WORKLOAD MANAGEMENT USING A TRAINED MODEL

    公开(公告)号:US20220398021A1

    公开(公告)日:2022-12-15

    申请号:US17303883

    申请日:2021-06-09

    Abstract: In some examples, a system creates a training data set based on features of sample workloads, the training data set comprising labels associated with the features of the sample workloads, where the labels are based on load indicators generated in a computing environment relating to load conditions of the computing environment resulting from execution of the sample workloads. The system groups selected workloads into a plurality of workload clusters based on features of the selected workloads, and computes, using a model trained based on the training data set, parameters representing contributions of respective workload clusters of the plurality of workload clusters to a load in the computing environment. The system performs workload management in the computing environment based on the computed parameters.

    Storage System Latency Evaluation Based on I/O Patterns

    公开(公告)号:US20190334801A1

    公开(公告)日:2019-10-31

    申请号:US16034531

    申请日:2018-07-13

    Abstract: A system or method for identifying latency contributors in a data storage network, that may include creating a historical workload fingerprint model for a data storage network from training data, along with monitoring and classifying a current sample data from the data storage network into a cluster, current workload fingerprint, and current workload type. The method may further include assigning a score to the current sample data based on the historical workload fingerprint model and correlating measured latency values from the current sample data to historically measured latency related factors to create a latency score chart that identifies factors causing latency in the data storage network for the current sample data.

    STORAGE SYSTEM SELECTION FOR STORAGE VOLUME DEPLOYMENT

    公开(公告)号:US20230251785A1

    公开(公告)日:2023-08-10

    申请号:US17650426

    申请日:2022-02-09

    CPC classification number: G06F3/0631 G06F3/0604 G06F3/0683

    Abstract: In some examples, a system receives input information of characteristics relating to a storage volume to be provisioned in a collection of storage systems, determines, based on the input information of the characteristics relating to the storage volume, a workload profile, and simulates execution of a workload according to the workload profile in each storage system of the collection of storage systems. Based on the simulation, the system determines a respective amount of headroom used by the workload in each storage system of the collection of storage systems, and selects, based on the determined respective amounts of headroom used by the workload in respective storage systems of the collection of storage systems, a storage system from the collection of storage systems on which the storage volume is to be provisioned.

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