A comparison of fuzzy approaches for training a humanoid robotic football player

G. Acampora, A. D. Nuovo, B. Siciliano, A. Vitiello
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Abstract

Fuzzy Systems are an efficient instrument to create efficient and transparent models of the behavior of complex dynamic systems such as autonomous humanoid robots. The human interpretability of these models is particularly significant when it is applied to the cognitive robotics research, in which the models are designed to study the behaviors and produce a better understanding of the underlying processes of the cognitive development. From this research point of view, this paper presents a comparative study on training fuzzy based system to control the autonomous navigation and task execution of a humanoid robot controlled in a soccer scenario. Examples of sensor data are collected via a computer simulation, then we compare the performance of several fuzzy algorithms able to learn and optimize the humanoid robot's actions from the data.
训练仿人机器人足球运动员的模糊方法比较
模糊系统是创建复杂动态系统(如自主类人机器人)的高效透明行为模型的有效工具。当这些模型应用于认知机器人研究时,人类对这些模型的可解释性尤为重要,因为这些模型旨在研究行为并更好地理解认知发展的潜在过程。从这一研究角度出发,本文对训练模糊系统控制足球场景下仿人机器人的自主导航和任务执行进行了对比研究。通过计算机仿真收集了传感器数据的实例,然后比较了几种能够从数据中学习和优化仿人机器人动作的模糊算法的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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