Module Private.ImportSource
include sig ... end
include module type of struct include Ppxlib.Ast end
Auxiliary AST types used by parsetree and typedtree.
Abstract syntax tree produced by parsing
and constant = Astlib.Ast_500.Parsetree.constant = | Pconst_integer of string * char option(*Integer constants such as
33l3L3n.Suffixes
*)[g-z][G-Z]are accepted by the parser. Suffixes except'l','L'and'n'are rejected by the typechecker| Pconst_unboxed_integer of string * char(*Integer constants such as
#3#3l#3L#3n.A suffix
*)[g-z][G-Z]is required by the parser. Suffixes except'l','L'and'n'are rejected by the typechecker| Pconst_char of char(*Character such as
*)'c'.| Pconst_untagged_char of char(*Untagged character such as
*)#'c'.| Pconst_string of string * location * string option(*Constant string such as
"constant"or{delim|other constant|delim}.The location span the content of the string, without the delimiters.
*)| Pconst_float of string * char option(*Float constant such as
3.4,2e5or1.4e-4.Suffixes
*)[g-z][G-Z]are accepted by the parser. Suffixes are rejected by the typechecker.| Pconst_unboxed_float of string * char option(*Float constant such as
#3.4,#2e5or#1.4e-4.Suffixes
*)[g-z][G-Z]are accepted by the parser. Suffixes except's'are rejected by the typechecker.
Extension points
Attributes such as [@id ARG] and [@@id ARG].
Metadata containers passed around within the AST. The compiler ignores unknown attributes.
Extension points such as [%id ARG] and [%%id ARG].
Sub-language placeholder -- rejected by the typechecker.
and payload = Astlib.Ast_500.Parsetree.payload = | PStr of structure| PSig of signature(*
*): SIGin an attribute or an extension point| PTyp of core_type(*
*): Tin an attribute or an extension point| PPat of pattern * expression option(*
*)? Por? P when E, in an attribute or an extension point
Core language
Type expressions
and core_type = Astlib.Ast_500.Parsetree.core_type = {ptyp_desc : core_type_desc;ptyp_loc : location;ptyp_loc_stack : location_stack;ptyp_attributes : attributes;(*
*)... [@id1] [@id2]
}and core_type_desc = Astlib.Ast_500.Parsetree.core_type_desc = | Ptyp_any of Astlib.Ast_500.Parsetree.jkind_annotation option(*
*)_or_ : k| Ptyp_var of string * Astlib.Ast_500.Parsetree.jkind_annotation option(*A type variable such as
*)'aor'a : k| Ptyp_arrow of arg_label * core_type * core_type * Astlib.Ast_500.Parsetree.mode loc list * Astlib.Ast_500.Parsetree.mode loc list| Ptyp_tuple of (string option * core_type) list(*Ptyp_tuple(tl)represents a product type:T1 * ... * Tnwhentlis(None,T1);...;(None,Tn)L1:T1 * ... * Ln:Tnwhentlis(Some L1,T1);...;(Some Ln,Tn)- A mix, e.g.
L1:T1 * T2whentlis(Some L1,T1);(None,T2)
Invariant:
*)n >= 2.| Ptyp_unboxed_tuple of (string option * core_type) list(*Unboxed tuple types:
Ptyp_unboxed_tuple([(Some l1,P1);...;(Some l2,Pn)]represents a product type#(l1:T1 * ... * l2:Tn), and the labels are optional.Invariant:
*)n >= 2.| Ptyp_constr of longident_loc * core_type list(*Ptyp_constr(lident, l)represents:tconstrwhenl=[],T tconstrwhenl=[T],(T1, ..., Tn) tconstrwhenl=[T1 ; ... ; Tn].
| Ptyp_object of object_field list * closed_flag| Ptyp_class of longident_loc * core_type list(*Ptyp_class(tconstr, l)represents:#tconstrwhenl=[],T #tconstrwhenl=[T],(T1, ..., Tn) #tconstrwhenl=[T1 ; ... ; Tn].
| Ptyp_alias of core_type * string loc option * Astlib.Ast_500.Parsetree.jkind_annotation option(*T as 'aorT as ('a : k)orT as (_ : k).Invariant: the name or jkind annotation is non-None.
*)| Ptyp_variant of row_field list * closed_flag * label list option| Ptyp_poly of (string loc * Astlib.Ast_500.Parsetree.jkind_annotation option) list * core_type(*'a1 ... 'an. T('a1 : k1) ... ('an : kn). TCan only appear in the following context:
- As the
core_typeof aPpat_constraintnode corresponding to a constraint on a let-binding:
let x : 'a1 ... 'an. T = e ...- Under
Cfk_virtualfor methods (not values).
- As the
core_typeof aPctf_methodnode.
- As the
pld_typefield of alabel_declaration.
- As a
core_typeof aPtyp_objectnode.
- As the
pval_typefield of avalue_description.
- As the
| Ptyp_newlayout of string loc list * core_type| Ptyp_package of package_type(*
*)(module S).| Ptyp_quote of core_type(*
*)<[T]>| Ptyp_splice of core_type(*
*)$T| Ptyp_of_kind of Astlib.Ast_500.Parsetree.jkind_annotation(*
*)(type : k)| Ptyp_repr of string loc list * core_type(*
*)(repr_ 'a1) ... (repr_ 'an). T| Ptyp_extension of extension(*
*)[%id].
As package_type typed values:
(S, [])represents(module S),(S, [(t1, T1) ; ... ; (tn, Tn)])represents(module S with type t1 = T1 and ... and tn = Tn).
and row_field = Astlib.Ast_500.Parsetree.row_field = {prf_desc : row_field_desc;prf_loc : location;prf_attributes : attributes;
}and row_field_desc = Astlib.Ast_500.Parsetree.row_field_desc = | Rtag of label loc * bool * core_type list(*Rtag(`A, b, l)represents:`Awhenbistrueandlis[],`A of Twhenbisfalseandlis[T],`A of T1 & .. & Tnwhenbisfalseandlis[T1;...Tn],`A of & T1 & .. & Tnwhenbistrueandlis[T1;...Tn].
- The
boolfield is true if the tag contains a constant (empty) constructor. &occurs when several types are used for the same constructor (see 4.2 in the manual)
| Rinherit of core_type(*
*)[ | t ]
and object_field = Astlib.Ast_500.Parsetree.object_field = {pof_desc : object_field_desc;pof_loc : location;pof_attributes : attributes;
}Patterns
and pattern = Astlib.Ast_500.Parsetree.pattern = {ppat_desc : pattern_desc;ppat_loc : location;ppat_loc_stack : location_stack;ppat_attributes : attributes;(*
*)... [@id1] [@id2]
}and pattern_desc = Astlib.Ast_500.Parsetree.pattern_desc = | Ppat_any(*The pattern
*)_.| Ppat_var of string loc(*A variable pattern such as
*)x| Ppat_alias of pattern * string loc(*An alias pattern such as
*)P as 'a| Ppat_constant of constant(*Patterns such as
*)1,'a',"true",1.0,1l,1L,1n| Ppat_interval of constant * constant(*Patterns such as
'a'..'z'.Other forms of interval are recognized by the parser but rejected by the type-checker.
*)| Ppat_unboxed_unit(*
*)#()| Ppat_unboxed_bool of bool(*
*)#falseor#true| Ppat_tuple of (string option * pattern) list * closed_flag(*Ppat_tuple(pl, Closed)represents(P1, ..., Pn)whenplis(None, P1);...;(None, Pn)(~L1:P1, ..., ~Ln:Pn)whenplis(Some L1, P1);...;(Some Ln, Pn)- A mix, e.g.
