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Assessment of linear and nonlinear/complex heartbeat dynamics in subclinical depression (dysphoria)

机译:亚临床抑郁症中线性和非线性/复杂心跳动态的评估(疑难厄)

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摘要

Objective: Depression is one of the leading causes of disability worldwide. Most previous studies have focused on major depression, and studies on subclinical depression, such as those on so-called dysphoria, have been overlooked. Indeed, dysphoria is associated with a high prevalence of somatic disorders, and a reduction of quality of life and life expectancy. In current clinical practice, dysphoria is assessed using psychometric questionnaires and structured interviews only, without taking into account objective pathophysiological indices. To address this problem, in this study we investigated heartbeat linear and nonlinear dynamics to derive objective autonomic nervous system biomarkers of dysphoria. Approach: Sixty undergraduate students participated in the study: according to clinical evaluation, 24 of them were dysphoric. Extensive group-wise statistics was performed to characterize the pathological and control groups. Moreover, a recursive feature elimination algorithm based on a K-NN classifier was carried out for the automatic recognition of dysphoria at a single-subject level. Main results: The results showed that the most significant group-wise differences referred to increased heartbeat complexity (particularly for fractal dimension, sample entropy and recurrence plot analysis) with regards to the healthy controls, confirming dysfunctional nonlinear sympathovagal dynamics in mood disorders. Furthermore, a balanced accuracy of 79.17% was achieved in automatically distinguishing dysphoric patients from controls, with the most informative power attributed to nonlinear, spectral and polyspectral quantifiers of cardiovascular variability. Significance: This study experimentally supports the assessment of dysphoria as a defined clinical condition with specific characteristics which are different both from healthy, fully euthymic controls and from full-blown major depression.
机译:目的:抑郁症是全球残疾的主要原因之一。最先前的研究专注于重大抑郁症,并忽视了对亚临床抑郁症的研究,例如那些所谓的令人窒息的抑郁症。实际上,困难与体细胞疾病的高度普及,以及减少生活质量和预期寿命。在目前的临床实践中,患有心理学调查问卷和结构性访谈的患者进行了评估,而不考虑客观的病理生理指数。为了解决这个问题,在这项研究中,我们调查了心跳线性和非线性动力学,以衍生出目标性神经系统生物标志物。方法:六十本科生参加了该研究:根据临床评估,其中24人是疑似。进行广泛的群体 - 明智的统计数据以表征病理和对照组。此外,基于K-NN分类器的递归特征消除算法用于在单个主题电平自动识别困难。主要结果:结果表明,关于健康对照的心跳复杂性(特别是对于分形维数,样本熵和复发局部分析)增加的最重要的群体差异,确认情绪障碍中的功能失调非线性伴随动态。此外,在自动区分疑似患者的控制中实现了79.17%的平衡准确性,具有归因于心血管变异性的非线性,光谱和多光谱量词的最佳信息。意义:本研究实验支持患有疑风的评估作为具有特异性特征的定义临床病症,这些临床状况来自健康,完全静脉控制和全吹的主要抑郁症。

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  • 来源
    《Physiological measurement》 |2018年第3期|共112页
  • 作者单位

    Computational Physiology and Biomedical Instruments Group Bioengineering and Robotics Research Center ‘E. Piaggio' and Department of Information Engineering School of Engineering University of Pisa Largo Lucio Lazzarino 1-56122 Pisa Italy;

    Department of General Psychology University of Padua 35131 Padova Italy;

    Department of General Psychology University of Padua 35131 Padova Italy;

    Department of General Psychology University of Padua 35131 Padova Italy;

    Computational Physiology and Biomedical Instruments Group Bioengineering and Robotics Research Center ‘E. Piaggio' and Department of Information Engineering School of Engineering University of Pisa Largo Lucio Lazzarino 1-56122 Pisa Italy;

    Computational Physiology and Biomedical Instruments Group Bioengineering and Robotics Research Center 'E. Piaggio' and Department of Information Engineering School of Engineering University of Pisa Largo Lucio Lazzarino 1-56122 Pisa Italy;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 诊断学;
  • 关键词

    dysphoria; subclinical depression; HRV; pattern recognition; nonlinear analysis;

    机译:疑惑;亚临床抑郁;HRV;模式识别;非线性分析;

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