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Integration of Hyperspectral Imagery and Sparse Sonar Data for Shallow Water Bathymetry Mapping

机译:高光谱影像与稀疏声纳数据的集成,用于浅水测深法制图

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Accurate and rapid mapping of shallow water bathymetry is essential for the safe operation of many industries. Here, we propose a new approach to shallow water bathymetry mapping that integrates hyperspectral image and sparse sonar data. Our approach includes two main steps: dimensional reduction of Hyperion images and interpolation of sparse sonar data. First, we propose a new algorithm, i.e., a sonar-based semisupervised Laplacian eigenmap (LE) using both spatial and spectral distance, for dimensional reduction of Hyperion imagery. Second, we develop a new algorithm to interpolate sparse sonar points using a 3-D information diffusion method with homogeneous regions. These homogeneous regions are derived from the segmentation of the dimensional reduction results based on depth. We conduct the experimental comparison to confirm the applicability of the dimensional reduction and interpolation methods and their advantages over previously described methods. The proposed dimensional reduction method achieves better dimensional results than unsupervised method and semisupervised LE method (using only spectral distance). Furthermore, the bathymetry retrieved using the proposed method is more precise than that retrieved using common interpolation methods.
机译:准确快速地绘制浅水测深图对于许多行业的安全运行至关重要。在这里,我们提出了一种将高光谱图像和稀疏声纳数据相集成的浅水测深法制图的新方法。我们的方法包括两个主要步骤:Hyperion图像的尺寸缩减和稀疏声纳数据的插值。首先,我们提出了一种新的算法,即基于空间和光谱距离的基于声纳的半监督拉普拉斯特征图(LE),用于Hyperion图像的降维。其次,我们开发了一种新算法,该算法使用具有均匀区域的3-D信息扩散方法来内插稀疏声纳点。这些均质区域是根据基于深度的降维结果的分割得出的。我们进行实验比较,以确认降维和插值方法的适用性以及它们相对于前述方法的优势。提出的降维方法比无监督方法和半监督LE方法(仅使用光谱距离)可获得更好的尺寸结果。此外,使用该方法检索的测深比使用普通插值方法检索的测深更精确。

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