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首页> 外文期刊>IEEE Transactions on Geoscience and Remote Sensing >Robust Registration of Multimodal Remote Sensing Images Based on Structural Similarity
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Robust Registration of Multimodal Remote Sensing Images Based on Structural Similarity

机译:基于结构相似度的多峰遥感图像鲁棒配准

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摘要

Automatic registration of multimodal remote sensing data [e.g., optical, light detection and ranging (LiDAR), and synthetic aperture radar (SAR)] is a challenging task due to the significant nonlinear radiometric differences between these data. To address this problem, this paper proposes a novel feature descriptor named the histogram of orientated phase congruency (HOPC), which is based on the structural properties of images. Furthermore, a similarity metric named HOPCncc is defined, which uses the normalized correlation coefficient (NCC) of the HOPC descriptors for multimodal registration. In the definition of the proposed similarity metric, we first extend the phase congruency model to generate its orientation representation and use the extended model to build HOPCncc. Then, a fast template matching scheme for this metric is designed to detect the control points between images. The proposed HOPCncc aims to capture the structural similarity between images and has been tested with a variety of optical, LiDAR, SAR, and map data. The results show that HOPCncc is robust against complex nonlinear radiometric differences and outperforms the state-of-the-art similarities metrics (i.e., NCC and mutual information) in matching performance. Moreover, a robust registration method is also proposed in this paper based on HOPCncc, which is evaluated using six pairs of multimodal remote sensing images. The experimental results demonstrate the effectiveness of the proposed method for multimodal image registration.
机译:由于多模态遥感数据[例如,光学,光检测和测距(LiDAR)和合成孔径雷达(SAR)]的自动配准是一项具有挑战性的任务,因为这些数据之间存在明显的非线性辐射差异。为了解决这个问题,本文基于图像的结构特性,提出了一种新颖的特征描述符,称为定向相一致直方图(HOPC)。此外,定义了一个名为HOPCncc的相似性度量,该度量使用HOPC描述符的归一化相关系数(NCC)进行多模式配准。在提出的相似性度量的定义中,我们首先扩展相位一致性模型以生成其方向表示,然后使用扩展的模型来构建HOPCncc。然后,针对该度量的快速模板匹配方案被设计为检测图像之间的控制点。拟议的HOPCncc旨在捕获图像之间的结构相似性,并已通过各种光学,LiDAR,SAR和地图数据进行了测试。结果表明,HOPCncc对复杂的非线性辐射度量差异具有鲁棒性,并且在匹配性能方面优于最新的相似性度量标准(即NCC和互信息)。此外,本文还提出了一种基于HOPCncc的鲁棒配准方法,该方法通过六对多模式遥感影像进行评估。实验结果证明了该方法对多峰图像配准的有效性。

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