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Cache-Centric Video Recommendation: An Approach to Improve the Efficiency of YouTube Caches

机译:以缓存为中心的视频推荐:一种提高YouTube缓存效率的方法

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In this article, we take advantage of the user behavior of requesting videos from the top of the related list provided by YouTube to improve the performance of YouTube caches. We recommend that local caches reorder the related lists associated with YouTube videos, presenting the cached content above noncached content. We argue that the likelihood that viewers select content from the top of the related list is higher than selection from the bottom, and pushing contents already in the cache to the top of the related list would increase the likelihood of choosing cached content. To verify that the position on the list really is the selection criterion more dominant than the content itself, we conduct a user study with 40 YouTube-using volunteers who were presented with random related lists in their everyday YouTube use. After confirming our assumption, we analyze the benefits of our approach by an investigation that is based on two traces collected from a university campus. Our analysis shows that the proposed reordering approach for related lists would lead to a 2 to 5 times increase in cache hit rate compared to an approach without reordering the related list. This increase in hit rate would lead to reduction in server load and backend bandwidth usage, which in turn reduces the latency in streaming the video requested by the viewer and has the potential to improve the overall performance of YouTube's content distribution system. An analysis of YouTube's recommendation system reveals that related lists are created from a small pool of videos, which increases the potential for caching content from related lists and reordering based on the content in the cache.
机译:在本文中,我们利用了用户的行为,即从YouTube提供的相关列表的顶部请求视频,以改善YouTube缓存的性能。我们建议本地缓存对与YouTube视频相关的相关列表进行重新排序,以将缓存内容显示在非缓存内容之上。我们认为,观看者从相关列表的顶部选择内容的可能性高于从底部选择内容的可能性,并且将已经在缓存中的内容推到相关列表的顶部将增加选择缓存内容的可能性。为了验证列表中的位置确实是比内容本身更重要的选择标准,我们对40名使用YouTube的志愿者进行了用户研究,这些志愿者在日常使用YouTube时会收到随机相关的列表。在确认我们的假设之后,我们将基于从大学校园中收集到的两条痕迹进行调查,从而分析我们方法的好处。我们的分析表明,与不对相关列表进行重新排序的方法相比,建议的对相关列表进行重新排序的方法将导致高速缓存命中率提高2至5倍。命中率的提高将导致服务器负载和后端带宽使用量的减少,进而减少观看者请求的视频流式传输的延迟,并有可能改善YouTube内容分发系统的整体性能。对YouTube推荐系统的分析显示,相关列表是从一小段视频创建的,这增加了从相关列表中缓存内容并根据缓存中的内容重新排序的可能性。

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