module DsForeign ( dsForeigns ) where
#include "HsVersions.h"
+import TcRnMonad -- temp
import CoreSyn
-import DsCCall ( dsCCall, mkCCall, boxResult, unboxArg )
+import DsCCall ( dsCCall, mkFCall, boxResult, unboxArg, resultWrapper )
import DsMonad
-import DsUtils
-import HsSyn ( ExtName(..), ForeignDecl(..), isDynamicExtName, ForKind(..) )
-import HsDecls ( extNameStatic )
-import CallConv
-import TcHsSyn ( TypecheckedForeignDecl )
+import HsSyn ( ForeignDecl(..), ForeignExport(..), LForeignDecl,
+ ForeignImport(..), CImportSpec(..) )
import CoreUtils ( exprType, mkInlineMe )
-import DataCon ( DataCon, dataConWrapId )
-import Id ( Id, idType, idName, mkWildId, mkVanillaId )
-import MkId ( mkWorkerId )
+import Id ( Id, idType, idName, mkSysLocal, setInlinePragma )
import Literal ( Literal(..) )
-import Module ( Module, moduleUserString )
-import Name ( mkGlobalName, nameModule, nameOccName, getOccString,
- mkForeignExportOcc, isLocalName,
- NamedThing(..), Provenance(..), ExportFlag(..)
+import Module ( moduleString )
+import Name ( getOccString, NamedThing(..) )
+import OccName ( encodeFS )
+import Type ( repType, eqType, typePrimRep )
+import TcType ( Type, mkFunTys, mkForAllTys, mkTyConApp,
+ mkFunTy, tcSplitTyConApp_maybe,
+ tcSplitForAllTys, tcSplitFunTys, tcTyConAppArgs,
)
-import PrelInfo ( deRefStablePtr_NAME, returnIO_NAME, bindIO_NAME, makeStablePtr_NAME )
-import Type ( unUsgTy,
- splitTyConApp_maybe, splitFunTys, splitForAllTys,
- Type, mkFunTys, mkForAllTys, mkTyConApp,
- mkTyVarTy, mkFunTy, splitAppTy, applyTy, funResultTy
- )
-import PprType ( {- instance Outputable Type -} )
-import PrimOp ( PrimOp(..), CCall(..), CCallTarget(..) )
-import Var ( TyVar )
-import TysPrim ( realWorldStatePrimTy, addrPrimTy )
-import TysWiredIn ( unitTy, addrTy, stablePtrTyCon,
- unboxedTupleCon, addrDataCon
+
+import BasicTypes ( Boxity(..) )
+import HscTypes ( ForeignStubs(..) )
+import ForeignCall ( ForeignCall(..), CCallSpec(..),
+ Safety(..), playSafe,
+ CExportSpec(..),
+ CCallConv(..), ccallConvToInt,
+ ccallConvAttribute
)
-import Unique
-import Maybes ( maybeToBool )
+import CStrings ( CLabelString )
+import TysWiredIn ( unitTy, tupleTyCon )
+import TysPrim ( addrPrimTy, mkStablePtrPrimTy, alphaTy )
+import PrimRep ( getPrimRepSizeInBytes )
+import PrelNames ( hasKey, ioTyConKey, stablePtrTyConName, newStablePtrName, bindIOName,
+ checkDotnetResName )
+import BasicTypes ( Activation( NeverActive ) )
+import SrcLoc ( Located(..), unLoc )
import Outputable
+import Maybe ( fromJust )
+import FastString
\end{code}
Desugaring of @foreign@ declarations is naturally split up into
so we reuse the desugaring code in @DsCCall@ to deal with these.
\begin{code}
-dsForeigns :: Module
- -> [TypecheckedForeignDecl]
- -> DsM ( [CoreBind] -- desugared foreign imports
- , [CoreBind] -- helper functions for foreign exports
- , SDoc -- Header file prototypes for
- -- "foreign exported" functions.
- , SDoc -- C stubs to use when calling
- -- "foreign exported" functions.
- )
-dsForeigns mod_name fos = foldlDs combine ([],[],empty,empty) fos
+type Binding = (Id, CoreExpr) -- No rec/nonrec structure;
+ -- the occurrence analyser will sort it all out
+
+dsForeigns :: [LForeignDecl Id]
+ -> DsM (ForeignStubs, [Binding])
+dsForeigns []
+ = returnDs (NoStubs, [])
+dsForeigns fos
+ = foldlDs combine (ForeignStubs empty empty [] [], []) fos
where
- combine (acc_fi, acc_fe, acc_h, acc_c) fo@(ForeignDecl i imp_exp _ ext_nm cconv _)
- | isForeignImport = -- foreign import (dynamic)?
