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Traffic and geography based cognitive disaster recovery

机译:基于交通和地理认知灾难恢复

摘要

In a system having at least two data storage and processing sites, each capable of alternatively serving as a primary site and a backup or target site, disaster recovery migration is optimized by cognitively analyzing at least one system parameter. Using machine learning, at least one pattern of that system related parameter is predicted, and planned or unplanned migration procedures are performed based on the predicted parameter patterns. The analyzed parameter may be data traffic at the sites, and the predicted data traffic pattern is used to assign primary and backup site status to those sites. The analyzed parameter may be the occurrence of events or transactions at the sites, and the predicted event or transaction patterns may be used to determine times of disaster recovery procedure processing so as to not interrupt a critical event or transaction.
机译:在具有至少两个数据存储和处理站点的系统中,每个能够作为主站点和备份或目标站点的每个数据存储和处理站点,通过认知地分析至少一个系统参数来优化灾难恢复迁移。使用机器学习,预测该系统相关参数的至少一种图案,并且基于预测的参数模式执行计划或未计划的迁移过程。分析的参数可以是站点上的数据流量,并且预测数据流量模式用于将主数据和备份站点状态分配给这些站点。分析的参数可以是站点发生事件或事件的发生,并且预测的事件或事务模式可用于确定灾难恢复过程处理的时间,以便不中断关键的事件或事务。

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