mirror of
https://github.com/searxng/searxng
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2134703b4b
* allow not to record metrics (response time, etc...) * this commit doesn't change the UI. If the metrics are disabled /stats and /stats/errors will return empty response. in /preferences, the columns response time and reliability will be empty.
248 lines
8.4 KiB
Python
248 lines
8.4 KiB
Python
# SPDX-License-Identifier: AGPL-3.0-or-later
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# lint: pylint
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# pylint: disable=missing-module-docstring
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import typing
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import math
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import contextlib
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from timeit import default_timer
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from operator import itemgetter
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from searx.engines import engines
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from .models import HistogramStorage, CounterStorage, VoidHistogram, VoidCounterStorage
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from .error_recorder import count_error, count_exception, errors_per_engines
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__all__ = [
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"initialize",
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"get_engines_stats",
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"get_engine_errors",
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"histogram",
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"histogram_observe",
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"histogram_observe_time",
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"counter",
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"counter_inc",
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"counter_add",
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"count_error",
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"count_exception",
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]
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ENDPOINTS = {'search'}
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histogram_storage: typing.Optional[HistogramStorage] = None
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counter_storage: typing.Optional[CounterStorage] = None
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@contextlib.contextmanager
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def histogram_observe_time(*args):
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h = histogram_storage.get(*args)
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before = default_timer()
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yield before
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duration = default_timer() - before
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if h:
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h.observe(duration)
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else:
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raise ValueError("histogram " + repr((*args,)) + " doesn't not exist")
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def histogram_observe(duration, *args):
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histogram_storage.get(*args).observe(duration)
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def histogram(*args, raise_on_not_found=True):
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h = histogram_storage.get(*args)
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if raise_on_not_found and h is None:
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raise ValueError("histogram " + repr((*args,)) + " doesn't not exist")
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return h
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def counter_inc(*args):
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counter_storage.add(1, *args)
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def counter_add(value, *args):
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counter_storage.add(value, *args)
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def counter(*args):
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return counter_storage.get(*args)
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def initialize(engine_names=None, enabled=True):
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"""
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Initialize metrics
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"""
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global counter_storage, histogram_storage # pylint: disable=global-statement
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if enabled:
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counter_storage = CounterStorage()
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histogram_storage = HistogramStorage()
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else:
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counter_storage = VoidCounterStorage()
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histogram_storage = HistogramStorage(histogram_class=VoidHistogram)
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# max_timeout = max of all the engine.timeout
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max_timeout = 2
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for engine_name in engine_names or engines:
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if engine_name in engines:
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max_timeout = max(max_timeout, engines[engine_name].timeout)
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# histogram configuration
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histogram_width = 0.1
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histogram_size = int(1.5 * max_timeout / histogram_width)
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# engines
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for engine_name in engine_names or engines:
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# search count
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counter_storage.configure('engine', engine_name, 'search', 'count', 'sent')
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counter_storage.configure('engine', engine_name, 'search', 'count', 'successful')
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# global counter of errors
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counter_storage.configure('engine', engine_name, 'search', 'count', 'error')
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# score of the engine
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counter_storage.configure('engine', engine_name, 'score')
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# result count per requests
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histogram_storage.configure(1, 100, 'engine', engine_name, 'result', 'count')
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# time doing HTTP requests
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histogram_storage.configure(histogram_width, histogram_size, 'engine', engine_name, 'time', 'http')
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# total time
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# .time.request and ...response times may overlap .time.http time.
