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semantic/app/Main.hs

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Haskell
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module Main where
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import Categorizable
import Diff
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import Interpreter
import Patch
import Syntax
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import Term
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import Unified
import Control.Comonad.Cofree
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import Control.Monad
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import Control.Monad.Free hiding (unfoldM)
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import qualified Data.Map as Map
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import qualified Data.ByteString.Char8 as ByteString
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import Data.Maybe
import Data.Set
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import Options.Applicative
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import System.Environment
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import Foreign
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import Foreign.C
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import Foreign.C.Types
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import Foreign.C.String
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import Foreign.ForeignPtr.Unsafe
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data TSLanguage = TsLanguage deriving (Show, Eq)
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foreign import ccall "prototype/doubt-difftool/doubt-difftool-Bridging-Header.h ts_language_c" ts_language_c :: IO (Ptr TSLanguage)
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data TSDocument = TsDocument deriving (Show, Eq)
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foreign import ccall "prototype/External/tree-sitter/include/tree_sitter/runtime.h ts_document_make" ts_document_make :: IO (Ptr TSDocument)
foreign import ccall "prototype/External/tree-sitter/include/tree_sitter/runtime.h ts_document_set_language" ts_document_set_language :: Ptr TSDocument -> Ptr TSLanguage -> IO ()
foreign import ccall "prototype/External/tree-sitter/include/tree_sitter/runtime.h ts_document_set_input_string" ts_document_set_input_string :: Ptr TSDocument -> CString -> IO ()
foreign import ccall "prototype/External/tree-sitter/include/tree_sitter/runtime.h ts_document_parse" ts_document_parse :: Ptr TSDocument -> IO ()
foreign import ccall "prototype/External/tree-sitter/include/tree_sitter/runtime.h ts_document_free" ts_document_free :: Ptr TSDocument -> IO ()
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data TSLength = TsLength { bytes :: CSize, chars :: CSize }
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deriving (Show, Eq)
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data TSNode = TsNode { _data :: Ptr (), offset :: TSLength }
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deriving (Show, Eq)
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instance Storable TSNode where
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alignment n = 24
sizeOf n = 24
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peek p = error "Haskell code should never read TSNode values directly."
poke p n = error "Haskell code should never write TSNode values directly."
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foreign import ccall "app/bridge.h ts_document_root_node_p" ts_document_root_node_p :: Ptr TSDocument -> Ptr TSNode -> IO ()
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foreign import ccall "app/bridge.h ts_node_p_name" ts_node_p_name :: Ptr TSNode -> Ptr TSDocument -> IO CString
foreign import ccall "app/bridge.h ts_node_p_named_child_count" ts_node_p_named_child_count :: Ptr TSNode -> IO CSize
foreign import ccall "app/bridge.h ts_node_p_named_child" ts_node_p_named_child :: Ptr TSNode -> CSize -> Ptr TSNode -> IO CSize
foreign import ccall "app/bridge.h ts_node_p_pos_chars" ts_node_p_pos_chars :: Ptr TSNode -> IO CSize
foreign import ccall "app/bridge.h ts_node_p_size_chars" ts_node_p_size_chars :: Ptr TSNode -> IO CSize
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data Output = Unified | Split
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data Argument = Argument { output :: Output, sourceA :: FilePath, sourceB :: FilePath }
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arguments :: Parser Argument
arguments = Argument
<$> (flag Split Unified (long "unified" <> help "output a unified diff"))
<*> argument str (metavar "FILE a")
<*> argument str (metavar "FILE b")
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main :: IO ()
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main = do
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arguments <- execParser opts
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output <- do
aContents <- readFile $ sourceA arguments
bContents <- readFile $ sourceB arguments
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aTerm <- parseTreeSitterFile aContents
bTerm <- parseTreeSitterFile bContents
unified (interpret comparable aTerm bTerm) aContents bContents
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ByteString.putStr output where
opts = info (helper <*> arguments)
(fullDesc <> progDesc "Diff some things" <> header "semantic-diff - diff semantically")
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parseTreeSitterFile :: String -> IO (Term String Info)
parseTreeSitterFile contents = do
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document <- ts_document_make
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language <- ts_language_c
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ts_document_set_language document language
withCString contents (\source -> do
ts_document_set_input_string document source
ts_document_parse document
term <- documentToTerm document contents
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ts_document_free document
return term)
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documentToTerm :: Ptr TSDocument -> String -> IO (Term String Info)
documentToTerm document contents = alloca $ \root -> do
ts_document_root_node_p document root
snd <$> toTerm root where
toTerm :: Ptr TSNode -> IO (String, Term String Info)
toTerm node = do
name <- ts_node_p_name node document
name <- peekCString name
children <- withNamedChildren node toTerm
range <- range node
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annotation <- return . Info range $ singleton name
return (name, annotation :< case children of
[] -> Leaf $ substring range contents
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_ | member name keyedProductions -> Keyed $ Map.fromList children
_ | member name fixedProductions -> Fixed $ fmap snd children
_ | otherwise -> Indexed $ fmap snd children)
keyedProductions = fromList [ "object" ]
fixedProductions = fromList [ "pair", "rel_op", "math_op", "bool_op", "bitwise_op", "type_op", "math_assignment", "assignment", "subscript_access", "member_access", "new_expression", "function_call", "function", "ternary" ]
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withNamedChildren :: Ptr TSNode -> (Ptr TSNode -> IO (String, a)) -> IO [(String, a)]
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withNamedChildren node transformNode = do
count <- ts_node_p_named_child_count node
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if count == 0
then return []
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else mapM (alloca . getChild) [0..pred count] where
getChild n out = do
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ts_node_p_named_child node n out
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transformNode out
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range :: Ptr TSNode -> IO Range
range node = do
pos <- ts_node_p_pos_chars node
size <- ts_node_p_size_chars node
return Range { start = fromEnum $ toInteger pos, end = (fromEnum $ toInteger pos) + (fromEnum $ toInteger size) }