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Prediction of Solar Cycle 24 : Using a Connectionist Model of the Emotional System

Parsapoor, Mahboobeh, Bilstrup, Urban, Svensson, Bertil
2015

Konferensbidrag (Övrig (populärvetenskap, debatt, mm))

Abstract:

Accurate prediction of solar activity as one aspect of space weather phenomena is essential to decrease the damage from these activities on the ground based communication, power grids, etc. Recently, the connectionist models of the brain such as neural networks and neuro-fuzzy methods have been proposed to forecast space weather phenomena; however, they have not been able to predict solar activity accurately. That has been a motivation for the development of the connectionist model of the brain; this paper aims to apply a connectionist model of the brain to accurately forecasting solar activity, in particular, solar cycle 24. The neuro-fuzzy method has been referred to as the brain emotional learning-based recurrent fuzzy system (BELRFS). BELRFS is tested for prediction of solar cycle 24, and the obtained results are compared with well-known neuro-fuzzy methods and neural networks as well as with physical-based methods. @2015 IEEE

Nyckelord: brain emotional learning-based recurrent fuzzy system; emotional system; solar activity forecasting

Citera: Parsapoor, Mahboobeh, Bilstrup, Urban & Svensson, Bertil, Prediction of Solar Cycle 24 Using a Connectionist Model of the Emotional System, 2015 International Joint Conference on Neural Networks (IJCNN)., 2015http://hh.diva-portal.org/smash/get/diva2:847120/FULLTEXT01.pdf