k = (\\x y : x)\nk t (t t)"
|
||||
runTricu input @?= "Leaf"
|
||||
let input = "k = (x y : x)\nk t (t t)"
|
||||
tricuTestString input @?= "Leaf"
|
||||
|
||||
, testCase "Lambda Application with Variable" $ do
|
||||
let input = "id = (\\x : x)\nval = t t\nid val"
|
||||
runTricu input @?= "Stem Leaf"
|
||||
let input = "id = (x : x)\nval = t t\nid val"
|
||||
tricuTestString input @?= "Stem Leaf"
|
||||
|
||||
, testCase "Lambda Application with Multiple Arguments" $ do
|
||||
let input = "apply = (\\f x y : f x y)\nk = (\\a b : a)\napply k t (t t)"
|
||||
runTricu input @?= "Leaf"
|
||||
let input = "apply = (f x y : f x y)\nk = (a b : a)\napply k t (t t)"
|
||||
tricuTestString input @?= "Leaf"
|
||||
|
||||
, testCase "Nested Lambda Application" $ do
|
||||
let input = "apply = (\\f x y : f x y)\nid = (\\x : x)\napply (\\f x : f x) id t"
|
||||
runTricu input @?= "Leaf"
|
||||
let input = "apply = (f x y : f x y)\nid = (x : x)\napply (f x : f x) id t"
|
||||
tricuTestString input @?= "Leaf"
|
||||
|
||||
, testCase "Lambda with a complex body" $ do
|
||||
let input = "f = (\\x : t (t x))\nf t"
|
||||
runTricu input @?= "Stem (Stem Leaf)"
|
||||
let input = "f = (x : t (t x))\nf t"
|
||||
tricuTestString input @?= "Stem (Stem Leaf)"
|
||||
|
||||
, testCase "Lambda returning a function" $ do
|
||||
let input = "f = (\\x : (\\y : x))\ng = f t\ng (t t)"
|
||||
runTricu input @?= "Leaf"
|
||||
let input = "f = (x : (y : x))\ng = f t\ng (t t)"
|
||||
tricuTestString input @?= "Leaf"
|
||||
|
||||
, testCase "Lambda with Shadowing" $ do
|
||||
let input = "f = (\\x : (\\x : x))\nf t (t t)"
|
||||
runTricu input @?= "Stem Leaf"
|
||||
let input = "f = (x : (x : x))\nf t (t t)"
|
||||
tricuTestString input @?= "Stem Leaf"
|
||||
|
||||
, testCase "Lambda returning another lambda" $ do
|
||||
let input = "k = (\\x : (\\y : x))\nk_app = k t\nk_app (t t)"
|
||||
runTricu input @?= "Leaf"
|
||||
let input = "k = (x : (y : x))\nk_app = k t\nk_app (t t)"
|
||||
tricuTestString input @?= "Leaf"
|
||||
|
||||
, testCase "Lambda with free variables" $ do
|
||||
let input = "y = t t\nf = (\\x : y)\nf t"
|
||||
runTricu input @?= "Stem Leaf"
|
||||
let input = "y = t t\nf = (x : y)\nf t"
|
||||
tricuTestString input @?= "Stem Leaf"
|
||||
|
||||
, testCase "SKI Composition" $ do
|
||||
let input = "s = (\\x y z : x z (y z))\nk = (\\x y : x)\ni = (\\x : x)\ncomp = s k i\ncomp t (t t)"
|
||||
runTricu input @?= "Stem (Stem Leaf)"
|
||||
let input = "s = (x y z : x z (y z))\nk = (x y : x)\ni = (x : x)\ncomp = s k i\ncomp t (t t)"
|
||||
tricuTestString input @?= "Stem (Stem Leaf)"
|
||||
|
||||
, testCase "Lambda with multiple parameters and application" $ do
|
||||
let input = "f = (\\a b c : t a b c)\nf t (t t) (t t t)"
|
||||
runTricu input @?= "Stem Leaf"
|
||||
let input = "f = (a b c : t a b c)\nf t (t t) (t t t)"
|
||||
tricuTestString input @?= "Stem Leaf"
|
||||
|
||||
, testCase "Lambda with nested application in the body" $ do
