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US Patent 7502768 System and method for predicting building thermal loads

Patent 7502768 was granted and assigned to Siemens Building Technologies on March, 2009 by the United States Patent and Trademark Office.

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Current Assignee
Siemens Building Technologies
Siemens Building Technologies
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Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
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Patent Number
75027680
Patent Inventor Names
Kenneth Lemke0
Osman Ahmed0
Date of Patent
March 10, 2009
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Patent Application Number
110052620
Date Filed
December 6, 2004
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Patent Citations Received
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US Patent 11761659 Method for predicting air-conditioning load on basis of change in temperature of space and air-conditioner for implementing same
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US Patent 11962152 Method for supervisory control of building power consumption
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US Patent 11783203 Building energy system with energy data simulation for pre-training predictive building models
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US Patent 11661948 Compressor with vibration sensor
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Patent Primary Examiner
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Joseph P Hirl
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Patent abstract

A system for forecasting predicted thermal loads for a building comprises a thermal condition forecaster for forecasting weather conditions to be compensated by a building environmental control system and a thermal load predictor for modeling building environmental management system components to generate a predicted thermal load for a building for maintaining a set of environmental conditions. The thermal load predictor of the present invention is a neural network and, preferably, the neural network is a recurrent neural network that generates the predicted thermal load from short-term data. The recurrent neural network is trained by inputting building thermal mass data and building occupancy data for actual weather conditions and comparing the predicted thermal load generated by the recurrent neural network to the actual thermal load measured at the building. Training error is attributed to weights of the neurons processing the building thermal mass data and building occupancy data. Iteratively adjusting these weights to minimize the error optimizes the design of the recurrent neural network for these non-weather inputs.

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