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A Fast and Scalable Pipeline for Stain Normalization of Whole-Slide Images in Histopathology

机译:用于组织病理学全幻灯片图像的快速和可扩展管道

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Stain normalization is one of the main tasks in the processing pipeline of computer-aided diagnosis systems in modern digital pathology. Some of the challenges in this tasks are memory and runtime bottlenecks associated with large image datasets. In this work, we present a scalable and fast pipeline for stain normalization using a state-of-the-art unsupervised method based on stain-vector estimation. The proposed system supports single-node and distributed implementations. Based on a highly-optimized engine, our architecture enables high-speed and largescale processing of high-magnification whole-slide images (WSI). We demonstrate the performance of the system using measurements from different datasets. Moreover, by using a novel pixel-sampling optimization we show lower processing time per image than the scanning time of ultrafast WSI scanners with the single-node implementation and additional 3.44 average speed-up with the 4-nodes distributed pipeline.
机译:污染归一化是现代数字病理学计算机辅助诊断系统处理流水线的主要任务之一。此任务中的一些挑战是与大图像数据集相关联的内存和运行时瓶颈。在这项工作中,我们使用基于染色载体估计的最先进的无监督方法展示可扩展和快速的污染法规。所提出的系统支持单节点和分布式实现。基于高度优化的发动机,我们的建筑能够实现高倍率的全幻灯片图像(WSI)的高速和大型处理。我们使用来自不同数据集的测量来展示系统的性能。此外,通过使用新颖的像素采样优化,我们显示了比超快WSI扫描仪与单节点实现的扫描时间较低的处理时间,以及与4节点分布式流水线的附加3.44平均加速。

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