mirror of
https://mau.dev/maunium/synapse.git
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485 lines
15 KiB
Python
485 lines
15 KiB
Python
#
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# This file is licensed under the Affero General Public License (AGPL) version 3.
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#
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# Copyright (C) 2023 New Vector, Ltd
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#
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# This program is free software: you can redistribute it and/or modify
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# it under the terms of the GNU Affero General Public License as
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# published by the Free Software Foundation, either version 3 of the
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# License, or (at your option) any later version.
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#
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# See the GNU Affero General Public License for more details:
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# <https://www.gnu.org/licenses/agpl-3.0.html>.
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#
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# Originally licensed under the Apache License, Version 2.0:
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# <http://www.apache.org/licenses/LICENSE-2.0>.
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#
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# [This file includes modifications made by New Vector Limited]
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#
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#
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import itertools
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import logging
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import os
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import platform
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import threading
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from typing import (
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Callable,
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Dict,
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Generic,
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Iterable,
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Mapping,
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Optional,
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Set,
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Tuple,
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Type,
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TypeVar,
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Union,
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cast,
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)
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import attr
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from prometheus_client import CollectorRegistry, Counter, Gauge, Histogram, Metric
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from prometheus_client.core import (
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REGISTRY,
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GaugeHistogramMetricFamily,
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GaugeMetricFamily,
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)
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from twisted.python.threadpool import ThreadPool
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# This module is imported for its side effects; flake8 needn't warn that it's unused.
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import synapse.metrics._reactor_metrics # noqa: F401
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from synapse.metrics._gc import MIN_TIME_BETWEEN_GCS, install_gc_manager
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from synapse.metrics._twisted_exposition import MetricsResource, generate_latest
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from synapse.metrics._types import Collector
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from synapse.types import StrSequence
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from synapse.util import SYNAPSE_VERSION
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logger = logging.getLogger(__name__)
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METRICS_PREFIX = "/_synapse/metrics"
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all_gauges: Dict[str, Collector] = {}
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HAVE_PROC_SELF_STAT = os.path.exists("/proc/self/stat")
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class _RegistryProxy:
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@staticmethod
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def collect() -> Iterable[Metric]:
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for metric in REGISTRY.collect():
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if not metric.name.startswith("__"):
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yield metric
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# A little bit nasty, but collect() above is static so a Protocol doesn't work.
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# _RegistryProxy matches the signature of a CollectorRegistry instance enough
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# for it to be usable in the contexts in which we use it.
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# TODO Do something nicer about this.
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RegistryProxy = cast(CollectorRegistry, _RegistryProxy)
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@attr.s(slots=True, hash=True, auto_attribs=True)
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class LaterGauge(Collector):
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"""A Gauge which periodically calls a user-provided callback to produce metrics."""
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name: str
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desc: str
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labels: Optional[StrSequence] = attr.ib(hash=False)
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# callback: should either return a value (if there are no labels for this metric),
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# or dict mapping from a label tuple to a value
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caller: Callable[
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[], Union[Mapping[Tuple[str, ...], Union[int, float]], Union[int, float]]
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]
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def collect(self) -> Iterable[Metric]:
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g = GaugeMetricFamily(self.name, self.desc, labels=self.labels)
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try:
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calls = self.caller()
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except Exception:
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logger.exception("Exception running callback for LaterGauge(%s)", self.name)
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yield g
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return
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if isinstance(calls, (int, float)):
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g.add_metric([], calls)
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else:
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for k, v in calls.items():
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g.add_metric(k, v)
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yield g
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def __attrs_post_init__(self) -> None:
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self._register()
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def _register(self) -> None:
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if self.name in all_gauges.keys():
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logger.warning("%s already registered, reregistering" % (self.name,))
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REGISTRY.unregister(all_gauges.pop(self.name))
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REGISTRY.register(self)
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all_gauges[self.name] = self
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# `MetricsEntry` only makes sense when it is a `Protocol`,
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# but `Protocol` can't be used as a `TypeVar` bound.
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MetricsEntry = TypeVar("MetricsEntry")
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class InFlightGauge(Generic[MetricsEntry], Collector):
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"""Tracks number of things (e.g. requests, Measure blocks, etc) in flight
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at any given time.
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Each InFlightGauge will create a metric called `<name>_total` that counts
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the number of in flight blocks, as well as a metrics for each item in the
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given `sub_metrics` as `<name>_<sub_metric>` which will get updated by the
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callbacks.
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Args:
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name
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desc
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labels
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sub_metrics: A list of sub metrics that the callbacks will update.
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"""
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def __init__(
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self,
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name: str,
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desc: str,
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labels: StrSequence,
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sub_metrics: StrSequence,
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):
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self.name = name
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self.desc = desc
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self.labels = labels
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self.sub_metrics = sub_metrics
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# Create a class which have the sub_metrics values as attributes, which
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# default to 0 on initialization. Used to pass to registered callbacks.
