package eio
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>
Effect-based direct-style IO API for OCaml
Install
dune-project
Dependency
Authors
Maintainers
Sources
eio-1.4.tbz
sha256=ba11ad486f492130dbb486f2b3bdc4905643f10016806ddf86e9a34e4346aaa5
sha512=57ef2c137ccdc26d8029e636b6a4ee92da7c6b2f35954946bd56ca595d6947a8ec42f6f83f8552f73d6719e6ce2314cae2e2fad1686a387522935e6f90e9a8d9
doc/src/eio/net.ml.html
Source file net.ml
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 155 156 157 158 159 160 161 162 163 164 165 166 167 168 169 170 171 172 173 174 175 176 177 178 179 180 181 182 183 184 185 186 187 188 189 190 191 192 193 194 195 196 197 198 199 200 201 202 203 204 205 206 207 208 209 210 211 212 213 214 215 216 217 218 219 220 221 222 223 224 225 226 227 228 229 230 231 232 233 234 235 236 237 238 239 240 241 242 243 244 245 246 247 248 249 250 251 252 253 254 255 256 257 258 259 260 261 262 263 264 265 266 267 268 269 270 271 272 273 274 275 276 277 278 279 280 281 282 283 284 285 286 287 288 289 290 291 292 293 294 295 296 297 298 299 300 301 302 303 304 305 306 307 308 309 310 311 312 313 314 315 316 317 318 319 320 321 322 323 324 325 326 327 328 329 330 331 332 333 334 335 336 337 338 339 340 341 342 343 344 345 346 347 348 349 350 351 352 353 354 355 356 357 358 359 360 361 362 363 364 365 366 367 368 369 370 371 372 373 374 375 376 377 378 379 380 381 382 383 384 385 386 387 388 389 390 391 392 393 394 395 396 397 398 399 400 401 402 403 404 405 406 407 408 409 410 411 412 413 414 415 416 417 418 419 420 421 422 423 424 425 426 427 428 429 430 431 432 433 434 435 436 437 438 439 440 441 442 443 444 445 446 447 448 449 450 451 452 453 454 455 456 457 458 459 460 461 462 463 464 465 466 467 468 469 470 471 472 473 474 475 476 477 478 479 480 481 482 483 484 485 486 487 488 489 490 491 492 493 494 495 496 497 498 499 500 501 502 503 504 505 506 507 508 509 510 511 512 513 514 515 516 517 518 519 520 521 522 523 524 525 526 527 528 529 530 531 532 533 534 535 536 537 538 539 540 541 542 543 544 545 546 547 548 549 550 551 552 553 554 555 556 557 558 559 560 561 562 563 564 565 566 567 568 569 570 571 572 573 574 575 576 577 578 579 580 581 582 583 584 585 586 587 588 589 590 591 592 593 594 595 596 597 598 599 600 601 602 603 604 605 606 607 608 609 610 611 612 613open Std type connection_failure = | Refused of Exn.Backend.t | Timeout module Getaddrinfo_error = struct (* keep in sync with C stubs *) type t = | UNKNOWN | ADDRFAMILY | AGAIN | BADFLAGS | BADHINTS | FAIL | FAMILY | MEMORY | NODATA | NONAME | OVERFLOW | PROTOCOL | SERVICE | SOCKTYPE let to_tag = function | UNKNOWN -> "UNKNOWN" | ADDRFAMILY -> "ADDRFAMILY" | AGAIN -> "AGAIN" | BADFLAGS -> "BADFLAGS" | BADHINTS -> "BADHINTS" | FAIL -> "FAIL" | FAMILY -> "FAMILY" | MEMORY -> "MEMORY" | NODATA -> "NODATA" | NONAME -> "NONAME" | OVERFLOW -> "OVERFLOW" | PROTOCOL -> "PROTOCOL" | SERVICE -> "SERVICE" | SOCKTYPE -> "SOCKTYPE" let to_message = function | ADDRFAMILY -> "address family for name not supported" | AGAIN -> "temporary failure in name resolution" | BADFLAGS -> "invalid value for ai_flags" | BADHINTS -> "invalid value for hints" | FAIL -> "non-recoverable failure in name resolution" | FAMILY -> "ai_family not supported" | MEMORY -> "memory allocation failure" | NODATA -> "no address associated with name" | NONAME -> "name or service is not