Module Evd
type econstrtype etypes= econstrtype esorts
Existential variables and unification states
Evar filters
module Filter : sig ... endmodule Abstraction : sig ... endEvar infos
Projections from evar infos
val evar_context : 'a evar_info -> (econstr, etypes) Context.Named.ptContext of the evar.
val evar_hyps : 'a evar_info -> Environ.named_context_valContext of the evar.
val evar_candidates : undefined evar_info -> econstr list optionList of possible solutions when known that it is a finite list
val evar_source : 'a evar_info -> Evar_kinds.t Loc.locatedval evar_filter : 'a evar_info -> Filter.tBoolean mask over
evar_hyps. Should have the same length. When filtered out, the corresponding variable is not allowed to occur in the solution
val evar_abstract_arguments : undefined evar_info -> Abstraction.tBoolean information over
evar_hyps, telling if an hypothesis instance can be imitated or should stay abstract in HO unification problems and inversion (seesecond_order_matching_with_argsfor its use).
val evar_relevance : 'a evar_info -> Sorts.relevanceRelevance of the conclusion of the evar.
Derived projections
val evar_filtered_context : 'a evar_info -> (econstr, etypes) Context.Named.ptval evar_filtered_hyps : 'a evar_info -> Environ.named_context_valval evar_env : Environ.env -> 'a evar_info -> Environ.envval evar_filtered_env : Environ.env -> 'a evar_info -> Environ.envval evar_identity_subst : 'a evar_info -> econstr SList.tval map_evar_body : (econstr -> econstr) -> 'a evar_body -> 'a evar_bodyval map_evar_info : (econstr -> econstr) -> 'a evar_info -> 'a evar_info
Unification state
*
type evar_mapType of unification state. Essentially a bunch of state-passing data needed to handle incremental term construction.
val empty : evar_mapThe empty evar map.
val from_env : ?binders:Names.lident list -> Environ.env -> evar_mapThe empty evar map with given universe context, taking its initial universes from env, possibly with initial universe binders. This is the main entry point at the beginning of the process of interpreting a declaration (e.g. before entering the interpretation of a Theorem statement).
val from_ctx : UState.t -> evar_mapThe empty evar map with given universe context. This is the main entry point when resuming from a already interpreted declaration (e.g. after having interpreted a Theorem statement and preparing to open a goal).
val is_empty : evar_map -> boolWhether an evarmap is empty.
val has_undefined : evar_map -> boolhas_undefined sigmaistrueif and only if there are uninstantiated evars insigma.
val has_given_up : evar_map -> boolhas_given_up sigmaistrueif and only if there are given up evars insigma.
val has_shelved : evar_map -> boolhas_shelved sigmaistrueif and only if there are shelved evars insigma.
val new_pure_evar : ?src:Evar_kinds.t Loc.located -> ?filter:Filter.t -> ?relevance:Sorts.relevance -> ?abstract_arguments:Abstraction.t -> ?candidates:econstr list -> ?name:Names.Id.t -> ?typeclass_candidate:bool -> ?principal:bool -> Environ.named_context_val -> evar_map -> etypes -> evar_map * Evar.tLow-level interface to create an evar.
- parameter src
User-facing source for the evar
- parameter filter
See
Evd.Filter, must be the same length asnamed_context_val
- parameter name
A name for the evar
- parameter principal
Whether the evar is the principal goal
- parameter named_context_val
The context of the evar
- parameter types
The type of conclusion of the evar
val add : evar_map -> Evar.t -> 'a evar_info -> evar_mapadd sigma ev infoaddsevwith evar infoinfoin sigma. Precondition: ev must not preexist insigma.
val find_defined : evar_map -> Evar.t -> defined evar_info optionval find : evar_map -> Evar.t -> any_evar_infoRecover the data associated to an evar.
val find_undefined : evar_map -> Evar.t -> undefined evar_infoSame as
findbut restricted to undefined evars. For efficiency reasons.
val undefine : evar_map -> Evar.t -> etypes -> evar_mapRemove the body of an evar. Only there for backward compat, do not use.
