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A Provider-side View of Web Search Response Time

机译:Web搜索响应时间的提供程序侧视图

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摘要

Using a large Web search service as a case study, we highlight the challenges that modern Web services face in understanding and diagnosing the response time experienced by users. We show that search response time (SRT) varies widely over time and also exhibits counterintuitive behavior. It is actually higher during off-peak hours, when the query load is lower, than during peak hours. To resolve this paradox and explain SRT variations in general, we develop an analysis framework that separates systemic variations due to periodic changes in service usage and anomalous variations due to unanticipated events such as failures and denial-of-service attacks. We find that systemic SRT variations are primarily caused by systemic changes in aggregate network characteristics, nature of user queries, and browser types. For instance, one reason for higher SRTs during off-peak hours is that during those hours a greater fraction of queries come from slower, mainly-residential networks. We also develop a technique that, by factoring out the impact of such variations, robustly detects and diagnoses performance anomalies in SRT. Deployment experience shows that our technique detects three times more true (operator-verified) anomalies than existing techniques.
机译:通过使用大型Web搜索服务作为案例研究,我们强调了现代Web服务在理解和诊断用户所经历的响应时间方面所面临的挑战。我们显示搜索响应时间(SRT)随时间变化很大,并且还显示出违反直觉的行为。实际上,在非高峰时段(查询负载较低),它比高峰时段更高。为了解决这一矛盾并从总体上解释SRT的变化,我们开发了一个分析框架,该框架将由于服务使用的定期更改和由于意外事件(例如,故障和拒绝服务攻击)导致的异常变化导致的系统变化分开。我们发现系统性SRT的变化主要是由总体网络特征,用户查询的性质和浏览器类型的系统性变化引起的。例如,非高峰时段SRT较高的原因之一是,在这些时段内,大部分查询来自较慢的,主要是住宅网络。我们还开发了一种技术,通过排除这种变化的影响,可以稳健地检测和诊断SRT中的性能异常。部署经验表明,我们的技术检测到的真实(经操作员验证)异常是现有技术的三倍。

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