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Drift removal in plant electrical signals via IIR filtering using wavelet energy

机译:使用小波能量通过IIR滤波消除植物电信号中的漂移

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Plant electrical signals often contains low frequency drifts with or without the application of external stimuli. Quantification of the randomness in plant signals in a stimulus-specific way is hindered because the knowledge of vital frequency information in the actual biological response is not known yet. Here we design an optimum Infinite Impulse Response (IIR) filter which removes the low frequency drifts and preserves the frequency spectrum corresponding to the random component of the unstimulated plant signals by bringing the bias due to unknown artifacts and drifts to a minimum. We use energy criteria of wavelet packet transform (WPT) for optimization based tuning of the IIR filter parameters. Such an optimum filter enforces that the energy distribution of the pre-stimulus parts in different experiments are almost overlapped but under different stimuli the distributions of the energy get changed. The reported research may popularize plant signal processing, as a separate field, besides other conventional bioelectrical signal processing paradigms. (C) 2015 Elsevier B.V. All rights reserved.
机译:植物电信号通常包含低频漂移,无论是否施加外部刺激。由于尚不了解实际生物反应中生命频率信息的知识,因此无法以刺激特定的方式量化植物信号中的随机性。在这里,我们设计了一个最佳的无限冲激响应(IIR)滤波器,该滤波器可以消除低频漂移,并通过将未知伪影和漂移引起的偏置降到最低,从而保留与未刺激植物信号的随机分量相对应的频谱。我们将小波包变换(WPT)的能量标准用于基于IIR滤波器参数的优化调整。这样的最优滤波器迫使在不同实验中预刺激部分的能量分布几乎重叠,但是在不同刺激下能量的分布发生改变。除其他常规生物电信号处理范例外,所报道的研究还可能将植物信号处理作为一个单独的领域进行推广。 (C)2015 Elsevier B.V.保留所有权利。

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