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Exploring strategies for classification of external stimuli using statistical features of the plant electrical response

机译:利用植物电响应的统计特征探索对外部刺激进行分类的策略

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摘要

Plants sense their environment by producing electrical signals which in essence represent changes in underlying physiological processes. These electrical signals, when monitored, show both stochastic and deterministic dynamics. In this paper, we compute 11 statistical features from the raw non-stationary plant electrical signal time series to classify the stimulus applied (causing the electrical signal). By using different discriminant analysis-based classification techniques, we successfully establish that there is enough information in the raw electrical signal to classify the stimuli. In the process, we also propose two standard features which consistently give good classification results for three types of stimuli—sodium chloride (NaCl), sulfuric acid (H2SO4) and ozone (O3). This may facilitate reduction in the complexity involved in computing all the features for online classification of similar external stimuli in future.
机译:植物通过产生本质上代表潜在生理过程变化的电信号来感知环境。这些电信号在受到监视时既显示随机动态又显示确定性动态。在本文中,我们从原始的非平稳植物电信号时间序列中计算出11个统计特征,以对所施加的刺激进行分类(引起电信号)。通过使用不同的基于判别分析的分类技术,我们成功地确定原始电信号中有足够的信息来对刺激进行分类。在此过程中,我们还提出了两个标准功能,可以对三种类型的刺激物(氯化钠(NaCl),硫酸(H2SO4)和臭氧(O3))持续给出良好的分类结果。这可以有助于减少将来计算类似的外部刺激的在线分类的所有特征时所涉及的复杂性。

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