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ADAPTIVELY LEARNING SURROGATE MODEL FOR PREDICTING BUILDING SYSTEM DYNAMICS FROM SIMULATION MODEL

机译:从仿真模型预测构建系统动态的自适应学习代理模型

摘要

Systems and methods for training a surrogate model for predicting system states for a building management system based on generated data from a simulation model are disclosed herein. The simulation model is calibrated for a building of interest. The building of interest includes building equipment operable to control a variable state of the building. The simulated data of system states are generated using the calibrated simulation model. A surrogate model is trained based on the simulated data of system states from the calibrated simulation model. System state predictions are generated using the surrogate model. The surrogate model is re-trained based on updated operational data. An updated series of system state predictions is generated using the re-trained surrogate model.
机译:本文公开了一种用于训练用于预测基于来自模拟模型的生成数据的建筑物管理系统的替代模型的替代模型的替代模型。仿真模型被校准,以实现兴趣的建筑。利益建设包括可操作以控制建筑物的可操作的建筑设备。使用校准仿真模型生成系统状态的模拟数据。基于来自校准仿真模型的系统状态的模拟数据培训代理模型。使用代理模型生成系统状态预测。代理模型基于更新的操作数据重新培训。使用重新训练的代理模型生成更新的系统状态预测。

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