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Energy-Efficient and Robust Tensor-Encoder for Wireless Camera Networks in Internet of Things

机译:物联网中无线摄像头网络的节能高效的张量编码器

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摘要

With the development of Internet of Things (IoT), wireless camera networks have been widely deployed owing to its low-cost of deployment and maintenance as well as flexibility. However, it is challenging for wireless camera networks to provide energy-efficient and robust video transmissions, since the multihop wireless communications have limited bandwidth and low link quality. Besides, the camera nodes are usually battery-powered. State-of-the-art coding schemes adopt complex predictive encoding methods, thus leading to high complexity and power consumption. In this paper, we propose a novel tensor-encoder (i.e., being a randomly generated mask) for energy-efficient and robust video transmissions over unreliable wireless networks. First, we adopt a novel algebraic framework, i.e., the low-tubal-rank tensor model, to capture the strong spatiotemporal correlations within video data. Secondly, we design a mask-encoder, modeled as a mask-sampling process, that dramatically reduces the transmission burden. Then, we propose an alternating minimization algorithm as the corresponding mask-decoder. Thirdly, we prove that the proposed decoder guarantees exponential convergence to the global optima. For an times nimes t video stream with tubal-rank the required sampling complexity isand the computational complexity. Finally, based on synthetic data, real-world data and our wireless camera network testbed, we compare the proposed scheme with existing methods and obtain high quality video transmissions at a compression ratio of 20 percent.
机译:随着物联网(IoT)的发展,无线摄像头网络由于其低成本的部署和维护以及灵活性而得到了广泛的部署。然而,由于多跳无线通信具有有限的带宽和较低的链路质量,因此对于无线照相机网络提供节能且鲁棒的视频传输是具有挑战性的。此外,摄像机节点通常由电池供电。最新的编码方案采用复杂的预测编码方法,从而导致高复杂度和功耗。在本文中,我们提出了一种新颖的张量编码器(即是随机生成的掩码),用于在不可靠的无线网络上进行节能高效的视频传输。首先,我们采用一种新颖的代数框架,即低管形张量模型,以捕获视频数据中的强烈时空相关性。其次,我们设计了一个以掩码采样过程为模型的掩码编码器,可以大大减少传输负担。然后,我们提出一种交替最小化算法作为相应的掩码解码器。第三,我们证明了所提出的解码器保证了到全局最优的指数收敛。对于具有输卵管秩的n倍t的视频流,所需的采样复杂度和计算复杂度。最后,基于合成数据,真实数据和我们的无线摄像头网络测试平台,我们将提议的方案与现有方法进行比较,并以20%的压缩率获得高质量的视频传输。

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