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374 lines
9.6 KiB
OCaml
374 lines
9.6 KiB
OCaml
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(*
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Copyright (c) 2013, Simon Cruanes
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All rights reserved.
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Redistribution and use in source and binary forms, with or without
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modification, are permitted provided that the following conditions are met:
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Redistributions of source code must retain the above copyright notice, this
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list of conditions and the following disclaimer. Redistributions in binary
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form must reproduce the above copyright notice, this list of conditions and the
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following disclaimer in the documentation and/or other materials provided with
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the distribution.
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THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS" AND
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ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED
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WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
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DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE LIABLE
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FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
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DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
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SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER
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CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
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OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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*)
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(** {2 Hypergraph Representation}
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CCGeneralized Hypergraphs. Objects are either constants, or hyperedges that
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connect [n] other objets together (a [n]-tuple). Each hyperedge can contain
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additional data.
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*)
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module type S = sig
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type const
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(** Constants. Those are what can annotate hyperedges or make single,
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leaf, nodes. *)
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type t
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(** An hypergraph. It stores a set of edges, and possibly inherits from
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another graph. *)
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type edge
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(** A single edge of the hypergraph. *)
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val self : t -> edge
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(** The edge that represents (reifies) the hypergraph itself *)
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val eq : edge -> edge -> bool
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(** Equality of the two edges. *)
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val arity : edge -> int
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(** Number of sub-elements of the edge (how many other edges it connects
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together) *)
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val nth : edge -> int -> edge
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(** [nth x i] accesses the [i]-th sub-node of [x].
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@raise Invalid_argument if [i >= arity x]. *)
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val make_graph : ?parent:t -> unit -> t
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(** New graph, possibly inheriting from another graph. *)
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val make_edge : t -> edge array -> edge
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(** Create a new hyperedge from an ordered tuple of sub-edges.
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The edge belongs to the given graph.
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The array must not be used afterwards and must not be empty.
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@raise Invalid_argument if the array is empty *)
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val make_const : t -> const -> edge
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(** Constant edge, without sub-edges *)
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val fresh : t -> edge
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(** Fresh edge, without constant. It is equal to no other edge. *)
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module EdgeTbl : Hashtbl.S with type key = edge
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val pp : ?printed:unit EdgeTbl.t ->
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Buffer.t -> edge -> unit
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(** Print the edge on the buffer. @param printed: sub-edges already
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printed. *)
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val fmt : Format.formatter -> edge -> unit
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val to_string : edge -> string
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end
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module type PARAM = sig
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type const
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val eq : const -> const -> bool
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val hash : const -> int
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val to_string : const -> string (* for printing *)
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end
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module Make(P : PARAM) = struct
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type const = P.const
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type edge =
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| Fresh of int
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| Const of const
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| Edge of edge array
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let rec eq e1 e2 = match e1, e2 with
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| Fresh _, Fresh _ -> e1 == e2
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| Const c1, Const c2 -> P.eq c1 c2
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| Edge a1, Edge a2 ->
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Array.length a1 = Array.length a2 &&
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begin try
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for i = 0 to Array.length a1 - 1 do
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if not (eq (Array.unsafe_get a1 i) (Array.unsafe_get a2 i))
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then raise Exit;
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done; true
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with Exit -> false
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end
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| _ -> false
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let rec hash e = match e with
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| Fresh i -> i
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| Const c -> P.hash c
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| Edge a ->
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let h = ref 0 in
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for i = 0 to Array.length a - 1 do
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h := max_int land (!h * 65599 + (hash (Array.unsafe_get a i)))
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done;
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!h
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(* hashtable on edges *)
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module EdgeTbl = Hashtbl.Make(struct
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type t = edge
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let equal = eq
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let hash = hash
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end)
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(* hashtable on edges * int *)
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module BackTbl = Hashtbl.Make(struct
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type t = edge * int
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let equal (e1, i1) (e2, i2) = i1 = i2 && eq e1 e2
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let hash (e, i) = i * 65599 + hash e
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end)
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(** Hypergraph: set of edges. We map each edge to other edges that point
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to it (knowing which ones it points to is trivial) *)
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type t = {
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edges : unit EdgeTbl.t;
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backref : edge BackTbl.t;
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parent : t option;
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mutable count : int; (* used for Fresh nodes *)
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self : edge;
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}
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let arity e = match e with
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| Fresh _
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| Const _ -> 0
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| Edge a -> Array.length a
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let nth e i = match e with
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| Fresh _
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| Const _ -> raise (Invalid_argument"HGraph.nth")
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| Edge a -> a.(i)
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let self g = g.self
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let make_graph ?parent () =
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let g = {
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parent;
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edges = EdgeTbl.create 15;
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backref = BackTbl.create 15;
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count = 1;
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self = Fresh 0;
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} in
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g
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(* add a backref from [e]'s sub-edges to [e] *)
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let _add_backrefs g e = match e with
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| Fresh _
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| Const _ -> assert false
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| Edge a ->
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for i = 0 to Array.length a - 1 do
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BackTbl.add g.backref (Array.unsafe_get a i, i) e
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done
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let make_edge g sub =
