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An advanced gradient texture feature descriptor based on phase information for infrared and visible image matching

机译:基于红外和可见图像匹配的相位信息的高级渐变纹理特征描述符

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摘要

Infrared and visible image matching has many applications in remote sensing, computer vision, military fields, etc. The differences in the many characteristics of infrared images and visible images make a robust feature description vital but difficult. Texture orientation information retains the general properties in refrared and visible images, and multi-scale, and multi-oriented Gabor filters can accurately reveal the texture orientation information. This paper presents a feature descriptor by capturing the phase information between neighboring pixels with Log-Gabor filters. Firstly, the original matching image is enhanced via histogram equalization to emphasize the regions of interest, and the gradient magnitude for each pixel is computed to extract the image profile, which advances the performance of the algorithm significantly. Secondly, multi-scale and multi-oriented Log-Gabor filters are utilized to obtain the angle information for different scales and phases in the neighboring region of each pixel, and the angle information is indexed by computing the maximum of energy, including the magnitude, real part, and imaginary part to generate the marked image in which the histograms of the subregion of the detected keypoints are employed to generate the feature descriptors. Finally, we advocate five evaluation measures for testing the performance of the algorithm. The proposed approach is evaluated with four data sets composed of images obtained in visible light and infrared spectra, and its performance is compared with the performance of the state-of-the-art algorithms: Scale-invariant feature transform(SIFT), Speeded up robust features(SURF), Oriented fast and rotated BRIEF(ORB), the edge-oriented histogram descriptor (EHD), the phase congruency edge-oriented histogram discriptor (PCEHD), and the Log-Gabor histogram descriptor (LGHD). The experimental results indicate that the performance of the proposed approach is higher than that of other state-of-the-art algorithms.
机译:红外和可见的图像匹配在遥感,计算机视觉,军事领域等中有许多应用。红外图像和可见图像的许多特征的差异使得强大的特征描述至关重要但困难。纹理方向信息保留了刷新和可见图像中的一般属性,多尺度和多尺度和多面向Gabor过滤器可以准确地揭示纹理方向信息。本文通过使用Log-Gabor滤波器捕获相邻像素之间的相位信息来介绍特征描述符。首先,通过直方图均衡来增强原始匹配图像以强调感兴趣的区域,并且计算每个像素的梯度幅度以提取图像简档,这显着前进了算法的性能。其次,利用多尺度和多定向的日志gabor滤波器来获得每个像素的相邻区域中的不同尺度和相位的角度信息,并且通过计算最大能量,包括幅度,该角度信息索引。实验部分和虚部,以生成所标记的图像,其中使用检测到的键点的子区域的直方图来生成特征描述符。最后,我们提倡五种评估措施来测试算法的性能。所提出的方法是用由可见光和红外光谱中获得的图像组成的四个数据集进行评估,其性能与最先进的算法的性能进行了比较:Scale-Funiant Feature变换(SIFT),加速鲁棒特征(冲浪),以快速和旋转的简要旋转(ORB),边缘导向直方图描述符(EHD),相一致性边缘导向的直方图Descriptor(PCEHD)和Log-Gabor直方图描述符(LGHD)。实验结果表明,所提出的方法的性能高于其他最先进的算法。

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