package tiny_languages
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Small languages from scratch: Scheme, Lisp, Smalltalk-80, Pascal, BASIC, JavaScript, HTML, CSS and more
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dune-project
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0.3.6.tar.gz
md5=7c636383d146d30ac6f2fa234a6253c8
sha512=c79f3823c5f8f57e5038eb640d487c61168b84aa07c61999d6622ef9fd0c890e2b03b4c6a7cdbbe9352a49e25dda00ac7bb14693cee8e3d7beeed251351a2af0
doc/src/tiny_languages.lang_ocaml/Highlight_ml.ml.html
Source file Highlight_ml.ml
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you can redistribute it and/or * modify it under the terms of the GNU Library General Public License * (LGPL) as published by the Free Software Foundation; either version * 2 of the License, or (at your option) any later version. *) (* See Highlight_ml.mli. * * After pfff's highlight_ml.ml (codemap's), its token pass: one walk * over the tokens, a few facts remembered on the way (the parameters * and locals of the definition we are in, whether we are in a type), * each token's category chosen from its neighbours: * * let f x y = ... the let's name, then its arguments: Def_function * let v = ... no arguments: Def_value (a fun after = too: a function) * M.x M a Module, x a Global * (x : t) after a colon, until the parenthesis closes: a type * type t = A | B a type definition: Def_type, then types and constructors * * A let is at the top when the token before it can end an expression * (after "=", "in", "(", "->"... a let is inside one): no indentation * needed, and a let in a module's struct is at its top too. *) open Highlight_code (* a token after which an expression is over, so a let is a new item *) let ends_expression (t : Token_ml.t) : bool = match t.kind with | Lident | Uident | Int | Float | Char | String | Type_var | Label -> true | Keyword -> List.mem t.text [ "struct"; "end"; "done"; "true"; "false"; "sig" ] | Punctuation -> List.mem t.text [ ")"; "]"; "}"; ";;"; "|]" ] | _ -> false (* the keywords that start an item of a structure or a signature *) let item_keywords = [ "let"; "type"; "module"; "val"; "external"; "exception"; "open"; "include"; "class"; "method"; "end" ] let control_keywords = [ "if"; "then"; "else"; "match"; "with"; "when"; "try"; "for"; "while"; "do"; "done"; "to"; "downto"; "function"; "fun" ] let module_keywords = [ "module"; "struct"; "sig"; "end"; "open"; "include"; "functor" ] (* caps, caps_net: a capability's name, by the repository's habit *) let is_caps (s : string) : bool = String.length s >= 4 && String.sub s 0 4 = "caps" (* a banner comment: (*****...*) *) let (t : Token_ml.t) : bool = t.kind = Comment && String.length t.text >= 6 && String.sub t.text 0 6 = "(*****" (*****************************************************************************) (* From the tokens: a guess *) (*****************************************************************************) (* claude: what the neighbours say; the tree then says better where it * can ("From the tree" below) *) let guess (toks : Token_ml.t list) : (Token_ml.t * category) list = (* the code, without the comments, for looking at neighbours *) let code = Array.of_list (List.filter (fun (t : Token_ml.t) -> t.kind <> Comment) toks) in let m = Array.length code in let cat = Array.make m Normal in let decided = Array.make m false in let text i = if i >= 0 && i < m then code.(i).text else "" in let kind i : Token_ml.kind option = if i >= 0 && i < m then Some code.(i).kind else None in let decide i c = if i >= 0 && i < m then (cat.(i) <- c; decided.