(~L1:P1, P2)whenplis(Some L1, P1);(None, P2) - If pattern is open, then it also ends in a
..
Invariant:
- If Closed,
n >= 2. - If Open,
n >= 1.
| Ppat_unboxed_tuple of (string option * pattern) list * closed_flag(*Unboxed tuple patterns:
#(l1:P1, ..., ln:Pn)is([(Some l1,P1);...;(Some l2,Pn)], Closed), and the labels are optional. AnOpenpattern ends in...Invariant:
- If Closed,
n >= 2 - If Open,
n >= 1
- If Closed,
| Ppat_construct of longident_loc * ((string loc * Astlib.Ast_500.Parsetree.jkind_annotation option) list * pattern) option(*Ppat_construct(C, args)represents:CwhenargsisNone,C PwhenargsisSome ([], P)C (P1, ..., Pn)whenargsisSome ([], Ppat_tuple [P1; ...; Pn])C (type a b) PwhenargsisSome ([a, None; b, None], P)C (type (a : k) b) PwhenargsisSome ([a, Some k; b, None], P)
| Ppat_variant of label * pattern option(*Ppat_variant(`A, pat)represents:`AwhenpatisNone,`A PwhenpatisSome P
| Ppat_record of (longident_loc * pattern) list * closed_flag| Ppat_record_unboxed_product of (longident_loc * pattern) list * closed_flag| Ppat_array of mutable_flag * pattern list(*Pattern
*)[| P1; ...; Pn |]or[: P1; ...; Pn :]| Ppat_or of pattern * pattern(*Pattern
*)P1 | P2| Ppat_constraint of pattern * core_type option * Astlib.Ast_500.Parsetree.mode loc list(*Ppat_constraint(tyopt, modes)represents:(P : ty @@ modes)whentyoptisSome ty(P @ modes)whentyoptisNone
| Ppat_type of longident_loc(*Pattern
*)#tconst| Ppat_lazy of pattern(*Pattern
*)lazy P| Ppat_unpack of string option loc(*Ppat_unpack(s)represents:(module P)whensisSome "P"(module _)whensisNone
Note:
*)(module P : S)is represented asPpat_constraint(Ppat_unpack(Some "P"), Ptyp_package S)| Ppat_exception of pattern(*Pattern
*)exception P| Ppat_extension of extension(*Pattern
*)[%id]| Ppat_open of longident_loc * pattern(*Pattern
*)M.(P)
Value expressions
and expression = Astlib.Ast_500.Parsetree.expression = {pexp_desc : expression_desc;pexp_loc : location;pexp_loc_stack : location_stack;pexp_attributes : attributes;(*
*)... [@id1] [@id2]
}and expression_desc = Astlib.Ast_500.Parsetree.expression_desc = | Pexp_ident of longident_loc(*Identifiers such as
*)xandM.x| Pexp_constant of constant(*Expressions constant such as
*)1,'a',"true",1.0,1l,1L,1n| Pexp_let of mutable_flag * rec_flag * value_binding list * expression(*Pexp_let(mut, rec, [(P1,E1) ; ... ; (Pn,En)], E)represents:let P1 = E1 and ... and Pn = EN in EwhenrecisNonrecursiveandmut=Immutable.let rec P1 = E1 and ... and Pn = EN in EwhenrecisRecursiveandmut=Immutable.let mutable P1 = E1 in EwhenrecisNonrecursiveandmut=Mutable. Invariant: Ifmut = Mutablethenn = 1andrec = Nonrecursive
| Pexp_function of function_param list * function_constraint * function_body(*Pexp_function ([P1; ...; Pn], C, body)represents any construct involvingfunorfunction, including:fun P1 ... Pn -> Ewhenbody = Pfunction_body Efun P1 ... Pn -> function p1 -> e1 | ... | pm -> emwhenbody = Pfunction_cases [ p1 -> e1; ...; pm -> em ]
Crepresents a type constraint or coercion placed immediately before the arrow, e.g.fun P1 ... Pn : ty -> ...whenC = Some (Pconstraint ty).A function must have parameters.
*)Pexp_function (params, _, body)must have non-emptyparamsor aPfunction_cases _body.| Pexp_apply of expression * (arg_label * expression) list| Pexp_match of expression * cases(*
*)match E0 with P1 -> E1 | ... | Pn -> En| Pexp_try of expression * cases(*
*)try E0 with P1 -> E1 | ... | Pn -> En| Pexp_unboxed_unit(*
*)#()| Pexp_unboxed_bool of bool(*
*)#falseor#true| Pexp_tuple of (string option * expression) list(*Pexp_tuple(el)represents(E1, ..., En)whenelis(None, E1);...;(None, En)(~L1:E1, ..., ~Ln:En)whenelis(Some L1, E1);...;(Some Ln, En)- A mix, e.g.:
(~L1:E1, E2)whenelis(Some L1, E1); (None, E2)
Invariant:
*)n >= 2| Pexp_unboxed_tuple of (string option * expression) list(*Unboxed tuple expressions:
Pexp_unboxed_tuple([(Some l1,P1);...;(Some l2,Pn)])represents#(l1:E1, ..., ln:En), and the labels are optional.Invariant:
*)n >= 2| Pexp_construct of longident_loc * expression option(*Pexp_construct(C, exp)represents:CwhenexpisNone,C EwhenexpisSome E,C (E1, ..., En)whenexpisSome (Pexp_tuple[E1;...;En])
| Pexp_variant of label * expression option(*Pexp_variant(`A, exp)represents`AwhenexpisNone`A EwhenexpisSome E
| Pexp_record of (longident_loc * expression) list * expression option(*Pexp_record([(l1,P1) ; ... ; (ln,Pn)], exp0)represents{ l1=P1; ...; ln=Pn }whenexp0isNone{ E0 with l1=P1; ...; ln=Pn }whenexp0isSome E0
Invariant:
*)n > 0| Pexp_record_unboxed_product of (longident_loc * expression) list * expression option(*Pexp_record_unboxed_product([(l1,P1) ; ... ; (ln,Pn)], exp0)represents#{ l1=P1; ...; ln=Pn }whenexp0isNone#{ E0 with l1=P1; ...; ln=Pn }whenexp0isSome E0
Invariant:
*)n > 0| Pexp_field of expression * longident_loc(*
*)E.l| Pexp_unboxed_field of expression * longident_loc(*
*)E.#l| Pexp_setfield of expression * longident_loc * expression(*
*)E1.l <- E2| Pexp_array of mutable_flag * expression list(*
*)[| E1; ...; En |]or[: E1; ...; En :]| Pexp_idx of block_access * unboxed_access list(*
*)(BA1 UA1 UA2 ...)e.g.(.foo.#bar.#baz)Above, BA1=.foo, UA1=.#bar, and UA2=#.baz| Pexp_ifthenelse of expression * expression * expression option(*
*)if E1 then E2 else E3| Pexp_sequence of expression * expression(*
*)E1; E2| Pexp_while of expression * expression(*
*)while E1 do E2 done| Pexp_for of pattern * expression * expression * direction_flag * expression| Pexp_constraint of expression * core_type option * Astlib.Ast_500.Parsetree.mode loc list(*
*)(E : T @@ modes)| Pexp_coerce of expression * core_type option * core_type(*Pexp_coerce(E, from, T)represents(E :> T)whenfromisNone,(E : T0 :> T)whenfromisSome T0.
| Pexp_send of expression * label loc(*
*)E # m| Pexp_new of longident_loc(*
*)new M.c| Pexp_setvar of label loc * expression(*
*)x <- 2| Pexp_override of (label loc * expression) list(*
*){< x1 = E1; ...; xn = En >}| Pexp_letmodule of string option loc * module_expr * expression(*
*)let module M = ME in E| Pexp_letexception of extension_constructor * expression(*
*)let exception C in E| Pexp_assert of expression(*assert E.Note:
*)assert falseis treated in a special way by the type-checker.| Pexp_lazy of expression(*
*)lazy E| Pexp_poly of expression * core_type option(*Used for method bodies.
