Three fixes in the telemetry wiring this branch owns.
An OTel collector records through the global meter provider, which only the
telemetry module installs. With [telemetry] enabled=0 the collector attached to
the SDK's noop provider, dropped every metric, and still logged that it had
started. makeCollectorManager now takes whether telemetry is on and warns; what
gets built is unchanged. telemetry_ is constructed before collectorManager_, so
the value is available.
The default metrics endpoint was spelled three times. Name it once as
kDefaultMetricsEndpoint, beside the export-cadence defaults that already live in
Telemetry.h for the same reason, and read it from the Setup member, the config
parser's default and the collector.
The scheme guard ran only when tls_client_cert was set, so use_tls=1 on an http
endpoint validated the certificate files and then exported in the clear. It now
covers every use_tls=1 node, for both signals. Two cases that pinned the old
behaviour are flipped to _throws, each asserting which endpoint key the message
names, and three more get https endpoints so the scheme guard is not what fires.
MonitoredMode::set calls onModeChange on every round start, so the span was
created whether or not the mode moved. A node with a steady mode therefore
emitted one mode_change per round carrying mode_old == mode_new, which a live
sweep confirmed on every round of both instrumented builds. The round span's
own consensus_mode attribute is still written on every call, since that is
where the round learns the mode it is running in.
accept.apply was a plain SpanGuard, so it never became the ambient span of
doAccept. The spans the function goes on to create inherited the activated
accept span instead and came out as accept.apply's siblings, while running
inside its own time window. Every guard was scoped before the SpanGuard split,
so this restores the hierarchy that design had.
Scoped now, so the hierarchy follows the call flow. Drops the parent-context
fallback arm with it: the accept context is captured only while the accept span
is live, and that span is a child of the round context, so an invalid accept
context implies an invalid round context and both arms returned an empty guard.
Only SpanGuard carried addEvent(name, attrs), so a call site holding a scoped
guard could not record an event attribute. Forwarding overload, with the no-op
twin in the telemetry-disabled stub, so a span can be converted between scoped
and unscoped without dropping the attributes on its events.
Resolved src/libxrpl/tx/applySteps.cpp. calculateBaseFee now returns
std::expected<XRPAmount, TER>, so invokePreclaim rejects the transaction when
the fee cannot be computed. Kept that inside this branch's preclaimTer wrapper,
so the returned error also reaches the span's ter_result attribute.
Static constants take the k prefix (readability-identifier-naming), and
SpanGuardScope.cpp no longer names anything from <opentelemetry/metrics/noop.h>
since it calls noopMeter(). Both fail CI under warnings-as-errors.
The helper's docstring also claimed NoopMeterProvider hides the base
two-argument GetMeter; it declares that overload itself, so the only
detail worth sharing is the version.
Co-Authored-By: Claude Fable 5.1 <noreply@anthropic.com>
Lift the seed parsing and the stored-vs-mint choice into two libxrpl
helpers, parseNodeIdentitySeed() and selectNodeIdentity(), so xrpl_tests
can drive each branch without an xrpld Config. resolveNodeIdentity() now
marshals Config and the cmdline into them; behaviour is unchanged.
Also pin that storeNodeIdentity() appends (row count, not SQLite row
order), fix the test header that described getNodeIdentity()'s property
as the store's, and route NullTelemetry::getMeter() through noopMeter().
Co-Authored-By: Claude Fable 5.1 <noreply@anthropic.com>
resolveNodePublicKey() returned std::nullopt in three real cases: a first boot
with no wallet database, a standalone run (its wallet is a private temporary
database), and --newnodeid. Telemetry's resources are built during
ApplicationImp's member-init list and are immutable, so on those runs the node
reported an empty service.instance.id and no xrpl.node.id for the whole run,
while setup() minted a key moments later and patched only the tracer.
Replace it with resolveNodeIdentity(), which always returns a keypair: derived
from a configured seed, else read from an existing wallet database, else
minted. Main.cpp passes that pair to makeApplication(), ApplicationImp stores
it in nodeIdentity_ -- now declared before telemetry_ and no longer an optional,
because it is always set -- and builds the telemetry resource from it.
setup() calls getNodeIdentity(), which now persists rather than mints: it
stores the resolved pair when the wallet holds no identity, adopts the stored
one when it does, and clears first for --newnodeid. The write stays in setup()
because that is where the database exists; a standalone run has no persistent
wallet to write to, which is why the pair has to be decided before
construction rather than read back afterwards. Wallet gains storeNodeIdentity()
for that write, and getNodeIdentity(session) now uses it instead of repeating
the insert.
The three-argument makeApplication() mints a keypair, so jtx::Env and any other
test Application behave as a standalone run always did.
Also fold the three hand-rolled "meter from a NoopMeterProvider" copies into
telemetry::noopMeter(): the base-pointer call and the kMeterVersion argument are
both easy to get wrong alone, and the meter identity has to match the one the
histogram views select on.
The new gtest covers the wallet half: store-then-read, store not replacing an
existing identity, clear-then-store, and that the mint path persists. It adds
the tests.libxrpl > xrpl.rdb levelization edge, regenerated here.