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An empirical study on sea water quality prediction

Authors :
Grigorios Tsoumakas
Ioannis Vlahavas
George Tzanis
Evaggelos V. Hatzikos
Nick Bassiliades
Source :
Knowledge-Based Systems. 21:471-478
Publication Year :
2008
Publisher :
Elsevier BV, 2008.

Abstract

This paper studies the problem of predicting future values for a number of water quality variables, based on measurements from under-water sensors. It performs both exploratory and automatic analysis of the collected data with a variety of linear and nonlinear modeling methods. The paper investigates issues, such as the ability to predict future values for a varying number of days ahead and the effect of including values from a varying number of past days. Experimental results provide interesting insights on the predictability of the target variables and the performance of the different learning algorithms.

Details

ISSN :
09507051
Volume :
21
Database :
OpenAIRE
Journal :
Knowledge-Based Systems
Accession number :
edsair.doi...........e497af0ae7fdca91dc19a203177a9a66