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A comparative study of computational intelligence techniques applied to PM2.5 air pollution forecasting

机译:计算智能技术在PM2.5空气污染预测中的比较研究

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摘要

The paper presents the results of a comparative study performed between two computational intelligence techniques, artificial neural networks (ANNs) and adaptive neuro-fuzzy inference systems (ANFIS) applied to particulate matter (fraction PM2.5) air pollution forecasting. The experiments were realized on datasets from the Airbase databases with PM2.5 hourly measurements. The main statistical parameters that were computed are root mean square error (RMSE) and mean absolute error (MAE).
机译:本文介绍了两种计算智能技术之间的比较研究结果,这两种人工智能技术适用于颗粒物(分数PM2.5)空气污染预测中的人工神经网络(ANN)和自适应神经模糊推理系统(ANFIS)。实验是在Airbase数据库的数据集上进行的,每小时PM2.5的测量。计算的主要统计参数是均方根误差(RMSE)和平均绝对误差(MAE)。

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