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Published in: Water Resources Management 13/2014

01-10-2014

Water Demand Forecasting Model for the Metropolitan Area of São Paulo, Brazil

Authors: Cláudia Cristina dos Santos, Augusto José Pereira Filho

Published in: Water Resources Management | Issue 13/2014

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Abstract

This work is concerned with forecasting water demand in the metropolitan area of São Paulo (MASP) through water consumption, meteorological and socio-environmental variables using an Artificial Neural Network (ANN) system. Possible socio-environmental and meteorological conditions affecting water consumption at Cantareira water treatment station (WTS) in the MASP, Brazil were analyzed for the year 2005. Eight model configurations were developed and used for the Cantareira WTS. The best performance was obtained for 12-h average of the input variables. The ANN model performed best with three times steps in advance. The hourly forecasting was obtained with acceptable error levels. Model results indicate an overall tendency for small errors. The proposed method is useful tool for water demand forecasting and water systems management. The paper is an important contribution since it takes into account weather variables and introduces some diagnostic studies on water consumption in one of the largest urban environments of the planet with its unique peculiarities such as anthropic affects on weather and climate that feeds back into the water consumption. The averaging is a low pass filter indeed and we used it to improve Signal to Noise Ratio (SNR).

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Metadata
Title
Water Demand Forecasting Model for the Metropolitan Area of São Paulo, Brazil
Authors
Cláudia Cristina dos Santos
Augusto José Pereira Filho
Publication date
01-10-2014
Publisher
Springer Netherlands
Published in
Water Resources Management / Issue 13/2014
Print ISSN: 0920-4741
Electronic ISSN: 1573-1650
DOI
https://doi.org/10.1007/s11269-014-0743-7

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