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{-
(c) The University of Glasgow 2006
(c) The GRASP/AQUA Project, Glasgow University, 1992-1998
Utility functions on @Core@ syntax
-}
{-# LANGUAGE CPP #-}
{-# OPTIONS_GHC -Wno-incomplete-record-updates #-}
module GHC.Core.Subst (
-- * Main data types
Subst(..), -- Implementation exported for supercompiler's Renaming.hs only
TvSubstEnv, IdSubstEnv, InScopeSet,
-- ** Substituting into expressions and related types
deShadowBinds, substSpec, substRulesForImportedIds,
substTy, substCo, substExpr, substExprSC, substBind, substBindSC,
substUnfolding, substUnfoldingSC,
lookupIdSubst, lookupTCvSubst, substIdType, substIdOcc,
substTickish, substDVarSet, substIdInfo,
-- ** Operations on substitutions
emptySubst, mkEmptySubst, mkSubst, mkOpenSubst, substInScope, isEmptySubst,
extendIdSubst, extendIdSubstList, extendTCvSubst, extendTvSubstList,
extendSubst, extendSubstList, extendSubstWithVar, zapSubstEnv,
addInScopeSet, extendInScope, extendInScopeList, extendInScopeIds,
isInScope, setInScope, getTCvSubst, extendTvSubst, extendCvSubst,
delBndr, delBndrs,
-- ** Substituting and cloning binders
substBndr, substBndrs, substRecBndrs, substTyVarBndr, substCoVarBndr,
cloneBndr, cloneBndrs, cloneIdBndr, cloneIdBndrs, cloneRecIdBndrs,
) where
#include "GhclibHsVersions.h"
import GHC.Prelude
import GHC.Core
import GHC.Core.FVs
import GHC.Core.Seq
import GHC.Core.Utils
import qualified GHC.Core.Type as Type
import qualified GHC.Core.Coercion as Coercion
-- We are defining local versions
import GHC.Core.Type hiding
( substTy, extendTvSubst, extendCvSubst, extendTvSubstList
, isInScope, substTyVarBndr, cloneTyVarBndr )
import GHC.Core.Coercion hiding ( substCo, substCoVarBndr )
import GHC.Builtin.Names
import GHC.Types.Var.Set
import GHC.Types.Var.Env
import GHC.Types.Id
import GHC.Types.Name ( Name )
import GHC.Types.Var
import GHC.Types.Id.Info
import GHC.Types.Unique.Supply
import GHC.Data.Maybe
import GHC.Utils.Misc
import GHC.Utils.Outputable
import Data.List
{-
************************************************************************
* *
\subsection{Substitutions}
* *
************************************************************************
-}
-- | A substitution environment, containing 'Id', 'TyVar', and 'CoVar'
-- substitutions.
--
-- Some invariants apply to how you use the substitution:
--
-- 1. Note [The substitution invariant] in "GHC.Core.TyCo.Subst"
--
-- 2. Note [Substitutions apply only once] in "GHC.Core.TyCo.Subst"
data Subst
= Subst InScopeSet -- Variables in scope (both Ids and TyVars) /after/
-- applying the substitution
IdSubstEnv -- Substitution from NcIds to CoreExprs
TvSubstEnv -- Substitution from TyVars to Types
CvSubstEnv -- Substitution from CoVars to Coercions
-- INVARIANT 1: See TyCoSubst Note [The substitution invariant]
-- This is what lets us deal with name capture properly
-- It's a hard invariant to check...
--
-- INVARIANT 2: The substitution is apply-once; see Note [Apply once] with
-- Types.TvSubstEnv
--
-- INVARIANT 3: See Note [Extending the Subst]
{-
Note [Extending the Subst]
~~~~~~~~~~~~~~~~~~~~~~~~~~
For a core Subst, which binds Ids as well, we make a different choice for Ids
than we do for TyVars.
For TyVars, see Note [Extending the TCvSubst] in GHC.Core.TyCo.Subst.
For Ids, we have a different invariant
The IdSubstEnv is extended *only* when the Unique on an Id changes
Otherwise, we just extend the InScopeSet
In consequence:
* If all subst envs are empty, substExpr would be a
no-op, so substExprSC ("short cut") does nothing.