Can only be used as the expression under
*)Cfk_concretefor methods (not values).| Pexp_object of class_structure(*
*)object ... end| Pexp_newtype of string loc * Astlib.Ast_500.Parsetree.jkind_annotation option * expression(*
*)fun (type t) -> Eorfun (type t : k) -> E| Pexp_pack of module_expr(*(module ME).
*)(module ME : S)is represented asPexp_constraint(Pexp_pack ME, Ptyp_package S)| Pexp_open of open_declaration * expression(*M.(E)let open M in Elet open! M in E
| Pexp_letop of letop(*let* P = E0 in E1let* P0 = E00 and* P1 = E01 in E1
| Pexp_extension of extension(*
*)[%id]| Pexp_unreachable(*
*).| Pexp_stack of expression| Pexp_comprehension of comprehension_expression(*[? BODY ...CLAUSES... ?], where:?is either""(list),:(immutable array), or|(array).BODYis an expression.CLAUSESis a series ofcomprehension_clause.
| Pexp_overwrite of expression * expression| Pexp_quote of expression(*runtime metaprogramming quotations <
*)E>| Pexp_splice of expression(*runtime metaprogramming splicing $(E)
*)| Pexp_hole| Pexp_borrow of expression
and case = Astlib.Ast_500.Parsetree.case = {pc_lhs : pattern;pc_guard : expression option;pc_rhs : expression;
}Values of type case represents (P -> E) or (P when E0 -> E)
and letop = Astlib.Ast_500.Parsetree.letop = {let_ : binding_op;ands : binding_op list;body : expression;
}and binding_op = Astlib.Ast_500.Parsetree.binding_op = {pbop_op : string loc;pbop_pat : pattern;pbop_exp : expression;pbop_loc : location;
}and function_param_desc = Astlib.Ast_500.Parsetree.function_param_desc = | Pparam_val of arg_label * expression option * pattern(*Pparam_val (lbl, exp0, P)represents the parameter:PwhenlblisNolabelandexp0isNone~l:PwhenlblisLabelled landexp0isNone?l:PwhenlblisOptional landexp0isNone?l:(P = E0)whenlblisOptional landexp0isSome E0
Note: If
*)E0is provided, onlyOptionalis allowed.| Pparam_newtype of string loc * Astlib.Ast_500.Parsetree.jkind_annotation option(*Pparam_newtype xrepresents the parameter(type x).xcarries the location of the identifier, whereas thepparam_locon the enclosingfunction_paramnode is the location of the(type x)as a whole.Multiple parameters
(type a b c)are represented as multiplePparam_newtypenodes, let's say:[ { pparam_kind = Pparam_newtype a; pparam_loc = loc1 }; { pparam_kind = Pparam_newtype b; pparam_loc = loc2 }; { pparam_kind = Pparam_newtype c; pparam_loc = loc3 }; ]Here, the first loc
*)loc1is the location of(type a b c), and the subsequent locsloc2andloc3are the same asloc1, except marked as ghost locations. The locations ona,b,c, correspond to the variablesa,b, andcin the source code.
and function_param = Astlib.Ast_500.Parsetree.function_param = {pparam_loc : location;pparam_desc : function_param_desc;
}and function_body = Astlib.Ast_500.Parsetree.function_body = | Pfunction_body of expression| Pfunction_cases of case list * location * attributes(*In
*)Pfunction_cases (_, loc, attrs), the location extends from the start of thefunctionkeyword to the end of the last case. The compiler will only use typechecking-related attributes fromattrs, e.g. enabling or disabling a warning.
See the comment on Pexp_function.
and function_constraint = Astlib.Ast_500.Parsetree.function_constraint = {mode_annotations : Astlib.Ast_500.Parsetree.mode loc list;(*The mode annotation placed on a function let-binding, e.g.
*)let local_ f x : int -> int = .... Thelocal_syntax is parsed into two nodes: the field here, andpvb_modes. This field only affects the interpretation ofret_type_constraint, while the latter is translated intypecoretoPexp_constraintto contrain the mode of the function.ret_mode_annotations : Astlib.Ast_500.Parsetree.mode loc list;(*The mode annotation placed on a function's body, e.g.
*)let f x : int -> int @@ local = .... This field constrains the mode of function's body.ret_type_constraint : type_constraint option;(*The type constraint placed on a function's body.
*)
}See the comment on Pexp_function.
and block_access = Astlib.Ast_500.Parsetree.block_access = | Baccess_field of longident_loc(*
*).foo| Baccess_block of mutable_flag * expression(*Access using another block index:
*).idx_imm(E),.idx_mut(E)(usually followed by unboxed accesses, to deepen the index).
and unboxed_access = Astlib.Ast_500.Parsetree.unboxed_access = | Uaccess_unboxed_field of longident_loc(*
*).#foo
and comprehension_iterator = Astlib.Ast_500.Parsetree.comprehension_iterator = | Pcomp_range of {start : expression;stop : expression;direction : direction_flag;
}(*"= START to STOP" (direction = Upto) "= START downto STOP" (direction = Downto)
*)| Pcomp_in of expression(*"in EXPR"
*)
and comprehension_clause_binding =
Astlib.Ast_500.Parsetree.comprehension_clause_binding =
{pcomp_cb_pattern : pattern;pcomp_cb_iterator : comprehension_iterator;pcomp_cb_attributes : attributes;
}@... PAT (in/=) ...
