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基于小波的轮廓波变换和峰度图在复杂背景下的红外小目标检测。

Wavelet-Based Contourlet Transform and Kurtosis Map for Infrared Small Target Detection in Complex Background.

机构信息

School of Physics and Information Technology, Shaanxi Normal University, Xi'an 710119, China.

出版信息

Sensors (Basel). 2020 Jan 30;20(3):755. doi: 10.3390/s20030755.

Abstract

Wavelet-based Contourlet transform (WBCT) is a typical Multi-scale Geometric Analysis (MGA) method, it is a powerful technique to suppress background and enhance the edge of target. However, in the small target detection with the complex background, WBCT always lead to a high false alarm rate. In this paper, we present an efficient and robust method which utilizes WBCT method in conjunction with kurtosis model for the infrared small target detection in complex background. We mainly made two contributions. The first, WBCT method is introduced as a preprocessing step, and meanwhile we present an adaptive threshold selection strategy for the selection of WBCT coefficients of different scales and different directions, as a result, the most background clutters are suppressed in this stage. The second, a kurtosis saliency map is obtained by using a local kurtosis operator. In the kurtosis saliency map, a slide window and its corresponding mean and variance is defined to locate the area where target exists, and subsequently an adaptive threshold segment mechanism is utilized to pick out the small target from the selected area. Extensive experimental results demonstrate that, compared with the contrast methods, the proposed method can achieve satisfactory performance, and it is superior in detection rate, false alarm rate and ROC curve especially in complex background.

摘要

基于小波的 Contourlet 变换(WBCT)是一种典型的多尺度几何分析(MGA)方法,它是一种强大的抑制背景和增强目标边缘的技术。然而,在复杂背景下的小目标检测中,WBCT 总是导致高的虚警率。在本文中,我们提出了一种有效的、稳健的方法,该方法利用 WBCT 方法与峰度模型相结合,用于复杂背景下的红外小目标检测。我们主要做了两方面的贡献。首先,WBCT 方法被用作预处理步骤,同时我们提出了一种自适应阈值选择策略,用于选择不同尺度和不同方向的 WBCT 系数,从而在这个阶段抑制了大部分的背景杂波。其次,利用局部峰度算子得到一个峰度显著图。在峰度显著图中,定义了一个滑动窗口及其对应的均值和方差,以定位目标存在的区域,然后利用自适应阈值分割机制从选定区域中提取出小目标。大量的实验结果表明,与对比方法相比,所提出的方法可以获得令人满意的性能,在复杂背景下,它在检测率、虚警率和 ROC 曲线方面具有优越性。

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