module TcSimplify (
tcSimplifyInfer, tcSimplifyInferCheck,
tcSimplifyCheck, tcSimplifyRestricted,
- tcSimplifyToDicts, tcSimplifyIPs, tcSimplifyTop,
+ tcSimplifyToDicts, tcSimplifyIPs,
+ tcSimplifySuperClasses,
+ tcSimplifyTop, tcSimplifyInteractive,
tcSimplifyBracket,
tcSimplifyDeriv, tcSimplifyDefault,
#include "HsVersions.h"
import {-# SOURCE #-} TcUnify( unifyTauTy )
-import TcEnv -- temp
-import HsSyn ( MonoBinds(..), HsExpr(..), andMonoBinds, andMonoBindList )
-import TcHsSyn ( TcExpr, TcId,
- TcMonoBinds, TcDictBinds
- )
+import HsSyn ( HsBind(..), HsExpr(..), LHsExpr, emptyLHsBinds )
+import TcHsSyn ( mkHsApp, mkHsTyApp, mkHsDictApp )
import TcRnMonad
import Inst ( lookupInst, LookupInstResult(..),
- tyVarsOfInst, fdPredsOfInsts, fdPredsOfInst, newDicts,
+ tyVarsOfInst, fdPredsOfInsts, newDicts,
isDict, isClassDict, isLinearInst, linearInstType,
- isStdClassTyVarDict, isMethodFor, isMethod,
+ isMethodFor, isMethod,
instToId, tyVarsOfInsts, cloneDict,
ipNamesOfInsts, ipNamesOfInst, dictPred,
- instBindingRequired, instCanBeGeneralised,
- newDictsFromOld, tcInstClassOp,
- getDictClassTys, isTyVarDict,
- instLoc, pprInst, zonkInst, tidyInsts, tidyMoreInsts,
- Inst, pprInsts, pprInstsInFull,
- isIPDict, isInheritableInst
+ fdPredsOfInst,
+ newDictsAtLoc, tcInstClassOp,
+ getDictClassTys, isTyVarDict, instLoc,
+ zonkInst, tidyInsts, tidyMoreInsts,
+ pprInsts, pprDictsInFull, pprInstInFull, tcGetInstEnvs,
+ isInheritableInst, pprDictsTheta
)
-import TcEnv ( tcGetGlobalTyVars, tcGetInstEnv, tcLookupId, findGlobals )
-import InstEnv ( lookupInstEnv, classInstEnv, InstLookupResult(..) )
+import TcEnv ( tcGetGlobalTyVars, tcLookupId, findGlobals, pprBinders,
+ lclEnvElts, tcMetaTy )
+import InstEnv ( lookupInstEnv, classInstances, pprInstances )
import TcMType ( zonkTcTyVarsAndFV, tcInstTyVars, checkAmbiguity )
-import TcType ( TcTyVar, TcTyVarSet, ThetaType, TyVarDetails(VanillaTv),
- mkClassPred, isOverloadedTy, mkTyConApp,
+import TcType ( TcTyVar, TcTyVarSet, ThetaType, TcPredType,
+ mkClassPred, isOverloadedTy, mkTyConApp, isSkolemTyVar,
mkTyVarTy, tcGetTyVar, isTyVarClassPred, mkTyVarTys,
- tyVarsOfPred )
+ tyVarsOfPred, tcEqType, pprPred, mkPredTy, tcIsTyVarTy )
+import TcIface ( checkWiredInTyCon )
import Id ( idType, mkUserLocal )
import Var ( TyVar )
-import Name ( getOccName, getSrcLoc )
+import Name ( Name, getOccName, getSrcLoc )
import NameSet ( NameSet, mkNameSet, elemNameSet )
-import Class ( classBigSig )
+import Class ( classBigSig, classKey )
import FunDeps ( oclose, grow, improve, pprEquationDoc )
-import PrelInfo ( isNumericClass, isCreturnableClass, isCcallishClass )
-import PrelNames ( splitName, fstName, sndName )
-
-import Subst ( mkTopTyVarSubst, substTheta, substTy )
-import TysWiredIn ( unitTy, pairTyCon )
+import PrelInfo ( isNumericClass, isStandardClass )
+import PrelNames ( splitName, fstName, sndName, integerTyConName,
+ showClassKey, eqClassKey, ordClassKey )
+import Type ( zipTopTvSubst, substTheta, substTy )
+import TysWiredIn ( pairTyCon, doubleTy, doubleTyCon )
import ErrUtils ( Message )
+import BasicTypes ( TopLevelFlag, isNotTopLevel )
import VarSet
import VarEnv ( TidyEnv )
import FiniteMap
+import Bag
import Outputable
import ListSetOps ( equivClasses )
-import Util ( zipEqual )
+import Util ( zipEqual, isSingleton )
import List ( partition )
-import CmdLineOpts
+import SrcLoc ( Located(..) )
+import DynFlags ( DynFlag(..) )
+import StaticFlags
\end{code}
%************************************************************************
--------------------------------------
+ Notes on functional dependencies (a bug)
+ --------------------------------------
+
+| > class Foo a b | a->b
+| >
+| > class Bar a b | a->b
+| >
+| > data Obj = Obj
+| >
+| > instance Bar Obj Obj
+| >
+| > instance (Bar a b) => Foo a b
+| >
+| > foo:: (Foo a b) => a -> String
+| > foo _ = "works"
+| >
+| > runFoo:: (forall a b. (Foo a b) => a -> w) -> w
+| > runFoo f = f Obj
+|
+| *Test> runFoo foo
+|
+| <interactive>:1:
+| Could not deduce (Bar a b) from the context (Foo a b)
+| arising from use of `foo' at <interactive>:1
+| Probable fix:
+| Add (Bar a b) to the expected type of an expression
+| In the first argument of `runFoo', namely `foo'
+| In the definition of `it': it = runFoo foo
+|
+| Why all of the sudden does GHC need the constraint Bar a b? The
+| function foo didn't ask for that...
+
+The trouble is that to type (runFoo foo), GHC has to solve the problem:
+
+ Given constraint Foo a b
+ Solve constraint Foo a b'
+
+Notice that b and b' aren't the same. To solve this, just do
+improvement and then they are the same. But GHC currently does
+ simplify constraints
+ apply improvement
+ and loop
+
+That is usually fine, but it isn't here, because it sees that Foo a b is
+not the same as Foo a b', and so instead applies the instance decl for
+instance Bar a b => Foo a b. And that's where the Bar constraint comes
+from.
+
+The Right Thing is to improve whenever the constraint set changes at
+all. Not hard in principle, but it'll take a bit of fiddling to do.
+
+
+
+ --------------------------------------
Notes on quantification
--------------------------------------
--------------------------------------
+ The need for forall's in constraints
+ --------------------------------------
+
+[Exchange on Haskell Cafe 5/6 Dec 2000]
+
+ class C t where op :: t -> Bool
+ instance C [t] where op x = True
+
+ p y = (let f :: c -> Bool; f x = op (y >> return x) in f, y ++ [])
+ q y = (y ++ [], let f :: c -> Bool; f x = op (y >> return x) in f)
+
+The definitions of p and q differ only in the order of the components in
+the pair on their right-hand sides. And yet:
+
+ ghc and "Typing Haskell in Haskell" reject p, but accept q;
+ Hugs rejects q, but accepts p;
+ hbc rejects both p and q;
+ nhc98 ... (Malcolm, can you fill in the blank for us!).
+
+The type signature for f forces context reduction to take place, and
+the results of this depend on whether or not the type of y is known,
+which in turn depends on which component of the pair the type checker
+analyzes first.
+
+Solution: if y::m a, float out the constraints
+ Monad m, forall c. C (m c)
+When m is later unified with [], we can solve both constraints.
+
+
+ --------------------------------------
Notes on implicit parameters
--------------------------------------
we follow the argument of Question 2 and generalise over ?y.
+Question 4: top level
+~~~~~~~~~~~~~~~~~~~~~
+At the top level, monomorhism makes no sense at all.
+
+ module Main where
+ main = let ?x = 5 in print foo
+
+ foo = woggle 3
+
+ woggle :: (?x :: Int) => Int -> Int
+ woggle y = ?x + y
+
+We definitely don't want (foo :: Int) with a top-level implicit parameter
+(?x::Int) becuase there is no way to bind it.
+
Possible choices
~~~~~~~~~~~~~~~~
= inferLoop doc (varSetElems tau_tvs)
wanted_lie `thenM` \ (qtvs, frees, binds, irreds) ->
- -- Check for non-generalisable insts
- mappM_ addCantGenErr (filter (not . instCanBeGeneralised) irreds) `thenM_`
-
extendLIEs frees `thenM_`
returnM (qtvs, binds, map instToId irreds)
try_me inst
| isFreeWhenInferring qtvs inst = Free
| isClassDict inst = DontReduceUnlessConstant -- Dicts
- | otherwise = ReduceMe -- Lits and Methods
+ | otherwise = ReduceMe NoSCs -- Lits and Methods
in
+ traceTc (text "infloop" <+> vcat [ppr tau_tvs', ppr wanteds', ppr preds,
+ ppr (grow preds tau_tvs'), ppr qtvs]) `thenM_`
-- Step 2
reduceContext doc try_me [] wanteds' `thenM` \ (no_improvement, frees, binds, irreds) ->
-- the final qtvs might be empty. See [NO TYVARS] below.
