神经系统疾病中的分形维度分析:概述。

Q3 Neuroscience
Leticia Díaz Beltrán, Christopher R Madan, Carsten Finke, Stephan Krohn, Antonio Di Ieva, Francisco J Esteban
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引用次数: 0

摘要

分形分析已成为描述神经系统中不规则和复杂模式的有力工具。分形维度(FD)是描述神经系统不规则成分拓扑复杂性的标量指数,在宏观和微观层面均可被视为几何分形。此外,神经生理信号的时间属性也可以解释为动态分形。鉴于分形在检测大脑形态变化方面的灵敏度,分形已被探索用作几种神经精神疾病以及正常和病理脑衰老中大脑损伤的临床相关标记。从这个意义上说,越来越多的证据表明,在阿尔茨海默病、额颞叶痴呆症、帕金森病、多发性硬化症和许多其他神经系统疾病中,FD 都会下降。此外,分形分析在临床神经病学领域的应用也越来越清楚,它为检测疾病早期阶段的结构改变提供了可能,这突出表明分形分析是临床实践中一种潜在的诊断和预后工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fractal Dimension Analysis in Neurological Disorders: An Overview.

Fractal analysis has emerged as a powerful tool for characterizing irregular and complex patterns found in the nervous system. This characterization is typically applied by estimating the fractal dimension (FD), a scalar index that describes the topological complexity of the irregular components of the nervous system, both at the macroscopic and microscopic levels, that may be viewed as geometric fractals. Moreover, temporal properties of neurophysiological signals can also be interpreted as dynamic fractals. Given its sensitivity for detecting changes in brain morphology, FD has been explored as a clinically relevant marker of brain damage in several neuropsychiatric conditions as well as in normal and pathological cerebral aging. In this sense, evidence is accumulating for decreases in FD in Alzheimer's disease, frontotemporal dementia, Parkinson's disease, multiple sclerosis, and many other neurological disorders. In addition, it is becoming increasingly clear that fractal analysis in the field of clinical neurology opens the possibility of detecting structural alterations in the early stages of the disease, which highlights FD as a potential diagnostic and prognostic tool in clinical practice.

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来源期刊
Advances in neurobiology
Advances in neurobiology Neuroscience-Neurology
CiteScore
2.80
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0.00%
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