(i) <- true) in (* what we know, walking *) let params = Hashtbl.create 16 and locals = Hashtbl.create 16 in let depth = ref 0 in let type_depth = ref None (* in a type since a colon, opened at this depth *) in let type_def = ref false (* in a type definition, until the next item *) in let last_binder = ref `None in (* the names bound by a pattern from [from] to one of [stop] *) let bind_names (from : int) (stop : string list) (c : category) (into : (string, unit) Hashtbl.t) : unit = let d = ref 0 and in_type = ref false and j = ref from in while !j < m && (not (!d = 0 && List.mem (text !j) stop)) && not (kind !j = Some Keyword && List.mem (text !j) item_keywords) do (match (kind !j, text !j) with | Some Punctuation, ("(" | "[" | "{") -> incr d | Some Punctuation, (")" | "]" | "}") -> decr d; in_type := false | Some Operator, ":" -> in_type := true | Some Lident, name when (not !in_type) && text (!j - 1) <> "." && name <> "_" -> Hashtbl.replace into name (); decide !j (if is_caps name then Capability else c) | Some Label, l -> (* ~x punned: x is bound too *) let name = String.sub l 1 (String.length l - 1) in if name <> "" && name.[String.length name - 1] <> ':' then Hashtbl.replace into name () | _ -> ()); incr j done in (* a let's (or an and's) name at [i], and its arguments *) let binding (i : int) (top : bool) : unit = let i = if text i = "rec" then i + 1 else i in if kind i = Some Lident then begin let fn = match text (i + 1) with "=" -> List.mem (text (i + 2)) [ "fun"; "function" ] | ":" -> false | _ -> true in decide i (if not top then Local else if fn then Def_function else Def_value); if not top then Hashtbl.replace locals (text i) (); bind_names (i + 1) [ "=" ] Parameter (if top then params else locals) end else if text i = "(" && kind (i + 1) = Some Operator && text (i + 2) = ")" then decide (i + 1) (if top then Def_function else Local) else bind_names i [ "=" ] (if top then Def_value else Local) (if top then params else locals) in (* the type's name after "type" (or "and"), past its parameters *) let type_name (i : int) : unit = let j = ref i in while !j < m && (List.mem (text !j) [ "nonrec"; "("; ")"; ","; "+"; "-" ] || kind !j = Some Type_var) do incr j done; if kind !j = Some Lident then decide !j Def_type in for i = 0 to m - 1 do let t = code.(i) in (* a new item: the type we were in is over *) if t.kind = Keyword && List.mem t.text item_keywords then type_depth := None; (match (t.kind, t.text) with | Punctuation, ("(" | "[" | "{" | "[|") -> incr depth | Punctuation, (")" | "]" | "}" | "|]") -> ( decr depth; match !type_depth with Some d when !depth < d -> type_depth := None | _ -> ()) | Operator, "=" | Punctuation, ";" -> ( match !type_depth with Some d when !depth <= d -> type_depth := None | _ -> ()) | Keyword, "in" -> type_depth := None | _ -> ()); if not decided.(i) then begin let in_type = !type_depth <> None || !type_def in let c : category = match t.kind with | Keyword -> ( match t.text with | "let" -> let top = t.col = 0 || i = 0 || ends_expression code.(i - 1) in if top then ( Hashtbl.reset params; Hashtbl.reset locals; type_def := false); last_binder := if top then `Let_top else `Let; if not (List.mem (text (i + 1)) [ "open"; "module"; "exception" ]) then binding (i + 1) top; Keyword | "and" -> (match !last_binder with | `Type -> type_name (i + 1) | `Let_top -> binding (i + 1) true | `Let -> binding (i + 1) false | `None -> ()); Keyword | "type" -> if text (i - 1) <> "module" && text (i - 1) <> ":" then begin last_binder := `Type; type_def := true; type_name (i + 1) end; Keyword | "exception" -> if kind (i + 1) = Some Uident then decide (i + 1) Def_type; type_def := true; Keyword_control | ("val" | "external" | "method") as k -> type_def := false; let j = if List.mem (text (i + 1)) [ "mutable"; "virtual"; "private" ] then i + 2 else i + 1 in if kind j = Some Lident then begin (* a