mirror of
https://github.com/pezkuwichain/pezkuwi-subxt.git
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247822bb33
This PR refactors the metrics measuring and Prometheus exposing entity in sc-service into its own submodule and extends the parameters it exposes by: - system load average (over one, five and 15min) - the TCP connection state of the process (lsof), refs #5304 - number of tokio threads - number of known forks - counter for items in each unbounded queue (with internal unbounded channels) - number of file descriptors opened by this process (*nix only at this point) - number of system threads (*nix only at this point) refs #4679 Co-authored-by: Max Inden <mail@max-inden.de> Co-authored-by: Ashley <ashley.ruglys@gmail.com>
982 lines
33 KiB
Rust
982 lines
33 KiB
Rust
// Copyright 2019-2020 Parity Technologies (UK) Ltd.
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// This file is part of Substrate.
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// Substrate is free software: you can redistribute it and/or modify
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// it under the terms of the GNU General Public License as published by
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// the Free Software Foundation, either version 3 of the License, or
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// (at your option) any later version.
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// Substrate is distributed in the hope that it will be useful,
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// but WITHOUT ANY WARRANTY; without even the implied warranty of
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// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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// GNU General Public License for more details.
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// You should have received a copy of the GNU General Public License
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// along with Substrate. If not, see <http://www.gnu.org/licenses/>.
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//! This module is composed of two structs: [`HttpApi`] and [`HttpWorker`]. Calling the [`http`]
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//! function returns a pair of [`HttpApi`] and [`HttpWorker`] that share some state.
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//!
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//! The [`HttpApi`] is (indirectly) passed to the runtime when calling an offchain worker, while
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//! the [`HttpWorker`] must be processed in the background. The [`HttpApi`] mimics the API of the
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//! HTTP-related methods available to offchain workers.
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//!
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//! The reason for this design is driven by the fact that HTTP requests should continue running
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//! (i.e.: the socket should continue being processed) in the background even if the runtime isn't
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//! actively calling any function.
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use crate::api::timestamp;
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use bytes::buf::ext::{Reader, BufExt};
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use fnv::FnvHashMap;
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use futures::{prelude::*, future, channel::mpsc};
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use log::error;
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use sp_core::offchain::{HttpRequestId, Timestamp, HttpRequestStatus, HttpError};
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use std::{fmt, io::Read as _, mem, pin::Pin, task::Context, task::Poll};
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use sp_utils::mpsc::{tracing_unbounded, TracingUnboundedSender, TracingUnboundedReceiver};
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/// Creates a pair of [`HttpApi`] and [`HttpWorker`].
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pub fn http() -> (HttpApi, HttpWorker) {
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let (to_worker, from_api) = tracing_unbounded("mpsc_ocw_to_worker");
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let (to_api, from_worker) = tracing_unbounded("mpsc_ocw_to_api");
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let api = HttpApi {
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to_worker,
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from_worker: from_worker.fuse(),
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// We start with a random ID for the first HTTP request, to prevent mischievous people from
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// writing runtime code with hardcoded IDs.
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next_id: HttpRequestId(rand::random::<u16>() % 2000),
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requests: FnvHashMap::default(),
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};
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let engine = HttpWorker {
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to_api,
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from_api,
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http_client: hyper::Client::builder().build(hyper_rustls::HttpsConnector::new()),
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requests: Vec::new(),
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};
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(api, engine)
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}
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/// Provides HTTP capabilities.
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///
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/// Since this struct is a helper for offchain workers, its API is mimicking the API provided
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/// to offchain workers.
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pub struct HttpApi {
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/// Used to sends messages to the worker.
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to_worker: TracingUnboundedSender<ApiToWorker>,
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/// Used to receive messages from the worker.
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/// We use a `Fuse` in order to have an extra protection against panicking.
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from_worker: stream::Fuse<TracingUnboundedReceiver<WorkerToApi>>,
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/// Id to assign to the next HTTP request that is started.
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next_id: HttpRequestId,
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/// List of HTTP requests in preparation or in progress.
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requests: FnvHashMap<HttpRequestId, HttpApiRequest>,
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}
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/// One active request within `HttpApi`.
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enum HttpApiRequest {
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/// The request object is being constructed locally and not started yet.
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NotDispatched(hyper::Request<hyper::Body>, hyper::body::Sender),
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/// The request has been dispatched and we're in the process of sending out the body (if the
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/// field is `Some`) or waiting for a response (if the field is `None`).
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Dispatched(Option<hyper::body::Sender>),
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/// Received a response.
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Response(HttpApiRequestRp),
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/// A request has been dispatched but the worker notified us of an error. We report this
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/// failure to the user as an `IoError` and remove the request from the list as soon as
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/// possible.
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Fail(hyper::Error),
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}
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/// A request within `HttpApi` that has received a response.
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struct HttpApiRequestRp {
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/// We might still be writing the request's body when the response comes.
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/// This field allows to continue writing that body.
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sending_body: Option<hyper::body::Sender>,
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/// Status code of the response.
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status_code: hyper::StatusCode,
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/// Headers of the response.
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headers: hyper::HeaderMap,
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/// Body of the response, as a channel of `Chunk` objects.