val fold : (Evar.t -> any_evar_info -> 'a -> 'a) -> evar_map -> 'a -> 'aApply a function to all evars and their associated info in an evarmap.
val fold_undefined : (Evar.t -> undefined evar_info -> 'a -> 'a) -> evar_map -> 'a -> 'aSame as
fold, but restricted to undefined evars. For efficiency reasons.
val raw_map : map -> evar_map -> evar_mapApply the given function to all evars in the map. Beware: this function expects the argument function to preserve the kind of
evar_body, i.e. it must sendEvar_emptytoEvar_emptyandEvar_defined cto someEvar_defined c'.
val raw_map_undefined : (Evar.t -> undefined evar_info -> undefined evar_info) -> evar_map -> evar_mapSame as
raw_map, but restricted to undefined evars. For efficiency reasons.
val define : Evar.t -> econstr -> evar_map -> evar_mapSet the body of an evar to the given constr. It is expected that:
- The evar is already present in the evarmap.
- The evar is not defined in the evarmap yet.
- All the evars present in the constr should be present in the evar map.
val define_with_evar : Evar.t -> econstr -> evar_map -> evar_mapSame as
define ev body evd, except the body must be an existential variableev'. This additionally makesev'inherit theobligationandtypeclassflags ofev.
val cmap : (econstr -> econstr) -> evar_map -> evar_mapMap the function on all terms in the evar map.
val add_constraints : evar_map -> Univ.Constraints.t -> evar_mapAdd universe constraints in an evar map.
val add_quconstraints : evar_map -> Sorts.QUConstraints.t -> evar_mapval undefined_map : evar_map -> undefined evar_info Evar.Map.tAccess the undefined evar mapping directly.
val drop_all_defined : evar_map -> evar_mapval drop_new_defined : original:evar_map -> evar_map -> evar_mapDrop the defined evars in the second evar map which did not exist in the first.
val is_maybe_typeclass_hook : (evar_map -> Constr.constr -> bool) Hook.t
Instantiating partial terms
val existential_value : evar_map -> econstr Constr.pexistential -> econstrexistential_value sigma evraisesNotInstantiatedEvarifevhas no body andNot_foundif it does not exist insigma
val existential_value0 : evar_map -> Constr.existential -> Constr.constrval existential_type_opt : evar_map -> econstr Constr.pexistential -> etypes optionval existential_type : evar_map -> econstr Constr.pexistential -> etypesval existential_type0 : evar_map -> Constr.existential -> Constr.typesval existential_opt_value : evar_map -> econstr Constr.pexistential -> econstr optionSame as
existential_valuebut returns an option instead of raising an exception.
val existential_opt_value0 : evar_map -> Constr.existential -> Constr.constr optionval evar_handler : evar_map -> Constr.constr CClosure.evar_handlerval existential_expand_value0 : evar_map -> Constr.existential -> Constr.constr CClosure.evar_expansionval expand_existential : evar_map -> econstr Constr.pexistential -> econstr listReturns the full evar instance with implicit default variables turned into explicit
Varnodes.
val expand_existential0 : evar_map -> Constr.constr Constr.pexistential -> Constr.constr listval instantiate_evar_array : evar_map -> 'a evar_info -> econstr -> econstr SList.t -> econstr
Misc
val restrict : Evar.t -> Filter.t -> ?candidates:econstr list -> ?src:Evar_kinds.t Loc.located -> evar_map -> evar_map * Evar.tRestrict an undefined evar into a new evar by filtering context and possibly limiting the instances to a set of candidates (candidates are filtered according to the filter)
val update_source : evar_map -> Evar.t -> Evar_kinds.t Loc.located -> evar_mapTo update the source a posteriori, e.g. when an evar type of another evar has to refer to this other evar, with a mutual dependency
val get_aliased_evars : evar_map -> Evar.t Evar.Map.tThe map of aliased evars
val is_aliased_evar : evar_map -> Evar.t -> Evar.t optionTell if an evar has been aliased to another evar, and if yes, which
val max_undefined_with_candidates : evar_map -> Evar.t optionIf any, the evar with highest id with a non-empty list of candidates.
val set_typeclass_evars : evar_map -> Evar.Set.t -> evar_mapMark the given set of evars as available for resolution.
