An Integrating Computational Approach Review to Analyse the Biological Functions

S. Kimothi, Pooja Joshi, Sunil Shukla, Rajiv Kumar, Ishteyaaq Ahmad, M. Memoria
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引用次数: 1

Abstract

In present study the fractal theory has been reviewed in the context of bio-functional and biomedical complex systems. The chaotic approach is a critical component of the theoretical framework and can be used in analyzing complex biological structures such as chromatin structures. Fractality is a metric of complexity in biological functions; it is an indicator of the complication level of the self-similar structure, while chaos is a sort of dynamic behavior that usually produces totally arbitrary patterns. Fractal measurements in vivo could be used to predict the efficiency of painful therapy. The fractal technique can be used to assess carcinogenesis, tumor progression, chemoprophylaxis, and treatment with the convergence of modern sensing techniques in nano-scale spectroscopic techniques, which is a prospective biomarker. The mathematical principles of fractals and chaos in biological systems are presented in the context of the condition of health treatment and their significance. Fractality in different biological functions including the heart has now been investigated and measured the dosing quantity with chaos and fractal level. As excessive amounts of chaos and fractal complexity are harmful to biological predictions. For biological applications, chaos analysis may be advantageous. This paper is a review which highlights the fractal and chaos theories for biological functions and biomedical systems. The focus will be to explore biological functions, due to its computational machine learning-based demands and capability in mathematical complexity.
生物功能分析的综合计算方法综述
本文综述了分形理论在生物功能和生物医学复杂系统中的应用。混沌方法是理论框架的重要组成部分,可用于分析复杂的生物结构,如染色质结构。分形是生物功能复杂性的度量;混沌是自相似结构复杂程度的一个指标,而混沌是一种动态行为,通常会产生完全任意的模式。体内分形测量可用于预测疼痛治疗的效率。分形技术将现代传感技术与纳米尺度光谱技术相结合,可用于评估癌变、肿瘤进展、化学预防和治疗,是一种有前景的生物标志物。分形和混沌在生物系统中的数学原理是在健康治疗条件及其意义的背景下提出的。目前已研究了包括心脏在内的不同生物功能的分形,并以混沌和分形水平测量了给药量。过多的混沌和分形复杂性对生物预测是有害的。对于生物学应用,混沌分析可能是有利的。本文对生物功能和生物医学系统的分形和混沌理论进行了综述。由于其基于计算机器学习的需求和数学复杂性的能力,重点将是探索生物功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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