inferLoop doc tau_tvs (irreds ++ frees) `thenM` \ (qtvs1, frees1, binds1, irreds1) ->
- returnM (qtvs1, frees1, binds `AndMonoBinds` binds1, irreds1)
+ returnM (qtvs1, frees1, binds `unionBags` binds1, irreds1)
\end{code}
Example [LOOP]
-- global type variables in the environment; so you don't
-- need to worry about setting them before calling tcSimplifyCheck
tcSimplifyCheck doc qtvs givens wanted_lie
- = tcSimplCheck doc get_qtvs
- givens wanted_lie `thenM` \ (qtvs', binds) ->
- returnM binds
+ = ASSERT( all isSkolemTyVar qtvs )
+ do { (qtvs', frees, binds) <- tcSimplCheck doc get_qtvs AddSCs givens wanted_lie
+ ; extendLIEs frees
+ ; return binds }
where
- get_qtvs = zonkTcTyVarsAndFV qtvs
+-- get_qtvs = zonkTcTyVarsAndFV qtvs
+ get_qtvs = return (mkVarSet qtvs) -- All skolems
-- tcSimplifyInferCheck is used when we know the constraints we are to simplify
TcDictBinds) -- Bindings
tcSimplifyInferCheck doc tau_tvs givens wanted_lie
- = tcSimplCheck doc get_qtvs givens wanted_lie
+ = do { (qtvs', frees, binds) <- tcSimplCheck doc get_qtvs AddSCs givens wanted_lie
+ ; extendLIEs frees
+ ; return (qtvs', binds) }
where
-- Figure out which type variables to quantify over
-- You might think it should just be the signature tyvars,
Here is the workhorse function for all three wrappers.
\begin{code}
-tcSimplCheck doc get_qtvs givens wanted_lie
- = check_loop givens wanted_lie `thenM` \ (qtvs, frees, binds, irreds) ->
-
- -- Complain about any irreducible ones
- complainCheck doc givens irreds `thenM_`
+tcSimplCheck doc get_qtvs want_scs givens wanted_lie
+ = do { (qtvs, frees, binds, irreds) <- check_loop givens wanted_lie
- -- Done
- extendLIEs frees `thenM_`
- returnM (qtvs, binds)
+ -- Complain about any irreducible ones
+ ; if not (null irreds)
+ then do { givens' <- mappM zonkInst given_dicts_and_ips
+ ; groupErrs (addNoInstanceErrs (Just doc) givens') irreds }
+ else return ()
+ ; returnM (qtvs, frees, binds) }
where
+ given_dicts_and_ips = filter (not . isMethod) givens
+ -- For error reporting, filter out methods, which are
+ -- only added to the given set as an optimisation
+
ip_set = mkNameSet (ipNamesOfInsts givens)
check_loop givens wanteds
= -- Step 1
mappM zonkInst givens `thenM` \ givens' ->
mappM zonkInst wanteds `thenM` \ wanteds' ->
- get_qtvs `thenM` \ qtvs' ->
+ get_qtvs `thenM` \ qtvs' ->
-- Step 2
let
-- When checking against a given signature we always reduce
-- until we find a match against something given, or can't reduce
try_me inst | isFreeWhenChecking qtvs' ip_set inst = Free
- | otherwise = ReduceMe
+ | otherwise = ReduceMe want_scs
in
reduceContext doc try_me givens' wanteds' `thenM` \ (no_improvement, frees, binds, irreds) ->
returnM (varSetElems qtvs', frees, binds, irreds)
else
check_loop givens' (irreds ++ frees) `thenM` \ (qtvs', frees1, binds1, irreds1) ->
- returnM (qtvs', frees1, binds `AndMonoBinds` binds1, irreds1)
+ returnM (qtvs', frees1, binds `unionBags` binds1, irreds1)
+\end{code}
+
+
+%************************************************************************
+%* *
+ tcSimplifySuperClasses
+%* *
+%************************************************************************
+
+Note [SUPERCLASS-LOOP 1]
+~~~~~~~~~~~~~~~~~~~~~~~~
+We have to be very, very careful when generating superclasses, lest we
+accidentally build a loop. Here's an example:
+
+ class S a
+
+ class S a => C a where { opc :: a -> a }
+ class S b => D b where { opd :: b -> b }
+
+ instance C Int where
+ opc = opd
+
+ instance D Int where
+ opd = opc
+
+From (instance C Int) we get the constraint set {ds1:S Int, dd:D Int}
+Simplifying, we may well get:
+ $dfCInt = :C ds1 (opd dd)
+ dd = $dfDInt
+ ds1 = $p1 dd
+Notice that we spot that we can extract ds1 from dd.
+
+Alas! Alack! We can do the same for (instance D Int):
+
+ $dfDInt = :D ds2 (opc dc)
+ dc = $dfCInt
+ ds2 = $p1 dc
+
+And now we've defined the superclass in terms of itself.
+
+Solution: never generate a superclass selectors at all when
+satisfying the superclass context of an instance declaration.
+
+Two more nasty cases are in
+ tcrun021
+ tcrun033
+
+\begin{code}
+tcSimplifySuperClasses qtvs givens sc_wanteds
+ = ASSERT( all isSkolemTyVar qtvs )
+ do { (_, frees, binds1) <- tcSimplCheck doc get_qtvs NoSCs givens sc_wanteds
+ ; binds2 <- tc_simplify_top doc False NoSCs frees
+ ; return (binds1 `unionBags` binds2) }
+ where
+ get_qtvs = return (mkVarSet qtvs)
+ doc = ptext SLIT("instance declaration superclass context")
\end{code}
%* *
%************************************************************************
+tcSimplifyRestricted infers which type variables to quantify for a
+group of restricted bindings. This isn't trivial.
+
+Eg1: id = \x -> x
+ We want to quantify over a to get id :: forall a. a->a
+
+Eg2: eq = (==)
+ We do not want to quantify over a, because there's an Eq a
+ constraint, so we get eq :: a->a->Bool (notice no forall)
+
+So, assume:
+ RHS has type 'tau', whose free tyvars are tau_tvs
+ RHS has constraints 'wanteds'
+
+Plan A (simple)
+ Quantify over (tau_tvs \ ftvs(wanteds))
+ This is bad. The constraints may contain (Monad (ST s))
+ where we have instance Monad (ST s) where...
+ so there's no need to be monomorphic in s!
+
+ Also the constraint might be a method constraint,
+ whose type mentions a perfectly innocent tyvar:
+ op :: Num a => a -> b -> a
+ Here, b is unconstrained. A good example would be
+ foo = op (3::Int)
+ We want to infer the polymorphic type
+ foo :: forall b. b -> b
+
+
+Plan B (cunning, used for a long time up to and including GHC 6.2)
+ Step 1: Simplify the constraints as much as possible (to deal
+ with Plan A's problem). Then set
+ qtvs = tau_tvs \ ftvs( simplify( wanteds ) )
+
+ Step 2: Now simplify again, treating the constraint as 'free' if
+ it does not mention qtvs, and trying to reduce it otherwise.
+ The reasons for this is to maximise sharing.
+
+ This fails for a very subtle reason. Suppose that in the Step 2
+ a constraint (Foo (Succ Zero) (Succ Zero) b) gets thrown upstairs as 'free'.
+ In the Step 1 this constraint might have been simplified, perhaps to
+ (Foo Zero Zero b), AND THEN THAT MIGHT BE IMPROVED, to bind 'b' to 'T'.
+ This won't happen in Step 2... but that in turn might prevent some other
+ constraint (Baz [a] b) being simplified (e.g. via instance Baz [a] T where {..})
+ and that in turn breaks the invariant that no constraints are quantified over.
+
+ Test typecheck/should_compile/tc177 (which failed in GHC 6.2) demonstrates
+ the problem.
+
+
+Plan C (brutal)
+ Step 1: Simplify the constraints as much as possible (to deal
+ with Plan A's problem). Then set
+ qtvs = tau_tvs \ ftvs( simplify( wanteds ) )
+ Return the bindings from Step 1.
+
+
+A note about Plan C (arising from "bug" reported by George Russel March 2004)
+Consider this:
+
+ instance (HasBinary ty IO) => HasCodedValue ty
+
+ foo :: HasCodedValue a => String -> IO a
+
+ doDecodeIO :: HasCodedValue a => () -> () -> IO a
+ doDecodeIO codedValue view
+ = let { act = foo "foo" } in act
+
+You might think this should work becuase the call to foo gives rise to a constraint
+(HasCodedValue t), which can be satisfied by the type sig for doDecodeIO. But the
+restricted binding act = ... calls tcSimplifyRestricted, and PlanC simplifies the
+constraint using the (rather bogus) instance declaration, and now we are stuffed.
+
+I claim this is not really a bug -- but it bit Sergey as well as George. So here's
+plan D
+
+
+Plan D (a variant of plan B)
+ Step 1: Simplify the constraints as much as possible (to deal
+ with Plan A's problem), BUT DO NO IMPROVEMENT. Then set
+ qtvs = tau_tvs \ ftvs( simplify( wanteds ) )
+
+ Step 2: Now simplify again, treating the constraint as 'free' if
+ it does not mention qtvs, and trying to reduce it otherwise.
+
+ The point here is that it's generally OK to have too few qtvs; that is,
+ to make the thing more monomorphic than it could be. We don't want to
+ do that in the common cases, but in wierd cases it's ok: the programmer
+ can always add a signature.
+
+ Too few qtvs => too many wanteds, which is what happens if you do less
+ improvement.
+
+
\begin{code}
tcSimplifyRestricted -- Used for restricted binding groups
-- i.e. ones subject to the monomorphism restriction
:: SDoc
+ -> TopLevelFlag
+ -> [Name] -- Things bound in this group
-> TcTyVarSet -- Free in the type of the RHSs
-> [Inst] -- Free in the RHSs
-> TcM ([TcTyVar], -- Tyvars to quantify (zonked)
TcDictBinds) -- Bindings
+ -- tcSimpifyRestricted returns no constraints to
+ -- quantify over; by definition there are none.
+ -- They are all thrown back in the LIE
-tcSimplifyRestricted doc tau_tvs wanteds
- = -- First squash out all methods, to find the constrained tyvars
- -- We can't just take the free vars of wanted_lie because that'll
- -- have methods that may incidentally mention entirely unconstrained variables
- -- e.g. a call to f :: Eq a => a -> b -> b
- -- Here, b is unconstrained. A good example would be
- -- foo = f (3::Int)
- -- We want to infer the polymorphic type
- -- foo :: forall b. b -> b
- let
- try_me inst = ReduceMe -- Reduce as far as we can. Don't stop at
- -- dicts; the idea is to get rid of as many type
- -- variables as possible, and we don't want to stop
- -- at (say) Monad (ST s), because that reduces
- -- immediately, with no constraint on s.
