最小感知:让资源受限的机器人自主运行

IF 2.9 Q2 ROBOTICS
Frontiers in Robotics and AI Pub Date : 2024-09-18 eCollection Date: 2024-01-01 DOI:10.3389/frobt.2024.1431826
Chahat Deep Singh, Botao He, Cornelia Fermüller, Christopher Metzler, Yiannis Aloimonos
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引用次数: 0

摘要

自主移动机器人的能力迅速增强,有望在未来十年内实现无处不在。这些机器人将继续在灾害管理、环境监测、桥梁检测和农业检测等新型应用中提高效率和安全性。即使在偏远或危险地区,机器人也必须仅利用机载传感和计算来感知、处理和解释环境数据,才能在没有人类持续干预的情况下自主运行。这种能力得益于感知算法的进步,使这些机器人能够主要依靠感知能力完成导航任务。然而,由于受到尺寸、面积、重量和功率的限制,微型机器人的自主性主要受到传感器、内存和计算能力的阻碍。这些机器人的瓶颈在于资源受限机器人的实时感知能力。为了实现体长小于 100 毫米的机器人的自主性,我们从昆虫和蜂鸟等微小生物中汲取灵感,尽管它们的传感器和神经系统极小,但却以复杂的感知、导航和生存能力而著称。这项工作旨在为微型自主机器人设计一个紧凑、高效的最小感知框架提供启示,从较高的认知水平到较低的传感器水平。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Minimal perception: enabling autonomy in resource-constrained robots.

The rapidly increasing capabilities of autonomous mobile robots promise to make them ubiquitous in the coming decade. These robots will continue to enhance efficiency and safety in novel applications such as disaster management, environmental monitoring, bridge inspection, and agricultural inspection. To operate autonomously without constant human intervention, even in remote or hazardous areas, robots must sense, process, and interpret environmental data using only onboard sensing and computation. This capability is made possible by advancements in perception algorithms, allowing these robots to rely primarily on their perception capabilities for navigation tasks. However, tiny robot autonomy is hindered mainly by sensors, memory, and computing due to size, area, weight, and power constraints. The bottleneck in these robots lies in the real-time perception in resource-constrained robots. To enable autonomy in robots of sizes that are less than 100 mm in body length, we draw inspiration from tiny organisms such as insects and hummingbirds, known for their sophisticated perception, navigation, and survival abilities despite their minimal sensor and neural system. This work aims to provide insights into designing a compact and efficient minimal perception framework for tiny autonomous robots from higher cognitive to lower sensor levels.

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来源期刊
CiteScore
6.50
自引率
5.90%
发文量
355
审稿时长
14 weeks
期刊介绍: Frontiers in Robotics and AI publishes rigorously peer-reviewed research covering all theory and applications of robotics, technology, and artificial intelligence, from biomedical to space robotics.
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