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A QoE anomaly detection and diagnosis framework for cellular network operators

机译:蜂窝网络运营商的QoE异常检测和诊断框架

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摘要

Traditional anomaly detection and diagnosis framework of cellular network is on purpose to optimize KPIs (Key Performance Indicators). However, cellular network operators are now attaching great importance to the QoE (Quality of Experience) of OTT (Over the Top) services on their networks rather than current percent-based KPIs since KPI anomaly cannot represent QoE anomaly all the time. Currently, network operators cannot measure anomalous QoS (Quality of Service) metrics which have direct mapping relationships with QoE anomaly by Network-side instrumentation, let alone QoE anomaly. To address this limitation, this paper presents a QoE anomaly detection and diagnosis framework along with a case study to evaluate its feasibility. Our study, including QoE anomaly detection and cross-layer root cause analysis, are based on a month-long WeChat video call service dataset captured by our OTTCAP (Over the Top services capturing and analyzing Platform) under live DC-HSPA+ (Dual-Cell High Speed Packet Access Plus) network. Results of our work can be directly used by network operators to do QoE prediction and network optimization at Network-side.
机译:蜂窝网络的传统异常检测和诊断框架旨在优化KPI(关键性能指标)。但是,由于KPI异常无法始终代表QoE异常,因此蜂窝网络运营商现在非常重视其网络上OTT(超顶)服务的QoE(体验质量),而不是当前基于百分比的KPI。当前,网络运营商无法通过网络侧工具来测量与QoE异常有直接映射关系的异常QoS(服务质量)指标,更不用说QoE异常了。为了解决这个限制,本文提出了一种QoE异常检测和诊断框架,并通过案例研究来评估其可行性。我们的研究包括QoE异常检测和跨层根本原因分析,是基于我们的OTTCAP(顶级服务捕获和分析平台)在实时DC-HSPA +(双小区)下捕获的为期一个月的微信视频通话服务数据集高速数据包访问加)网络。网络运营商可以直接将我们的工作结果用于网络侧的QoE预测和网络优化。

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