However, substExpr still goes ahead and substitutes. Reason: we may
want to replace existing Ids with new ones from the in-scope set, to
avoid space leaks.
* In substIdBndr, we extend the IdSubstEnv only when the unique changes
* If the CvSubstEnv, TvSubstEnv and IdSubstEnv are all empty,
substExpr does nothing (Note that the above rule for substIdBndr
maintains this property. If the incoming envts are both empty, then
substituting the type and IdInfo can't change anything.)
* In lookupIdSubst, we *must* look up the Id in the in-scope set, because
it may contain non-trivial changes. Example:
(/\a. \x:a. ...x...) Int
We extend the TvSubstEnv with [a |-> Int]; but x's unique does not change
so we only extend the in-scope set. Then we must look up in the in-scope
set when we find the occurrence of x.
* The requirement to look up the Id in the in-scope set means that we
must NOT take no-op short cut when the IdSubst is empty.
We must still look up every Id in the in-scope set.
* (However, we don't need to do so for expressions found in the IdSubst
itself, whose range is assumed to be correct wrt the in-scope set.)
Why do we make a different choice for the IdSubstEnv than the
TvSubstEnv and CvSubstEnv?
* For Ids, we change the IdInfo all the time (e.g. deleting the
unfolding), and adding it back later, so using the TyVar convention
would entail extending the substitution almost all the time
* The simplifier wants to look up in the in-scope set anyway, in case it
can see a better unfolding from an enclosing case expression
* For TyVars, only coercion variables can possibly change, and they are
easy to spot
-}
-- | An environment for substituting for 'Id's
type IdSubstEnv = IdEnv CoreExpr -- Domain is NcIds, i.e. not coercions
----------------------------
isEmptySubst :: Subst -> Bool
isEmptySubst (Subst _ id_env tv_env cv_env)
= isEmptyVarEnv id_env && isEmptyVarEnv tv_env && isEmptyVarEnv cv_env
emptySubst :: Subst
emptySubst = Subst emptyInScopeSet emptyVarEnv emptyVarEnv emptyVarEnv
mkEmptySubst :: InScopeSet -> Subst
mkEmptySubst in_scope = Subst in_scope emptyVarEnv emptyVarEnv emptyVarEnv
mkSubst :: InScopeSet -> TvSubstEnv -> CvSubstEnv -> IdSubstEnv -> Subst
mkSubst in_scope tvs cvs ids = Subst in_scope ids tvs cvs
-- | Find the in-scope set: see "GHC.Core.TyCo.Subst" Note [The substitution invariant]
substInScope :: Subst -> InScopeSet
substInScope (Subst in_scope _ _ _) = in_scope
-- | Remove all substitutions for 'Id's and 'Var's that might have been built up
-- while preserving the in-scope set
zapSubstEnv :: Subst -> Subst
zapSubstEnv (Subst in_scope _ _ _) = Subst in_scope emptyVarEnv emptyVarEnv emptyVarEnv
-- | Add a substitution for an 'Id' to the 'Subst': you must ensure that the in-scope set is
-- such that TyCoSubst Note [The substitution invariant]
-- holds after extending the substitution like this
extendIdSubst :: Subst -> Id -> CoreExpr -> Subst
-- ToDo: add an ASSERT that fvs(subst-result) is already in the in-scope set
extendIdSubst (Subst in_scope ids tvs cvs) v r
= ASSERT2( isNonCoVarId v, ppr v $$ ppr r )
Subst in_scope (extendVarEnv ids v r) tvs cvs
-- | Adds multiple 'Id' substitutions to the 'Subst': see also 'extendIdSubst'
extendIdSubstList :: Subst -> [(Id, CoreExpr)] -> Subst
extendIdSubstList (Subst in_scope ids tvs cvs) prs
= ASSERT( all (isNonCoVarId . fst) prs )
Subst in_scope (extendVarEnvList ids prs) tvs cvs
-- | Add a substitution for a 'TyVar' to the 'Subst'
-- The 'TyVar' *must* be a real TyVar, and not a CoVar
-- You must ensure that the in-scope set is such that
-- "GHC.Core.TyCo.Subst" Note [The substitution invariant] holds
-- after extending the substitution like this.