known" | OVERFLOW -> "argument buffer overflow" | PROTOCOL -> "resolved protocol is unknown" | SERVICE -> "service not supported for ai_socktype" | SOCKTYPE -> "ai_socktype not supported" | UNKNOWN -> "unknown error" let pp f t = Fmt.pf f "%s (%s)" (to_tag t) (to_message t) end type error = | Connection_reset of Exn.Backend.t | Connection_failure of connection_failure | Address_lookup_failed of Getaddrinfo_error.t | Invalid_option type Exn.err += E of error let err e = Exn.create (E e) let () = Exn.register_pp (fun f -> function | E e -> Fmt.string f "Net "; begin match e with | Connection_reset e -> Fmt.pf f "Connection_reset %a" Exn.Backend.pp e | Connection_failure Refused e -> Fmt.pf f "Connection_failure Refused %a" Exn.Backend.pp e | Connection_failure Timeout -> Fmt.pf f "Connection_failure Timeout" | Invalid_option -> Fmt.string f "Invalid_option" | Address_lookup_failed e -> Fmt.pf f "Address_lookup_failed %a" Getaddrinfo_error.pp e end; true | _ -> false ) module Ipaddr = struct type 'a t = string (* = [Unix.inet_addr], but avoid a Unix dependency here *) module V4 = struct let any = "\000\000\000\000" let loopback = "\127\000\000\001" let pp f t = Fmt.pf f "%d.%d.%d.%d" (Char.code t.[0]) (Char.code t.[1]) (Char.code t.[2]) (Char.code t.[3]) end module V6 = struct let any = "\000\000\000\000\000\000\000\000\000\000\000\000\000\000\000\000" let loopback = "\000\000\000\000\000\000\000\000\000\000\000\000\000\000\000\001" let to_int16 t = let get i = Char.code (t.[i]) in let pair i = (get i lsl 8) lor (get (i + 1)) in List.init 8 (fun i -> pair (i * 2)) (* [calc_elide elide zeros acc parts] finds the best place for the "::" when printing an IPv6 address. Returns [None, rev t] if there are no pairs of zeros, or [Some (-n), rev t'] where [n] is the length of the longest run of zeros and [t'] is [t] with all runs of zeroes replaced with [-len_run]. *) let calc_elide t = (* [elide] is the negative of the length of the best previous run of zeros seen. [zeros] is the current run. [acc] is the values seen so far, with runs of zeros replaced by a negative value giving the length of the run. *) let rec loop elide zeros acc = function | 0 :: xs -> loop elide (zeros - 1) acc xs | n :: xs when zeros = 0 -> loop elide 0 (n :: acc) xs | n :: xs -> loop (min elide zeros) 0 (n :: zeros :: acc) xs | [] -> let elide = min elide zeros in let parts = if zeros = 0 then acc else zeros :: acc in ((if elide < -1 then Some elide else None), List.rev parts) in loop 0 0 [] t let rec cons_zeros l x = if x >= 0 then l else cons_zeros (Some 0 :: l) (x + 1) let elide l = let rec aux ~elide = function | [] -> [] | x :: xs when x >= 0 -> Some x :: aux ~elide xs | x :: xs when Some x = elide -> None :: aux ~elide:None xs | z :: xs -> cons_zeros (aux ~elide xs) z in let elide, l = calc_elide l in assert (match elide with Some x when x < -8 -> false | _ -> true); aux ~elide l (* Based on https://github.com/mirage/ocaml-ipaddr/ See http://tools.ietf.org/html/rfc5952 *) let pp f t = let comp = to_int16 t in let v4 = match comp with [0; 0; 0; 0; 0; 0xffff; _; _] -> true | _ -> false in let l = elide comp in let rec fill = function | [ Some hi; Some lo ] when v4 -> Fmt.pf f "%d.%d.%d.