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Efficient radar target recognition using the MUSIC algorithm andinvariant features

机译:利用MUSIC算法和不变特征进行有效的雷达目标识别

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摘要

An efficient technique is developed to recognize target type using one-dimensional range profiles. The proposed technique utilizes the Multiple Signal Classification algorithm to generate superresolved range profiles. Their central moments are calculated to provide translation-invariant and level-invariant feature vectors. Next, the computed central moments are mapped into values between zero and unity, followed by a principal component analysis to eliminate the redundancy of feature vectors. The obtained features are classified based on the Bayes classifier, which is one of the statistical classifiers. Recognition results using five different aircraft models measured at compact range are presented to assess the effectiveness of the proposed technique, and they are compared with those of the conventional range profiles obtained by inverse fast Fourier transform
机译:开发了一种有效的技术来使用一维范围轮廓识别目标类型。所提出的技术利用多信号分类算法来生成超分辨距离剖面。计算它们的中心矩以提供平移不变和水平不变的特征向量。接下来,将计算出的中心矩映射为零到1之间的值,然后进行主成分分析以消除特征向量的冗余。基于统计分类器之一的贝叶斯分类器对获得的特征进行分类。提出使用在紧凑范围内测量的五个不同飞机模型的识别结果,以评估所提出技术的有效性,并将其与通过快速傅里叶逆变换获得的常规范围图进行比较

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