function if its type has an arrow, before the next item *) let rec arrow l = l < m && (not (kind l = Some Keyword && List.mem (text l) item_keywords)) && (text l = "->" || arrow (l + 1)) in decide j (if k = "external" || arrow (j + 1) then Def_function else Def_value) end; Keyword | "module" -> type_def := false; let j = if List.mem (text (i + 1)) [ "type"; "rec" ] then i + 2 else i + 1 in if kind j = Some Uident then decide j Def_module; Keyword_module | "fun" -> bind_names (i + 1) [ "->" ] Parameter params; Keyword_control | "true" | "false" -> Constructor | k when List.mem k module_keywords -> Keyword_module | k when List.mem k control_keywords -> Keyword_control | _ -> Keyword) | Uident -> if t.text = "Cap" && text (i + 1) = "." then Capability else if text (i + 1) = "." || List.mem (text (i - 1)) [ "open"; "include" ] then Module else Constructor | Lident -> if is_caps t.text then Capability else if text (i - 1) = "." && kind (i - 2) = Some Uident then if text (i - 2) = "Cap" then Capability else Global else if text (i - 1) = "." then Normal (* a field *) else if in_type then (* a field's name in a record type; a label in a type *) if text (i + 1) = ":" then if !type_def then Normal else Label else Type else if Hashtbl.mem params t.text then Parameter else if Hashtbl.mem locals t.text then Local else Normal | Label -> Label | Type_var -> Type_var | Int | Float -> Number | Char | String -> String | Operator -> Operator | Punctuation -> if String.length t.text >= 2 && (t.text.[1] = '@' || t.text.[1] = '%') then Attribute else Punctuation | Directive -> Attribute | Error -> Error | Comment -> Comment in cat.(i) <- c end; (* after a colon, a type *) if t.kind = Operator && t.text = ":" && !type_depth = None then type_depth := Some !depth done; (* the comments back in their places: banners, and the title between two *) let all = Array.of_list toks in let n = Array.length all in let k = ref 0 and out = ref [] in for i = 0 to n - 1 do let t = all.(i) in let c = if t.kind <> Comment then ( incr k; cat.(!k - 1)) else if is_banner t || (i > 0 && is_banner all.(i - 1) && i + 1 < n && is_banner all.(i + 1)) then Comment_section else Comment in out := (t, c) :: !out done; List.rev !out (*****************************************************************************) (* From the tree *) (*****************************************************************************) (* claude: what the tree says of a name (Parse_ml, Ast_ml): the scopes * (a parameter until its function ends, a local until its let's body or * its case ends), the fields (p.x, { x = ... }, a record type's), the * definitions, the constructors, types and modules where they are used. * A token index to its category; what is not in it keeps the guess. *) open Ast_ml (* the names in scope: a parameter or a local, and its binding's token *) type env = (string * (category * int)) list (* claude: and [binds], a name's token to its binding's (a binding's to * its own): where a use is bound, its uses those bound to one token *) let resolve (file : file) : (int, category) Hashtbl.t * (int, int) Hashtbl.t * ((int * Highlight_code.space * string) list * (int * string list * Highlight_code.space * string list) list * string list) = let out = Hashtbl.create 1024 in let binds = Hashtbl.create 256 in let mark (n : name) (c : category) = if n.tok >= 0 then Hashtbl.replace out n.tok c in (* a name bound as [c]: in scope after *) let bind (n : name) (c : category) : string * (category * int) = mark n c; if n.tok >= 0 then Hashtbl.replace binds n.tok n.tok; (n.text, (c, n.tok)) in (* claude: the top-level names defined so far (plan_codemap_naming.md, * level 2), the latest first: values, types, constructors, each its * own namespace as in OCaml. A name no local binds is bound to the * latest of its kind; a module's struct keeps its own to itself *) let top_values : env ref = ref [] and top_types : env ref = ref [] and top_constrs : env ref = ref [] in (* claude: and for other files (level 3): the file's definitions, a * nested module's by their path (N.x: [prefix], the modules we are in, * innermost first; none in an unnamed struct, [depth] deeper than * [prefix]), its names defined elsewhere (M.x, or not defined here) * with the modules opened around them ([local_opens], let open M in, * M.