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Rakeness and beyond in zero-complexity digital compressed sensing: A down-to-bits case study

机译:零复杂度数字压缩感测中的瑞克性及其他:从零开始的案例研究

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Compressed sensing can be seen as a lossy data compression stage processing vectors of digital words that correspond to time windows of the signal to acquire. We here show that if the second-order statistical features of such a signal are known, they may be exploited to obtain extremely high compression ratios by means of an almost zero-complexity hardware that is limited to signed adders and very few other elementary algebraic blocks. Optimization is obtained and demonstrated against non-optimized compressed sensing both by specializing classical rakeness-based design and by employing and even simpler and novel principal-component-based method that in some cases may outperform the former. Simulations are performed taking into account bit-wise operations and yield the true compression ratios that would be produced by the real system entailing only very low-depth fixed-point arithmetic. In the case of real-workd ECGs, good reconstruction with bitwise compression ratios up to 9 is demonstrated.
机译:压缩感测可以看作是有损数据压缩级处理数字字的向量,这些向量与要获取的信号的时间窗口相对应。我们在这里表明,如果已知此类信号的二阶统计特征,则可以利用几乎零复杂度的硬件(仅限于有符号加法器和很少的其他基本代数块)来利用它们来获得极高的压缩率。 。通过专门基于经典耙度的设计以及采用甚至在某些情况下可能优于前者的基于新颖主成分的方法,可以获得针对非优化压缩感测的优化,并针对非优化压缩感测进行了论证。执行模拟时要考虑到按位运算,并且会产生真正的压缩率,而实际压缩率是由实际系统生成的,只需要非常低深度的定点运算即可。在实际工作的ECG情况下,演示了具有高达9的按位压缩比的良好重构。

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