DEEP LEARNING APPROACH FOR BATTERY AGING MODEL

    公开(公告)号:US20190257886A1

    公开(公告)日:2019-08-22

    申请号:US16273505

    申请日:2019-02-12

    Abstract: A computer-implemented method predicting a life span of a battery storage unit by employing a deep neural network is presented. The method includes collecting energy consumption data from one or more electricity meters installed in a structure, analyzing, via a data processing component, the energy consumption data, removing one or more features extracted from the energy consumption data via a feature engineering component, partitioning the energy consumption data via a data partitioning component, and predicting battery capacity of the battery storage unit via a neural network component sequentially executing three machine learning techniques.

    Deep learning approach for battery aging model

    公开(公告)号:US11131713B2

    公开(公告)日:2021-09-28

    申请号:US16273505

    申请日:2019-02-12

    Abstract: A computer-implemented method predicting a life span of a battery storage unit by employing a deep neural network is presented. The method includes collecting energy consumption data from one or more electricity meters installed in a structure, analyzing, via a data processing component, the energy consumption data, removing one or more features extracted from the energy consumption data via a feature engineering component, partitioning the energy consumption data via a data partitioning component, and predicting battery capacity of the battery storage unit via a neural network component sequentially executing three machine learning techniques.

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