extendTvSubst :: Subst -> TyVar -> Type -> Subst
extendTvSubst (Subst in_scope ids tvs cvs) tv ty
= ASSERT( isTyVar tv )
Subst in_scope ids (extendVarEnv tvs tv ty) cvs
-- | Adds multiple 'TyVar' substitutions to the 'Subst': see also 'extendTvSubst'
extendTvSubstList :: Subst -> [(TyVar,Type)] -> Subst
extendTvSubstList subst vrs
= foldl' extend subst vrs
where
extend subst (v, r) = extendTvSubst subst v r
-- | Add a substitution from a 'CoVar' to a 'Coercion' to the 'Subst':
-- you must ensure that the in-scope set satisfies
-- "GHC.Core.TyCo.Subst" Note [The substitution invariant]
-- after extending the substitution like this
extendCvSubst :: Subst -> CoVar -> Coercion -> Subst
extendCvSubst (Subst in_scope ids tvs cvs) v r
= ASSERT( isCoVar v )
Subst in_scope ids tvs (extendVarEnv cvs v r)
-- | Add a substitution appropriate to the thing being substituted
-- (whether an expression, type, or coercion). See also
-- 'extendIdSubst', 'extendTvSubst', 'extendCvSubst'
extendSubst :: Subst -> Var -> CoreArg -> Subst
extendSubst subst var arg
= case arg of
Type ty -> ASSERT( isTyVar var ) extendTvSubst subst var ty
Coercion co -> ASSERT( isCoVar var ) extendCvSubst subst var co
_ -> ASSERT( isId var ) extendIdSubst subst var arg
extendSubstWithVar :: Subst -> Var -> Var -> Subst
extendSubstWithVar subst v1 v2
| isTyVar v1 = ASSERT( isTyVar v2 ) extendTvSubst subst v1 (mkTyVarTy v2)
| isCoVar v1 = ASSERT( isCoVar v2 ) extendCvSubst subst v1 (mkCoVarCo v2)
| otherwise = ASSERT( isId v2 ) extendIdSubst subst v1 (Var v2)
-- | Add a substitution as appropriate to each of the terms being
-- substituted (whether expressions, types, or coercions). See also
-- 'extendSubst'.
extendSubstList :: Subst -> [(Var,CoreArg)] -> Subst
extendSubstList subst [] = subst
extendSubstList subst ((var,rhs):prs) = extendSubstList (extendSubst subst var rhs) prs
-- | Find the substitution for an 'Id' in the 'Subst'
lookupIdSubst :: HasDebugCallStack => Subst -> Id -> CoreExpr
lookupIdSubst (Subst in_scope ids _ _) v
| not (isLocalId v) = Var v
| Just e <- lookupVarEnv ids v = e
| Just v' <- lookupInScope in_scope v = Var v'
-- Vital! See Note [Extending the Subst]
| otherwise = WARN( True, text "GHC.Core.Subst.lookupIdSubst" <+> ppr v
$$ ppr in_scope)
Var v
-- | Find the substitution for a 'TyVar' in the 'Subst'
lookupTCvSubst :: Subst -> TyVar -> Type
lookupTCvSubst (Subst _ _ tvs cvs) v
| isTyVar v
= lookupVarEnv tvs v `orElse` Type.mkTyVarTy v
| otherwise
= mkCoercionTy $ lookupVarEnv cvs v `orElse` mkCoVarCo v
delBndr :: Subst -> Var -> Subst
delBndr (Subst in_scope ids tvs cvs) v
| isCoVar v = Subst in_scope ids tvs (delVarEnv cvs v)
| isTyVar v = Subst in_scope ids (delVarEnv tvs v) cvs
| otherwise = Subst in_scope (delVarEnv ids v) tvs cvs
delBndrs :: Subst -> [Var] -> Subst
delBndrs (Subst in_scope ids tvs cvs) vs
= Subst in_scope (delVarEnvList ids vs) (delVarEnvList tvs vs) (delVarEnvList cvs vs)
-- Easiest thing is just delete all from all!
