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feat: add Simple_pool, with the naive single-queue implementation
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161
src/simple_pool.ml
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161
src/simple_pool.ml
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include Runner
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let ( let@ ) = ( @@ )
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type state = {
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threads: Thread.t array;
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q: task Bb_queue.t; (** Queue for tasks. *)
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}
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(** internal state *)
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let[@inline] size_ (self : state) = Array.length self.threads
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let[@inline] num_tasks_ (self : state) : int = Bb_queue.size self.q
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(** Run [task] as is, on the pool. *)
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let run_direct_ (self : state) (task : task) : unit = Bb_queue.push self.q task
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let rec run_async_ (self : state) (task : task) : unit =
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let task' () =
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(* run [f()] and handle [suspend] in it *)
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Suspend_.with_suspend task ~run:(fun ~with_handler task ->
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if with_handler then
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run_async_ self task
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else
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run_direct_ self task)
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in
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run_direct_ self task'
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type around_task = AT_pair : (t -> 'a) * (t -> 'a -> unit) -> around_task
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let worker_thread_ (self : state) (runner : t) ~on_exn ~around_task : unit =
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let (AT_pair (before_task, after_task)) = around_task in
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let run_task task : unit =
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let _ctx = before_task runner in
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(* run the task now, catching errors *)
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(try task ()
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with e ->
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let bt = Printexc.get_raw_backtrace () in
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on_exn e bt);
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after_task runner _ctx
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in
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let main_loop () =
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let continue = ref true in
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while !continue do
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match Bb_queue.pop self.q with
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| task -> run_task task
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| exception Bb_queue.Closed -> continue := false
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done
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in
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try
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(* handle domain-local await *)
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Dla_.using ~prepare_for_await:Suspend_.prepare_for_await
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~while_running:main_loop
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with Bb_queue.Closed -> ()
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let default_thread_init_exit_ ~dom_id:_ ~t_id:_ () = ()
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let shutdown_ ~wait (self : state) : unit =
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Bb_queue.close self.q;
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if wait then Array.iter Thread.join self.threads
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type ('a, 'b) create_args =
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?on_init_thread:(dom_id:int -> t_id:int -> unit -> unit) ->
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?on_exit_thread:(dom_id:int -> t_id:int -> unit -> unit) ->
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?on_exn:(exn -> Printexc.raw_backtrace -> unit) ->
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?around_task:(t -> 'b) * (t -> 'b -> unit) ->
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?min:int ->
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?per_domain:int ->
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'a
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let create ?(on_init_thread = default_thread_init_exit_)
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?(on_exit_thread = default_thread_init_exit_) ?(on_exn = fun _ _ -> ())
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?around_task ?min:(min_threads = 1) ?(per_domain = 0) () : t =
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(* wrapper *)
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let around_task =
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match around_task with
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| Some (f, g) -> AT_pair (f, g)
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| None -> AT_pair (ignore, fun _ _ -> ())
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in
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(* number of threads to run *)
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let min_threads = max 1 min_threads in
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let num_domains = D_pool_.n_domains () in
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assert (num_domains >= 1);
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let num_threads = max min_threads (num_domains * per_domain) in
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(* make sure we don't bias towards the first domain(s) in {!D_pool_} *)
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let offset = Random.int num_domains in
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let pool =
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let dummy = Thread.self () in
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{ threads = Array.make num_threads dummy; q = Bb_queue.create () }
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in
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let runner =
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Runner.For_runner_implementors.create
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~shutdown:(fun ~wait () -> shutdown_ pool ~wait)
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~run_async:(fun f -> run_async_ pool f)
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~size:(fun () -> size_ pool)
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~num_tasks:(fun () -> num_tasks_ pool)
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()
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in
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(* temporary queue used to obtain thread handles from domains
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on which the thread are started. *)
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let receive_threads = Bb_queue.create () in
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(* start the thread with index [i] *)
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let start_thread_with_idx i =
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let dom_idx = (offset + i) mod num_domains in
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(* function run in the thread itself *)
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let main_thread_fun () : unit =
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let thread = Thread.self () in
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let t_id = Thread.id thread in
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on_init_thread ~dom_id:dom_idx ~t_id ();
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let run () = worker_thread_ pool runner ~on_exn ~around_task in
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(* now run the main loop *)
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Fun.protect run ~finally:(fun () ->
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(* on termination, decrease refcount of underlying domain *)
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D_pool_.decr_on dom_idx);
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on_exit_thread ~dom_id:dom_idx ~t_id ()
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in
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(* function called in domain with index [i], to
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create the thread and push it into [receive_threads] *)
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let create_thread_in_domain () =
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let thread = Thread.create main_thread_fun () in
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(* send the thread from the domain back to us *)
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Bb_queue.push receive_threads (i, thread)
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in
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D_pool_.run_on dom_idx create_thread_in_domain
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in
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(* start all threads, placing them on the domains
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according to their index and [offset] in a round-robin fashion. *)
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for i = 0 to num_threads - 1 do
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start_thread_with_idx i
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done;
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(* receive the newly created threads back from domains *)
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for _j = 1 to num_threads do
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let i, th = Bb_queue.pop receive_threads in
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pool.threads.(i) <- th
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done;
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runner
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let with_ ?on_init_thread ?on_exit_thread ?on_exn ?around_task ?min ?per_domain
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() f =
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let pool =
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create ?on_init_thread ?on_exit_thread ?on_exn ?around_task ?min ?per_domain
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()
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in
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let@ () = Fun.protect ~finally:(fun () -> shutdown pool) in
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f pool
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36
src/simple_pool.mli
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36
src/simple_pool.mli
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@ -0,0 +1,36 @@
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(** A simple thread pool.
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This uses a single blocking queue to manage tasks, it's very
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simple and reliable. Like {!Pool} it distributes a fixed number
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of workers over several domains.
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@since NEXT_RELEASE *)
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include module type of Runner
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type ('a, 'b) create_args =
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?on_init_thread:(dom_id:int -> t_id:int -> unit -> unit) ->
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?on_exit_thread:(dom_id:int -> t_id:int -> unit -> unit) ->
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?on_exn:(exn -> Printexc.raw_backtrace -> unit) ->
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?around_task:(t -> 'b) * (t -> 'b -> unit) ->
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?min:int ->
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?per_domain:int ->
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'a
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(** Arguments used in {!create}. See {!create} for explanations. *)
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val create : (unit -> t, _) create_args
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(** [create ()] makes a new thread pool.
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@param on_init_thread called at the beginning of each new thread in the pool.
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@param min minimum size of the pool. See {!Pool.create_args}.
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@param per_domain is the number of threads allocated per domain in the fixed
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domain pool. See {!Pool.create_args}.
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@param on_exit_thread called at the end of each worker thread in the pool.
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@param around_task a pair of [before, after] functions
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ran around each task. See {!Pool.create_args}.
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*)
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val with_ : (unit -> (t -> 'a) -> 'a, _) create_args
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(** [with_ () f] calls [f pool], where [pool] is obtained via {!create}.
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When [f pool] returns or fails, [pool] is shutdown and its resources
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are released.
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Most parameters are the same as in {!create}. *)
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