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Multi-Channel Sparse Data Conversion With a Single Analog-to-Digital Converter

机译:使用单个模数转换器的多通道稀疏数据转换

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We address the problem of performing simultaneous analog-to-digital (A/D) conversion on multi-channel signals using a single A/D converter (ADC). Assuming that each input has an unknown sparse representation in known dictionaries, we find that multi-channel information can be sampled with a single ADC. The proposed ADC architecture consists of a mixed signal block and a digital signal processing (DSP) block. The channel inputs are sampled by switched-capacitor-based sample-and-hold circuits, and then mixed using sequences of plus or minus ones, leading to no bandwidth expansion. The resulting discrete-time signals are converted to digital sequences by a single ADC or quantizer. At the DSP block, each channel is separated from the digitized mixture through various separation algorithms that are widely used in compressive sensing. For this, we study several techniques for separating the mixture of the channel inputs into the sample number of digital sequences corresponding to each channel. We show that with an ideal ADC, perfect reconstruction of the signals is possible if the input signals are sufficiently sparse. We also show simulation results with a 16-bit ADC model, and the reconstruction is possible up to the accuracy of the ADCs.
机译:我们解决了使用单个A / D转换器(ADC)对多通道信号同时执行模数(A / D)转换的问题。假设每个输入在已知词典中都具有未知的稀疏表示,我们发现可以使用单个ADC采样多通道信息。所提出的ADC体系结构包括一个混合信号块和一个数字信号处理(DSP)块。通道输入由基于开关电容器的采样保持电路采样,然后使用正负序列进行混合,从而不会导致带宽扩展。单个ADC或量化器将得到的离散时间信号转换为数字序列。在DSP模块中,每个通道通过各种分离算法与数字化混合物分离,而这些分离算法在压缩感测中广泛使用。为此,我们研究了几种将通道输入的混合分离为对应于每个通道的数字序列样本数量的技术。我们表明,使用理想的ADC,如果输入信号足够稀疏,则可以完美重构信号。我们还显示了16位ADC模型的仿真结果,并且重构可能达到ADC的精度。

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