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Database Tuning Using a Federated Machine Learning System of a Centerless Network

机译:数据库调整使用无心网的联合机器学习系统

摘要

Database configuration tuning is provided. A set of database nodes having similar data factors is selected in a centerless network of database nodes. Configuration models corresponding to the set of database nodes are trained using data parallelism. Trained configuration models corresponding to the set of database nodes are combined to form a federated configuration model. It is determined whether performance indicators corresponding to the set of database nodes are greater than a performance threshold level. In response to determining that the performance indicators corresponding to the set of database nodes are greater than the performance threshold level, a database configuration corresponding to the federated configuration model is recommended to a new database node. The new database node is joined to the centerless network.
机译:提供了数据库配置调整。在数据库节点的无心网中选择具有类似数据因子的一组数据库节点。对应于该组数据库节点集的配置模型使用数据并行培训。与该组数据库节点对应的训练配置模型组合以形成联合配置模型。确定对应于该组数据库节点的性能指示符是否大于性能阈值级别。响应于确定对应于该组数据库节点的性能指示符大于性能阈值级别,向新数据库节点建议对应于联合配置模型的数据库配置。新数据库节点连接到无心的网络。

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