- in
- simpleReduceLoop doc try_me wanteds `thenM` \ (_, _, constrained_dicts) ->
+tcSimplifyRestricted doc top_lvl bndrs tau_tvs wanteds
+ -- Zonk everything in sight
+ = mappM zonkInst wanteds `thenM` \ wanteds' ->
+ zonkTcTyVarsAndFV (varSetElems tau_tvs) `thenM` \ tau_tvs' ->
+ tcGetGlobalTyVars `thenM` \ gbl_tvs' ->
+
+ -- 'reduceMe': Reduce as far as we can. Don't stop at
+ -- dicts; the idea is to get rid of as many type
+ -- variables as possible, and we don't want to stop
+ -- at (say) Monad (ST s), because that reduces
+ -- immediately, with no constraint on s.
+ --
+ -- BUT do no improvement! See Plan D above
+ reduceContextWithoutImprovement
+ doc reduceMe wanteds' `thenM` \ (_frees, _binds, constrained_dicts) ->
-- Next, figure out the tyvars we will quantify over
- zonkTcTyVarsAndFV (varSetElems tau_tvs) `thenM` \ tau_tvs' ->
- tcGetGlobalTyVars `thenM` \ gbl_tvs ->
let
constrained_tvs = tyVarsOfInsts constrained_dicts
- qtvs = (tau_tvs' `minusVarSet` oclose (fdPredsOfInsts constrained_dicts) gbl_tvs)
+ qtvs = (tau_tvs' `minusVarSet` oclose (fdPredsOfInsts constrained_dicts) gbl_tvs')
`minusVarSet` constrained_tvs
in
+ traceTc (text "tcSimplifyRestricted" <+> vcat [
+ pprInsts wanteds, pprInsts _frees, pprInsts constrained_dicts,
+ ppr _binds,
+ ppr constrained_tvs, ppr tau_tvs', ppr qtvs ]) `thenM_`
-- The first step may have squashed more methods than
- -- necessary, so try again, this time knowing the exact
+ -- necessary, so try again, this time more gently, knowing the exact
-- set of type variables to quantify over.
--
-- We quantify only over constraints that are captured by qtvs;
-- Remember that we may need to do *some* simplification, to
-- (for example) squash {Monad (ST s)} into {}. It's not enough
-- just to float all constraints
- mappM zonkInst wanteds `thenM` \ wanteds' ->
+ --
+ -- At top level, we *do* squash methods becuase we want to
+ -- expose implicit parameters to the test that follows
let
- try_me inst | isFreeWrtTyVars qtvs inst = Free
- | otherwise = ReduceMe
+ is_nested_group = isNotTopLevel top_lvl
+ try_me inst | isFreeWrtTyVars qtvs inst,
+ (is_nested_group || isDict inst) = Free
+ | otherwise = ReduceMe AddSCs
in
- reduceContext doc try_me [] wanteds' `thenM` \ (no_improvement, frees, binds, irreds) ->
- ASSERT( no_improvement )
+ reduceContextWithoutImprovement
+ doc try_me wanteds' `thenM` \ (frees, binds, irreds) ->
ASSERT( null irreds )
- -- No need to loop because simpleReduceLoop will have
- -- already done any improvement necessary
- extendLIEs frees `thenM_`
- returnM (varSetElems qtvs, binds)
+ -- See "Notes on implicit parameters, Question 4: top level"
+ if is_nested_group then
+ extendLIEs frees `thenM_`
+ returnM (varSetElems qtvs, binds)
+ else
+ let
+ (non_ips, bad_ips) = partition isClassDict frees
+ in
+ addTopIPErrs bndrs bad_ips `thenM_`
+ extendLIEs non_ips `thenM_`
+ returnM (varSetElems qtvs, binds)
\end{code}
forall dIntegralInt.
fromIntegral Int Int dIntegralInt (scsel dIntegralInt) = id Int
-because the scsel will mess up matching. Instead we want
+because the scsel will mess up RULE matching. Instead we want
forall dIntegralInt, dNumInt.
fromIntegral Int Int dIntegralInt dNumInt = id Int
-Hence "DontReduce NoSCs"
+Hence "WithoutSCs"
\begin{code}
tcSimplifyToDicts :: [Inst] -> TcM (TcDictBinds)
doc = text "tcSimplifyToDicts"
-- Reduce methods and lits only; stop as soon as we get a dictionary
- try_me inst | isDict inst = DontReduce NoSCs
- | otherwise = ReduceMe
+ try_me inst | isDict inst = KeepDictWithoutSCs -- See notes above re "WithoutSCs"
+ | otherwise = ReduceMe NoSCs
\end{code}
\begin{code}
tcSimplifyBracket :: [Inst] -> TcM ()
tcSimplifyBracket wanteds
- = simpleReduceLoop doc try_me wanteds `thenM_`
+ = simpleReduceLoop doc reduceMe wanteds `thenM_`
returnM ()
-
where
- doc = text "tcSimplifyBracket"
- try_me inst = ReduceMe
+ doc = text "tcSimplifyBracket"
\end{code}
-- Simplify any methods that mention the implicit parameter
try_me inst | isFreeWrtIPs ip_set inst = Free
- | otherwise = ReduceMe
+ | otherwise = ReduceMe NoSCs
simpl_loop givens wanteds
= mappM zonkInst givens `thenM` \ givens' ->
returnM (frees, binds)
else
simpl_loop givens' (irreds ++ frees) `thenM` \ (frees1, binds1) ->
- returnM (frees1, binds `AndMonoBinds` binds1)
+ returnM (frees1, binds `unionBags` binds1)
\end{code}
@LIE@), as well as the @HsBinds@ generated.
\begin{code}
-bindInstsOfLocalFuns :: [Inst] -> [TcId] -> TcM TcMonoBinds
+bindInstsOfLocalFuns :: [Inst] -> [TcId] -> TcM TcDictBinds
+-- Simlifies only MethodInsts, and generate only bindings of form
+-- fm = f tys dicts
+-- We're careful not to even generate bindings of the form
+-- d1 = d2
+-- You'd think that'd be fine, but it interacts with what is
+-- arguably a bug in Match.tidyEqnInfo (see notes there)
bindInstsOfLocalFuns wanteds local_ids
| null overloaded_ids
-- Common case
= extendLIEs wanteds `thenM_`
- returnM EmptyMonoBinds
+ returnM emptyLHsBinds
| otherwise
- = simpleReduceLoop doc try_me wanteds `thenM` \ (frees, binds, irreds) ->
+ = simpleReduceLoop doc try_me for_me `thenM` \ (frees, binds, irreds) ->
ASSERT( null irreds )
+ extendLIEs not_for_me `thenM_`
extendLIEs frees `thenM_`
returnM binds
where
doc = text "bindInsts" <+> ppr local_ids
overloaded_ids = filter is_overloaded local_ids
is_overloaded id = isOverloadedTy (idType id)
+ (for_me, not_for_me) = partition (isMethodFor overloaded_set) wanteds
overloaded_set = mkVarSet overloaded_ids -- There can occasionally be a lot of them
-- so it's worth building a set, so that
-- lookup (in isMethodFor) is faster
-
- try_me inst | isMethodFor overloaded_set inst = ReduceMe
- | otherwise = Free
+ try_me inst | isMethod inst = ReduceMe NoSCs
+ | otherwise = Free
\end{code}
\begin{code}
data WhatToDo
- = ReduceMe -- Try to reduce this
+ = ReduceMe WantSCs -- Try to reduce this
-- If there's no instance, behave exactly like
- -- DontReduce: add the inst to
- -- the irreductible ones, but don't
- -- produce an error message of any kind.
+ -- DontReduce: add the inst to the irreductible ones,
+ -- but don't produce an error message of any kind.
-- It might be quite legitimate such as (Eq a)!
- | DontReduce WantSCs -- Return as irreducible
+ | KeepDictWithoutSCs -- Return as irreducible; don't add its superclasses
+ -- Rather specialised: see notes with tcSimplifyToDicts
| DontReduceUnlessConstant -- Return as irreducible unless it can
-- be reduced to a constant in one step
| Free -- Return as free
reduceMe :: Inst -> WhatToDo
-reduceMe inst = ReduceMe
+reduceMe inst = ReduceMe AddSCs
data WantSCs = NoSCs | AddSCs -- Tells whether we should add the superclasses
-- of a predicate when adding it to the avails
+ -- The reason for this flag is entirely the super-class loop problem
+ -- Note [SUPER-CLASS LOOP 1]
\end{code}
\begin{code}
type Avails = FiniteMap Inst Avail
+emptyAvails = emptyFM
data Avail
= IsFree -- Used for free Insts
-- e.g. those "given" in a signature
Bool -- True <=> actually consumed (splittable IPs only)
- | NoRhs -- Used for Insts like (CCallable f)
- -- where no witness is required.
-
| Rhs -- Used when there is a RHS
- TcExpr -- The RHS
+ (LHsExpr TcId) -- The RHS
[Inst] -- Insts free in the RHS; we need these too
| Linear -- Splittable Insts only.
| LinRhss -- Splittable Insts only; this is used only internally
-- by extractResults, where a Linear
-- is turned into an LinRhss
- [TcExpr] -- A supply of suitable RHSs
+ [LHsExpr TcId] -- A supply of suitable RHSs
pprAvails avails = vcat [sep [ppr inst, nest 2 (equals <+> pprAvail avail)]
| (inst,avail) <- fmToList avails ]
instance Outputable Avail where
ppr = pprAvail
-pprAvail NoRhs = text "<no rhs>"
pprAvail IsFree = text "Free"
pprAvail Irred = text "Irred"
pprAvail (Given x b) = text "Given" <+> ppr x <+>
extractResults :: Avails
-> [Inst] -- Wanted
-> TcM (TcDictBinds, -- Bindings
- [Inst], -- Irreducible ones
- [Inst]) -- Free ones
+ [Inst], -- Irreducible ones
+ [Inst]) -- Free ones
extractResults avails wanteds
- = go avails EmptyMonoBinds [] [] wanteds
+ = go avails emptyBag [] [] wanteds
where
go avails binds irreds frees []
= returnM (binds, irreds, frees)
Nothing -> pprTrace "Urk: extractResults" (ppr w) $
go avails binds irreds frees ws
- Just NoRhs -> go avails binds irreds frees ws
Just IsFree -> go (add_free avails w) binds irreds (w:frees) ws
Just Irred -> go (add_given avails w) binds (w:irreds) frees ws
Just (Given id _) -> go avails new_binds irreds frees ws
where
new_binds | id == instToId w = binds
- | otherwise = addBind binds w (HsVar id)
+ | otherwise = addBind binds w (L (instSpan w) (HsVar id))
-- The sought Id can be one of the givens, via a superclass chain
-- and then we definitely don't want to generate an x=x binding!