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/// While the code is designed to drop the `Receiver` once it ends, we wrap it within a
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/// `Fuse` in order to be extra precautious about panics.
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/// Elements extracted from the channel are first put into `current_read_chunk`.
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/// If the channel produces an error, then that is translated into an `IoError` and the request
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/// is removed from the list.
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body: stream::Fuse<mpsc::Receiver<Result<hyper::body::Bytes, hyper::Error>>>,
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/// Chunk that has been extracted from the channel and that is currently being read.
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/// Reading data from the response should read from this field in priority.
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current_read_chunk: Option<Reader<hyper::body::Bytes>>,
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}
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impl HttpApi {
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/// Mimics the corresponding method in the offchain API.
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pub fn request_start(
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&mut self,
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method: &str,
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uri: &str
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) -> Result<HttpRequestId, ()> {
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// Start by building the prototype of the request.
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// We do this first so that we don't touch anything in `self` if building the prototype
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// fails.
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let (body_sender, body) = hyper::Body::channel();
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let mut request = hyper::Request::new(body);
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*request.method_mut() = hyper::Method::from_bytes(method.as_bytes()).map_err(|_| ())?;
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*request.uri_mut() = hyper::Uri::from_maybe_shared(uri.to_owned()).map_err(|_| ())?;
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let new_id = self.next_id;
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debug_assert!(!self.requests.contains_key(&new_id));
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match self.next_id.0.checked_add(1) {
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Some(new_id) => self.next_id.0 = new_id,
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None => {
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error!("Overflow in offchain worker HTTP request ID assignment");
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return Err(());
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}
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};
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self.requests.insert(new_id, HttpApiRequest::NotDispatched(request, body_sender));
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Ok(new_id)
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}
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/// Mimics the corresponding method in the offchain API.
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pub fn request_add_header(
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&mut self,
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request_id: HttpRequestId,
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name: &str,
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value: &str
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) -> Result<(), ()> {
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let request = match self.requests.get_mut(&request_id) {
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Some(&mut HttpApiRequest::NotDispatched(ref mut rq, _)) => rq,
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_ => return Err(())
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};
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let name = hyper::header::HeaderName::from_bytes(name.as_bytes()).map_err(|_| ())?;
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let value = hyper::header::HeaderValue::from_str(value).map_err(|_| ())?;
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// Note that we're always appending headers and never replacing old values.
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// We assume here that the user knows what they're doing.
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request.headers_mut().append(name, value);
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Ok(())
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}
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/// Mimics the corresponding method in the offchain API.
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pub fn request_write_body(
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&mut self,
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request_id: HttpRequestId,
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chunk: &[u8],
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deadline: Option<Timestamp>
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) -> Result<(), HttpError> {
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// Extract the request from the list.
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// Don't forget to add it back if necessary when returning.
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let mut request = match self.requests.remove(&request_id) {
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None => return Err(HttpError::Invalid),
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Some(r) => r,
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};
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let mut deadline = timestamp::deadline_to_future(deadline);
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// Closure that writes data to a sender, taking the deadline into account. Can return `Ok`
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// (if the body has been written), or `DeadlineReached`, or `IoError`.
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// If `IoError` is returned, don't forget to remove the request from the list.
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let mut poll_sender = move |sender: &mut hyper::body::Sender| -> Result<(), HttpError> {
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let mut when_ready = future::maybe_done(future::poll_fn(|cx| sender.poll_ready(cx)));
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futures::executor::block_on(future::select(&mut when_ready, &mut deadline));
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match when_ready {
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future::MaybeDone::Done(Ok(())) => {}
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future::MaybeDone::Done(Err(_)) => return Err(HttpError::IoError),
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future::MaybeDone::Future(_) |
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future::MaybeDone::Gone => {
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debug_assert!(if let future::MaybeDone::Done(_) = deadline { true } else { false });
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return Err(HttpError::DeadlineReached)
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}
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};
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futures::executor::block_on(sender.send_data(hyper::body::Bytes::from(chunk.to_owned())))
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.map_err(|_| {
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error!("HTTP sender refused data despite being ready");
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HttpError::IoError
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})
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};
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loop {
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request = match request {
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HttpApiRequest::NotDispatched(request, sender) => {
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// If the request is not dispatched yet, dispatch it and loop again.
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let _ = self.to_worker.unbounded_send(ApiToWorker::Dispatch {
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id: request_id,
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request
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});
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HttpApiRequest::Dispatched(Some(sender))
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}
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HttpApiRequest::Dispatched(Some(mut sender)) =>
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if !chunk.is_empty() {
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match poll_sender(&mut sender) {
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Err(HttpError::IoError) => return Err(HttpError::IoError),
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other => {
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self.requests.insert(
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request_id,
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HttpApiRequest::Dispatched(Some(sender))
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);
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return other
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}
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}
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} else {
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// Writing an empty body is a hint that we should stop writing. Dropping
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// the sender.