- dsFImport i (idType i) uns ext_nm cconv `thenDs` \ bs ->
- returnDs (bs ++ acc_fi, acc_fe, acc_h, acc_c)
- | isForeignLabel =
- dsFLabel i ext_nm `thenDs` \ b ->
- returnDs (b:acc_fi, acc_fe, acc_h, acc_c)
- | isDynamicExtName ext_nm =
- dsFExportDynamic i (idType i) mod_name ext_nm cconv `thenDs` \ (fi,fe,h,c) ->
- returnDs (fi:acc_fi, fe:acc_fe, h $$ acc_h, c $$ acc_c)
-
- | otherwise = -- foreign export
- dsFExport i (idType i) mod_name ext_nm cconv False `thenDs` \ (fe,h,c) ->
- returnDs (acc_fi, fe:acc_fe, h $$ acc_h, c $$ acc_c)
- where
- isForeignImport =
- case imp_exp of
- FoImport _ -> True
- _ -> False
-
- isForeignLabel =
- case imp_exp of
- FoLabel -> True
- _ -> False
-
- (FoImport uns) = imp_exp
-
+ combine (ForeignStubs acc_h acc_c acc_hdrs acc_feb, acc_f)
+ (L loc (ForeignImport id _ spec depr))
+ = traceIf (text "fi start" <+> ppr id) `thenDs` \ _ ->
+ dsFImport (unLoc id) spec `thenDs` \ (bs, h, c, mbhd) ->
+ warnDepr depr loc `thenDs` \ _ ->
+ traceIf (text "fi end" <+> ppr id) `thenDs` \ _ ->
+ returnDs (ForeignStubs (h $$ acc_h)
+ (c $$ acc_c)
+ (addH mbhd acc_hdrs)
+ acc_feb,
+ bs ++ acc_f)
+
+ combine (ForeignStubs acc_h acc_c acc_hdrs acc_feb, acc_f)
+ (L loc (ForeignExport (L _ id) _ (CExport (CExportStatic ext_nm cconv)) depr))
+ = dsFExport id (idType id)
+ ext_nm cconv False `thenDs` \(h, c, _) ->
+ warnDepr depr loc `thenDs` \_ ->
+ returnDs (ForeignStubs (h $$ acc_h) (c $$ acc_c) acc_hdrs (id:acc_feb),
+ acc_f)
+
+ addH Nothing ls = ls
+ addH (Just e) ls
+ | e `elem` ls = ls
+ | otherwise = e:ls
+
+ warnDepr False _ = returnDs ()
+ warnDepr True loc = dsWarn (loc, msg)
+ where
+ msg = ptext SLIT("foreign declaration uses deprecated non-standard syntax")
\end{code}
+
+%************************************************************************
+%* *
+\subsection{Foreign import}
+%* *
+%************************************************************************
+
Desugaring foreign imports is just the matter of creating a binding
that on its RHS unboxes its arguments, performs the external call
(using the @CCallOp@ primop), before boxing the result up and returning it.
The strictness/CPR analyser won't do this automatically because it doesn't look
inside returned tuples; but inlining this wrapper is a Really Good Idea
because it exposes the boxing to the call site.
-
\begin{code}
dsFImport :: Id
- -> Type -- Type of foreign import.
- -> Bool -- True <=> might cause Haskell GC
- -> ExtName
- -> CallConv
- -> DsM [CoreBind]
-dsFImport fn_id ty may_not_gc ext_name cconv
+ -> ForeignImport
+ -> DsM ([Binding], SDoc, SDoc, Maybe FastString)
+dsFImport id (CImport cconv safety header lib spec)
+ = dsCImport id spec cconv safety no_hdrs `thenDs` \(ids, h, c) ->
+ returnDs (ids, h, c, if no_hdrs then Nothing else Just header)
+ where
+ no_hdrs = nullFastString header
+
+ -- FIXME: the `lib' field is needed for .NET ILX generation when invoking
+ -- routines that are external to the .NET runtime, but GHC doesn't
+ -- support such calls yet; if `nullFastString lib', the value was not given
+dsFImport id (DNImport spec)
+ = dsFCall id (DNCall spec) True {- No headers -} `thenDs` \(ids, h, c) ->
+ returnDs (ids, h, c, Nothing)
+
+dsCImport :: Id
+ -> CImportSpec
+ -> CCallConv
+ -> Safety
+ -> Bool -- True <=> no headers in the f.i decl
+ -> DsM ([Binding], SDoc, SDoc)
+dsCImport id (CLabel cid) _ _ no_hdrs
+ = resultWrapper (idType id) `thenDs` \ (resTy, foRhs) ->
+ ASSERT(fromJust resTy `eqType` addrPrimTy) -- typechecker ensures this
+ let rhs = foRhs (mkLit (MachLabel cid Nothing)) in
+ returnDs ([(setImpInline no_hdrs id, rhs)], empty, empty)
+dsCImport id (CFunction target) cconv safety no_hdrs
+ = dsFCall id (CCall (CCallSpec target cconv safety)) no_hdrs
+dsCImport id CWrapper cconv _ _
+ = dsFExportDynamic id cconv
+
+setImpInline :: Bool -- True <=> No #include headers
+ -- in the foreign import declaration
+ -> Id -> Id
+-- If there is a #include header in the foreign import
+-- we make the worker non-inlinable, because we currently
+-- don't keep the #include stuff in the CCallId, and hence
+-- it won't be visible in the importing module, which can be
+-- fatal.