-> get_root irreds frees avail w `thenM` \ (irreds', frees', root_id) ->
split n (instToId split_inst) root_id w `thenM` \ (binds', rhss) ->
go (addToFM avails w (LinRhss rhss))
- (binds `AndMonoBinds` binds')
+ (binds `unionBags` binds')
irreds' frees' (split_inst : w : ws)
Just (LinRhss (rhs:rhss)) -- Consume one of the Rhss
get_root irreds frees IsFree w = cloneDict w `thenM` \ w' ->
returnM (irreds, w':frees, instToId w')
- add_given avails w
- | instBindingRequired w = addToFM avails w (Given (instToId w) True)
- | otherwise = addToFM avails w NoRhs
- -- NB: make sure that CCallable/CReturnable use NoRhs rather
- -- than Given, else we end up with bogus bindings.
+ add_given avails w = addToFM avails w (Given (instToId w) True)
add_free avails w | isMethod w = avails
| otherwise = add_given avails w
split :: Int -> TcId -> TcId -> Inst
- -> TcM (TcDictBinds, [TcExpr])
+ -> TcM (TcDictBinds, [LHsExpr TcId])
-- (split n split_id root_id wanted) returns
-- * a list of 'n' expressions, all of which witness 'avail'
-- * a bunch of auxiliary bindings to support these expressions
id = instToId wanted
occ = getOccName id
loc = getSrcLoc id
+ span = instSpan wanted
- go 1 = returnM (EmptyMonoBinds, [HsVar root_id])
+ go 1 = returnM (emptyBag, [L span $ HsVar root_id])
go n = go ((n+1) `div` 2) `thenM` \ (binds1, rhss) ->
expand n rhss `thenM` \ (binds2, rhss') ->
- returnM (binds1 `AndMonoBinds` binds2, rhss')
+ returnM (binds1 `unionBags` binds2, rhss')
-- (expand n rhss)
-- Given ((n+1)/2) rhss, make n rhss, using auxiliary bindings
returnM (binds', head rhss : rhss')
where
go rhss = mapAndUnzipM do_one rhss `thenM` \ (binds', rhss') ->
- returnM (andMonoBindList binds', concat rhss')
+ returnM (listToBag binds', concat rhss')
do_one rhs = newUnique `thenM` \ uniq ->
tcLookupId fstName `thenM` \ fst_id ->
let
x = mkUserLocal occ uniq pair_ty loc
in
- returnM (VarMonoBind x (mk_app split_id rhs),
- [mk_fs_app fst_id ty x, mk_fs_app snd_id ty x])
+ returnM (L span (VarBind x (mk_app span split_id rhs)),
+ [mk_fs_app span fst_id ty x, mk_fs_app span snd_id ty x])
-mk_fs_app id ty var = HsVar id `TyApp` [ty,ty] `HsApp` HsVar var
+mk_fs_app span id ty var = L span (HsVar id) `mkHsTyApp` [ty,ty] `mkHsApp` (L span (HsVar var))
-mk_app id rhs = HsApp (HsVar id) rhs
+mk_app span id rhs = L span (HsApp (L span (HsVar id)) rhs)
-addBind binds inst rhs = binds `AndMonoBinds` VarMonoBind (instToId inst) rhs
+addBind binds inst rhs = binds `unionBags` unitBag (L (instLocSrcSpan (instLoc inst))
+ (VarBind (instToId inst) rhs))
+instSpan wanted = instLocSrcSpan (instLoc wanted)
\end{code}
returnM (frees, binds, irreds)
else
simpleReduceLoop doc try_me (irreds ++ frees) `thenM` \ (frees1, binds1, irreds1) ->
- returnM (frees1, binds `AndMonoBinds` binds1, irreds1)
+ returnM (frees1, binds `unionBags` binds1, irreds1)
\end{code}
])) `thenM_`
-- Build the Avail mapping from "givens"
- foldlM addGiven emptyFM givens `thenM` \ init_state ->
+ foldlM addGiven emptyAvails givens `thenM` \ init_state ->
-- Do the real work
reduceList (0,[]) try_me wanteds init_state `thenM` \ avails ->
returnM (no_improvement, frees, binds, irreds)
+-- reduceContextWithoutImprovement differs from reduceContext
+-- (a) no improvement
+-- (b) 'givens' is assumed empty
+reduceContextWithoutImprovement doc try_me wanteds
+ =
+ traceTc (text "reduceContextWithoutImprovement" <+> (vcat [
+ text "----------------------",
+ doc,
+ text "wanted" <+> ppr wanteds,
+ text "----------------------"
+ ])) `thenM_`
+
+ -- Do the real work
+ reduceList (0,[]) try_me wanteds emptyAvails `thenM` \ avails ->
+ extractResults avails wanteds `thenM` \ (binds, irreds, frees) ->
+
+ traceTc (text "reduceContextWithoutImprovement end" <+> (vcat [
+ text "----------------------",
+ doc,
+ text "wanted" <+> ppr wanteds,
+ text "----",
+ text "avails" <+> pprAvails avails,
+ text "frees" <+> ppr frees,
+ text "----------------------"
+ ])) `thenM_`
+
+ returnM (frees, binds, irreds)
+
+tcImprove :: Avails -> TcM Bool -- False <=> no change
+-- Perform improvement using all the predicates in Avails
tcImprove avails
- = tcGetInstEnv `thenM` \ inst_env ->
+ = tcGetInstEnvs `thenM` \ inst_envs ->
let
preds = [ (pred, pp_loc)
- | inst <- keysFM avails,
- let pp_loc = pprInstLoc (instLoc inst),
- pred <- fdPredsOfInst inst
+ | (inst, avail) <- fmToList avails,
+ pred <- get_preds inst avail,
+ let pp_loc = pprInstLoc (instLoc inst)
]
-- Avails has all the superclasses etc (good)
-- It also has all the intermediates of the deduction (good)
-- It does not have duplicates (good)
-- NB that (?x::t1) and (?x::t2) will be held separately in avails
-- so that improve will see them separate
- eqns = improve (classInstEnv inst_env) preds
+
+ -- For free Methods, we want to take predicates from their context,
+ -- but for Methods that have been squished their context will already
+ -- be in Avails, and we don't want duplicates. Hence this rather
+ -- horrid get_preds function
+ get_preds inst IsFree = fdPredsOfInst inst
+ get_preds inst other | isDict inst = [dictPred inst]
+ | otherwise = []
+
+ eqns = improve get_insts preds
+ get_insts clas = classInstances inst_envs clas
in
if null eqns then
returnM True
mappM_ unify eqns `thenM_`
returnM False
where
- unify ((qtvs, t1, t2), doc)
- = addErrCtxt doc $
- tcInstTyVars VanillaTv (varSetElems qtvs) `thenM` \ (_, _, tenv) ->
- unifyTauTy (substTy tenv t1) (substTy tenv t2)
+ unify ((qtvs, pairs), doc)
+ = addErrCtxt doc $
+ tcInstTyVars (varSetElems qtvs) `thenM` \ (_, _, tenv) ->
+ mapM_ (unif_pr tenv) pairs
+ unif_pr tenv (ty1,ty2) = unifyTauTy (substTy tenv ty1) (substTy tenv ty2)
\end{code}
The main context-reduction function is @reduce@. Here's its game plan.
=
#ifdef DEBUG
(if n > 8 then
- pprTrace "Jeepers! ReduceContext:" (reduceDepthMsg n stack)
+ pprTrace "Interesting! Context reduction stack deeper than 8:"
+ (int n $$ ifPprDebug (nest 2 (pprStack stack)))
else (\x->x))
#endif
go wanteds state
go ws state'
-- Base case: we're done!
-reduce stack try_me wanted state
+reduce stack try_me wanted avails
-- It's the same as an existing inst, or a superclass thereof
- | Just avail <- isAvailable state wanted
+ | Just avail <- isAvailable avails wanted
= if isLinearInst wanted then
- addLinearAvailable state avail wanted `thenM` \ (state', wanteds') ->
- reduceList stack try_me wanteds' state'
+ addLinearAvailable avails avail wanted `thenM` \ (avails', wanteds') ->
+ reduceList stack try_me wanteds' avails'
else
- returnM state -- No op for non-linear things
+ returnM avails -- No op for non-linear things
| otherwise
= case try_me wanted of {
- DontReduce want_scs -> addIrred want_scs state wanted
+ KeepDictWithoutSCs -> addIrred NoSCs avails wanted
; DontReduceUnlessConstant -> -- It's irreducible (or at least should not be reduced)
-- First, see if the inst can be reduced to a constant in one step
-- First, see if the inst can be reduced to a constant in one step
try_simple addFree
- ; ReduceMe -> -- It should be reduced
+ ; ReduceMe want_scs -> -- It should be reduced
lookupInst wanted `thenM` \ lookup_result ->
case lookup_result of
- GenInst wanteds' rhs -> reduceList stack try_me wanteds' state `thenM` \ state' ->
- addWanted state' wanted rhs wanteds'
- SimpleInst rhs -> addWanted state wanted rhs []
+ GenInst wanteds' rhs -> addIrred NoSCs avails wanted `thenM` \ avails1 ->
+ reduceList stack try_me wanteds' avails1 `thenM` \ avails2 ->
+ addWanted want_scs avails2 wanted rhs wanteds'
+ -- Experiment with temporarily doing addIrred *before* the reduceList,
+ -- which has the effect of adding the thing we are trying
+ -- to prove to the database before trying to prove the things it
+ -- needs. See note [RECURSIVE DICTIONARIES]
+ -- NB: we must not do an addWanted before, because that adds the
+ -- superclasses too, and thaat can lead to a spurious loop; see
+ -- the examples in [SUPERCLASS-LOOP]
+ -- So we do an addIrred before, and then overwrite it afterwards with addWanted
+
+ SimpleInst rhs -> addWanted want_scs avails wanted rhs []
NoInstance -> -- No such instance!
