Relative positioning for team robot navigation

被引:0
|
作者
Patrick McDowell
Brian Bourgeois
Pamela J. McDowell
S. S. Iyengar
Jianhua Chen
机构
[1] Stennis Space Center,Naval Research Laboratory
[2] Louisiana State University,Department of Computer Science
[3] Southeastern Louisiana University,Department of Computer Science and Industrial Technology
[4] Stennis Space Center,Naval Oceanographic Office
来源
Autonomous Robots | 2007年 / 22卷
关键词
Component; Formations; Acoustic positioning; Neural networks;
D O I
暂无
中图分类号
学科分类号
摘要
The research presented in this paper approaches the issue of robot team navigation using relative positioning. With this approach each robot is equipped with sensors that allow it to independently estimate the relative direction of an assigned leader. Acoustic sensor systems are used and were seen to work very effectively in environments where datum relative positioning systems (such as GPS or acoustic transponders) are typically ineffective. While acoustic sensors provide distinct advantages, the variability of the acoustic environment presents significant control challenges. To address this challenge, directional control of the robot was accomplished with a feed forward neural network trained using a genetic algorithm, and a new approach to training using recent memories was successfully implemented. The design of this controller is presented and its performance is compared with more traditional classic logic and behavior controllers.
引用
收藏
页码:133 / 148
页数:15
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