%d" (hi lsr 8) (hi land 0xff) (lo lsr 8) (lo land 0xff) | None :: xs -> Fmt.string f "::"; fill xs | [ Some n ] -> Fmt.pf f "%x" n | Some n :: None :: xs -> Fmt.pf f "%x::" n; fill xs | Some n :: xs -> Fmt.pf f "%x:" n; fill xs | [] -> () in fill l end type v4v6 = [`V4 | `V6] t let fold ~v4 ~v6 t = match String.length t with | 4 -> v4 t | 16 -> v6 t | _ -> assert false let of_raw t = match String.length t with | 4 | 16 -> t | x -> Fmt.invalid_arg "An IP address must be either 4 or 16 bytes long (%S is %d bytes)" t x let pp f = fold ~v4:(V4.pp f) ~v6:(V6.pp f) let pp_for_uri f = fold ~v4:(V4.pp f) ~v6:(Fmt.pf f "[%a]" V6.pp) end module Sockaddr = struct type stream = [ | `Unix of string | `Tcp of Ipaddr.v4v6 * int ] type datagram = [ | `Udp of Ipaddr.v4v6 * int | `Unix of string ] type t = [ stream | datagram ] let pp f = function | `Unix path -> Format.fprintf f "unix:%s" path | `Tcp (addr, port) -> Format.fprintf f "tcp:%a:%d" Ipaddr.pp_for_uri addr port | `Udp (addr, port) -> Format.fprintf f "udp:%a:%d" Ipaddr.pp_for_uri addr port end module Sockopt = struct type _ t = .. type printer_fn = { get : 'a. 'a t -> (string * 'a Fmt.t) option } [@@unboxed] let printers = Atomic.make [] let rec register_printer fn = let prev = Atomic.get printers in let next = fn :: prev in if not (Atomic.compare_and_set printers prev next) then register_printer fn let find_printer x = let rec aux = function | [] -> "UNKNOWN", Fmt.any "?" | { get } :: tl -> match get x with | None -> aux tl | Some s -> s in aux (Atomic.get printers) let pp f opt = let name, _ = find_printer opt in Fmt.string f name let pp_binding f (opt, v) = let name, pp = find_printer opt in Fmt.pf f "%s = %a" name pp v type _ t += | SO_DEBUG : bool t | SO_BROADCAST : bool t | SO_REUSEADDR : bool t | SO_KEEPALIVE : bool t | SO_DONTROUTE : bool t | SO_OOBINLINE : bool t | TCP_NODELAY : bool t | IPV6_ONLY : bool t | SO_REUSEPORT : bool t | SO_SNDBUF : int t | SO_RCVBUF : int t | SO_RCVLOWAT : int t | SO_SNDLOWAT : int t | SO_LINGER : int option t | SO_RCVTIMEO : float t | SO_SNDTIMEO : float t type _ t += | TCP_CORK : bool t | TCP_KEEPIDLE : int t | TCP_KEEPINTVL : int t | TCP_KEEPCNT : int t | TCP_USER_TIMEOUT : int t | TCP_MAXSEG : int t | TCP_LINGER2 : int option t | TCP_DEFER_ACCEPT : int t | TCP_CONGESTION : string t | TCP_SYNCNT : int t | TCP_WINDOW_CLAMP : int t | TCP_QUICKACK : bool t | TCP_FASTOPEN : int t | IP_FREEBIND : bool t | IP_BIND_ADDRESS_NO_PORT : bool t | IP_LOCAL_PORT_RANGE : (int * int) t | IP_TTL : int t | IP_MTU : int t | IP_MTU_DISCOVER : [`Want | `Dont | `Do | `Probe] t let () = let pp_mtu_discover f v = Fmt.string f @@ match v with | `Want -> "Want" | `Dont -> "Dont" | `Do -> "Do" | `Probe -> "Probe" in let get : type a. a t -> (string * a Fmt.t) option = function | SO_DEBUG -> Some ("SO_DEBUG", Fmt.bool) | SO_BROADCAST -> Some ("SO_BROADCAST", Fmt.bool) | SO_REUSEADDR -> Some ("SO_REUSEADDR", Fmt.bool) | SO_KEEPALIVE -> Some ("SO_KEEPALIVE", Fmt.bool) | SO_DONTROUTE -> Some ("SO_DONTROUTE", Fmt.bool) | SO_OOBINLINE -> Some ("SO_OOBINLINE", Fmt.bool) | TCP_NODELAY -> Some ("TCP_NODELAY", Fmt.bool) | IPV6_ONLY -> Some ("IPV6_ONLY", Fmt.bool) | SO_REUSEPORT -> Some ("SO_REUSEPORT", Fmt.bool) | SO_SNDBUF -> Some ("SO_SNDBUF", Fmt.int) | SO_RCVBUF -> Some ("SO_RCVBUF", Fmt.int) | SO_RCVLOWAT -> Some ("SO_RCVLOWAT", Fmt.int) | SO_SNDLOWAT -> Some ("SO_SNDLOWAT", Fmt.int) | SO_LINGER -> Some ("SO_LINGER", Fmt.