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Architecture and Performance of a Grid-Enabled Lookup-Based Biomedical Optimization Application: Light Scattering Spectroscopy

机译:基于网格的基于查找的生物医学优化应用程序的体系结构和性能:光散射光谱

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This paper presents a case study of a Grid-enabled implementation of light scattering spectroscopy (LSS). The LSS technique allows noninvasive detection of precancerous changes in human epithelium, differentiating from traditional biopsies by allowing in vivo diagnosis of tissue samples and quantitative analyses of parameters related to cancerous changes via numerical techniques. This paper describes the architecture of GridLSS and its integration with a Web-based Grid computing portal. GridLSS solves an optimization problem of determining the light scattering spectrum that best fits experimental spectral data among a large set of spectra computed analytically using rigorous Mie theory. The novel approach taken in this paper is based on the precomputation and storage of Mie theory spectra in lookup databases that are queried during the minimization process. The paper makes three important contributions: 1) it presents a novel parallel application for LSS analysis that delivers high performance in wide-area distributed computing environment; 2) it evaluates and analyzes the performance of this application in cluster-based high-performance computing environments that are typical of Grid deployments; and 3) it shows that the performance of GridLSS benefits significantly from the use of on-demand Grid data transfers based on virtualized distributed file systems and from user-level caches for remote file system data
机译:本文介绍了一个以网格为基础的光散射光谱(LSS)实现的案例研究。 LSS技术允许通过对组织样本进行体内诊断并通过数值技术对与癌变相关的参数进行定量分析,从而与传统的活组织检查区别开来,以无创方式检测人上皮中的癌变。本文描述了GridLSS的体系结构及其与基于Web的网格计算门户的集成。 GridLSS解决了一个优化问题,即确定使用最严格的Mie理论解析计算出的大量光谱中最适合实验光谱数据的光散射光谱。本文采用的新颖方法是基于Mie理论光谱的预计算和存储在最小化过程中查询的查找数据库中。本文做出了三个重要的贡献:1)提出了一种新颖的LSS分析并行应用程序,可在广域分布式计算环境中提供高性能; 2)它评估和分析该应用程序在网格部署典型的基于集群的高性能计算环境中的性能;和3)表明GridLSS的性能显着受益于基于虚拟化分布式文件系统的按需Grid数据传输的使用以及远程文件系统数据的用户级缓存

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