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Evaluation of Interest Point Detectors for Non-planar, Transparent Scenes

机译:非平面透明场景的兴趣点检测器评估

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摘要

The detection of stable, distinctive and rich feature point sets has been an active area of research in the field of video and image analysis. Transparency imaging, such as X-ray, has also benefited from this research. However, an evaluation of the performance of various available detectors for this type of images is lacking. The differences with natural imaging stem not only from the transparency, but -in the case of medical X-ray- also from the non-planarity of the scenes, a factor that complicates the evaluation. In this paper, a method is proposed to perform this evaluation on non-planar, calibrated X-ray images. Repeatability and accuracy of nine interest point detectors is demonstrated on phantom and clinical images. The evaluation has shown that the Laplacian-of-Gaussian and Harris-Laplace detectors show overall the best performance for the datasets used.
机译:稳定,独特和丰富的特征点集的检测一直是视频和图像分析领域研究的活跃领域。透明成像(例如X射线)也受益于这项研究。但是,对于这种类型的图像,缺乏对各种可用检测器的性能的评估。与自然成像的差异不仅源于透明度,而且在医学X射线的情况下,还源于场景的非平面性,这使评估变得复杂。在本文中,提出了一种在非平面,校准的X射线图像上执行此评估的方法。在幻像和临床图像上展示了九个兴趣点探测器的可重复性和准确性。评估表明,高斯拉普拉斯算子和哈里斯-拉普拉斯检测器总体上显示了所用数据集的最佳性能。

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