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The Research of the ATR System Based on Infrared Images and L-M BP Neural Network

机译:基于红外图像和L-M BP神经网络的ATR系统的研究

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With the broad application of information processing technology in the surveillance equipment, the automatic target recognition (ATR) technology has become a key part of the battlefield intelligence processing system. In this paper, we presented an approach for building an ATR system with improved artificial neural network, which can be used to recognize and classify the infrared targets in army field. Because of the invariance of rotation, translation and scaling, we selected the features of Hu invariant moments and roundness as input of the neural network. In order to increase the speed of training, the L-M (Levenberg-Marquardt) algorithm was introduced to improve the traditional BP neural network. The results of simulation show that the approach can meet the requirement of the ATR system in high adaptability and good identification effect.
机译:随着信息处理技术在监视设备中的广泛应用,自动目标识别(ATR)技术已成为战场情报处理系统的关键部分。在本文中,我们提出了一种使用改进的人工神经网络构建ATR系统的方法,该方法可用于识别和分类陆军领域的红外目标。由于旋转,平移和缩放的不变性,我们选择了Hu不变矩和圆度的特征作为神经网络的输入。为了提高训练速度,引入了L-M(Levenberg-Marquardt)算法来改进传统的BP神经网络。仿真结果表明,该方法适应性强,识别效果好,可以满足ATR系统的要求。

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