%
-% (c) The GRASP/AQUA Project, Glasgow University, 1992-1996
+% (c) The GRASP/AQUA Project, Glasgow University, 1992-1998
%
\section[RnExpr]{Renaming of expressions}
Basically dependency analysis.
-Handles @Match@, @GRHSsAndBinds@, @HsExpr@, and @Qualifier@ datatypes. In
+Handles @Match@, @GRHSs@, @HsExpr@, and @Qualifier@ datatypes. In
general, all of these functions return a renamed thing, and a set of
free variables.
\begin{code}
module RnExpr (
- rnMatch, rnGRHSsAndBinds, rnPat,
- checkPrecMatch
+ rnMatch, rnGRHSs, rnPat, rnExpr, rnExprs,
+ rnStmt, rnStmts, checkPrecMatch
) where
#include "HsVersions.h"
-import {-# SOURCE #-} RnBinds
-import {-# SOURCE #-} RnSource ( rnHsSigType )
+import {-# SOURCE #-} RnSource ( rnSrcDecls, rnBinds )
import HsSyn
import RdrHsSyn
import RnHsSyn
-import RnMonad
+import TcRnMonad
import RnEnv
-import CmdLineOpts ( opt_GlasgowExts )
-import BasicTypes ( Fixity(..), FixityDirection(..), IfaceFlavour(..) )
-import PrelInfo ( numClass_RDR, fractionalClass_RDR, eqClass_RDR,
- ccallableClass_RDR, creturnableClass_RDR,
- monadZeroClass_RDR, enumClass_RDR, ordClass_RDR,
- ratioDataCon_RDR, negate_RDR, assert_RDR,
- ioDataCon_RDR, ioOkDataCon_RDR
- )
+import RnTypes ( rnHsTypeFVs, precParseErr, sectionPrecErr )
+import CmdLineOpts ( DynFlag(..), opt_IgnoreAsserts )
+import Literal ( inIntRange, inCharRange )
+import BasicTypes ( Fixity(..), FixityDirection(..), IPName(..),
+ defaultFixity, negateFixity, compareFixity )
+import PrelNames ( hasKey, assertIdKey,
+ eqClassName, foldrName, buildName, eqStringName,
+ cCallableClassName, cReturnableClassName,
+ enumClassName, ordClassName,
+ ratioDataConName, splitName, fstName, sndName,
+ ioDataConName, plusIntegerName, timesIntegerName,
+ replicatePName, mapPName, filterPName,
+ crossPName, zipPName, lengthPName, indexPName, toPName,
+ enumFromToPName, enumFromThenToPName, assertErrorName,
+ fromIntegerName, fromRationalName, minusName, negateName,
+ qTyConName, monadNames )
import TysPrim ( charPrimTyCon, addrPrimTyCon, intPrimTyCon,
- floatPrimTyCon, doublePrimTyCon
- )
-import Name
+ floatPrimTyCon, doublePrimTyCon )
+import TysWiredIn ( intTyCon )
+import RdrName ( RdrName )
+import Name ( Name, NamedThing(..), mkSystemName, nameSrcLoc, nameOccName )
+import NameSet
+import UnicodeUtil ( stringToUtf8 )
import UniqFM ( isNullUFM )
-import UniqSet ( emptyUniqSet, unionManyUniqSets, UniqSet )
-import Util ( removeDups )
+import UniqSet ( emptyUniqSet )
+import List ( intersectBy )
+import ListSetOps ( removeDups )
import Outputable
+import FastString
\end{code}
*********************************************************
\begin{code}
-rnPat :: RdrNamePat -> RnMS s RenamedPat
-
-rnPat WildPatIn = returnRn WildPatIn
-
-rnPat (VarPatIn name)
- = lookupBndrRn name `thenRn` \ vname ->
- returnRn (VarPatIn vname)
-
-rnPat (LitPatIn lit)
- = litOccurrence lit `thenRn_`
- lookupImplicitOccRn eqClass_RDR `thenRn_` -- Needed to find equality on pattern
- returnRn (LitPatIn lit)
-
-rnPat (LazyPatIn pat)
- = rnPat pat `thenRn` \ pat' ->
- returnRn (LazyPatIn pat')
-
-rnPat (AsPatIn name pat)
- = rnPat pat `thenRn` \ pat' ->
- lookupBndrRn name `thenRn` \ vname ->
- returnRn (AsPatIn vname pat')
-
-rnPat (ConPatIn con pats)
- = lookupOccRn con `thenRn` \ con' ->
- mapRn rnPat pats `thenRn` \ patslist ->
- returnRn (ConPatIn con' patslist)
-
-rnPat (ConOpPatIn pat1 con _ pat2)
- = rnPat pat1 `thenRn` \ pat1' ->
- lookupOccRn con `thenRn` \ con' ->
- lookupFixity con `thenRn` \ fixity ->
- rnPat pat2 `thenRn` \ pat2' ->
- mkConOpPatRn pat1' con' fixity pat2'
-
--- Negated patters can only be literals, and they are dealt with
--- by negating the literal at compile time, not by using the negation
--- operation in Num. So we don't need to make an implicit reference
--- to negate_RDR.
-rnPat neg@(NegPatIn pat)
- = checkRn (valid_neg_pat pat) (negPatErr neg)
- `thenRn_`
- rnPat pat `thenRn` \ pat' ->
- returnRn (NegPatIn pat')
+rnPat :: RdrNamePat -> RnM (RenamedPat, FreeVars)
+
+rnPat (WildPat _) = returnM (WildPat placeHolderType, emptyFVs)
+
+rnPat (VarPat name)
+ = lookupBndrRn name `thenM` \ vname ->
+ returnM (VarPat vname, emptyFVs)
+
+rnPat (SigPatIn pat ty)
+ = doptM Opt_GlasgowExts `thenM` \ glaExts ->
+
+ if glaExts
+ then rnPat pat `thenM` \ (pat', fvs1) ->
+ rnHsTypeFVs doc ty `thenM` \ (ty', fvs2) ->
+ returnM (SigPatIn pat' ty', fvs1 `plusFV` fvs2)
+
+ else addErr (patSigErr ty) `thenM_`
+ rnPat pat
+ where
+ doc = text "In a pattern type-signature"
+
+rnPat (LitPat s@(HsString _))
+ = returnM (LitPat s, unitFV eqStringName)
+
+rnPat (LitPat lit)
+ = litFVs lit `thenM` \ fvs ->
+ returnM (LitPat lit, fvs)
+
+rnPat (NPatIn lit mb_neg)
+ = rnOverLit lit `thenM` \ (lit', fvs1) ->
+ (case mb_neg of
+ Nothing -> returnM (Nothing, emptyFVs)
+ Just _ -> lookupSyntaxName negateName `thenM` \ (neg, fvs) ->
+ returnM (Just neg, fvs)
+ ) `thenM` \ (mb_neg', fvs2) ->
+ returnM (NPatIn lit' mb_neg',
+ fvs1 `plusFV` fvs2 `addOneFV` eqClassName)
+ -- Needed to find equality on pattern
+
+rnPat (NPlusKPatIn name lit _)
+ = rnOverLit lit `thenM` \ (lit', fvs1) ->
+ lookupBndrRn name `thenM` \ name' ->
+ lookupSyntaxName minusName `thenM` \ (minus, fvs2) ->
+ returnM (NPlusKPatIn name' lit' minus,
+ fvs1 `plusFV` fvs2 `addOneFV` ordClassName)
+
+rnPat (LazyPat pat)
+ = rnPat pat `thenM` \ (pat', fvs) ->
+ returnM (LazyPat pat', fvs)
+
+rnPat (AsPat name pat)
+ = rnPat pat `thenM` \ (pat', fvs) ->
+ lookupBndrRn name `thenM` \ vname ->
+ returnM (AsPat vname pat', fvs)
+
+rnPat (ConPatIn con stuff) = rnConPat con stuff
+
+
+rnPat (ParPat pat)
+ = rnPat pat `thenM` \ (pat', fvs) ->
+ returnM (ParPat pat', fvs)
+
+rnPat (ListPat pats _)
+ = mapFvRn rnPat pats `thenM` \ (patslist, fvs) ->
+ returnM (ListPat patslist placeHolderType, fvs `addOneFV` listTyCon_name)
+
+rnPat (PArrPat pats _)
+ = mapFvRn rnPat pats `thenM` \ (patslist, fvs) ->
+ returnM (PArrPat patslist placeHolderType,
+ fvs `plusFV` implicit_fvs `addOneFV` parrTyCon_name)
where
- valid_neg_pat (LitPatIn (HsInt _)) = True
- valid_neg_pat (LitPatIn (HsFrac _)) = True
- valid_neg_pat _ = False
-
-rnPat (ParPatIn pat)
- = rnPat pat `thenRn` \ pat' ->
- returnRn (ParPatIn pat')
-
-rnPat (NPlusKPatIn name lit)
- = litOccurrence lit `thenRn_`
- lookupImplicitOccRn ordClass_RDR `thenRn_`
- lookupBndrRn name `thenRn` \ name' ->
- returnRn (NPlusKPatIn name' lit)
-
-rnPat (ListPatIn pats)
- = addImplicitOccRn listType_name `thenRn_`
- mapRn rnPat pats `thenRn` \ patslist ->
- returnRn (ListPatIn patslist)
-
-rnPat (TuplePatIn pats)
- = addImplicitOccRn (tupleType_name (length pats)) `thenRn_`
- mapRn rnPat pats `thenRn` \ patslist ->
- returnRn (TuplePatIn patslist)
-
-rnPat (RecPatIn con rpats)
- = lookupOccRn con `thenRn` \ con' ->
- rnRpats rpats `thenRn` \ rpats' ->
- returnRn (RecPatIn con' rpats')
+ implicit_fvs = mkFVs [lengthPName, indexPName]
+
+rnPat (TuplePat pats boxed)
+ = mapFvRn rnPat pats `thenM` \ (patslist, fvs) ->
+ returnM (TuplePat patslist boxed, fvs `addOneFV` tycon_name)
+ where
+ tycon_name = tupleTyCon_name boxed (length pats)
+
+rnPat (TypePat name) =
+ rnHsTypeFVs (text "In a type pattern") name `thenM` \ (name', fvs) ->
+ returnM (TypePat name', fvs)
+
+------------------------------
+rnConPat con (PrefixCon pats)
+ = lookupOccRn con `thenM` \ con' ->
+ mapFvRn rnPat pats `thenM` \ (pats', fvs) ->
+ returnM (ConPatIn con' (PrefixCon pats'), fvs `addOneFV` con')
+
+rnConPat con (RecCon rpats)
+ = lookupOccRn con `thenM` \ con' ->
+ rnRpats rpats `thenM` \ (rpats', fvs) ->
+ returnM (ConPatIn con' (RecCon rpats'), fvs `addOneFV` con')
+
+rnConPat con (InfixCon pat1 pat2)
+ = lookupOccRn con `thenM` \ con' ->
+ rnPat pat1 `thenM` \ (pat1', fvs1) ->
+ rnPat pat2 `thenM` \ (pat2', fvs2) ->
+
+ getModeRn `thenM` \ mode ->
+ -- See comments with rnExpr (OpApp ...)