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self.requests.insert(request_id, HttpApiRequest::Dispatched(None));
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return Ok(())
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}
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HttpApiRequest::Response(mut response @ HttpApiRequestRp { sending_body: Some(_), .. }) =>
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if !chunk.is_empty() {
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match poll_sender(response.sending_body.as_mut()
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.expect("Can only enter this match branch if Some; qed")) {
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Err(HttpError::IoError) => return Err(HttpError::IoError),
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other => {
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self.requests.insert(request_id, HttpApiRequest::Response(response));
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return other
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}
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}
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} else {
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// Writing an empty body is a hint that we should stop writing. Dropping
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// the sender.
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self.requests.insert(request_id, HttpApiRequest::Response(HttpApiRequestRp {
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sending_body: None,
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..response
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}));
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return Ok(())
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}
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HttpApiRequest::Fail(_) =>
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// If the request has already failed, return without putting back the request
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// in the list.
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return Err(HttpError::IoError),
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v @ HttpApiRequest::Dispatched(None) |
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v @ HttpApiRequest::Response(HttpApiRequestRp { sending_body: None, .. }) => {
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// We have already finished sending this body.
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self.requests.insert(request_id, v);
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return Err(HttpError::Invalid)
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}
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}
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}
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}
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/// Mimics the corresponding method in the offchain API.
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pub fn response_wait(
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&mut self,
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ids: &[HttpRequestId],
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deadline: Option<Timestamp>
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) -> Vec<HttpRequestStatus> {
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// First of all, dispatch all the non-dispatched requests and drop all senders so that the
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// user can't write anymore data.
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for id in ids {
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match self.requests.get_mut(id) {
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Some(HttpApiRequest::NotDispatched(_, _)) => {}
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Some(HttpApiRequest::Dispatched(sending_body)) |
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Some(HttpApiRequest::Response(HttpApiRequestRp { sending_body, .. })) => {
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let _ = sending_body.take();
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continue
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}
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_ => continue
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};
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let (request, _sender) = match self.requests.remove(id) {
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Some(HttpApiRequest::NotDispatched(rq, s)) => (rq, s),
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_ => unreachable!("we checked for NotDispatched above; qed")
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};
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let _ = self.to_worker.unbounded_send(ApiToWorker::Dispatch {
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id: *id,
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request
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});
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// We also destroy the sender in order to forbid writing more data.
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self.requests.insert(*id, HttpApiRequest::Dispatched(None));
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}
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let mut deadline = timestamp::deadline_to_future(deadline);
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loop {
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// Within that loop, first try to see if we have all the elements for a response.
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// This includes the situation where the deadline is reached.
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{
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let mut output = Vec::with_capacity(ids.len());
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let mut must_wait_more = false;
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for id in ids {
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output.push(match self.requests.get(id) {
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None => HttpRequestStatus::Invalid,
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Some(HttpApiRequest::NotDispatched(_, _)) =>
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unreachable!("we replaced all the NotDispatched with Dispatched earlier; qed"),
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Some(HttpApiRequest::Dispatched(_)) => {
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must_wait_more = true;
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HttpRequestStatus::DeadlineReached
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},
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Some(HttpApiRequest::Fail(_)) => HttpRequestStatus::IoError,
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Some(HttpApiRequest::Response(HttpApiRequestRp { status_code, .. })) =>
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HttpRequestStatus::Finished(status_code.as_u16()),
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});
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}
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debug_assert_eq!(output.len(), ids.len());
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// Are we ready to call `return`?
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let is_done = if let future::MaybeDone::Done(_) = deadline {
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true
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} else {
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!must_wait_more
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};
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if is_done {
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// Requests in "fail" mode are purged before returning.
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debug_assert_eq!(output.len(), ids.len());
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for n in (0..ids.len()).rev() {
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if let HttpRequestStatus::IoError = output[n] {
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self.requests.remove(&ids[n]);
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}
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}
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return output
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}
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}
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// Grab next message from the worker. We call `continue` if deadline is reached so that
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// we loop back and `return`.
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let next_message = {
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let mut next_msg = future::maybe_done(self.from_worker.next());
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futures::executor::block_on(future::select(&mut next_msg, &mut deadline));
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if let future::MaybeDone::Done(msg) = next_msg {
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msg
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} else {
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debug_assert!(if let future::MaybeDone::Done(_) = deadline { true } else { false });
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continue
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}
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};
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// Update internal state based on received message.
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match next_message {
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Some(WorkerToApi::Response { id, status_code, headers, body }) =>
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match self.requests.remove(&id) {
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Some(HttpApiRequest::Dispatched(sending_body)) => {
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self.requests.insert(id, HttpApiRequest::Response(HttpApiRequestRp {
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sending_body,
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status_code,
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headers,
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body: body.fuse(),
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current_read_chunk: None,
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}));
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}
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None => {} // can happen if we detected an IO error when sending the body
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_ => error!("State mismatch between the API and worker"),
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}
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Some(WorkerToApi::Fail { id, error }) =>
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match self.requests.remove(&id) {
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Some(HttpApiRequest::Dispatched(_)) => {
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self.requests.insert(id, HttpApiRequest::Fail(error));
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}
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None => {} // can happen if we detected an IO error when sending the body
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_ => error!("State mismatch between the API and worker"),
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}
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None => {
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error!("Worker has crashed");
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return ids.iter().map(|_| HttpRequestStatus::IoError).collect()
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}
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}
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}
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}
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/// Mimics the corresponding method in the offchain API.
