Method for predicting multiple atmospheric pollutants in multiple cities based on four-dimensional directed GCN-LSTM model

The invention relates to a method for predicting multiple atmospheric pollutants in multiple cities based on a four-dimensional directed GCN-LSTM model, and solves the problem that the concentration of multiple atmospheric pollutants cannot be accurately predicted at present. The method comprises th...

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Main Authors ZHANG HUIYAN, CUI XIAOYU, WANG LI, XU JIPING, BAI YUTING, TANG QIANHUI, YU JIABIN, WANG XIAOYI, ZHAO ZHIYAO, WANG ZHAOYANG, SUN QIAN
Format Patent
LanguageChinese
English
Published 23.06.2023
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Abstract The invention relates to a method for predicting multiple atmospheric pollutants in multiple cities based on a four-dimensional directed GCN-LSTM model, and solves the problem that the concentration of multiple atmospheric pollutants cannot be accurately predicted at present. The method comprises the following steps: carrying out correlation analysis on concentration data of multiple atmospheric pollutants in multiple cities, and determining that the data have correlation; establishing a graph of a four-dimensional directed GCN model according to the geographic position of the city; performing spectral decomposition and tensor operation of the four-dimensional directed GCN model to obtain a graph Fourier coefficient and a graph Fourier basis; improving a graph filter of the four-dimensional directed GCN model; and an LSTM network architecture is introduced, and a four-dimensional directed GCN-LSTM model is constructed for atmospheric pollution prediction. According to the method, a four-dimensional directed g
AbstractList The invention relates to a method for predicting multiple atmospheric pollutants in multiple cities based on a four-dimensional directed GCN-LSTM model, and solves the problem that the concentration of multiple atmospheric pollutants cannot be accurately predicted at present. The method comprises the following steps: carrying out correlation analysis on concentration data of multiple atmospheric pollutants in multiple cities, and determining that the data have correlation; establishing a graph of a four-dimensional directed GCN model according to the geographic position of the city; performing spectral decomposition and tensor operation of the four-dimensional directed GCN model to obtain a graph Fourier coefficient and a graph Fourier basis; improving a graph filter of the four-dimensional directed GCN model; and an LSTM network architecture is introduced, and a four-dimensional directed GCN-LSTM model is constructed for atmospheric pollution prediction. According to the method, a four-dimensional directed g
Author ZHAO ZHIYAO
ZHANG HUIYAN
BAI YUTING
TANG QIANHUI
XU JIPING
YU JIABIN
CUI XIAOYU
WANG XIAOYI
WANG LI
SUN QIAN
WANG ZHAOYANG
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– fullname: BAI YUTING
– fullname: TANG QIANHUI
– fullname: YU JIABIN
– fullname: WANG XIAOYI
– fullname: ZHAO ZHIYAO
– fullname: WANG ZHAOYANG
– fullname: SUN QIAN
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DocumentTitleAlternate 基于四维有向GCN-LSTM模型的多城市多种大气污染物预测方法
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Snippet The invention relates to a method for predicting multiple atmospheric pollutants in multiple cities based on a four-dimensional directed GCN-LSTM model, and...
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SubjectTerms CALCULATING
COMPUTER SYSTEMS BASED ON SPECIFIC COMPUTATIONAL MODELS
COMPUTING
COUNTING
DATA PROCESSING SYSTEMS OR METHODS, SPECIALLY ADAPTED FORADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL, SUPERVISORYOR FORECASTING PURPOSES
ELECTRIC DIGITAL DATA PROCESSING
INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIRCHEMICAL OR PHYSICAL PROPERTIES
MEASURING
PHYSICS
SYSTEMS OR METHODS SPECIALLY ADAPTED FOR ADMINISTRATIVE,COMMERCIAL, FINANCIAL, MANAGERIAL, SUPERVISORY OR FORECASTINGPURPOSES, NOT OTHERWISE PROVIDED FOR
TESTING
Title Method for predicting multiple atmospheric pollutants in multiple cities based on four-dimensional directed GCN-LSTM model
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