Patch-Based Nonlinear Image Registration for Gigapixel Whole Slide Images

图像配准 计算机视觉 人工智能 计算机科学 医学影像学 图像处理 非线性系统 图像(数学) 物理 量子力学
作者
Johannes Lotz,Janine Olesch,Benjamin Müller,Thomas Polzin,P. Galuschka,Jennifer M. Lotz,Stefan Heldmann,Hendrik Laue,Margarita González‐Vallinas,Arne Warth,Bernd Lahrmann,Niels Grabe,Oliver Sedlaczek,Kai Breuhahn,Jan Modersitzki
出处
期刊:IEEE Transactions on Biomedical Engineering [Institute of Electrical and Electronics Engineers]
卷期号:63 (9): 1812-1819 被引量:42
标识
DOI:10.1109/tbme.2015.2503122
摘要

Objective : Image registration of whole slide histology images allows the fusion of fine-grained information—like different immunohistochemical stains—from neighboring tissue slides. Traditionally, pathologists fuse this information by looking subsequently at one slide at a time. If the slides are digitized and accurately aligned at cell level, automatic analysis can be used to ease the pathologist's work. However, the size of those images exceeds the memory capacity of regular computers. Methods : We address the challenge to combine a global motion model that takes the physical cutting process of the tissue into account with image data that is not simultaneously globally available. Typical approaches either reduce the amount of data to be processed or partition the data into smaller chunks to be processed separately. Our novel method first registers the complete images on a low resolution with a nonlinear deformation model and later refines this result on patches by using a second nonlinear registration on each patch. Finally, the deformations computed on all patches are combined by interpolation to form one globally smooth nonlinear deformation. The NGF distance measure is used to handle multistain images. Results : The method is applied to ten whole slide image pairs of human lung cancer data. The alignment of 85 corresponding structures is measured by comparing manual segmentations from neighboring slides. Their offset improves significantly, by at least 15%, compared to the low-resolution nonlinear registration. Conclusion/Significance : The proposed method significantly improves the accuracy of multistain registration which allows us to compare different antibodies at cell level.
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