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pub fn response_headers(
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&mut self,
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request_id: HttpRequestId
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) -> Vec<(Vec<u8>, Vec<u8>)> {
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// Do an implicit non-blocking wait on the request.
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let _ = self.response_wait(&[request_id], Some(timestamp::now()));
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let headers = match self.requests.get(&request_id) {
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Some(HttpApiRequest::Response(HttpApiRequestRp { headers, .. })) => headers,
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_ => return Vec::new()
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};
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headers
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.iter()
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.map(|(name, value)| (name.as_str().as_bytes().to_owned(), value.as_bytes().to_owned()))
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.collect()
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}
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/// Mimics the corresponding method in the offchain API.
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pub fn response_read_body(
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&mut self,
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request_id: HttpRequestId,
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buffer: &mut [u8],
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deadline: Option<Timestamp>
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) -> Result<usize, HttpError> {
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// Do an implicit wait on the request.
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let _ = self.response_wait(&[request_id], deadline);
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// Remove the request from the list and handle situations where the request is invalid or
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// in the wrong state.
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let mut response = match self.requests.remove(&request_id) {
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Some(HttpApiRequest::Response(r)) => r,
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// Because we called `response_wait` above, we know that the deadline has been reached
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// and we still haven't received a response.
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Some(rq @ HttpApiRequest::Dispatched(_)) => {
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self.requests.insert(request_id, rq);
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return Err(HttpError::DeadlineReached)
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},
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// The request has failed.
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Some(HttpApiRequest::Fail { .. }) =>
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return Err(HttpError::IoError),
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// Request hasn't been dispatched yet; reading the body is invalid.
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Some(rq @ HttpApiRequest::NotDispatched(_, _)) => {
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self.requests.insert(request_id, rq);
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return Err(HttpError::Invalid)
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}
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None => return Err(HttpError::Invalid)
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};
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// Convert the deadline into a `Future` that resolves when the deadline is reached.
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let mut deadline = timestamp::deadline_to_future(deadline);
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loop {
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// First read from `current_read_chunk`.
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if let Some(mut current_read_chunk) = response.current_read_chunk.take() {
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match current_read_chunk.read(buffer) {
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Ok(0) => {}
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Ok(n) => {
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self.requests.insert(request_id, HttpApiRequest::Response(HttpApiRequestRp {
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current_read_chunk: Some(current_read_chunk),
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.. response
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}));
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return Ok(n)
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},
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Err(err) => {
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// This code should never be reached unless there's a logic error somewhere.
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error!("Failed to read from current read chunk: {:?}", err);
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return Err(HttpError::IoError)
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}
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}
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}
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// If we reach here, that means the `current_read_chunk` is empty and needs to be
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// filled with a new chunk from `body`. We block on either the next body or the
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// deadline.
|
|
let mut next_body = future::maybe_done(response.body.next());
|
|
futures::executor::block_on(future::select(&mut next_body, &mut deadline));
|
|
|
|
if let future::MaybeDone::Done(next_body) = next_body {
|
|
match next_body {
|
|
Some(Ok(chunk)) => response.current_read_chunk = Some(chunk.reader()),
|
|
Some(Err(_)) => return Err(HttpError::IoError),
|
|
None => return Ok(0), // eof
|
|
}
|
|
}
|
|
|
|
if let future::MaybeDone::Done(_) = deadline {
|
|
self.requests.insert(request_id, HttpApiRequest::Response(response));
|
|
return Err(HttpError::DeadlineReached)
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
impl fmt::Debug for HttpApi {
|
|
fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
|
|
f.debug_list()
|
|
.entries(self.requests.iter())
|
|
.finish()
|
|
}
|
|
}
|
|
|
|
impl fmt::Debug for HttpApiRequest {
|
|
fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
|
|
match self {
|
|
HttpApiRequest::NotDispatched(_, _) =>
|
|
f.debug_tuple("HttpApiRequest::NotDispatched").finish(),
|
|
HttpApiRequest::Dispatched(_) =>
|
|
f.debug_tuple("HttpApiRequest::Dispatched").finish(),
|
|
HttpApiRequest::Response(HttpApiRequestRp { status_code, headers, .. }) =>
|
|
f.debug_tuple("HttpApiRequest::Response").field(status_code).field(headers).finish(),
|
|
HttpApiRequest::Fail(err) =>
|
|
f.debug_tuple("HttpApiRequest::Fail").field(err).finish(),
|
|
}
|
|
}
|
|
}
|
|
|
|
/// Message send from the API to the worker.
|
|
enum ApiToWorker {
|
|
/// Dispatches a new HTTP request.
|
|
Dispatch {
|
|
/// ID to send back when the response comes back.
|
|
id: HttpRequestId,
|
|
/// Request to start executing.
|
|
request: hyper::Request<hyper::Body>,
|
|
}
|
|
}
|
|
|
|
/// Message send from the API to the worker.
|
|
enum WorkerToApi {
|
|
/// A request has succeeded.
|
|
Response {
|
|
/// The ID that was passed to the worker.
