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3D reconstruction of particle agglomerates using multiple scanning electron microscope stereo-pair images

机译:使用多扫描电子显微镜立体对图像的三维重建颗粒凝聚物

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Scanning electron microscopes (SEM) allow a detailed surface analysis of a wide variety of specimen. However, SEM image data does not provide depth information about a captured scene. This limitation can be overcome by recovering the hidden third dimension of the acquired SEM micrographs, for instance to fully characterize a particle agglomerate's morphology. In this paper, we present a method that allows the three-dimensional (3D) reconstruction of investigated particle agglomerates using an uncalibrated stereo vision approach that is applied to multiple stereo-pair images. The reconstruction scheme starts with a feature detection and subsequent matching in each pair of stereo images. Based on these correspondences, a robust estimate of the epipolar geometry is determined. A following rectification allows a reduction of the dense correspondence problem to a one-dimensional search along conjugate epipolar lines. So the disparity maps can be obtained using a dense stereo matching algorithm. To remove outliers while preserving edges and individual structures, a disparity refinement is executed using suitable image filtering techniques. The investigated specimen's qualitative depth's information can be directly calculated from the determined disparity maps. In a final step the resulting point clouds are registered. State-of-the-art algorithms for 3D reconstruction of SEM micrographs mainly focus on structures whose image pairs contain hardly or even none-occluded areas. The acquisition of multiple stereo-pair images from different perspectives makes it possible to combine the obtained point clouds in order to overcome occurring occlusions. The presented approach thereby enables the 3D illustration of the investigated particle agglomerates.
机译:扫描电子显微镜(SEM)允许的各种试样的详细表面分析。然而,SEM图像数据不提供有关摄影场景的深度信息。这种限制可以通过回收获得的SEM显微照片的隐藏第三维,例如以充分表征颗粒凝聚体的形态来克服。在本文中,我们提出了一种方法,其允许所述三维(3D)研究颗粒凝聚体的使用被应用到多个立体对图像的未校准的立体视觉方法重建。重建方案开始于一个特征检测和随后的匹配中的每个对立体图像。基于这些对应,对极几何的稳健估计被确定。甲以下整流允许沿共轭核线的一维搜索的减少致密对应问题的。因此,视差图可以使用稠密立体匹配算法来获得。以除去异常值,同时保留边缘和单个结构,视差细化使用合适的图像滤波技术执行。该调查样本的定性深度的信息可以从所确定的视差图直接计算。在最后一步得到的点云登记。国家的最先进的算法,3D重建SEM照片的主要集中在结构,其图像对含有几乎或甚至没有遮挡的地方。从不同的角度的多个立体对图像的获取使得能够以克服存在的闭塞所得到的点云结合。所提出的方法,从而使所研究的颗粒凝聚体的三维图。

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