基于嵌入式视觉和CPG模型的机器鱼目标跟踪

Feihu Sun, Junzhi Yu, De Xu, Ming Wang
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引用次数: 3

摘要

在水生环境中使用嵌入式视觉的兴趣大大增加。提出了一种基于嵌入式视觉和基于中枢模式发生器(CPG)的运动控制的自由游动仿生机器鱼鲁棒目标跟踪方法。具体而言,首先提出了一种自动连续自适应均值移位(Auto-CAMSHIFT)算法来获取感兴趣目标的位置和大小。然后设计一个模糊控制器来生成与期望目标密切相关的控制输入。同时,采用具有鲁棒性的CPG控制器,对机器鱼的多个运动关节产生协调信号。最后,通过水生实验验证了所提方法的有效性,取得了令人满意的效果。
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Target tracking of robotic fish based on embedded vision and CPG model
There has been greatly increased interest in using embedded vision for aquatic environments. This paper presents a robust target tracking method for a free-swimming biomimetic robotic fish by means of embedded vision and central pattern generator (CPG)-based motion control. Specifically, an algorithm called automatic continuous adaptive mean shift (Auto-CAMSHIFT) is firstly proposed to obtain the position and size of the interested target. Then a fuzzy logic controller is developed to generate the control input closely related to the desired target. A CPG controller that is robust against small and unexpected disturbance, at the same time, is employed to produce coordinated signals for multiple moving joints of the robotic fish. Finally, aquatic testing results verify the effectiveness of the proposed methods and show a satisfactory performance.
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