|
|
id: HttpRequestId,
|
|
/// Status code of the response.
|
|
status_code: hyper::StatusCode,
|
|
/// Headers of the response.
|
|
headers: hyper::HeaderMap,
|
|
/// Body of the response, as a channel of `Chunk` objects.
|
|
/// We send the body back through a channel instead of returning the hyper `Body` object
|
|
/// because we don't want the `HttpApi` to have to drive the reading.
|
|
/// Instead, reading an item from the channel will notify the worker task, which will push
|
|
/// the next item.
|
|
/// Can also be used to send an error, in case an error happend on the HTTP socket. After
|
|
/// an error is sent, the channel will close.
|
|
body: mpsc::Receiver<Result<hyper::body::Bytes, hyper::Error>>,
|
|
},
|
|
/// A request has failed because of an error. The request is then no longer valid.
|
|
Fail {
|
|
/// The ID that was passed to the worker.
|
|
id: HttpRequestId,
|
|
/// Error that happened.
|
|
error: hyper::Error,
|
|
},
|
|
}
|
|
|
|
/// Must be continuously polled for the [`HttpApi`] to properly work.
|
|
pub struct HttpWorker {
|
|
/// Used to sends messages to the `HttpApi`.
|
|
to_api: TracingUnboundedSender<WorkerToApi>,
|
|
/// Used to receive messages from the `HttpApi`.
|
|
from_api: TracingUnboundedReceiver<ApiToWorker>,
|
|
/// The engine that runs HTTP requests.
|
|
http_client: hyper::Client<hyper_rustls::HttpsConnector<hyper::client::HttpConnector>, hyper::Body>,
|
|
/// HTTP requests that are being worked on by the engine.
|
|
requests: Vec<(HttpRequestId, HttpWorkerRequest)>,
|
|
}
|
|
|
|
/// HTTP request being processed by the worker.
|
|
enum HttpWorkerRequest {
|
|
/// Request has been dispatched and is waiting for a response from the Internet.
|
|
Dispatched(hyper::client::ResponseFuture),
|
|
/// Progressively reading the body of the response and sending it to the channel.
|
|
ReadBody {
|
|
/// Body to read `Chunk`s from. Only used if the channel is ready to accept data.
|
|
body: hyper::Body,
|
|
/// Channel to the [`HttpApi`] where we send the chunks to.
|
|
tx: mpsc::Sender<Result<hyper::body::Bytes, hyper::Error>>,
|
|
},
|
|
}
|
|
|
|
impl Future for HttpWorker {
|
|
type Output = ();
|
|
|
|
fn poll(mut self: Pin<&mut Self>, cx: &mut Context) -> Poll<Self::Output> {
|
|
// Reminder: this is continuously run in the background.
|
|
|
|
// We use a `me` variable because the compiler isn't smart enough to allow borrowing
|
|
// multiple fields at once through a `Deref`.
|
|
let me = &mut *self;
|
|
|
|
// We remove each element from `requests` one by one and add them back only if necessary.
|
|
for n in (0..me.requests.len()).rev() {
|
|
let (id, request) = me.requests.swap_remove(n);
|
|
match request {
|
|
HttpWorkerRequest::Dispatched(mut future) => {
|
|
// Check for an HTTP response from the Internet.
|
|
let mut response = match Future::poll(Pin::new(&mut future), cx) {
|
|
Poll::Pending => {
|
|
me.requests.push((id, HttpWorkerRequest::Dispatched(future)));
|
|
continue
|
|
},
|
|
Poll::Ready(Ok(response)) => response,
|
|
Poll::Ready(Err(err)) => {
|
|
let _ = me.to_api.unbounded_send(WorkerToApi::Fail {
|
|
id,
|
|
error: err,
|
|
});
|
|
continue; // don't insert the request back
|
|
}
|
|
};
|
|
|
|
// We received a response! Decompose it into its parts.
|
|
let status_code = response.status();
|
|
let headers = mem::replace(response.headers_mut(), hyper::HeaderMap::new());
|
|
let body = response.into_body();
|
|
|
|
let (body_tx, body_rx) = mpsc::channel(3);
|
|
let _ = me.to_api.unbounded_send(WorkerToApi::Response {
|
|
id,
|
|
status_code,
|
|
headers,
|
|
body: body_rx,
|
|
});
|
|
|
|
me.requests.push((id, HttpWorkerRequest::ReadBody { body, tx: body_tx }));
|
|
cx.waker().wake_by_ref(); // reschedule in order to poll the new future
|
|
continue
|
|
}
|
|
|
|
HttpWorkerRequest::ReadBody { mut body, mut tx } => {
|
|
// Before reading from the HTTP response, check that `tx` is ready to accept
|
|
// a new chunk.
|
|
match tx.poll_ready(cx) {
|
|
Poll::Ready(Ok(())) => {}
|
|
Poll::Ready(Err(_)) => continue, // don't insert the request back
|
|
Poll::Pending => {
|
|
me.requests.push((id, HttpWorkerRequest::ReadBody { body, tx }));
|
|
continue
|
|
}
|
|
}
|
|
|
|
// `tx` is ready. Read a chunk from the socket and send it to the channel.
