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Expanding an HPC Cluster to Support the Computational Demands of Digital Pathology

机译:扩展HPC集群以支持数字病理学的计算需求

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The goal of this work was to design a low-cost computing facility that can support the development of an open source digital pathology corpus containing 1M images [1]. A single image from a clinical-grade digital pathology scanner can range in size from hundreds of megabytes to five gigabytes. A 1M image database requires over a petabyte (PB) of disk space. To do meaningful work in this problem space requires a significant allocation of computing resources. The improvements and expansions to our HPC (high-performance computing) cluster, known as Neuronix [2], required to support working with digital pathology fall into two broad categories: computation and storage. To handle the increased computational burden and increase job throughput, we are using Slurm [3] as our scheduler and resource manager. For storage, we have designed and implemented a multi-layer filesystem architecture to distribute a filesystem across multiple machines. These enhancements, which are entirely based on open source software, have extended the capabilities of our cluster and increased its cost-effectiveness.
机译:这项工作的目标是设计一个低成本的计算设施,可以支持开发包含1M图像的开源数字病理语料库[1]。来自临床级数字病理学扫描仪的单个图像可以从数百兆字节到五千兆字节的大小范围。 1M图像数据库需要通过磁盘空间的PETABYTE(PB)。在此问题中进行有意义的工作空间需要重大分配计算资源。我们HPC(高性能计算)群集的改进和扩展,称为Neuronix [2],以支持数字病理学落入两种广泛类别:计算和存储。为了处理增加的计算负担并增加作业吞吐量,我们使用Slurm [3]作为我们的调度程序和资源管理器。对于存储,我们已经设计并实现了多层文件系统体系结构,可在多个计算机上分发文件系统。这些增强功能完全基于开源软件,扩展了我们集群的能力并提高了其成本效益。

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