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UTILIZING MACHINE LEARNING TO CONCURRENTLY OPTIMIZE COMPUTING RESOURCES AND LICENSES IN A HIGH-PERFORMANCE COMPUTING ENVIRONMENT

机译:利用机器学习在高性能计算环境中同时优化计算资源和许可证

摘要

A device may receive a job request that requests performance of one or more operations by resources of a high-performance computing environment, and may process the job request, with a policy execution model trained with policy parameters, to identify policies to apply during execution of the job request. The device may process the job request, with a forecast object model trained with job data and profile data, to generate a forecast of resources and licenses required from the high-performance computing environment. The device may process the job request, other job requests, the one or more of the policies, and the forecast, with a heuristic model, to determine a schedule for the job request, and may process the schedule and current constraints on the resources and the licenses, with a linear programming model, to determine an optimized schedule for the job request.
机译:设备可以接收由高性能计算环境的资源请求执行一个或多个操作的作业请求,并且可以使用策略参数培训的策略执行模型来处理作业请求,以识别在执行期间应用的策略工作请求。该设备可以处理作业请求,其中具有由作业数据和配置文件数据训练的预测对象模型,以生成高性能计算环境所需的资源和许可证的预测。该设备可以处理作业请求,其他作业请求,其中一个或多个策略,以及预测的预测,以启发式模型来确定作业请求的时间表,并且可以处理对资源的计划和当前约束使用线性编程模型的许可证来确定作业请求的优化计划。

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