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Who to blame when YouTube is not working? detecting anomalies in CDN-provisioned services

机译:YouTube无法运作时,应归咎于谁?检测CDN提供的服务中的异常

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Internet-scale services like YouTube are provisioned by large Content Delivery Networks (CDNs), which push content as close as possible to the end-users to improve their Quality of Experience (QoE) and to pursue their own optimization goals. Adopting space and time variant traffic delivery policies, CDNs serve users' requests from multiple servers/caches at different physical locations and different times. CDNs traffic distribution policies can have a relevant impact on the traffic routed through the Internet Service Provider (ISP), as well as unexpected negative effects on the end-user QoE. In the event of poor QoE due to faulty CDN server selection, a major problem for the ISP is to avoid being blamed by its customers. In this paper we show a real case study in which Google CDN server selection policies negatively impact the QoE of the customers of a major European ISP watching YouTube. We argue that it is extremely important for the ISP to rapidly and automatically detect such events to increase its visibility on the overall operation of the network, as well as to promptly answer possible customer complaints. We therefore present an Anomaly Detection (AD) system for detecting unexpected cache-selection changes in the traffic delivered by CDNs. The proposed algorithm improves over traditional AD approaches by analyzing the complete probability distribution of the monitored features, as well as by self-adapting its functioning to dynamic environments, providing better detection capabilities.
机译:像YouTube这样的互联网规模服务由大型内容交付网络(CDN)进行配置,该网络将内容尽可能地推向最终用户,以提高他们的体验质量(QoE)并追求自己的优化目标。 CDN通过采用时空变化的流量交付策略,可以满足来自不同物理位置和不同时间的多个服务器/缓存的用户请求。 CDN的流量分配策略可能会对通过Internet服务提供商(ISP)路由的流量产生相关影响,并对最终用户QoE产生意想不到的负面影响。如果由于CDN服务器选择错误而导致QoE较差,则ISP的主要问题是避免受到客户的指责。在本文中,我们展示了一个真实的案例研究,其中Google CDN服务器选择策略对一家主要欧洲ISP看YouTube的客户的QoE产生了负面影响。我们认为,对于ISP而言,快速自动检测此类事件以提高其在网络总体运行中的可见性以及及时回答可能的客户投诉非常重要。因此,我们提出了一种异常检测(AD)系统,用于检测CDN传递的流量中意外的缓存选择更改。所提出的算法通过分析被监视特征的完整概率分布,以及通过使其功能适应动态环境进行自适应,从而提供了更好的检测能力,从而对传统的AD方法进行了改进。

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