Module Typedtree
Abstract syntax tree after typing
By comparison with Parsetree:
- Every
Longindent.tis accompanied by a resolvedPath.t.
module Uid = Shape.Uidtype constant = | Const_int of int| Const_char of char| Const_untagged_char of char| Const_string of string * Location.t * string option| Const_float of string| Const_float32 of string| Const_unboxed_float of string| Const_unboxed_float32 of string| Const_int8 of int| Const_int16 of int| Const_int32 of int32| Const_int64 of int64| Const_nativeint of nativeint| Const_untagged_int of int| Const_untagged_int8 of int| Const_untagged_int16 of int| Const_unboxed_int32 of int32| Const_unboxed_int64 of int64| Const_unboxed_nativeint of nativeint
Extension points
type attribute = Parsetree.attributetype attributes = attribute listCore language
type _ pattern_category = | Value : value pattern_category| Computation : computation pattern_category
module Unique_barrier : sig ... endA unique barrier annotates field accesses (eg. Texp_field and patterns) with the uniqueness mode of the allocation that is projected out of. Projections out of unique allocations may not be pushed down in later stages of the compiler, because the unique allocation may be overwritten.
type unique_use = Mode.Uniqueness.r * Mode.Linearity.lThe uniqueness/linearity of a usage (such as Pexp_ident) inferred by the type checker. It is derived during type checking as follows: unique_use.uniqueness = expected_mode.uniqueness unique_use.linearity = actual_mode.linearity for example, let x = P in f x, (Pexp_ident x).unique_use will contain the expected uniqueness of f's parameter, and linearity of P. uniqueness_analysis.ml will _lexically_ infer the uniqueness/linearity of a usage and compare against unique_use. Following the example, if there are two f x, the uniqueness analysis will perform the following for unique_use of both Pexp_ident x: unique_use.uniqueness >= aliased unique_use.linearity <= many That is, the consumers of the values (that is f) must not require its parameter to be unique, and the value itself (that is P) must be many.
val print_unique_use : Format.formatter -> unique_use -> unittype alloc_mode = Mode.Alloc.rtype 'a modes = 'a Typemode.modes = {mode_modes : 'a;mode_desc : Mode.Alloc.atom Location.loc list;
}type modalities = Typemode.modalities = {moda_modalities : Mode.Modality.Const.t;moda_desc : Mode.Modality.atom Location.loc list;
}type texp_field_boxing = | Boxing of alloc_mode * unique_use(*Projection requires boxing.
*)unique_usedescribes the usage of the unboxed field as argument to boxing.| Non_boxing of unique_use(*Projection does not require boxing.
*)unique_usedescribes the usage of the field as the result of direct projection.
val aliased_many_use : unique_uselabel_ambiguity specifies the result of type-driven label disambiguation. Disambiguation occurs when the same label (record field or variant case) occurs in many types, when performing operations like variant construction or record access, but also when specifying record and variant patterns.
Where disambiguation was necessary (i.e. the label was ambiguous), the disambiguated path and arity (number of parameters) of the resolved type constructor is preserved so that we can insert a type annotation.
The arity is necessary to insert the right number of wildcards in the type constructor's argument list, e.g.: { path = result; arity = 2 } results in the annotation (_, _) result.
type _ type_inspection = | Label_disambiguation : label_ambiguity -> [< `pat | `exp ] type_inspection| Polymorphic_parameter : 'a poly_param -> 'a type_inspection
and _ poly_param = | Param : Types.type_expr -> [ `pat ] poly_param(*
*)Param tis used when introducing a polymorphic parameter with type schemet| Arrow : (Types.arg_label * Types.type_expr option) list -> [ `exp ] poly_param(*
*)Arrow paramsis used when eliminating a polymorphic parameter, withparamsincluding type schemes for polymorphic parameters| Method : string Asttypes.loc * Types.type_expr -> [ `exp ] poly_param(*
*)Method (m, t)is used when applying a polymorphic methodmwith type schemet
type pattern = value general_patternand 'k general_pattern = 'k pattern_desc pattern_dataand 'a pattern_data = {pat_desc : 'a;pat_loc : Location.t;pat_extra : (pat_extra * Location.t * attributes) list;pat_type : Types.type_expr;pat_env : Env.t;pat_attributes : attributes;pat_unique_barrier : Unique_barrier.t;(*This tracks whether the scrutinee of the pattern is used uniquely within the body of the pattern match.
*)
}and pat_extra = | Tpat_constraint of core_type * Mode.Alloc.Const.t modes(*P : T
*)pat_desc = P ; pat_extra = (Tpat_constraint T, _, _) :: ...| Tpat_type of Path.t * Longident.t Asttypes.loc(*#tconst
pat_desc = disjunction ; pat_extra = (Tpat_type (P, "tconst"), _, _) :: ...where
*)disjunctionis aTpat_or _representing the branches oftconst.| Tpat_open of Path.t * Longident.t Asttypes.loc * Env.t| Tpat_unpack(*(module P)
*)pat_desc = Tpat_var "P" ; pat_extra = (Tpat_unpack, _, _) :: ...(module _)pat_desc = Tpat_any ; pat_extra = (Tpat_unpack, _, _) :: ...| Tpat_inspected_type of [ `pat ] type_inspection(*Inserted when type inspection was necessary to resolve types during inference. Generally, elaborated to a type constraint.
