Teach the `rad sync` and `rad clone` commands to accept the
`--signed-refs-feature-level` option. This option configures that
fetch to use the minimum feature level provided when fetching from
other nodes. This overrides the value of
`node.fetch.signedReferences.featureLevel.minimum`, and should only be
used in scenarios where it is necessary to downgrade the security of a
fetch for backwards compatibility.
To achieve this, the `Handle::fetch` method introduces an optional
parameter for threading through the `FeatureLevel`.
The configuration of the fetch process was only achieved at the setup
of the of the node.
This limits the ability to pass configuration options to the fetch
worker while the node service is running.
This change introduces `radicle_protocol::fetcher::state::FetchConfig`
to allow configuration options to be kept track of. This includes the
previous `timeout` option, but now also includes the
`radicle_fetch::Config`.
The service now produces the `FetchConfig` and passes it through to
the fetch worker.
Add a configuration knob `node.fetch.signedReferences.featureLevel.minimum` to
allow node operators to enforce more strict verification when fetching
Signed References.
In order to allow automatic migration to the feature level 'parent',
introduce a way to force writing signed references, even if the
user-controlled refs are unchanged.
To detect the special case of a Signed References history with a single
and root commit (which would otherwise be detected as feature level
'parent', even though the `refs/rad/sigrefs-parent` ref cannot be
written), keep information about the parent commit in `SignedRefs`.
The output of `rad inspect --sigrefs` is changed to match the more
strict interpretation of the feature level for histories with a single
and root commit.
Configuration of database connections is not performed on `open`, which
leaves room for error (e.g. to miss specifying configuration).
Methods on `Profile` automatically supply the configuration of the
profile.
In testing code, just using the default configuration suffices.
Instead of introducing our own names and aliases, directly model SQLite
pragmas with the defaults that they also take in SQLite, to avoid
confusion.
Co-authored-by: Lorenz Leutgeb <lorenz.leutgeb@radicle.xyz>
Use proxy structs to control the serialized output of `FetcherState`.
These structs convert data inside the `FetcherState` into friendlier
output for the caller of `rad node debug`.
Since the service performs further I/O (e.g. uses SQLite), it can keep
the reactor runtime thread busy for long periods. Emit a warning if that
is the case.
100 ms is quite relaxed, this is to only catch severe cases and avoid
spamming the log.
The node being connected to may be blocking the connecting node.
In this case the service will emit an event that says the connecting
node is disconnected.
Check the events for this event as well as `Event::PeerConnected`.
Introduces the ability to explicitly block a peer via the node control
socket. Previously, the node only exposed follow and unfollow commands.
While the underlying policy database schema supported a Block variant,
there was no mechanism to trigger this state via the client handle.
The new block command:
1. Updates the node's follow policy to Block.
2. Immediately disconnects the peer if a session is active.
The previous resolution would favour one `Oid` over another, due to
the call to `Option::or`.
This was found to result in scenarios where an identity document being
advertised was older than the identity document that the fetching node
already has, and would not fetch namespaces by newly added delegates.
The resolution logic is updated to handle all cases for these `Oid`s,
and when they are both present, uses a commit graph check to see which
one is the latest.
An e2e test is added to check ensure behaviour works correctly.
The `Responder` is a oneshot channel where it sends one result and the
other side receives that result.
This surfaced that the `AnnounceRefs` command was returning one result
at a time. At the moment, this is only used for a single namespace,
the local user's.
Refactors every command that uses a `Sender` to use a `Responder`
instead. There is an exception for `QueryState` since its usage
differs slightly to the other cases.
To make the usage more ergonomic, constructors for the variants that
require a `Responder` are added.
The construction of the debug object is unwieldy, and error prone
(for example, renamed struct members have to be manually renamed
in the serialization code, see "refs" vs. "refsAt").
Use derived serializers where possible to make this easier to maintain.
Using empty `Vec`s to mean "all refs" can be confusing. Avoid the chance
of confusion by introduction of a new type that clearly describes which
refs should be fetched.
Recent versions of Windows support Unix Domain Sockets natively, see
<https://devblogs.microsoft.com/commandline/af_unix-comes-to-windows/>.
By using that feature instead of Windows named pipes, the difference
for handling communication via the control socket comparing Unix-like
systems and Windows becomes smaller:
1. No special paths like `\.\pipe\…` have to be handled.
2. Not two I/O mechanisms are abstracted (named pipe and UDS) but
just one.
3. `winpipe` relies on background threads while `uds_windows` does
not.
Once the feature `windows_unix_domain_sockets` (which is tracked at
https://github.com/rust-lang/rust/issues/150487) stabilizes, it will
likely be possible to just drop the dependency `uds_windows` and use
the implementation in `std::os::windows::net` directly.
Wire up the new `FetcherService`. This reduces the `Service` fetch
methods down to:
- `fetch`
- `fetched`
- `dequeue_fetches`
- `fetch_refs_at`
This simplifies the code by off-loading the logic to the `fetcher`
family of types, rather than handling the intricacies in the `Service`
itself.
The `Service` now just performs the necessary I/O based on the
returned events from the `fetcher`.
This also removes the fetching state from the node sessions. This
follows the single responsibility, and sessions now only care about
their connectivity.
Breaking changes:
- The `Connected` state of a peer no longer contains fetching
information, which was being returned as part of the JSON payload
result.
- The `rad debug` information for ongoing fetches contained the number
listeners awaiting for results, this was removed.
Evaluate the `error!` logging in `radicle-node`.
The majority of cases, the `error!` is downgraded to `warn!`. These
cases are generally useful to know if there's an issue, but the
operator cannon necessarily do anything about it.
In a few cases, `debug!` was chosen. These are generally when an error
means that a result is not part of an accumulation, or the system will
eventually correct itself during another event or restart.
Evaluate the `warn!` logging in `radicle-node`.
If the event is a result of something being suspicious in the running
of the protocol, then it remains a `warn!`.
However, if the system ends up ignoring the event and can continue
without issues, the log level is reduced to `debug!`.
Instead of changing `impl From<SystemTime> for LocalTime` to `TryFrom`,
the implementation was removed, as there are not many callsites, and
they are well served by `LocalTime::now`.
radicle-localtime: drop TryFrom SystemTime
radicle-node: switch SystemTime usage with LocalTime
The `localtime` crate was defined by cloudhead, and is a minimal
repository with a single `lib.rs`.
Instead of using it as an external dependency, copy the code directly
into a new workspace crate `radicle-localtime`.
The default `serde` implementation goes through the `LocalTime`'s
seconds values rather than milliseconds, since this is the more common
format. This allows the removal of the `serde_ext` functions.
The one place milliseconds was used was for the
`radicle::cob::common::Timestamp` type, where the `Serialize` and
`Deserialize` implementations are manually written.
It also adds a `schemars` feature to remove `schemars_ext` functions
in `radicle` as well.
Instead of logging all IO errors as an error, match on the kind of the
error, logging an info message, otherwise an error.
These errors are informational, and cannot necessarily be resolved by
the node operator – since it is a matter of not being able to connect
to another end.
The following block did not need mutable access to the `outbound`
value.
To avoid confusion around mutable access, the call was downgraded to
`get` so that the reader can safely know there is no mutation
happening.
The `struct Epoch` introduced in e404f1038f
inadvertently made `radicle-node` suffer from
https://github.com/rust-lang/rust/issues/87906
That is, updating of the "current time" was skewed *way more*
than expected by a slowly ticking monotonic clock. Such slow
ticking can be caused by suspending the system.