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首页> 外文期刊>Journal of Infrared, Millimeter and Terahertz Waves >Infrared Point Target Detection with Fisher Linear Discriminant and Kernel Fisher Linear Discriminant
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Infrared Point Target Detection with Fisher Linear Discriminant and Kernel Fisher Linear Discriminant

机译:Fisher线性判别和核Fisher线性判别的红外点目标检测

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摘要

It is a challenging task to detect point targets from an infrared image. Recently, the pattern recognition theory has been used to detect targets. The principal component analysis (PCA) has gained success in this field. We propose a linear subspace detection method based on Fisher linear discriminant (FLD) in this paper. If we consider images are made up of target class data and background class data, the target detection problem can be translated into a two-class classification problem. The FLD as one of pattern recognition algorithms can be used to find potential targets from image background. After classification by FLD, a map function, Gaussian map function, is developed to generate detection images in which the larger target-to-background contrast is obtained. FLD is a linear detection method without taking the higher-order statistics of image data into account. To improve detection performance, we extend this detection method to its nonlinear version, kernel FL- (KFLD) detection. Because the nonlinear subspace is capable of capturing the part of higher-order statistics, the better detection performance can be achieved. The well-devised experiments verify that KFLD detection outperforms FLD and other common used detection methods.
机译:从红外图像检测点目标是一项艰巨的任务。最近,模式识别理论已被用于检测目标。主成分分析(PCA)在该领域已获得成功。本文提出了一种基于Fisher线性判别式(FLD)的线性子空间检测方法。如果我们认为图像是由目标类别数据和背景类别数据组成的,则目标检测问题可以转化为两类分类问题。 FLD作为模式识别算法之一,可用于从图像背景中查找潜在目标。在通过FLD分类后,开发了一个地图函数(高斯地图函数)以生成检测图像,在该检测图像中可以获得较大的目标背景对比度。 FLD是一种线性检测方法,不考虑图像数据的高阶统计量。为了提高检测性能,我们将此检测方法扩展到其非线性版本,即内核FL-(KFLD)检测。由于非线性子空间能够捕获高阶统计量的一部分,因此可以实现更好的检测性能。经过精心设计的实验证明,KFLD检测优于FLD和其他常用检测方法。

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