and comprehension_clause = Astlib.Ast_500.Parsetree.comprehension_clause = | Pcomp_for of comprehension_clause_binding list(*"for PAT (in/=) ... and PAT (in/=) ... and ..."; must be nonempty
*)| Pcomp_when of expression(*"when EXPR"
*)
and comprehension = Astlib.Ast_500.Parsetree.comprehension = {pcomp_body : expression;(*The body/generator of the comprehension
*)pcomp_clauses : comprehension_clause list;(*The clauses of the comprehension; must be nonempty
*)
}and comprehension_expression =
Astlib.Ast_500.Parsetree.comprehension_expression =
| Pcomp_list_comprehension of comprehension(*
*)[BODY ...CLAUSES...]| Pcomp_array_comprehension of mutable_flag * comprehension(*
*)[|BODY ...CLAUSES...|](flag = Mutable)[:BODY ...CLAUSES...:](flag = Immutable) (only allowed with-extension immutable_arrays)
Value descriptions
and value_description = Astlib.Ast_500.Parsetree.value_description = {pval_poly : bool;(*val poly_
*)pval_name : string loc;pval_type : core_type;pval_modalities : modalities;pval_prim : string list;pval_attributes : attributes;(*
*)... [@@id1] [@@id2]pval_loc : location;
}Values of type value_description represents:
Type declarations
and type_declaration = Astlib.Ast_500.Parsetree.type_declaration = {ptype_name : string loc;ptype_params : (core_type * (variance * injectivity)) list;(*
*)('a1,...'an) tptype_cstrs : (core_type * core_type * location) list;(*
*)... constraint T1=T1' ... constraint Tn=Tn'ptype_kind : type_kind;ptype_private : private_flag;(*for
*)= private ...ptype_manifest : core_type option;(*represents
*)= Tptype_attributes : attributes;(*
*)... [@@id1] [@@id2]ptype_jkind_annotation : Astlib.Ast_500.Parsetree.jkind_annotation option;(*for
*): jkindptype_loc : location;
}Here are type declarations and their representation, for various ptype_kind and ptype_manifest values:
type twhentype_kindisPtype_abstract, andmanifestisNone,type t = T0whentype_kindisPtype_abstract, andmanifestisSome T0,type t = C of T | ...whentype_kindisPtype_variant, andmanifestisNone,type t = T0 = C of T | ...whentype_kindisPtype_variant, andmanifestisSome T0,type t = {l: T; ...}whentype_kindisPtype_record, andmanifestisNone,type t = T0 = {l : T; ...}whentype_kindisPtype_record, andmanifestisSome T0,type t = ..whentype_kindisPtype_open, andmanifestisNone.
and type_kind = Astlib.Ast_500.Parsetree.type_kind = | Ptype_abstract| Ptype_variant of constructor_declaration list| Ptype_record of label_declaration list(*Invariant: non-empty list
*)| Ptype_record_unboxed_product of label_declaration list(*Invariant: non-empty list
*)| Ptype_open
and label_declaration = Astlib.Ast_500.Parsetree.label_declaration = {pld_name : string loc;pld_mutable : mutable_flag;pld_modalities : modalities;pld_type : core_type;pld_loc : location;pld_attributes : attributes;(*
*)l : T [@id1] [@id2]
}{ ...; l: T; ... }whenpld_mutableisImmutable,{ ...; mutable l: T; ... }whenpld_mutableisMutable.
Note: T can be a Ptyp_poly.
and constructor_declaration = Astlib.Ast_500.Parsetree.constructor_declaration =
{pcd_name : string loc;pcd_vars : (string loc * Astlib.Ast_500.Parsetree.jkind_annotation option) list;(*jkind annotations are
*)C : ('a : kind1) ('a2 : kind2). ...pcd_args : constructor_arguments;pcd_res : core_type option;pcd_loc : location;pcd_attributes : attributes;(*
*)C of ... [@id1] [@id2]
}and constructor_argument = Astlib.Ast_500.Parsetree.constructor_argument = {pca_modalities : modalities;pca_type : core_type;pca_loc : location;
}and constructor_arguments = Astlib.Ast_500.Parsetree.constructor_arguments = | Pcstr_tuple of constructor_argument list| Pcstr_record of label_declaration list(*Values of type
constructor_declarationrepresents the constructor arguments of:C of T1 * ... * Tnwhenres = None, andargs = Pcstr_tuple [T1; ... ; Tn],C: T0whenres = Some T0, andargs = Pcstr_tuple [],C: T1 * ... * Tn -> T0whenres = Some T0, andargs = Pcstr_tuple [T1; ... ; Tn],C of {...}whenres = None, andargs = Pcstr_record [...],C: {...} -> T0whenres = Some T0, andargs = Pcstr_record [...].
and type_extension = Astlib.Ast_500.Parsetree.type_extension = {ptyext_path : longident_loc;ptyext_params : (core_type * (variance * injectivity)) list;ptyext_constructors : extension_constructor list;ptyext_private : private_flag;ptyext_loc : location;ptyext_attributes : attributes;(*...
*)@@id1@@id2
}Definition of new extensions constructors for the extensive sum type t (type t += ...).
and extension_constructor = Astlib.Ast_500.Parsetree.extension_constructor = {pext_name : string loc;pext_kind : extension_constructor_kind;pext_loc : location;pext_attributes : attributes;(*
*)C of ... [@id1] [@id2]
}and type_exception = Astlib.Ast_500.Parsetree.type_exception = {ptyexn_constructor : extension_constructor;ptyexn_loc : location;ptyexn_attributes : attributes;(*
*)... [@@id1] [@@id2]
}Definition of a new exception (exception E).
and extension_constructor_kind =
Astlib.Ast_500.Parsetree.extension_constructor_kind =
| Pext_decl of (string loc * Astlib.Ast_500.Parsetree.jkind_annotation option) list * constructor_arguments * core_type option(*Pext_decl(existentials, c_args, t_opt)describes a new extension constructor. It can be:C of T1 * ... * Tnwhen:existentialsis[],c_argsis[T1; ...; Tn],t_optisNone.
C: T0whenexistentialsis[],c_argsis[],t_optisSome T0.
C: T1 * ... * Tn -> T0whenexistentialsis[],c_argsis[T1; ...; Tn],t_optisSome T0.
C: ('a : k)... . T1 * ... * Tn -> T0whenexistentialsis['a;...],c_argsis[T1; ... ; Tn],t_optisSome T0.
| Pext_rebind of longident_loc(*
*)Pext_rebind(D)re-export the constructorDwith the new nameC
and jkind_declaration = Astlib.Ast_500.Parsetree.jkind_declaration = {pjkind_name : string loc;pjkind_manifest : Astlib.Ast_500.Parsetree.jkind_annotation option;pjkind_attributes : attributes;pjkind_loc : location;
}Class language
Type expressions for the class language
and class_type = Astlib.Ast_500.Parsetree.class_type = {pcty_desc : class_type_desc;pcty_loc : location;pcty_attributes : attributes;(*
*)... [@id1] [@id2]
}and class_type_desc = Astlib.Ast_500.Parsetree.class_type_desc = | Pcty_constr of longident_loc * core_type list(*c['a1, ..., 'an] c
| Pcty_signature of class_signature(*
*)object ... end| Pcty_arrow of arg_label * core_type * class_type(*Pcty_arrow(lbl, T, CT)represents:T -> CTwhenlblisNolabel,~l:T -> CTwhenlblisLabelled l,?l:T -> CTwhenlblisOptional l.
| Pcty_extension of extension(*
*)%id| Pcty_open of open_description * class_type(*
*)let open M in CT
and class_signature = Astlib.Ast_500.Parsetree.class_signature = {pcsig_self : core_type;pcsig_fields : class_type_field list;
}Values of type class_signature represents:
object('selfpat) ... endobject ... endwhenpcsig_selfisPtyp_any
and class_type_field = Astlib.Ast_500.Parsetree.class_type_field = {pctf_desc : class_type_field_desc;pctf_loc : location;pctf_attributes : attributes;(*
*)... [@@id1] [@@id2]
}and class_type_field_desc = Astlib.Ast_500.Parsetree.class_type_field_desc = | Pctf_inherit of class_type(*
*)inherit CT| Pctf_val of label loc * mutable_flag * virtual_flag * core_type(*
*)val x: T| Pctf_method of label loc * private_flag * virtual_flag * core_type| Pctf_constraint of core_type * core_type(*
*)constraint T1 = T2| Pctf_attribute of attribute(*
*)[@@@id]| Pctf_extension of extension(*
*)[%%id]
and 'a class_infos = 'a Astlib.Ast_500.Parsetree.class_infos = {pci_virt : virtual_flag;pci_params : (core_type * (variance * injectivity)) list;pci_name : string loc;pci_expr : 'a;pci_loc : location;pci_attributes : attributes;(*
*)... [@@id1] [@@id2]
}Values of type class_expr class_infos represents:
class c = ...class ['a1,...,'an] c = ...class virtual c = ...
