DNN-Driven Compressive Offloading for Edge-Assisted Semantic Video Segmentation
Xuedou Xiao, Juecheng Zhang, Wei Wang, Jianhua He, Qian Zhang
摘要
Deep learning has shown impressive performance in semantic segmentation, but it is still unaffordable for resource-constrained mobile devices. While offloading computation tasks is promising, the high traffic demands overwhelm the limited bandwidth. Existing compression algorithms are not fit for semantic segmentation, as the lack of obvious and concentrated regions of interest (RoIs) forces the adoption of uniform compression strategies, leading to low compression ratios or accuracy. This paper introduces STAC, a DNN-driven compression scheme tailored for edge-assisted semantic video segmentation. STAC is the first to exploit DNN’s gradients as spatial sensitivity metrics for spatial adaptive compression and achieves superior compression ratio and accuracy. Yet, it is challenging to adapt this content-customized compression to videos. Practical issues include varying spatial sensitivity and huge bandwidth consumption for compression strategy feedback and offloading. We tackle these issues through a spatiotemporal adaptive scheme, which (1) takes partial strategy generation operations offline to reduce communication load, and (2) propagates compression strategies and segmentation results across frames through dense optical flow, and adaptively offloads keyframes to accommodate video content. We implement STAC on a commodity mobile device. Experiments show that STAC can save up to 20.95% of bandwidth without losing accuracy, compared to the state-of-the-art algorithm.
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引用它的顶会 Paper3
- PacketGame: Multi-Stream Packet Gating for Concurrent Video Inference at ScaleMu Yuan, Lan Zhang, Xuanke You, Xiang-Yang LiSIGCOMM 2023 · 被引用 18 次
- Think before You Leap: Content-Aware Low-Cost Edge-Assisted Video Semantic SegmentationMingxuan Yan, Yi Wang, Xuedou Xiao, Zhiqing Luo 等ACM MM 2023 · 被引用 3 次
- PDStream: Slashing Long- Tail Delay in Interactive Video Streaming via Pseudo-Dual StreamingXuedou Xiao, Yingying Zuo, Mingxuan Yan, Kezhong Liu 等INFOCOM 2025 · 被引用 1 次
它引用的顶会 Paper3
- Server-Driven Video Streaming for Deep Learning InferenceKuntai Du, Ahsan Pervaiz, Xin Yuan, Aakanksha Chowdhery 等SIGCOMM 2020 · 被引用 238 次
- EdgeDuet: Tiling Small Object Detection for Edge Assisted Autonomous Mobile VisionXu Wang, Zheng Yang, Jiahang Wu, Yi Zhao 等INFOCOM 2021 · 被引用 54 次
- Enabling Edge-Cloud Video Analytics for Robotics ApplicationsYiding Wang, Weiyan Wang, Duowen Liu, Xin Jin 等INFOCOM 2021 · 被引用 31 次
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