See specific
*)type_inspectioncases for details.
and 'k pattern_desc = | Tpat_any : value pattern_desc(*_
*)| Tpat_var : {id : Ident.t;name : string Asttypes.loc;uid : Uid.t;sort : Jkind_types.Sort.t;mode : Mode.Value.l;
} -> value pattern_desc(*x
*)| Tpat_alias : {pattern : value general_pattern;id : Ident.t;name : string Asttypes.loc;uid : Uid.t;sort : Jkind_types.Sort.t;mode : Mode.Value.l;type_expr : Types.type_expr;
} -> value pattern_desc(*P as a
*)| Tpat_fun_layout : {id : Ident.t;name : string Asttypes.loc;uid : Uid.t;sort : Jkind_types.Sort.t;(*the sort of the layout function body
*)mode : Mode.Value.l;(*the mode of the layout function body
*)lpoly : Types.Lpoly.t;(*The sort variables abstracted over by this compile-time function, and the allocation mode of the captured environment.
*)pendingduring type-checking; guaranteeddeterminedof (potentially empty) generic sort variables aftertype_letreturns.env_alloc_mode : alloc_mode;(*The allocation mode of the environment captured by the layout function.
Imagine we defined
let poly_ f = .. x ..in a structureM, where.. x ..is some expression (not necessarily a function) that refers tox. It translates to runtime:let f__float = fun env -> let {x; ..} = env in .. x .. let f_env = {x = x; ..}where
f__floatis the instantiated function andf_envis the captured environment (containing the example variablex) and is passed tof__float. Onlyf_envis stored within the structureM;f__floatis a top-level symbol.Observe the following constraint:
- For comonadic axes,
f_env <= Mandx <= f_env. - The monadic axes of
f_envdon't matter. In particular, note that nothing closes overf_env. Also note that we don't perform onf_envoperations warranted by monadic modes such asuniqueoruncontended.
- For comonadic axes,
} -> value pattern_desc(*
*)let poly_ f = expcreates a compile-time functionfabstracted over the layouts inlpoly, and returnsexpatret_sortandret_mode. Note thatexpis not necessarily a function.| Tpat_constant : constant -> value pattern_desc(*1, 'a', "true", 1.0, 1l, 1L, 1n
*)| Tpat_unboxed_unit : value pattern_desc(*#()
*)| Tpat_unboxed_bool : bool -> value pattern_desc(*#false, #true
*)| Tpat_tuple : (string option * value general_pattern) list -> value pattern_desc(*(P1, ..., Pn)
(None,P1); ...; (None,Pn)) (L1:P1, ... Ln:Pn)(Some L1,P1); ...; (Some Ln,Pn)) Any mix, e.g. (L1:P1, P2)(Some L1,P1); ...; (None,P2))Invariant: n >= 2
*)| Tpat_unboxed_tuple : (string option * value general_pattern * Jkind.sort) list -> value pattern_desc(*#(P1, ..., Pn)
(None,P1,s1); ...; (None,Pn,sn)) #(L1:P1, ... Ln:Pn)(Some L1,P1,s1); ...; (Some Ln,Pn,sn)) Any mix, e.g. #(L1:P1, P2)(Some L1,P1,s1); ...; (None,P2,s2))Invariant: n >= 2
*)| Tpat_construct : Longident.t Asttypes.loc * Types.constructor_description * value general_pattern list * ((Ident.t Asttypes.loc * Parsetree.jkind_annotation option) list * core_type) option -> value pattern_desc(*C (, None) C P (
*)P, None) C (P1, ..., Pn) (P1; ...; Pn, None) C (P : t) (P, Some (, t)) C (P1, ..., Pn : t) (P1; ...; Pn, Some (, t)) C (type a) (P : t) (P, Some (a, t)) C (type a) (P1, ..., Pn : t) (P1; ...; Pn, Some (a, None, t)) C (type (a : k)) (P1, ..., Pn : t) (P1; ...; Pn, Some (a, Some k, t))| Tpat_variant : Asttypes.label * value general_pattern option * Types.row_desc ref -> value pattern_desc| Tpat_record : (Longident.t Asttypes.loc * Types.label_description * value general_pattern) list * Asttypes.closed_flag -> value pattern_desc(*l1=P1; ...; ln=Pn(flag = Closed)l1=P1; ...; ln=Pn; _(flag = Open)Invariant: n > 0
*)| Tpat_record_unboxed_product : (Longident.t Asttypes.loc * Types.unboxed_label_description * value general_pattern) list * Asttypes.closed_flag -> value pattern_desc(*#
l1=P1; ...; ln=Pn(flag = Closed) #l1=P1; ...; ln=Pn; _(flag = Open)Invariant: n > 0
*)| Tpat_array : Types.mutability * Jkind.sort * value general_pattern list -> value pattern_desc(*
*)| P1; ...; Pn |(flag = Mutable): P1; ...; Pn :(flag = Immutable)| Tpat_lazy : value general_pattern -> value pattern_desc(*lazy P
*)| Tpat_value : tpat_value_argument -> computation pattern_desc(*P
Invariant: Tpat_value pattern should not carry pat_attributes or pat_extra metadata coming from user syntax, which must be on the inner pattern node -- to facilitate searching for a certain value pattern constructor with a specific attributed.
To enforce this restriction, we made the argument of the Tpat_value constructor a private synonym of
*)pattern, requiring you to use theas_computation_patternfunction below instead of using theTpat_valueconstructor directly.| Tpat_exception : value general_pattern -> computation pattern_desc(*exception P
*)| Tpat_or : 'k general_pattern * 'k general_pattern * Types.row_desc option -> 'k pattern_desc(*P1 | P2
*)row_desc=Some _when translatingPpat_type _,Noneotherwise.
and tpat_value_argument = private value general_patternand expression = {exp_desc : expression_desc;exp_loc : Location.t;exp_extra : (exp_extra * Location.t * attributes) list;exp_type : Types.type_expr;exp_env : Env.t;exp_attributes : attributes;
}and exp_extra = | Texp_constraint of core_type(*E : T
*)| Texp_coerce of core_type option * core_type(*E :> T
*)Texp_coerce (None, T)E : T0 :> TTexp_coerce (Some T0, T)| Texp_poly of core_type option(*Used for method bodies.
