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An Intelligent System Based on Kernel Methods for Crop Yield Prediction

Authors :
Mohd. Noor Md. Sap
A. Majid Awan
Source :
Advances in Knowledge Discovery and Data Mining ISBN: 9783540332060, PAKDD
Publication Year :
2006
Publisher :
Springer Berlin Heidelberg, 2006.

Abstract

This paper presents work on developing a software system for predicting crop yield from climate and plantation data. At the core of this system is a method for unsupervised partitioning of data for finding spatio-temporal patterns in climate data using kernel methods which offer strength to deal with complex data. For this purpose, a robust weighted kernel k-means algorithm incorporating spatial constraints is presented. The algorithm can effectively handle noise, outliers and auto-correlation in the spatial data, for effective and efficient data analysis, and thus can be used for predicting oil-palm yield by analyzing various factors affecting the yield.

Details

ISBN :
978-3-540-33206-0
ISBNs :
9783540332060
Database :
OpenAIRE
Journal :
Advances in Knowledge Discovery and Data Mining ISBN: 9783540332060, PAKDD
Accession number :
edsair.doi...........fdc0fa65c8a4a5b1c698108b31e89087
Full Text :
https://doi.org/10.1007/11731139_98