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CLASSIFICATION OF SUBSURFACE OBJECTS USING SINGULAR VALUES DERIVED FROM SIGNAL FRAMES

机译:使用从信号帧得出的奇异值对地下物体进行分类

摘要

The classification system represents a detected object with a feature vector derived from the return signals acquired by an array of N transceivers operating in multistatic mode. The classification system generates the feature vector by transforming the real-valued return signals into complex-valued spectra, using, for example, a Fast Fourier Transform. The classification system then generates a feature vector of singular values for each user-designated spectral sub-band by applying a singular value decomposition (SVD) to the N×N square complex-valued matrix formed from sub-band samples associated with all possible transmitter-receiver pairs. The resulting feature vector of singular values may be transformed into a feature vector of singular value likelihoods and then subjected to a multi-category linear or neural network classifier for object classification.
机译:分类系统代表具有特征向量的检测对象,该特征向量从以多静态模式运行的N个收发器阵列获取的返回信号中得出。分类系统通过使用例如快速傅立叶变换将实值返回信号转换为复值频谱来生成特征向量。然后,分类系统通过将奇异值分解(SVD)应用于由与所有可能的发射机相关联的子带样本形成的N×N平方复数值矩阵,为每个用户指定的频谱子带生成奇异值的特征矢量-接收器对。可以将所得的奇异值特征向量转换为奇异值似然性的特征向量,然后对其进行多类别线性或神经网络分类器以进行对象分类。

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