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US20120158631A1 - Analyzing inputs to an artificial neural network - Google Patents

Analyzing inputs to an artificial neural network
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Publication number
US20120158631A1
US20120158631A1US13/185,423US201113185423AUS2012158631A1US 20120158631 A1US20120158631 A1US 20120158631A1US 201113185423 AUS201113185423 AUS 201113185423AUS 2012158631 A1US2012158631 A1US 2012158631A1
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inputs
ann
boundary
energy usage
energy
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US13/185,423
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John Pitcher
Matthew Hortman
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Scienergy Inc
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Scientific Conservation Inc
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Assigned to SCIENTIFIC CONSERVATION, INC.reassignmentSCIENTIFIC CONSERVATION, INC.ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: PITCHER, JOHN, HORTMAN, MATTHEW
Assigned to SCIENERGY, INC.reassignmentSCIENERGY, INC.CHANGE OF NAME (SEE DOCUMENT FOR DETAILS).Assignors: SCIENTIFIC CONSERVATION, INC.
Publication of US20120158631A1publicationCriticalpatent/US20120158631A1/en
Assigned to HERCULES TECHNOLOGY GROWTH CAPITAL, INC.reassignmentHERCULES TECHNOLOGY GROWTH CAPITAL, INC.SECURITY AGREEMENTAssignors: SCIENERGY, INC.
Assigned to SCIENERGY, INC.reassignmentSCIENERGY, INC.RELEASE BY SECURED PARTY (SEE DOCUMENT FOR DETAILS).Assignors: HERCULES TECHNOLOGY GROWTH CAPITAL, INC.
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Abstract

Systems, methods, and associated software are described for receiving first inputs and first outputs, providing the first inputs and first outputs to an artificial neural network (ANN) for training, creating a boundary such that the first inputs fall within the boundary or on a boundary line defining the boundary, wherein additional inputs are considered to be valid if they fall within the boundary and are considered to be invalid if they fall outside the boundary, receiving second inputs, separating the valid second inputs from the invalid second inputs, determining a percentage of the second inputs that are invalid, and when the percentage exceeds a predetermined threshold, retraining the ANN and redefining the boundary such that the second inputs fall within the boundary.

Description

Claims (24)

5. The computer-implemented method ofclaim 1, further comprising:
receiving a plurality of weather measurements of dry-bulb temperature, wet-bulb temperature, and solar radiation of a region in which an asset is located, wherein the plurality of weather measurements are taken during a baseline time period;
receiving energy consumption measurements indicating an amount of energy consumed by one or more systems of the asset, wherein the energy consumption measurements are taken during the baseline time period;
maintaining current time information, the current time information including at least time of day information and day of week information;
calculating an hourly energy usage amount from the energy consumption measurements and time of day information using valid inputs; and
providing the current time information and weather measurements to the ANN as inputs, and providing the hourly energy usage amount to the ANN as an output.
22. The computer-readable medium ofclaim 17, further comprising:
logic adapted to receive a plurality of weather measurements of dry-bulb temperature, wet-bulb temperature, and solar radiation of a region in which an asset is located, wherein the plurality of weather measurements are taken during a baseline time period;
logic adapted to receive energy consumption measurements indicating an amount of energy consumed by one or more systems of the asset, wherein the energy consumption measurements are taken during the baseline time period;
logic adapted to maintain current time information, the current time information including at least time of day information and day of week information;
logic adapted to calculate an hourly energy usage amount from the energy consumption measurements and time of day information using valid inputs; and
logic adapted to provide the current time information and weather measurements to the ANN as inputs and to provide the hourly energy usage amount to the ANN as an output.
US13/185,4232010-12-152011-07-18Analyzing inputs to an artificial neural networkAbandonedUS20120158631A1 (en)

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US13/185,423US20120158631A1 (en)2010-12-152011-07-18Analyzing inputs to an artificial neural network

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US13/185,421Expired - Fee RelatedUS8370283B2 (en)2010-12-152011-07-18Predicting energy consumption
US13/292,721Active2031-11-14US8667201B2 (en)2010-12-152011-11-09Computer system interrupt handling

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US8370283B2 (en)2013-02-05
US8667201B2 (en)2014-03-04
US20110276527A1 (en)2011-11-10
US20120179851A1 (en)2012-07-12

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