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自组织与人工生命。

Self-Organization and Artificial Life.

机构信息

Universidad Nacional Autónoma de México, Instituto de Investigaciones en Matemáticas Aplicadas y en Sistemas, Centro de Ciencias de la Complejidad.

ITMO University.

出版信息

Artif Life. 2020 Summer;26(3):391-408. doi: 10.1162/artl_a_00324. Epub 2020 Jul 22.

DOI:10.1162/artl_a_00324
PMID:32697161
Abstract

Self-organization can be broadly defined as the ability of a system to display ordered spatiotemporal patterns solely as the result of the interactions among the system components. Processes of this kind characterize both living and artificial systems, making self-organization a concept that is at the basis of several disciplines, from physics to biology and engineering. Placed at the frontiers between disciplines, artificial life (ALife) has heavily borrowed concepts and tools from the study of self-organization, providing mechanistic interpretations of lifelike phenomena as well as useful constructivist approaches to artificial system design. Despite its broad usage within ALife, the concept of self-organization has been often excessively stretched or misinterpreted, calling for a clarification that could help with tracing the borders between what can and cannot be considered self-organization. In this review, we discuss the fundamental aspects of self-organization and list the main usages within three primary ALife domains, namely "soft" (mathematical/computational modeling), "hard" (physical robots), and "wet" (chemical/biological systems) ALife. We also provide a classification to locate this research. Finally, we discuss the usefulness of self-organization and related concepts within ALife studies, point to perspectives and challenges for future research, and list open questions. We hope that this work will motivate discussions related to self-organization in ALife and related fields.

摘要

自组织可以被广义地定义为系统仅由于系统组件之间的相互作用而表现出有序的时空模式的能力。这种过程既存在于生命系统中,也存在于人工系统中,使得自组织成为从物理学到生物学和工程学等多个学科的基础概念。人工生命(ALife)处于学科的前沿,从自组织的研究中大量借鉴了概念和工具,为生命现象提供了机械论解释,以及对人工系统设计有用的建构主义方法。尽管在 ALife 中广泛使用,但自组织的概念经常被过度拉伸或误解,需要澄清,以帮助确定可以和不能被视为自组织的边界。在这篇综述中,我们讨论了自组织的基本方面,并列出了在三个主要的 ALife 领域中的主要用法,即“软”(数学/计算建模)、“硬”(物理机器人)和“湿”(化学/生物系统)ALife。我们还提供了一个分类来定位这项研究。最后,我们讨论了自组织和相关概念在 ALife 研究中的有用性,指出了未来研究的观点和挑战,并列出了开放性问题。我们希望这项工作将激发与 ALife 中和相关领域中的自组织相关的讨论。

相似文献

1
Self-Organization and Artificial Life.自组织与人工生命。
Artif Life. 2020 Summer;26(3):391-408. doi: 10.1162/artl_a_00324. Epub 2020 Jul 22.
2
Emergence in Artificial Life.人工生命中的涌现。
Artif Life. 2023 May 1;29(2):153-167. doi: 10.1162/artl_a_00397.
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Theater and ALife Art: Modeling Open and Closed Systems.戏剧与人工生命艺术:开放与封闭系统建模
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A comprehensive overview of the applications of artificial life.人工生命应用的全面概述。
Artif Life. 2006 Winter;12(1):153-82. doi: 10.1162/106454606775186455.
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The emergence of emergence: a critique of "design, observation, surprise!".“涌现”的涌现:对《设计、观察、惊喜!》的批判。
Riv Biol. 2000 May-Aug;93(2):349-56.
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Artificial life and living systems: Insight into artificial life and its implications in life science research.人工生命与生命系统:对人工生命及其在生命科学研究中的意义的洞察。
Bioinformation. 2006 Apr 28;1(4):139-40. doi: 10.6026/97320630001139.
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The view from elsewhere: perspectives on ALife modeling.来自其他地方的观点:关于人工生命建模的视角
Artif Life. 2002;8(1):87-100. doi: 10.1162/106454602753694783.
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Emerging concepts of self-organization and the living state. Special issue.自组织与生命状态的新兴概念。特刊。
Biosystems. 1997;42(2-3):75-216.
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Several necessary conditions for the evolution of complex forms of life in an artificial environment.在人工环境中生命复杂形式进化的几个必要条件。
Artif Life. 2003 Spring;9(2):153-74. doi: 10.1162/106454603322221504.
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Bringing ALife and Complex Systems Science to Population Health Research.将生命与复杂系统科学引入人群健康研究。
Artif Life. 2018 Summer;24(3):220-223. doi: 10.1162/artl_a_00264.

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