*)| Texp_newtype of Ident.t * string Asttypes.loc * Parsetree.jkind_annotation option * Uid.t(*fun (type t : immediate) ->
The
*)Ident.tandUid.tfields are unused by the compiler, but Merlin needs them. Merlin cannot be cleanly patched to include these fields because Merlin must be able to deserialize typedtrees produced by the compiler. Thus, we include them here, as the cost of tracking this additional information is minimal.| Texp_stack(*stack_ E
*)| Texp_mode of Mode.Alloc.Const.Option.t modes(*E : _ @@ M
*)| Texp_inspected_type of [ `exp ] type_inspection(*Inserted when type inspection was necessary to resolve types during inference. Generally, elaborated to a type constraint.
See specific
*)type_inspectioncases for details.| Texp_borrowed(*Indicate that the current expression is wrapped in a
borrow_operator. The uniqueness analysis pairs this with an innermostTexp_ghost_regionand assumes that typecore guarantees the borrowed value doesn't escape the ghost region.Note that there could be other regions (such as loop or function body) inner than the ghost region, and it's the innermost region that typecore actually guarantees for. That is, the actual guarantee is stronger than what's assumed by the UA. Therefore, such a mismatch would be sound.
*)| Texp_ghost_region(*This expression is wrapped inside a ghost region.
*)
and arg_label = Types.arg_label = and expression_desc = | Texp_ident of {path : Path.t;lid : Longident.t Asttypes.loc;desc : Types.value_description;kind : ident_kind;unique_use : unique_use;mode : Mode.Value.l;
}(*x M.x
*)| Texp_apply_layout of expression * Jkind_types.Sort.var list(*Instantiation of a layout-polymorphic identifier. The expression is the
Texp_identbeing instantiated and the list contains the fresh sort variables supplied as layout arguments.It contains
*)Sort.varinstead ofSort.tbecause they are always inferred by the type checker. The consumer of the typedtree can assume it has been set to some concrete layout or some generic sort variable quantified by an outerTpat_fun_layout.| Texp_constant of constant(*1, 'a', "true", 1.0, 1l, 1L, 1n
*)| Texp_let of Asttypes.rec_flag * value_binding list * expression(*let P1 = E1 and ... and Pn = EN in E (flag = Nonrecursive) let rec P1 = E1 and ... and Pn = EN in E (flag = Recursive)
*)| Texp_letmutable of value_binding * expression(*let mutable P = E in E'
*)| Texp_function of {params : function_param list;body : function_body;ret_mode : Mode.Alloc.l modes;ret_sort : Jkind.sort;alloc_mode : alloc_mode;zero_alloc : Zero_alloc.t;
}(*fun P0 P1 -> function p1 -> e1 | p2 -> e2 (body = Tfunction_cases _) fun P0 P1 -> E (body = Tfunction_body _) This construct has the same arity as the originating
*)Pexp_function. Arity determines when side-effects for effectful parameters are run (e.g. optional argument defaults, matching against lazy patterns). Parameters' effects are run left-to-right when an n-ary function is saturated with n arguments.| Texp_apply of expression * (arg_label * apply_arg) list * apply_position * Mode.Locality.l * Zero_alloc.assume option(*E0 ~l1:E1 ... ~ln:En
The expression can be Omitted if the expression is abstracted over this argument. It currently appears when a label is applied.
For example: let f x ~y = x + y in f ~y:3
The resulting typedtree for the application is: Texp_apply (Texp_ident "f/1037",
(Nolabel, Omitted _); (Labelled "y", Some (Texp_constant Const_int 3)))The
*)Zero_alloc.assume optionrecords the optional@zero_alloc assumeattribute that may appear on applications.| Texp_match of expression * Jkind.sort * computation case list * partial(*match E0 with | P1 -> E1 | P2 | exception P3 -> E2 | exception P4 -> E3
*)Texp_match (E0, sort_of_E0, [(P1, E1); (P2 | exception P3, E2); (exception P4, E3)], _)| Texp_try of expression * value case list(*try E with P1 -> E1 | ... | PN -> EN
*)| Texp_unboxed_unit(*#()
*)| Texp_unboxed_bool of bool(*#false, #true
*)| Texp_tuple of (string option * expression) list * alloc_mode(*Texp_tuple(el)represents(E1, ..., En)whenelis(None, E1);...;(None, En),(L1:E1, ..., Ln:En)whenelis(Some L1, E1);...;(Some Ln, En),- Any mix, e.g.
(L1: E1, E2)whenelis(Some L1, E1); (None, E2)
| Texp_unboxed_tuple of (string option * expression * Jkind.sort) list(*Texp_unboxed_tuple(el)represents#(E1, ..., En)whenelis(None, E1, s1);...;(None, En, sn),#(L1:E1, ..., Ln:En)whenelis(Some L1, E1, s1);...;(Some Ln, En, sn),- Any mix, e.g.