(option ~none:(any "<none>") int)) | SO_RCVTIMEO -> Some ("SO_RCVTIMEO", Fmt.float) | SO_SNDTIMEO -> Some ("SO_SNDTIMEO", Fmt.float) | TCP_CORK -> Some ("TCP_CORK", Fmt.bool) | TCP_KEEPIDLE -> Some ("TCP_KEEPIDLE", Fmt.int) | TCP_KEEPINTVL -> Some ("TCP_KEEPINTVL", Fmt.int) | TCP_KEEPCNT -> Some ("TCP_KEEPCNT", Fmt.int) | TCP_USER_TIMEOUT -> Some ("TCP_USER_TIMEOUT", Fmt.int) | TCP_MAXSEG -> Some ("TCP_MAXSEG", Fmt.int) | TCP_LINGER2 -> Some ("TCP_LINGER2", Fmt.(option ~none:(any "<none>") int)) | TCP_DEFER_ACCEPT -> Some ("TCP_DEFER_ACCEPT", Fmt.int) | TCP_CONGESTION -> Some ("TCP_CONGESTION", Fmt.string) | TCP_SYNCNT -> Some ("TCP_SYNCNT", Fmt.int) | TCP_WINDOW_CLAMP -> Some ("TCP_WINDOW_CLAMP", Fmt.int) | TCP_QUICKACK -> Some ("TCP_QUICKACK", Fmt.bool) | TCP_FASTOPEN -> Some ("TCP_FASTOPEN", Fmt.int) | IP_FREEBIND -> Some ("IP_FREEBIND", Fmt.bool) | IP_BIND_ADDRESS_NO_PORT -> Some ("IP_BIND_ADDRESS_NO_PORT", Fmt.bool) | IP_LOCAL_PORT_RANGE -> Some ("IP_LOCAL_PORT_RANGE", Fmt.(Dump.pair int int)) | IP_TTL -> Some ("IP_TTL", Fmt.int) | IP_MTU -> Some ("IP_MTU", Fmt.int) | IP_MTU_DISCOVER -> Some ("IP_MTU_DISCOVER", pp_mtu_discover) | _ -> None in register_printer { get } end type socket_ty = [`Socket | `Close] type 'a socket = ([> socket_ty] as 'a) r type 'tag stream_socket_ty = [`Stream | `Platform of 'tag | `Shutdown | socket_ty | Flow.source_ty | Flow.sink_ty] type 'a stream_socket = 'a r constraint 'a = [> [> `Generic] stream_socket_ty] type 'tag listening_socket_ty = [ `Accept | `Platform of 'tag | socket_ty] type 'a listening_socket = 'a r constraint 'a = [> [> `Generic] listening_socket_ty] type 'a connection_handler = 'a stream_socket -> Sockaddr.stream -> unit type 'tag datagram_socket_ty = [`Datagram | `Platform of 'tag | `Shutdown | socket_ty] type 'a datagram_socket = 'a r constraint 'a = [> [> `Generic] datagram_socket_ty] type 'tag ty = [`Network | `Platform of 'tag] type 'a t = 'a r constraint 'a = [> [> `Generic] ty] module Pi = struct module type SOCKET = sig type t val setsockopt : t -> 'a Sockopt.t -> 'a -> unit val getsockopt : t -> 'a Sockopt.t -> 'a end type (_, _, _) Resource.pi += | Socket : ('t, (module SOCKET with type t = 't), [> `Socket]) Resource.pi module type STREAM_SOCKET = sig type tag include Flow.Pi.SHUTDOWN include Flow.Pi.SOURCE with type t := t include Flow.Pi.SINK with type t := t include SOCKET with type t := t val close : t -> unit end let stream_socket (type t tag) (module X : STREAM_SOCKET with type t = t and type tag = tag) = Resource.handler @@ H (Resource.Close, X.close) :: H (Socket, (module X)) :: Resource.bindings (Flow.Pi.two_way (module X)) module type DATAGRAM_SOCKET = sig type tag include Flow.Pi.SHUTDOWN include SOCKET with type t := t val send : t -> ?dst:Sockaddr.datagram -> Cstruct.t list -> unit val recv : t -> Cstruct.t -> Sockaddr.datagram * int val close : t -> unit end type (_, _, _) Resource.pi += | Datagram_socket : ('t, (module DATAGRAM_SOCKET with type t = 't), [> _ datagram_socket_ty]) Resource.pi let datagram_socket (type t tag) (module X : DATAGRAM_SOCKET with type t = t and type tag = tag) = Resource.handler @@ Resource.bindings (Flow.Pi.shutdown (module X)) @ [ H (Socket, (module X)); H (Datagram_socket, (module X)); H (Resource.Close, X.close) ] module type LISTENING_SOCKET = sig type t type tag include SOCKET with type t := t val accept : t -> sw:Switch.t -> tag stream_socket_ty r * Sockaddr.stream val close : t -> unit val listening_addr : t -> Sockaddr.stream end type (_, _, _) Resource.pi += | Listening_socket : ('t, (module LISTENING_SOCKET with type t = 't and type tag = 'tag), [> 'tag listening_socket_ty]) Resource.pi let listening_socket (type t tag) (module X : LISTENING_SOCKET with type t = t and type tag = tag) = Resource.handler [ H (Resource.Close, X.close); H (Socket, (module X)); H (Listening_socket, (module X)) ] module type NETWORK = sig type t type tag val listen : t -> reuse_addr:bool -> reuse_port:bool -> backlog:int -> sw:Switch.t -> Sockaddr.stream -> tag listening_socket_ty r val connect : t -> sw:Switch.t -> Sockaddr.stream -> tag stream_socket_ty r val datagram_socket : t -> reuse_addr:bool -> reuse_port:bool -> sw:Switch.t -> [Sockaddr.datagram | `UdpV4 | `UdpV6] -> tag datagram_socket_ty r val getaddrinfo : t -> service:string -> string -> Sockaddr.t list val getnameinfo : t -> Sockaddr.t -> (string * string) end type (_, _, _) Resource.pi += | Network : ('t, (module NETWORK with type t = 't and type tag = 'tag), [> 'tag ty]) Resource.pi let network (type t tag) (module X : NETWORK with type t = t and type tag = tag) = Resource.handler [ H (Network, (module X)); ] end let accept ~sw (type tag) (Resource.T (t, ops) : [> tag listening_socket_ty] r) = let module X = (val (Resource.get ops Pi.Listening_socket)) in X.accept t ~sw let accept_fork ~sw (t : [> 'a listening_socket_ty] r) ~on_error handle = let child_started = ref false in let flow, addr = accept ~sw t in Fun.protect ~finally:(fun () -> if !child_started = false then Flow.close flow) (fun () -> Fiber.fork ~sw (fun () -> match child_started := true; handle (flow :> 'a stream_socket_ty r) addr with | x -> Flow.close flow; x | exception (Cancel.Cancelled _ as ex) -> Flow.close flow; raise ex | exception ex -> Flow.close flow; on_error (Exn.add_context ex "handling connection from %a" Sockaddr.pp addr) ) ) let setsockopt (Resource.T (t, ops)) opt v = let module X = (val (Resource.get ops Pi.Socket)) in try X.setsockopt t opt v with Exn.Io _ as ex -> let bt = Printexc.get_raw_backtrace () in Exn.reraise_with_context ex bt "setting socket option %a" Sockopt.pp_binding (opt, v) let getsockopt (Resource.T (t, ops)) opt = let module X = (val (Resource.get ops Pi.Socket)) in try X.getsockopt t opt with Exn.Io _ as ex -> let bt = Printexc.get_raw_backtrace () in Exn.reraise_with_context ex bt "getting socket option %a" Sockopt.pp opt let listening_addr (type tag) (Resource.T (t, ops) : [> tag listening_socket_ty] r) = let module X = (val (Resource.get ops Pi.Listening_socket)) in X.listening_addr t let send (Resource.T (t, ops)) ?dst bufs = let module X = (val (Resource.get ops Pi.Datagram_socket)) in X.send t ?dst bufs let recv (Resource.T (t, ops)) buf = let module X = (val (Resource.get ops Pi.Datagram_socket)) in X.recv t buf let listen (type tag) ?(reuse_addr=false) ?(reuse_port=false) ~backlog ~sw (t:[> tag ty] r) = let (Resource.T (t, ops)) = t in let module X = (val (Resource.get ops Pi.Network)) in X.listen t ~reuse_addr ~reuse_port ~backlog ~sw let connect (type tag) ~sw (t:[> tag ty] r) addr = let (Resource.T (t, ops)) = t in let module X = (val (Resource.get ops Pi.Network)) in try X.connect t ~sw addr with Exn.Io _ as ex -> let bt = Printexc.get_raw_backtrace () in Exn.reraise_with_context ex bt "connecting to %a" Sockaddr.pp addr let datagram_socket (type tag) ?(reuse_addr=false) ?