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Front Robot AI. 2020 Jul 8;7:75. doi: 10.3389/frobt.2020.00075. eCollection 2020.
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Mechanical Innovations of a Climbing Cactus: Functional Insights for a New Generation of Growing Robots.一种攀缘仙人掌的机械创新:对新一代生长机器人的功能洞察。
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The grand challenges of .···的重大挑战。
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用于植物研究和生长机器人的生物工程方法。一篇综述。

The Bio-Engineering Approach for Plant Investigations and Growing Robots. A Mini-Review.

作者信息

Mazzolai Barbara, Tramacere Francesca, Fiorello Isabella, Margheri Laura

机构信息

Center for Micro-BioRobotics, Istituto Italiano di Tecnologia, Pontedera, Italy.

The BioRobotics Institute, Scuola Superiore Sant'Anna, Pisa, Italy.

出版信息

Front Robot AI. 2020 Sep 24;7:573014. doi: 10.3389/frobt.2020.573014. eCollection 2020.

DOI:10.3389/frobt.2020.573014
PMID:33501333
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7806088/
Abstract

It has been 10 years since the publication of the first article looking at plants as a biomechatronic system and as model for robotics. Now, roboticists have started to look at plants differently and consider them as a model in the field of bioinspired robotics. Despite plants have been seen traditionally as passive entities, in reality they are able to grow, move, sense, and communicate. These features make plants an exceptional example of morphological computation - with probably the highest level of adaptability among all living beings. They are a unique model to design robots that can act in- and adapt to- unstructured, extreme, and dynamically changing environments exposed to sudden or long-term events. Although plant-inspired robotics is still a relatively new field, it has triggered the concept of growing robotics: an emerging area in which systems are designed to create their own body, adapt their morphology, and explore different environments. There is a reciprocal interest between biology and robotics: plants represent an excellent source of inspiration for achieving new robotic abilities, and engineering tools can be used to reveal new biological information. This way, a bidirectional biology-robotics strategy provides mutual benefits for both disciplines. This mini-review offers a brief overview of the fundamental aspects related to a . It analyses the works in which both biological and engineering aspects have been investigated, and highlights the key elements of plants that have been milestones in the pioneering field of growing robots.

摘要

自第一篇将植物视为生物机电系统和机器人模型的文章发表以来,已经过去了10年。如今,机器人专家开始以不同的视角看待植物,并将它们视为仿生机器人领域的一种模型。尽管传统上植物被视为被动的实体,但实际上它们能够生长、移动、感知和交流。这些特性使植物成为形态计算的一个杰出范例——可能是所有生物中适应性最强的。它们是设计能够在非结构化、极端且动态变化的环境中行动并适应突发或长期事件的机器人的独特模型。尽管受植物启发的机器人技术仍是一个相对较新的领域,但它引发了生长机器人技术的概念:一个新兴领域,在这个领域中,系统被设计用来创造自己的身体、适应其形态并探索不同的环境。生物学和机器人技术之间存在着相互的兴趣:植物是实现新机器人能力的极佳灵感来源,而工程工具可用于揭示新的生物学信息。这样,一种双向的生物学 - 机器人技术策略为这两个学科都带来了互利。这篇小型综述简要概述了与……相关的基本方面。它分析了同时研究了生物学和工程学方面的作品,并突出了植物的关键要素,这些要素在生长机器人的开创性领域中具有里程碑意义。