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Surface identification by acoustic reflection characteristics using time delay spectrometry and artificial neural networks

机译:使用时间延迟光谱和人工神经网络的声反射特性通过声反射特性的表面识别

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The identification of surfaces using incident sound waves is associated with a variety of different applications including, sonar, seabed scanning and medical ultrasound imaging. The biologically innocuous nature, applicability, and simplicity involved in generation and measurement, makes sound inherently a more attractive agent for most applications. Time delay spectrometry can be employed as a way of isolating a desired reflected signal from other reflections dramatically increasing the signal to noise ratio of the receiver of a neural network based classification system. A surface classification system with the analysis of its performance is introduced in this paper as a successful implementation of the proposed methodology.
机译:使用入射声波的表面的识别与各种不同的应用相关,包括声纳,海底扫描和医学超声成像。生成和测量中涉及的生物无害的性质,适用性和简单性,对大多数应用来说都是一个更具吸引力的代理。时间延迟光谱可以用作与其他反射的所需反射信号分离所需的反射信号的方式显着增加基于神经网络的分类系统的接收器的信噪比。本文介绍了分析其性能的表面分类系统作为建议方法的成功实施。

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