Algorithmic Information Dynamics

H. Zenil, N. Kiani, Felipe S. Abrahão, J. Tegnér
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引用次数: 19

Abstract

Biological systems are extensively studied as interactions forming complex networks. Reconstructing causal knowledge from, and principles of, these networks from noisy and incomplete data is a challenge in the field of systems biology. Based on an online course hosted by the Santa Fe Institute Complexity Explorer, this book introduces the field of Algorithmic Information Dynamics, a model-driven approach to the study and manipulation of dynamical systems . It draws tools from network and systems biology as well as information theory, complexity science and dynamical systems to study natural and artificial phenomena in software space. It consists of a theoretical and methodological framework to guide an exploration and generate computable candidate models able to explain complex phenomena in particular adaptable adaptive systems, making the book valuable for graduate students and researchers in a wide number of fields in science from physics to cell biology to cognitive sciences.
算法信息动力学
生物系统被广泛研究为形成复杂网络的相互作用。从噪声和不完整的数据中重建这些网络的因果知识和原理是系统生物学领域的一个挑战。本书基于圣达菲研究所复杂性探索者主持的在线课程,介绍了算法信息动力学领域,这是一种研究和操纵动力学系统的模型驱动方法。它从网络和系统生物学、信息论、复杂性科学和动力学系统中汲取工具,研究软件空间中的自然现象和人工现象。它由一个理论和方法框架组成,用于指导探索并生成能够解释特定适应性自适应系统中的复杂现象的可计算候选模型,使本书对从物理学到细胞生物学再到认知科学的众多科学领域的研究生和研究人员具有价值。
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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