+-- (The #include stuff is just collected from the foreign import
+-- decls in a module.)
+-- If you want to do cross-module inlining of the c-calls themselves,
+-- put the #include stuff in the package spec, not the foreign
+-- import decl.
+setImpInline True id = id
+setImpInline False id = id `setInlinePragma` NeverActive
+\end{code}
+
+
+%************************************************************************
+%* *
+\subsection{Foreign calls}
+%* *
+%************************************************************************
+
+\begin{code}
+dsFCall fn_id fcall no_hdrs
= let
- (tvs, fun_ty) = splitForAllTys ty
- (arg_tys, io_res_ty) = splitFunTys fun_ty
+ ty = idType fn_id
+ (tvs, fun_ty) = tcSplitForAllTys ty
+ (arg_tys, io_res_ty) = tcSplitFunTys fun_ty
+ -- Must use tcSplit* functions because we want to
+ -- see that (IO t) in the corner
in
newSysLocalsDs arg_tys `thenDs` \ args ->
mapAndUnzipDs unboxArg (map Var args) `thenDs` \ (val_args, arg_wrappers) ->
- boxResult io_res_ty `thenDs` \ (ccall_result_ty, res_wrapper) ->
- (case ext_name of
- Dynamic -> getUniqueDs `thenDs` \ u ->
- returnDs (DynamicTarget u)
- ExtName fs _ -> returnDs (StaticTarget fs)) `thenDs` \ lbl ->
+ let
+ work_arg_ids = [v | Var v <- val_args] -- All guaranteed to be vars
+
+ -- These are the ids we pass to boxResult, which are used to decide
+ -- whether to touch# an argument after the call (used to keep
+ -- ForeignObj#s live across a 'safe' foreign import).
+ maybe_arg_ids | unsafe_call fcall = work_arg_ids
+ | otherwise = []
+
+ forDotnet =
+ case fcall of
+ DNCall{} -> True
+ _ -> False
+
+ topConDs
+ | forDotnet =
+ dsLookupGlobalId checkDotnetResName `thenDs` \ check_id ->
+ return (Just check_id)
+ | otherwise = return Nothing
+
+ augmentResultDs
+ | forDotnet =
+ newSysLocalDs addrPrimTy `thenDs` \ err_res ->
+ returnDs (\ (mb_res_ty, resWrap) ->
+ case mb_res_ty of
+ Nothing -> (Just (mkTyConApp (tupleTyCon Unboxed 1)
+ [ addrPrimTy ]),
+ resWrap)
+ Just x -> (Just (mkTyConApp (tupleTyCon Unboxed 2)
+ [ x, addrPrimTy ]),
+ resWrap))
+ | otherwise = returnDs id
+ in
+ augmentResultDs `thenDs` \ augment ->
+ topConDs `thenDs` \ topCon ->
+ boxResult maybe_arg_ids augment topCon io_res_ty `thenDs` \ (ccall_result_ty, res_wrapper) ->
- getUniqueDs `thenDs` \ ccall_uniq ->
- getUniqueDs `thenDs` \ work_uniq ->
+ newUnique `thenDs` \ ccall_uniq ->
+ newUnique `thenDs` \ work_uniq ->
let
-- Build the worker
- work_arg_ids = [v | Var v <- val_args] -- All guaranteed to be vars
worker_ty = mkForAllTys tvs (mkFunTys (map idType work_arg_ids) ccall_result_ty)
- the_ccall = CCall lbl False (not may_not_gc) cconv
- the_ccall_app = mkCCall ccall_uniq the_ccall val_args ccall_result_ty
+ the_ccall_app = mkFCall ccall_uniq fcall val_args ccall_result_ty
work_rhs = mkLams tvs (mkLams work_arg_ids the_ccall_app)
- work_id = mkWorkerId work_uniq fn_id worker_ty
+ work_id = setImpInline no_hdrs $ -- See comments with setImpInline
+ mkSysLocal (encodeFS FSLIT("$wccall")) work_uniq worker_ty
-- Build the wrapper
work_app = mkApps (mkVarApps (Var work_id) tvs) val_args
wrapper_body = foldr ($) (res_wrapper work_app) arg_wrappers
