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Distributed Compressive Sensing for Cloud-Based Wireless Image Transmission

机译:基于云的无线图像传输的分布式压缩感知

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摘要

We consider efficient image transmission via time-varying channels. To improve the performance, we propose a new distributed compressive sensing (CS) scheme that can leverage similar images in the cloud. It is featured by channel SNR and bandwidth scalability, high efficiency, and low encoding complexity. For each image, a compressed thumbnail is first transmitted after forward error correction (FEC) and modulation to retrieve similar images and generate a side information (SI) in the cloud. The residual image after subtracting the decompressed thumbnail is then coded and transmitted by CS through a very dense constellation without FEC. The linearly and ratelessly generated CS measurements make it capable of achieving both graceful quality degradation (GD) with the channel SNR and bandwidth scalability in a universal scheme. A mode decision and transform-domain power allocation are introduced for better bandwidth usage and protection against channel errors. At the decoder, a two-step CS decoding is performed to recover the residual signal, where both the local and nonlocal correlations within the image and that with the SI are exploited. Simulations on landmark images and an AWGN channel show that the received image quality gracefully increases with the channel SNR and bandwidth. Furthermore, it outperforms existing schemes both subjectively and objectively by up to 11 dB gains compared with the state-of-the-art transmission scheme with GD, i.e. SoftCast.
机译:我们考虑通过时变通道进行有效的图像传输。为了提高性能,我们提出了一种新的分布式压缩感知(CS)方案,该方案可以利用云中的相似图像。它具有信道SNR和带宽可伸缩性,高效率和低编码复杂度的特点。对于每个图像,在前向纠错(FEC)和调制之后首先发送压缩的缩略图,以检索相似的图像并在云中生成边信息(SI)。减去解压缩的缩略图后的残差图像随后经过CS编码,并通过非常密集的星座进行传输,而没有FEC。线性和无速率生成的CS测量使其能够在通用方案中实现信道SNR的适度质量下降(GD)和带宽可伸缩性。引入了模式决策和变换域功率分配,以更好地利用带宽并防止信道错误。在解码器处,执行两步CS解码以恢复残留信号,其中利用了图像内的局部和非局部相关性以及与SI的相关性。对地标图像和AWGN通道的仿真显示,接收的图像质量随通道SNR和带宽而优雅地提高。此外,与采用GD的最新传输方案(即SoftCast)相比,它在主观和客观上都优于现有方案,最多可提高11 dB的增益。

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