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ISAR Image Recognition Algorithm and Neural Network Implementation

机译:ISAR图像识别算法与神经网络实现

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摘要

The image recognition and identification procedures are comparatively new in the scope of ISAR (Inverse Synthetic Aperture Radar) applications and based on specific defects in ISAR images, e.g., missing pixels and parts of the image induced by target’s aspect angles require preliminary image processing before identification. The present paper deals with ISAR image enhancement algorithms and neural network architecture for image recognition and target identification. First, stages of the image processing algorithms intended for image improving and contour line extraction are discussed. Second, an algorithm for target recognition is developed based on neural network architecture. Two Learning Vector Quantization (LVQ) neural networks are constructed in Matlab program environment. A training algorithm by teacher is applied. Final identification decision strategy is developed. Results of numerical experiments are presented.
机译:图像识别和识别程序在ISAR(逆合成孔径雷达)应用范围内是相对较新的,并且基于ISAR图像中的特定缺陷,例如,由目标纵横比引起的像素丢失和部分图像需要在识别之前进行初步图像处理。本文讨论了用于图像识别和目标识别的ISAR图像增强算法和神经网络体系结构。首先,讨论了用于图像改善和轮廓线提取的图像处理算法的各个阶段。其次,基于神经网络架构开发了一种目标识别算法。在Matlab程序环境中构造了两个学习矢量量化(LVQ)神经网络。应用教师的训练算法。制定了最终的识别决策策略。给出了数值实验的结果。

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