wrap_rhs = mkInlineMe (mkLams (tvs ++ args) wrapper_body)
in
- returnDs [NonRec fn_id wrap_rhs, NonRec work_id work_rhs]
+ returnDs ([(work_id, work_rhs), (fn_id, wrap_rhs)], empty, empty)
+
+unsafe_call (CCall (CCallSpec _ _ safety)) = playSafe safety
+unsafe_call (DNCall _) = False
\end{code}
-Foreign labels
-\begin{code}
-dsFLabel :: Id -> ExtName -> DsM CoreBind
-dsFLabel nm ext_name = returnDs (NonRec nm fo_rhs)
- where
- fo_rhs = mkConApp addrDataCon [mkLit (MachLitLit enm addrPrimTy)]
- enm = extNameStatic ext_name
-\end{code}
+%************************************************************************
+%* *
+\subsection{Foreign export}
+%* *
+%************************************************************************
The function that does most of the work for `@foreign export@' declarations.
(see below for the boilerplate code a `@foreign export@' declaration expands
the user-written Haskell function `@M.foo@'.
\begin{code}
-dsFExport :: Id
- -> Type -- Type of foreign export.
- -> Module
- -> ExtName
- -> CallConv
- -> Bool -- True => invoke IO action that's hanging off
- -- the first argument's stable pointer
- -> DsM ( CoreBind
- , SDoc
- , SDoc
+dsFExport :: Id -- Either the exported Id,
+ -- or the foreign-export-dynamic constructor
+ -> Type -- The type of the thing callable from C
+ -> CLabelString -- The name to export to C land
+ -> CCallConv
+ -> Bool -- True => foreign export dynamic
+ -- so invoke IO action that's hanging off
+ -- the first argument's stable pointer
+ -> DsM ( SDoc -- contents of Module_stub.h
+ , SDoc -- contents of Module_stub.c
+ , [Type] -- arguments expected by stub function.
)
-dsFExport fn_id ty mod_name ext_name cconv isDyn
- = -- BUILD THE returnIO WRAPPER, if necessary
- -- Look at the result type of the exported function, orig_res_ty
- -- If it's IO t, return (\x.x, IO t, t)
- -- If it's plain t, return (\x.returnIO x, IO t, t)
- (case splitTyConApp_maybe orig_res_ty of
- Just (ioTyCon, [res_ty])
- -> ASSERT( getUnique ioTyCon == ioTyConKey )
- -- The function already returns IO t
- returnDs (\body -> body, orig_res_ty, res_ty)
-
- other -> -- The function returns t, so wrap the call in returnIO
- dsLookupGlobalValue returnIO_NAME `thenDs` \ retIOId ->
- returnDs (\body -> mkApps (Var retIOId) [Type orig_res_ty, body],
- funResultTy (applyTy (idType retIOId) orig_res_ty),
- -- We don't have ioTyCon conveniently to hand
- orig_res_ty)
-
- ) `thenDs` \ (return_io_wrapper, -- Either identity or returnIO
- io_res_ty, -- IO t
- res_ty) -> -- t
-
-
- -- BUILD THE deRefStablePtr WRAPPER, if necessary
- (if isDyn then
- newSysLocalDs stbl_ptr_ty `thenDs` \ stbl_ptr ->
- newSysLocalDs stbl_ptr_to_ty `thenDs` \ stbl_value ->
- dsLookupGlobalValue deRefStablePtr_NAME `thenDs` \ deRefStablePtrId ->
- let
- the_deref_app = mkApps (Var deRefStablePtrId)
- [ Type stbl_ptr_to_ty, Var stbl_ptr ]
- in
- dsLookupGlobalValue bindIO_NAME `thenDs` \ bindIOId ->
- let
- stbl_app cont = mkApps (Var bindIOId)
- [ Type stbl_ptr_to_ty
- , Type res_ty
- , the_deref_app
- , mkLams [stbl_value] cont]
- in
- returnDs (stbl_value, stbl_app, stbl_ptr)
- else
- returnDs (fn_id,
- \ body -> body,
- panic "stbl_ptr" -- should never be touched.
