Analytical Cyclic Division of Dataset for an ANN-Type Model: A Case Study in Air Quality Prediction in Sub-tropical Area

Benedito Chi Man Tam, Su Kit Tang, Alberto Cardoso

研究成果: Conference contribution同行評審

1 引文 斯高帕斯(Scopus)

摘要

This research intends to show how an analytical cyclic division of a dataset can improve ANN-type models in predicting future situation of different air pollutants in small-sized urban cities. Similar to other sub-tropical cities, the four seasons are not significant but climate characteristics of Macao obviously includes warm and cold seasons. These make it difficult to train the models well. Thus, an effective analytical way of cyclic division of the dataset for a seasonal LSTM modeling can improve the prediction of air quality with the meteorological data. We used data from 2016 to 2020 as input, and the model was trained on a 24-h basis, weekly oscillation frequency and finally grouped into 2 warm and cold seasons. A small-sized urban city was selected to demonstrate this study with 21 meteorological variables, and wavelet decomposition was used to clearly see the obvious oscillation and cycle patterns. The contributions include using LSTM for the prediction of time series with multivariate inputs in Macao and observing how the 2 cyclic division of the time series dataset of air pollutants and meteorological conditions look like. It is also intended to show, using some indicators, why the multivariate dataset should be divided according to the 2 cold/warm seasons. Finally, the result of predicting the concentrations of air pollutants is presented.

原文English
主出版物標題Proceedings of 8th International Congress on Information and Communication Technology - ICICT 2023
編輯Xin-She Yang, R. Simon Sherratt, Nilanjan Dey, Amit Joshi
發行者Springer Science and Business Media Deutschland GmbH
頁面125-135
頁數11
ISBN(列印)9789819932351
DOIs
出版狀態Published - 2024
事件8th International Congress on Information and Communication Technology, ICICT 2023 - London, United Kingdom
持續時間: 20 2月 202323 2月 2023

出版系列

名字Lecture Notes in Networks and Systems
696 LNNS
ISSN(列印)2367-3370
ISSN(電子)2367-3389

Conference

Conference8th International Congress on Information and Communication Technology, ICICT 2023
國家/地區United Kingdom
城市London
期間20/02/2323/02/23

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