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FAILURE PREDICTION IN VIDEO-STREAMING SERVERS THROUGH PERFORMANCE ANALYSIS OF SERVER AND CLIENT-SERVER INTERACTIONS

机译:通过服务器和客户端-服务器交互的性能分析,预测视频流服务器中的故障

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Video-streaming services are nowadays one of the biggest contributors to Internet traffic. Due to the real time characteristic of video-streaming, very low failure de tection and recovery delays are required. Proactive recov ery in face of performance degradation is a prominent area to explore. Current performance analysis work in video streaming focuses mostly on capacity planning and session admission through complex workload and resource model ing. These models have limited application when degrada tion is not explained by client workload (e.g., dynamic re source reallocation, software faults and misconfiguration). We explore server-side monitoring of performance degradations in video-streaming servers, based on statis tical analysis of server metrics and client-server interaction messages. Statistical analysis of event logs show that an alyzed metrics can be used as symptoms of failures to an ticipate them and thus enabling proactive recovery. Excep tion is server overloading caused by streaming of unpopular videos, which are exposed by metrics when QoS degrada tion is close to accepted quality thresholds.
机译:如今,视频流服务是互联网流量的最大贡献者之一。由于视频流的实时特性,因此需要非常低的故障检测和恢复延迟。面对性能下降的主动恢复是一个值得探索的重要领域。当前在视频流中的性能分析工作主要集中在容量规划和通过复杂的工作负载和资源建模进行会话接纳。当客户端工作负载无法解释降级时(例如动态资源重新分配,软件故障和配置错误),这些模型的应用受到限制。我们基于对服务器指标和客户端-服务器交互消息的统计分析,探索服务器端对视频流服务器性能下降的监视。事件日志的统计分析表明,经过分析的指标可以用作失败的征兆,以引起关注,从而可以主动恢复。例外是由不受欢迎的视频流引起的服务器超载,当QoS降级接近可接受的质量阈值时,度量将暴露不受欢迎的视频。

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