-- | Simultaneously substitute for a bunch of variables
-- No left-right shadowing
-- ie the substitution for (\x \y. e) a1 a2
-- so neither x nor y scope over a1 a2
mkOpenSubst :: InScopeSet -> [(Var,CoreArg)] -> Subst
mkOpenSubst in_scope pairs = Subst in_scope
(mkVarEnv [(id,e) | (id, e) <- pairs, isId id])
(mkVarEnv [(tv,ty) | (tv, Type ty) <- pairs])
(mkVarEnv [(v,co) | (v, Coercion co) <- pairs])
------------------------------
isInScope :: Var -> Subst -> Bool
isInScope v (Subst in_scope _ _ _) = v `elemInScopeSet` in_scope
-- | Add the 'Var' to the in-scope set, but do not remove
-- any existing substitutions for it
addInScopeSet :: Subst -> VarSet -> Subst
addInScopeSet (Subst in_scope ids tvs cvs) vs
= Subst (in_scope `extendInScopeSetSet` vs) ids tvs cvs
-- | Add the 'Var' to the in-scope set: as a side effect,
-- and remove any existing substitutions for it
extendInScope :: Subst -> Var -> Subst
extendInScope (Subst in_scope ids tvs cvs) v
= Subst (in_scope `extendInScopeSet` v)
(ids `delVarEnv` v) (tvs `delVarEnv` v) (cvs `delVarEnv` v)
-- | Add the 'Var's to the in-scope set: see also 'extendInScope'
extendInScopeList :: Subst -> [Var] -> Subst
extendInScopeList (Subst in_scope ids tvs cvs) vs
= Subst (in_scope `extendInScopeSetList` vs)
(ids `delVarEnvList` vs) (tvs `delVarEnvList` vs) (cvs `delVarEnvList` vs)
-- | Optimized version of 'extendInScopeList' that can be used if you are certain
-- all the things being added are 'Id's and hence none are 'TyVar's or 'CoVar's
extendInScopeIds :: Subst -> [Id] -> Subst
extendInScopeIds (Subst in_scope ids tvs cvs) vs
= Subst (in_scope `extendInScopeSetList` vs)
(ids `delVarEnvList` vs) tvs cvs
setInScope :: Subst -> InScopeSet -> Subst
setInScope (Subst _ ids tvs cvs) in_scope = Subst in_scope ids tvs cvs
-- Pretty printing, for debugging only
instance Outputable Subst where
ppr (Subst in_scope ids tvs cvs)
= text "<InScope =" <+> in_scope_doc
$$ text " IdSubst =" <+> ppr ids
$$ text " TvSubst =" <+> ppr tvs
$$ text " CvSubst =" <+> ppr cvs
<> char '>'
where
in_scope_doc = pprVarSet (getInScopeVars in_scope) (braces . fsep . map ppr)
{-
************************************************************************
* *
Substituting expressions
* *
************************************************************************
-}
substExprSC :: HasDebugCallStack => Subst -> CoreExpr -> CoreExpr
-- Just like substExpr, but a no-op if the substitution is empty
substExprSC subst orig_expr
| isEmptySubst subst = orig_expr
| otherwise = -- pprTrace "enter subst-expr" (doc $$ ppr orig_expr) $
substExpr subst orig_expr
-- | substExpr applies a substitution to an entire 'CoreExpr'. Remember,
-- you may only apply the substitution /once/:
-- See Note [Substitutions apply only once] in "GHC.Core.TyCo.Subst"
--
-- Do *not* attempt to short-cut in the case of an empty substitution!
-- See Note [Extending the Subst]
substExpr :: HasDebugCallStack => Subst -> CoreExpr -> CoreExpr
-- HasDebugCallStack so we can track failures in lookupIdSubst
substExpr subst expr
= go expr
where
go (Var v) = lookupIdSubst subst v
go (Type ty) = Type (substTy subst ty)
go (Coercion co) = Coercion (substCo subst co)
go (Lit lit) = Lit lit
go (App fun arg) = App (go fun) (go arg)
go (Tick tickish e) = mkTick (substTickish subst tickish) (go e)
go (Cast e co) = Cast (go e) (substCo subst co)
-- Do not optimise even identity coercions
-- Reason: substitution applies to the LHS of RULES, and
-- if you "optimise" an identity coercion, you may
-- lose a binder. We optimise the LHS of rules at
-- construction time
go (Lam bndr body) = Lam bndr' (substExpr subst' body)
where
(subst', bndr') = substBndr subst bndr
go (Let bind body) = Let bind' (substExpr subst' body)
where
(subst', bind') = substBind subst bind
go (Case scrut bndr ty alts) = Case (go scrut) bndr' (substTy subst ty) (map (go_alt subst') alts)
where
(subst', bndr') = substBndr subst bndr
go_alt subst (con, bndrs, rhs) = (con, bndrs', substExpr subst' rhs)
where
(subst', bndrs') = substBndrs subst bndrs
-- | Apply a substitution to an entire 'CoreBind', additionally returning an updated 'Subst'
-- that should be used by subsequent substitutions.
