生物信息学研究中控制复杂性的信息融合方法

B. Olsson, B. Gawrońska, T. Ziemke, S. F. Andler, P. Nilsson, A. Persson
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引用次数: 5

摘要

信息融合(IF)是指将来自不同来源的信息组合或融合,以促进我们对复杂系统的理解,从而提供无法从任何孤立的单个数据源获得的见解。我们在本文中认为,有必要在生物信息学研究中应用IF方法,因为生物信息学的目的是使用许多不同的数据源来理解复杂的生物系统,这些数据源提供了系统的互补视图。我们用两个应用实例来说明这一论点,其中基于if的生物信息学分别应用于干细胞分化和脂质消化的研究。我们还讨论了从文本源中自动提取信息的使用,这是生物信息学IF方法的重要组成部分,因为文献丰富。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An information fusion approach to controlling complexity in bioinformatics research
Information Fusion (IF) is about combining, or fusing, information from different sources in order to facilitate our understanding of a complex system and thereby provide insights that could not be gained from any of the individual data sources in isolation. We argue in this paper that there is a need for applying an IF approach in bioinformatics research, since the aim of bioinformatics is to understand complex biological systems using many different data sources providing complementary views of the system. We illustrate this argument with two application examples, where IF-based bioinformatics is applied to the study of stem cell differentiation and lipid digestion, respectively. We also discuss the use of automated information extraction from text sources, which is an essential component of a bioinformatics IF approach, given the abundant literature.
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