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histogram_storage.configure(histogram_width, histogram_size, 'engine', engine_name, 'time', 'total')
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def get_engine_errors(engline_name_list):
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result = {}
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engine_names = list(errors_per_engines.keys())
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engine_names.sort()
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for engine_name in engine_names:
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if engine_name not in engline_name_list:
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continue
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error_stats = errors_per_engines[engine_name]
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sent_search_count = max(counter('engine', engine_name, 'search', 'count', 'sent'), 1)
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sorted_context_count_list = sorted(error_stats.items(), key=lambda context_count: context_count[1])
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r = []
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for context, count in sorted_context_count_list:
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percentage = round(20 * count / sent_search_count) * 5
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r.append(
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{
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'filename': context.filename,
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'function': context.function,
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'line_no': context.line_no,
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'code': context.code,
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'exception_classname': context.exception_classname,
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'log_message': context.log_message,
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'log_parameters': context.log_parameters,
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'secondary': context.secondary,
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'percentage': percentage,
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}
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)
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result[engine_name] = sorted(r, reverse=True, key=lambda d: d['percentage'])
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return result
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def get_reliabilities(engline_name_list, checker_results):
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reliabilities = {}
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engine_errors = get_engine_errors(engline_name_list)
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for engine_name in engline_name_list:
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checker_result = checker_results.get(engine_name, {})
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checker_success = checker_result.get('success', True)
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errors = engine_errors.get(engine_name) or []
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if counter('engine', engine_name, 'search', 'count', 'sent') == 0:
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# no request
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reliablity = None
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elif checker_success and not errors:
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reliablity = 100
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elif 'simple' in checker_result.get('errors', {}):
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# the basic (simple) test doesn't work: the engine is broken accoding to the checker
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# even if there is no exception
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reliablity = 0
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else:
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reliablity = 100 - sum([error['percentage'] for error in errors if not error.get('secondary')])
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reliabilities[engine_name] = {
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'reliablity': reliablity,
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'errors': errors,
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'checker': checker_results.get(engine_name, {}).get('errors', {}),
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}
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return reliabilities
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def get_engines_stats(engine_name_list):
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assert counter_storage is not None
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assert histogram_storage is not None
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list_time = []
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max_time_total = max_result_count = None
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for engine_name in engine_name_list:
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sent_count = counter('engine', engine_name, 'search', 'count', 'sent')
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if sent_count == 0:
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continue
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result_count = histogram('engine', engine_name, 'result', 'count').percentage(50)
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result_count_sum = histogram('engine', engine_name, 'result', 'count').sum
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successful_count = counter('engine', engine_name, 'search', 'count', 'successful')
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time_total = histogram('engine', engine_name, 'time', 'total').percentage(50)
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max_time_total = max(time_total or 0, max_time_total or 0)
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max_result_count = max(result_count or 0, max_result_count or 0)
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stats = {
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'name': engine_name,
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'total': None,
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'total_p80': None,
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'total_p95': None,
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'http': None,
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'http_p80': None,
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'http_p95': None,
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'processing': None,
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'processing_p80': None,
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'processing_p95': None,
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'score': 0,
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'score_per_result': 0,
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'result_count': result_count,
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}
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if successful_count and result_count_sum:
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score = counter('engine', engine_name, 'score')
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stats['score'] = score
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stats['score_per_result'] = score / float(result_count_sum)
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time_http = histogram('engine', engine_name, 'time', 'http').percentage(50)
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time_http_p80 = time_http_p95 = 0
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if time_http is not None:
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time_http_p80 = histogram('engine', engine_name, 'time', 'http').percentage(80)
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time_http_p95 = histogram('engine', engine_name, 'time', 'http').percentage(95)
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stats['http'] = round(time_http, 1)
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stats['http_p80'] = round(time_http_p80, 1)
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stats['http_p95'] = round(time_http_p95, 1)
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if time_total is not None:
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time_total_p80 = histogram('engine', engine_name, 'time', 'total').percentage(80)
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time_total_p95 = histogram('engine', engine_name, 'time', 'total').percentage(95)
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stats['total'] = round(time_total, 1)
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stats['total_p80'] = round(time_total_p80, 1)
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stats['total_p95'] = round(time_total_p95, 1)
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stats['processing'] = round(time_total - (time_http or 0), 1)
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stats['processing_p80'] = round(time_total_p80 - time_http_p80, 1)
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stats['processing_p95'] = round(time_total_p95 - time_http_p95, 1)
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list_time.append(stats)
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return {
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'time': list_time,
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'max_time': math.ceil(max_time_total or 0),
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'max_result_count': math.ceil(max_result_count or 0),
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}
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