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self._metrics_class: Type[MetricsEntry] = attr.make_class(
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"_MetricsEntry",
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attrs={x: attr.ib(default=0) for x in sub_metrics},
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slots=True,
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)
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# Counts number of in flight blocks for a given set of label values
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self._registrations: Dict[
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Tuple[str, ...], Set[Callable[[MetricsEntry], None]]
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] = {}
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# Protects access to _registrations
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self._lock = threading.Lock()
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self._register_with_collector()
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def register(
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self,
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key: Tuple[str, ...],
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callback: Callable[[MetricsEntry], None],
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) -> None:
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"""Registers that we've entered a new block with labels `key`.
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`callback` gets called each time the metrics are collected. The same
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value must also be given to `unregister`.
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`callback` gets called with an object that has an attribute per
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sub_metric, which should be updated with the necessary values. Note that
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the metrics object is shared between all callbacks registered with the
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same key.
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Note that `callback` may be called on a separate thread.
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"""
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with self._lock:
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self._registrations.setdefault(key, set()).add(callback)
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def unregister(
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self,
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key: Tuple[str, ...],
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callback: Callable[[MetricsEntry], None],
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) -> None:
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"""Registers that we've exited a block with labels `key`."""
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with self._lock:
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self._registrations.setdefault(key, set()).discard(callback)
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def collect(self) -> Iterable[Metric]:
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"""Called by prometheus client when it reads metrics.
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Note: may be called by a separate thread.
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"""
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in_flight = GaugeMetricFamily(
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self.name + "_total", self.desc, labels=self.labels
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)
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metrics_by_key = {}
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# We copy so that we don't mutate the list while iterating
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with self._lock:
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keys = list(self._registrations)
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for key in keys:
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with self._lock:
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callbacks = set(self._registrations[key])
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in_flight.add_metric(key, len(callbacks))
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metrics = self._metrics_class()
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metrics_by_key[key] = metrics
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for callback in callbacks:
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callback(metrics)
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yield in_flight
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for name in self.sub_metrics:
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gauge = GaugeMetricFamily(
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"_".join([self.name, name]), "", labels=self.labels
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)
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for key, metrics in metrics_by_key.items():
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gauge.add_metric(key, getattr(metrics, name))
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yield gauge
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def _register_with_collector(self) -> None:
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if self.name in all_gauges.keys():
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logger.warning("%s already registered, reregistering" % (self.name,))
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REGISTRY.unregister(all_gauges.pop(self.name))
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REGISTRY.register(self)
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all_gauges[self.name] = self
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class GaugeBucketCollector(Collector):
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"""Like a Histogram, but the buckets are Gauges which are updated atomically.
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The data is updated by calling `update_data` with an iterable of measurements.
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We assume that the data is updated less frequently than it is reported to
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Prometheus, and optimise for that case.
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"""
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__slots__ = (
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"_name",
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"_documentation",
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"_bucket_bounds",
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"_metric",
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)
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def __init__(
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self,
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name: str,
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documentation: str,
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buckets: Iterable[float],
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registry: CollectorRegistry = REGISTRY,
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):
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"""
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Args:
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name: base name of metric to be exported to Prometheus. (a _bucket suffix
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will be added.)
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documentation: help text for the metric
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buckets: The top bounds of the buckets to report
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registry: metric registry to register with
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"""
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self._name = name
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self._documentation = documentation
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# the tops of the buckets
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self._bucket_bounds = [float(b) for b in buckets]
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if self._bucket_bounds != sorted(self._bucket_bounds):
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raise ValueError("Buckets not in sorted order")
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if self._bucket_bounds[-1] != float("inf"):
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self._bucket_bounds.append(float("inf"))
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# We initially set this to None. We won't report metrics until
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# this has been initialised after a successful data update
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self._metric: Optional[GaugeHistogramMetricFamily] = None
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registry.register(self)
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def collect(self) -> Iterable[Metric]:
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# Don't report metrics unless we've already collected some data
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if self._metric is not None:
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yield self._metric
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def update_data(self, values: Iterable[float]) -> None:
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"""Update the data to be reported by the metric
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The existing data is cleared, and each measurement in the input is assigned
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to the relevant bucket.
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"""
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self._metric = self._values_to_metric(values)
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def _values_to_metric(self, values: Iterable[float]) -> GaugeHistogramMetricFamily:
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total = 0.0
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bucket_values = [0 for _ in self._bucket_bounds]
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for v in values:
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# assign each value to a bucket
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for i, bound in enumerate(self._bucket_bounds):
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if v <= bound:
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bucket_values[i] += 1
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break
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# ... and increment the sum
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total += v
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# now, aggregate the bucket values so that they count the number of entries in
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# that bucket or below.
