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Compressive sensing: From “Compressing while Sampling” to “Compressing and Securing while Sampling”

机译:压缩感测:从“采样时压缩”到“采样时压缩和固定”

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In a traditional signal processing system sampling is carried out at a frequency which is at least twice the highest frequency component found in the signal. This is in order to guarantee that complete signal recovery is later on possible. The sampled signal can subsequently be subjected to further processing leading to, for example, encryption and compression. This processing can be computationally intensive and, in the case of battery operated systems, unpractically power hungry. Compressive sensing has recently emerged as a new signal sampling paradigm gaining huge attention from the research community. According to this theory it can potentially be possible to sample certain signals at a lower than Nyquist rate without jeopardizing signal recovery. In practical terms this may provide multi-pronged solutions to reduce some systems computational complexity. In this work, information theoretic analysis of real EEG signals is presented that shows the additional benefits of compressive sensing in preserving data privacy. Through this it can then be established generally that compressive sensing not only compresses but also secures while sampling.
机译:在传统的信号处理系统中,以至少是信号中发现的最高频率分量的两倍的频率进行采样。这是为了确保以后可以进行完整的信号恢复。随后可以对采样的信号进行进一步的处理,从而导致例如加密和压缩。该处理可能是计算密集型的,并且在电池操作系统的情况下,实际上是耗电的。压缩感测最近已成为一种新的信号采样范例,受到了研究界的广泛关注。根据该理论,可能有可能以低于奈奎斯特速率的速率对某些信号进行采样而不会损害信号恢复。实际上,这可以提供多管齐下的解决方案,以减少某些系统的计算复杂性。在这项工作中,提出了对真实EEG信号的信息理论分析,表明了压缩感测在保护数据隐私方面的其他好处。通过这种方式,通常可以确定在采样时压缩感测不仅可以压缩,而且可以确保安全。

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