Performance of Levenberg-Marquardt neural network algorithm in air quality forecasting

Levenberg-Marquardt algorithm and conjugate gradient method are frequently used for optimization in multi-layer perceptron (MLP). However, both algorithms have mixed conclusions in optimizing MLP in time series forecasting. This study uses autoregressive integrated moving average (ARIMA) and MLP wit...

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Main Authors: Cho, Kar Mun, Abd Rahman, Nur Haizum, Che Ilias, Iszuanie Syafidza
Format: Article
Published: Penerbit Universiti Kebangsaan Malaysia (UKM Press) 2022
Online Access:http://psasir.upm.edu.my/id/eprint/102724/
http://www.ukm.my/jsm/pdf_files/SM-PDF-51-8-2022/23.pdf
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spelling my.upm.eprints.1027242024-06-29T14:59:15Z http://psasir.upm.edu.my/id/eprint/102724/ Performance of Levenberg-Marquardt neural network algorithm in air quality forecasting Cho, Kar Mun Abd Rahman, Nur Haizum Che Ilias, Iszuanie Syafidza Levenberg-Marquardt algorithm and conjugate gradient method are frequently used for optimization in multi-layer perceptron (MLP). However, both algorithms have mixed conclusions in optimizing MLP in time series forecasting. This study uses autoregressive integrated moving average (ARIMA) and MLP with both Levenberg-Marquardt algorithm and conjugate gradient method. These methods were used to predict the Air Pollutant Index (API) in Malaysia's central region where represent urban and residential areas. The performances were discussed and compared using the mean square error (MSE) and mean absolute percentage error (MAPE). The result shows that MLP models have outperformed ARIMA models where MLP with Levenberg-Marquardt algorithm outperformed the conjugate gradient method. Penerbit Universiti Kebangsaan Malaysia (UKM Press) 2022 Article PeerReviewed Cho, Kar Mun and Abd Rahman, Nur Haizum and Che Ilias, Iszuanie Syafidza (2022) Performance of Levenberg-Marquardt neural network algorithm in air quality forecasting. Sains malaysiana, 51 (8). pp. 2645-2654. ISSN 0126-6039; ESSN: 2735-0118 http://www.ukm.my/jsm/pdf_files/SM-PDF-51-8-2022/23.pdf 10.17576/jsm-2022-5108-23
institution Universiti Putra Malaysia
building UPM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Putra Malaysia
content_source UPM Institutional Repository
url_provider http://psasir.upm.edu.my/
description Levenberg-Marquardt algorithm and conjugate gradient method are frequently used for optimization in multi-layer perceptron (MLP). However, both algorithms have mixed conclusions in optimizing MLP in time series forecasting. This study uses autoregressive integrated moving average (ARIMA) and MLP with both Levenberg-Marquardt algorithm and conjugate gradient method. These methods were used to predict the Air Pollutant Index (API) in Malaysia's central region where represent urban and residential areas. The performances were discussed and compared using the mean square error (MSE) and mean absolute percentage error (MAPE). The result shows that MLP models have outperformed ARIMA models where MLP with Levenberg-Marquardt algorithm outperformed the conjugate gradient method.
format Article
author Cho, Kar Mun
Abd Rahman, Nur Haizum
Che Ilias, Iszuanie Syafidza
spellingShingle Cho, Kar Mun
Abd Rahman, Nur Haizum
Che Ilias, Iszuanie Syafidza
Performance of Levenberg-Marquardt neural network algorithm in air quality forecasting
author_facet Cho, Kar Mun
Abd Rahman, Nur Haizum
Che Ilias, Iszuanie Syafidza
author_sort Cho, Kar Mun
title Performance of Levenberg-Marquardt neural network algorithm in air quality forecasting
title_short Performance of Levenberg-Marquardt neural network algorithm in air quality forecasting
title_full Performance of Levenberg-Marquardt neural network algorithm in air quality forecasting
title_fullStr Performance of Levenberg-Marquardt neural network algorithm in air quality forecasting
title_full_unstemmed Performance of Levenberg-Marquardt neural network algorithm in air quality forecasting
title_sort performance of levenberg-marquardt neural network algorithm in air quality forecasting
publisher Penerbit Universiti Kebangsaan Malaysia (UKM Press)
publishDate 2022
url http://psasir.upm.edu.my/id/eprint/102724/
http://www.ukm.my/jsm/pdf_files/SM-PDF-51-8-2022/23.pdf
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score 13.160551