#(L1: E1, E2)whenelis(Some L1, E1, s1); (None, E2, s2)
| Texp_construct of Longident.t Asttypes.loc * Types.constructor_description * expression list * alloc_mode option(*C C E
EC (E1, ..., En)E1;...;En
*)alloc_modeis the allocation mode of the construct, orNoneif the constructor isCstr_unboxedorCstr_constant, in which case it does not need allocation.| Texp_variant of Asttypes.label * (expression * alloc_mode) option(*
*)alloc_modeis the allocation mode of the variant, orNoneif the variant has no argument, in which case it does not need allocation.| Texp_record of {fields : (Types.label_description * record_label_definition) array;representation : Types.record_representation;extended_expression : (expression * Jkind.sort * Unique_barrier.t) option;alloc_mode : alloc_mode option;
}(*l1=P1; ...; ln=Pn(extended_expression = None)E0 with l1=P1; ...; ln=Pn(extended_expression = Some E0)Invariant: n > 0
If the type is
*)l1: t1; l2: t2, the expressionE0 with t2=P2is represented as Texp_recordfields = [| l1, Kept t1; l2 Override P2 |]; representation; extended_expression = Some E0alloc_modeis the allocation mode of the record, orNoneif it isRecord_unboxed, in which case it does not need allocation.| Texp_record_unboxed_product of {fields : (Types.unboxed_label_description * record_label_definition) array;representation : Types.record_unboxed_product_representation;extended_expression : (expression * Jkind.sort) option;
}(*#
l1=P1; ...; ln=Pn(extended_expression = None) #E0 with l1=P1; ...; ln=Pn(extended_expression = Some E0)Invariant: n > 0
If the type is #
*)l1: t1; l2: t2, the expression #E0 with t2=P2is represented as Texp_record_unboxed_productfields = [| l1, Kept t1; l2 Override P2 |]; representation; extended_expression = Some E0| Texp_atomic_loc of expression * Jkind.sort * Longident.t Asttypes.loc * Types.label_description * alloc_mode| Texp_field of expression * Jkind.sort * Longident.t Asttypes.loc * Types.label_description * texp_field_boxing * Unique_barrier.t(*The sort is the sort of the whole record (which may be non-value if the record is @
@unboxed
).
texp_field_boxingprovides extra information depending on if the projection requires boxing.
| Texp_unboxed_field of expression * Jkind.sort * Longident.t Asttypes.loc * Types.unboxed_label_description * unique_use| Texp_setfield of expression * Mode.Locality.l * Longident.t Asttypes.loc * Types.label_description * expression(*
*)alloc_modetranslates to themodify_modeof the record| Texp_array of Types.mutability * Jkind.Sort.t * expression list * alloc_mode| Texp_idx of block_access * unboxed_access list| Texp_list_comprehension of comprehension| Texp_array_comprehension of Types.mutability * Jkind.sort * comprehension| Texp_ifthenelse of expression * expression * expression option| Texp_sequence of expression * Jkind.sort * expression| Texp_while of {wh_cond : expression;wh_body : expression;wh_body_sort : Jkind.sort;
}| Texp_for of {for_id : Ident.t;for_debug_uid : Shape.Uid.t;for_pat : Parsetree.pattern;for_from : expression;for_to : expression;for_dir : Asttypes.direction_flag;for_body : expression;for_body_sort : Jkind.sort;
}| Texp_send of expression * meth * apply_position| Texp_new of Path.t * Longident.t Asttypes.loc * Types.class_declaration * apply_position| Texp_instvar of Path.t * Path.t * string Asttypes.loc| Texp_mutvar of Ident.t Asttypes.loc| Texp_setinstvar of Path.t * Path.t * string Asttypes.loc * expression| Texp_setmutvar of Ident.t Asttypes.loc * Jkind.sort * expression| Texp_override of Path.t * (Ident.t * string Asttypes.loc * expression) list| Texp_letmodule of Ident.t option * string option Asttypes.loc * Types.module_presence * module_expr * expression| Texp_letexception of extension_constructor * expression| Texp_assert of expression * Location.t| Texp_lazy of expression| Texp_object of class_structure * string list| Texp_pack of module_expr| Texp_letop of {let_ : binding_op;ands : binding_op list;param : Ident.t;param_debug_uid : Shape.Uid.t;param_sort : Jkind.sort;body : value case;body_sort : Jkind.sort;partial : partial;
}| Texp_unreachable| Texp_extension_constructor of Longident.t Asttypes.loc * Path.t| Texp_open of open_declaration * expression(*let open
*)!M in e| Texp_probe of {name : string;handler : expression;enabled_at_init : bool;
}| Texp_probe_is_enabled of {}| Texp_exclave of expression| Texp_src_pos| Texp_overwrite of expression * expression(*overwrite_ exp with exp
*)| Texp_hole of unique_use(*_
*)| Texp_quotation of expression| Texp_antiquotation of expression
Jkinds in the typed tree: Compilation of the typed tree to lambda sometimes requires jkind information. Our approach is to propagate jkind information inward during compilation. This requires us to annotate places in the typed tree where the jkind of a type of a subexpression is not determined by the jkind of the type of the expression containing it. For example, to the left of a semicolon, or in value_bindings.
CR layouts v1.5: Some of these were mainly needed for void (e.g., left of a semicolon). If we redo how void is compiled, perhaps we can drop those. On the other hand, there are some places we're not annotating now (e.g., function arguments) that will need annotations in the future because we'll allow other jkinds there. Just do a rationalization pass on this.
and function_param = {fp_arg_label : arg_label;fp_param : Ident.t;(*
*)fp_paramis the identifier that is to be used to name the parameter of the function.fp_param_debug_uid : Shape.Uid.t;fp_partial : partial;(*
*)fp_partial=Partialif the pattern match is partialTotalotherwise.fp_kind : function_param_kind;fp_sort : Jkind.sort;fp_mode : Mode.Alloc.l modes;fp_curry : function_curry;fp_newtypes : (Ident.t * string Asttypes.loc * Parsetree.jkind_annotation option * Uid.t) list;(*fp_newtypesare the new type declarations that come *after* that parameter. The newtypes that come before the first parameter are placed as exp_extras on the Texp_function node. This is just used inUntypeast.The
*)Ident.tandUid.tfields are unused by the compiler, but Merlin needs them. Merlin cannot be cleanly patched to include these fields because Merlin must be able to deserialize typedtrees produced by the compiler. Thus, we include them here, as the cost of tracking this additional information is minimal.fp_loc : Location.t;(*
*)fp_locis the location of the entire value parameter, not including thefp_newtypes.