+ (if isInterfaceMode mode
+ then returnM (ConPatIn con' (InfixCon pat1' pat2'))
+ else lookupFixityRn con' `thenM` \ fixity ->
+ mkConOpPatRn con' fixity pat1' pat2'
+ ) `thenM` \ pat' ->
+ returnM (pat', fvs1 `plusFV` fvs2 `addOneFV` con')
\end{code}
+
************************************************************************
* *
\subsection{Match}
************************************************************************
\begin{code}
-rnMatch, rnMatch1 :: RdrNameMatch -> RnMS s (RenamedMatch, FreeVars)
+rnMatch :: HsMatchContext RdrName -> RdrNameMatch -> RnM (RenamedMatch, FreeVars)
--- The only tricky bit here is that we want to do a single
--- bindLocalsRn for all the matches together, so that we spot
--- the repeated variable in
--- f x x = 1
+rnMatch ctxt match@(Match pats maybe_rhs_sig grhss)
+ = addSrcLoc (getMatchLoc match) $
+
+ -- Bind pattern-bound type variables
+ let
+ rhs_sig_tys = case maybe_rhs_sig of
+ Nothing -> []
+ Just ty -> [ty]
+ pat_sig_tys = collectSigTysFromPats pats
+ doc_sig = text "In a result type-signature"
+ doc_pat = pprMatchContext ctxt
+ in
+ bindPatSigTyVars (rhs_sig_tys ++ pat_sig_tys) $
+
+ -- Note that we do a single bindLocalsRn for all the
+ -- matches together, so that we spot the repeated variable in
+ -- f x x = 1
+ bindLocalsFVRn doc_pat (collectPatsBinders pats) $ \ new_binders ->
+
+ mapFvRn rnPat pats `thenM` \ (pats', pat_fvs) ->
+ rnGRHSs grhss `thenM` \ (grhss', grhss_fvs) ->
+ doptM Opt_GlasgowExts `thenM` \ opt_GlasgowExts ->
+ (case maybe_rhs_sig of
+ Nothing -> returnM (Nothing, emptyFVs)
+ Just ty | opt_GlasgowExts -> rnHsTypeFVs doc_sig ty `thenM` \ (ty', ty_fvs) ->
+ returnM (Just ty', ty_fvs)
+ | otherwise -> addErr (patSigErr ty) `thenM_`
+ returnM (Nothing, emptyFVs)
+ ) `thenM` \ (maybe_rhs_sig', ty_fvs) ->
-rnMatch match
- = pushSrcLocRn (getMatchLoc match) $
- bindLocalsRn "pattern" (get_binders match) $ \ new_binders ->
- rnMatch1 match `thenRn` \ (match', fvs) ->
let
binder_set = mkNameSet new_binders
- unused_binders = binder_set `minusNameSet` fvs
- net_fvs = fvs `minusNameSet` binder_set
+ unused_binders = nameSetToList (binder_set `minusNameSet` grhss_fvs)
+ all_fvs = grhss_fvs `plusFV` pat_fvs `plusFV` ty_fvs
in
- warnUnusedMatches unused_binders `thenRn_`
+ warnUnusedMatches unused_binders `thenM_`
- returnRn (match', net_fvs)
- where
- get_binders (GRHSMatch _) = []
- get_binders (PatMatch pat match) = collectPatBinders pat ++ get_binders match
-
-rnMatch1 (PatMatch pat match)
- = rnPat pat `thenRn` \ pat' ->
- rnMatch1 match `thenRn` \ (match', fvs) ->
- returnRn (PatMatch pat' match', fvs)
-
-rnMatch1 (GRHSMatch grhss_and_binds)
- = rnGRHSsAndBinds grhss_and_binds `thenRn` \ (grhss_and_binds', fvs) ->
- returnRn (GRHSMatch grhss_and_binds', fvs)
+ returnM (Match pats' maybe_rhs_sig' grhss', all_fvs)
+ -- The bindLocals and bindTyVars will remove the bound FVs
\end{code}
+
%************************************************************************
%* *
-\subsubsection{Guarded right-hand sides (GRHSsAndBinds)}
+\subsubsection{Guarded right-hand sides (GRHSs)}
%* *
%************************************************************************
\begin{code}
-rnGRHSsAndBinds :: RdrNameGRHSsAndBinds -> RnMS s (RenamedGRHSsAndBinds, FreeVars)
+rnGRHSs :: RdrNameGRHSs -> RnM (RenamedGRHSs, FreeVars)
-rnGRHSsAndBinds (GRHSsAndBindsIn grhss binds)
+rnGRHSs (GRHSs grhss binds _)
= rnBinds binds $ \ binds' ->
- rnGRHSs grhss `thenRn` \ (grhss', fvGRHS) ->
- returnRn (GRHSsAndBindsIn grhss' binds', fvGRHS)
+ mapFvRn rnGRHS grhss `thenM` \ (grhss', fvGRHSs) ->
+ returnM (GRHSs grhss' binds' placeHolderType, fvGRHSs)
+
+rnGRHS (GRHS guarded locn)
+ = doptM Opt_GlasgowExts `thenM` \ opt_GlasgowExts ->
+ addSrcLoc locn $
+ (if not (opt_GlasgowExts || is_standard_guard guarded) then
+ addWarn (nonStdGuardErr guarded)
+ else
+ returnM ()
+ ) `thenM_`
+
+ rnStmts guarded `thenM` \ ((_, guarded'), fvs) ->
+ returnM (GRHS guarded' locn, fvs)
where
- rnGRHSs [] = returnRn ([], emptyNameSet)
-
- rnGRHSs (grhs:grhss)
- = rnGRHS grhs `thenRn` \ (grhs', fvs) ->
- rnGRHSs grhss `thenRn` \ (grhss', fvss) ->
- returnRn (grhs' : grhss', fvs `unionNameSets` fvss)
-
- rnGRHS (GRHS guard expr locn)
- = pushSrcLocRn locn $
- (if not (opt_GlasgowExts || is_standard_guard guard) then
- addWarnRn (nonStdGuardErr guard)
- else
- returnRn ()
- ) `thenRn_`
-
- (rnStmts rnExpr guard $ \ guard' ->
- -- This nested thing deals with scope and
- -- the free vars of the guard, and knocking off the
- -- free vars of the rhs that are bound by the guard
-
- rnExpr expr `thenRn` \ (expr', fvse) ->
- returnRn (GRHS guard' expr' locn, fvse))
-
-- Standard Haskell 1.4 guards are just a single boolean
-- expression, rather than a list of qualifiers as in the
-- Glasgow extension
- is_standard_guard [] = True
- is_standard_guard [GuardStmt _ _] = True
- is_standard_guard other = False
+ is_standard_guard [ResultStmt _ _] = True
+ is_standard_guard [ExprStmt _ _ _, ResultStmt _ _] = True
+ is_standard_guard other = False
\end{code}
%************************************************************************
%************************************************************************
\begin{code}
-rnExprs :: [RdrNameHsExpr] -> RnMS s ([RenamedHsExpr], FreeVars)
+rnExprs :: [RdrNameHsExpr] -> RnM ([RenamedHsExpr], FreeVars)
rnExprs ls = rnExprs' ls emptyUniqSet
where
- rnExprs' [] acc = returnRn ([], acc)
+ rnExprs' [] acc = returnM ([], acc)
rnExprs' (expr:exprs) acc
- = rnExpr expr `thenRn` \ (expr', fvExpr) ->
+ = rnExpr expr `thenM` \ (expr', fvExpr) ->
-- Now we do a "seq" on the free vars because typically it's small
-- or empty, especially in very long lists of constants
let
- acc' = acc `unionNameSets` fvExpr
+ acc' = acc `plusFV` fvExpr
in
- (grubby_seqNameSet acc' rnExprs') exprs acc' `thenRn` \ (exprs', fvExprs) ->
- returnRn (expr':exprs', fvExprs)
+ (grubby_seqNameSet acc' rnExprs') exprs acc' `thenM` \ (exprs', fvExprs) ->
+ returnM (expr':exprs', fvExprs)
-- Grubby little function to do "seq" on namesets; replace by proper seq when GHC can do seq
grubby_seqNameSet ns result | isNullUFM ns = result
| otherwise = result
\end{code}
-Variables. We look up the variable and return the resulting name. The
-interesting question is what the free-variable set should be. We
-don't want to return imported or prelude things as free vars. So we
-look at the Name returned from the lookup, and make it part of the
-free-var set iff if it's a LocallyDefined Name.
