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User Dynamics-Aware Edge Caching and Computing for Mobile Virtual Reality

delete2023-09-01
delete8
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OA
AI
M
Mushu Li *
J
Jie Gao
C
Conghao Zhou
X
Xuemin Shen
W
Weihua Zhuang
DOI:10.1109/JSTSP.2023.3276595delete
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摘要

摘要

En 中文
In this article, we present a novel content caching and delivery approach for mobile virtual reality (VR) video streaming. The proposed approach aims to maximize VR video streaming performance, i.e., minimizing video frame missing rate, by proactively caching popular VR video chunks and adaptively scheduling computing resources at an edge server based on user and network dynamics. First, we design a scalable content placement scheme for deciding which video chunks to cache at the edge server based on tradeoffs between computing and caching resource consumption. Second, we propose a machine learning-assisted VR video delivery scheme, which allocates computing resources at the edge server to satisfy video delivery requests from multiple VR headsets. A Whittle index-based method is adopted to reduce the video frame missing rate by identifying network and user dynamics with low signaling overhead. Simulation results demonstrate that the proposed approach can significantly improve VR video streaming performance over conventional caching and computing resource scheduling strategies.
Keyword:
Streaming media
Servers
Headphones
Processor scheduling
Delays
Resource management
Video recording
Virtual reality
deep reinforcement learning
caching
content delivery
resource scheduling

期刊

IEEE Journal of Selected Topics in Signal Processing 封面图
IEEE Journal of Selected Topics in Signal Processing
IF:
13.7
论文数:
1.9K
被引数:
1.1W

机构

T
Toronto Metropolitan University
学者数:
6.0K
论文数: 7.0K
被引数: 6.4K
C
carleton university
学者数:
7.5K
论文数: 8.3K
被引数: 5
U
University of Waterloo
学者数:
2.2W
论文数: 2.3W
被引数: 3.3W
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