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Multi-spectral image registration and evaluation based on edge-enhanced MSER

机译:基于边缘增强MSER的多光谱图像配准与评估

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摘要

In this paper, we propose an edge-enhanced maximally stable extremal region (E-MSER) method in the multi-spectral image registration. To increase the detection rate of MSERs, an edge-enhanced image with an adjustment factor is well prepared in advance. Then, E-MSERs are detected based on the new one. Although the grey level of multi-spectral images varies a lot from different imaging bands, E-MSERs show a good stability. Scale-invariant feature transform descriptor can be used to describe the E-MSERs. Four criteria such as matching score, repeatability, precision and recall are applied to evaluate the detectors' performance and root mean square error is used to analyse the registration accuracy. The experiments made in multi-spectral images with same scene have shown that the E-MSER method performs better than the untouched MSER method. Moreover, comparative experiments have been made with E-MSER, MSER and some other feature detectors (e.g. Harris-Affine, Hessian-Affine and DoG-based) under the scenes of affine transformation. The values of evaluation criteria show that the E-MSER performs better than MSER. At the same time, the registration accuracies of E-MSER and MSER are <1 pixel, which are much smaller than those of other detectors.
机译:在本文中,我们提出了一种在多光谱图像配准中的边缘增强最大稳定极值区域(E-MSER)方法。为了提高MSER的检测率,预先准备了具有调整因子的边缘增强图像。然后,基于新的检测到E-MSER。尽管不同光谱波段的多光谱图像的灰度差异很大,但E-MSER显示出良好的稳定性。尺度不变特征变换描述符可用于描述E-MSER。匹配得分,重复性,精度和召回率等四个标准用于评估检测器的性能,均方根误差用于分析套准精度。在具有相同场景的多光谱图像中进行的实验表明,E-MSER方法的性能优于未接触的MSER方法。此外,在仿射变换的场景下,已经使用E-MSER,MSER和其他一些特征检测器(例如基于Harris-Affine,Hessian-Affine和DoG的基础)进行了对比实验。评估标准的值表明,E-MSER的性能优于MSER。同时,E-MSER和MSER的配准精度小于1个像素,远小于其他探测器的配准精度。

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