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A distributed model for automated diagnosis of whole-slide HE stained prostate tissue images

机译:用于自动诊断全幻灯片H&E染色的前列腺组织图像的分布式模型

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Analysis of large amounts of medical images exceeds storage capacity and computation capability of a single workstation. Distributed computing employs a set of connected machines to solve a single problem by dividing it into number of solvable sub-problems. Analyzing and processing of large-scale medical images demand employing distributed architectures to overcome the limitations of memory space and execution time. Current analysis of digitized large-scale prostate tissue images depends on ordinary sequential techniques running on a single machine. This paper presents a proposed distributed model based on Hadoop framework for automated diagnosis of digitized large-scale H&E prostate tissue images to carry out segmentation, feature extraction, and classification tasks. The proposed model is based on partitioning input images into segments and distributing them across number of slaves to perform analysis task simultaneously. Analysis task aims at segmenting and labeling Regions of Interest (ROIs) in input images to extract initial features. Initial features are combined at master side to get final features for each input image. Finally, master node classifies images into the corresponding grade based on a grading system such as Gleason Grading system. The proposed distributed model would achieve high speed performance when applied in advanced medical applications.
机译:大量医学图像的分析超出了单个工作站的存储能力和计算能力。分布式计算采用一组连接的机器,通过将其分为多个可解决的子问题来解决单个问题。大规模医学图像的分析和处理要求采用分布式体系结构来克服存储空间和执行时间的限制。当前对数字化的大规模前列腺组织图像的分析取决于在一台机器上运行的普通顺序技术。本文提出了一种基于Hadoop框架的分布式模型,用于自动诊断数字化的大规模H&E前列腺组织图像,以执行分割,特征提取和分类任务。所提出的模型基于将输入图像划分为多个段并将它们分布在多个从站上以同时执行分析任务。分析任务旨在对输入图像中的感兴趣区域(ROI)进行分段和标记,以提取初始特征。初始特征在主控端进行组合以获得每个输入图像的最终特征。最后,主节点基于诸如格里森分级系统之类的分级系统将图像分类为相应的分级。所提出的分布式模型在高级医疗应用中将实现高速性能。

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