Computational Intelligence Systems in Weather Forecasting
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IISER-M
Abstract
In this work we have used the novel methods of Machine Learning to under-
stand the enigma of weather dynamics and further used them to build a predictive
model of weather. The structure of weather profile is highly chaotic. This implies
that the existence of long range patterns is very rare. Rather, the time evolution
is seemingly random and the slightest variation in initial conditions might change
the course of the system drastically. Hence it is practically impossible to make
any long range predictions. However, in this work we attempt to harness short
term signals, which happen to occur frequently, and show how such patterns seem
to allow short term predictions to be made with much greater confidence.