They are also used for "class type" declaration.
Value expressions for the class language
and class_expr = Astlib.Ast_500.Parsetree.class_expr = {pcl_desc : class_expr_desc;pcl_loc : location;pcl_attributes : attributes;(*
*)... [@id1] [@id2]
}and class_expr_desc = Astlib.Ast_500.Parsetree.class_expr_desc = | Pcl_constr of longident_loc * core_type list(*
*)cand['a1, ..., 'an] c| Pcl_structure of class_structure(*
*)object ... end| Pcl_fun of arg_label * expression option * pattern * class_expr(*Pcl_fun(lbl, exp0, P, CE)represents:fun P -> CEwhenlblisNolabelandexp0isNone,fun ~l:P -> CEwhenlblisLabelled landexp0isNone,fun ?l:P -> CEwhenlblisOptional landexp0isNone,fun ?l:(P = E0) -> CEwhenlblisOptional landexp0isSome E0.
| Pcl_apply of class_expr * (arg_label * expression) list(*Pcl_apply(CE, [(l1,E1) ; ... ; (ln,En)])representsCE ~l1:E1 ... ~ln:En.lican be empty (non labeled argument) or start with?(optional argument).Invariant:
*)n > 0| Pcl_let of rec_flag * value_binding list * class_expr(*Pcl_let(rec, [(P1, E1); ... ; (Pn, En)], CE)represents:let P1 = E1 and ... and Pn = EN in CEwhenrecisNonrecursive,let rec P1 = E1 and ... and Pn = EN in CEwhenrecisRecursive.
| Pcl_constraint of class_expr * class_type(*
*)(CE : CT)| Pcl_extension of extension(*
*)[%id]| Pcl_open of open_description * class_expr(*
*)let open M in CE
and class_structure = Astlib.Ast_500.Parsetree.class_structure = {pcstr_self : pattern;pcstr_fields : class_field list;
}Values of type class_structure represents:
object(selfpat) ... endobject ... endwhenpcstr_selfisPpat_any
and class_field = Astlib.Ast_500.Parsetree.class_field = {pcf_desc : class_field_desc;pcf_loc : location;pcf_attributes : attributes;(*
*)... [@@id1] [@@id2]
}and class_field_desc = Astlib.Ast_500.Parsetree.class_field_desc = | Pcf_inherit of override_flag * class_expr * string loc option| Pcf_val of label loc * mutable_flag * class_field_kind(*Pcf_val(x,flag, kind)represents:val x = EwhenflagisImmutableandkindisCfk_concrete(Fresh, E)val virtual x: TwhenflagisImmutableandkindisCfk_virtual(T)val mutable x = EwhenflagisMutableandkindisCfk_concrete(Fresh, E)val mutable virtual x: TwhenflagisMutableandkindisCfk_virtual(T)
| Pcf_method of label loc * private_flag * class_field_kind| Pcf_constraint of core_type * core_type(*
*)constraint T1 = T2| Pcf_initializer of expression(*
*)initializer E| Pcf_attribute of attribute(*
*)[@@@id]| Pcf_extension of extension(*
*)[%%id]
and class_field_kind = Astlib.Ast_500.Parsetree.class_field_kind = | Cfk_virtual of core_type| Cfk_concrete of override_flag * expression
Module language
Type expressions for the module language
and module_type = Astlib.Ast_500.Parsetree.module_type = {pmty_desc : module_type_desc;pmty_loc : location;pmty_attributes : attributes;(*
*)... [@id1] [@id2]
}and module_type_desc = Astlib.Ast_500.Parsetree.module_type_desc = | Pmty_ident of longident_loc(*
*)Pmty_ident(S)representsS| Pmty_signature of signature(*
*)sig ... end| Pmty_functor of functor_parameter * module_type * Astlib.Ast_500.Parsetree.mode loc list(*
*)functor(X : MT1) -> MT2| Pmty_with of module_type * with_constraint list(*
*)MT with ...| Pmty_typeof of module_expr(*
*)module type of ME| Pmty_extension of extension(*
*)[%id]| Pmty_alias of longident_loc(*
*)(module M)| Pmty_strengthen of module_type * longident_loc(*
*)MT with S
and functor_parameter = Astlib.Ast_500.Parsetree.functor_parameter = | Unit(*
*)()| Named of string option loc * module_type * Astlib.Ast_500.Parsetree.mode loc list(*Named(name, MT)represents:(X : MT)whennameisSome X,(_ : MT)whennameisNone
and signature = Astlib.Ast_500.Parsetree.signature = {psg_modalities : modalities;psg_items : signature_items;psg_loc : location;
}and signature_item = Astlib.Ast_500.Parsetree.signature_item = {psig_desc : signature_item_desc;psig_loc : location;
}and signature_item_desc = Astlib.Ast_500.Parsetree.signature_item_desc = | Psig_value of value_description(*val x: Texternal x: T = "s1" ... "sn"
| Psig_type of rec_flag * type_declaration list(*
*)type t1 = ... and ... and tn = ...| Psig_typesubst of type_declaration list(*
*)type t1 := ... and ... and tn := ...| Psig_typext of type_extension(*
*)type t1 += ...| Psig_exception of type_exception(*
*)exception C of T| Psig_module of module_declaration(*
*)module X = Mandmodule X : MT| Psig_modsubst of module_substitution(*
*)module X := M| Psig_recmodule of module_declaration list(*
*)module rec X1 : MT1 and ... and Xn : MTn| Psig_modtype of module_type_declaration(*
*)module type S = MTandmodule type S| Psig_modtypesubst of module_type_declaration(*
*)module type S := ...| Psig_open of open_description(*
*)open X| Psig_include of include_description * modalities(*
*)include MT| Psig_class of class_description list(*
*)class c1 : ... and ... and cn : ...| Psig_class_type of class_type_declaration list(*
*)class type ct1 = ... and ... and ctn = ...| Psig_attribute of attribute(*
*)[@@@id]| Psig_extension of extension * attributes(*
*)[%%id]| Psig_jkind of jkind_declaration(*
*)kind_abbrev_ name = k
and module_declaration = Astlib.Ast_500.Parsetree.module_declaration = {pmd_name : string option loc;pmd_type : module_type;pmd_modalities : modalities;pmd_attributes : attributes;(*
*)... [@@id1] [@@id2]pmd_loc : location;
}Values of type module_declaration represents S : MT
and module_substitution = Astlib.Ast_500.Parsetree.module_substitution = {pms_name : string loc;pms_manifest : longident_loc;pms_attributes : attributes;(*
*)... [@@id1] [@@id2]pms_loc : location;
}Values of type module_substitution represents S := M
and module_type_declaration = Astlib.Ast_500.Parsetree.module_type_declaration =
{pmtd_name : string loc;pmtd_type : module_type option;pmtd_attributes : attributes;(*
*)... [@@id1] [@@id2]pmtd_loc : location;
}Values of type module_type_declaration represents:
S = MT,Sfor abstract module type declaration, whenpmtd_typeisNone.
and 'a open_infos = 'a Astlib.Ast_500.Parsetree.open_infos = {popen_expr : 'a;popen_override : override_flag;popen_loc : location;popen_attributes : attributes;
}Values of type 'a open_infos represents:
open! Xwhenpopen_overrideisOverride(silences the "used identifier shadowing" warning)open Xwhenpopen_overrideisFresh
Values of type open_description represents:
open M.Nopen M(N).O
Values of type open_declaration represents:
open M.Nopen M(N).Oopen struct ... end
and 'a include_infos = 'a Astlib.Ast_500.Parsetree.include_infos = {pincl_kind : include_kind;pincl_mod : 'a;pincl_loc : location;pincl_attributes : attributes;
}Values of type include_description represents include MT
Values of type include_declaration represents include ME
and with_constraint = Astlib.Ast_500.Parsetree.with_constraint = | Pwith_type of longident_loc * type_declaration(*with type X.t = ...Note: the last component of the longident must match the name of the type_declaration.
