Fuzzy Logic Inference System for Quality of Experience Modeling for LTE Video Streaming: Case of Addis Ababa LTE Network

Amare Kassaw, Aysheshim Demilie, Y. Wondie
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Abstract

Nowadays, video streaming has become one of the most dominant services due to increasing interest in watching online television programs and video on demand. Providing this service requires a high speed and high capacity network infrastructure. In this work, we propose quality of experience (QoE) model using fuzzy logic inference system for video streaming services. The proposed model is used to measure the user perception from quality of service (QoS) parameters. The model is essential to replace conventional subjective measurement techniques that are costly and inefficient. In addition, the proposed model is helpful for business decision making, network planning, optimization and operational support activities. The result analysis shows that the stall frequency and the start delay play a major impact on user perception by 33 % and 25 %, respectively. Besides, validation of the results shows that the proposed model is accurate, consistent and linear compared to currently existing models.
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LTE视频流体验质量建模的模糊逻辑推理系统:以亚的斯亚贝巴LTE网络为例
如今,由于人们对观看在线电视节目和视频点播的兴趣日益浓厚,视频流媒体已成为最主要的服务之一。提供此服务需要高速、高容量的网络基础设施。在这项工作中,我们提出了使用模糊逻辑推理系统的视频流服务的体验质量(QoE)模型。该模型用于从服务质量(QoS)参数度量用户感知。该模型对于取代成本高、效率低的传统主观测量技术至关重要。此外,该模型还有助于业务决策、网络规划、优化和运营支持活动。结果分析表明,失速频率和启动延迟对用户感知的主要影响分别为33%和25%。结果验证表明,与现有模型相比,该模型具有较好的准确性、一致性和线性性。
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