-\end{itemize}
+Variables. We look up the variable and return the resulting name.
\begin{code}
-rnExpr :: RdrNameHsExpr -> RnMS s (RenamedHsExpr, FreeVars)
+rnExpr :: RdrNameHsExpr -> RnM (RenamedHsExpr, FreeVars)
rnExpr (HsVar v)
- = tryLookupOccRn v `thenRn` \ res ->
- case res of
- Left (nm,err)
- | opt_GlasgowExts && v == assertRdrName ->
- -- if `assert' is not in scope,
- -- we expand it to (GHCerr.assert__ location)
- mkAssertExpr `thenRn` \ (expr, assert_name) ->
- returnRn (expr, unitNameSet assert_name)
-
- | otherwise -> -- a failure after all.
- failWithRn nm err `thenRn_`
- returnRn (HsVar nm, if isLocallyDefined nm
- then unitNameSet nm
- else emptyUniqSet)
- Right vname ->
- returnRn (HsVar vname, if isLocallyDefined vname
- then unitNameSet vname
- else emptyUniqSet)
+ = lookupOccRn v `thenM` \ name ->
+ if name `hasKey` assertIdKey && not opt_IgnoreAsserts then
+ -- We expand it to (GHC.Err.assertError location_string)
+ mkAssertErrorExpr
+ else
+ -- The normal case. Even if the Id was 'assert', if we are
+ -- ignoring assertions we leave it as GHC.Base.assert;
+ -- this function just ignores its first arg.
+ returnM (HsVar name, unitFV name)
+
+rnExpr (HsIPVar v)
+ = newIPName v `thenM` \ name ->
+ let
+ fvs = case name of
+ Linear _ -> mkFVs [splitName, fstName, sndName]
+ Dupable _ -> emptyFVs
+ in
+ returnM (HsIPVar name, fvs)
rnExpr (HsLit lit)
- = litOccurrence lit `thenRn_`
- returnRn (HsLit lit, emptyNameSet)
+ = litFVs lit `thenM` \ fvs ->
+ returnM (HsLit lit, fvs)
+
+rnExpr (HsOverLit lit)
+ = rnOverLit lit `thenM` \ (lit', fvs) ->
+ returnM (HsOverLit lit', fvs)
rnExpr (HsLam match)
- = rnMatch match `thenRn` \ (match', fvMatch) ->
- returnRn (HsLam match', fvMatch)
+ = rnMatch LambdaExpr match `thenM` \ (match', fvMatch) ->
+ returnM (HsLam match', fvMatch)
rnExpr (HsApp fun arg)
- = rnExpr fun `thenRn` \ (fun',fvFun) ->
- rnExpr arg `thenRn` \ (arg',fvArg) ->
- returnRn (HsApp fun' arg', fvFun `unionNameSets` fvArg)
+ = rnExpr fun `thenM` \ (fun',fvFun) ->
+ rnExpr arg `thenM` \ (arg',fvArg) ->
+ returnM (HsApp fun' arg', fvFun `plusFV` fvArg)
-rnExpr (OpApp e1 op@(HsVar op_name) _ e2)
- = rnExpr e1 `thenRn` \ (e1', fv_e1) ->
- rnExpr e2 `thenRn` \ (e2', fv_e2) ->
- rnExpr op `thenRn` \ (op', fv_op) ->
+rnExpr (OpApp e1 op _ e2)
+ = rnExpr e1 `thenM` \ (e1', fv_e1) ->
+ rnExpr e2 `thenM` \ (e2', fv_e2) ->
+ rnExpr op `thenM` \ (op'@(HsVar op_name), fv_op) ->
-- Deal with fixity
-- When renaming code synthesised from "deriving" declarations
-- we're in Interface mode, and we should ignore fixity; assume
-- that the deriving code generator got the association correct
- lookupFixity op_name `thenRn` \ fixity ->
- getModeRn `thenRn` \ mode ->
- (case mode of
- SourceMode -> mkOpAppRn e1' op' fixity e2'
- InterfaceMode _ _ -> returnRn (OpApp e1' op' fixity e2')
- ) `thenRn` \ final_e ->
-
- returnRn (final_e,
- fv_e1 `unionNameSets` fv_op `unionNameSets` fv_e2)
-
-rnExpr (NegApp e n)
- = rnExpr e `thenRn` \ (e', fv_e) ->
- lookupImplicitOccRn negate_RDR `thenRn` \ neg ->
- mkNegAppRn e' (HsVar neg) `thenRn` \ final_e ->
- returnRn (final_e, fv_e)
+ -- Don't even look up the fixity when in interface mode
+ getModeRn `thenM` \ mode ->
+ (if isInterfaceMode mode
+ then returnM (OpApp e1' op' defaultFixity e2')
+ else lookupFixityRn op_name `thenM` \ fixity ->
+ mkOpAppRn e1' op' fixity e2'
+ ) `thenM` \ final_e ->
+
+ returnM (final_e,
+ fv_e1 `plusFV` fv_op `plusFV` fv_e2)
+
+rnExpr (NegApp e _)
+ = rnExpr e `thenM` \ (e', fv_e) ->
+ lookupSyntaxName negateName `thenM` \ (neg_name, fv_neg) ->
+ mkNegAppRn e' neg_name `thenM` \ final_e ->
+ returnM (final_e, fv_e `plusFV` fv_neg)
rnExpr (HsPar e)
- = rnExpr e `thenRn` \ (e', fvs_e) ->
- returnRn (HsPar e', fvs_e)
-
-rnExpr (SectionL expr op)
- = rnExpr expr `thenRn` \ (expr', fvs_expr) ->
- rnExpr op `thenRn` \ (op', fvs_op) ->
- returnRn (SectionL expr' op', fvs_op `unionNameSets` fvs_expr)
-
-rnExpr (SectionR op expr)
- = rnExpr op `thenRn` \ (op', fvs_op) ->
- rnExpr expr `thenRn` \ (expr', fvs_expr) ->
- returnRn (SectionR op' expr', fvs_op `unionNameSets` fvs_expr)
-
-rnExpr (CCall fun args may_gc is_casm fake_result_ty)
+ = rnExpr e `thenM` \ (e', fvs_e) ->
+ returnM (HsPar e', fvs_e)
+
+-- Template Haskell extensions
+rnExpr (HsBracket br_body)
+ = checkGHCI (thErr "bracket") `thenM_`
+ rnBracket br_body `thenM` \ (body', fvs_e) ->
+ returnM (HsBracket body', fvs_e `addOneFV` qTyConName)
+ -- We use the Q tycon as a proxy to haul in all the smart
+ -- constructors; see the hack in RnIfaces
+
+rnExpr (HsSplice n e)
+ = checkGHCI (thErr "splice") `thenM_`
+ getSrcLocM `thenM` \ loc ->
+ newLocalsRn [(n,loc)] `thenM` \ [n'] ->
+ rnExpr e `thenM` \ (e', fvs_e) ->
+ returnM (HsSplice n' e', fvs_e)
+
+rnExpr section@(SectionL expr op)
+ = rnExpr expr `thenM` \ (expr', fvs_expr) ->
+ rnExpr op `thenM` \ (op', fvs_op) ->
+ checkSectionPrec InfixL section op' expr' `thenM_`
+ returnM (SectionL expr' op', fvs_op `plusFV` fvs_expr)
+
+rnExpr section@(SectionR op expr)
+ = rnExpr op `thenM` \ (op', fvs_op) ->
+ rnExpr expr `thenM` \ (expr', fvs_expr) ->
+ checkSectionPrec InfixR section op' expr' `thenM_`
+ returnM (SectionR op' expr', fvs_op `plusFV` fvs_expr)
+
+rnExpr (HsCCall fun args may_gc is_casm _)
-- Check out the comment on RnIfaces.getNonWiredDataDecl about ccalls
- = lookupImplicitOccRn ccallableClass_RDR `thenRn_`
- lookupImplicitOccRn creturnableClass_RDR `thenRn_`
- lookupImplicitOccRn ioDataCon_RDR `thenRn_`
- lookupImplicitOccRn ioOkDataCon_RDR `thenRn_`