*)| Pwith_module of longident_loc * longident_loc(*
*)with module X.Y = Z| Pwith_modtype of longident_loc * module_type(*
*)with module type X.Y = Z| Pwith_jkind of longident_loc * jkind_declaration(*
*)with kind_ X.k = ...| Pwith_modtypesubst of longident_loc * module_type(*
*)with module type X.Y := sig end| Pwith_typesubst of longident_loc * type_declaration(*
*)with type X.t := ..., same format as [Pwith_type]| Pwith_modsubst of longident_loc * longident_loc(*
*)with module X.Y := Z| Pwith_jkindsubst of longident_loc * jkind_declaration(*
*)with kind_ X.k := ...
Value expressions for the module language
and module_expr = Astlib.Ast_500.Parsetree.module_expr = {pmod_desc : module_expr_desc;pmod_loc : location;pmod_attributes : attributes;(*
*)... [@id1] [@id2]
}and module_expr_desc = Astlib.Ast_500.Parsetree.module_expr_desc = | Pmod_ident of longident_loc(*
*)X| Pmod_structure of structure(*
*)struct ... end| Pmod_functor of functor_parameter * module_expr(*
*)functor(X : MT1) -> ME| Pmod_apply of module_expr * module_expr(*
*)ME1(ME2)| Pmod_constraint of module_expr * module_type option * Astlib.Ast_500.Parsetree.mode loc list(*
*)(ME : MT)| Pmod_unpack of expression(*
*)(val E)| Pmod_extension of extension(*
*)[%id]| Pmod_instance of module_instance(*
*)Foo(Param1)(Arg1(Param2)(Arg2)) [@jane.non_erasable.instances]
and module_instance = Astlib.Ast_500.Parsetree.module_instance = {pmod_instance_head : string;pmod_instance_args : (string * module_instance) list;
}M(P1)(MI1)...(Pn)(MIn)
and structure_item = Astlib.Ast_500.Parsetree.structure_item = {pstr_desc : structure_item_desc;pstr_loc : location;
}and structure_item_desc = Astlib.Ast_500.Parsetree.structure_item_desc = | Pstr_eval of expression * attributes(*
*)E| Pstr_value of rec_flag * value_binding list(*Pstr_value(rec, [(P1, E1 ; ... ; (Pn, En))])represents:let P1 = E1 and ... and Pn = ENwhenrecisNonrecursive,let rec P1 = E1 and ... and Pn = ENwhenrecisRecursive.
| Pstr_primitive of value_description(*val x: Texternal x: T = "s1" ... "sn"
| Pstr_type of rec_flag * type_declaration list(*
*)type t1 = ... and ... and tn = ...| Pstr_typext of type_extension(*
*)type t1 += ...| Pstr_exception of type_exception(*exception C of Texception C = M.X
| Pstr_module of module_binding(*
*)module X = ME| Pstr_recmodule of module_binding list(*
*)module rec X1 = ME1 and ... and Xn = MEn| Pstr_modtype of module_type_declaration(*
*)module type S = MT| Pstr_open of open_declaration(*
*)open X| Pstr_class of class_declaration list(*
*)class c1 = ... and ... and cn = ...| Pstr_class_type of class_type_declaration list(*
*)class type ct1 = ... and ... and ctn = ...| Pstr_include of include_declaration(*
*)include ME| Pstr_attribute of attribute(*
*)[@@@id]| Pstr_extension of extension * attributes(*
*)[%%id]| Pstr_jkind of jkind_declaration(*
*)kind_abbrev_ name = k
and value_binding = Astlib.Ast_500.Parsetree.value_binding = {pvb_is_poly : bool;(*
*)let poly_pvb_pat : pattern;pvb_expr : expression;pvb_modes : Astlib.Ast_500.Parsetree.mode loc list;pvb_attributes : attributes;pvb_loc : location;
}and module_binding = Astlib.Ast_500.Parsetree.module_binding = {pmb_name : string option loc;pmb_expr : module_expr;pmb_attributes : attributes;pmb_loc : location;
}Values of type module_binding represents module X = ME
and jkind_annotation_desc = Astlib.Ast_500.Parsetree.jkind_annotation_desc = | Pjk_default| Pjk_abbreviation of longident_loc * string loc list(*
*)Pjk_abbreviation(A, [SA1; ...; SAn])represents the layoutA SA1 ... SAnwhereAis some abbreviation (likevalue) and eachSAiis a scannable axis annotation (likenon_pointer)| Pjk_mod of Astlib.Ast_500.Parsetree.jkind_annotation * Astlib.Ast_500.Parsetree.mode loc list| Pjk_with of Astlib.Ast_500.Parsetree.jkind_annotation * core_type * modalities| Pjk_kind_of of core_type| Pjk_product of Astlib.Ast_500.Parsetree.jkind_annotation list
Toplevel
Toplevel phrases
and toplevel_phrase = Astlib.Ast_500.Parsetree.toplevel_phrase = | Ptop_def of structure| Ptop_dir of toplevel_directive(*
*)#use,#load...
and toplevel_directive = Astlib.Ast_500.Parsetree.toplevel_directive = {pdir_name : string loc;pdir_arg : directive_argument option;pdir_loc : location;
}and directive_argument = Astlib.Ast_500.Parsetree.directive_argument = {pdira_desc : directive_argument_desc;pdira_loc : location;
}and directive_argument_desc = Astlib.Ast_500.Parsetree.directive_argument_desc =
| Pdir_string of string| Pdir_int of string * char option| Pdir_ident of longident| Pdir_bool of bool
include sig ... end
include sig ... end
include module type of struct include Sexplib0.Sexp_conv end
Conversion of OCaml-values to S-expressions
default_string_of_float reference to the default function used to convert floats to strings.
Initially set to fun n -> sprintf "%.20G" n.
write_old_option_format reference for the default option format used to write option values. If set to true, the old-style option format will be used, the new-style one otherwise.
Initially set to true.
read_old_option_format reference for the default option format used to read option values. Of_sexp_error will be raised with old-style option values if this reference is set to false. Reading new-style option values is always supported. Using a global reference instead of changing the converter calling conventions is the only way to avoid breaking old code with the standard macros.
Initially set to true.
We re-export a tail recursive map function, because some modules override the standard library functions (e.g. StdLabels) which wrecks havoc with the camlp4 extension.
val list_map__stack :
('a @ local -> 'b @ local) @ local ->
'a list @ local ->
'b list @ local @@ portableAs list_map, but operating over locally-allocated values.
sexp_of_unit () converts a value of type unit to an S-expression.
As sexp_of_unit, but returning a locally-allocated sexp.
sexp_of_unit_u #() converts a value of type unit# to an S-expression.
