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Regime Change: Bit-Depth Versus Measurement-Rate in Compressive Sensing

机译:体制变化:压缩传感中的位深度与测量速率

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The recently introduced compressive sensing (CS) framework enables digital signal acquisition systems to take advantage of signal structures beyond bandlimitedness. Indeed, the number of CS measurements required for stable reconstruction is closer to the order of the signal complexity than the Nyquist rate. To date, the CS theory has focused on real-valued measurements, but in practice measurements are mapped to bits from a finite alphabet. Moreover, in many potential applications the total number of measurement bits is constrained, which suggests a tradeoff between the number of measurements and the number of bits per measurement. We study this situation in this paper and show that there exist two distinct regimes of operation that correspond to high/low signal-to-noise ratio (SNR). In the measurement compression (MC) regime, a high SNR favors acquiring fewer measurements with more bits per measurement; in the quantization compression (QC) regime, a low SNR favors acquiring more measurements with fewer bits per measurement. A surprise from our analysis and experiments is that in many practical applications it is better to operate in the QC regime, even acquiring as few as 1 bit per measurement.
机译:最近引入的压缩感测(CS)框架使数字信号采集系统能够利用带宽限制以外的信号结构。实际上,稳定重建所需的CS测量数量比奈奎斯特速率更接近信号复杂度的数量级。迄今为止,CS理论已将重点放在实值测量上,但实际上测量值已映射到有限字母中的位。此外,在许多潜在的应用中,测量位的总数受到了限制,这表明在测量数和每次测量的位数之间需要权衡。我们在本文中研究了这种情况,并表明存在两种与高/低信噪比(SNR)相对应的不同工作方式。在测量压缩(MC)方案中,高SNR有利于获取较少的测量值,且每次测量的位数更多;在量化压缩(QC)方案中,低SNR有利于以每次测量更少的比特获得更多的测量。我们的分析和实验令人惊讶的是,在许多实际应用中,最好在QC机制下进行操作,即使每次测量只获取1位。

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