}and function_param_kind = | Tparam_pat of pattern(*
*)Tparam_pat pis a non-optional argument with patternp.| Tparam_optional_default of pattern * expression * Jkind.sort(*
*)Tparam_optional_default (p, e, sort)is an optional argumentpwith default valuee, i.e.?x:(p = e). If the parameter is of typea option, the pattern and expression are of typea.sortis the sort ofe.
and function_body = | Tfunction_body of expression| Tfunction_cases of function_cases(*The function body binds a final argument in
*)Tfunction_cases, and this argument is pattern-matched against the cases.
and function_cases = {fc_cases : value case list;fc_env : Env.t;(*
*)fc_envcontains entries from all parameters except for the last one being matched by the cases.fc_arg_mode : Mode.Alloc.l;fc_arg_sort : Jkind.sort;fc_ret_type : Types.type_expr;fc_partial : partial;fc_param : Ident.t;fc_param_debug_uid : Shape.Uid.t;fc_loc : Location.t;fc_exp_extra : exp_extra list;fc_attributes : attributes;(*
*)fc_attributesis just used in untypeast.
}and block_access = | Baccess_field of Longident.t Asttypes.loc * Types.label_description| Baccess_block of Asttypes.mutable_flag * expression
and unboxed_access = | Uaccess_unboxed_field of Longident.t Asttypes.loc * Types.unboxed_label_description
and comprehension_clause = | Texp_comp_for of comprehension_clause_binding list| Texp_comp_when of expression
and comprehension_clause_binding = {comp_cb_iterator : comprehension_iterator;comp_cb_attributes : attribute list;(*No built-in attributes are meaningful here; this would correspond to
*)[body for[@attr] x in xs], and there are no built-in attributes that would be efficacious there. (The only ones that might make sense would be inlining, but you can't do that with list/array items that are being iterated over.)
}We move the pattern into the comprehension_iterator, compared to the untyped syntax tree, so that range-based iterators can have just an identifier instead of a full pattern
and comprehension_iterator = | Texp_comp_range of {ident : Ident.t;ident_debug_uid : Shape.Uid.t;pattern : Parsetree.pattern;(*Redundant with
*)identstart : expression;stop : expression;direction : Asttypes.direction_flag;
}| Texp_comp_in of {pattern : pattern;sequence : expression;
}
and record_label_definition = | Kept of Types.type_expr * Types.mutability * unique_use| Overridden of Longident.t Asttypes.loc * expression
and binding_op = {bop_op_path : Path.t;bop_op_name : string Asttypes.loc;bop_op_val : Types.value_description;bop_op_type : Types.type_expr;bop_op_return_sort : Jkind.sort;bop_exp : expression;bop_exp_sort : Jkind.sort;bop_loc : Location.t;
}and omitted_parameter = {mode_closure : Mode.Alloc.r;mode_arg : Mode.Alloc.l;mode_ret : Mode.Alloc.l;sort_arg : Jkind.sort;sort_ret : Jkind.sort;
}and apply_arg = (expression * Jkind.sort, omitted_parameter) arg_or_omittedand class_expr = {cl_desc : class_expr_desc;cl_loc : Location.t;cl_type : Types.class_type;cl_env : Env.t;cl_attributes : attributes;
}and class_expr_desc = | Tcl_ident of Path.t * Longident.t Asttypes.loc * core_type list| Tcl_structure of class_structure| Tcl_fun of arg_label * pattern * (Ident.t * expression) list * class_expr * partial| Tcl_apply of class_expr * (arg_label * apply_arg) list| Tcl_let of Asttypes.rec_flag * value_binding list * (Ident.t * expression) list * class_expr| Tcl_constraint of class_expr * class_type option * string list * string list * Types.MethSet.t| Tcl_open of open_description * class_expr
and class_structure = {cstr_self : pattern;cstr_fields : class_field list;cstr_type : Types.class_signature;cstr_meths : Ident.t Types.Meths.t;
}and class_field_kind = | Tcfk_virtual of core_type| Tcfk_concrete of Asttypes.override_flag * expression
and class_field_desc = | Tcf_inherit of Asttypes.override_flag * class_expr * string option * (string * Ident.t) list * (string * Ident.t) list| Tcf_val of string Asttypes.loc * Asttypes.mutable_flag * Ident.t * class_field_kind * bool| Tcf_method of string Asttypes.loc * Asttypes.private_flag * class_field_kind| Tcf_constraint of core_type * core_type| Tcf_initializer of expression| Tcf_attribute of attribute
and held_locks = Env.locks * Longident.t * Location.tand mode_with_locks = Mode.Value.l * held_locks optionand module_expr = {mod_desc : module_expr_desc;mod_loc : Location.t;mod_type : Types.module_type;mod_mode : mode_with_locks;(*The mode of the module. The second component is
*)Someifhold_locksis requested and the module is an identifier.mod_env : Env.t;mod_attributes : attributes;
}and module_type_constraint = | Tmodtype_implicit(*The module type constraint has been synthesized during typechecking.
*)| Tmodtype_explicit of module_type * Mode.Value.lr modes(*The module type was in the source file.