(e)), its top-level opens; tokens' indexes *) let defs = ref [] and refs = ref [] and opens = ref [] and depth = ref 0 in let prefix = ref [] and local_opens = ref [] in let record (tok : int) (space : Highlight_code.space) (text : string) = if tok >= 0 && !depth = List.length !prefix then defs := (tok, space, String.concat "." (List.rev (text :: !prefix))) :: !defs in let define (r : env ref) (space : Highlight_code.space) (n : name) (c : category) = if n.tok >= 0 then begin Hashtbl.replace binds n.tok n.tok; r := (n.text, (c, n.tok)) :: !r; record n.tok space n.text end in let refer (r : env ref) (space : Highlight_code.space) (l : longid) = match List.rev l with | [ n ] -> ( match List.assoc_opt n.text !r with | Some (_, b) -> if n.tok >= 0 && b >= 0 then Hashtbl.replace binds n.tok b | None -> if n.tok >= 0 then refs := (n.tok, [], space, !local_opens) :: !refs) | n :: ms -> if n.tok >= 0 then refs := (n.tok, List.rev_map (fun (m : name) -> m.text) ms, space, !local_opens) :: !refs | [] -> () in (* the last name of a module's path: M.N is N *) let last_name (l : longid) = match List.rev l with n :: _ -> Some n.text | [] -> None in (* inside module [n]'s body: its definitions are n's, N.x *) let in_module (n : name) (f : unit -> unit) = prefix := n.text :: !prefix; f (); prefix := List.tl !prefix in let scoped (f : unit -> unit) = let v, t, c = (!top_values, !top_types, !top_constrs) in incr depth; f (); decr depth; top_values := v; top_types := t; top_constrs := c in (* M.N.x: the modules, then the last as [last] *) let path (l : longid) (last : category) = List.iteri (fun i (n : name) -> mark n (if i = List.length l - 1 then last else Module)) l in let rec ty (t : ty) = match t with | Tany -> () | Tvar n -> mark n Type_var | Tarrow (a, b) -> ty a; ty b | Ttuple ts -> List.iter ty ts | Tconstr (l, ts) -> path l Type; refer top_types Type l; List.iter ty ts | Tobject ms -> List.iter (fun (m, t) -> mark m Field; ty t) ms | Tvariant (, others) -> List.iter (fun (n, ts) -> mark n Constructor; List.iter ty ts) tags; List.iter ty others | Tpoly (ns, t) -> List.iter (fun n -> mark n Type_var) ns; ty t | Tpackage l -> path l Module in (* a pattern's names, bound as [c]; returned, in scope after *) let rec pat (c : category) (p : pat) : env = match p with | Pany | Pconst -> [] | Pvar n -> [ bind n c ] | Ptuple ps | Plist ps -> List.concat_map (pat c) ps | Pconstr (l, arg) -> path l Constructor; refer top_constrs Constr l; (match arg with Some p -> pat c p | None -> []) | Pvariant (n, arg) -> mark n Constructor; (match arg with Some p -> pat c p | None -> []) | Precord fields -> List.concat_map (fun (l, p) -> path l Field; (* { x } binds x, at the field's token (a field it stays) *) match p with | Some p -> pat c p | None -> ( match List.rev l with | n :: _ -> if n.tok >= 0 then Hashtbl.replace binds n.tok n.tok; [ (n.text, (c, n.tok)) ] | [] -> [])) fields | Por (a, b) -> pat c a @ pat c b | Palias (p, n) -> bind n c :: pat c p | Pconstraint (p, t) -> ty t; pat c p | Pmodule n -> mark n Module; [] | Popen (l, p) -> path l Module; pat c p | Pinner p -> pat c p in let rec expr (env : env) (e : expr) = match e with | Econst -> () (* in