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YouLighter: A Cognitive Approach to Unveil YouTube CDN and Changes

机译:YouLighter:一种揭露YouTube CDN和更改的认知方法

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摘要

YouTube relies on a massively distributed content delivery network (CDN) to stream the billions of videos in its catalog. Unfortunately, very little information about the design of such CDN is available. This, combined with the pervasiveness of YouTube, poses a big challenge for Internet service providers (ISPs), which are compelled to optimize end-users’ quality of experience (QoE) while having almost no visibility and understanding of CDN decisions. This paper presents , an unsupervised technique that builds upon cognitive methodologies to identify changes in how the YouTube CDN serves traffic. leverages only passive measurements and clustering algorithms to group that appear colocated and identical into edge-nodes. This automatically unveils the YouTube edge-nodes used by the ISP customers. Next, we leverage a new metric, called , that compares the clustering results obtained from two different time snapshots to pinpoint sudden changes. By running over 10-month long traces obtained from two ISPs in different countries, we pinpoint both sudden changes in edge-node allocation, and small alterations to the cache allocation policies, which actually impair the QoE that the end-users perceive.
机译:YouTube依靠大规模分布的内容分发网络(CDN)来流式传输其目录中数十亿个视频。不幸的是,关于这种CDN设计的信息很少。加上YouTube的普及,给互联网服务提供商(ISP)带来了巨大挑战,互联网服务提供商(ISP)被迫优化最终用户的体验质量(QoE),而对CDN决策几乎一无所知。本文介绍了一种无监督的技术,该技术基于认知方法来识别YouTube CDN服务流量的变化。仅利用被动测量和聚类算法将看起来位于同一位置且相同的边缘节点分组。这会自动显示ISP客户使用的YouTube边缘节点。接下来,我们利用一个称为的新指标来比较从两个不同的时间快照获得的聚类结果,以查明突然的变化。通过运行从不同国家的两家ISP获得的长达10个月的跟踪,我们既可以确定边缘节点分配的突然变化,也可以精确地更改缓存分配策略,这实际上会损害最终用户的QoE。

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