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accumulated_values = itertools.accumulate(bucket_values)
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return GaugeHistogramMetricFamily(
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self._name,
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self._documentation,
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buckets=list(
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zip((str(b) for b in self._bucket_bounds), accumulated_values)
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),
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gsum_value=total,
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)
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#
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# Detailed CPU metrics
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#
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class CPUMetrics(Collector):
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def __init__(self) -> None:
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ticks_per_sec = 100
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try:
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# Try and get the system config
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ticks_per_sec = os.sysconf("SC_CLK_TCK")
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except (ValueError, TypeError, AttributeError):
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pass
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self.ticks_per_sec = ticks_per_sec
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def collect(self) -> Iterable[Metric]:
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if not HAVE_PROC_SELF_STAT:
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return
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with open("/proc/self/stat") as s:
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line = s.read()
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raw_stats = line.split(") ", 1)[1].split(" ")
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user = GaugeMetricFamily("process_cpu_user_seconds_total", "")
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user.add_metric([], float(raw_stats[11]) / self.ticks_per_sec)
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yield user
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sys = GaugeMetricFamily("process_cpu_system_seconds_total", "")
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sys.add_metric([], float(raw_stats[12]) / self.ticks_per_sec)
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yield sys
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REGISTRY.register(CPUMetrics())
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#
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# Federation Metrics
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#
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sent_transactions_counter = Counter("synapse_federation_client_sent_transactions", "")
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events_processed_counter = Counter("synapse_federation_client_events_processed", "")
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event_processing_loop_counter = Counter(
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"synapse_event_processing_loop_count", "Event processing loop iterations", ["name"]
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)
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event_processing_loop_room_count = Counter(
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"synapse_event_processing_loop_room_count",
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"Rooms seen per event processing loop iteration",
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["name"],
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)
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# Used to track where various components have processed in the event stream,
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# e.g. federation sending, appservice sending, etc.
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event_processing_positions = Gauge("synapse_event_processing_positions", "", ["name"])
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# Used to track the current max events stream position
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event_persisted_position = Gauge("synapse_event_persisted_position", "")
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# Used to track the received_ts of the last event processed by various
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# components
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event_processing_last_ts = Gauge("synapse_event_processing_last_ts", "", ["name"])
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# Used to track the lag processing events. This is the time difference
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# between the last processed event's received_ts and the time it was
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# finished being processed.
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event_processing_lag = Gauge("synapse_event_processing_lag", "", ["name"])
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event_processing_lag_by_event = Histogram(
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"synapse_event_processing_lag_by_event",
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"Time between an event being persisted and it being queued up to be sent to the relevant remote servers",
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["name"],
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)
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# Build info of the running server.
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build_info = Gauge(
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"synapse_build_info", "Build information", ["pythonversion", "version", "osversion"]
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)
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build_info.labels(
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" ".join([platform.python_implementation(), platform.python_version()]),
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SYNAPSE_VERSION,
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" ".join([platform.system(), platform.release()]),
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).set(1)
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# 3PID send info
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threepid_send_requests = Histogram(
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"synapse_threepid_send_requests_with_tries",
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documentation="Number of requests for a 3pid token by try count. Note if"
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" there is a request with try count of 4, then there would have been one"
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" each for 1, 2 and 3",
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buckets=(1, 2, 3, 4, 5, 10),
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labelnames=("type", "reason"),
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)
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threadpool_total_threads = Gauge(
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"synapse_threadpool_total_threads",
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"Total number of threads currently in the threadpool",
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["name"],
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)
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threadpool_total_working_threads = Gauge(
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"synapse_threadpool_working_threads",
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"Number of threads currently working in the threadpool",
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["name"],
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)
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threadpool_total_min_threads = Gauge(
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"synapse_threadpool_min_threads",
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"Minimum number of threads configured in the threadpool",
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["name"],
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)
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threadpool_total_max_threads = Gauge(
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"synapse_threadpool_max_threads",
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"Maximum number of threads configured in the threadpool",
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["name"],
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)
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def register_threadpool(name: str, threadpool: ThreadPool) -> None:
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"""Add metrics for the threadpool."""
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threadpool_total_min_threads.labels(name).set(threadpool.min)
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threadpool_total_max_threads.labels(name).set(threadpool.max)
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threadpool_total_threads.labels(name).set_function(lambda: len(threadpool.threads))
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threadpool_total_working_threads.labels(name).set_function(
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lambda: len(threadpool.working)
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)
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__all__ = [
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"Collector",
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"MetricsResource",
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"generate_latest",
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"LaterGauge",
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"InFlightGauge",
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"GaugeBucketCollector",
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"MIN_TIME_BETWEEN_GCS",
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"install_gc_manager",
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]
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