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if Array.length sub = 0 then raise (Invalid_argument "HGraph.make_edge");
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let e = Edge sub in
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(* add edge if not already present *)
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if not (EdgeTbl.mem g.edges e) then begin
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EdgeTbl.add g.edges e ();
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_add_backrefs g e
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end;
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e
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let make_const g c =
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let e = Const c in
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if not (EdgeTbl.mem g.edges e) then
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EdgeTbl.add g.edges e ();
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e
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let fresh g =
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let e = Fresh g.count in
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g.count <- g.count + 1;
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(* always new! *)
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EdgeTbl.add g.edges e ();
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e
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let pp ?(printed=EdgeTbl.create 7) buf e =
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let rec pp buf e = match e with
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| Fresh i -> Printf.bprintf buf "_e%d" i
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| Const c -> Buffer.add_string buf (P.to_string c)
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| Edge a ->
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if not (EdgeTbl.mem printed e) then begin
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EdgeTbl.add printed e ();
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Buffer.add_char buf '[';
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for i = 0 to Array.length a - 1 do
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if i > 0 then Buffer.add_char buf ' ';
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pp buf a.(i)
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done;
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Buffer.add_char buf ']'
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end
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in
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pp buf e
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let to_string e =
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let buf = Buffer.create 15 in
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pp buf e;
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Buffer.contents buf
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let fmt fmt e =
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Format.pp_print_string fmt (to_string e)
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end
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(** {2 Useful default} *)
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module DefaultParam = struct
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type const =
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| S of string
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| I of int
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type data = unit
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let eq c1 c2 = match c1, c2 with
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| S s1, S s2 -> s1 = s2
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| I i1, I i2 -> i1 = i2
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| _ -> false
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let hash = function
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| S s -> Hashtbl.hash s
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| I i -> i
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let to_string = function
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| S s -> s
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| I i -> string_of_int i
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let i i = I i
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let s s = S s
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end
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module Default = struct
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include Make(DefaultParam)
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exception EOI
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exception Error of string
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module Lexbuf = struct
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type t = {
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mutable s : string;
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mutable i : int;
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get : (unit -> string option);
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}
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let of_string s = { s; i=0; get = (fun () -> None); }
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let of_fun get = { s=""; i = 0; get; }
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let of_chan c =
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let s = String.make 64 ' ' in
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let get () =
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try
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let n = input c s 0 64 in
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Some (String.sub s 0 n)
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with End_of_file -> None
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in
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{ s = ""; i = 0; get; }
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end
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let rec _get_rec lb =
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if lb.Lexbuf.i >= String.length lb.Lexbuf.s
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then match lb.Lexbuf.get () with
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| None -> raise EOI
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| Some s' ->
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lb.Lexbuf.s <- s';
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lb.Lexbuf.i <- 0;
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_get_rec lb
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else lb.Lexbuf.s.[lb.Lexbuf.i]
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let _get lb =
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if lb.Lexbuf.i >= String.length lb.Lexbuf.s
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then _get_rec lb
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else lb.Lexbuf.s.[lb.Lexbuf.i]
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let _skip lb = lb.Lexbuf.i <- lb.Lexbuf.i + 1
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(* skip whitespace *)
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let rec _white lb =
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match _get lb with
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| ' ' | '\t' | '\n' -> _skip lb; _white lb
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| _ -> ()
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(* read lb, expecting the given char *)
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let _expect lb c =
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if _get lb = c
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then _skip lb
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else raise (Error (Printf.sprintf "expected %c" c))
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let rec __parse_edge g lb =
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_white lb;
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match _get lb with
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| '[' ->
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_skip lb;
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let sub = __parse_edges g [] lb in
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let sub = match sub with
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| [] -> raise (Error "parsed an empty list of sub-edges")
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| _ -> Array.of_list sub
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in
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_white lb;
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_expect lb ']';
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make_edge g sub
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| '0' .. '9' ->
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let i = _parse_int 0 lb in
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make_const g (DefaultParam.I i)
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| '_' ->
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_skip lb;
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fresh g
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| _ ->
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let s = _parse_str (Buffer.create 15) lb in
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make_const g (DefaultParam.S s)
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and __parse_edges g acc lb =
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_white lb;
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match _get lb with
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| ']' -> List.rev acc (* done *)
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| _ ->
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let e = __parse_edge g lb in
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__parse_edges g (e::acc) lb
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and _parse_int i lb =
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match _get lb with
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| ('0' .. '9') as c ->
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let n = Char.code c - Char.code '0' in
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_skip lb;
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_parse_int ((i * 10) + n) lb
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| _ -> i
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and _parse_str buf lb =
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match _get lb with
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| ' ' | '\t' | '\n' | ']' -> Buffer.contents buf (* done *)
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| '\\' ->
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(* must read next char *)
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_skip lb;
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Buffer.add_char buf (_get lb);
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_skip lb;
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_parse_str buf lb
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| c ->
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Buffer.add_char buf c;
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_skip lb;
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_parse_str buf lb
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(* parse one edge *)
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let parse_edge g lb =
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try `Ok (__parse_edge g lb)
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with
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| EOI -> `Error "unexpected end of input"
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| Error e -> `Error e
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let edge_of_string g s = parse_edge g (Lexbuf.of_string s)
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end
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