- rnExprs args `thenRn` \ (args', fvs_args) ->
- returnRn (CCall fun args' may_gc is_casm fake_result_ty, fvs_args)
+ = rnExprs args `thenM` \ (args', fvs_args) ->
+ returnM (HsCCall fun args' may_gc is_casm placeHolderType,
+ fvs_args `plusFV` mkFVs [cCallableClassName,
+ cReturnableClassName,
+ ioDataConName])
-rnExpr (HsSCC label expr)
- = rnExpr expr `thenRn` \ (expr', fvs_expr) ->
- returnRn (HsSCC label expr', fvs_expr)
+rnExpr (HsSCC lbl expr)
+ = rnExpr expr `thenM` \ (expr', fvs_expr) ->
+ returnM (HsSCC lbl expr', fvs_expr)
rnExpr (HsCase expr ms src_loc)
- = pushSrcLocRn src_loc $
- rnExpr expr `thenRn` \ (new_expr, e_fvs) ->
- mapAndUnzipRn rnMatch ms `thenRn` \ (new_ms, ms_fvs) ->
- returnRn (HsCase new_expr new_ms src_loc, unionManyNameSets (e_fvs : ms_fvs))
+ = addSrcLoc src_loc $
+ rnExpr expr `thenM` \ (new_expr, e_fvs) ->
+ mapFvRn (rnMatch CaseAlt) ms `thenM` \ (new_ms, ms_fvs) ->
+ returnM (HsCase new_expr new_ms src_loc, e_fvs `plusFV` ms_fvs)
rnExpr (HsLet binds expr)
= rnBinds binds $ \ binds' ->
- rnExpr expr `thenRn` \ (expr',fvExpr) ->
- returnRn (HsLet binds' expr', fvExpr)
-
-rnExpr (HsDo do_or_lc stmts src_loc)
- = pushSrcLocRn src_loc $
- lookupImplicitOccRn monadZeroClass_RDR `thenRn_` -- Forces Monad to come too
- (rnStmts rnExpr stmts $ \ stmts' ->
- returnRn (HsDo do_or_lc stmts' src_loc, emptyNameSet))
-
-rnExpr (ExplicitList exps)
- = addImplicitOccRn listType_name `thenRn_`
- rnExprs exps `thenRn` \ (exps', fvs) ->
- returnRn (ExplicitList exps', fvs)
-
-rnExpr (ExplicitTuple exps)
- = addImplicitOccRn (tupleType_name (length exps)) `thenRn_`
- rnExprs exps `thenRn` \ (exps', fvExps) ->
- returnRn (ExplicitTuple exps', fvExps)
-
-rnExpr (RecordCon con_id _ rbinds)
- = lookupOccRn con_id `thenRn` \ conname ->
- rnRbinds "construction" rbinds `thenRn` \ (rbinds', fvRbinds) ->
- returnRn (RecordCon conname (error "rnExpr:RecordCon") rbinds', fvRbinds)
+ rnExpr expr `thenM` \ (expr',fvExpr) ->
+ returnM (HsLet binds' expr', fvExpr)
+
+rnExpr (HsWith expr binds is_with)
+ = warnIf is_with withWarning `thenM_`
+ rnExpr expr `thenM` \ (expr',fvExpr) ->
+ rnIPBinds binds `thenM` \ (binds',fvBinds) ->
+ returnM (HsWith expr' binds' is_with, fvExpr `plusFV` fvBinds)
+
+rnExpr e@(HsDo do_or_lc stmts _ ty src_loc)
+ = addSrcLoc src_loc $
+ rnStmts stmts `thenM` \ ((_, stmts'), fvs) ->
+
+ -- Check the statement list ends in an expression
+ case last stmts' of {
+ ResultStmt _ _ -> returnM () ;
+ _ -> addErr (doStmtListErr e)
+ } `thenM_`
+
+ -- Generate the rebindable syntax for the monad
+ (case do_or_lc of
+ DoExpr -> mapAndUnzipM lookupSyntaxName monadNames
+ other -> returnM ([], [])
+ ) `thenM` \ (monad_names', monad_fvs) ->
+
+ returnM (HsDo do_or_lc stmts' monad_names' placeHolderType src_loc,
+ fvs `plusFV` implicit_fvs `plusFV` plusFVs monad_fvs)
+ where
+ implicit_fvs = case do_or_lc of
+ PArrComp -> mkFVs [replicatePName, mapPName, filterPName,
+ crossPName, zipPName]
+ ListComp -> mkFVs [foldrName, buildName]
+ DoExpr -> emptyFVs
+
+rnExpr (ExplicitList _ exps)
+ = rnExprs exps `thenM` \ (exps', fvs) ->
+ returnM (ExplicitList placeHolderType exps', fvs `addOneFV` listTyCon_name)
+
+rnExpr (ExplicitPArr _ exps)
+ = rnExprs exps `thenM` \ (exps', fvs) ->
+ returnM (ExplicitPArr placeHolderType exps',
+ fvs `addOneFV` toPName `addOneFV` parrTyCon_name)
+
+rnExpr (ExplicitTuple exps boxity)
+ = rnExprs exps `thenM` \ (exps', fvs) ->
+ returnM (ExplicitTuple exps' boxity, fvs `addOneFV` tycon_name)
+ where
+ tycon_name = tupleTyCon_name boxity (length exps)
+
+rnExpr (RecordCon con_id rbinds)
+ = lookupOccRn con_id `thenM` \ conname ->
+ rnRbinds "construction" rbinds `thenM` \ (rbinds', fvRbinds) ->
+ returnM (RecordCon conname rbinds', fvRbinds `addOneFV` conname)
rnExpr (RecordUpd expr rbinds)
- = rnExpr expr `thenRn` \ (expr', fvExpr) ->
- rnRbinds "update" rbinds `thenRn` \ (rbinds', fvRbinds) ->
- returnRn (RecordUpd expr' rbinds', fvExpr `unionNameSets` fvRbinds)
+ = rnExpr expr `thenM` \ (expr', fvExpr) ->
+ rnRbinds "update" rbinds `thenM` \ (rbinds', fvRbinds) ->
+ returnM (RecordUpd expr' rbinds', fvExpr `plusFV` fvRbinds)
rnExpr (ExprWithTySig expr pty)
- = rnExpr expr `thenRn` \ (expr', fvExpr) ->
- rnHsSigType (text "an expression") pty `thenRn` \ pty' ->
- returnRn (ExprWithTySig expr' pty', fvExpr)
+ = rnExpr expr `thenM` \ (expr', fvExpr) ->
+ rnHsTypeFVs doc pty `thenM` \ (pty', fvTy) ->
+ returnM (ExprWithTySig expr' pty', fvExpr `plusFV` fvTy)
+ where
+ doc = text "In an expression type signature"
rnExpr (HsIf p b1 b2 src_loc)
- = pushSrcLocRn src_loc $
- rnExpr p `thenRn` \ (p', fvP) ->
- rnExpr b1 `thenRn` \ (b1', fvB1) ->
- rnExpr b2 `thenRn` \ (b2', fvB2) ->
- returnRn (HsIf p' b1' b2' src_loc, unionManyNameSets [fvP, fvB1, fvB2])
+ = addSrcLoc src_loc $
+ rnExpr p `thenM` \ (p', fvP) ->
+ rnExpr b1 `thenM` \ (b1', fvB1) ->
+ rnExpr b2 `thenM` \ (b2', fvB2) ->
+ returnM (HsIf p' b1' b2' src_loc, plusFVs [fvP, fvB1, fvB2])
+
+rnExpr (HsType a)
+ = rnHsTypeFVs doc a `thenM` \ (t, fvT) ->
+ returnM (HsType t, fvT)
+ where
+ doc = text "In a type argument"
rnExpr (ArithSeqIn seq)
- = lookupImplicitOccRn enumClass_RDR `thenRn_`
- rn_seq seq `thenRn` \ (new_seq, fvs) ->
- returnRn (ArithSeqIn new_seq, fvs)
+ = rn_seq seq `thenM` \ (new_seq, fvs) ->
+ returnM (ArithSeqIn new_seq, fvs `addOneFV` enumClassName)
where
rn_seq (From expr)
- = rnExpr expr `thenRn` \ (expr', fvExpr) ->
- returnRn (From expr', fvExpr)
+ = rnExpr expr `thenM` \ (expr', fvExpr) ->
+ returnM (From expr', fvExpr)
