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Applying Scheduling and Tuning to On-line Parallel Tomography

机译:将计划和调整应用于在线并行层析成像

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Tomography is a popular technique to reconstruct the three-dimensional structure of an object from a series of two-dimensional projections. Tomography is resource-intensive and deployment of a parallel implementation ontoGrid platformshas been studied in previous work. In this work, we addresson-lineexecution of the application where computation is performed as data is collected from an on-line instrument. The goal is to compute incremental 3-D reconstructions that provide quasi-real-time feedback to the user. We model on-line parallel tomography as atunableapplication: trade-offs between resolution of the reconstruction and frequency of feedback can be used to accommodate various resource availabilities. We demonstrate that application scheduling/tuning can be framed as multiple constrained optimization problems and evaluate our methodology in simulation. Our results show that prediction of dynamic network performance is key to efficient scheduling and that tunability allows for production runs of on-line parallel tomography in Computational Grid environments.
机译:层析成像是一种从一系列二维投影中重建对象的三维结构的流行技术。层析成像是资源密集型,并且在先前的工作中已经研究了将并行实现部署到Grid平台上的情况。在这项工作中,我们着眼于应用程序的在线执行,因为从在线仪器中收集数据会执行计算。目标是计算可向用户提供准实时反馈的增量3-D重建。我们将在线并行层析成像建模为不可取的应用:重建分辨率和反馈频率之间的折衷可用于适应各种资源的可用性。我们证明了应用程序调度/调整可以被构造为多个约束优化问题,并在仿真中评估了我们的方法。我们的结果表明,动态网络性能的预测是有效调度的关键,而可调性则允许在计算网格环境中进行在线并行层析成像的生产运行。

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