scope, or not a parameter nor a local at all: the guess, which * knows a definition's locals but not where their scopes end, is * overruled *) | Eident [ n ] -> ( match List.assoc_opt n.text env with | Some (c, b) -> mark n c; if n.tok >= 0 && b >= 0 then Hashtbl.replace binds n.tok b | None -> mark n Normal; refer top_values Value [ n ]) | Eident l -> path l Global; refer top_values Value l | Econstr (l, arg) -> path l Constructor; refer top_constrs Constr l; Option.iter (expr env) arg | Evariant (n, arg) -> mark n Constructor; Option.iter (expr env) arg | Etuple es | Elist es | Eseq es | Emisc es -> List.iter (expr env) es | Erecord (base, fields) -> Option.iter (expr env) base; List.iter (fun (l, v) -> path l Field; Option.iter (expr env) v) fields | Efield (e, l) -> expr env e; path l Field | Esetfield (e, l, v) -> expr env e; path l Field; expr env v | Eapply (f, args) -> expr env f; List.iter (expr env) args | Elet (recursive, bs, body) -> let bound = List.concat_map (fun b -> pat Local b.bpat) bs in List.iter (binding (if recursive then bound @ env else env)) bs; expr (bound @ env) body | Eletop (bs, body) -> let bound = List.concat_map (fun b -> pat Local b.bpat) bs in List.iter (binding env) bs; expr (bound @ env) body | Efun (ps, body) -> expr (params env ps @ env) body | Efunction cs -> cases env cs | Ematch (e, cs) -> expr env e; cases env cs | Eif (c, a, b) -> expr env c; expr env a; Option.iter (expr env) b | Ewhile (c, b) -> expr env c; expr env b | Efor (i, a, b, body) -> let bound = bind i Local in expr env a; expr env b; expr (bound :: env) body | Econstraint (e, t) -> expr env e; ty t | Eletmodule (n, m, body) -> mark n Module; modexpr m; expr env body | Eopen (m, e) -> modexpr m; (* let open M in e, M.(e): M's names seen first in e *) let saved = !local_opens in (match m with Mident l -> Option.iter (fun n -> local_opens := n :: !local_opens) (last_name l) | _ -> ()); expr env e; local_opens := saved | Enewtype (n, e) -> mark n Type; expr env e | Epack m -> modexpr m (* a function's parameters, and their defaults *) and params (env : env) (ps : param list) : env = List.concat_map (fun (p, default) -> Option.iter (expr env) default; pat Parameter p) ps and cases env cs = List.iter (fun c -> let bound = pat Local c.cpat @ env in Option.iter (expr bound) c.guard; expr bound c.cbody) cs (* a local let's binding: its parameters in scope in its body *) and binding (env : env) (b : binding) = Option.iter ty b.bty; expr (params env b.bparams @ env) b.bbody and modexpr (m : modexpr) = match m with | Mident l -> path l Module | Mstruct is -> scoped (fun () -> List.iter item is) | Mfunctor (ps, m) -> List.iter (fun (n, t) -> mark n Module; Option.iter modtype t) ps; modexpr m | Mapply (a, b) -> modexpr a; modexpr b | Mconstraint (m, t) -> modexpr m; modtype t | Munpack e -> expr [] e and modtype (t : modtype) = match t with | MTident l -> path l Module | MTsig is -> scoped (fun () -> List.iter item is) | MTfunctor (ps, t) -> List.iter (fun (n, t) -> mark n Module; Option.iter modtype t) ps; modtype t | MTwith (t, cs) -> modtype t; List.iter (fun (l, u) -> path l Type; ty u) cs | MTtypeof m -> modexpr m (* a top-level let: its name a definition, a function's or a value's *) and top_binding (b : binding) = (match b.bpat with | Pvar n -> let fn = b.bparams <> [] || (match b.bbody with Efun _ | Efunction _ -> true | _ -> false) in mark n (if fn then Def_function else Def_value) | p -> ignore (pat Def_value p)); binding [] b and constr (c : constr) = mark c.cname Constructor; List.iter ty c.cargs; List.iter field c.crecord; Option.iter ty c.cres and field (f : Ast_ml.field) = mark f.fname Field; ty f.fty and item (it : item) = match it with | Ilet (recursive, bs) -> (* its