rn_seq (FromThen expr1 expr2)
- = rnExpr expr1 `thenRn` \ (expr1', fvExpr1) ->
- rnExpr expr2 `thenRn` \ (expr2', fvExpr2) ->
- returnRn (FromThen expr1' expr2', fvExpr1 `unionNameSets` fvExpr2)
+ = rnExpr expr1 `thenM` \ (expr1', fvExpr1) ->
+ rnExpr expr2 `thenM` \ (expr2', fvExpr2) ->
+ returnM (FromThen expr1' expr2', fvExpr1 `plusFV` fvExpr2)
rn_seq (FromTo expr1 expr2)
- = rnExpr expr1 `thenRn` \ (expr1', fvExpr1) ->
- rnExpr expr2 `thenRn` \ (expr2', fvExpr2) ->
- returnRn (FromTo expr1' expr2', fvExpr1 `unionNameSets` fvExpr2)
+ = rnExpr expr1 `thenM` \ (expr1', fvExpr1) ->
+ rnExpr expr2 `thenM` \ (expr2', fvExpr2) ->
+ returnM (FromTo expr1' expr2', fvExpr1 `plusFV` fvExpr2)
rn_seq (FromThenTo expr1 expr2 expr3)
- = rnExpr expr1 `thenRn` \ (expr1', fvExpr1) ->
- rnExpr expr2 `thenRn` \ (expr2', fvExpr2) ->
- rnExpr expr3 `thenRn` \ (expr3', fvExpr3) ->
- returnRn (FromThenTo expr1' expr2' expr3',
- unionManyNameSets [fvExpr1, fvExpr2, fvExpr3])
+ = rnExpr expr1 `thenM` \ (expr1', fvExpr1) ->
+ rnExpr expr2 `thenM` \ (expr2', fvExpr2) ->
+ rnExpr expr3 `thenM` \ (expr3', fvExpr3) ->
+ returnM (FromThenTo expr1' expr2' expr3',
+ plusFVs [fvExpr1, fvExpr2, fvExpr3])
+
+rnExpr (PArrSeqIn seq)
+ = rn_seq seq `thenM` \ (new_seq, fvs) ->
+ returnM (PArrSeqIn new_seq,
+ fvs `plusFV` mkFVs [enumFromToPName, enumFromThenToPName])
+ where
+
+ -- the parser shouldn't generate these two
+ --
+ rn_seq (From _ ) = panic "RnExpr.rnExpr: Infinite parallel array!"
+ rn_seq (FromThen _ _) = panic "RnExpr.rnExpr: Infinite parallel array!"
+
+ rn_seq (FromTo expr1 expr2)
+ = rnExpr expr1 `thenM` \ (expr1', fvExpr1) ->
+ rnExpr expr2 `thenM` \ (expr2', fvExpr2) ->
+ returnM (FromTo expr1' expr2', fvExpr1 `plusFV` fvExpr2)
+ rn_seq (FromThenTo expr1 expr2 expr3)
+ = rnExpr expr1 `thenM` \ (expr1', fvExpr1) ->
+ rnExpr expr2 `thenM` \ (expr2', fvExpr2) ->
+ rnExpr expr3 `thenM` \ (expr3', fvExpr3) ->
+ returnM (FromThenTo expr1' expr2' expr3',
+ plusFVs [fvExpr1, fvExpr2, fvExpr3])
+\end{code}
+
+These three are pattern syntax appearing in expressions.
+Since all the symbols are reservedops we can simply reject them.
+We return a (bogus) EWildPat in each case.
+
+\begin{code}
+rnExpr e@EWildPat = addErr (patSynErr e) `thenM_`
+ returnM (EWildPat, emptyFVs)
+
+rnExpr e@(EAsPat _ _) = addErr (patSynErr e) `thenM_`
+ returnM (EWildPat, emptyFVs)
+
+rnExpr e@(ELazyPat _) = addErr (patSynErr e) `thenM_`
+ returnM (EWildPat, emptyFVs)
\end{code}
+
+
%************************************************************************
%* *
\subsubsection{@Rbinds@s and @Rpats@s: in record expressions}
\begin{code}
rnRbinds str rbinds
- = mapRn field_dup_err dup_fields `thenRn_`
- mapAndUnzipRn rn_rbind rbinds `thenRn` \ (rbinds', fvRbind_s) ->
- returnRn (rbinds', unionManyNameSets fvRbind_s)
+ = mappM_ field_dup_err dup_fields `thenM_`
+ mapFvRn rn_rbind rbinds `thenM` \ (rbinds', fvRbind) ->
+ returnM (rbinds', fvRbind)
where
- (_, dup_fields) = removeDups compare [ f | (f,_,_) <- rbinds ]
+ (_, dup_fields) = removeDups compare [ f | (f,_) <- rbinds ]
- field_dup_err dups = addErrRn (dupFieldErr str dups)
+ field_dup_err dups = addErr (dupFieldErr str dups)
- rn_rbind (field, expr, pun)
- = lookupGlobalOccRn field `thenRn` \ fieldname ->
- rnExpr expr `thenRn` \ (expr', fvExpr) ->
- returnRn ((fieldname, expr', pun), fvExpr)
+ rn_rbind (field, expr)
+ = lookupGlobalOccRn field `thenM` \ fieldname ->
+ rnExpr expr `thenM` \ (expr', fvExpr) ->
+ returnM ((fieldname, expr'), fvExpr `addOneFV` fieldname)
rnRpats rpats
- = mapRn field_dup_err dup_fields `thenRn_`
- mapRn rn_rpat rpats
+ = mappM_ field_dup_err dup_fields `thenM_`
+ mapFvRn rn_rpat rpats `thenM` \ (rpats', fvs) ->
+ returnM (rpats', fvs)
where
- (_, dup_fields) = removeDups compare [ f | (f,_,_) <- rpats ]
+ (_, dup_fields) = removeDups compare [ f | (f,_) <- rpats ]
+
+ field_dup_err dups = addErr (dupFieldErr "pattern" dups)
+
+ rn_rpat (field, pat)
+ = lookupGlobalOccRn field `thenM` \ fieldname ->
+ rnPat pat `thenM` \ (pat', fvs) ->
+ returnM ((fieldname, pat'), fvs `addOneFV` fieldname)
+\end{code}
+
+%************************************************************************
+%* *
+\subsubsection{@rnIPBinds@s: in implicit parameter bindings} *
+%* *
+%************************************************************************
+
+\begin{code}
+rnIPBinds [] = returnM ([], emptyFVs)
+rnIPBinds ((n, expr) : binds)
+ = newIPName n `thenM` \ name ->
+ rnExpr expr `thenM` \ (expr',fvExpr) ->
+ rnIPBinds binds `thenM` \ (binds',fvBinds) ->
+ returnM ((name, expr') : binds', fvExpr `plusFV` fvBinds)
+
+\end{code}
- field_dup_err dups = addErrRn (dupFieldErr "pattern" dups)
+%************************************************************************
+%* *
+ Template Haskell brackets
+%* *
+%************************************************************************
- rn_rpat (field, pat, pun)
- = lookupGlobalOccRn field `thenRn` \ fieldname ->
- rnPat pat `thenRn` \ pat' ->
- returnRn (fieldname, pat', pun)
+\begin{code}
+rnBracket (ExpBr e) = rnExpr e `thenM` \ (e', fvs) ->
+ returnM (ExpBr e', fvs)
+rnBracket (PatBr p) = rnPat p `thenM` \ (p', fvs) ->
+ returnM (PatBr p', fvs)
+rnBracket (TypBr t) = rnHsTypeFVs doc t `thenM` \ (t', fvs) ->
+ returnM (TypBr t', fvs)
+ where
+ doc = ptext SLIT("In a Template-Haskell quoted type")
+rnBracket (DecBr ds) = rnSrcDecls ds `thenM` \ (tcg_env, ds', fvs) ->
+ -- Discard the tcg_env; it contains the extended global RdrEnv
+ -- because there is no scope that these decls cover (yet!)