Precondition: they should indeed refer to undefined typeclass evars.
val is_typeclass_evar : evar_map -> Evar.t -> boolIs the evar declared resolvable for typeclass resolution
val get_impossible_case_evars : evar_map -> Evar.Set.tSet of undefined evars with ImpossibleCase evar source.
val downcast : Evar.t -> etypes -> evar_map -> evar_mapChange the type of an undefined evar to a new type assumed to be a subtype of its current type; subtyping must be ensured by caller
val evar_ident : Evar.t -> evar_map -> Names.Id.t optionval rename : Evar.t -> Names.Id.t -> evar_map -> evar_mapval evar_key : Names.Id.t -> evar_map -> Evar.tval evar_source_of_meta : Constr.metavariable -> evar_map -> Evar_kinds.t Loc.locatedval dependent_evar_ident : Evar.t -> evar_map -> Names.Id.t
Side-effects
type side_effect_role=|Schema of Names.inductive * stringtype side_effects={seff_private : Safe_typing.private_constants;seff_roles : side_effect_role Names.Cmap.t;}
val empty_side_effects : side_effectsval concat_side_effects : side_effects -> side_effects -> side_effectsval emit_side_effects : side_effects -> evar_map -> evar_mapPush a side-effect into the evar map.
val eval_side_effects : evar_map -> side_effectsReturn the effects contained in the evar map.
Future goals
val declare_future_goal : Evar.t -> evar_map -> evar_mapAdds an existential variable to the list of future goals. For internal uses only.
val declare_principal_goal : Evar.t -> evar_map -> evar_mapAdds an existential variable to the list of future goals and make it principal. Only one existential variable can be made principal, an error is raised otherwise. For internal uses only.
module FutureGoals : sig ... endval push_future_goals : evar_map -> evar_mapval pop_future_goals : evar_map -> FutureGoals.t * evar_mapval fold_future_goals : (evar_map -> Evar.t -> evar_map) -> evar_map -> evar_mapval remove_future_goal : evar_map -> Evar.t -> evar_mapval pr_future_goals_stack : evar_map -> Pp.tval push_shelf : evar_map -> evar_mapval pop_shelf : evar_map -> Evar.t list * evar_mapval filter_shelf : (Evar.t -> bool) -> evar_map -> evar_mapval give_up : Evar.t -> evar_map -> evar_mapval shelve : evar_map -> Evar.t list -> evar_mapval unshelve : evar_map -> Evar.t list -> evar_mapval given_up : evar_map -> Evar.Set.tval shelf : evar_map -> Evar.t listval pr_shelf : evar_map -> Pp.t
Sort variables
Evar maps also keep track of the universe constraints defined at a given point. This section defines the relevant manipulation functions.
val add_universe_constraints : evar_map -> UnivProblem.Set.t -> evar_mapAdd the given universe unification constraints to the evar map.
- raises UniversesDiffer
in case a first-order unification fails.
- raises UniverseInconsistency
.
Extra data
Evar maps can contain arbitrary data, allowing to use an extensible state. As evar maps are theoretically used in a strict state-passing style, such additional data should be passed along transparently. Some old and bug-prone code tends to drop them nonetheless, so you should keep cautious.
Enriching with evar maps
type 'a sigma={it : 'a;The base object.
sigma : evar_map;The added unification state.
}The type constructor
'a sigmaadds an evar map to an object of type'a.
