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心律失常的分形分析。

Fractals analysis of cardiac arrhythmias.

作者信息

Saeed Mohammed

机构信息

Department of Biological and Biomedical Sciences, The Aga Khan University, Karachi, Pakistan.

出版信息

ScientificWorldJournal. 2005 Sep 6;5:691-701. doi: 10.1100/tsw.2005.81.

DOI:10.1100/tsw.2005.81
PMID:16155684
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5936523/
Abstract

Heart rhythms are generated by complex self-regulating systems governed by the laws of chaos. Consequently, heart rhythms have fractal organization, characterized by self-similar dynamics with long-range order operating over multiple time scales. This allows for the self-organization and adaptability of heart rhythms under stress. Breakdown of this fractal organization into excessive order or uncorrelated randomness leads to a less-adaptable system, characteristic of aging and disease. With the tools of nonlinear dynamics, this fractal breakdown can be quantified with potential applications to diagnostic and prognostic clinical assessment. In this paper, I review the methodologies for fractal analysis of cardiac rhythms and the current literature on their applications in the clinical context. A brief overview of the basic mathematics of fractals is also included. Furthermore, I illustrate the usefulness of these powerful tools to clinical medicine by describing a novel noninvasive technique to monitor drug therapy in atrial fibrillation.

摘要

心律由受混沌定律支配的复杂自我调节系统产生。因此,心律具有分形组织,其特征是在多个时间尺度上具有长程有序的自相似动力学。这使得心律在压力下能够进行自我组织和适应。这种分形组织分解为过度有序或不相关的随机性会导致系统适应性降低,这是衰老和疾病的特征。利用非线性动力学工具,可以对这种分形分解进行量化,从而潜在地应用于诊断和预后临床评估。在本文中,我回顾了心律分形分析的方法以及它们在临床应用方面的当前文献。还包括对分形基本数学的简要概述。此外,我通过描述一种监测心房颤动药物治疗的新型非侵入性技术,说明了这些强大工具对临床医学的有用性。