+ returnM (DecBr ds', fvs)
\end{code}
%************************************************************************
Quals.
\begin{code}
-type RnExprTy s = RdrNameHsExpr -> RnMS s (RenamedHsExpr, FreeVars)
-
-rnStmts :: RnExprTy s
- -> [RdrNameStmt]
- -> ([RenamedStmt] -> RnMS s (a, FreeVars))
- -> RnMS s (a, FreeVars)
-
-rnStmts rn_expr [] thing_inside
- = thing_inside []
-
-rnStmts rn_expr (stmt:stmts) thing_inside
- = rnStmt rn_expr stmt $ \ stmt' ->
- rnStmts rn_expr stmts $ \ stmts' ->
- thing_inside (stmt' : stmts')
-
-rnStmt :: RnExprTy s -> RdrNameStmt -> (RenamedStmt -> RnMS s (a, FreeVars)) -> RnMS s (a, FreeVars)
--- Because of mutual recursion we have to pass in rnExpr.
-
-rnStmt rn_expr (BindStmt pat expr src_loc) thing_inside
- = pushSrcLocRn src_loc $
- rn_expr expr `thenRn` \ (expr', fv_expr) ->
- bindLocalsRn "pattern in do binding" binders $ \ new_binders ->
- rnPat pat `thenRn` \ pat' ->
-
- thing_inside (BindStmt pat' expr' src_loc) `thenRn` \ (result, fvs) ->
- returnRn (result, fv_expr `unionNameSets` (fvs `minusNameSet` mkNameSet new_binders))
+rnStmts :: [RdrNameStmt]
+ -> RnM (([Name], [RenamedStmt]), FreeVars)
+
+rnStmts []
+ = returnM (([], []), emptyFVs)
+
+rnStmts (stmt:stmts)
+ = getLocalRdrEnv `thenM` \ name_env ->
+ rnStmt stmt $ \ stmt' ->
+ rnStmts stmts `thenM` \ ((binders, stmts'), fvs) ->
+ returnM ((binders, stmt' : stmts'), fvs)
+
+rnStmt :: RdrNameStmt
+ -> (RenamedStmt -> RnM (([Name], a), FreeVars))
+ -> RnM (([Name], a), FreeVars)
+-- The thing list of names returned is the list returned by the
+-- thing_inside, plus the binders of the arguments stmt
+
+rnStmt (ParStmt stmtss) thing_inside
+ = mapFvRn rnStmts stmtss `thenM` \ (bndrstmtss, fv_stmtss) ->
+ let binderss = map fst bndrstmtss
+ checkBndrs all_bndrs bndrs
+ = checkErr (null (intersectBy eqOcc all_bndrs bndrs)) err `thenM_`
+ returnM (bndrs ++ all_bndrs)
+ eqOcc n1 n2 = nameOccName n1 == nameOccName n2
+ err = text "duplicate binding in parallel list comprehension"
+ in
+ foldlM checkBndrs [] binderss `thenM` \ new_binders ->
+ bindLocalNamesFV new_binders $
+ thing_inside (ParStmtOut bndrstmtss)`thenM` \ ((rest_bndrs, result), fv_rest) ->
+ returnM ((new_binders ++ rest_bndrs, result), fv_stmtss `plusFV` fv_rest)
+
+rnStmt (BindStmt pat expr src_loc) thing_inside
+ = addSrcLoc src_loc $
+ rnExpr expr `thenM` \ (expr', fv_expr) ->
+ bindPatSigTyVars (collectSigTysFromPat pat) $
+ bindLocalsFVRn doc (collectPatBinders pat) $ \ new_binders ->
+ rnPat pat `thenM` \ (pat', fv_pat) ->
+ thing_inside (BindStmt pat' expr' src_loc) `thenM` \ ((rest_binders, result), fvs) ->
+ returnM ((new_binders ++ rest_binders, result),
+ fv_expr `plusFV` fvs `plusFV` fv_pat)
where
- binders = collectPatBinders pat
-
-rnStmt rn_expr (ExprStmt expr src_loc) thing_inside
- = pushSrcLocRn src_loc $
- rn_expr expr `thenRn` \ (expr', fv_expr) ->
- thing_inside (ExprStmt expr' src_loc) `thenRn` \ (result, fvs) ->
- returnRn (result, fv_expr `unionNameSets` fvs)
-
-rnStmt rn_expr (GuardStmt expr src_loc) thing_inside
- = pushSrcLocRn src_loc $
- rn_expr expr `thenRn` \ (expr', fv_expr) ->
- thing_inside (GuardStmt expr' src_loc) `thenRn` \ (result, fvs) ->
- returnRn (result, fv_expr `unionNameSets` fvs)
-
-rnStmt rn_expr (ReturnStmt expr) thing_inside
- = rn_expr expr `thenRn` \ (expr', fv_expr) ->
- thing_inside (ReturnStmt expr') `thenRn` \ (result, fvs) ->
- returnRn (result, fv_expr `unionNameSets` fvs)
-
-rnStmt rn_expr (LetStmt binds) thing_inside
- = rnBinds binds $ \ binds' ->
- thing_inside (LetStmt binds')
+ doc = text "In a pattern in 'do' binding"
+
+rnStmt (ExprStmt expr _ src_loc) thing_inside
+ = addSrcLoc src_loc $
+ rnExpr expr `thenM` \ (expr', fv_expr) ->
+ thing_inside (ExprStmt expr' placeHolderType src_loc) `thenM` \ (result, fvs) ->
+ returnM (result, fv_expr `plusFV` fvs)
+
+rnStmt (ResultStmt expr src_loc) thing_inside
+ = addSrcLoc src_loc $
+ rnExpr expr `thenM` \ (expr', fv_expr) ->
+ thing_inside (ResultStmt expr' src_loc) `thenM` \ (result, fvs) ->
+ returnM (result, fv_expr `plusFV` fvs)
+
+rnStmt (LetStmt binds) thing_inside
+ = rnBinds binds $ \ binds' ->
+ let new_binders = collectHsBinders binds' in
+ thing_inside (LetStmt binds') `thenM` \ ((rest_binders, result), fvs) ->
+ returnM ((new_binders ++ rest_binders, result), fvs )
\end{code}
%************************************************************************
Furthermore, the second argument is guaranteed not to be another
operator application. Why? Because the parser parses all
-operator appications left-associatively.
+operator appications left-associatively, EXCEPT negation, which
+we need to handle specially.