*)
Annotations for Tmod_constraint.
and functor_parameter = | Unit| Named of Ident.t option * string option Asttypes.loc * module_type * Mode.Alloc.Const.t modes
and module_expr_desc = | Tmod_ident of Path.t * Longident.t Asttypes.loc| Tmod_structure of structure| Tmod_functor of functor_parameter * module_expr| Tmod_apply of module_expr * module_expr * module_coercion| Tmod_apply_unit of module_expr| Tmod_constraint of module_expr * Types.module_type * module_type_constraint * module_coercion(*ME (constraint = Tmodtype_implicit) (ME : MT) (constraint = Tmodtype_explicit MT)
*)| Tmod_unpack of expression * Types.module_type
and structure_item_desc = | Tstr_eval of expression * Jkind.sort * attributes| Tstr_value of Asttypes.rec_flag * value_binding list| Tstr_primitive of value_description| Tstr_type of Asttypes.rec_flag * type_declaration list| Tstr_typext of type_extension| Tstr_exception of type_exception| Tstr_module of module_binding| Tstr_recmodule of module_binding list| Tstr_modtype of module_type_declaration| Tstr_open of open_declaration| Tstr_class of (class_declaration * string list) list| Tstr_class_type of (Ident.t * string Asttypes.loc * class_type_declaration) list| Tstr_include of include_declaration| Tstr_attribute of attribute| Tstr_jkind of jkind_declaration
and module_binding = {mb_id : Ident.t option;(*
*)Noneformodule _ = struct ... endmb_name : string option Asttypes.loc;mb_uid : Uid.t;mb_presence : Types.module_presence;mb_expr : module_expr;mb_attributes : attributes;mb_loc : Location.t;
}and value_binding = {vb_pat : pattern;vb_expr : expression;vb_rec_kind : Value_rec_types.recursive_binding_kind;vb_sort : Jkind.sort;vb_attributes : attributes;vb_loc : Location.t;
}and module_coercion = | Tcoerce_none| Tcoerce_structure of {input_repr : Types.module_representation;output_repr : Types.module_representation;pos_cc_list : (int * module_coercion) list;id_pos_list : (Ident.t * int * module_coercion) list;
}| Tcoerce_functor of module_coercion * module_coercion| Tcoerce_primitive of primitive_coercion(*External declaration coerced to a regular value.
module M : sig val ext : a -> b end = struct external ext : a -> b = "my_c_function" endOnly occurs inside a
*)Tcoerce_structurecoercion.| Tcoerce_alias of Env.t * Path.t * module_coercion(*Module alias coerced to a regular module.
module M : sig module Sub : T end = struct module Sub = Some_alias endOnly occurs inside a
*)Tcoerce_structurecoercion.
and module_type = {mty_desc : module_type_desc;mty_type : Types.module_type;mty_env : Env.t;mty_loc : Location.t;mty_attributes : attributes;
}and module_type_desc = | Tmty_ident of Path.t * Longident.t Asttypes.loc| Tmty_signature of signature| Tmty_functor of functor_parameter * module_type * Mode.Alloc.Const.t modes| Tmty_with of module_type * (Path.t * Longident.t Asttypes.loc * with_constraint) list| Tmty_typeof of module_expr| Tmty_alias of Path.t * Longident.t Asttypes.loc| Tmty_strengthen of module_type * Path.t * Longident.t Asttypes.loc
and primitive_coercion = {pc_desc : Primitive.description;pc_type : Types.type_expr;pc_poly_mode : Mode.Locality.l option;pc_poly_sort : Jkind.Sort.t option;pc_env : Env.t;pc_loc : Location.t;
}and signature = {sig_items : signature_item list;sig_modalities : modalities;sig_type : Types.signature;sig_final_env : Env.t;sig_sloc : Location.t;
}and signature_item_desc = | Tsig_value of value_description| Tsig_type of Asttypes.rec_flag * type_declaration list| Tsig_typesubst of type_declaration list| Tsig_typext of type_extension| Tsig_exception of type_exception| Tsig_module of module_declaration| Tsig_modsubst of module_substitution| Tsig_recmodule of module_declaration list| Tsig_modtype of module_type_declaration| Tsig_modtypesubst of module_type_declaration| Tsig_open of open_description| Tsig_include of include_description * modalities| Tsig_class of class_description list| Tsig_class_type of class_type_declaration list| Tsig_attribute of attribute| Tsig_jkind of jkind_declaration
and module_declaration = {md_id : Ident.t option;md_name : string option Asttypes.loc;md_uid : Uid.t;md_presence : Types.module_presence;md_type : module_type;md_modalities : modalities;md_attributes : attributes;md_loc : Location.t;
}and module_substitution = {ms_id : Ident.t;ms_name : string Asttypes.loc;ms_uid : Uid.t;ms_manifest : Path.t;ms_txt : Longident.t Asttypes.loc;ms_attributes : attributes;ms_loc : Location.t;
}and module_type_declaration = {mtd_id : Ident.t;mtd_name : string Asttypes.loc;mtd_uid : Uid.t;mtd_type : module_type option;mtd_attributes : attributes;mtd_loc : Location.t;
}and 'a open_infos = {open_expr : 'a;open_bound_items : Types.signature;open_items_repr : Types.module_representation;open_override : Asttypes.override_flag;open_env : Env.t;open_loc : Location.t;open_attributes : attribute list;
}and open_description = (Path.t * Longident.t Asttypes.loc) open_infosand open_declaration = module_expr open_infosand include_kind = | Tincl_structure| Tincl_functor of {input_coercion : (Ident.t * module_coercion) list;input_repr : Types.module_representation;
}| Tincl_gen_functor of {input_coercion : (Ident.t * module_coercion) list;input_repr : Types.module_representation;
}