- )) `thenDs` \ (i, getFun_wrapper, stbl_ptr) ->
-
-
- -- BUILD THE HELPER
- getModuleDs `thenDs` \ mod ->
- getUniqueDs `thenDs` \ uniq ->
- getSrcLocDs `thenDs` \ src_loc ->
- newSysLocalsDs fe_arg_tys `thenDs` \ fe_args ->
+
+dsFExport fn_id ty ext_name cconv isDyn
+ =
let
- wrapper_args | isDyn = stbl_ptr:fe_args
- | otherwise = fe_args
-
- wrapper_arg_tys | isDyn = stbl_ptr_ty:fe_arg_tys
- | otherwise = fe_arg_tys
-
- helper_ty = mkForAllTys tvs $
- mkFunTys wrapper_arg_tys io_res_ty
-
- f_helper_glob = mkVanillaId helper_name helper_ty
- where
- name = idName fn_id
- mod
- | isLocalName name = mod_name
- | otherwise = nameModule name
-
- occ = mkForeignExportOcc (nameOccName name)
- prov = LocalDef src_loc Exported
- helper_name = mkGlobalName uniq mod occ prov
-
- the_app = getFun_wrapper (return_io_wrapper (mkVarApps (Var i) (tvs ++ fe_args)))
- the_body = mkLams (tvs ++ wrapper_args) the_app
- c_nm = extNameStatic ext_name
-
- (h_stub, c_stub) = fexportEntry (moduleUserString mod)
- c_nm f_helper_glob
- wrapper_arg_tys res_ty cconv isDyn
+ (_tvs,sans_foralls) = tcSplitForAllTys ty
+ (fe_arg_tys', orig_res_ty) = tcSplitFunTys sans_foralls
+ -- We must use tcSplits here, because we want to see
+ -- the (IO t) in the corner of the type!
+ fe_arg_tys | isDyn = tail fe_arg_tys'
+ | otherwise = fe_arg_tys'
in
- returnDs (NonRec f_helper_glob the_body, h_stub, c_stub)
-
- where
- (tvs,sans_foralls) = splitForAllTys ty
- (fe_arg_tys', orig_res_ty) = splitFunTys sans_foralls
-
- (_, stbl_ptr_ty') = splitForAllTys stbl_ptr_ty
- (_, stbl_ptr_to_ty) = splitAppTy stbl_ptr_ty'
-
- fe_arg_tys | isDyn = tail fe_arg_tys'
- | otherwise = fe_arg_tys'
+ -- Look at the result type of the exported function, orig_res_ty
+ -- If it's IO t, return (t, True)
+ -- If it's plain t, return (t, False)
+ (case tcSplitTyConApp_maybe orig_res_ty of
+ -- We must use tcSplit here so that we see the (IO t) in
+ -- the type. [IO t is transparent to plain splitTyConApp.]
- stbl_ptr_ty | isDyn = head fe_arg_tys'
- | otherwise = error "stbl_ptr_ty"
+ Just (ioTyCon, [res_ty])
+ -> ASSERT( ioTyCon `hasKey` ioTyConKey )
+ -- The function already returns IO t
+ returnDs (res_ty, True)
+
+ other -> -- The function returns t
+ returnDs (orig_res_ty, False)
+ )
+ `thenDs` \ (res_ty, -- t
+ is_IO_res_ty) -> -- Bool
+ returnDs $
+ mkFExportCBits ext_name
+ (if isDyn then Nothing else Just fn_id)
+ fe_arg_tys res_ty is_IO_res_ty cconv
\end{code}
@foreign export dynamic@ lets you dress up Haskell IO actions
as a C function pointer). Useful for callbacks and stuff.
\begin{verbatim}
-foreign export stdcall f :: (Addr -> Int -> IO Int) -> IO Addr
+foreign export dynamic f :: (Addr -> Int -> IO Int) -> IO Addr
--- Haskell-visible constructor, which is generated from the
--- above:
+-- Haskell-visible constructor, which is generated from the above:
+-- SUP: No check for NULL from createAdjustor anymore???
f :: (Addr -> Int -> IO Int) -> IO Addr
-f cback = IO ( \ s1# ->
- case makeStablePtr# cback s1# of { StateAndStablePtr# s2# sp# ->
- case _ccall_ "mkAdjustor" sp# ``f_helper'' s2# of
- StateAndAddr# s3# a# ->
- case addr2Int# a# of
- 0# -> IOfail s# err
- _ ->
- let
- a :: Addr
- a = A# a#
- in
- IOok s3# a)
+f cback =
+ bindIO (newStablePtr cback)
+ (\StablePtr sp# -> IO (\s1# ->
+ case _ccall_ createAdjustor cconv sp# ``f_helper'' s1# of
+ (# s2#, a# #) -> (# s2#, A# a# #)))
foreign export "f_helper" f_helper :: StablePtr (Addr -> Int -> IO Int) -> Addr -> Int -> IO Int
-- `special' foreign export that invokes the closure pointed to by the
\begin{code}
dsFExportDynamic :: Id
- -> Type -- Type of foreign export.