The state monad with state an evar map
Meta machinery
These functions are almost deprecated. They were used before the introduction of the full-fledged evar calculus. In an ideal world, they should be removed. Alas, some parts of the code still use them. Do not use in newly-written code.
module Metaset : Util.Set.S with type S.elt = Constr.metavariablemodule Metamap : Util.Map.ExtS with type key = Constr.metavariable and module Set := Metasettype 'a freelisted={rebus : 'a;freemetas : Metaset.t;}
val metavars_of : econstr -> Metaset.tval mk_freelisted : econstr -> econstr freelistedval map_fl : ('a -> 'b) -> 'a freelisted -> 'b freelisted
val eq_instance_constraint : instance_constraint -> instance_constraint -> bool
type instance_status= instance_constraint * instance_typing_status
type clbinding=|Cltyp of Names.Name.t * econstr freelisted|Clval of Names.Name.t * econstr freelisted * instance_status * econstr freelistedtype conv_pb= Conversion.conv_pbUnification constraints
type evar_constraint= conv_pb * Environ.env * econstr * econstr
val add_conv_pb : ?tail:bool -> evar_constraint -> evar_map -> evar_mapThe following two functions are for internal use only, see
Evarutil.add_unification_pbfor a safe interface.
val conv_pbs : evar_map -> evar_constraint listval extract_changed_conv_pbs : evar_map -> (Evar.Set.t -> evar_constraint -> bool) -> evar_map * evar_constraint listval extract_all_conv_pbs : evar_map -> evar_map * evar_constraint listval loc_of_conv_pb : evar_map -> evar_constraint -> Loc.t option
val evars_of_named_context : evar_map -> (econstr, etypes) Context.Named.pt -> Evar.Set.tval evars_of_filtered_evar_info : evar_map -> 'a evar_info -> Evar.Set.tval meta_list : evar_map -> clbinding Metamap.tMetas
val meta_value : evar_map -> Constr.metavariable -> econstrmeta_fvalueraisesNot_foundif meta not in map orAnomalyif meta has no value
val meta_opt_fvalue : evar_map -> Constr.metavariable -> (econstr freelisted * instance_status) optionval meta_ftype : evar_map -> Constr.metavariable -> etypes freelistedval meta_name : evar_map -> Constr.metavariable -> Names.Name.tval meta_declare : Constr.metavariable -> etypes -> ?name:Names.Name.t -> evar_map -> evar_mapval meta_assign : Constr.metavariable -> (econstr * instance_status) -> evar_map -> evar_mapval meta_reassign : Constr.metavariable -> (econstr * instance_status) -> evar_map -> evar_mapval clear_metas : evar_map -> evar_mapval meta_merge : clbinding Metamap.t -> evar_map -> evar_mapmeta_merge evd1 evd2returnsevd2extended with the metas ofevd1
val map_metas_fvalue : (econstr -> econstr) -> evar_map -> evar_mapval map_metas : (econstr -> econstr) -> evar_map -> evar_map
type metabinding= Constr.metavariable * econstr * instance_status
val retract_coercible_metas : evar_map -> metabinding list * evar_map
FIXME: Nothing to do here
type rigid= UState.rigid=|UnivRigid|UnivFlexible of boolIs substitution by an algebraic ok?
type 'a in_evar_universe_context= 'a * UState.t
val restrict_universe_context : evar_map -> Univ.Level.Set.t -> evar_mapval universe_of_name : evar_map -> Names.Id.t -> Univ.Level.tRaises Not_found if not a name for a universe in this map.
val quality_of_name : evar_map -> Names.Id.t -> Sorts.QVar.tval universe_binders : evar_map -> UnivNames.universe_bindersval new_univ_level_variable : ?loc:Loc.t -> ?name:Names.Id.t -> rigid -> evar_map -> evar_map * Univ.Level.tval new_quality_variable : ?loc:Loc.t -> ?name:Names.Id.t -> evar_map -> evar_map * Sorts.QVar.tval new_sort_variable : ?loc:Loc.t -> rigid -> evar_map -> evar_map * esortsval add_global_univ : evar_map -> Univ.Level.t -> evar_mapval universe_rigidity : evar_map -> Univ.Level.t -> rigidval make_nonalgebraic_variable : evar_map -> Univ.Level.t -> evar_mapSee
UState.make_nonalgebraic_variable.