-- Add it and its superclasses
- addIrred AddSCs state wanted
-
+ addIrred want_scs avails wanted
}
where
try_simple do_this_otherwise
= lookupInst wanted `thenM` \ lookup_result ->
case lookup_result of
- SimpleInst rhs -> addWanted state wanted rhs []
- other -> do_this_otherwise state wanted
+ SimpleInst rhs -> addWanted AddSCs avails wanted rhs []
+ other -> do_this_otherwise avails wanted
\end{code}
isAvailable :: Avails -> Inst -> Maybe Avail
isAvailable avails wanted = lookupFM avails wanted
-- NB 1: the Ord instance of Inst compares by the class/type info
- -- *not* by unique. So
+ -- *not* by unique. So
-- d1::C Int == d2::C Int
addLinearAvailable :: Avails -> Avail -> Inst -> TcM (Avails, [Inst])
--
addFree avails free = returnM (addToFM avails free IsFree)
-addWanted :: Avails -> Inst -> TcExpr -> [Inst] -> TcM Avails
-addWanted avails wanted rhs_expr wanteds
- = ASSERT2( not (wanted `elemFM` avails), ppr wanted $$ ppr avails )
- addAvailAndSCs avails wanted avail
+addWanted :: WantSCs -> Avails -> Inst -> LHsExpr TcId -> [Inst] -> TcM Avails
+addWanted want_scs avails wanted rhs_expr wanteds
+ = addAvailAndSCs want_scs avails wanted avail
where
- avail | instBindingRequired wanted = Rhs rhs_expr wanteds
- | otherwise = ASSERT( null wanteds ) NoRhs
+ avail = Rhs rhs_expr wanteds
addGiven :: Avails -> Inst -> TcM Avails
-addGiven state given = addAvailAndSCs state given (Given (instToId given) False)
+addGiven avails given = addAvailAndSCs AddSCs avails given (Given (instToId given) False)
+ -- Always add superclasses for 'givens'
+ --
-- No ASSERT( not (given `elemFM` avails) ) because in an instance
-- decl for Ord t we can add both Ord t and Eq t as 'givens',
-- so the assert isn't true
addIrred :: WantSCs -> Avails -> Inst -> TcM Avails
-addIrred NoSCs avails irred = returnM (addToFM avails irred Irred)
-addIrred AddSCs avails irred = ASSERT2( not (irred `elemFM` avails), ppr irred $$ ppr avails )
- addAvailAndSCs avails irred Irred
-
-addAvailAndSCs :: Avails -> Inst -> Avail -> TcM Avails
-addAvailAndSCs avails inst avail
- | not (isClassDict inst) = returnM avails1
- | otherwise = addSCs is_loop avails1 inst
+addIrred want_scs avails irred = ASSERT2( not (irred `elemFM` avails), ppr irred $$ ppr avails )
+ addAvailAndSCs want_scs avails irred Irred
+
+addAvailAndSCs :: WantSCs -> Avails -> Inst -> Avail -> TcM Avails
+addAvailAndSCs want_scs avails inst avail
+ | not (isClassDict inst) = return avails_with_inst
+ | NoSCs <- want_scs = return avails_with_inst
+ | otherwise = do { traceTc (text "addAvailAndSCs" <+> vcat [ppr inst, ppr deps])
+ ; addSCs is_loop avails_with_inst inst }
where
- avails1 = addToFM avails inst avail
- is_loop inst = inst `elem` deps -- Note: this compares by *type*, not by Unique
- deps = findAllDeps avails avail
-
-findAllDeps :: Avails -> Avail -> [Inst]
--- Find all the Insts that this one depends on
--- See Note [SUPERCLASS-LOOP]
-findAllDeps avails (Rhs _ kids) = kids ++ concat (map (find_all_deps_help avails) kids)
-findAllDeps avails other = []
-
-find_all_deps_help :: Avails -> Inst -> [Inst]
-find_all_deps_help avails inst
- = case lookupFM avails inst of
- Just avail -> findAllDeps avails avail
- Nothing -> []
-
-addSCs :: (Inst -> Bool) -> Avails -> Inst -> TcM Avails
+ avails_with_inst = addToFM avails inst avail
+
+ is_loop pred = any (`tcEqType` mkPredTy pred) dep_tys
+ -- Note: this compares by *type*, not by Unique
+ deps = findAllDeps (unitVarSet (instToId inst)) avail
+ dep_tys = map idType (varSetElems deps)
+
+ findAllDeps :: IdSet -> Avail -> IdSet
+ -- Find all the Insts that this one depends on
+ -- See Note [SUPERCLASS-LOOP 2]
+ -- Watch out, though. Since the avails may contain loops
+ -- (see Note [RECURSIVE DICTIONARIES]), so we need to track the ones we've seen so far
+ findAllDeps so_far (Rhs _ kids) = foldl find_all so_far kids
+ findAllDeps so_far other = so_far
+
+ find_all :: IdSet -> Inst -> IdSet
+ find_all so_far kid
+ | kid_id `elemVarSet` so_far = so_far
+ | Just avail <- lookupFM avails kid = findAllDeps so_far' avail
+ | otherwise = so_far'
+ where
+ so_far' = extendVarSet so_far kid_id -- Add the new kid to so_far
+ kid_id = instToId kid
+
+addSCs :: (TcPredType -> Bool) -> Avails -> Inst -> TcM Avails
-- Add all the superclasses of the Inst to Avails
-- The first param says "dont do this because the original thing
-- depends on this one, so you'd build a loop"
-- Invariant: the Inst is already in Avails.
addSCs is_loop avails dict
- = newDictsFromOld dict sc_theta' `thenM` \ sc_dicts ->
- foldlM add_sc avails (zipEqual "add_scs" sc_dicts sc_sels)
+ = do { sc_dicts <- newDictsAtLoc (instLoc dict) sc_theta'
+ ; foldlM add_sc avails (zipEqual "add_scs" sc_dicts sc_sels) }
where
(clas, tys) = getDictClassTys dict
(tyvars, sc_theta, sc_sels, _) = classBigSig clas
- sc_theta' = substTheta (mkTopTyVarSubst tyvars tys) sc_theta
-
- add_sc avails (sc_dict, sc_sel) -- Add it, and its superclasses
- = case lookupFM avails sc_dict of
- Just (Given _ _) -> returnM avails -- Given is cheaper than
- -- a superclass selection
- Just other | is_loop sc_dict -> returnM avails -- See Note [SUPERCLASS-LOOP]
- | otherwise -> returnM avails' -- SCs already added
+ sc_theta' = substTheta (zipTopTvSubst tyvars tys) sc_theta
- Nothing -> addSCs is_loop avails' sc_dict
+ add_sc avails (sc_dict, sc_sel)
+ | is_loop (dictPred sc_dict) = return avails -- See Note [SUPERCLASS-LOOP 2]
+ | is_given sc_dict = return avails
+ | otherwise = addSCs is_loop avails' sc_dict
where
- sc_sel_rhs = DictApp (TyApp (HsVar sc_sel) tys) [instToId dict]
- avail = Rhs sc_sel_rhs [dict]
- avails' = addToFM avails sc_dict avail
+ sc_sel_rhs = mkHsDictApp (mkHsTyApp (L (instSpan dict) (HsVar sc_sel)) tys) [instToId dict]
+ avails' = addToFM avails sc_dict (Rhs sc_sel_rhs [dict])
+
+ is_given :: Inst -> Bool
+ is_given sc_dict = case lookupFM avails sc_dict of
+ Just (Given _ _) -> True -- Given is cheaper than superclass selection
+ other -> False
\end{code}
-Note [SUPERCLASS-LOOP]: Checking for loops
-~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
-We have to be careful here. If we are *given* d1:Ord a,
+Note [SUPERCLASS-LOOP 2]
+~~~~~~~~~~~~~~~~~~~~~~~~
+But the above isn't enough. Suppose we are *given* d1:Ord a,
and want to deduce (d2:C [a]) where
class Ord a => C a where
- instance Ord a => C [a] where ...
+ instance Ord [a] => C [a] where ...
-Then we'll use the instance decl to deduce C [a] and then add the
+Then we'll use the instance decl to deduce C [a] from Ord [a], and then add the
superclasses of C [a] to avails. But we must not overwrite the binding
-for d1:Ord a (which is given) with a superclass selection or we'll just
+for Ord [a] (which is obtained from Ord a) with a superclass selection or we'll just
build a loop!
+Here's another variant, immortalised in tcrun020
+ class Monad m => C1 m
+ class C1 m => C2 m x
+ instance C2 Maybe Bool
+For the instance decl we need to build (C1 Maybe), and it's no good if
+we run around and add (C2 Maybe Bool) and its superclasses to the avails
+before we search for C1 Maybe.
+
Here's another example
class Eq b => Foo a b
instance Eq a => Foo [a] a
when adding superclasses. It's a bit like the occurs check in unification.
+Note [RECURSIVE DICTIONARIES]
+~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
+Consider
+ data D r = ZeroD | SuccD (r (D r));
+
+ instance (Eq (r (D r))) => Eq (D r) where
+ ZeroD == ZeroD = True
+ (SuccD a) == (SuccD b) = a == b
+ _ == _ = False;
+
+ equalDC :: D [] -> D [] -> Bool;
+ equalDC = (==);
+
+We need to prove (Eq (D [])). Here's how we go:
+
+ d1 : Eq (D [])
+
+by instance decl, holds if
+ d2 : Eq [D []]
+ where d1 = dfEqD d2
+
+by instance decl of Eq, holds if
+ d3 : D []
+ where d2 = dfEqList d3
+ d1 = dfEqD d2
+
+But now we can "tie the knot" to give
+
+ d3 = d1
+ d2 = dfEqList d3
+ d1 = dfEqD d2
+
+and it'll even run! The trick is to put the thing we are trying to prove
+(in this case Eq (D []) into the database before trying to prove its
+contributing clauses.
