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Power Distortion Optimization for Uncoded Linear Transformed Transmission of Images and Videos

机译:图像和视频的未编码线性变换传输的功率失真优化

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摘要

Recently, there is a resurgence of interest in uncoded transmission for wireless visual communication. While conventional coded systems suffer from cliff effect as the channel condition varies dynamically, uncoded linear-transformed transmission (ULT) provides elegant quality degradation for wide channel SNR range. ULT skips non-linear operations, such as quantization and entropy coding. Instead, it utilizes linear decorrelation transform and linear scaling power allocation to achieve optimized transmission. This paper presents a theoretical analysis for power-distortion optimization of ULT. In addition to the observation in our previous work that a decorrelation transform can bring significant performance gain, this paper reveals that exploiting the energy diversity in transformed signal is the key to achieve the full potential of decorrelation transform. In particular, we investigated the efficiency of ULT with exact or inexact signal statistics, highlighting the impact of signal energy modeling accuracy. Based on that, we further proposed two practical energy modeling schemes for ULT of visual signals. Experimental results show that the proposed schemes improve the quality of reconstructed images by 3~5 dB, while reducing the signal modeling overhead from hundreds or thousands of meta data to only a few meta data. The perceptual quality of reconstruction is significantly improved.
机译:近来,对用于无线视觉通信的未编码传输的兴趣再次兴起。传统的编码系统会随着信道条件的动态变化而遭受悬崖效应的困扰,而未编码的线性变换传输(ULT)则在宽信噪比范围内会导致质量下降。 ULT跳过非线性运算,例如量化和熵编码。相反,它利用线性去相关变换和线性缩放功率分配来实现优化的传输。本文为ULT的功率失真优化提供了理论分析。除了在我们先前的工作中观察到去相关变换可以带来显着的性能增益外,本文还揭示了利用变换信号中的能量分集是实现去相关变换的全部潜力的关键。特别是,我们使用精确或不精确的信号统计数据研究了ULT的效率,强调了信号能量建模精度的影响。在此基础上,我们还针对视觉信号的ULT提出了两种实用的能量建模方案。实验结果表明,所提出的方案将重建图像的质量提高了3〜5 dB,同时将信号建模开销从数百或数千个元数据减少到仅几个元数据。重建的感知质量显着提高。

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