- -> Module
- -> ExtName
- -> CallConv
- -> DsM (CoreBind, CoreBind, SDoc, SDoc)
-dsFExportDynamic i ty mod_name ext_name cconv =
- newSysLocalDs ty `thenDs` \ fe_id ->
+ -> CCallConv
+ -> DsM ([Binding], SDoc, SDoc)
+dsFExportDynamic id cconv
+ = newSysLocalDs ty `thenDs` \ fe_id ->
+ getModuleDs `thenDs` \ mod_name ->
let
-- hack: need to get at the name of the C stub we're about to generate.
- fe_nm = moduleUserString mod_name ++ "_" ++ toCName fe_id
- fe_ext_name = ExtName (_PK_ fe_nm) Nothing
+ fe_nm = mkFastString (moduleString mod_name ++ "_" ++ toCName fe_id)
in
- dsFExport i export_ty mod_name fe_ext_name cconv True
- `thenDs` \ (fe@(NonRec fe_helper fe_expr), h_code, c_code) ->
newSysLocalDs arg_ty `thenDs` \ cback ->
- dsLookupGlobalValue makeStablePtr_NAME `thenDs` \ makeStablePtrId ->
+ dsLookupGlobalId newStablePtrName `thenDs` \ newStablePtrId ->
+ dsLookupTyCon stablePtrTyConName `thenDs` \ stable_ptr_tycon ->
let
- mk_stbl_ptr_app = mkApps (Var makeStablePtrId) [ Type arg_ty, Var cback ]
+ mk_stbl_ptr_app = mkApps (Var newStablePtrId) [ Type arg_ty, Var cback ]
+ stable_ptr_ty = mkTyConApp stable_ptr_tycon [arg_ty]
+ export_ty = mkFunTy stable_ptr_ty arg_ty
in
- dsLookupGlobalValue bindIO_NAME `thenDs` \ bindIOId ->
- newSysLocalDs (mkTyConApp stablePtrTyCon [arg_ty]) `thenDs` \ stbl_value ->
+ dsLookupGlobalId bindIOName `thenDs` \ bindIOId ->
+ newSysLocalDs stable_ptr_ty `thenDs` \ stbl_value ->
+ dsFExport id export_ty fe_nm cconv True `thenDs` \ (h_code, c_code, stub_args) ->
let
- stbl_app cont ret_ty
- = mkApps (Var bindIOId)
- [ Type (mkTyConApp stablePtrTyCon [arg_ty])
- , Type ret_ty
- , mk_stbl_ptr_app
- , cont
- ]
-
+ stbl_app cont ret_ty = mkApps (Var bindIOId)
+ [ Type stable_ptr_ty
+ , Type ret_ty
+ , mk_stbl_ptr_app
+ , cont
+ ]
{-
The arguments to the external function which will
create a little bit of (template) code on the fly
to be entered using an external calling convention
(stdcall, ccall).
-}
- adj_args = [ mkIntLitInt (callConvToInt cconv)
+ adj_args = [ mkIntLitInt (ccallConvToInt cconv)
, Var stbl_value
- , mkLit (MachLitLit (_PK_ fe_nm) addrPrimTy)
+ , mkLit (MachLabel fe_nm mb_sz_args)
]
-- name of external entry point providing these services.
-- (probably in the RTS.)
