Low-energy-consumption smart home system capable of predicting energy regeneration

A smart home system and renewable energy technology, applied in the direction of renewable energy integration, forecasting, general control systems, etc., can solve problems such as not paying attention to energy management

Pending Publication Date: 2019-10-18
CHINA JILIANG UNIV
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  • Description
  • Claims
  • Application Information

AI Technical Summary

Problems solved by technology

[0002] A smart house is defined as a modern induction house with various integrated systems capable of remote control and mutual communication, and in recent years, energy saving has become a concern of smart houses, and people aim to build a building with zero energy consumption, but there is no Focus on the concept of energy management

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  • Low-energy-consumption smart home system capable of predicting energy regeneration
  • Low-energy-consumption smart home system capable of predicting energy regeneration
  • Low-energy-consumption smart home system capable of predicting energy regeneration

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Embodiment Construction

[0040] The specific embodiments of the present invention are described below with reference to the accompanying drawings, so that those skilled in the art can better understand the present invention.

[0041] Smart homes are defined as modern sensing homes with various integrated systems capable of remote control and communication with each other, and in recent years, energy saving has become a concern for smart homes, people aim to build a zero-energy building, but there is no Focus on the concept of energy management.

[0042] The invention proposes a low-energy-consumption smart home system with predictable energy regeneration. The historically generated and used ones are input to the energy management module as samples, the disturbance of the samples is removed by wavelet decomposition, and the differential integration moving average autoregressive model ARIMA predicts the output. Wavelet reconstruction is performed on the predicted results of the ARIMA model, and the pred...

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Abstract

The invention provides a low-energy-consumption smart home system capable of predicting energy regeneration. The system comprises an intelligent control module, an energy prediction module, a sensor network module, a video monitoring module, an execution module, an energy module and a monitoring module. The intelligent control module is used for controlling and managing energy, a lighting system,a home theater, a security alarm and doors and windows. The energy prediction module is used for predicting the production capacity of renewable energy sources. The sensor network module is used for environmental data monitoring, the video monitoring module is used for environmental image acquisition. The execution module comprises household appliances, audios and videos, doors and windows and thelike. The energy module comprises an energy storage unit, a household wind turbine and a photovoltaic array, and the monitoring module comprises a mobile phone, a local display screen and a householdnetwork server. The system is characterized in that the energy production capacity is predicted through the energy prediction module, the corresponding energy working mode is selected, and thereforemaximization of energy benefits is achieved.

Description

technical field [0001] The invention relates to the field of intelligent monitoring, in particular to an energy monitoring system based on the combination of wavelet transform and ARIMA model. Background technique [0002] A smart house is defined as a modern induction house with various integrated systems capable of remote control and mutual communication, and in recent years, energy saving has become a concern of smart houses, and people aim to build a building with zero energy consumption, but there is no Focus on the concept of energy management. [0003] The present invention proposes a low-energy smart home system that can predict energy regeneration. The system inputs historically generated and used energy as samples to the energy management module to output predictions. The module uses wavelet decomposition to remove sample disturbances, and differentially integrates moving average The autoregressive model ARIMA outputs prediction, and the ARIMA model prediction res...

Claims

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Application Information

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Patent Type & Authority Applications(China)
IPC IPC(8): G06Q10/04G06K9/00G05B15/02G05B19/418
CPCG06Q10/04G05B15/02G05B19/418G05B2219/2642G06F2218/02Y02B10/30
Inventor 李雅兰金尚忠张益溢严永强方维吴羽峰李泽南
Owner CHINA JILIANG UNIV
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