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Signal processing for molecular and cellular biological physics: an emerging field

机译:分子和细胞生物物理学的信号处理:一个新兴领域

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摘要

Recent advances in our ability to watch the molecular and cellular processes of life in action—such as atomic force microscopy, optical tweezers and Forster fluorescence resonance energy transfer—raise challenges for digital signal processing (DSP) of the resulting experimental data. This article explores the unique properties of such biophysical time series that set them apart from other signals, such as the prevalence of abrupt jumps and steps, multi-modal distributions and autocorrelated noise. It exposes the problems with classical linear DSP algorithms applied to this kind of data, and describes new nonlinear and non-Gaussian algorithms that are able to extract information that is of direct relevance to biological physicists. It is argued that these new methods applied in this context typify the nascent field of biophysical DSP. Practical experimental examples are supplied.
机译:我们观察分子生命的分子和细胞过程的最新进展,例如原子力显微镜,光镊和Forster荧光共振能量转移,对所得实验数据的数字信号处理(DSP)提出了挑战。本文探讨了这种生物物理时间序列的独特属性,这些属性使它们与其他信号区分开,例如突然跳跃和跨步的流行,多峰分布和自相关噪声。它揭示了应用于此类数据的经典线性DSP算法的问题,并描述了能够提取与生物物理学家直接相关的信息的新型非线性和非高斯算法。有人认为,在这种情况下应用的这些新方法代表了生物物理DSP的新生领域。提供了实际的实验示例。

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