+
%************************************************************************
%* *
\begin{code}
-tcSimplifyTop :: [Inst] -> TcM TcDictBinds
+tcSimplifyTop, tcSimplifyInteractive :: [Inst] -> TcM TcDictBinds
tcSimplifyTop wanteds
- = getLclEnv `thenM` \ lcl_env ->
- traceTc (text "tcSimplifyTop" <+> ppr (lclEnvElts lcl_env)) `thenM_`
- simpleReduceLoop (text "tcSimplTop") reduceMe wanteds `thenM` \ (frees, binds, irreds) ->
- ASSERT( null frees )
+ = tc_simplify_top doc False {- Not interactive loop -} AddSCs wanteds
+ where
+ doc = text "tcSimplifyTop"
- let
- -- All the non-std ones are definite errors
- (stds, non_stds) = partition isStdClassTyVarDict irreds
+tcSimplifyInteractive wanteds
+ = tc_simplify_top doc True {- Interactive loop -} AddSCs wanteds
+ where
+ doc = text "tcSimplifyTop"
+
+-- The TcLclEnv should be valid here, solely to improve
+-- error message generation for the monomorphism restriction
+tc_simplify_top doc is_interactive want_scs wanteds
+ = do { lcl_env <- getLclEnv
+ ; traceTc (text "tcSimplifyTop" <+> ppr (lclEnvElts lcl_env))
+
+ ; let try_me inst = ReduceMe want_scs
+ ; (frees, binds, irreds) <- simpleReduceLoop doc try_me wanteds
+
+ ; let
+ -- First get rid of implicit parameters
+ (non_ips, bad_ips) = partition isClassDict irreds
+
+ -- All the non-tv or multi-param ones are definite errors
+ (unary_tv_dicts, non_tvs) = partition is_unary_tyvar_dict non_ips
+ bad_tyvars = unionVarSets (map tyVarsOfInst non_tvs)
-- Group by type variable
- std_groups = equivClasses cmp_by_tyvar stds
+ tv_groups = equivClasses cmp_by_tyvar unary_tv_dicts
-- Pick the ones which its worth trying to disambiguate
- -- namely, the onese whose type variable isn't bound
- -- up with one of the non-standard classes
- (std_oks, std_bads) = partition worth_a_try std_groups
- worth_a_try group@(d:_) = not (non_std_tyvars `intersectsVarSet` tyVarsOfInst d)
- non_std_tyvars = unionVarSets (map tyVarsOfInst non_stds)
-
- -- Collect together all the bad guys
- bad_guys = non_stds ++ concat std_bads
- (tidy_env, tidy_dicts) = tidyInsts bad_guys
- (bad_ips, non_ips) = partition isIPDict tidy_dicts
- (no_insts, ambigs) = partition no_inst non_ips
- no_inst d = not (isTyVarDict d) || tyVarsOfInst d `subVarSet` fixed_tvs
- fixed_tvs = oclose (fdPredsOfInsts tidy_dicts) emptyVarSet
- in
+ -- namely, the ones whose type variable isn't bound
+ -- up with one of the non-tyvar classes
+ (default_gps, non_default_gps) = partition defaultable_group tv_groups
+ defaultable_group ds
+ = not (bad_tyvars `intersectsVarSet` tyVarsOfInst (head ds))
+ && defaultable_classes (map get_clas ds)
+ defaultable_classes clss
+ | is_interactive = any isInteractiveClass clss
+ | otherwise = all isStandardClass clss && any isNumericClass clss
+
+ isInteractiveClass cls = isNumericClass cls
+ || (classKey cls `elem` [showClassKey, eqClassKey, ordClassKey])
+ -- In interactive mode, we default Show a to Show ()
+ -- to avoid graututious errors on "show []"
+
+
+ -- Collect together all the bad guys
+ bad_guys = non_tvs ++ concat non_default_gps
+ (ambigs, no_insts) = partition isTyVarDict bad_guys
+ -- If the dict has no type constructors involved, it must be ambiguous,
+ -- except I suppose that another error with fundeps maybe should have
+ -- constrained those type variables
-- Report definite errors
- addTopInstanceErrs tidy_env no_insts `thenM_`
- addTopIPErrs tidy_env bad_ips `thenM_`
+ ; ASSERT( null frees )
+ groupErrs (addNoInstanceErrs Nothing []) no_insts
+ ; strangeTopIPErrs bad_ips
-- Deal with ambiguity errors, but only if
- -- if there has not been an error so far; errors often
- -- give rise to spurious ambiguous Insts
- ifErrsM (returnM []) (
-
- -- Complain about the ones that don't fall under
- -- the Haskell rules for disambiguation
- -- This group includes both non-existent instances
- -- e.g. Num (IO a) and Eq (Int -> Int)
- -- and ambiguous dictionaries
- -- e.g. Num a
- addTopAmbigErrs (tidy_env, ambigs) `thenM_`
-
- -- Disambiguate the ones that look feasible
- mappM disambigGroup std_oks
- ) `thenM` \ binds_ambig ->
-
- returnM (binds `andMonoBinds` andMonoBindList binds_ambig)
+ -- if there has not been an error so far:
+ -- errors often give rise to spurious ambiguous Insts.
+ -- For example:
+ -- f = (*) -- Monomorphic
+ -- g :: Num a => a -> a
+ -- g x = f x x
+ -- Here, we get a complaint when checking the type signature for g,
+ -- that g isn't polymorphic enough; but then we get another one when
+ -- dealing with the (Num a) context arising from f's definition;
+ -- we try to unify a with Int (to default it), but find that it's
+ -- already been unified with the rigid variable from g's type sig
+ ; binds_ambig <- ifErrsM (returnM []) $
+ do { -- Complain about the ones that don't fall under
+ -- the Haskell rules for disambiguation
+ -- This group includes both non-existent instances
+ -- e.g. Num (IO a) and Eq (Int -> Int)
+ -- and ambiguous dictionaries
+ -- e.g. Num a
+ addTopAmbigErrs ambigs
+
+ -- Disambiguate the ones that look feasible
+ ; mappM disambigGroup default_gps }
+
+ ; return (binds `unionBags` unionManyBags binds_ambig) }
----------------------------------
d1 `cmp_by_tyvar` d2 = get_tv d1 `compare` get_tv d2
+is_unary_tyvar_dict :: Inst -> Bool -- Dicts of form (C a)
+ -- Invariant: argument is a ClassDict, not IP or method
+is_unary_tyvar_dict d = case getDictClassTys d of
+ (_, [ty]) -> tcIsTyVarTy ty
+ other -> False
+
get_tv d = case getDictClassTys d of
(clas, [ty]) -> tcGetTyVar "tcSimplify" ty
get_clas d = case getDictClassTys d of
- (clas, [ty]) -> clas
+ (clas, _) -> clas
\end{code}
If a dictionary constrains a type variable which is
-> TcM TcDictBinds
disambigGroup dicts
- | any isNumericClass classes -- Guaranteed all standard classes
- -- see comment at the end of function for reasons as to
- -- why the defaulting mechanism doesn't apply to groups that
- -- include CCallable or CReturnable dicts.
- && not (any isCcallishClass classes)
= -- THE DICTS OBEY THE DEFAULTABLE CONSTRAINT
-- SO, TRY DEFAULT TYPES IN ORDER
-- default list which can satisfy all the ambiguous classes.
-- For example, if Real a is reqd, but the only type in the
-- default list is Int.
- getDefaultTys `thenM` \ default_tys ->
+ get_default_tys `thenM` \ default_tys ->
let
try_default [] -- No defaults work, so fail
= failM
in
-- See if any default works
tryM (try_default default_tys) `thenM` \ mb_ty ->
- case mb_ty of {
- Left _ -> -- If not, add an AmbigErr
- addTopAmbigErrs (tidyInsts dicts) `thenM_`
- returnM EmptyMonoBinds ;
-
- Right chosen_default_ty ->
+ case mb_ty of
+ Left _ -> bomb_out
+ Right chosen_default_ty -> choose_default chosen_default_ty
+ where
+ tyvar = get_tv (head dicts) -- Should be non-empty
+ classes = map get_clas dicts
- -- If so, bind the type variable
+ choose_default default_ty -- Commit to tyvar = default_ty
+ = -- Bind the type variable
+ unifyTauTy default_ty (mkTyVarTy tyvar) `thenM_`
-- and reduce the context, for real this time
- unifyTauTy chosen_default_ty (mkTyVarTy tyvar) `thenM_`
- simpleReduceLoop (text "disambig" <+> ppr dicts)
- reduceMe dicts `thenM` \ (frees, binds, ambigs) ->
- WARN( not (null frees && null ambigs), ppr frees $$ ppr ambigs )
- warnDefault dicts chosen_default_ty `thenM_`
- returnM binds }
-
- | all isCreturnableClass classes
- = -- Default CCall stuff to (); we don't even both to check that () is an
- -- instance of CReturnable, because we know it is.
