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Obstacle effects on electrocommunication with applications to object detection of underwater robots

机译:用应用对物体检测水下机器人电信的障碍物

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Some fish species communicate electrically (termed electrocommunication) in turbid waters where other communication modalities fail. Inspired by this biological phenomenon, we have developed an artificial electrocommunication system for underwater robots (Wang et al 2017 Bioinspir. Biomimetics 12 036002). Due to the complex terrain of the ocean, electrocommunication could be affected by potential obstacles. In this paper, we investigate the obstacle effects on electrocommunication in a quasi-two-dimensional water environment. We first employ Fresnel zone theory to theoretically analyze the obstacle effects on electrocommunication. We then simplify the ocean terrain into 32 types of obstacles according to their material, relative location, geometry, and size, and use ANSYS Maxwell to simulate the effect of these obstacles on electrocommunication. We fabricate the same types of obstacles as in the simulation, and further conduct electrocommunication experiments with these obstacles in a swimming pool. Both the simulations and experiments show that the material, relative location, geometry, and size of the obstacles all affect the electrocommunication to varying degrees. Finally, we demonstrate that it is possible to identify and detect underwater objects based on the obtained obstacle effects, indicating that electrocommunication could be a new viable method for underwater object detection.
机译:一些鱼类在混浊水域中在混浊水域中通信,其中其他通信方式失败。灵感来自这种生物现象,我们开发了一种用于水下机器人的人工电信系统(Wang等,2017 Bioinspir。Biomimetics 12 036002)。由于海洋的复杂地形,电信机可能受到潜在障碍的影响。在本文中,我们研究了准二维水环境中对电通电的障碍效应。我们首先使用菲涅耳区理论理论上分析了电信的障碍效应。然后,我们根据其材料,相对位置,几何形状和尺寸将海洋地形简化为32种类型的障碍物,并使用ANSYS MAXWELL模拟这些障碍对电通电的影响。我们在模拟中制造与仿真相同类型的障碍,并进一步在游泳池中使用这些障碍进行电信实验。仿真和实验都表明,障碍物的材料,相对位置,几何形状和尺寸都影响电信机到不同程度。最后,我们证明可以基于所获得的障碍物效应来识别和检测水下物体,表明电通电可以是用于水下物体检测的新可行方法。

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