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Runtime Prediction Based Grid Scheduling of Parameter Sweep Jobs

並列摘要


This paper examines the problem of predicting job runtimes by exploiting the properties of parameter sweeps. A new parameter sweep prediction framework GIPSy (Grid Information Prediction System) is introduced. Predictions are made based on prior runtime information and the parameters used to configure each job. The main objective is providing a tool combining development, simulation and application of prediction models within one framework. The different kinds of available sample selectors and models are discussed in detail. Results are presented for a quantum physics problem. A previously introduced scheduling technique and the implementation called PGS (Prediction based Grid Scheduling) is improved and presented in combination with GIPSy to obtain a realworld grid implementation that optimizes the distribution of parameter sweeps.

並列關鍵字

GIPSy PGS Modeling Scheduling Parameter sweeps

被引用紀錄


王秀文(2016)。運用MCDM法探討金融風暴下底部上升段投資組合選擇考量因素與決策〔碩士論文,淡江大學〕。華藝線上圖書館。https://doi.org/10.6846/TKU.2016.00508

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