DocumentCode :
566544
Title :
Measuringweather prediction accuracy using sugeno based Adaptive Neuro Fuzzy Inference system, grid partitioniong and guassmf
Author :
Anwer, Naveed ; Abbas, Aneela ; Mazhar, Aneela ; Hassan, Syed
Author_Institution :
Fac. of Comput. Sci., Univ. of Gujrat, Gujrat, Pakistan
Volume :
1
fYear :
2012
fDate :
24-26 April 2012
Firstpage :
214
Lastpage :
219
Abstract :
Today, Accurate weather prediction has been one of the major challenging environmental problems of the modern world. Estimates of temperature values are not only is an important factor in the agricultural decision making process, but also needed for environmental and technical applications i.e. assessment of natural disaster or crop growth forecasting. Several data mining techniques in collaboration with Artificial intelligence and statistical techniques are in use for this forecasting task. Due to the fuzzy nature of weather data, this paper solves weather event puzzle for the known industrial city of Pakistan, Sialkot, by implementing a fuzzy rule based system using Sugeno Fuzzy Inference. Two separate experimental settings have been used in this paper. To develop a fuzzy inference system, the first experimental data set consisting of 2100 instances with 14 inputs and 5 weather events. The second data set also consisting of 2100 instances but with of 6 input parameters. Finally comparative analysis of both experiments is done. Experimental results indicated that the accuracy of the both experiments demonstrate an increasing shift with an increase in the membership functions.
Keywords :
data mining; fuzzy neural nets; fuzzy reasoning; geophysics computing; statistical analysis; weather forecasting; Sugeno based adaptive neuro fuzzy inference system; Sugeno fuzzy inference; agricultural decision making process; artificial intelligence; data mining techniques; environmental problems; fuzzy rule based system; grid partitioning; statistical techniques; temperature values; weather event puzzle; weather prediction accuracy; Indexes; Load modeling; Rain; Data Mining; Weather Forecasting; neuro-fuzzy;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computing Technology and Information Management (ICCM), 2012 8th International Conference on
Conference_Location :
Seoul
Print_ISBN :
978-1-4673-0893-9
Type :
conf
Filename :
6268499
Link To Document :
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