|
||||
let input = "f = (\\x : t (t (t x)))\nf t"
|
||||
runTricu input @?= "Stem (Stem (Stem Leaf))"
|
||||
let input = "f = (x : t (t (t x)))\nf t"
|
||||
tricuTestString input @?= "Stem (Stem (Stem Leaf))"
|
||||
|
||||
, testCase "Lambda returning a function and applying it" $ do
|
||||
let input = "f = (\\x : (\\y : t x y))\ng = f t\ng (t t)"
|
||||
runTricu input @?= "Fork Leaf (Stem Leaf)"
|
||||
let input = "f = (x : (y : t x y))\ng = f t\ng (t t)"
|
||||
tricuTestString input @?= "Fork Leaf (Stem Leaf)"
|
||||
|
||||
, testCase "Lambda applying a variable" $ do
|
||||
let input = "id = (\\x : x)\na = t t\nid a"
|
||||
runTricu input @?= "Stem Leaf"
|
||||
let input = "id = (x : x)\na = t t\nid a"
|
||||
tricuTestString input @?= "Stem Leaf"
|
||||
|
||||
, testCase "Nested lambda abstractions in the same expression" $ do
|
||||
let input = "f = (\\x : (\\y : x y))\ng = (\\z : z)\nf g t"
|
||||
runTricu input @?= "Leaf"
|
||||
let input = "f = (x : (y : x y))\ng = (z : z)\nf g t"
|
||||
tricuTestString input @?= "Leaf"
|
||||
|
||||
, testCase "Lambda applied to string literal" $ do
|
||||
let input = "f = (\\x : x)\nf \"hello\""
|
||||
runTricu input @?= "Fork (Fork Leaf (Fork Leaf (Fork Leaf (Fork (Stem Leaf) (Fork Leaf (Fork (Stem Leaf) (Fork (Stem Leaf) Leaf))))))) (Fork (Fork (Stem Leaf) (Fork Leaf (Fork (Stem Leaf) (Fork Leaf (Fork Leaf (Fork (Stem Leaf) (Fork (Stem Leaf) Leaf))))))) (Fork (Fork Leaf (Fork Leaf (Fork (Stem Leaf) (Fork (Stem Leaf) (Fork Leaf (Fork (Stem Leaf) (Fork (Stem Leaf) Leaf))))))) (Fork (Fork Leaf (Fork Leaf (Fork (Stem Leaf) (Fork (Stem Leaf) (Fork Leaf (Fork (Stem Leaf) (Fork (Stem Leaf) Leaf))))))) (Fork (Fork (Stem Leaf) (Fork (Stem Leaf) (Fork (Stem Leaf) (Fork (Stem Leaf) (Fork Leaf (Fork (Stem Leaf) (Fork (Stem Leaf) Leaf))))))) Leaf))))"
|
||||
let input = "f = (x : x)\nf \"hello\""
|
||||
tricuTestString input @?= "Fork (Fork Leaf (Fork Leaf (Fork Leaf (Fork (Stem Leaf) (Fork Leaf (Fork (Stem Leaf) (Fork (Stem Leaf) Leaf))))))) (Fork (Fork (Stem Leaf) (Fork Leaf (Fork (Stem Leaf) (Fork Leaf (Fork Leaf (Fork (Stem Leaf) (Fork (Stem Leaf) Leaf))))))) (Fork (Fork Leaf (Fork Leaf (Fork (Stem Leaf) (Fork (Stem Leaf) (Fork Leaf (Fork (Stem Leaf) (Fork (Stem Leaf) Leaf))))))) (Fork (Fork Leaf (Fork Leaf (Fork (Stem Leaf) (Fork (Stem Leaf) (Fork Leaf (Fork (Stem Leaf) (Fork (Stem Leaf) Leaf))))))) (Fork (Fork (Stem Leaf) (Fork (Stem Leaf) (Fork (Stem Leaf) (Fork (Stem Leaf) (Fork Leaf (Fork (Stem Leaf) (Fork (Stem Leaf) Leaf))))))) Leaf))))"
|
||||
|
||||
|
||||
, testCase "Lambda applied to integer literal" $ do
|
||||
let input = "f = (\\x : x)\nf 42"
|
||||
runTricu input @?= "Fork Leaf (Fork (Stem Leaf) (Fork Leaf (Fork (Stem Leaf) (Fork Leaf (Fork (Stem Leaf) Leaf)))))"
|
||||
let input = "f = (x : x)\nf 42"
|
||||
tricuTestString input @?= "Fork Leaf (Fork (Stem Leaf) (Fork Leaf (Fork (Stem Leaf) (Fork Leaf (Fork (Stem Leaf) Leaf)))))"
|
