mmSV: mmWave Vehicular Networking using Street View Imagery in Urban Environments
Ahmad Kamari, Yoon Chae, Parth Pathak
摘要
As we move towards a future of connected and autonomous vehicles, high-speed and low-latency connectivity between vehicles is becoming increasingly important. This paper investigates enabling high data rate mmWave links in vehicle-to-vehicle (V2V) scenarios using street view images. We find that mmWave V2V links in urban settings suffer from frequent and prolonged blockages, resulting in unreliable connection and high beamforming overhead. Our work proposes mmSV, a system that creates 3D reflection profiles from street view images to assist vehicles in finding mmWave reflections from the environment in real-time. mmSV consists of two key components: material identification which identifies materials from street view images to determine their reflectivity and create 3D reflection map, and environment-driven ray-tracing and beamsearching which finds a high-SNR beam using predicted 3D material maps. Our extensive experimental results on the mmWave testbed show that mmSV can provide highly reliable V2V mmWave connectivity with low beamforming overhead.
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引用它的顶会 Paper2
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- SemanticKITTI: A Dataset for Semantic Scene Understanding of LiDAR SequencesJens Behley, Martin Garbade, Andres Milioto, Jan Quenzel 等ICCV 2019 · 被引用 2,345 次
- FLASH: Federated Learning for Automated Selection of High-band mmWave SectorsBatool Salehi, Jerry Gu, Debashri Roy, Kaushik R. ChowdhuryINFOCOM 2022 · 被引用 70 次
- Two beams are better than one: towards reliable and high throughput mmWave linksIsh Kumar Jain, Raghav Subbaraman, Dinesh BharadiaSIGCOMM 2021 · 被引用 49 次
- Demystifying millimeter-wave V2X: towards robust and efficient directional connectivity under high mobilitySong Wang, Jingqi Huang, Xinyu ZhangMobiCom 2020 · 被引用 47 次
- X-Array: approximating omnidirectional millimeter-wave coverage using an array of phased arraysSong Wang, Jingqi Huang, Xinyu Zhang, Hyoil Kim 等MobiCom 2020 · 被引用 30 次
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