|
|
match Stream::poll_next(Pin::new(&mut body), cx) {
|
|
Poll::Ready(Some(Ok(chunk))) => {
|
|
let _ = tx.start_send(Ok(chunk));
|
|
me.requests.push((id, HttpWorkerRequest::ReadBody { body, tx }));
|
|
cx.waker().wake_by_ref(); // reschedule in order to continue reading
|
|
}
|
|
Poll::Ready(Some(Err(err))) => {
|
|
let _ = tx.start_send(Err(err));
|
|
// don't insert the request back
|
|
},
|
|
Poll::Ready(None) => {} // EOF; don't insert the request back
|
|
Poll::Pending => {
|
|
me.requests.push((id, HttpWorkerRequest::ReadBody { body, tx }));
|
|
},
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
// Check for messages coming from the [`HttpApi`].
|
|
match Stream::poll_next(Pin::new(&mut me.from_api), cx) {
|
|
Poll::Pending => {},
|
|
Poll::Ready(None) => return Poll::Ready(()), // stops the worker
|
|
Poll::Ready(Some(ApiToWorker::Dispatch { id, request })) => {
|
|
let future = me.http_client.request(request);
|
|
debug_assert!(me.requests.iter().all(|(i, _)| *i != id));
|
|
me.requests.push((id, HttpWorkerRequest::Dispatched(future)));
|
|
cx.waker().wake_by_ref(); // reschedule the task to poll the request
|
|
}
|
|
}
|
|
|
|
Poll::Pending
|
|
}
|
|
}
|
|
|
|
impl fmt::Debug for HttpWorker {
|
|
fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
|
|
f.debug_list()
|
|
.entries(self.requests.iter())
|
|
.finish()
|
|
}
|
|
}
|
|
|
|
impl fmt::Debug for HttpWorkerRequest {
|
|
fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
|
|
match self {
|
|
HttpWorkerRequest::Dispatched(_) =>
|
|
f.debug_tuple("HttpWorkerRequest::Dispatched").finish(),
|
|
HttpWorkerRequest::ReadBody { .. } =>
|
|
f.debug_tuple("HttpWorkerRequest::Response").finish(),
|
|
}
|
|
}
|
|
}
|
|
|
|
#[cfg(test)]
|
|
mod tests {
|
|
use core::convert::Infallible;
|
|
use crate::api::timestamp;
|
|
use super::http;
|
|
use sp_core::offchain::{HttpError, HttpRequestId, HttpRequestStatus, Duration};
|
|
|
|
// Returns an `HttpApi` whose worker is ran in the background, and a `SocketAddr` to an HTTP
|
|
// server that runs in the background as well.
|
|
macro_rules! build_api_server {
|
|
() => {{
|
|
fn tokio_run<T>(future: impl std::future::Future<Output = T>) {
|
|
let _ = tokio::runtime::Runtime::new().unwrap().block_on(future);
|
|
}
|
|
|
|
// We spawn quite a bit of HTTP servers here due to how async API
|
|
// works for offchain workers, so be sure to raise the FD limit
|
|
// (particularly useful for macOS where the default soft limit may
|
|
// not be enough).
|
|
fdlimit::raise_fd_limit();
|
|
|
|
let (api, worker) = http();
|
|
std::thread::spawn(move || tokio_run(worker));
|
|
|
|
let (addr_tx, addr_rx) = std::sync::mpsc::channel();
|
|
std::thread::spawn(move || {
|
|
tokio_run(async move {
|
|
let server = hyper::Server::bind(&"127.0.0.1:0".parse().unwrap())
|
|
.serve(hyper::service::make_service_fn(|_| { async move {
|
|
Ok::<_, Infallible>(hyper::service::service_fn(move |_req| async move {
|
|
Ok::<_, Infallible>(
|
|
hyper::Response::new(hyper::Body::from("Hello World!"))
|
|
)
|
|
}))
|
|
}}));
|
|
let _ = addr_tx.send(server.local_addr());
|
|
server.await
|
|
});
|
|
});
|
|
(api, addr_rx.recv().unwrap())
|
|
}};
|
|
}
|
|
|
|
#[test]
|
|
fn basic_localhost() {
|
|
let deadline = timestamp::now().add(Duration::from_millis(10_000));
|
|
|
|
// Performs an HTTP query to a background HTTP server.