As sexp_of_unit_u, but returning a locally-allocated sexp.
sexp_of_bool b converts the value b of type bool to an S-expression.
As sexp_of_bool, but returning a locally-allocated sexp.
sexp_of_bool_u b converts the value b of type bool# to an S-expression.
As sexp_of_bool_u, but returning a locally-allocated sexp.
sexp_of_string str converts the value str of type string to an S-expression.
As sexp_of_string, but returning a locally-allocated sexp.
sexp_of_bytes str converts the value str of type bytes to an S-expression.
As sexp_of_bytes, but returning a locally-allocated sexp.
sexp_of_char c converts the value c of type char to an S-expression.
As sexp_of_char, but returning a locally-allocated sexp. Currently, the sexp will contain a one-character string which is heap-allocated.
sexp_of_char_u c converts the value c of type char# to an S-expression.
As sexp_of_char_u, but returning a locally-allocated sexp. Currently, the sexp will contain a one-character string which is heap-allocated.
sexp_of_int n converts the value n of type int to an S-expression.
As sexp_of_int, but returning a locally-allocated sexp. Currently, the sexp will contain a formatted string which is heap-allocated.
sexp_of_float n converts the value n of type float to an S-expression.
As sexp_of_float, but returning a locally-allocated sexp. Currently, the float will be copied to the heap, and the sexp will contain a formatted string which is heap-allocated.
sexp_of_float_u n converts the value n of type float# to an S-expression.
As sexp_of_float_u, but returning a locally-allocated sexp.
sexp_of_int32 n converts the value n of type int32 to an S-expression.
As sexp_of_int32, but returning a locally-allocated sexp. Currently, the sexp will contain a formatted string which is heap-allocated.
sexp_of_int32_u n converts the value n of type int32# to an S-expression.
As sexp_of_int32_u, but returning a locally-allocated sexp.
sexp_of_int64 n converts the value n of type int64 to an S-expression.
As sexp_of_int64, but returning a locally-allocated sexp. Currently, the sexp will contain a formatted string which is heap-allocated.
sexp_of_int64_u n converts the value n of type int64# to an S-expression.
As sexp_of_int64_u, but returning a locally-allocated sexp.
sexp_of_nativeint n converts the value n of type nativeint to an S-expression.
As sexp_of_nativeint, but returning a locally-allocated sexp. Currently, the sexp will contain a formatted string which is heap-allocated.
sexp_of_nativeint_u n converts the value n of type nativeint# to an S-expression.
As sexp_of_nativeint_u, but returning a locally-allocated sexp.
val sexp_of_ref :
('a : value_or_null). ('a -> Sexplib0.Sexp.t) ->
'a ref ->
Sexplib0.Sexp.t @@ portablesexp_of_ref conv r converts the value r of type 'a ref to an S-expression. Uses conv to convert values of type 'a to an S-expression.
val sexp_of_ref__stack :
('a : value_or_null). ('a @ local -> Sexplib0.Sexp.t @ local) ->
'a ref @ local ->
Sexplib0.Sexp.t @ local @@ portableAs sexp_of_ref, but returning a locally-allocated sexp.
sexp_of_lazy_t conv l converts the value l of type 'a lazy_t to an S-expression. Uses conv to convert values of type 'a to an S-expression.
val sexp_of_lazy_t__stack :
'a. ('a @ local -> Sexplib0.Sexp.t @ local) ->
'a lazy_t @ local ->
Sexplib0.Sexp.t @ local @@ portableAs sexp_of_lazy_t, but returning a locally-allocated sexp.
val sexp_of_option :
('a : value_or_null). ('a -> Sexplib0.Sexp.t) ->
'a option ->
Sexplib0.Sexp.t @@ portablesexp_of_option conv opt converts the value opt of type 'a option to an S-expression. Uses conv to convert values of type 'a to an S-expression.
val sexp_of_option__stack :
('a : value_or_null). ('a @ local -> Sexplib0.Sexp.t @ local) ->
'a option @ local ->
Sexplib0.Sexp.t @ local @@ portableAs sexp_of_option, but returning a locally-allocated sexp.
val sexp_of_or_null :
'a. ('a -> Sexplib0.Sexp.t) ->
'a Basement.Or_null_shim.t ->
Sexplib0.Sexp.t @@ portablesexp_of_or_null conv orn converts the value orn of type 'a or_null to an S-expression. Uses conv to convert values of type 'a to an S-expression.
val sexp_of_or_null__stack :
'a. ('a @ local -> Sexplib0.Sexp.t @ local) ->
'a Basement.Or_null_shim.t @ local ->
Sexplib0.Sexp.t @ local @@ portableAs sexp_of_or_null, but returning a locally-allocated sexp.
val sexp_of_pair :
('a : value_or_null) ('b : value_or_null). ('a -> Sexplib0.Sexp.t) ->
('b -> Sexplib0.Sexp.t) ->
('a * 'b) ->
Sexplib0.Sexp.t @@ portablesexp_of_pair conv1 conv2 pair converts a pair to an S-expression. It uses its first argument to convert the first element of the pair, and its second argument to convert the second element of the pair.
val sexp_of_triple :
('a : value_or_null) ('b : value_or_null) ('c : value_or_null). ('a ->
Sexplib0.Sexp.t) ->
('b -> Sexplib0.Sexp.t) ->
('c -> Sexplib0.Sexp.t) ->
('a * 'b * 'c) ->
Sexplib0.Sexp.t @@ portablesexp_of_triple conv1 conv2 conv3 triple converts a triple to an S-expression using conv1, conv2, and conv3 to convert its elements.
val sexp_of_list :
('a : value_or_null). ('a -> Sexplib0.Sexp.t) ->
'a list ->
Sexplib0.Sexp.t @@ portablesexp_of_list conv lst converts the value lst of type 'a list to an S-expression. Uses conv to convert values of type 'a to an S-expression.
val sexp_of_list__stack :
('a : value_or_null). ('a @ local -> Sexplib0.Sexp.t @ local) ->
'a list @ local ->
Sexplib0.Sexp.t @ local @@ portableAs sexp_of_list, but returning a locally-allocated sexp.
val sexp_of_array :
('a : value_or_null mod separable). ('a -> Sexplib0.Sexp.t) ->
'a array ->
Sexplib0.Sexp.t @@ portablesexp_of_array conv ar converts the value ar of type 'a array to an S-expression. Uses conv to convert values of type 'a to an S-expression.
val sexp_of_array__stack :
('a : value_or_null mod separable). ('a @ local -> Sexplib0.Sexp.t @ local) ->
'a array @ local ->
Sexplib0.Sexp.t @ local @@ portableAs sexp_of_array, but returning a locally-allocated sexp.
sexp_of_floatarray converts a value of type floatarray to an S-expression. It is identical to sexp_of_array sexp_of_float on the corresponding float array.
As sexp_of_floatarray, but returning a locally-allocated sexp.
val sexp_of_hashtbl :
'a 'b. ('a -> Sexplib0.Sexp.t) ->
('b -> Sexplib0.Sexp.t) ->
('a, 'b) Hashtbl.t ->
Sexplib0.Sexp.t @@ portablesexp_of_hashtbl conv_key conv_value htbl converts the value htbl of type ('a, 'b) Hashtbl.t to an S-expression. Uses conv_key to convert the hashtable keys of type 'a, and conv_value to convert hashtable values of type 'b to S-expressions.
val sexp_of_opaque :
('a : value_or_null). 'a @ local contended ->
Sexplib0.Sexp.t @@ portablesexp_of_opaque x converts the value x of opaque type to an S-expression. This means the user need not provide converters, but the result cannot be interpreted.
sexp_of_fun f converts the value f of function type to a dummy S-expression. Functions cannot be serialized as S-expressions, but at least a placeholder can be generated for pretty-printing.
