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Kalman Filter-Based Approaches to Hyperspectral Signature Similarity and Discrimination

机译:基于Kalman滤波器的Hyperspectral签名相似性和歧视方法

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Kalman filter has been widely used in statistical signal processing for parameter estimation. Recently, a Kalman filter-based approach to spectral unmixing, referred to as Kalman filter-based linear unmixing (KFLU) was also developed for mixed pixel classification. However, its applicability to estimation and discrimination for hyperspectral signature characterization has not been explored where a hyperspectral signature is defined as a vector on a range of contiguous optical wavelengths of interest. This paper presents a new application of Kalman filtering in hyperspectral signature similarity and discrimination. In particular, it develops a Kalman filter-based signature estimator from which two Kalman filter-based discriminators can be derived for signature similarity and discrimination. The developed Kalman filter-based discriminators utilize a state equation to characterize a hyperspectral signature and a measurement equation to describe another hyperspectral signature, while the developed Kalman filter-based estimator makes use of state and measurement equations to describe the true signature and the observable signature respectively. The least squares error resulting from the Kalman filter-estimated hyperspectral signature is then used as the power for hyperspectral signature similarity and discrimination. Experimental results demonstrate that such Kalman filter-based discriminators are more effective than commonly used spectral similarity measures such as spectral angle mapper (SAM) or Euclidean distance.
机译:卡尔曼滤波器已广泛用于参数估计的统计信号处理。最近,还开发了基于卡尔曼滤波器的光谱解密的方法,用于混合像素分类,参与基于卡尔曼滤波器的线性解混(KFLU)。然而,尚未探索其对估计和鉴别的估计和鉴别的适用性,其中高光谱签名被定义为感兴趣的邻接光波长范围的向量。本文介绍了Kalman滤波在高光谱签名相似性和歧视中的新应用。特别地,它开发了基于卡尔曼滤波器的签名估计器,可以从中导出两个基于卡尔曼滤波器的鉴别器以用于签名相似性和辨别。基于Kalman滤波器的鉴别器利用状态方程来表征高光谱签名和测量方程来描述另一个超光谱签名,而开发的卡尔曼基于滤波器的估计器利用状态和测量方程来描述真正的签名和可观察的签名分别。然后将Kalman滤波器估计的高光谱签名产生的最小二乘误差作为高光谱特征相似性和辨别的功率。实验结果表明,这种基于卡尔曼的滤光片的鉴别器比常用的光谱相似度测量更有效,例如光谱角映射器(SAM)或欧几里德距离。

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