|
|
|
|
let (mut api, addr) = build_api_server!();
|
|
|
|
let id = api.request_start("POST", &format!("http://{}", addr)).unwrap();
|
|
api.request_write_body(id, &[], Some(deadline)).unwrap();
|
|
|
|
match api.response_wait(&[id], Some(deadline))[0] {
|
|
HttpRequestStatus::Finished(200) => {},
|
|
v => panic!("Connecting to localhost failed: {:?}", v)
|
|
}
|
|
|
|
let headers = api.response_headers(id);
|
|
assert!(headers.iter().any(|(h, _)| h.eq_ignore_ascii_case(b"Date")));
|
|
|
|
let mut buf = vec![0; 2048];
|
|
let n = api.response_read_body(id, &mut buf, Some(deadline)).unwrap();
|
|
assert_eq!(&buf[..n], b"Hello World!");
|
|
}
|
|
|
|
#[test]
|
|
fn request_start_invalid_call() {
|
|
let (mut api, addr) = build_api_server!();
|
|
|
|
match api.request_start("\0", &format!("http://{}", addr)) {
|
|
Err(()) => {}
|
|
Ok(_) => panic!()
|
|
};
|
|
|
|
match api.request_start("GET", "http://\0localhost") {
|
|
Err(()) => {}
|
|
Ok(_) => panic!()
|
|
};
|
|
}
|
|
|
|
#[test]
|
|
fn request_add_header_invalid_call() {
|
|
let (mut api, addr) = build_api_server!();
|
|
|
|
match api.request_add_header(HttpRequestId(0xdead), "Foo", "bar") {
|
|
Err(()) => {}
|
|
Ok(_) => panic!()
|
|
};
|
|
|
|
let id = api.request_start("GET", &format!("http://{}", addr)).unwrap();
|
|
match api.request_add_header(id, "\0", "bar") {
|
|
Err(()) => {}
|
|
Ok(_) => panic!()
|
|
};
|
|
|
|
let id = api.request_start("POST", &format!("http://{}", addr)).unwrap();
|
|
match api.request_add_header(id, "Foo", "\0") {
|
|
Err(()) => {}
|
|
Ok(_) => panic!()
|
|
};
|
|
|
|
let id = api.request_start("POST", &format!("http://{}", addr)).unwrap();
|
|
api.request_add_header(id, "Foo", "Bar").unwrap();
|
|
api.request_write_body(id, &[1, 2, 3, 4], None).unwrap();
|
|
match api.request_add_header(id, "Foo2", "Bar") {
|
|
Err(()) => {}
|
|
Ok(_) => panic!()
|
|
};
|
|
|
|
let id = api.request_start("GET", &format!("http://{}", addr)).unwrap();
|
|
api.response_headers(id);
|
|
match api.request_add_header(id, "Foo2", "Bar") {
|
|
Err(()) => {}
|
|
Ok(_) => panic!()
|
|
};
|
|
|
|
let id = api.request_start("GET", &format!("http://{}", addr)).unwrap();
|
|
api.response_read_body(id, &mut [], None).unwrap();
|
|
match api.request_add_header(id, "Foo2", "Bar") {
|
|
Err(()) => {}
|
|
Ok(_) => panic!()
|
|
};
|
|
}
|
|
|
|
#[test]
|
|
fn request_write_body_invalid_call() {
|
|
let (mut api, addr) = build_api_server!();
|
|
|
|
match api.request_write_body(HttpRequestId(0xdead), &[1, 2, 3], None) {
|
|
Err(HttpError::Invalid) => {}
|
|
_ => panic!()
|
|
};
|
|
|
|
match api.request_write_body(HttpRequestId(0xdead), &[], None) {
|
|
Err(HttpError::Invalid) => {}
|
|
_ => panic!()
|
|
};
|
|
|
|
let id = api.request_start("POST", &format!("http://{}", addr)).unwrap();
|
|
api.request_write_body(id, &[1, 2, 3, 4], None).unwrap();
|
|
api.request_write_body(id, &[1, 2, 3, 4], None).unwrap();
|
|
api.request_write_body(id, &[], None).unwrap();
|
|
match api.request_write_body(id, &[], None) {
|
|
Err(HttpError::Invalid) => {}
|
|
_ => panic!()
|
|
};
|
|
|
|
let id = api.request_start("POST", &format!("http://{}", addr)).unwrap();
|
|
api.request_write_body(id, &[1, 2, 3, 4], None).unwrap();
|
|
api.request_write_body(id, &[1, 2, 3, 4], None).unwrap();
|
|
api.request_write_body(id, &[], None).unwrap();
|
|
match api.request_write_body(id, &[1, 2, 3, 4], None) {
|
|
Err(HttpError::Invalid) => {}
|
|
_ => panic!()
|
|
};
|
|
|
|
let id = api.request_start("POST", &format!("http://{}", addr)).unwrap();
|
|
api.request_write_body(id, &[1, 2, 3, 4], None).unwrap();
|
|
api.response_wait(&[id], None);
|
|
match api.request_write_body(id, &[], None) {
|
|
Err(HttpError::Invalid) => {}
|
|
_ => panic!()
|
|
};
|
|
|
|
let id = api.request_start("POST", &format!("http://{}", addr)).unwrap();
|
|
api.request_write_body(id, &[1, 2, 3, 4], None).unwrap();
|
|
api.response_wait(&[id], None);
|
|
match api.request_write_body(id, &[1, 2, 3, 4], None) {
|
|
Err(HttpError::Invalid) => {}
|
|
_ => panic!()
|
|
};
|
|
|
|
let id = api.request_start("POST", &format!("http://{}", addr)).unwrap();
|
|
api.response_headers(id);
|
|
match api.request_write_body(id, &[1, 2, 3, 4], None) {
