活性物质
计算模型
计算机科学
多样性(控制论)
简单(哲学)
多尺度建模
生物系统
统计物理学
生化工程
物理
人工智能
生物
工程类
哲学
认识论
细胞生物学
生物信息学
作者
M. Reza Shaebani,Adam Wysocki,Roland G. Winkler,Gerhard Gompper,Heiko Rieger
标识
DOI:10.1038/s42254-020-0152-1
摘要
A variety of computational models have been developed to describe active matter at different length and time scales. The diversity of the methods and the challenges in modeling active matter---ranging from molecular motors and cytoskeletal filaments over artificial and biological swimmers on microscopic to groups of animals on macroscopic scales---mainly originate from their out-of-equilibrium character, multiscale nature, nonlinearity, and multibody interactions. In the present review, various modeling approaches and numerical techniques are addressed, compared, and differentiated to illuminate the innovations and current challenges in understanding active matter. The complexity increases from minimal microscopic models of dry active matter toward microscopic models of active matter in fluids. Complementary, coarse-grained descriptions and continuum models are elucidated. Microscopic details are often relevant and strongly affect collective behaviors, which implies that the selection of a proper level of modeling is a delicate choice, with simple models emphasizing universal properties and detailed models capturing specific features. Finally, current approaches to further advance the existing models and techniques to cope with real-world applications, such as complex media and biological environments, are discussed.
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