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Benchmarking of Image Registration Methods for Differently Stained Histological Slides

机译:不同染色的组织切片的图像配准方法的基准测试

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Image registration is a common task for many biomedical analysis applications. The present work focuses on the benchmarking of registration methods on differently stained histological slides. This is a challenging task due to the differences in the appearance model, the repetitive texture of the details and the large image size, between other issues. Our benchmarking data is composed of 616 image pairs at two different scales - average image diagonal 2.4k and 5k pixels. We compare eleven fully automatic registration methods covering the widely used similarity measures (and optimization strategies with both linear and elastic transformation). For each method, the best parameter configuration is found and subsequently applied to all the image pairs. The performance of the algorithms is evaluated from several perspectives - the registrations (in)accuracy on manually annotated landmarks, the method robustness and its processing computation time.
机译:图像配准是许多生物医学分析应用程序的常见任务。目前的工作集中在不同染色的组织学幻灯片上的注册方法的基准。由于外观模型的差异,细节的重复纹理和较大的图像尺寸,这是其他任务之间的一项艰巨任务。我们的基准数据由两个不同比例的616对图像组成-平均图像对角线为2.4k和5k像素。我们比较了11种全自动注册方法,这些方法涵盖了广泛使用的相似性度量(以及线性和弹性变换的优化策略)。对于每种方法,找到最佳参数配置,然后将其应用于所有图像对。从多个角度评估算法的性能-手动标注的地标的注册(准确度),方法的鲁棒性及其处理计算时间。

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