机器学习和软机器人

N. Mirza
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引用次数: 2

摘要

近年来,机器人技术,特别是软机器人技术吸引了广泛的研究人员和科学家。由于其系统的复杂性和成本较低,机器人在现实环境中具有广泛的优势。软抓取器比刚性机器人抓取器更具适应性。在不改变控制输入的情况下,可以提高软体机器人的抓取性能。机器学习在改善控制和增加这类机器人在现实世界中的应用数量方面发挥了至关重要的作用。本文讨论了软体机器人的建模、设计、智能控制、传感和实际应用等方面的相关研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Machine Learning and Soft Robotics
In recent times, robotics and especially soft robotics has attracted a wide range of researchers and scientists. As oft robotics has an extensive number of advantages in the real environment, due to their less complex system and cost. Soft grippers are more adaptive as compared to the rigid robotic grippers. The grasping performance of soft robots can be improved without bringing major changes in the control inputs. Machine learning has played a vital role in improving the controls and increasing the number of applications of these kinds of robots in the real world. In this paper relevant research in modeling, design, intelligent control, sensing, and practical applications of soft robots has been discussed.
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