\begin{code}
-mkOpAppRn :: RenamedHsExpr -> RenamedHsExpr -> Fixity -> RenamedHsExpr
- -> RnMS s RenamedHsExpr
-
-mkOpAppRn e1@(OpApp e11 op1 fix1 e12)
- op2 fix2 e2
+mkOpAppRn :: RenamedHsExpr -- Left operand; already rearranged
+ -> RenamedHsExpr -> Fixity -- Operator and fixity
+ -> RenamedHsExpr -- Right operand (not an OpApp, but might
+ -- be a NegApp)
+ -> RnM RenamedHsExpr
+
+---------------------------
+-- (e11 `op1` e12) `op2` e2
+mkOpAppRn e1@(OpApp e11 op1 fix1 e12) op2 fix2 e2
| nofix_error
- = addErrRn (precParseErr (get op1,fix1) (get op2,fix2)) `thenRn_`
- returnRn (OpApp e1 op2 fix2 e2)
+ = addErr (precParseErr (ppr_op op1,fix1) (ppr_op op2,fix2)) `thenM_`
+ returnM (OpApp e1 op2 fix2 e2)
- | rearrange_me
- = mkOpAppRn e12 op2 fix2 e2 `thenRn` \ new_e ->
- returnRn (OpApp e11 op1 fix1 new_e)
+ | associate_right
+ = mkOpAppRn e12 op2 fix2 e2 `thenM` \ new_e ->
+ returnM (OpApp e11 op1 fix1 new_e)
where
- (nofix_error, rearrange_me) = compareFixity fix1 fix2
+ (nofix_error, associate_right) = compareFixity fix1 fix2
-mkOpAppRn e1@(NegApp neg_arg neg_op)
- op2
- fix2@(Fixity prec2 dir2)
- e2
+---------------------------
+-- (- neg_arg) `op` e2
+mkOpAppRn e1@(NegApp neg_arg neg_name) op2 fix2 e2
| nofix_error
- = addErrRn (precParseErr (get neg_op,fix_neg) (get op2,fix2)) `thenRn_`
- returnRn (OpApp e1 op2 fix2 e2)
+ = addErr (precParseErr (pp_prefix_minus,negateFixity) (ppr_op op2,fix2)) `thenM_`
+ returnM (OpApp e1 op2 fix2 e2)
- | rearrange_me
- = mkOpAppRn neg_arg op2 fix2 e2 `thenRn` \ new_e ->
- returnRn (NegApp new_e neg_op)
+ | associate_right
+ = mkOpAppRn neg_arg op2 fix2 e2 `thenM` \ new_e ->
+ returnM (NegApp new_e neg_name)
+ where
+ (nofix_error, associate_right) = compareFixity negateFixity fix2
+
+---------------------------
+-- e1 `op` - neg_arg
+mkOpAppRn e1 op1 fix1 e2@(NegApp neg_arg _) -- NegApp can occur on the right
+ | not associate_right -- We *want* right association
+ = addErr (precParseErr (ppr_op op1, fix1) (pp_prefix_minus, negateFixity)) `thenM_`
+ returnM (OpApp e1 op1 fix1 e2)
where
- fix_neg = Fixity 6 InfixL -- Precedence of unary negate is wired in as infixl 6!
- (nofix_error, rearrange_me) = compareFixity fix_neg fix2
+ (_, associate_right) = compareFixity fix1 negateFixity
+---------------------------
+-- Default case
mkOpAppRn e1 op fix e2 -- Default case, no rearrangment
- = ASSERT( if right_op_ok fix e2 then True
- else pprPanic "mkOpAppRn" (vcat [ppr e1, text "---", ppr op, text "---", ppr fix, text "---", ppr e2])
+ = ASSERT2( right_op_ok fix e2,
+ ppr e1 $$ text "---" $$ ppr op $$ text "---" $$ ppr fix $$ text "---" $$ ppr e2
)
- returnRn (OpApp e1 op fix e2)
-
-get (HsVar n) = n
+ returnM (OpApp e1 op fix e2)
-- Parser left-associates everything, but
-- derived instances may have correctly-associated things to
= True
-- Parser initially makes negation bind more tightly than any other operator
-mkNegAppRn neg_arg neg_op
+mkNegAppRn neg_arg neg_name
=
#ifdef DEBUG
- getModeRn `thenRn` \ mode ->
+ getModeRn `thenM` \ mode ->
ASSERT( not_op_app mode neg_arg )
#endif
- returnRn (NegApp neg_arg neg_op)
+ returnM (NegApp neg_arg neg_name)
not_op_app SourceMode (OpApp _ _ _ _) = False
not_op_app mode other = True
\end{code}
\begin{code}
-mkConOpPatRn :: RenamedPat -> Name -> Fixity -> RenamedPat
- -> RnMS s RenamedPat
+mkConOpPatRn :: Name -> Fixity -> RenamedPat -> RenamedPat
+ -> RnM RenamedPat
-mkConOpPatRn p1@(ConOpPatIn p11 op1 fix1 p12)
- op2 fix2 p2
- | nofix_error
- = addErrRn (precParseErr (op1,fix1) (op2,fix2)) `thenRn_`
- returnRn (ConOpPatIn p1 op2 fix2 p2)
-
- | rearrange_me
- = mkConOpPatRn p12 op2 fix2 p2 `thenRn` \ new_p ->
- returnRn (ConOpPatIn p11 op1 fix1 new_p)
-
- where
- (nofix_error, rearrange_me) = compareFixity fix1 fix2
-
-mkConOpPatRn p1@(NegPatIn neg_arg)
- op2
- fix2@(Fixity prec2 dir2)
- p2
- | prec2 > 6 -- Precedence of unary - is wired in as 6!
- = addErrRn (precParseNegPatErr (op2,fix2)) `thenRn_`
- returnRn (ConOpPatIn p1 op2 fix2 p2)
-
-mkConOpPatRn p1 op fix p2 -- Default case, no rearrangment
+mkConOpPatRn op2 fix2 p1@(ConPatIn op1 (InfixCon p11 p12)) p2
+ = lookupFixityRn op1 `thenM` \ fix1 ->
+ let
+ (nofix_error, associate_right) = compareFixity fix1 fix2
+ in
+ if nofix_error then
+ addErr (precParseErr (ppr_op op1,fix1) (ppr_op op2,fix2)) `thenM_`
+ returnM (ConPatIn op2 (InfixCon p1 p2))
+ else
+ if associate_right then
+ mkConOpPatRn op2 fix2 p12 p2 `thenM` \ new_p ->
+ returnM (ConPatIn op1 (InfixCon p11 new_p))
+ else
+ returnM (ConPatIn op2 (InfixCon p1 p2))
+
+mkConOpPatRn op fix p1 p2 -- Default case, no rearrangment
= ASSERT( not_op_pat p2 )
- returnRn (ConOpPatIn p1 op fix p2)
+ returnM (ConPatIn op (InfixCon p1 p2))
-not_op_pat (ConOpPatIn _ _ _ _) = False
-not_op_pat other = True
+not_op_pat (ConPatIn _ (InfixCon _ _)) = False
+not_op_pat other = True
\end{code}
\begin{code}
-checkPrecMatch :: Bool -> RdrName -> RdrNameMatch -> RnMS s ()
+checkPrecMatch :: Bool -> Name -> RenamedMatch -> RnM ()
checkPrecMatch False fn match
- = returnRn ()
-checkPrecMatch True op (PatMatch p1 (PatMatch p2 (GRHSMatch _)))
- = checkPrec op p1 False `thenRn_`
- checkPrec op p2 True
-checkPrecMatch True op _
- = panic "checkPrecMatch"
-
-checkPrec op (ConOpPatIn _ op1 _ _) right
- = lookupFixity op `thenRn` \ op_fix@(Fixity op_prec op_dir) ->
- lookupFixity op1 `thenRn` \ op1_fix@(Fixity op1_prec op1_dir) ->
+ = returnM ()
+
+checkPrecMatch True op (Match (p1:p2:_) _ _)
+ -- True indicates an infix lhs
+ = getModeRn `thenM` \ mode ->
+ -- See comments with rnExpr (OpApp ...)
+ if isInterfaceMode mode
+ then returnM ()
+ else checkPrec op p1 False `thenM_`
+ checkPrec op p2 True
+
+checkPrecMatch True op _ = panic "checkPrecMatch"
+
+checkPrec op (ConPatIn op1 (InfixCon _ _)) right
+ = lookupFixityRn op `thenM` \ op_fix@(Fixity op_prec op_dir) ->
+ lookupFixityRn op1 `thenM` \ op1_fix@(Fixity op1_prec op1_dir) ->
let
inf_ok = op1_prec > op_prec ||
(op1_prec == op_prec &&
(op1_dir == InfixR && op_dir == InfixR && right ||
op1_dir == InfixL && op_dir == InfixL && not right))
- info = (op,op_fix)
- info1 = (op1,op1_fix)
+ info = (ppr_op op, op_fix)
+ info1 = (ppr_op op1, op1_fix)
(infol, infor) = if right then (info, info1) else (info1, info)
in
- checkRn inf_ok (precParseErr infol infor)
-
-checkPrec op (NegPatIn _) right
- = lookupFixity op `thenRn` \ op_fix@(Fixity op_prec op_dir) ->
- checkRn (op_prec <= 6) (precParseNegPatErr (op,op_fix))
+ checkErr inf_ok (precParseErr infol infor)
checkPrec op pat right
- = returnRn ()
-\end{code}
-
-Consider
- a `op1` b `op2` c
-
-(compareFixity op1 op2) tells which way to arrange appication, or
-whether there's an error.
