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Online System for Grid Resource Monitoring and Machine Learning-Based Prediction

机译:网格资源监控和基于机器学习的预测在线系统

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Resource allocation and job scheduling are the core functions of grid computing. These functions are based on adequate information of available resources. Timely acquiring resource status information is of great importance in ensuring overall performance of grid computing. This work aims at building a distributed system for grid resource monitoring and prediction. In this paper, we present the design and evaluation of a system architecture for grid resource monitoring and prediction. We discuss the key issues for system implementation, including machine learning-based methodologies for modeling and optimization of resource prediction models. Evaluations are performed on a prototype system. Our experimental results indicate that the efficiency and accuracy of our system meet the demand of online system for grid resource monitoring and prediction.
机译:资源分配和作业调度是网格计算的核心功能。这些功能基于可用资源的足够信息。及时获取资源状态信息对于确保网格计算的整体性能至关重要。这项工作旨在构建一个用于网格资源监视和预测的分布式系统。在本文中,我们介绍了用于网格资源监视和预测的系统体系结构的设计和评估。我们讨论了系统实现的关键问题,包括基于机器学习的方法对资源预测模型进行建模和优化。评估是在原型系统上执行的。我们的实验结果表明,我们系统的效率和准确性可以满足在线系统对网格资源监视和预测的需求。

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