mirror of
https://github.com/c-cube/ocaml-containers.git
synced 2025-12-06 03:05:28 -05:00
375 lines
8.1 KiB
OCaml
375 lines
8.1 KiB
OCaml
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(* This file is free software, part of containers. See file "license" for more details. *)
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(** {1 Caches} *)
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type 'a equal = 'a -> 'a -> bool
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type 'a hash = 'a -> int
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let default_eq_ = Pervasives.(=)
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let default_hash_ = Hashtbl.hash
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(** {2 Value interface} *)
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(** Invariants:
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- after [cache.set x y], [get cache x] must return [y] or raise [Not_found]
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- [cache.set x y] is only called if [get cache x] fails, never if [x] is already bound
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- [cache.size()] must be positive and correspond to the number of items in [cache.iter]
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- [cache.iter f] calls [f x y] with every [x] such that [cache.get x = y]
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- after [cache.clear()], [cache.get x] fails for every [x]
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*)
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type ('a,'b) t = {
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set : 'a -> 'b -> unit;
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get : 'a -> 'b; (* or raise Not_found *)
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size : unit -> int;
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iter : ('a -> 'b -> unit) -> unit;
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clear : unit -> unit;
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}
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type ('a, 'b) callback = in_cache:bool -> 'a -> 'b -> unit
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let clear c = c.clear ()
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let add c x y =
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try
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(* check that x is not bound (see invariants) *)
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let _ = c.get x in
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false
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with Not_found ->
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c.set x y;
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true
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let default_callback_ ~in_cache:_ _ _ = ()
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let with_cache ?(cb=default_callback_) c f x =
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try
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let y = c.get x in
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cb ~in_cache:true x y;
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y
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with Not_found ->
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let y = f x in
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c.set x y;
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cb ~in_cache:false x y;
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y
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let with_cache_rec ?(cb=default_callback_) c f =
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let rec f' x = with_cache ~cb c (f f') x in
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f'
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(*$R
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let c = unbounded 256 in
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let fib = with_cache_rec c
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(fun self n -> match n with
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| 1 | 2 -> 1
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| _ -> self (n-1) + self (n-2)
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)
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in
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assert_equal 55 (fib 10);
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assert_equal 832040 (fib 30);
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assert_equal 12586269025 (fib 50);
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assert_equal 190392490709135 (fib 70)
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*)
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let size c = c.size ()
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let iter c f = c.iter f
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let dummy = {
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set=(fun _ _ -> ());
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get=(fun _ -> raise Not_found);
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clear=(fun _ -> ());
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size=(fun _ -> 0);
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iter=(fun _ -> ());
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}
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module Linear = struct
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type ('a,'b) bucket =
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| Empty
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| Pair of 'a * 'b
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type ('a,'b) t = {
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eq : 'a equal;
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arr : ('a,'b) bucket array;
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mutable i : int; (* index for next assertion, cycles through *)
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}
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let make eq size =
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assert (size>0);
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{arr=Array.make size Empty; eq; i=0; }
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let clear c =
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Array.fill c.arr 0 (Array.length c.arr) Empty;
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c.i <- 0
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(* linear lookup *)
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let rec search_ c i x =
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if i=Array.length c.arr then raise Not_found;
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match c.arr.(i) with
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| Pair (x', y) when c.eq x x' -> y
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| Pair _
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| Empty -> search_ c (i+1) x
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let get c x = search_ c 0 x
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let set c x y =
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c.arr.(c.i) <- Pair (x,y);
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c.i <- (c.i + 1) mod Array.length c.arr
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let iter c f =
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Array.iter (function Pair (x,y) -> f x y | Empty -> ()) c.arr
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let size c () =
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let r = ref 0 in
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iter c (fun _ _ -> incr r);
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!r
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end
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let linear ?(eq=default_eq_) size =
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let size = max size 1 in
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let arr = Linear.make eq size in
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{ get=(fun x -> Linear.get arr x);
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set=(fun x y -> Linear.set arr x y);
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clear=(fun () -> Linear.clear arr);
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size=Linear.size arr;
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iter=Linear.iter arr;
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}
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module Replacing = struct
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type ('a,'b) bucket =
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| Empty
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| Pair of 'a * 'b
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type ('a,'b) t = {
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eq : 'a equal;
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hash : 'a hash;
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arr : ('a,'b) bucket array;
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mutable c_size : int;
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}
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let make eq hash size =
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assert (size>0);
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{arr=Array.make size Empty; eq; hash; c_size=0 }
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let clear c =
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c.c_size <- 0;
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Array.fill c.arr 0 (Array.length c.arr) Empty
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let get c x =
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let i = c.hash x mod Array.length c.arr in
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match c.arr.(i) with
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| Pair (x', y) when c.eq x x' -> y
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| Pair _
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| Empty -> raise Not_found
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let is_empty = function
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| Empty -> true
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| Pair _ -> false
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let set c x y =
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let i = c.hash x mod Array.length c.arr in
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if is_empty c.arr.(i) then c.c_size <- c.c_size + 1;
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c.arr.(i) <- Pair (x,y)
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let iter c f =
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Array.iter (function Empty -> () | Pair (x,y) -> f x y) c.arr
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let size c () = c.c_size
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end
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let replacing ?(eq=default_eq_) ?(hash=default_hash_) size =
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let c = Replacing.make eq hash size in
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{ get=(fun x -> Replacing.get c x);
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set=(fun x y -> Replacing.set c x y);
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clear=(fun () -> Replacing.clear c);
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size=Replacing.size c;
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iter=Replacing.iter c;
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}
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module type HASH = sig
