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利用大数据集恢复生理系统中的信号。

Recovering signals in physiological systems with large datasets.

作者信息

Pendar Hodjat, Socha John J, Chung Julianne

机构信息

Department of Biomedical Engineering and Mechanics, Virginia Tech Blacksburg, Blacksburg, VA 24061, USA Department of Mathematics, Virginia Tech Blacksburg, Blacksburg, VA 24061, USA

Department of Biomedical Engineering and Mechanics, Virginia Tech Blacksburg, Blacksburg, VA 24061, USA.

出版信息

Biol Open. 2016 Aug 15;5(8):1163-74. doi: 10.1242/bio.019133.

Abstract

In many physiological studies, variables of interest are not directly accessible, requiring that they be estimated indirectly from noisy measured signals. Here, we introduce two empirical methods to estimate the true physiological signals from indirectly measured, noisy data. The first method is an extension of Tikhonov regularization to large-scale problems, using a sequential update approach. In the second method, we improve the conditioning of the problem by assuming that the input is uniform over a known time interval, and then use a least-squares method to estimate the input. These methods were validated computationally and experimentally by applying them to flow-through respirometry data. Specifically, we infused CO2 in a flow-through respirometry chamber in a known pattern, and used the methods to recover the known input from the recorded data. The results from these experiments indicate that these methods are capable of sub-second accuracy. We also applied the methods on respiratory data from a grasshopper to investigate the exact timing of abdominal pumping, spiracular opening, and CO2 emission. The methods can be used more generally for input estimation of any linear system.

摘要

在许多生理学研究中,感兴趣的变量无法直接获取,这就需要从有噪声的测量信号中间接估计这些变量。在此,我们介绍两种经验方法,用于从间接测量的有噪声数据中估计真实的生理信号。第一种方法是将蒂霍诺夫正则化扩展到大规模问题,采用顺序更新方法。在第二种方法中,我们通过假设输入在已知时间间隔内是均匀的来改善问题的条件,然后使用最小二乘法估计输入。通过将这些方法应用于流通式呼吸测量数据,在计算和实验上对其进行了验证。具体而言,我们以已知模式向流通式呼吸测量室注入二氧化碳,并使用这些方法从记录的数据中恢复已知输入。这些实验结果表明,这些方法能够达到亚秒级精度。我们还将这些方法应用于蝗虫的呼吸数据,以研究腹部抽动、气门打开和二氧化碳排放的确切时间。这些方法可更广泛地用于任何线性系统的输入估计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/376c/5004612/6ac362d8eada/biolopen-5-019133-g1.jpg

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