Resolved five files.
PerfLogImp.cpp: PerfLog now takes its method names as string_view, so the
methods map stores the map key rather than a char const*. Kept this branch's
scoped lock so the OTel recording still runs after methodsMutex is released,
and kept both the NetworkOPs and metric-macro includes.
PeerImp.h: took develop's earlier `protected:`, which also covers
processLedgerRequest, and kept recordGetObjectMetrics inside it. Dropped the
comment naming one test, since four test files now rely on that access.
TMGetObjectByHash_test.cpp: kept this branch's suite. It already runs develop's
three bound cases (limit+1, limit, limit-1) as testReplyLimit, plus the charge
and hit/miss cases. develop's extracted PeerTest.h stays, used by its four new
overlay tests.
ordering.txt: regenerated. Both perflog edges are real, to xrpl.server and to
xrpl.telemetry.
.cspell.config.yaml: kept both added words.
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.
Moving the tx.receive span past the duplicate check removed the only record of
why a relayed copy was dropped. A labelled counter restores it, and covers the
inner-batch reject the span never usefully reached.
The count itself was never span-derived: transactions_duplicate already totals
the dropped copies and predates the telemetry work. What was missing is the
split between ordinary relay overlap and a peer sending traffic it should not.
A counter also survives sampling and runs with tracing off, which the span
attribute did not.
Brings the MetricsRegistry split onto this branch. The pipeline half is now
xrpl::telemetry::MetricsRegistry in libxrpl; the observable gauges are
xrpl::telemetry::AppMetricGauges in xrpld.
This branch had added its own instrumentation to the pre-split class, so the
merge had to route each addition to the correct half:
- The thirteen gauges added here -- amendment block, cache hit-rate detail,
clock skew, job-queue saturation, ledger quorum publish, peer ledger supply,
rotation state, slot census, stall events, sync acquire, sync state, UNL
quorum, and the cache lock-hold observer -- all land on AppMetricGauges,
reading the core's meter and validation tracker through it.
- The pipeline additions stay in libxrpl: the consensus round-duration and
rotation-phase histogram views, the malloc-trim and dns/dial latency bucket
ladders, the job-stall counter, and the switch from literal metric names to
the MetricNames.h constants.
Git detected the pre-split MetricsRegistry.cpp and .h as renames of the gauge
files, so both sides' pipeline changes initially landed in the gauge half. They
were moved back, and the result was audited by inventory: every method
definition, instrument creation, view registration, and emitted string from
either side is present, with identical multiplicity.
MetricNames.h moves to include/xrpl/telemetry/ alongside the core. It has no
includes of its own and its two sibling name headers already live there, so
keeping it under src/ would leave an xrpld path in libxrpl's dependency
surface. Nineteen files follow it.
incrementStateChanges() stays removed. The labelled state_changes_total{from,to}
counter this branch introduced replaces it, and the test asserting the method is
absent is kept -- an unlabelled instrument alongside the labelled one would give
Prometheus two conflicting versions of one metric name.
Two tests that drove startAsyncGauges() against a mock ServiceRegistry are
dropped: xrpl_tests links only xrpl.libxrpl and cannot reach the gauge class.
Levelization regenerated. Both xrpld.telemetry loops become bidirectional
rather than one-way; neither is new.
MetricsRegistry did two jobs. It owned the OTel metrics pipeline, and it
registered the observable gauges whose callbacks read live application
services. The second job is what made the whole class xrpld-tier, so the
pipeline's lifecycle -- the recording() gate and the stop() teardown that
closes a use-after-free window -- could not be unit-tested in xrpl_tests.
Split it in two:
- xrpl::telemetry::MetricsRegistry (libxrpl) owns the exporter, provider,
meter, the 16 synchronous instruments, recording(), stop(), and the
record*/increment* methods.
- xrpl::telemetry::AppMetricGauges (xrpld) owns the 19 observable gauges
and their callbacks, holding a reference to the core and to the
ServiceRegistry.
MetricMacros.h and ValidationTracker move with the core. The macros need
only recording() and meter(), both core members; the core holds a tracker
by value, and a libxrpl header cannot include one from src/.
ApplicationImp owns both objects and sequences them. The core is built in
the member-init list, so every synchronous instrument exists before any
subsystem can record one. The gauges are armed once overlay_ exists, the
last service their callbacks read. Shutdown detaches the gauge callbacks
before the core drops the provider, and each shutdown step is isolated so
a failure in one cannot skip the others.
That detach call is new. detachCallbacks() had no callers, and the flag it
sets is read by the gauge callbacks but can no longer be written by the
core, so the caller now has to make the ordering explicit.
The telemetry module links xrpl.libxrpl.core and xrpl.libxrpl.protocol
PUBLIC: ValidationTracker.h takes a LedgerIndex and MetricMacros.h takes a
ServiceRegistry, both in interfaces a consumer compiles against.
Adds a MetricsRegistry gtest that drives an enabled core with telemetry on
and pins the recording() gate, stop() leaving the registry inert, and
stop() being idempotent. The libxrpl test tree no longer depends on
xrpld.telemetry at all, and the two CMake workarounds that compiled xrpld
sources into xrpl_tests are gone.