-
-\begin{code}
-compareFixity :: Fixity -> Fixity
- -> (Bool, -- Error please
- Bool) -- Associate to the right: a op1 (b op2 c)
-compareFixity (Fixity prec1 dir1) (Fixity prec2 dir2)
- = case prec1 `compare` prec2 of
- GT -> left
- LT -> right
- EQ -> case (dir1, dir2) of
- (InfixR, InfixR) -> right
- (InfixL, InfixL) -> left
- _ -> error_please
+ = returnM ()
+
+-- Check precedence of (arg op) or (op arg) respectively
+-- If arg is itself an operator application, then either
+-- (a) its precedence must be higher than that of op
+-- (b) its precedency & associativity must be the same as that of op
+checkSectionPrec direction section op arg
+ = case arg of
+ OpApp _ op fix _ -> go_for_it (ppr_op op) fix
+ NegApp _ _ -> go_for_it pp_prefix_minus negateFixity
+ other -> returnM ()
where
- right = (False, True)
- left = (False, False)
- error_please = (True, False)
+ HsVar op_name = op
+ go_for_it pp_arg_op arg_fix@(Fixity arg_prec assoc)
+ = lookupFixityRn op_name `thenM` \ op_fix@(Fixity op_prec _) ->
+ checkErr (op_prec < arg_prec
+ || op_prec == arg_prec && direction == assoc)
+ (sectionPrecErr (ppr_op op_name, op_fix)
+ (pp_arg_op, arg_fix) section)
\end{code}
+
%************************************************************************
%* *
\subsubsection{Literals}
%* *
%************************************************************************
-When literals occur we have to make sure that the types and classes they involve
+When literals occur we have to make sure
+that the types and classes they involve
are made available.
\begin{code}
-litOccurrence (HsChar _)
- = addImplicitOccRn charType_name
-
-litOccurrence (HsCharPrim _)
- = addImplicitOccRn (getName charPrimTyCon)
-
-litOccurrence (HsString _)
- = addImplicitOccRn listType_name `thenRn_`
- addImplicitOccRn charType_name
-
-litOccurrence (HsStringPrim _)
- = addImplicitOccRn (getName addrPrimTyCon)
-
-litOccurrence (HsInt _)
- = lookupImplicitOccRn numClass_RDR -- Int and Integer are forced in by Num
+litFVs (HsChar c)
+ = checkErr (inCharRange c) (bogusCharError c) `thenM_`
+ returnM (unitFV charTyCon_name)
+
+litFVs (HsCharPrim c) = returnM (unitFV (getName charPrimTyCon))
+litFVs (HsString s) = returnM (mkFVs [listTyCon_name, charTyCon_name])
+litFVs (HsStringPrim s) = returnM (unitFV (getName addrPrimTyCon))
+litFVs (HsInt i) = returnM (unitFV (getName intTyCon))
+litFVs (HsIntPrim i) = returnM (unitFV (getName intPrimTyCon))
+litFVs (HsFloatPrim f) = returnM (unitFV (getName floatPrimTyCon))
+litFVs (HsDoublePrim d) = returnM (unitFV (getName doublePrimTyCon))
+litFVs (HsLitLit l bogus_ty) = returnM (unitFV cCallableClassName)
+litFVs lit = pprPanic "RnExpr.litFVs" (ppr lit) -- HsInteger and HsRat only appear
+ -- in post-typechecker translations
+
+rnOverLit (HsIntegral i _)
+ = lookupSyntaxName fromIntegerName `thenM` \ (from_integer_name, fvs) ->
+ if inIntRange i then
+ returnM (HsIntegral i from_integer_name, fvs)
+ else let
+ extra_fvs = mkFVs [plusIntegerName, timesIntegerName]
+ -- Big integer literals are built, using + and *,
+ -- out of small integers (DsUtils.mkIntegerLit)
+ -- [NB: plusInteger, timesInteger aren't rebindable...
+ -- they are used to construct the argument to fromInteger,
+ -- which is the rebindable one.]
+ in
+ returnM (HsIntegral i from_integer_name, fvs `plusFV` extra_fvs)
-litOccurrence (HsFrac _)
- = lookupImplicitOccRn fractionalClass_RDR `thenRn_`
- lookupImplicitOccRn ratioDataCon_RDR
+rnOverLit (HsFractional i _)
+ = lookupSyntaxName fromRationalName `thenM` \ (from_rat_name, fvs) ->
+ let
+ extra_fvs = mkFVs [ratioDataConName, plusIntegerName, timesIntegerName]
-- We have to make sure that the Ratio type is imported with
-- its constructor, because literals of type Ratio t are
-- built with that constructor.
-- The Rational type is needed too, but that will come in
- -- when fractionalClass does.
-
-litOccurrence (HsIntPrim _)
- = addImplicitOccRn (getName intPrimTyCon)
-
-litOccurrence (HsFloatPrim _)
- = addImplicitOccRn (getName floatPrimTyCon)
-
-litOccurrence (HsDoublePrim _)
- = addImplicitOccRn (getName doublePrimTyCon)
-
-litOccurrence (HsLitLit _)
- = lookupImplicitOccRn ccallableClass_RDR
+ -- as part of the type for fromRational.
+ -- The plus/times integer operations may be needed to construct the numerator
+ -- and denominator (see DsUtils.mkIntegerLit)
+ in
+ returnM (HsFractional i from_rat_name, fvs `plusFV` extra_fvs)
\end{code}
%************************************************************************
%************************************************************************
\begin{code}
-mkAssertExpr :: RnMS s (RenamedHsExpr, Name)
-mkAssertExpr =
- newImportedGlobalName mod occ HiFile `thenRn` \ name ->
- addOccurrenceName name `thenRn_`
- getSrcLocRn `thenRn` \ sloc ->
- let
- expr = HsApp (HsVar name)
- (HsLit (HsString (_PK_ (showSDoc (ppr sloc)))))
- in
- returnRn (expr, name)
-
- where
- mod = rdrNameModule assert_RDR
- occ = rdrNameOcc assert_RDR
-
-assertRdrName :: RdrName
-assertRdrName = Unqual (VarOcc SLIT("assert"))
+mkAssertErrorExpr :: RnM (RenamedHsExpr, FreeVars)
+-- Return an expression for (assertError "Foo.hs:27")
+mkAssertErrorExpr
+ = getSrcLocM `thenM` \ sloc ->
+ let
+ expr = HsApp (HsVar assertErrorName) (HsLit msg)
+ msg = HsStringPrim (mkFastString (stringToUtf8 (showSDoc (ppr sloc))))
+ in
+ returnM (expr, unitFV assertErrorName)
\end{code}
%************************************************************************
%************************************************************************
\begin{code}
+ppr_op op = quotes (ppr op) -- Here, op can be a Name or a (Var n), where n is a Name
+pp_prefix_minus = ptext SLIT("prefix `-'")
+
dupFieldErr str (dup:rest)
= hsep [ptext SLIT("duplicate field name"),
quotes (ppr dup),
ptext SLIT("in record"), text str]
-negPatErr pat
- = sep [ptext SLIT("prefix `-' not applied to literal in pattern"), quotes (ppr pat)]
-
-precParseNegPatErr op
- = hang (ptext SLIT("precedence parsing error"))
- 4 (hsep [ptext SLIT("prefix `-' has lower precedence than"),
- quotes (pp_op op),
- ptext SLIT("in pattern")])
-
-precParseErr op1 op2
- = hang (ptext SLIT("precedence parsing error"))
- 4 (hsep [ptext SLIT("cannot mix"), quotes (pp_op op1), ptext SLIT("and"),
- quotes (pp_op op2),
- ptext SLIT("in the same infix expression")])
-
nonStdGuardErr guard
- = hang (ptext SLIT("accepting non-standard pattern guards (-fglasgow-exts to suppress this message)"))
- 4 (ppr guard)
-
-pp_op (op, fix) = hcat [ppr op, space, parens (ppr fix)]
+ = hang (ptext
+ SLIT("accepting non-standard pattern guards (-fglasgow-exts to suppress this message)")
+ ) 4 (ppr guard)
+
+patSigErr ty
+ = (ptext SLIT("Illegal signature in pattern:") <+> ppr ty)
+ $$ nest 4 (ptext SLIT("Use -fglasgow-exts to permit it"))
+
+patSynErr e
+ = sep [ptext SLIT("Pattern syntax in expression context:"),
+ nest 4 (ppr e)]
+
+thErr what
+ = ptext SLIT("Template Haskell") <+> text what <+>
+ ptext SLIT("illegal in a stage-1 compiler")
+
+doStmtListErr e
+ = sep [ptext SLIT("`do' statements must end in expression:"),
+ nest 4 (ppr e)]
+
+bogusCharError c
+ = ptext SLIT("character literal out of range: '\\") <> int c <> char '\''
+
+withWarning
+ = sep [quotes (ptext SLIT("with")),
+ ptext SLIT("is deprecated, use"),
+ quotes (ptext SLIT("let")),
+ ptext SLIT("instead")]
\end{code}