Conversion of S-expressions to OCaml-values
Of_sexp_error (exn, sexp) the exception raised when an S-expression could not be successfully converted to an OCaml-value.
record_check_extra_fields checks for extra (= unknown) fields in record S-expressions.
of_sexp_error reason sexp
of_sexp_error exc sexp
unit_of_sexp sexp converts S-expression sexp to a value of type unit.
unit_u_of_sexp sexp converts S-expression sexp to a value of type unit#.
bool_of_sexp sexp converts S-expression sexp to a value of type bool.
bool_u_of_sexp sexp converts S-expression sexp to a value of type bool#.
string_of_sexp sexp converts S-expression sexp to a value of type string.
bytes_of_sexp sexp converts S-expression sexp to a value of type bytes.
char_of_sexp sexp converts S-expression sexp to a value of type char.
char_u_of_sexp sexp converts S-expression sexp to a value of type char#.
int_of_sexp sexp converts S-expression sexp to a value of type int.
float_of_sexp sexp converts S-expression sexp to a value of type float.
float_u_of_sexp sexp converts S-expression sexp to a value of type float#.
int32_of_sexp sexp converts S-expression sexp to a value of type int32.
int32_u_of_sexp sexp converts S-expression sexp to a value of type int32#.
int64_of_sexp sexp converts S-expression sexp to a value of type int64.
int64_u_of_sexp sexp converts S-expression sexp to a value of type int64#.
nativeint_of_sexp sexp converts S-expression sexp to a value of type nativeint.
nativeint_u_of_sexp sexp converts S-expression sexp to a value of type nativeint#.
val ref_of_sexp :
('a : value_or_null). (Sexplib0.Sexp.t -> 'a) ->
Sexplib0.Sexp.t ->
'a ref @@ portableref_of_sexp conv sexp converts S-expression sexp to a value of type 'a ref using conversion function conv, which converts an S-expression to a value of type 'a.
lazy_t_of_sexp conv sexp converts S-expression sexp to a value of type 'a lazy_t using conversion function conv, which converts an S-expression to a value of type 'a.
val option_of_sexp :
('a : value_or_null). (Sexplib0.Sexp.t -> 'a) ->
Sexplib0.Sexp.t ->
'a option @@ portableoption_of_sexp conv sexp converts S-expression sexp to a value of type 'a option using conversion function conv, which converts an S-expression to a value of type 'a.
val or_null_of_sexp :
'a. (Sexplib0.Sexp.t -> 'a) ->
Sexplib0.Sexp.t ->
'a Basement.Or_null_shim.t @@ portableoption_of_sexp conv sexp converts S-expression sexp to a value of type 'a or_null using conversion function conv, which converts an S-expression to a value of type 'a.
val pair_of_sexp :
('a : value_or_null) ('b : value_or_null). (Sexplib0.Sexp.t -> 'a) ->
(Sexplib0.Sexp.t -> 'b) ->
Sexplib0.Sexp.t ->
'a * 'b @@ portablepair_of_sexp conv1 conv2 sexp converts S-expression sexp to a pair of type 'a * 'b using conversion functions conv1 and conv2, which convert S-expressions to values of type 'a and 'b respectively.
val triple_of_sexp :
('a : value_or_null) ('b : value_or_null) ('c : value_or_null). (Sexplib0.Sexp.t ->
'a) ->
(Sexplib0.Sexp.t -> 'b) ->
(Sexplib0.Sexp.t -> 'c) ->
Sexplib0.Sexp.t ->
'a * 'b * 'c @@ portabletriple_of_sexp conv1 conv2 conv3 sexp converts S-expression sexp to a triple of type 'a * 'b * 'c using conversion functions conv1, conv2, and conv3, which convert S-expressions to values of type 'a, 'b, and 'c respectively.
val list_of_sexp :
('a : value_or_null). (Sexplib0.Sexp.t -> 'a) ->
Sexplib0.Sexp.t ->
'a list @@ portablelist_of_sexp conv sexp converts S-expression sexp to a value of type 'a list using conversion function conv, which converts an S-expression to a value of type 'a.
val array_of_sexp :
('a : value_or_null mod separable). (Sexplib0.Sexp.t -> 'a) ->
Sexplib0.Sexp.t ->
'a array @@ portablearray_of_sexp conv sexp converts S-expression sexp to a value of type 'a array using conversion function conv, which converts an S-expression to a value of type 'a.
floatarray_of_sexp sexp converts S-expression sexp to a value of type floatarray. It is identical to array_of_sexp float_of_sexp for the corresponding float array.
val hashtbl_of_sexp :
'a 'b. (Sexplib0.Sexp.t -> 'a) ->
(Sexplib0.Sexp.t -> 'b) ->
Sexplib0.Sexp.t ->
('a, 'b) Hashtbl.t @@ portablehashtbl_of_sexp conv_key conv_value sexp converts S-expression sexp to a value of type ('a, 'b) Hashtbl.t using conversion function conv_key, which converts an S-expression to hashtable key of type 'a, and function conv_value, which converts an S-expression to hashtable value of type 'b.
opaque_of_sexp sexp
fun_of_sexp sexp
Sexp Grammars
val sexp_grammar_with_tags :
Sexplib0.Sexp_grammar.grammar ->
tags:(string * Sexplib0.Sexp.t) list ->
Sexplib0.Sexp_grammar.grammar @@ portableval sexp_grammar_with_tag_list :
'a Sexplib0.Sexp_grammar.with_tag_list ->
tags:(string * Sexplib0.Sexp.t) list ->
'a Sexplib0.Sexp_grammar.with_tag_list @@ portableSexp grammar definitions.
val ref_sexp_grammar :
('a : value_or_null). 'a Sexplib0.Sexp_grammar.t ->
'a ref Sexplib0.Sexp_grammar.t @@ portableval lazy_t_sexp_grammar :
'a Sexplib0.Sexp_grammar.t ->
'a lazy_t Sexplib0.Sexp_grammar.t @@ portableval option_sexp_grammar :
('a : value_or_null). 'a Sexplib0.Sexp_grammar.t ->
'a option Sexplib0.Sexp_grammar.t @@ portableval list_sexp_grammar :
('a : value_or_null). 'a Sexplib0.Sexp_grammar.t ->
'a list Sexplib0.Sexp_grammar.t @@ portableval array_sexp_grammar :
('a : any mod separable). 'a Sexplib0.Sexp_grammar.t ->
'a array Sexplib0.Sexp_grammar.t @@ portableException converters
sexp_of_exn exc converts exception exc to an S-expression. If no suitable converter is found, the standard converter in Printexc will be used to generate an atomic S-expression.
Converts an exception to a string via sexp, falling back to Printexc.to_string if no sexp conversion is registered for this exception.
This is different from Printexc.to_string in that it additionally uses the sexp converters registered with ~printexc:false. Another difference is that the behavior of Printexc can be overridden with Printexc.register, but here we always try sexp conversion first.
sexp_of_exn_opt exc converts exception exc to Some sexp. If no suitable converter is found, None is returned instead.