Abstract

The scope of this research is the use of artificial neural network models and meta-heuristic optimization of Particle Swarm Optimization (PSO) for the prediction of ambient air pollution parameter data at air quality monitoring stations in the city of Semarang, Central Java. The observed parameter is an indicator of ambient air quality, Suspended Particulate Matter (SPM). Based on air quality parameter data in previous times which is a time series data, modeling is done using Neural Networks (NN). Estimation of weights from NN is done using a hybrid method between meta-heuristic and gradient optimization. The meta-heuristic optimization method used is Particle Swarm Optimization (PSO) while the gradient based method is the Conjugate Gradient. Optimization with PSO is done first, then proceed with optimization using the Conjugate Gradient. Four scenarios of iteration selection at the PSO stage are 10, 25, 50 and 100. At the Conjugate Gradient, stage iteration is carried out up to 1000 epohs. The predicted results were compared with the PSOs and Conjugate Gradient respectively. The results show that the hybrid method provides better predictions. The number of iterations needed at the PSO stage is not too much so it is efficient in combining the two methods.

Highlights

  • Air pollution is one of the important problems in the industrial era

  • Air Quality Index (AQI) is a standardized summary measure of ambient air quality used to express the level of health risk related to particulate and gaseous air pollution [3]

  • The data used in this study is the monthly Suspended Particulate Matter (SPM) data in Semarang City, Central Java from January 2008 to December 2017

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Summary

Introduction

Air pollution becomes a major problem worldwide raising several issues for wellbeing and survival of humans as well as environment [1]. The level of air pollution is measured by the air quality index. Air Quality Index (AQI) is a standardized summary measure of ambient air quality used to express the level of health risk related to particulate and gaseous air pollution [3]. Air monitoring assessment is an important task for the stakeholders. It is an imperative investigation undertaken for determining and understanding the degree, nature and status of the ambient air quality of an area. Some of the major air pollutants are Sulphur dioxide, Nitrogen oxides, Suspended particulate matter and Respirable particulate matter. The particulate matter mainly consists of suspended and the respirable particulate matter [4]

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