package coq-lsp
Language Server Protocol native server for Coq
Install
dune-project
Dependency
Authors
Maintainers
Sources
coq-lsp-0.2.4.9.0.tbz
sha256=b6bf58331589b0bc750c01cc96a607322cf20260e61bd74f64998e04a9b909d3
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doc/src/coq-lsp.fleche/info.ml.html
Source file info.ml
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(*************************************************************************) (* Copyright 2015-2019 MINES ParisTech -- Dual License LGPL 2.1+ / GPL3+ *) (* Copyright 2019-2024 Inria -- Dual License LGPL 2.1+ / GPL3+ *) (* Copyright 2024-2025 Emilio J. Gallego Arias -- LGPL 2.1+ / GPL3+ *) (* Copyright 2025 CNRS -- LGPL 2.1+ / GPL3+ *) (* Written by: Emilio J. Gallego Arias & coq-lsp contributors *) (*************************************************************************) module type Point = sig type t val in_range : ?range:Lang.Range.t -> t -> bool val gt_range : ?range:Lang.Range.t -> t -> bool type offset_table = string val to_offset : t -> offset_table -> int val to_string : t -> string end module LineCol : Point with type t = int * int = struct type t = int * int type offset_table = string let line_length offset text = match String.index_from_opt text offset '\n' with | Some l -> l - offset | None -> String.length text - offset let rec to_offset cur lc (l, c) text = Io.Log.trace "to_offset" "cur: %d | lc: %d | l: %d c: %d" cur lc l c; if lc = l then cur + c else let ll = line_length cur text + 1 in to_offset (cur + ll) (lc + 1) (l, c) text let to_offset (l, c) text = to_offset 0 0 (l, c) text let to_string (l, c) = "(" ^ string_of_int l ^ "," ^ string_of_int c ^ ")" let debug_in_range = false let debug_in_range hdr line col line1 col1 line2 col2 = if debug_in_range then Io.Log.trace hdr "(%d, %d) in (%d,%d)-(%d,%d)" line col line1 col1 line2 col2 let in_range ?range (line, col) = (* Coq starts at 1, lsp at 0 *) match range with | None -> false | Some r -> let line1 = r.Lang.Range.start.line in let col1 = r.start.character in let line2 = r.end_.line in let col2 = r.end_.character in debug_in_range "in_range" line col line1 col1 line2 col2; (line1 < line && line < line2) || if line1 = line && line2 = line then col1 <= col && col < col2 else (line1 = line && col1 <= col) || (line2 = line && col < col2) let gt_range ?range (line, col) = match range with | None -> false | Some r -> let line1 = r.Lang.Range.start.line in let col1 = r.start.character in let line2 = r.end_.line in let col2 = r.end_.character in debug_in_range "gt_range" line col line1 col1 line2 col2; line < line1 || (line = line1 && col < col1) end module Offset : Point with type t = int = struct type t = int type offset_table = string let in_range ?range point = match range with | None -> false | Some range -> range.Lang.Range.start.offset <= point && point < range.Lang.Range.end_.offset let gt_range ?range point = match range with | None -> false | Some range -> point < range.Lang.Range.start.offset let to_offset off _ = off let to_string off = string_of_int off end type approx = | Exact (* Exact on point *) | PrevIfEmpty (* If no match, return prev *) | Prev module type S = sig module P : Point type ('a, 'r) query = doc:Doc.t -> point:P.t -> 'a -> 'r option val node : (approx, Doc.Node.t) query end let some x = Some x module Make (P : Point) : S with module P := P = struct type ('a, 'r) query = doc:Doc.t -> point:P.t -> 'a -> 'r option let find ~doc ~point approx = let rec find prev l = match l with | [] -> prev | node :: xs -> ( let range = node.Doc.Node.range in match approx with | Exact -> if P.in_range ~range point then Some node else find None xs | PrevIfEmpty -> if P.gt_range ~range point then prev else find (Some node) xs | Prev -> if P.gt_range ~range point || P.in_range ~range point then prev else find (Some node) xs) in find None doc.Doc.nodes let node = find end module LC = Make (LineCol) module O = Make (Offset) (* XXX: We need to split this module in two: one that handles the extraction of information from a document, and the other that further processes it, like for goals, possibly executing Coq code. *) (* Related to goal request *) module Goals = struct let get_goals_unit ~st = let ppx _env _sigma _x = () in Coq.State.lemmas ~st |> Option.map (Coq.Goals.reify ~ppx) let get_goals ~st = let ppx env sigma x = (env, sigma, x) in Coq.State.lemmas ~st |> Option.map (Coq.Goals.reify ~ppx) type 'a printer = token:Coq.Limits.Token.t -> Environ.env -> Evd.evar_map -> EConstr.t -> 'a let to_pp ~token env sigma x = let { Coq.Protect.E.r; feedback } = Coq.Print.pr_letype_env ~token ~goal_concl_style:true env sigma x in (* XXX: We ideally want to thread this in the monad too, but it'd be better if the printer was more functional *) Io.Log.feedback "to_pp" feedback; match r with | Coq.Protect.R.Completed (Ok pr) -> pr | Coq.Protect.R.Completed (Error _pr) -> Pp.str "printer failed!" | Interrupted -> Pp.str "printer interrupted!" let pr_goal ~token ~pr st = let lemmas = Coq.State.lemmas ~st in Option.map (Coq.Goals.reify ~ppx:(pr ~token)) lemmas (* We need to use [in_state] here due to printing not being pure, but we want a better design here eventually *) let goals ~token ~pr ~st = Coq.State.in_state ~token ~st ~f:(pr_goal ~token ~pr) st let program ~st = Coq.State.program ~st end module Completion = struct (* XXX: This belongs in Coq *) let pr_extref gr = match gr with | Globnames.TrueGlobal gr -> Printer.pr_global gr | Globnames.Abbrev kn -> Names.KerName.print kn (* XXX This may fail when passed "foo." for example, so more sanitizing is needed *) let to_qualid p = try Some (Libnames.qualid_of_string p) with _ -> None let candidates ~token ~st prefix = let ( let* ) = Option.bind in Coq.State.in_state ~token ~st prefix ~f:(fun prefix -> let* p = to_qualid prefix in Nametab.completion_canditates p |> List.map (fun x -> Pp.string_of_ppcmds (pr_extref x)) |> some) end
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