(reuse_port=false) ~sw (t:[> tag ty] r) addr = let (Resource.T (t, ops)) = t in let module X = (val (Resource.get ops Pi.Network)) in let addr = (addr :> [Sockaddr.datagram | `UdpV4 | `UdpV6]) in X.datagram_socket t ~reuse_addr ~reuse_port ~sw addr let getaddrinfo_full (type tag) ~filter ?(service="") (t:[> tag ty] r) hostname = let (Resource.T (t, ops)) = t in let module X = (val (Resource.get ops Pi.Network)) in match X.getaddrinfo t ~service hostname |> List.filter_map filter with | [] -> raise @@ err (Address_lookup_failed NONAME) | xs -> xs let getaddrinfo_full_ctx ~filter ?service t hostname = try getaddrinfo_full ~filter ?service t hostname with Exn.Io _ as ex -> let bt = Printexc.get_raw_backtrace () in match service with | None -> Exn.reraise_with_context ex bt "looking up %S" hostname | Some service -> Exn.reraise_with_context ex bt "looking up %S (service %S)" hostname service let getaddrinfo ?service t hostname = getaddrinfo_full_ctx ?service t hostname ~filter:Option.some let getaddrinfo_stream ?service t hostname = getaddrinfo_full_ctx ?service t hostname ~filter:(function | #Sockaddr.stream as x -> Some x | _ -> None ) let getaddrinfo_datagram ?service t hostname = getaddrinfo_full_ctx ?service t hostname ~filter:(function | #Sockaddr.datagram as x -> Some x | _ -> None ) let getnameinfo (type tag) (t:[> tag ty] r) sockaddr = let (Resource.T (t, ops)) = t in let module X = (val (Resource.get ops Pi.Network)) in X.getnameinfo t sockaddr let close = Resource.close let with_tcp_connect ?(timeout=Time.Timeout.none) ~host ~service t f = Switch.run ~name:"with_tcp_connect" @@ fun sw -> match let rec aux = function | [] -> assert false (* getaddrinfo_full never returns an empty list *) | addr :: addrs -> try Time.Timeout.run_exn timeout (fun () -> connect ~sw t addr) with | Time.Timeout | Exn.Io _ when addrs <> [] -> aux addrs | Time.Timeout -> raise @@ err (Connection_failure Timeout) in getaddrinfo_full ~service t host ~filter:(function | `Tcp _ as x -> Some x | `Udp _ | `Unix _ -> None ) |> aux with | conn -> f conn | exception (Exn.Io _ as ex) -> let bt = Printexc.get_raw_backtrace () in Exn.reraise_with_context ex bt "connecting to %S:%s" host service (* Run a server loop in a single domain. *) let run_server_loop ~sw ~connections ~on_error ~stop listening_socket connection_handler = let rec accept () = Semaphore.acquire connections; accept_fork ~sw ~on_error listening_socket (fun conn addr -> Fun.protect (fun () -> connection_handler conn addr) ~finally:(fun () -> Semaphore.release connections) ); accept () in match stop with | None -> accept () | Some stop -> Fiber.first accept (fun () -> Promise.await stop) let run_server ?(max_connections=Int.max_int) ?(additional_domains) ?stop ~on_error listening_socket connection_handler : 'a = if max_connections <= 0 then invalid_arg "max_connections"; Switch.run ~name:"run_server" @@ fun sw -> let connections = Semaphore.make max_connections in let run_server_loop sw = run_server_loop ~sw ~connections ~on_error ~stop listening_socket connection_handler in additional_domains |> Option.iter (fun (domain_mgr, domains) -> if domains < 0 then invalid_arg "additional_domains"; for _ = 1 to domains do Fiber.fork ~sw (fun () -> Domain_manager.run domain_mgr (fun () -> Switch.run ~name:"run_server" @@ fun sw -> ignore (run_server_loop sw : 'a) )) done; ); run_server_loop sw
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