substBind, substBindSC :: HasDebugCallStack => Subst -> CoreBind -> (Subst, CoreBind)
substBindSC subst bind -- Short-cut if the substitution is empty
| not (isEmptySubst subst)
= substBind subst bind
| otherwise
= case bind of
NonRec bndr rhs -> (subst', NonRec bndr' rhs)
where
(subst', bndr') = substBndr subst bndr
Rec pairs -> (subst', Rec (bndrs' `zip` rhss'))
where
(bndrs, rhss) = unzip pairs
(subst', bndrs') = substRecBndrs subst bndrs
rhss' | isEmptySubst subst'
= rhss
| otherwise
= map (substExpr subst') rhss
substBind subst (NonRec bndr rhs)
= (subst', NonRec bndr' (substExpr subst rhs))
where
(subst', bndr') = substBndr subst bndr
substBind subst (Rec pairs)
= (subst', Rec (bndrs' `zip` rhss'))
where
(bndrs, rhss) = unzip pairs
(subst', bndrs') = substRecBndrs subst bndrs
rhss' = map (substExpr subst') rhss
-- | De-shadowing the program is sometimes a useful pre-pass. It can be done simply
-- by running over the bindings with an empty substitution, because substitution
-- returns a result that has no-shadowing guaranteed.
--
-- (Actually, within a single /type/ there might still be shadowing, because
-- 'substTy' is a no-op for the empty substitution, but that's probably OK.)
--
-- [Aug 09] This function is not used in GHC at the moment, but seems so
-- short and simple that I'm going to leave it here
deShadowBinds :: CoreProgram -> CoreProgram
deShadowBinds binds = snd (mapAccumL substBind emptySubst binds)
{-
************************************************************************
* *
Substituting binders
* *
************************************************************************
Remember that substBndr and friends are used when doing expression
substitution only. Their only business is substitution, so they
preserve all IdInfo (suitably substituted). For example, we *want* to
preserve occ info in rules.
-}
-- | Substitutes a 'Var' for another one according to the 'Subst' given, returning
-- the result and an updated 'Subst' that should be used by subsequent substitutions.
-- 'IdInfo' is preserved by this process, although it is substituted into appropriately.
substBndr :: Subst -> Var -> (Subst, Var)
substBndr subst bndr
| isTyVar bndr = substTyVarBndr subst bndr
| isCoVar bndr = substCoVarBndr subst bndr
| otherwise = substIdBndr (text "var-bndr") subst subst bndr
-- | Applies 'substBndr' to a number of 'Var's, accumulating a new 'Subst' left-to-right
substBndrs :: Subst -> [Var] -> (Subst, [Var])
substBndrs subst bndrs = mapAccumL substBndr subst bndrs
-- | Substitute in a mutually recursive group of 'Id's
substRecBndrs :: Subst -> [Id] -> (Subst, [Id])
substRecBndrs subst bndrs
= (new_subst, new_bndrs)
where -- Here's the reason we need to pass rec_subst to subst_id
(new_subst, new_bndrs) = mapAccumL (substIdBndr (text "rec-bndr") new_subst) subst bndrs
substIdBndr :: SDoc
-> Subst -- ^ Substitution to use for the IdInfo
-> Subst -> Id -- ^ Substitution and Id to transform
-> (Subst, Id) -- ^ Transformed pair
-- NB: unfolding may be zapped
substIdBndr _doc rec_subst subst@(Subst in_scope env tvs cvs) old_id
= -- pprTrace "substIdBndr" (doc $$ ppr old_id $$ ppr in_scope) $
(Subst (in_scope `extendInScopeSet` new_id) new_env tvs cvs, new_id)
where
