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Lossy compression of decimated Gaussian random walks

机译:减数高斯随机散步的有损压缩

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We consider the problem of estimating a Gaussian random walk from a lossy compression of its decimated version. Hence, the encoder operates on the decimated random walk, and the decoder estimates the original random walk from its encoded version under a mean squared error (MSE) criterion. It is well-known that the minimal distortion in this problem is attained by an estimate-and-compress (EC) source coding strategy, in which the encoder first estimates the original random walk and then compresses this estimate subject to the bit constraint. In this work, we derive a closed-form expression for this minimal distortion as a function of the bitrate and the decimation factor. Next, we consider a compress-and-estimate (CE) source coding scheme, in which the encoder first compresses the decimated sequence subject to an MSE criterion (with respect to the decimated sequence), and the original random walk is estimated only at the decoder. We evaluate the distortion under CE in a closed form and show that there exists a non-zero gap between the distortion under the two schemes. This difference in performance illustrates the importance of having the decimation factor at the encoder.
机译:我们考虑估计高斯随意步行从其抽取版本的损失压缩。因此,编码器在抽取的随机步行上运行,解码器在均方误差(MSE)标准下从其编码版本估计原始随机步行。众所周知,通过估计和压缩(EC)源编码策略实现了该问题中的最小失真,其中编码器首先估计原始随机步行,然后将该估计压缩对位约束进行压缩。在这项工作中,我们从比特率和抽取因子的函数获得了这种最小失真的闭合表单表达式。接下来,我们考虑一种压缩和估计(CE)源编码方案,其中编码器首先将受影响的序列压缩经过MSE标准(相对于抽取的序列),并且仅在估计原始随机步行解码器。我们以封闭形式评估CE下的失真,并表明两种方案下的失真之间存在非零间隙。这种性能差异示出了在编码器处具有抽取因子的重要性。

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