names seen by its bodies if rec, after them if not *) let names () = List.iter (fun b -> match b.bpat with | Pvar n -> define top_values Value n Def_value | p -> let bound = pat Def_value p in top_values := bound @ !top_values; List.iter (fun (text, (_, tok)) -> record tok Highlight_code.Value text) bound) bs in if recursive then (names (); List.iter top_binding bs) else (List.iter top_binding bs; names ()) | Itype ds -> (* recursive: all its types and constructors seen by all *) List.iter (fun d -> define top_types Type d.tname Def_type; match d.tkind with Kvariant cs -> List.iter (fun c -> define top_constrs Constr c.cname Constructor) cs | _ -> ()) ds; List.iter (fun d -> mark d.tname Def_type; List.iter (fun n -> mark n Type_var) d.tparams; Option.iter ty d.tmanifest; match d.tkind with | Kabstract | Kopen -> () | Kvariant cs -> List.iter constr cs | Krecord fs -> List.iter field fs) ds | Iexception c -> constr c; mark c.cname Def_type; define top_constrs Constr c.cname Def_type | Iexternal (n, t) -> mark n Def_function; ty t; define top_values Value n Def_function | Ival (n, t) -> mark n (match t with Tarrow _ -> Def_function | _ -> Def_value); ty t; define top_values Value n Def_value | Imodule (n, m) -> mark n Def_module; in_module n (fun () -> modexpr m) | Imodsig (n, t) -> mark n Def_module; in_module n (fun () -> modtype t) | Imodtype (n, t) -> mark n Def_module; Option.iter modtype t | Iopen m -> (match m with Mident l when !depth = 0 -> ( match List.rev l with n :: _ -> opens := n.text :: !opens | [] -> ()) | _ -> ()); modexpr m | Iinclude m -> modexpr m | Ieval e -> expr [] e | Iclass es -> List.iter (expr []) es in List.iter item file.items; (out, binds, (List.rev !defs, List.rev !refs, List.rev !opens)) (* the guess, and over it what the tree says: of a name only (a * lowercase or an uppercase one), and not of a capability, which the * repository's habits say better than the grammar (Cap.x, caps) *) let categorize_bound (toks : Token_ml.t list) = let tree, binds, others = resolve (Parse_ml.parse toks) in (* an array, not List.mapi: a recursion a token, which a browser's * stack does not hold (the lines' comment below) *) ( Array.to_list (Array.mapi (fun i ((t : Token_ml.t), c) -> match Hashtbl.find_opt tree i with | Some c' when (t.kind = Lident || t.kind = Uident) && c <> Capability -> (t, c') | _ -> (t, c)) (Array.of_list (guess toks))), binds, others ) let categorize (toks : Token_ml.t list) : (Token_ml.t * category) list = let cats, _, _ = categorize_bound toks in cats (* claude: rev_map and rev, not List.map: OCaml 4.14's map recurses once * a token, which natively's stack holds but a browser's does not -- on * the web the biggest files (Tui_turbo.ml, 9,600 tokens) overflowed it, * and the code map, given up on them, showed them plain * * old: List.map (fun ...) (categorize (Lexer_ml.tokens src)) *) let analyze (src : string) : analysis = let toks = Lexer_ml.tokens src in let cats, binds, (defs, refs, opens) = categorize_bound toks in (* claude: Array.map, not List.map (above) *) let places = Array.map (fun (t : Token_ml.t) -> (t.line, t.col, t.text)) (Array.of_list toks) in { spans = Highlight_code.lines src (List.rev (List.rev_map (fun ((t : Token_ml.t), c) -> (t.line, t.col, t.text, c)) cats)); occurrences = Highlight_code.occurrences places binds; definitions = List.rev (List.rev_map (fun (tok, space, name) -> Highlight_code.definition ~name places tok space 3) defs); references = List.rev (List.rev_map (fun (tok, path, space, opens) -> Highlight_code.reference ~opens places tok path space) refs); opens; includes = []; } let lines (src : string) : span list array = (analyze src).spans
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