{-# LANGUAGE OverloadedStrings #-} {-# LANGUAGE ForeignFunctionInterface #-} module Mate.Types where import Data.Word import Data.Int import qualified Data.Map as M import qualified Data.ByteString.Lazy as B import Data.IORef import System.IO.Unsafe import JVM.ClassFile import JVM.Assembler type BlockID = Int -- Represents a CFG node data BasicBlock = BasicBlock { code :: [Instruction], successor :: BBEnd } -- describes (leaving) edges of a CFG node data BBEnd = Return | FallThrough BlockID | OneTarget BlockID | TwoTarget BlockID BlockID deriving Show type MapBB = M.Map BlockID BasicBlock -- Word32 = point of method call in generated code -- MethodInfo = relevant information about callee type TrapMap = M.Map Word32 TrapInfo data TrapInfo = MI MethodInfo | -- for static calls VI Bool MethodInfo | -- for virtual calls II Bool MethodInfo | -- for interface calls SFI StaticFieldInfo deriving Show data StaticFieldInfo = StaticFieldInfo { sfiClassName :: B.ByteString, sfiFieldName :: B.ByteString } deriving Show -- B.ByteString = name of method -- Word32 = entrypoint of method type MethodMap = M.Map MethodInfo Word32 data MethodInfo = MethodInfo { methName :: B.ByteString, methClassName :: B.ByteString, methSignature :: MethodSignature } deriving (Eq, Ord) -- TODO(bernhard): not really efficient. also, outsource that to hs-java -- deriving should be enough? instance Ord MethodSignature where compare (MethodSignature args_a ret_a) (MethodSignature args_b ret_b) | cmp_args /= EQ = cmp_args | otherwise = show ret_a `compare` show ret_b where cmp_args = show args_a `compare` show args_b instance Show MethodInfo where show (MethodInfo method c sig) = toString c ++ "." ++ toString method ++ "." ++ show sig -- store information of loaded classes type ClassMap = M.Map B.ByteString ClassInfo data ClassInfo = ClassInfo { ciName :: B.ByteString, ciFile :: Class Direct, ciStaticMap :: FieldMap, ciFieldMap :: FieldMap, ciMethodMap :: FieldMap, ciMethodBase :: Word32, ciInitDone :: Bool } -- store field offsets in a map type FieldMap = M.Map B.ByteString Int32 -- java strings are allocated only once, therefore we -- use a hashmap to store the address for a String type StringMap = M.Map B.ByteString Word32 -- map "methodtable addr" to "classname" -- we need that to identify the actual type -- on the invokevirtual insn type VirtualMap = M.Map Word32 B.ByteString -- store each parsed Interface upon first loading type InterfaceMap = M.Map B.ByteString (Class Direct) -- store offset for each pair type InterfaceMethodMap = M.Map B.ByteString Word32 {- toString :: B.ByteString -> String toString bstr = decodeString $ map (chr . fromIntegral) $ B.unpack bstr -} data MateCtx = MateCtx { ctxMethodMap :: MethodMap, ctxTrapMap :: TrapMap, ctxClassMap :: ClassMap, ctxVirtualMap :: VirtualMap, ctxStringMap :: StringMap, ctxInterfaceMap :: InterfaceMap, ctxInterfaceMethodMap :: InterfaceMethodMap } emptyMateCtx :: MateCtx emptyMateCtx = MateCtx M.empty M.empty M.empty M.empty M.empty M.empty M.empty mateCtx :: IORef MateCtx {-# NOINLINE mateCtx #-} mateCtx = unsafePerformIO $ newIORef emptyMateCtx setMethodMap :: MethodMap -> IO () setMethodMap m = do ctx <- readIORef mateCtx writeIORef mateCtx $ ctx { ctxMethodMap = m } getMethodMap :: IO MethodMap getMethodMap = do ctx <- readIORef mateCtx return $ ctxMethodMap ctx setTrapMap :: TrapMap -> IO () setTrapMap m = do ctx <- readIORef mateCtx writeIORef mateCtx $ ctx { ctxTrapMap = m } getTrapMap :: IO TrapMap getTrapMap = do ctx <- readIORef mateCtx return $ ctxTrapMap ctx setClassMap :: ClassMap -> IO () setClassMap m = do ctx <- readIORef mateCtx writeIORef mateCtx $ ctx { ctxClassMap = m } getClassMap :: IO ClassMap getClassMap = do ctx <- readIORef mateCtx return $ ctxClassMap ctx setVirtualMap :: VirtualMap -> IO () setVirtualMap m = do ctx <- readIORef mateCtx writeIORef mateCtx $ ctx { ctxVirtualMap = m } getVirtualMap :: IO VirtualMap getVirtualMap = do ctx <- readIORef mateCtx return $ ctxVirtualMap ctx setStringMap :: StringMap -> IO () setStringMap m = do ctx <- readIORef mateCtx writeIORef mateCtx $ ctx { ctxStringMap = m } getStringMap :: IO StringMap getStringMap = do ctx <- readIORef mateCtx return $ ctxStringMap ctx setInterfaceMap :: InterfaceMap -> IO () setInterfaceMap m = do ctx <- readIORef mateCtx writeIORef mateCtx $ ctx { ctxInterfaceMap = m } getInterfaceMap :: IO InterfaceMap getInterfaceMap = do ctx <- readIORef mateCtx return $ ctxInterfaceMap ctx setInterfaceMethodMap :: InterfaceMethodMap -> IO () setInterfaceMethodMap m = do ctx <- readIORef mateCtx writeIORef mateCtx $ ctx { ctxInterfaceMethodMap = m } getInterfaceMethodMap :: IO InterfaceMethodMap getInterfaceMethodMap = do ctx <- readIORef mateCtx return $ ctxInterfaceMethodMap ctx