||||
|
||||
, testCase "Lambda applied to list literal" $ do
|
||||
let input = "f = (\\x : x)\nf [t (t t)]"
|
||||
runTricu input @?= "Fork Leaf (Fork (Stem Leaf) Leaf)"
|
||||
let input = "f = (x : x)\nf [t (t t)]"
|
||||
tricuTestString input @?= "Fork Leaf (Fork (Stem Leaf) Leaf)"
|
||||
|
||||
, testCase "Lambda containing list literal" $ do
|
||||
let input = "(\\a : [(a)]) 1"
|
||||
runTricu input @?= "Fork (Fork (Stem Leaf) Leaf) Leaf"
|
||||
let input = "(a : [(a)]) 1"
|
||||
tricuTestString input @?= "Fork (Fork (Stem Leaf) Leaf) Leaf"
|
||||
]
|
||||
|
||||
providedLibraries :: TestTree
|
||||
@ -419,7 +434,7 @@ providedLibraries = testGroup "Library Tests"
|
||||
|
||||
, testCase "List map" $ do
|
||||
library <- evaluateFile "./lib/list.tri"
|
||||
let input = "head (tail (map (\\a : (t t t)) [(t) (t) (t)]))"
|
||||
let input = "head (tail (map (a : (t t t)) [(t) (t) (t)]))"
|
||||
env = evalTricu library (parseTricu input)
|
||||
result env @?= Fork Leaf Leaf
|
||||
|
||||
@ -554,4 +569,4 @@ decoding = testGroup "Decoding Tests"
|
||||
, testCase "Decode nested lists with strings" $ do
|
||||
let input = ofList [ofList [ofString "nested"], ofString "string"]
|
||||
decodeResult input @?= "[[\"nested\"], \"string\"]"
|
||||
]
|
||||
]
|
||||
|
@ -1,9 +1,9 @@
|
||||
-- This is a tricu comment!
|
||||
-- t (t t) (t (t t t))
|
||||
-- t (t t t) (t t)
|
||||
-- x = (\a : a)
|
||||
-- x = (a : a)
|
||||
main = t (t t) t -- Fork (Stem Leaf) Leaf
|
||||
-- t t
|
||||
-- x
|
||||
-- x = (\a : a)
|
||||
-- x = (a : a)
|
||||
-- t
|
||||
|
@ -1 +1 @@
|
||||
main = (\x : x) t
|
||||
main = (x : x) t
|
||||
|
@ -1,2 +1,2 @@
|
||||
x = map (\i : append "Successfully concatenated " i) [("two strings!")]
|
||||
x = map (i : append "Successfully concatenated " i) [("two strings!")]
|
||||
main = equal? x [("Successfully concatenated two strings!")]
|
||||
|
@ -1,21 +1,21 @@
|
||||
compose = \f g x : f (g x)
|
||||
compose = f g x : f (g x)
|
||||
|
||||
succ = y (\self :
|
||||
succ = y (self :
|
||||
triage
|
||||
1
|
||||
t
|
||||
(triage
|
||||
(t (t t))
|
||||
(\_ tail : t t (self tail))
|
||||
(_ tail : t t (self tail))
|
||||
t))
|
||||
|
||||
size = (\x :
|
||||
(y (\self x :
|
||||
size = (x :
|
||||
(y (self x :
|
||||
compose succ
|
||||
(triage
|
||||
(\x : x)
|
||||
(x : x)
|
||||
self
|
||||
(\x y : compose (self x) (self y))
|
||||
(x y : compose (self x) (self y))
|
||||
x)) x 0))
|
||||
|
||||
size size
|
||||
|
@ -1 +1 @@
|
||||
head (map (\i : append "String " i) [("test!")])
|
||||
head (map (i : append "String " i) [("test!")])
|
||||
|
@ -1 +1 @@
|
||||
y = \x : x
|
||||
y = x : x
|
||||
|
@ -1,7 +1,7 @@
|
||||
cabal-version: 1.12
|
||||
|
||||
name: tricu
|
||||
version: 0.18.0
|
||||
version: 0.19.0
|
||||
description: A micro-language for exploring Tree Calculus
|
||||
author: James Eversole
|
||||
maintainer: james@eversole.co
|
||||
|
Loading…
x
Reference in New Issue
Block a user