An integrated neurocomputing architecture for side-scan sonar target detection

M. Dzwonczyk, M. Busa, J. T. Sims, T. Daud
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引用次数: 3

Abstract

An integrated neurocomputing architecture developed for deployable, real-time pattern recognition applications is described. This architecture, called INCA, consists of a fully parallel, analog electronic, feedforward neural network coupled with a conventional microprocessor system. The first generation system, INCA/1, is currently under construction and employs existing analog neural network building block chips, with an off-the-shelf single-board computer. The proof-of-concept application for INCA/1 is the automatic detection of targets in sidescan sonar images. Preliminary simulations of the network, which account for some of the characteristics of the physical electronics, have shown excellent performance on real data without preprocessing.<>
一种用于侧扫声纳目标探测的集成神经计算架构
描述了为可部署的实时模式识别应用开发的集成神经计算架构。这种结构被称为INCA,由一个完全并行的模拟电子前馈神经网络和一个传统的微处理器系统组成。第一代系统INCA/1目前正在建设中,采用现有的模拟神经网络构建块芯片,配备现成的单板计算机。INCA/1的概念验证应用是在侧扫描声纳图像中自动检测目标。该网络的初步模拟考虑了物理电子学的一些特性,在没有预处理的实际数据上显示出优异的性能。
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