CDN/V2V WebRTC直播的邻居选择策略:我们能了解什么是好邻居吗?

Zhejiayu Ma, Soufiane Rouibia, F. Giroire, G. Urvoy-Keller
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引用次数: 1

摘要

对于HTTP (HLS)和基于mpeg - dash的直播提供商来说,混合式CDN/观看者对观看者(V2V)架构是一个很有吸引力的解决方案。它将传统的CDN与V2V覆盖相结合,用于交换视频片段,在保持体验质量的同时降低了CDN的成本。这项工作探索了机器学习模型来解决邻居选择的关键挑战。我们的目标是使用位置、访问提供商、操作系统、过去的CDN和V2V吞吐量等特性来预测任意两个查看器之间的连接质量。在我们的生产系统上使用A/B测试方法验证了提出的解决方案,与传统的基于位置的方法相比,证明了关键系统指标的显着改进。我们观察到V2V吞吐量提高了17%,延迟降低了26%,丢失块减少了37%,重新缓冲减少了39%,质量开关减少了20%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Neighbor Selection Strategies in the Wild for CDN/V2V WebRTC Live Streaming: Can we learn what a good neighbor is?
A hybrid CDN/Viewer-to-Viewer (V2V) architecture is an attractive solution for HTTP (HLS) and MPEG-DASH-based live streaming providers. It combines a traditional CDN with a V2V overlay for exchanging video fragments, reducing the cost of the CDN while maintaining the quality of experience. This work explores machine learning models to address the key challenge of neighbor selection. Our goal is to predict the connection quality between two arbitrary viewers using features such as locality, access providers, operating systems, past CDN, and V2V throughput. The proposed solutions are validated using an A/B testing approach on our production system, demonstrating a significant improvement in key system metrics compared to the traditional locality-based methods. We observe 17% higher V2V throughput, 26% lower delay, 37% fewer lost chunks, 39% fewer re-buffering, and 20% fewer quality switches.
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