Storage system latency outlier detection

    公开(公告)号:US11070455B2

    公开(公告)日:2021-07-20

    申请号:US16034567

    申请日:2018-07-13

    Abstract: A system or method for identifying anomalies indicating misconfiguration or software bugs in a data storage network that may include capturing data storage network latency metrics, identifying periods of high latency in the captured latency metrics, applying a statistical deviation operation to the latency metrics in the periods of identified high latency, and identifying outliers in the statistically deviated latency metrics. The method further includes calculating a median of the identified outliers, normalizing the median of the identified outliers, and scoring the normalized median values of the identified outliers.

    Storage System Latency Outlier Detection
    3.
    发明申请

    公开(公告)号:US20190334802A1

    公开(公告)日:2019-10-31

    申请号:US16034567

    申请日:2018-07-13

    Abstract: A system or method for identifying anomalies indicating misconfiguration or software bugs in a data storage network that may include capturing data storage network latency metrics, identifying periods of high latency in the captured latency metrics, applying a statistical deviation operation to the latency metrics in the periods of identified high latency, and identifying outliers in the statistically deviated latency metrics. The method further includes calculating a median of the identified outliers, normalizing the median of the identified outliers, and scoring the normalized median values of the identified outliers.

    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 latency evaluation based on I/O patterns

    公开(公告)号:US10778552B2

    公开(公告)日:2020-09-15

    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.

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