MACHINE-LEARNING BASED OPTIMIZATION OF DATA CENTER DESIGNS AND RISKS

In exemplary aspects of optimizing data centers, historical data corresponding to a data center is collected. The data center includes a plurality of systems. A data center representation is generated. The data center representation can be one or more of a schematic and a collection of data from amo...

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Bibliographische Detailangaben
Hauptverfasser: Ozonat, Mehmet Kivanc, Cader, Tahir, Slaby, Matthew Richard
Format: Patent
Sprache:eng
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Zusammenfassung:In exemplary aspects of optimizing data centers, historical data corresponding to a data center is collected. The data center includes a plurality of systems. A data center representation is generated. The data center representation can be one or more of a schematic and a collection of data from among the historical data. The data center representation is encoded into a neural network model. The neural network model is trained using at least a portion of the historical data. The trained model is deployed using a first set of inputs, causing the model to generate one or more output values for managing or optimizing the data center with respect to design and risk aspects.