|
|
Err(HttpError::Invalid) => {}
|
|
_ => panic!()
|
|
};
|
|
|
|
let id = api.request_start("GET", &format!("http://{}", addr)).unwrap();
|
|
api.response_headers(id);
|
|
match api.request_write_body(id, &[], None) {
|
|
Err(HttpError::Invalid) => {}
|
|
_ => panic!()
|
|
};
|
|
|
|
let id = api.request_start("POST", &format!("http://{}", addr)).unwrap();
|
|
api.response_read_body(id, &mut [], None).unwrap();
|
|
match api.request_write_body(id, &[1, 2, 3, 4], None) {
|
|
Err(HttpError::Invalid) => {}
|
|
_ => panic!()
|
|
};
|
|
|
|
let id = api.request_start("POST", &format!("http://{}", addr)).unwrap();
|
|
api.response_read_body(id, &mut [], None).unwrap();
|
|
match api.request_write_body(id, &[], None) {
|
|
Err(HttpError::Invalid) => {}
|
|
_ => panic!()
|
|
};
|
|
}
|
|
|
|
#[test]
|
|
fn response_headers_invalid_call() {
|
|
let (mut api, addr) = build_api_server!();
|
|
assert!(api.response_headers(HttpRequestId(0xdead)).is_empty());
|
|
|
|
let id = api.request_start("POST", &format!("http://{}", addr)).unwrap();
|
|
assert!(api.response_headers(id).is_empty());
|
|
|
|
let id = api.request_start("POST", &format!("http://{}", addr)).unwrap();
|
|
api.request_write_body(id, &[], None).unwrap();
|
|
while api.response_headers(id).is_empty() {
|
|
std::thread::sleep(std::time::Duration::from_millis(100));
|
|
}
|
|
|
|
let id = api.request_start("GET", &format!("http://{}", addr)).unwrap();
|
|
api.response_wait(&[id], None);
|
|
assert!(!api.response_headers(id).is_empty());
|
|
|
|
let id = api.request_start("GET", &format!("http://{}", addr)).unwrap();
|
|
let mut buf = [0; 128];
|
|
while api.response_read_body(id, &mut buf, None).unwrap() != 0 {}
|
|
assert!(api.response_headers(id).is_empty());
|
|
}
|
|
|
|
#[test]
|
|
fn response_header_invalid_call() {
|
|
let (mut api, addr) = build_api_server!();
|
|
|
|
let id = api.request_start("POST", &format!("http://{}", addr)).unwrap();
|
|
assert!(api.response_headers(id).is_empty());
|
|
|
|
let id = api.request_start("POST", &format!("http://{}", addr)).unwrap();
|
|
api.request_add_header(id, "Foo", "Bar").unwrap();
|
|
assert!(api.response_headers(id).is_empty());
|
|
|
|
let id = api.request_start("GET", &format!("http://{}", addr)).unwrap();
|
|
api.request_add_header(id, "Foo", "Bar").unwrap();
|
|
api.request_write_body(id, &[], None).unwrap();
|
|
// Note: this test actually sends out the request, and is supposed to test a situation
|
|
// where we haven't received any response yet. This test can theoretically fail if the
|
|
// HTTP response comes back faster than the kernel schedules our thread, but that is highly
|
|
// unlikely.
|
|
assert!(api.response_headers(id).is_empty());
|
|
}
|
|
|
|
#[test]
|
|
fn response_read_body_invalid_call() {
|
|
let (mut api, addr) = build_api_server!();
|
|
let mut buf = [0; 512];
|
|
|
|
match api.response_read_body(HttpRequestId(0xdead), &mut buf, None) {
|
|
Err(HttpError::Invalid) => {}
|
|
_ => panic!()
|
|
}
|
|
|
|
let id = api.request_start("GET", &format!("http://{}", addr)).unwrap();
|
|
while api.response_read_body(id, &mut buf, None).unwrap() != 0 {}
|
|
match api.response_read_body(id, &mut buf, None) {
|
|
Err(HttpError::Invalid) => {}
|
|
_ => panic!()
|
|
}
|
|
}
|
|
|
|
#[test]
|
|
fn fuzzing() {
|
|
// Uses the API in random ways to try to trigger panics.
|
|
// Doesn't test some paths, such as waiting for multiple requests. Also doesn't test what
|
|
// happens if the server force-closes our socket.
|
|
|
|
let (mut api, addr) = build_api_server!();
|
|
|
|
for _ in 0..50 {
|
|
let id = api.request_start("POST", &format!("http://{}", addr)).unwrap();
|
|
|
|
for _ in 0..250 {
|
|
match rand::random::<u8>() % 6 {
|
|
0 => { let _ = api.request_add_header(id, "Foo", "Bar"); }
|
|
1 => { let _ = api.request_write_body(id, &[1, 2, 3, 4], None); }
|
|
2 => { let _ = api.request_write_body(id, &[], None); }
|
|
3 => { let _ = api.response_wait(&[id], None); }
|
|
4 => { let _ = api.response_headers(id); }
|
|
5 => {
|
|
let mut buf = [0; 512];
|
|
let _ = api.response_read_body(id, &mut buf, None);
|
|
}
|
|
6 ..= 255 => unreachable!()
|
|
}
|
|
}
|
|
}
|
|
}
|
|
}
|