package hvsock
Bindings for Hyper-V AF_VSOCK
Install
Dune Dependency
Authors
Maintainers
Sources
1.0.2.tar.gz
sha256=93e9bba076c30b9a09b96b1a81a7d7fe9361bbcf713980d0a510cae7c65dbfe0
md5=d3ec27d96076075a6d2f949cc8ef3d32
doc/src/hvsock.lwt/flow_lwt_hvsock.ml.html
Source file flow_lwt_hvsock.ml
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(* * Copyright (C) 2015 David Scott <dave.scott@unikernel.com> * Copyright (C) 2016 Docker Inc * * Permission to use, copy, modify, and distribute this software for any * purpose with or without fee is hereby granted, provided that the above * copyright notice and this permission notice appear in all copies. * * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE. * *) open Lwt.Infix let src = let src = Logs.Src.create "flow_lwt_hvsock" ~doc:"AF_HYPERV flow" in Logs.Src.set_level src (Some Logs.Debug); src module Log = (val Logs.src_log src : Logs.LOG) type buffer = (char, Bigarray.int8_unsigned_elt, Bigarray.c_layout) Bigarray.Array1.t external stub_ba_send: Unix.file_descr -> buffer -> int -> int -> int = "stub_hvsock_ba_send" let cstruct_write fd b = stub_ba_send fd b.Cstruct.buffer b.Cstruct.off b.Cstruct.len external stub_ba_sendv: Unix.file_descr -> (buffer * int * int) list -> int = "stub_hvsock_ba_sendv" let cstruct_writev fd bs = let bs' = List.map (fun b -> b.Cstruct.buffer, b.Cstruct.off, b.Cstruct.len) bs in stub_ba_sendv fd bs' external stub_ba_recv: Unix.file_descr -> buffer -> int -> int -> int = "stub_hvsock_ba_recv" let cstruct_read fd b = stub_ba_recv fd b.Cstruct.buffer b.Cstruct.off b.Cstruct.len module Cstructs = struct type t = Cstruct.t list let pp_t ppf t = List.iter (fun t -> Format.fprintf ppf "[%d,%d](%d)" t.Cstruct.off t.Cstruct.len (Bigarray.Array1.dim t.Cstruct.buffer) ) t let len = List.fold_left (fun acc c -> Cstruct.len c + acc) 0 let err fmt = let b = Buffer.create 20 in (* for thread safety. *) let ppf = Format.formatter_of_buffer b in let k ppf = Format.pp_print_flush ppf (); invalid_arg (Buffer.contents b) in Format.kfprintf k ppf fmt let rec shift t x = if x = 0 then t else match t with | [] -> err "Cstructs.shift %a %d" pp_t t x | y :: ys -> let y' = Cstruct.len y in if y' > x then Cstruct.shift y x :: ys else shift ys (x - y') let sub t off len = let t' = shift t off in (* trim the length *) let rec trim acc ts remaining = match remaining, ts with | 0, _ -> List.rev acc | n, [] -> err "invalid bounds in Cstructs.sub %a off=%d len=%d" pp_t t off len | n, t :: ts -> let to_take = min (Cstruct.len t) n in (* either t is consumed and we only need ts, or t has data remaining in which case we're finished *) trim (Cstruct.sub t 0 to_take :: acc) ts (remaining - to_take) in trim [] t' len end module Histogram = struct type t = (int, int) Hashtbl.t (** A table of <bucket> to <count> *) let create () = Hashtbl.create 7 let add t size = let existing = if Hashtbl.mem t size then Hashtbl.find t size else 0 in Hashtbl.replace t size (existing + 1) let dump t = Printf.printf "length %d\n" (Hashtbl.length t); Hashtbl.iter (fun size n -> Printf.printf "%d %d\n" size n ) t; Printf.printf "%!" end module Make(Time: Mirage_time_lwt.S)(Fn: Lwt_hvsock.FN) = struct module Blocking_hvsock = Hvsock module Hvsock = Lwt_hvsock.Make(Time)(Fn) type 'a io = 'a Lwt.t type buffer = Cstruct.t type error = [ `Unix of Unix.error ] let pp_error ppf (`Unix e) = Fmt.string ppf (Unix.error_message e) type write_error = [ Mirage_flow.write_error | error ] let pp_write_error ppf = function |#Mirage_flow.write_error as e -> Mirage_flow.pp_write_error ppf e |#error as e -> pp_error ppf e let error_message = Unix.error_message type flow = { fd: Hvsock.t; read_buffers_max: int; read_max: int; mutable read_buffers: Cstruct.t list; mutable read_buffers_len: int; read_buffers_m: Mutex.t; read_buffers_c: Condition.t; mutable read_error: bool; read_histogram: Histogram.t; mutable write_buffers: Cstruct.t list; mutable write_buffers_len: int; write_buffers_m: Mutex.t; write_buffers_c: Condition.t; write_buffers_max: int; write_max: int; mutable write_flushed: bool; write_histogram: Histogram.t; mutable closed: bool; mutable write_error: bool; } let connect ?(message_size = 8192) ?(buffer_size = 262144) fd = let read_buffers_max = buffer_size in let read_max = message_size in let read_buffers = [] in let read_buffers_len = 0 in let read_buffers_m = Mutex.create () in let read_buffers_c = Condition.create () in let read_histogram = Histogram.create () in let read_error = false in let write_buffers = [] in let write_buffers_len = 0 in let write_buffers_m = Mutex.create () in let write_buffers_c = Condition.create () in let write_buffers_max = buffer_size in let write_max = message_size in let write_flushed = false in let write_histogram = Histogram.create () in let closed = false in let write_error = false in let t = { fd; read_buffers_max; read_max; read_buffers; read_buffers_len; read_buffers_m; read_buffers_c; read_error; write_buffers; write_buffers_len; write_buffers_m; write_buffers_c; closed; write_buffers_max; write_max; write_flushed; write_error; read_histogram; write_histogram } in let write_thread () = let fd = match Hvsock.to_fd fd with Some x -> x | None -> assert false in let get_buffers () = Mutex.lock write_buffers_m; while t.write_buffers = [] do Condition.wait write_buffers_c write_buffers_m done; let result = t.write_buffers in t.write_buffers <- []; t.write_buffers_len <- 0; Mutex.unlock write_buffers_m; Condition.broadcast write_buffers_c; List.rev result in try while not t.closed do let buffers = get_buffers () in let rec loop remaining = if Cstructs.len remaining = 0 then () else begin let to_write = min t.write_max (Cstructs.len remaining) in Histogram.add t.write_histogram to_write; let buf = Cstructs.sub remaining 0 to_write in let n = cstruct_writev fd buf in loop @@ Cstructs.shift remaining n end in loop buffers done; t.write_flushed <- true; Condition.broadcast write_buffers_c with e -> Log.err (fun f -> f "Flow write_thread caught: %s" (Printexc.to_string e)); t.write_error <- true; t.write_flushed <- true; Condition.broadcast write_buffers_c in let _ = Thread.create write_thread () in let read_thread () = let fd = match Hvsock.to_fd fd with Some x -> x | None -> assert false in let get_buffer () = Mutex.lock t.read_buffers_m; while t.read_buffers_len = t.read_buffers_max do Condition.wait t.read_buffers_c t.read_buffers_m done; let allowed = t.read_buffers_max - t.read_buffers_len in let buf = Cstruct.create allowed in Mutex.unlock t.read_buffers_m; buf in try while not t.closed do let buffer = get_buffer () in let rec loop remaining = if Cstruct.len remaining = 0 then () else begin let to_read = min t.read_max (Cstruct.len remaining) in let buf = Cstruct.sub remaining 0 to_read in Histogram.add t.read_histogram to_read; let n = cstruct_read fd buf in let data = Cstruct.sub remaining 0 n in Mutex.lock t.read_buffers_m; t.read_buffers <- t.read_buffers @ [ data ]; t.read_buffers_len <- t.read_buffers_len + (Cstruct.len data); Mutex.unlock t.read_buffers_m; Condition.broadcast t.read_buffers_c; loop @@ Cstruct.shift remaining n end in loop buffer done with e -> Log.err (fun f -> f "Flow read_thread caught: %s" (Printexc.to_string e)); t.read_error <- true; Condition.broadcast read_buffers_c in let _ = Thread.create read_thread () in t let detach f x = let fn = Fn.create f in Lwt.finalize (fun () -> Fn.fn fn x) (fun () -> Fn.destroy fn; Lwt.return_unit) let wait_write_flush t = Log.info (fun f -> f "wait_write_flush"); Mutex.lock t.write_buffers_m; while not t.write_flushed do Condition.wait t.write_buffers_c t.write_buffers_m done; Mutex.unlock t.write_buffers_m let close t = Log.warn (fun f -> f "FLOW.close called"); match t.closed with | false -> t.closed <- true; Condition.broadcast t.write_buffers_c; detach wait_write_flush t >>= fun () -> Hvsock.close t.fd | true -> Lwt.return () let wait_for_data flow n = Mutex.lock flow.read_buffers_m; while flow.read_buffers_len < n do Condition.wait flow.read_buffers_c flow.read_buffers_m; done; Mutex.unlock flow.read_buffers_m let read flow = if flow.closed || flow.read_error then Lwt.return (Ok `Eof) else begin Mutex.lock flow.read_buffers_m; let take () = let result = List.hd flow.read_buffers in flow.read_buffers <- List.tl flow.read_buffers; flow.read_buffers_len <- flow.read_buffers_len - (Cstruct.len result); Condition.broadcast flow.read_buffers_c; result in if flow.read_buffers = [] then begin Mutex.unlock flow.read_buffers_m; detach (wait_for_data flow) 1 >|= fun () -> (* Assume for now there's only one reader so no-one will steal the data *) Mutex.lock flow.read_buffers_m; let result = take () in Mutex.unlock flow.read_buffers_m; Ok (`Data result) end else begin let result = take () in Mutex.unlock flow.read_buffers_m; Lwt.return (Ok (`Data result)) end end let read_into flow buffer = (* Can we drop this function altogether? *) Log.err (fun f -> f "read_into not implemented"); failwith "not implemented read_into" let wait_for_space flow n = Mutex.lock flow.write_buffers_m; while (flow.write_buffers_len + n) > flow.write_buffers_max do Condition.wait flow.write_buffers_c flow.write_buffers_m; done; Mutex.unlock flow.write_buffers_m let writev flow bufs = if flow.closed || flow.write_error then Lwt.return (Error `Closed) else begin let len = List.fold_left (+) 0 (List.map Cstruct.len bufs) in Mutex.lock flow.write_buffers_m; let put () = flow.write_buffers <- (List.rev bufs) @ flow.write_buffers; flow.write_buffers_len <- flow.write_buffers_len + len; Condition.broadcast flow.write_buffers_c in if flow.write_buffers_len + len > flow.write_buffers_max then begin Mutex.unlock flow.write_buffers_m; detach (wait_for_space flow) len >|= fun () -> (* Assume for now there's only one writer so no-one will steal the space *) Mutex.lock flow.write_buffers_m; put (); Mutex.unlock flow.write_buffers_m; Ok () end else begin put (); Mutex.unlock flow.write_buffers_m; Lwt.return (Ok ()) end end let write flow buf = writev flow [ buf ] end
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