- adjustor = SLIT("createAdjustor")
+ adjustor = FSLIT("createAdjustor")
+
+ sz_args = sum (map (getPrimRepSizeInBytes . typePrimRep) stub_args)
+ mb_sz_args = case cconv of
+ StdCallConv -> Just sz_args
+ _ -> Nothing
in
- dsCCall adjustor adj_args False False ioAddrTy `thenDs` \ ccall_adj ->
+ dsCCall adjustor adj_args PlayRisky io_res_ty `thenDs` \ ccall_adj ->
+ -- PlayRisky: the adjustor doesn't allocate in the Haskell heap or do a callback
let ccall_adj_ty = exprType ccall_adj
ccall_io_adj = mkLams [stbl_value] $
- Note (Coerce io_res_ty (unUsgTy ccall_adj_ty))
+ Note (Coerce io_res_ty ccall_adj_ty)
ccall_adj
- in
- let io_app = mkLams tvs $
+ io_app = mkLams tvs $
mkLams [cback] $
- stbl_app ccall_io_adj addrTy
+ stbl_app ccall_io_adj res_ty
+ fed = (id `setInlinePragma` NeverActive, io_app)
+ -- Never inline the f.e.d. function, because the litlit
+ -- might not be in scope in other modules.
in
- returnDs (NonRec i io_app, fe, h_code, c_code)
+ returnDs ([fed], h_code, c_code)
where
- (tvs,sans_foralls) = splitForAllTys ty
- ([arg_ty], io_res_ty) = splitFunTys sans_foralls
-
- Just (ioTyCon, [res_ty]) = splitTyConApp_maybe io_res_ty
-
- export_ty = mkFunTy (mkTyConApp stablePtrTyCon [arg_ty]) arg_ty
-
- ioAddrTy :: Type -- IO Addr
- ioAddrTy = mkTyConApp ioTyCon [addrTy]
+ ty = idType id
+ (tvs,sans_foralls) = tcSplitForAllTys ty
+ ([arg_ty], io_res_ty) = tcSplitFunTys sans_foralls
+ [res_ty] = tcTyConAppArgs io_res_ty
+ -- Must use tcSplit* to see the (IO t), which is a newtype
toCName :: Id -> String
toCName i = showSDoc (pprCode CStyle (ppr (idName i)))
using the hugs/ghc rts invocation API.
\begin{code}
-fexportEntry :: String
- -> FAST_STRING
- -> Id
- -> [Type]
- -> Type
- -> CallConv
- -> Bool
- -> (SDoc, SDoc)
-fexportEntry mod_nm c_nm helper args res_ty cc isDyn = (header_bits, c_bits)
+mkFExportCBits :: FastString
+ -> Maybe Id -- Just==static, Nothing==dynamic
+ -> [Type]
+ -> Type
+ -> Bool -- True <=> returns an IO type
+ -> CCallConv
+ -> (SDoc, SDoc, [Type])
+mkFExportCBits c_nm maybe_target arg_htys res_hty is_IO_res_ty cc
+ = (header_bits, c_bits, all_arg_tys)
where
- -- name of the (Haskell) helper function generated by the desugarer.
- h_nm = ppr helper <> text "_closure"
- -- prototype for the exported function.
- header_bits = ptext SLIT("extern") <+> fun_proto <> semi
+ -- Create up types and names for the real args
+ arg_cnames, arg_ctys :: [SDoc]
+ arg_cnames = mkCArgNames 1 arg_htys
+ arg_ctys = map showStgType arg_htys
+
+ -- and also for auxiliary ones; the stable ptr in the dynamic case, and
+ -- a slot for the dummy return address in the dynamic + ccall case
+ extra_cnames_and_tys
+ = case maybe_target of
+ Nothing -> [((text "the_stableptr", text "StgStablePtr"), mkStablePtrPrimTy alphaTy)]
+ other -> []
+ ++
+ case (maybe_target, cc) of
+ (Nothing, CCallConv) -> [((text "original_return_addr", text "void*"), addrPrimTy)]
+ other -> []
+
+ all_cnames_and_ctys :: [(SDoc, SDoc)]
+ all_cnames_and_ctys
+ = map fst extra_cnames_and_tys ++ zip arg_cnames arg_ctys
+
+ all_arg_tys
+ = map snd extra_cnames_and_tys ++ arg_htys
+
+ -- stuff to do with the return type of the C function
+ res_hty_is_unit = res_hty `eqType` unitTy -- Look through any newtypes
+
+ cResType | res_hty_is_unit = text "void"
+ | otherwise = showStgType res_hty
+
+ -- Now we can cook up the prototype for the exported function.