- unifyTauTy (mkTyVarTy tyvar) unitTy `thenM_`
- returnM EmptyMonoBinds
-
- | otherwise -- No defaults
- = addTopAmbigErrs (tidyInsts dicts) `thenM_`
- returnM EmptyMonoBinds
-
- where
- tyvar = get_tv (head dicts) -- Should be non-empty
- classes = map get_clas dicts
+ simpleReduceLoop (text "disambig" <+> ppr dicts)
+ reduceMe dicts `thenM` \ (frees, binds, ambigs) ->
+ WARN( not (null frees && null ambigs), ppr frees $$ ppr ambigs )
+ warnDefault dicts default_ty `thenM_`
+ returnM binds
+
+ bomb_out = addTopAmbigErrs dicts `thenM_`
+ returnM emptyBag
+
+get_default_tys
+ = do { mb_defaults <- getDefaultTys
+ ; case mb_defaults of
+ Just tys -> return tys
+ Nothing -> -- No use-supplied default;
+ -- use [Integer, Double]
+ do { integer_ty <- tcMetaTy integerTyConName
+ ; checkWiredInTyCon doubleTyCon
+ ; return [integer_ty, doubleTy] } }
\end{code}
[Aside - why the defaulting mechanism is turned off when
When typechecking _ccall_s, TcExpr ensures that the external
function is only passed arguments (and in the other direction,
-results) of a restricted set of 'native' types. This is
-implemented via the help of the pseudo-type classes,
-@CReturnable@ (CR) and @CCallable@ (CC.)
+results) of a restricted set of 'native' types.
The interaction between the defaulting mechanism for numeric
values and CC & CR can be a bit puzzling to the user at times.
Haskell 1.4's default-default of (Int, Double), 'x' has type
Int.
-To try to minimise the potential for surprises here, the
-defaulting mechanism is turned off in the presence of
-CCallable and CReturnable.
-
End of aside]
-> TcM ThetaType -- Needed
tcSimplifyDeriv tyvars theta
- = tcInstTyVars VanillaTv tyvars `thenM` \ (tvs, _, tenv) ->
+ = tcInstTyVars tyvars `thenM` \ (tvs, _, tenv) ->
-- The main loop may do unification, and that may crash if
-- it doesn't see a TcTyVar, so we have to instantiate. Sigh
-- ToDo: what if two of them do get unified?
- newDicts DataDeclOrigin (substTheta tenv theta) `thenM` \ wanteds ->
+ newDicts DerivOrigin (substTheta tenv theta) `thenM` \ wanteds ->
simpleReduceLoop doc reduceMe wanteds `thenM` \ (frees, _, irreds) ->
ASSERT( null frees ) -- reduceMe never returns Free
doptM Opt_AllowUndecidableInstances `thenM` \ undecidable_ok ->
let
tv_set = mkVarSet tvs
- simpl_theta = map dictPred irreds -- reduceMe squashes all non-dicts
-
- check_pred pred
- | isEmptyVarSet pred_tyvars -- Things like (Eq T) should be rejected
- = addErrTc (noInstErr pred)
-
- | not undecidable_ok && not (isTyVarClassPred pred)
- -- Check that the returned dictionaries are all of form (C a b)
- -- (where a, b are type variables).
- -- We allow this if we had -fallow-undecidable-instances,
- -- but note that risks non-termination in the 'deriving' context-inference
- -- fixpoint loop. It is useful for situations like
- -- data Min h a = E | M a (h a)
- -- which gives the instance decl
- -- instance (Eq a, Eq (h a)) => Eq (Min h a)
- = addErrTc (noInstErr pred)
+
+ (bad_insts, ok_insts) = partition is_bad_inst irreds
+ is_bad_inst dict
+ = let pred = dictPred dict -- reduceMe squashes all non-dicts
+ in isEmptyVarSet (tyVarsOfPred pred)
+ -- Things like (Eq T) are bad
+ || (not undecidable_ok && not (isTyVarClassPred pred))
+ -- The returned dictionaries should be of form (C a b)
+ -- (where a, b are type variables).
+ -- We allow non-tyvar dicts if we had -fallow-undecidable-instances,
+ -- but note that risks non-termination in the 'deriving' context-inference
+ -- fixpoint loop. It is useful for situations like
+ -- data Min h a = E | M a (h a)
+ -- which gives the instance decl
+ -- instance (Eq a, Eq (h a)) => Eq (Min h a)
- | not (pred_tyvars `subVarSet` tv_set)
+ simpl_theta = map dictPred ok_insts
+ weird_preds = [pred | pred <- simpl_theta
+ , not (tyVarsOfPred pred `subVarSet` tv_set)]
-- Check for a bizarre corner case, when the derived instance decl should
-- have form instance C a b => D (T a) where ...
-- Note that 'b' isn't a parameter of T. This gives rise to all sorts
-- of problems; in particular, it's hard to compare solutions for
-- equality when finding the fixpoint. So I just rule it out for now.
- = addErrTc (badDerivedPred pred)
- | otherwise
- = returnM ()
- where
- pred_tyvars = tyVarsOfPred pred
-
- rev_env = mkTopTyVarSubst tvs (mkTyVarTys tyvars)
+ rev_env = zipTopTvSubst tvs (mkTyVarTys tyvars)
-- This reverse-mapping is a Royal Pain,
-- but the result should mention TyVars not TcTyVars
in
- mappM check_pred simpl_theta `thenM_`
- checkAmbiguity tvs simpl_theta tv_set `thenM_`
+ addNoInstanceErrs Nothing [] bad_insts `thenM_`
+ mapM_ (addErrTc . badDerivedPred) weird_preds `thenM_`
+ checkAmbiguity tvs simpl_theta tv_set `thenM_`
returnM (substTheta rev_env simpl_theta)
where
doc = ptext SLIT("deriving classes for a data type")
-> TcM ()
tcSimplifyDefault theta
- = newDicts DataDeclOrigin theta `thenM` \ wanteds ->
+ = newDicts DefaultOrigin theta `thenM` \ wanteds ->
simpleReduceLoop doc reduceMe wanteds `thenM` \ (frees, _, irreds) ->
ASSERT( null frees ) -- try_me never returns Free
- mappM (addErrTc . noInstErr) irreds `thenM_`
+ addNoInstanceErrs Nothing [] irreds `thenM_`
if null irreds then
returnM ()
else
addInstLoc :: [Inst] -> Message -> Message
addInstLoc insts msg = msg $$ nest 2 (pprInstLoc (instLoc (head insts)))
-plural [x] = empty
-plural xs = char 's'
-
-
-addTopIPErrs tidy_env tidy_dicts
+addTopIPErrs :: [Name] -> [Inst] -> TcM ()
+addTopIPErrs bndrs []
+ = return ()
+addTopIPErrs bndrs ips
+ = addErrTcM (tidy_env, mk_msg tidy_ips)
+ where
+ (tidy_env, tidy_ips) = tidyInsts ips
+ mk_msg ips = vcat [sep [ptext SLIT("Implicit parameters escape from the monomorphic top-level binding(s) of"),
+ pprBinders bndrs <> colon],
+ nest 2 (vcat (map ppr_ip ips)),
+ monomorphism_fix]
+ ppr_ip ip = pprPred (dictPred ip) <+> pprInstLoc (instLoc ip)
+
+strangeTopIPErrs :: [Inst] -> TcM ()
+strangeTopIPErrs dicts -- Strange, becuase addTopIPErrs should have caught them all
= groupErrs report tidy_dicts
where
+ (tidy_env, tidy_dicts) = tidyInsts dicts
report dicts = addErrTcM (tidy_env, mk_msg dicts)
mk_msg dicts = addInstLoc dicts (ptext SLIT("Unbound implicit parameter") <>
- plural tidy_dicts <+> pprInsts tidy_dicts)
+ plural tidy_dicts <+> pprDictsTheta tidy_dicts)
+
+addNoInstanceErrs :: Maybe SDoc -- Nothing => top level
+ -- Just d => d describes the construct
+ -> [Inst] -- What is given by the context or type sig
+ -> [Inst] -- What is wanted
+ -> TcM ()
+addNoInstanceErrs mb_what givens []
+ = returnM ()
+addNoInstanceErrs mb_what givens dicts
+ = -- Some of the dicts are here because there is no instances
+ -- and some because there are too many instances (overlap)
+ tcGetInstEnvs `thenM` \ inst_envs ->
+ let
+ (tidy_env1, tidy_givens) = tidyInsts givens
+ (tidy_env2, tidy_dicts) = tidyMoreInsts tidy_env1 dicts
--- Used for top-level irreducibles
-addTopInstanceErrs tidy_env tidy_dicts
- = groupErrs report tidy_dicts
+ -- Run through the dicts, generating a message for each
+ -- overlapping one, but simply accumulating all the
+ -- no-instance ones so they can be reported as a group
+ (overlap_doc, no_inst_dicts) = foldl check_overlap (empty, []) tidy_dicts
+ check_overlap (overlap_doc, no_inst_dicts) dict
+ | not (isClassDict dict) = (overlap_doc, dict : no_inst_dicts)
+ | otherwise
+ = case lookupInstEnv inst_envs clas tys of
+ -- The case of exactly one match and no unifiers means
+ -- a successful lookup. That can't happen here, becuase
+ -- dicts only end up here if they didn't match in Inst.lookupInst
+#ifdef DEBUG
+ ([m],[]) -> pprPanic "addNoInstanceErrs" (ppr dict)
+#endif
+ ([], _) -> (overlap_doc, dict : no_inst_dicts) -- No match
+ res -> (mk_overlap_msg dict res $$ overlap_doc, no_inst_dicts)
+ where
+ (clas,tys) = getDictClassTys dict
+ in
+
+ -- Now generate a good message for the no-instance bunch
+ mk_probable_fix tidy_env2 no_inst_dicts `thenM` \ (tidy_env3, probable_fix) ->
+ let
+ no_inst_doc | null no_inst_dicts = empty
+ | otherwise = vcat [addInstLoc no_inst_dicts heading, probable_fix]
+ heading | null givens = ptext SLIT("No instance") <> plural no_inst_dicts <+>
+ ptext SLIT("for") <+> pprDictsTheta no_inst_dicts