id1 = uniqAway in_scope old_id -- id1 is cloned if necessary
id2 | no_type_change = id1
| otherwise = updateIdTypeAndMult (substTy subst) id1
old_ty = idType old_id
old_w = idMult old_id
no_type_change = (isEmptyVarEnv tvs && isEmptyVarEnv cvs) ||
(noFreeVarsOfType old_ty && noFreeVarsOfType old_w)
-- new_id has the right IdInfo
-- The lazy-set is because we're in a loop here, with
-- rec_subst, when dealing with a mutually-recursive group
new_id = maybeModifyIdInfo mb_new_info id2
mb_new_info = substIdInfo rec_subst id2 (idInfo id2)
-- NB: unfolding info may be zapped
-- Extend the substitution if the unique has changed
-- See the notes with substTyVarBndr for the delVarEnv
new_env | no_change = delVarEnv env old_id
| otherwise = extendVarEnv env old_id (Var new_id)
no_change = id1 == old_id
-- See Note [Extending the Subst]
-- it's /not/ necessary to check mb_new_info and no_type_change
{-
Now a variant that unconditionally allocates a new unique.
It also unconditionally zaps the OccInfo.
-}
-- | Very similar to 'substBndr', but it always allocates a new 'Unique' for
-- each variable in its output. It substitutes the IdInfo though.
cloneIdBndr :: Subst -> UniqSupply -> Id -> (Subst, Id)
cloneIdBndr subst us old_id
= clone_id subst subst (old_id, uniqFromSupply us)
-- | Applies 'cloneIdBndr' to a number of 'Id's, accumulating a final
-- substitution from left to right
cloneIdBndrs :: Subst -> UniqSupply -> [Id] -> (Subst, [Id])
cloneIdBndrs subst us ids
= mapAccumL (clone_id subst) subst (ids `zip` uniqsFromSupply us)
cloneBndrs :: Subst -> UniqSupply -> [Var] -> (Subst, [Var])
-- Works for all kinds of variables (typically case binders)
-- not just Ids
cloneBndrs subst us vs
= mapAccumL (\subst (v, u) -> cloneBndr subst u v) subst (vs `zip` uniqsFromSupply us)
cloneBndr :: Subst -> Unique -> Var -> (Subst, Var)
cloneBndr subst uniq v
| isTyVar v = cloneTyVarBndr subst v uniq
| otherwise = clone_id subst subst (v,uniq) -- Works for coercion variables too
-- | Clone a mutually recursive group of 'Id's
cloneRecIdBndrs :: Subst -> UniqSupply -> [Id] -> (Subst, [Id])
cloneRecIdBndrs subst us ids
= (subst', ids')
where
(subst', ids') = mapAccumL (clone_id subst') subst
(ids `zip` uniqsFromSupply us)
-- Just like substIdBndr, except that it always makes a new unique
-- It is given the unique to use
clone_id :: Subst -- Substitution for the IdInfo
-> Subst -> (Id, Unique) -- Substitution and Id to transform
-> (Subst, Id) -- Transformed pair
clone_id rec_subst subst@(Subst in_scope idvs tvs cvs) (old_id, uniq)
= (Subst (in_scope `extendInScopeSet` new_id) new_idvs tvs new_cvs, new_id)
where
id1 = setVarUnique old_id uniq
id2 = substIdType subst id1
new_id = maybeModifyIdInfo (substIdInfo rec_subst id2 (idInfo old_id)) id2
(new_idvs, new_cvs) | isCoVar old_id = (idvs, extendVarEnv cvs old_id (mkCoVarCo new_id))
| otherwise = (extendVarEnv idvs old_id (Var new_id), cvs)
{-
************************************************************************
* *
Types and Coercions
* *
************************************************************************
For types and coercions we just call the corresponding functions in
Type and Coercion, but we have to repackage the substitution, from a
Subst to a TCvSubst.