+ pprCconv = case cc of
+ CCallConv -> empty
+ StdCallConv -> text (ccallConvAttribute cc)
- fun_proto = cResType <+> pprCconv <+> ptext c_nm <>
- parens (hsep (punctuate comma (zipWith (<+>) cParamTypes proto_args)))
+ header_bits = ptext SLIT("extern") <+> fun_proto <> semi
+ fun_proto = cResType <+> pprCconv <+> ftext c_nm <>
+ parens (hsep (punctuate comma (map (\(nm,ty) -> ty <+> nm)
+ all_cnames_and_ctys)))
+
+ -- the target which will form the root of what we ask rts_evalIO to run
+ the_cfun
+ = case maybe_target of
+ Nothing -> text "(StgClosure*)deRefStablePtr(the_stableptr)"
+ Just hs_fn -> char '&' <> ppr hs_fn <> text "_closure"
+
+ -- the expression we give to rts_evalIO
+ expr_to_run
+ = foldl appArg the_cfun (zip arg_cnames arg_htys)
+ where
+ appArg acc (arg_cname, arg_hty)
+ = text "rts_apply"
+ <> parens (acc <> comma <> mkHObj arg_hty <> parens arg_cname)
+
+ -- various other bits for inside the fn
+ declareResult = text "HaskellObj ret;"
+ declareCResult | res_hty_is_unit = empty
+ | otherwise = cResType <+> text "cret;"
+
+ assignCResult | res_hty_is_unit = empty
+ | otherwise =
+ text "cret=" <> unpackHObj res_hty <> parens (text "ret") <> semi
+
+ -- an extern decl for the fn being called
+ extern_decl
+ = case maybe_target of
+ Nothing -> empty
+ Just hs_fn -> text "extern StgClosure " <> ppr hs_fn <> text "_closure" <> semi
+
+ -- finally, the whole darn thing
c_bits =
- externDecl $$
+ space $$
+ extern_decl $$
fun_proto $$
vcat
[ lbrace
, text "SchedulerStatus rc;"
, declareResult
+ , declareCResult
+ , text "rts_lock();"
-- create the application + perform it.
- , text "rc=rts_evalIO" <>
- parens (foldl appArg (text "(StgClosure*)&" <> h_nm) (zip args c_args) <> comma <> text "&ret") <> semi
- , text "rts_checkSchedStatus" <> parens (doubleQuotes (ptext c_nm)
+ , text "rc=rts_evalIO" <> parens (
+ text "rts_apply" <> parens (
+ text "(HaskellObj)"
+ <> text (if is_IO_res_ty
+ then "runIO_closure"
+ else "runNonIO_closure")
+ <> comma
+ <> expr_to_run
+ ) <+> comma
+ <> text "&ret"
+ ) <> semi
+ , text "rts_checkSchedStatus" <> parens (doubleQuotes (ftext c_nm)
<> comma <> text "rc") <> semi
- , text "return" <> return_what <> semi
+ , assignCResult
+ , text "rts_unlock();"
+ , if res_hty_is_unit then empty
+ else text "return cret;"
, rbrace
]
- appArg acc (a,c_a) =
- text "rts_apply" <> parens (acc <> comma <> mkHObj a <> parens c_a)
-
- cParamTypes = map showStgType real_args
-
- res_ty_is_unit = res_ty == unitTy
-
- cResType | res_ty_is_unit = text "void"
- | otherwise = showStgType res_ty
-
- pprCconv
- | cc == cCallConv = empty
- | otherwise = pprCallConv cc
-
- declareResult = text "HaskellObj ret;"
-
- externDecl = mkExtern (text "HaskellObj") h_nm
-
- mkExtern ty nm = text "extern" <+> ty <+> nm <> semi
-
- return_what | res_ty_is_unit = empty
- | otherwise = parens (unpackHObj res_ty <> parens (text "ret"))
-
- c_args = mkCArgNames 0 args
-
- {-
- If we're generating an entry point for a 'foreign export ccall dynamic',
- then we receive the return address of the C function that wants to
- invoke a Haskell function as any other C function, as second arg.
- This arg is unused within the body of the generated C stub, but
- needed by the Adjustor.c code to get the stack cleanup right.
- -}
- (proto_args, real_args)
- | cc == cCallConv && isDyn = ( text "a0" : text "a_" : mkCArgNames 1 (tail args)
- , head args : addrTy : tail args)
- | otherwise = (mkCArgNames 0 args, args)
mkCArgNames :: Int -> [a] -> [SDoc]
mkCArgNames n as = zipWith (\ _ n -> text ('a':show n)) as [n..]
unpackHObj t = text "rts_get" <> text (showFFIType t)
showStgType :: Type -> SDoc
-showStgType t = text "Stg" <> text (showFFIType t)
+showStgType t = text "Hs" <> text (showFFIType t)
showFFIType :: Type -> String
showFFIType t = getOccString (getName tc)
where
- tc = case splitTyConApp_maybe t of
+ tc = case tcSplitTyConApp_maybe (repType t) of
Just (tc,_) -> tc
Nothing -> pprPanic "showFFIType" (ppr t)
\end{code}