and 'a include_infos = {incl_mod : 'a;incl_type : Types.signature;incl_repr : Types.module_representation;incl_loc : Location.t;incl_kind : include_kind;incl_attributes : attribute list;
}and include_description = module_type include_infosand include_declaration = module_expr include_infosand with_constraint = | Twith_type of type_declaration| Twith_module of Path.t * Longident.t Asttypes.loc| Twith_modtype of module_type| Twith_jkind of jkind_declaration| Twith_typesubst of type_declaration| Twith_modsubst of Path.t * Longident.t Asttypes.loc| Twith_modtypesubst of module_type| Twith_jkindsubst of jkind_declaration
and core_type = {mutable ctyp_desc : core_type_desc;(*mutable because of
*)Typeclass.declare_methodmutable ctyp_type : Types.type_expr;(*mutable because of
*)Typeclass.declare_methodctyp_env : Env.t;ctyp_loc : Location.t;ctyp_attributes : attributes;
}and core_type_desc = | Ttyp_var of string option * Parsetree.jkind_annotation option| Ttyp_arrow of arg_label * core_type * Mode.Alloc.Const.t modes * core_type * Mode.Alloc.Const.t modes| Ttyp_tuple of (string option * core_type) list| Ttyp_unboxed_tuple of (string option * core_type) list| Ttyp_constr of Path.t * Longident.t Asttypes.loc * core_type list| Ttyp_object of object_field list * Asttypes.closed_flag| Ttyp_class of Path.t * Longident.t Asttypes.loc * core_type list| Ttyp_alias of core_type * string Asttypes.loc option * Parsetree.jkind_annotation option| Ttyp_variant of row_field list * Asttypes.closed_flag * Asttypes.label list option| Ttyp_poly of (string * Parsetree.jkind_annotation option) list * core_type| Ttyp_package of package_type| Ttyp_open of Path.t * Longident.t Asttypes.loc * core_type| Ttyp_quote of core_type| Ttyp_splice of core_type| Ttyp_repr of string list * core_type| Ttyp_newlayout of string Asttypes.loc list * core_type| Ttyp_of_kind of Parsetree.jkind_annotation| Ttyp_call_pos(*
*)Ttyp_call_posrepresents the type of the value of a Position argument (lbl:[%call_pos] -> ...).
and package_type = {pack_path : Path.t;pack_fields : (Longident.t Asttypes.loc * core_type) list;pack_type : Types.module_type;pack_txt : Longident.t Asttypes.loc;
}and value_description_modal_info = | Valmi_sig_value of modalities| Valmi_str_primitive of Mode.Alloc.Const.Option.t modes
For a value description, whether user syntax is interpreted as modes or as modalities depends on whether the item is a signature value or a primitive. See the comments on Typedecl.transl_value_decl_modal for more info.
and value_description = {val_id : Ident.t;val_name : string Asttypes.loc;val_desc : core_type;val_val : Types.value_description;val_modal_info : value_description_modal_info;val_prim : string list;val_loc : Location.t;val_attributes : attributes;
}and type_declaration = {typ_id : Ident.t;typ_name : string Asttypes.loc;typ_params : (core_type * (Asttypes.variance * Asttypes.injectivity)) list;typ_type : Types.type_declaration;typ_cstrs : (core_type * core_type * Location.t) list;typ_kind : type_kind;typ_private : Asttypes.private_flag;typ_manifest : core_type option;typ_loc : Location.t;typ_attributes : attributes;typ_jkind_annotation : Parsetree.jkind_annotation option;
}and type_kind = | Ttype_abstract| Ttype_variant of constructor_declaration list| Ttype_record of label_declaration list| Ttype_record_unboxed_product of label_declaration list| Ttype_open
and label_declaration = {ld_id : Ident.t;ld_name : string Asttypes.loc;ld_uid : Uid.t;ld_mutable : Types.mutability;ld_modalities : modalities;ld_type : core_type;ld_loc : Location.t;ld_attributes : attributes;
}and constructor_declaration = {cd_id : Ident.t;cd_name : string Asttypes.loc;cd_uid : Uid.t;cd_vars : (string * Parsetree.jkind_annotation option) list;cd_args : constructor_arguments;cd_res : core_type option;cd_loc : Location.t;cd_attributes : attributes;
}and constructor_arguments = | Cstr_tuple of constructor_argument list| Cstr_record of label_declaration list
and type_extension = {tyext_path : Path.t;tyext_txt : Longident.t Asttypes.loc;tyext_params : (core_type * (Asttypes.variance * Asttypes.injectivity)) list;tyext_constructors : extension_constructor list;tyext_private : Asttypes.private_flag;tyext_loc : Location.t;tyext_attributes : attributes;
}and type_exception = {tyexn_constructor : extension_constructor;tyexn_loc : Location.t;tyexn_attributes : attribute list;
}and extension_constructor = {ext_id : Ident.t;ext_name : string Asttypes.loc;ext_type : Types.extension_constructor;ext_kind : extension_constructor_kind;ext_loc : Location.t;ext_attributes : attributes;
}and extension_constructor_kind = | Text_decl of (string * Parsetree.jkind_annotation option) list * constructor_arguments * core_type option| Text_rebind of Path.t * Longident.t Asttypes.loc
and class_type = {cltyp_desc : class_type_desc;cltyp_type : Types.class_type;cltyp_env : Env.t;cltyp_loc : Location.t;cltyp_attributes : attributes;
}and class_type_desc = | Tcty_constr of Path.t * Longident.t Asttypes.loc * core_type list| Tcty_signature of class_signature| Tcty_arrow of arg_label * core_type * class_type| Tcty_open of open_description * class_type
and class_signature = {csig_self : core_type;csig_fields : class_type_field list;csig_type : Types.class_signature;
}and class_type_field = {ctf_desc : class_type_field_desc;ctf_loc : Location.t;ctf_attributes : attributes;