-}
substTyVarBndr :: Subst -> TyVar -> (Subst, TyVar)
substTyVarBndr (Subst in_scope id_env tv_env cv_env) tv
= case Type.substTyVarBndr (TCvSubst in_scope tv_env cv_env) tv of
(TCvSubst in_scope' tv_env' cv_env', tv')
-> (Subst in_scope' id_env tv_env' cv_env', tv')
cloneTyVarBndr :: Subst -> TyVar -> Unique -> (Subst, TyVar)
cloneTyVarBndr (Subst in_scope id_env tv_env cv_env) tv uniq
= case Type.cloneTyVarBndr (TCvSubst in_scope tv_env cv_env) tv uniq of
(TCvSubst in_scope' tv_env' cv_env', tv')
-> (Subst in_scope' id_env tv_env' cv_env', tv')
substCoVarBndr :: Subst -> CoVar -> (Subst, CoVar)
substCoVarBndr (Subst in_scope id_env tv_env cv_env) cv
= case Coercion.substCoVarBndr (TCvSubst in_scope tv_env cv_env) cv of
(TCvSubst in_scope' tv_env' cv_env', cv')
-> (Subst in_scope' id_env tv_env' cv_env', cv')
-- | See 'Type.substTy'
substTy :: Subst -> Type -> Type
substTy subst ty = Type.substTyUnchecked (getTCvSubst subst) ty
getTCvSubst :: Subst -> TCvSubst
getTCvSubst (Subst in_scope _ tenv cenv) = TCvSubst in_scope tenv cenv
-- | See 'Coercion.substCo'
substCo :: HasCallStack => Subst -> Coercion -> Coercion
substCo subst co = Coercion.substCo (getTCvSubst subst) co
{-
************************************************************************
* *
\section{IdInfo substitution}
* *
************************************************************************
-}
substIdType :: Subst -> Id -> Id
substIdType subst@(Subst _ _ tv_env cv_env) id
| (isEmptyVarEnv tv_env && isEmptyVarEnv cv_env)
|| (noFreeVarsOfType old_ty && noFreeVarsOfType old_w) = id
| otherwise =
updateIdTypeAndMult (substTy subst) id
-- The tyCoVarsOfType is cheaper than it looks
-- because we cache the free tyvars of the type
-- in a Note in the id's type itself
where
old_ty = idType id
old_w = varMult id
------------------
-- | Substitute into some 'IdInfo' with regard to the supplied new 'Id'.
substIdInfo :: Subst -> Id -> IdInfo -> Maybe IdInfo
substIdInfo subst new_id info
| nothing_to_do = Nothing
| otherwise = Just (info `setRuleInfo` substSpec subst new_id old_rules
`setUnfoldingInfo` substUnfolding subst old_unf)
where
old_rules = ruleInfo info
old_unf = unfoldingInfo info
nothing_to_do = isEmptyRuleInfo old_rules && not (hasCoreUnfolding old_unf)
------------------
-- | Substitutes for the 'Id's within an unfolding
substUnfolding, substUnfoldingSC :: Subst -> Unfolding -> Unfolding
-- Seq'ing on the returned Unfolding is enough to cause
-- all the substitutions to happen completely
substUnfoldingSC subst unf -- Short-cut version
| isEmptySubst subst = unf
| otherwise = substUnfolding subst unf
substUnfolding subst df@(DFunUnfolding { df_bndrs = bndrs, df_args = args })
= df { df_bndrs = bndrs', df_args = args' }
where
(subst',bndrs') = substBndrs subst bndrs
args' = map (substExpr subst') args
substUnfolding subst unf@(CoreUnfolding { uf_tmpl = tmpl, uf_src = src })
-- Retain an InlineRule!
| not (isStableSource src) -- Zap an unstable unfolding, to save substitution work
= NoUnfolding
| otherwise -- But keep a stable one!
