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AutoStitcher: An Automated Program for Efficient and Robust Reconstruction of Digitized Whole Histological Sections from Tissue Fragments

机译:AutoStitcher:从组织碎片高效,稳健地重建数字化整个组织学切片的自动化程序

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In applications involving large tissue specimens that have been sectioned into smaller tissue fragments, manual reconstruction of a "pseudo whole-mount" histological section (PWMHS) can facilitate (a) pathological disease annotation, and (b) image registration and correlation with radiological images. We have previously presented a program called HistoStitcher, which allows for more efficient manual reconstruction than general purpose image editing tools (such as Photoshop). However HistoStitcher is still manual and hence can be laborious and subjective, especially when doing large cohort studies. In this work we present AutoStitcher, a novel automated algorithm for reconstructing PWMHSs from digitized tissue fragments. AutoStitcher reconstructs ("stitches") a PWMHS from a set of 4 fragments by optimizing a novel cost function that is domain-inspired to ensure (i) alignment of similar tissue regions, and (ii) contiguity of the prostate boundary. The algorithm achieves computational efficiency by performing reconstruction in a multi-resolution hierarchy. Automated PWMHS reconstruction results (via AutoStitcher) were quantitatively and qualitatively compared to manual reconstructions obtained via HistoStitcher for 113 prostate pathology sections. Distances between corresponding fiducials placed on each of the automated and manual reconstruction results were between 2.7%-3.2%, reflecting their excellent visual similarity.
机译:在涉及已被切成较小组织碎片的大型组织标本的应用中,手动重建“伪整装”组织学切片(PWMHS)可以促进(a)病理疾病注释,以及(b)图像配准以及与放射图像的相关性。我们之前已经介绍了一个称为HistoStitcher的程序,该程序比通用图像编辑工具(例如Photoshop)更有效地进行手动重建。但是,HistoStitcher仍然是手动操作,因此可能比较费力且主观,尤其是在进行大型队列研究时。在这项工作中,我们介绍了AutoStitcher,这是一种从数字化组织碎片中重建PWMHS的新颖自动化算法。 AutoStitcher通过优化受域启发以确保(i)相似组织区域对齐和(ii)前列腺边界连续性的新型成本函数,从一组4个片段中重建(“缝合”)PWMHS。该算法通过在多分辨率层次结构中执行重构来实现计算效率。自动定量PWMHS重建结果(通过AutoStitcher)与通过HistoStitcher获得的113例前列腺病理切片的人工重建进行了定量和定性比较。放置在每个自动和手动重建结果上的相应基准之间的距离在2.7%-3.2%之间,反映了它们出色的视觉相似性。

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