Documentation and dashboard source links follow the code to their new
paths, split between the two classes by which one now defines each metric.
The reference doc, span-harness notes and histogram-bucket comments
named the internal AWS dev box and dates while explaining why the
rotation phases are timed. Reword to the general mechanism (a
multi-second freeze at the copy-walk to freshen boundary on a populated
node); the specific hosts, dates and trace ids stay in the task notes.
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>
Resolutions:
- MetricsRegistry.cpp: keep both <exception> and <limits>; drop
incrementStateChanges(), which this branch removed on purpose (the
labelled state_changes_total call site in NetworkOPsImp::setMode
replaces it, and a compile-time test guards that).
- tests/MetricsRegistry.cpp: constructor-built pipeline wording from
phase-10, this branch's test list and gauge paragraphs kept; the two
lifecycle tests now call startAsyncGauges() and pass kTestOptions.
- tests/MetricMacros.cpp: comments name the recording() gate.
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>
Adds `consensus_view_change_total{consensus_mode}` and a `view.change` event
on the round span, both fired from `RCLConsensus::Adaptor::getPrevLedger`
on the same transition-into-WrongLedger edge that already calls
`consensusViewChange()`. The counter is the exact detector for
"consensus disagreed with this node's view this minute"; the event lands the
disagreement on the same trace that carries the round.
`net_ledger_prefix` (16 hex chars) joins `prev_ledger_prefix` on the event,
so a Tempo view of one flap shows both ledger identities on a single line.
`consensus_mode` labels the mode being left (never WrongLedger itself).
Together with the rotation-phase spans, this closes the proof chain a
rotation-driven `full`->`syncing` flap needs — the runbook's step 5
resolves now that the counter and event exist.
Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>
Three conflicts, all from both branches editing the same passage:
- Main.cpp: kept phase-9's wording. The metrics registry only exists here, so
"unwinding destroys little: the metrics registry, whose destructor joins its
export thread" is the true statement on this branch.
- TESTING.md: kept both paragraphs. They document different things (the
private [network_id], and the log path plus log_level).
- 05-configuration-reference.md: composed both. The identity is now resolved
before construction and never empty, so every producer stamps the node key
from the start; the only divergence left is a wallet that already holds a
different key, which corrects the tracer alone. Rewrote the earlier
"three producers" blockquote too: its "no fallback", "first boot ... left
off" and "Known issue" claims are what this change removes.
One silent break the merge could not flag: makeMetricsRegistryOptions() took
the std::optional<std::string> node key that used to be a constructor
parameter, and that parameter is now the resolved keypair. It takes the base58
string directly, and the constructor derives it from nodeIdentity_, which is
declared before both telemetry_ and metricsRegistry_.
Preparing to point the finger at TaggedCache's mutex when the whole process
freezes at rotation time. Every `sweep()` and `getKeys()` calls `noteLockHold`
after releasing the mutex; `takeLockHoldPeak()` returns the longest hold since
the last call and resets. A one-second hold logs a warn line naming the op
and the entry count — the same one-second bar `LoadMonitor::addLoadSample`
uses to flag a job.
`lockHoldPeakNs_` is a mutable atomic so `getKeys() const` can note its own
hold; `FullBelowCache` forwards `takeLockHoldPeak()` so the metrics layer can
read either cache the same way. Nothing here depends on telemetry — this file
lives in `xrpl/basics` and must not.
Test pins the behaviour end to end: neither getKeys() nor sweep() records
anything on an empty cache; both push the peak above zero once the cache has
200,000 entries; and takeLockHoldPeak() is destructive.
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.
Adds the metric and label constants the rotation-stall proof chain uses:
- `rotation_phase_duration_seconds` — per-phase wall-clock, labelled by `stage`,
with 8 values in `lval::rotation_phase` matching the child span suffixes.
- `jobq_stall_total` — a counter for jobs whose run time reached LoadMonitor's
1 s warn threshold.
- `lval::cache_metrics::treenode_lock_hold_peak_us` / `fullbelow_lock_hold_peak_us`
as `metric` values on the existing `cache_metrics` gauge, for the TaggedCache
lock-hold peaks the next commits expose.
`kRotationPhaseSecondsBuckets` in HistogramBuckets.h covers 1 s to 1 h, wired
through `addRotationPhaseHistogramView` at instrument-registration time so
`histogram_quantile` never has to interpolate inside the +Inf bucket. Ladder
test and a labelled histogram macro test pin the values.
Groundwork for WP-B6 (rotation stall tracing). Introduces the constant set the
rest of the work references without emitting anything yet: `seg::nodestore`,
`nodestore_span::rotateFull` and its eight phase suffixes, the attribute keys
and outcome values, and `rotationOutcome()` as a constexpr total function over
the `RotationExit` enum so no exit of `SHAMapStoreImp::run`'s rotation block
can leave the root span without an outcome.
Tests pin the literal names the collector keep-policy, expected_spans.json and
the dashboards match on, and static_assert `rotationOutcome()` over its whole
input domain.