= seqExpr new_tmpl `seq`
unf { uf_tmpl = new_tmpl }
where
new_tmpl = substExpr subst tmpl
substUnfolding _ unf = unf -- NoUnfolding, OtherCon
------------------
substIdOcc :: Subst -> Id -> Id
-- These Ids should not be substituted to non-Ids
substIdOcc subst v = case lookupIdSubst subst v of
Var v' -> v'
other -> pprPanic "substIdOcc" (vcat [ppr v <+> ppr other, ppr subst])
------------------
-- | Substitutes for the 'Id's within the 'WorkerInfo' given the new function 'Id'
substSpec :: Subst -> Id -> RuleInfo -> RuleInfo
substSpec subst new_id (RuleInfo rules rhs_fvs)
= seqRuleInfo new_spec `seq` new_spec
where
subst_ru_fn = const (idName new_id)
new_spec = RuleInfo (map (substRule subst subst_ru_fn) rules)
(substDVarSet subst rhs_fvs)
------------------
substRulesForImportedIds :: Subst -> [CoreRule] -> [CoreRule]
substRulesForImportedIds subst rules
= map (substRule subst not_needed) rules
where
not_needed name = pprPanic "substRulesForImportedIds" (ppr name)
------------------
substRule :: Subst -> (Name -> Name) -> CoreRule -> CoreRule
-- The subst_ru_fn argument is applied to substitute the ru_fn field
-- of the rule:
-- - Rules for *imported* Ids never change ru_fn
-- - Rules for *local* Ids are in the IdInfo for that Id,
-- and the ru_fn field is simply replaced by the new name
-- of the Id
substRule _ _ rule@(BuiltinRule {}) = rule
substRule subst subst_ru_fn rule@(Rule { ru_bndrs = bndrs, ru_args = args
, ru_fn = fn_name, ru_rhs = rhs
, ru_local = is_local })
= rule { ru_bndrs = bndrs'
, ru_fn = if is_local
then subst_ru_fn fn_name
else fn_name
, ru_args = map (substExpr subst') args
, ru_rhs = substExpr subst' rhs }
-- Do NOT optimise the RHS (previously we did simplOptExpr here)
-- See Note [Substitute lazily]
where
(subst', bndrs') = substBndrs subst bndrs
------------------
substDVarSet :: Subst -> DVarSet -> DVarSet
substDVarSet subst fvs
= mkDVarSet $ fst $ foldr (subst_fv subst) ([], emptyVarSet) $ dVarSetElems fvs
where
subst_fv subst fv acc
| isId fv = expr_fvs (lookupIdSubst subst fv) isLocalVar emptyVarSet $! acc
| otherwise = tyCoFVsOfType (lookupTCvSubst subst fv) (const True) emptyVarSet $! acc
------------------
substTickish :: Subst -> Tickish Id -> Tickish Id
substTickish subst (Breakpoint n ids)
= Breakpoint n (map do_one ids)
where
do_one = getIdFromTrivialExpr . lookupIdSubst subst
substTickish _subst other = other
{- Note [Substitute lazily]
~~~~~~~~~~~~~~~~~~~~~~~~~~~
The functions that substitute over IdInfo must be pretty lazy, because
they are knot-tied by substRecBndrs.
One case in point was #10627 in which a rule for a function 'f'
referred to 'f' (at a different type) on the RHS. But instead of just
substituting in the rhs of the rule, we were calling simpleOptExpr, which
looked at the idInfo for 'f'; result <<loop>>.
In any case we don't need to optimise the RHS of rules, or unfoldings,
because the simplifier will do that.
Note [substTickish]
~~~~~~~~~~~~~~~~~~~~~~
A Breakpoint contains a list of Ids. What happens if we ever want to
substitute an expression for one of these Ids?
First, we ensure that we only ever substitute trivial expressions for
these Ids, by marking them as NoOccInfo in the occurrence analyser.
Then, when substituting for the Id, we unwrap any type applications
and abstractions to get back to an Id, with getIdFromTrivialExpr.
Second, we have to ensure that we never try to substitute a literal
for an Id in a breakpoint. We ensure this by never storing an Id with
an unlifted type in a Breakpoint - see GHC.HsToCore.Coverage.mkTickish.
Breakpoints can't handle free variables with unlifted types anyway.
-}
{-
Note [Worker inlining]
~~~~~~~~~~~~~~~~~~~~~~
A worker can get substituted away entirely.
- it might be trivial
- it might simply be very small
We do not treat an InlWrapper as an 'occurrence' in the occurrence
analyser, so it's possible that the worker is not even in scope any more.
In all these cases we simply drop the special case, returning to
InlVanilla. The WARN is just so I can see if it happens a lot.
-}
|