+ | otherwise = sep [ptext SLIT("Could not deduce") <+> pprDictsTheta no_inst_dicts,
+ nest 2 $ ptext SLIT("from the context") <+> pprDictsTheta tidy_givens]
+ in
+ -- And emit both the non-instance and overlap messages
+ addErrTcM (tidy_env3, no_inst_doc $$ overlap_doc)
where
- report dicts = mkMonomorphismMsg tidy_env dicts `thenM` \ (tidy_env, mono_msg) ->
- addErrTcM (tidy_env, mk_msg dicts $$ mono_msg)
- mk_msg dicts = addInstLoc dicts (ptext SLIT("No instance") <> plural tidy_dicts <+>
- ptext SLIT("for") <+> pprInsts tidy_dicts)
-
+ mk_overlap_msg dict (matches, unifiers)
+ = vcat [ addInstLoc [dict] ((ptext SLIT("Overlapping instances for")
+ <+> pprPred (dictPred dict))),
+ sep [ptext SLIT("Matching instances") <> colon,
+ nest 2 (vcat [pprInstances ispecs, pprInstances unifiers])],
+ ASSERT( not (null matches) )
+ if not (isSingleton matches)
+ then -- Two or more matches
+ empty
+ else -- One match, plus some unifiers
+ ASSERT( not (null unifiers) )
+ parens (vcat [ptext SLIT("The choice depends on the instantiation of") <+>
+ quotes (pprWithCommas ppr (varSetElems (tyVarsOfInst dict))),
+ ptext SLIT("Use -fallow-incoherent-instances to use the first choice above")])]
+ where
+ ispecs = [ispec | (_, ispec) <- matches]
-addTopAmbigErrs (tidy_env, tidy_dicts)
- = groupErrs report tidy_dicts
+ mk_probable_fix tidy_env dicts
+ = returnM (tidy_env, sep [ptext SLIT("Probable fix:"), nest 2 (vcat fixes)])
+ where
+ fixes = add_ors (fix1 ++ fix2)
+
+ fix1 = case mb_what of
+ Nothing -> [] -- Top level
+ Just what -> -- Nested (type signatures, instance decls)
+ [ sep [ ptext SLIT("add") <+> pprDictsTheta dicts,
+ ptext SLIT("to the") <+> what] ]
+
+ fix2 | null instance_dicts = []
+ | otherwise = [ ptext SLIT("add an instance declaration for")
+ <+> pprDictsTheta instance_dicts ]
+ instance_dicts = [d | d <- dicts, isClassDict d, not (isTyVarDict d)]
+ -- Insts for which it is worth suggesting an adding an instance declaration
+ -- Exclude implicit parameters, and tyvar dicts
+
+ add_ors :: [SDoc] -> [SDoc] -- The empty case should not happen
+ add_ors [] = [ptext SLIT("[No suggested fixes]")] -- Strange
+ add_ors (f1:fs) = f1 : map (ptext SLIT("or") <+>) fs
+
+addTopAmbigErrs dicts
+-- Divide into groups that share a common set of ambiguous tyvars
+ = mapM report (equivClasses cmp [(d, tvs_of d) | d <- tidy_dicts])
where
- report dicts = mkMonomorphismMsg tidy_env dicts `thenM` \ (tidy_env, mono_msg) ->
- addErrTcM (tidy_env, mk_msg dicts $$ mono_msg)
- mk_msg dicts = addInstLoc dicts $
- sep [text "Ambiguous type variable(s)" <+> pprQuotedList ambig_tvs,
- nest 2 (text "in the constraint" <> plural dicts <+> pprInsts dicts)]
- where
- ambig_tvs = varSetElems (tyVarsOfInsts dicts)
-
-mkMonomorphismMsg :: TidyEnv -> [Inst] -> TcM (TidyEnv, Message)
+ (tidy_env, tidy_dicts) = tidyInsts dicts
+
+ tvs_of :: Inst -> [TcTyVar]
+ tvs_of d = varSetElems (tyVarsOfInst d)
+ cmp (_,tvs1) (_,tvs2) = tvs1 `compare` tvs2
+
+ report :: [(Inst,[TcTyVar])] -> TcM ()
+ report pairs@((inst,tvs) : _) -- The pairs share a common set of ambiguous tyvars
+ = mkMonomorphismMsg tidy_env tvs `thenM` \ (tidy_env, mono_msg) ->
+ setSrcSpan (instLocSrcSpan (instLoc inst)) $
+ -- the location of the first one will do for the err message
+ addErrTcM (tidy_env, msg $$ mono_msg)
+ where
+ dicts = map fst pairs
+ msg = sep [text "Ambiguous type variable" <> plural tvs <+>
+ pprQuotedList tvs <+> in_msg,
+ nest 2 (pprDictsInFull dicts)]
+ in_msg = text "in the constraint" <> plural dicts <> colon
+
+
+mkMonomorphismMsg :: TidyEnv -> [TcTyVar] -> TcM (TidyEnv, Message)
-- There's an error with these Insts; if they have free type variables
-- it's probably caused by the monomorphism restriction.
-- Try to identify the offending variable
-- ASSUMPTION: the Insts are fully zonked
-mkMonomorphismMsg tidy_env insts
- | isEmptyVarSet inst_tvs
- = returnM (tidy_env, empty)
- | otherwise
- = findGlobals inst_tvs tidy_env `thenM` \ (tidy_env, docs) ->
+mkMonomorphismMsg tidy_env inst_tvs
+ = findGlobals (mkVarSet inst_tvs) tidy_env `thenM` \ (tidy_env, docs) ->
returnM (tidy_env, mk_msg docs)
-
where
- inst_tvs = tyVarsOfInsts insts
-
- mk_msg [] = empty -- This happens in things like
- -- f x = show (read "foo")
- -- whre monomorphism doesn't play any role
+ mk_msg [] = ptext SLIT("Probable fix: add a type signature that fixes these type variable(s)")
+ -- This happens in things like
+ -- f x = show (read "foo")
+ -- whre monomorphism doesn't play any role
mk_msg docs = vcat [ptext SLIT("Possible cause: the monomorphism restriction applied to the following:"),
- nest 2 (vcat docs)]
+ nest 2 (vcat docs),
+ monomorphism_fix
+ ]
+monomorphism_fix :: SDoc
+monomorphism_fix = ptext SLIT("Probable fix:") <+>
+ (ptext SLIT("give these definition(s) an explicit type signature")
+ $$ ptext SLIT("or use -fno-monomorphism-restriction"))
warnDefault dicts default_ty
= doptM Opt_WarnTypeDefaults `thenM` \ warn_flag ->
(_, tidy_dicts) = tidyInsts dicts
warn_msg = vcat [ptext SLIT("Defaulting the following constraint(s) to type") <+>
quotes (ppr default_ty),
- pprInstsInFull tidy_dicts]
-
-complainCheck doc givens irreds
- = mappM zonkInst given_dicts_and_ips `thenM` \ givens' ->
- groupErrs (addNoInstanceErrs doc givens') irreds `thenM_`
- returnM ()
- where
- given_dicts_and_ips = filter (not . isMethod) givens
- -- Filter out methods, which are only added to
- -- the given set as an optimisation
-
-addNoInstanceErrs what_doc givens dicts
- = getDOpts `thenM` \ dflags ->
- tcGetInstEnv `thenM` \ inst_env ->
- let
- (tidy_env1, tidy_givens) = tidyInsts givens
- (tidy_env2, tidy_dicts) = tidyMoreInsts tidy_env1 dicts
-
- doc = vcat [addInstLoc dicts $
- sep [herald <+> pprInsts tidy_dicts,
- nest 4 $ ptext SLIT("from the context") <+> pprInsts tidy_givens],
- ambig_doc,
- ptext SLIT("Probable fix:"),
- nest 4 fix1,
- nest 4 fix2]
-
- herald = ptext SLIT("Could not") <+> unambig_doc <+> ptext SLIT("deduce")
- unambig_doc | ambig_overlap = ptext SLIT("unambiguously")
- | otherwise = empty
-
- -- The error message when we don't find a suitable instance
- -- is complicated by the fact that sometimes this is because
- -- there is no instance, and sometimes it's because there are
- -- too many instances (overlap). See the comments in TcEnv.lhs
- -- with the InstEnv stuff.
-
- ambig_doc
- | not ambig_overlap = empty
- | otherwise
- = vcat [ptext SLIT("The choice of (overlapping) instance declaration"),
- nest 4 (ptext SLIT("depends on the instantiation of") <+>
- quotes (pprWithCommas ppr (varSetElems (tyVarsOfInsts tidy_dicts))))]
-
- fix1 = sep [ptext SLIT("Add") <+> pprInsts tidy_dicts,
- ptext SLIT("to the") <+> what_doc]
-
- fix2 | null instance_dicts
- = empty
- | otherwise
- = ptext SLIT("Or add an instance declaration for") <+> pprInsts instance_dicts
-
- instance_dicts = [d | d <- tidy_dicts, isClassDict d, not (isTyVarDict d)]
- -- Insts for which it is worth suggesting an adding an instance declaration
- -- Exclude implicit parameters, and tyvar dicts
-
- -- Checks for the ambiguous case when we have overlapping instances
- ambig_overlap = any ambig_overlap1 dicts
- ambig_overlap1 dict
- | isClassDict dict
- = case lookupInstEnv dflags inst_env clas tys of
- NoMatch ambig -> ambig
- other -> False
- | otherwise = False
- where
- (clas,tys) = getDictClassTys dict
- in
- addErrTcM (tidy_env2, doc)
+ pprDictsInFull tidy_dicts]
-- Used for the ...Thetas variants; all top level
-noInstErr pred = ptext SLIT("No instance for") <+> quotes (ppr pred)
-
badDerivedPred pred
= vcat [ptext SLIT("Can't derive instances where the instance context mentions"),
ptext SLIT("type variables that are not data type parameters"),
reduceDepthErr n stack
= vcat [ptext SLIT("Context reduction stack overflow; size =") <+> int n,
ptext SLIT("Use -fcontext-stack20 to increase stack size to (e.g.) 20"),
- nest 4 (pprInstsInFull stack)]
-
-reduceDepthMsg n stack = nest 4 (pprInstsInFull stack)
+ nest 4 (pprStack stack)]
------------------------------------------------
-addCantGenErr inst
- = addErrTc (sep [ptext SLIT("Cannot generalise these overloadings (in a _ccall_):"),
- nest 4 (ppr inst <+> pprInstLoc (instLoc inst))])
+pprStack stack = vcat (map pprInstInFull stack)
\end{code}