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type t
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val equal : t equal
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val hash : t hash
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end
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module LRU(X:HASH) = struct
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type key = X.t
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module H = Hashtbl.Make(X)
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type 'a t = {
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table : 'a node H.t; (* hashtable key -> node *)
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mutable first : 'a node option;
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size : int; (* max size *)
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}
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and 'a node = {
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mutable key : key;
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mutable value : 'a;
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mutable next : 'a node;
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mutable prev : 'a node;
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} (** Meta data for the value, making a chained list *)
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let make size =
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assert (size > 0);
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{ table = H.create size;
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size;
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first=None;
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}
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let clear c =
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H.clear c.table;
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c.first <- None;
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()
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(* take first from queue *)
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let take_ c =
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match c.first with
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| Some n when n.next == n ->
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(* last element *)
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c.first <- None;
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n
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| Some n ->
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c.first <- Some n.next;
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n.prev.next <- n.next;
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n.next.prev <- n.prev;
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n
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| None ->
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failwith "LRU: empty queue"
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(* push at back of queue *)
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let push_ c n =
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match c.first with
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| None ->
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n.next <- n;
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n.prev <- n;
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c.first <- Some n
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| Some n1 when n1==n -> ()
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| Some n1 ->
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n.prev <- n1.prev;
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n.next <- n1;
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n1.prev.next <- n;
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n1.prev <- n
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(* remove from queue *)
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let remove_ n =
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n.prev.next <- n.next;
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n.next.prev <- n.prev
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(* Replace least recently used element of [c] by x->y *)
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let replace_ c x y =
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(* remove old *)
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let n = take_ c in
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H.remove c.table n.key;
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(* add x->y, at the back of the queue *)
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n.key <- x;
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n.value <- y;
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H.add c.table x n;
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push_ c n;
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()
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(* Insert x->y in the cache, increasing its entry count *)
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let insert_ c x y =
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let rec n = {
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key = x;
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value = y;
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next = n;
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prev = n;
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} in
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H.add c.table x n;
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push_ c n;
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()
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let get c x =
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let n = H.find c.table x in
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(* put n at the back of the queue *)
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remove_ n;
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push_ c n;
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n.value
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let set c x y =
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let len = H.length c.table in
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assert (len <= c.size);
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if len = c.size
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then replace_ c x y
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else insert_ c x y
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let size c () = H.length c.table
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let iter c f =
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H.iter (fun x node -> f x node.value) c.table
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end
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let lru (type a) ?(eq=default_eq_) ?(hash=default_hash_) size =
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let module L = LRU(struct
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type t = a
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let equal = eq
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let hash = hash
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end) in
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let c = L.make size in
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{ get=(fun x -> L.get c x);
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set=(fun x y -> L.set c x y);
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clear=(fun () -> L.clear c);
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size=L.size c;
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iter=L.iter c;
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}
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(*$T
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let eq (i1,_)(i2,_) = i1=i2 and hash (i,_) = CCInt.hash i in \
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let c = lru ~eq ~hash 2 in \
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ignore (with_cache c CCFun.id (1, true)); \
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ignore (with_cache c CCFun.id (1, false)); \
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with_cache c CCFun.id (1, false) = (1, true)
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*)
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(*$T
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let f = (let r = ref 0 in fun _ -> incr r; !r) in \
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let c = lru 2 in \
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let res1 = with_cache c f 1 in \
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let res2 = with_cache c f 2 in \
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let res3 = with_cache c f 3 in \
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let res1_bis = with_cache c f 1 in \
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res1 <> res2 && res2 <> res3 && res3 <> res1_bis && res1_bis <> res1
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*)
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(*$R
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let f = (let r = ref 0 in fun _ -> incr r; !r) in
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let c = lru 2 in
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let x = with_cache c f () in
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assert_equal 1 x;
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assert_equal 1 (size c);
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clear c ;
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assert_equal 0 (size c);
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let y = with_cache c f () in
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assert_equal 2 y ;
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*)
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module UNBOUNDED(X:HASH) = struct
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module H = Hashtbl.Make(X)
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let make size =
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assert (size > 0);
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H.create size
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let clear c = H.clear c
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let get c x = H.find c x
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let set c x y = H.replace c x y
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let size c () = H.length c
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let iter c f = H.iter f c
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end
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let unbounded (type a) ?(eq=default_eq_) ?(hash=default_hash_) size =
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let module C = UNBOUNDED(struct
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type t = a
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let equal = eq
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let hash = hash
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end) in
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let c = C.make size in
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{ get=(fun x -> C.get c x);
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set=(fun x y -> C.set c x y);
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clear=(fun () -> C.clear c);
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iter=C.iter c;
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size=C.size c;
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}
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