DocumentCode :
2747445
Title :
Data Mining Techniques for Modelling the Influence of Daily Extreme Weather Conditions on Grapevine, Wine Quality and Perennial Crop Yield
Author :
Shanmuganathan, Subana ; Sallis, Philip ; Narayanan, Ajit
Author_Institution :
Geoinformatics Res. Centre, Auckland Univ. of Technol., Auckland, New Zealand
fYear :
2010
fDate :
28-30 July 2010
Firstpage :
90
Lastpage :
95
Abstract :
The influences of daily weather extremes, such as maximum/minimum temperatures, humidity, and precipitation, are observable in perennial crop phenology that in turn determines the annual crop yield in quality and quantity. In viticulture, grapevine phenology determines the quality of vintage produced from the grapes apart from the best effects by winemaker. Following a brief review of current literature in this research domain, the paper describes a data mining approach being developed to data association modelling to depict dependency relationships between daily weather extremes, grapevine phenology and yield indicators using data from a vineyard in northern New Zealand and daily weather extremes logged at a nearby meteorology station. An artificial neural network algorithm was used to classify the data associations and the chi-square test was used to establish the degree of dependence between the related variable values. The initial results of the approach to daily maximum weather conditions show potential.
Keywords :
agricultural products; agriculture; crops; data mining; quality control; self-organising feature maps; statistical testing; artificial neural network algorithm; chi-square test; daily extreme weather condition modelling; data association modelling; data mining techniques; grapevine phenology; humidity influence; perennial crop yield; precipitation influence; temperature influence; viticulture; wine quality; Agriculture; Artificial neural networks; Data mining; Meteorology; Pipelines; Production; Temperature distribution; ?2 test method; decision tree; self-organising maps;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computational Intelligence, Communication Systems and Networks (CICSyN), 2010 Second International Conference on
Conference_Location :
Liverpool
Print_ISBN :
978-1-4244-7837-8
Electronic_ISBN :
978-0-7695-4158-7
Type :
conf
DOI :
10.1109/CICSyN.2010.15
Filename :
5615058
Link To Document :
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