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Discrimination of cylinders with different wall thicknesses using neural networks and simulated dolphin sonar signals

机译:使用神经网络和模拟海豚声纳信号区分不同壁厚的气瓶

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This paper describes a method integrating neural networks into a system for recognizing underwater objects. The system is based on a combination of simulated dolphin sonar signals, simulated auditory filters and artificial neural networks. The system is tested on a cylinder wall thickness difference experiment and demonstrates high accuracy for small wall thickness differences. Results from the experiment are compared with results obtained by a false killer whale (pseudorca crassidens).
机译:本文介绍了一种将神经网络集成到识别水下物体的系统中的方法。该系统基于模拟的海豚声纳信号,模拟的听觉滤波器和人工神经网络的组合。该系统在汽缸壁厚差实验上进行了测试,并证明了小壁厚差的高精度。将实验结果与假虎鲸(pseudorca crassidens)获得的结果进行比较。

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