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Investigation of Nonlinear Pupil Dynamics by Recurrence Quantification Analysis

机译:基于递归定量分析的非线性学生动力学研究

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摘要

Pupil is controlled by the autonomous nervous system (ANS). It shows complex movements and changes of size even in conditions of constant stimulation. The possibility of extracting information on ANS by processing data recorded during a short experiment using a low cost system for pupil investigation is studied. Moreover, the significance of nonlinear information contained in the pupillogram is investigated. We examined 13 healthy subjects in different stationary conditions, considering habitual dental occlusion (HDO) as a weak stimulation of the ANS with respect to the maintenance of the rest position (RP) of the jaw. Images of pupil captured by infrared cameras were processed to estimate position and size on each frame. From such time series, we extracted linear indexes (e.g., average size, average displacement, and spectral parameters) and nonlinear information using recurrence quantification analysis (RQA). Data were classified using multilayer perceptrons and support vector machines trained using different sets of input indexes: the best performance in classification was obtained including nonlinear indexes in the input features. These results indicate that RQA nonlinear indexes provide additional information on pupil dynamics with respect to linear descriptors, allowing the discrimination of even a slight stimulation of the ANS. Their use in the investigation of pathology is suggested.
机译:学生由自主神经系统(ANS)控制。即使在持续刺激的情况下,它也显示出复杂的运动和大小变化。研究了通过使用低成本系统进行学生实验的短时间实验处理记录的数据来提取ANS信息的可能性。此外,研究了包含在瞳孔图中的非线性信息的重要性。我们检查了13名健康受试者在不同的静止状态下,考虑到习惯性牙齿咬合(HDO)对ANS相对于颌骨静止位置(RP)维持的弱刺激。对红外摄像机捕获的瞳孔图像进行处理,以估计每帧的位置和大小。从此类时间序列中,我们使用递归量化分析(RQA)提取了线性指标(例如,平均大小,平均位移和光谱参数)和非线性信息。使用多层感知器对数据进行分类,并使用不同的输入指标集对支持向量机进行训练:获得了最佳的分类性能,包括输入要素中的非线性指标。这些结果表明,RQA非线性指标相对于线性描述符提供了有关瞳孔动力学的附加信息,甚至可以对ANS的轻微刺激进行区分。建议将其用于病理学调查。

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