SubstSubstitutions
Substitutions are used to translate a type from one context to another. This requires substituting paths for identifiers, and possibly also lowering the level of non-generic variables so that they are inferior to the maximum level of the new context.
Substitutions can also be used to create a "clean" copy of a type. Indeed, non-variable node of a type are duplicated, with their levels set to generic level. That way, the resulting type is well-formed (decreasing levels), even if the original one was not.
In the presence of local substitutions for module types, a substitution for a type expression may fail to produce a well-formed type. In order to confine this issue to local substitutions, the type of substitutions is split into a safe and unsafe variant. Only unsafe substitutions may expand a module type path into a generic module type.
val identity : 'a substval change_locs : 'k subst -> Location.t -> 'k substval type_expr : t -> Types.type_expr -> Types.type_exprval class_type : t -> Types.class_type -> Types.class_typeval value_description : t -> Types.value_description -> Types.value_descriptionval type_declaration : t -> Types.type_declaration -> Types.type_declarationval extension_constructor :
t ->
Types.extension_constructor ->
Types.extension_constructorval class_declaration : t -> Types.class_declaration -> Types.class_declarationval cltype_declaration :
t ->
Types.class_type_declaration ->
Types.class_type_declarationWhen applied to a signature item, a substitution not only modifies the types present in its declaration, but also refreshes the identifier of the item. Effectively this creates new declarations, and so one should decide what the scope of this new declaration should be.
This is decided by the scoping argument passed to the following functions.
val modtype : scoping -> t -> Types.module_type -> Types.module_typeval signature : scoping -> t -> Types.signature -> Types.signatureval signature_item :
scoping ->
t ->
Types.signature_item ->
Types.signature_itemval modtype_declaration :
scoping ->
t ->
Types.modtype_declaration ->
Types.modtype_declarationval module_declaration :
scoping ->
t ->
Types.module_declaration ->
Types.module_declarationComposition of substitutions: apply (compose s1 s2) x = apply s2 (apply s1 x) *
module Unsafe : sig ... endmodule Lazy : sig ... end