}and class_type_field_desc = | Tctf_inherit of class_type| Tctf_val of string * Asttypes.mutable_flag * Asttypes.virtual_flag * core_type| Tctf_method of string * Asttypes.private_flag * Asttypes.virtual_flag * core_type| Tctf_constraint of core_type * core_type| Tctf_attribute of attribute
and class_declaration = class_expr class_infosand class_description = class_type class_infosand class_type_declaration = class_type class_infosand 'a class_infos = {ci_virt : Asttypes.virtual_flag;ci_params : (core_type * (Asttypes.variance * Asttypes.injectivity)) list;ci_id_name : string Asttypes.loc;ci_id_class : Ident.t;ci_id_class_type : Ident.t;ci_id_object : Ident.t;ci_expr : 'a;ci_decl : Types.class_declaration;ci_type_decl : Types.class_type_declaration;ci_loc : Location.t;ci_attributes : attributes;
}and jkind_declaration = {jkind_id : Ident.t;jkind_name : string Asttypes.loc;jkind_jkind : Types.jkind_declaration;jkind_annotation : Parsetree.jkind_annotation option;jkind_attributes : attribute list;jkind_loc : Location.t;
}type argument_interface = {ai_signature : Types.signature;ai_coercion_from_primary : module_coercion;
}For a module M compiled with -as-argument-for P for some parameter module P, the signature of P along with the coercion from M's exported signature (the _primary interface_) to P's signature (the _argument interface_).
type implementation = {structure : structure;coercion : module_coercion;signature : Types.signature;argument_interface : argument_interface option;shape : Shape.t;
}A typechecked implementation including its module structure, its exported signature, and a coercion of the module against that signature.
If an .mli file is present, the signature will come from that file and be the exported signature of the module.
If there isn't one, the signature will be inferred from the module structure.
If the module is compiled with -as-argument-for and is thus typechecked against the .mli for a parameter in addition to its own .mli, it has an additional signature stored in argument_interface.
type item_declaration = | Value of value_description| Value_binding of value_binding| Type of type_declaration| Constructor of constructor_declaration| Extension_constructor of extension_constructor| Label of label_declaration| Module of module_declaration| Module_substitution of module_substitution| Module_binding of module_binding| Module_type of module_type_declaration| Class of class_declaration| Class_type of class_type_declaration| Jkind of jkind_declaration(*
*)item_declarationgroups together items that correspond to the syntactic category of "declarations" which include types, values, modules, etc. declarations in signatures and their definitions in implementations.
val as_computation_pattern : pattern -> computation general_patternas_computation_pattern p is a computation pattern with description Tpat_value p, which enforces a correct placement of pat_attributes and pat_extra metadata (on the inner value pattern, rather than on the computation pattern).
val classify_pattern_desc : 'k pattern_desc -> 'k pattern_categoryval classify_pattern : 'k general_pattern -> 'k pattern_categoryval shallow_iter_pattern_desc : pattern_action -> 'k pattern_desc -> unitval shallow_map_pattern_desc :
pattern_transformation ->
'k pattern_desc ->
'k pattern_descval iter_general_pattern : pattern_action -> 'k general_pattern -> unitval exists_general_pattern : pattern_predicate -> 'k general_pattern -> boolval let_bound_idents : value_binding list -> Ident.t listval let_bound_idents_with_sorts :
value_binding list ->
(Ident.t * Jkind.Sort.t) listval let_bound_idents_full :
value_binding list ->
(Ident.t * string Asttypes.loc * Types.type_expr * Jkind.Sort.t * Uid.t) listval let_bound_idents_with_modes_sorts_and_checks :
value_binding list ->
(Ident.t * (Location.t * Mode.Value.l * Jkind.sort) list * Zero_alloc.t) listval alpha_pat :
(Ident.t * Ident.t) list ->
'k general_pattern ->
'k general_patternAlpha conversion of patterns
val mknoloc : 'a -> 'a Asttypes.locval mkloc : 'a -> Location.t -> 'a Asttypes.locval pat_bound_idents : 'k general_pattern -> Ident.t listval pat_bound_idents_full :
'k general_pattern ->
(Ident.t
* string Asttypes.loc
* Types.type_expr
* Types.Uid.t
* Jkind.Sort.Const.t)
listval split_pattern :
computation general_pattern ->
pattern option * pattern optionSplits an or pattern into its value (left) and exception (right) parts.
val nominal_exp_doc :
Longident.t Format_doc.printer ->
expression ->
Format_doc.t optionReturns a format document if the expression reads nicely as the subject of a sentence in a error message.
val function_arity : function_param list -> function_body -> intCalculates the syntactic arity of a function based on its parameters and body.
val loc_of_decl : uid:Shape.Uid.t -> item_declaration -> string Location.locGiven a declaration, return the location of the bound identifier
val min_mode_with_locks : mode_with_locksWhen type checking F(M).t, which does not involve modes, we say F(M) is of the strongest mode, to avoid modes in error messages.
val mode_without_locks_exn : mode_with_locks -> Mode.Value.lGet the mode, asserting no held locks.
val fold_antiquote_exp : ('a -> expression -> 'a) -> 'a -> expression -> 'aFold over the antiquotations in an expression. This function defines the evaluation order of antiquotations.