val is_flexible_level : evar_map -> Univ.Level.t -> boolval normalize_universe_instance : evar_map -> UVars.Instance.t -> UVars.Instance.tval set_leq_sort : Environ.env -> evar_map -> esorts -> esorts -> evar_mapval set_eq_sort : Environ.env -> evar_map -> esorts -> esorts -> evar_mapval set_eq_level : evar_map -> Univ.Level.t -> Univ.Level.t -> evar_mapval set_leq_level : evar_map -> Univ.Level.t -> Univ.Level.t -> evar_mapval set_eq_instances : ?flex:bool -> evar_map -> UVars.Instance.t -> UVars.Instance.t -> evar_mapval check_eq : evar_map -> esorts -> esorts -> boolval check_leq : evar_map -> esorts -> esorts -> boolval check_constraints : evar_map -> Univ.Constraints.t -> boolval check_qconstraints : evar_map -> Sorts.QConstraints.t -> boolval check_quconstraints : evar_map -> Sorts.QUConstraints.t -> boolval evar_universe_context : evar_map -> UState.tval universe_context_set : evar_map -> Univ.ContextSet.tval sort_context_set : evar_map -> UnivGen.sort_context_setval universe_subst : evar_map -> UnivFlex.tval universes : evar_map -> UGraph.tval to_universe_context : evar_map -> UVars.UContext.tto_universe_context evmextracts the local universes and constraints ofevmand orders the universes the same asUniv.ContextSet.to_context.
val univ_entry : poly:bool -> evar_map -> UState.named_universes_entryval check_univ_decl : poly:bool -> evar_map -> UState.universe_decl -> UState.named_universes_entryval merge_universe_context : evar_map -> UState.t -> evar_mapval set_universe_context : evar_map -> UState.t -> evar_mapval merge_context_set : ?loc:Loc.t -> ?sideff:bool -> rigid -> evar_map -> Univ.ContextSet.t -> evar_mapval merge_sort_context_set : ?loc:Loc.t -> ?sideff:bool -> rigid -> evar_map -> UnivGen.sort_context_set -> evar_mapval merge_sort_variables : ?loc:Loc.t -> ?sideff:bool -> evar_map -> Sorts.QVar.Set.t -> evar_mapval with_context_set : ?loc:Loc.t -> rigid -> evar_map -> 'a Univ.in_universe_context_set -> evar_map * 'aval with_sort_context_set : ?loc:Loc.t -> rigid -> evar_map -> 'a UnivGen.in_sort_context_set -> evar_map * 'aval nf_univ_variables : evar_map -> evar_mapval collapse_sort_variables : evar_map -> evar_mapval fix_undefined_variables : evar_map -> evar_mapval minimize_universes : evar_map -> evar_mapUniverse minimization
val fresh_sort_in_family : ?loc:Loc.t -> ?rigid:rigid -> evar_map -> Sorts.family -> evar_map * esortsval fresh_constant_instance : ?loc:Loc.t -> ?rigid:rigid -> Environ.env -> evar_map -> Names.Constant.t -> evar_map * Constr.pconstantval fresh_inductive_instance : ?loc:Loc.t -> ?rigid:rigid -> Environ.env -> evar_map -> Names.inductive -> evar_map * Constr.pinductiveval fresh_constructor_instance : ?loc:Loc.t -> ?rigid:rigid -> Environ.env -> evar_map -> Names.constructor -> evar_map * Constr.pconstructorval fresh_array_instance : ?loc:Loc.t -> ?rigid:rigid -> Environ.env -> evar_map -> evar_map * UVars.Instance.tval fresh_global : ?loc:Loc.t -> ?rigid:rigid -> ?names:UVars.Instance.t -> Environ.env -> evar_map -> Names.GlobRef.t -> evar_map * econstr
Summary names
val evar_counter_summary_tag : int Summary.Dyn.tagval create_evar_defs : evar_map -> evar_mapDeprecated functions
module MiniEConstr : sig ... endUse this module only to bootstrap EConstr