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A Machine Learning Approach for Predicting the Sunspot of Solar Cycle

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dc.contributor.author Khan, Thaharim
dc.contributor.author Arafat, Faisal
dc.contributor.author Mojumdar, Mayen Uddin
dc.contributor.author Rajbongshi, Aditya
dc.contributor.author Siddiquee, Shah Md Tanvir
dc.contributor.author Chakraborty, Narayan Ranjan
dc.date.accessioned 2021-11-29T05:50:22Z
dc.date.available 2021-11-29T05:50:22Z
dc.date.issued 2020-07
dc.identifier.uri http://dspace.daffodilvarsity.edu.bd:8080/handle/123456789/6501
dc.description.abstract Sunspots are the fascinating things on the periphery which is the reason it would be all the more captivating if sunspots become predictable. Sunspot number (SSN) is used in this regard to predicting the Solar Cycle (SC) 25 using the data set containing data from the year of 1818. This is work mainly a representation of Artificial Neural Network (ANN) for predicting the Solar Cycle (SC). For time series related data set as well as continuous data set the main issue is gap length of the data set. Long Short Term Memory (LSTM) network can handle this type of continuous dataset also capable of learning long term dependencies as well. This work mainly detaches various sunspot numbers (SSN) for measuring the Solar Cycle (SC) 25. Like other sunspot numbers (SSN) prediction method this work is not splitting the data set into many parts for analyzing. This result is propulsion for disclosing various differences as well as influence. This model is one of the most effective time series model for measuring the Solar Cycle (SC) 25 compared with other predicted models of time series. en_US
dc.language.iso en_US en_US
dc.publisher IEEE en_US
dc.subject Time Series en_US
dc.subject Machine Learning en_US
dc.subject Deep Learning en_US
dc.title A Machine Learning Approach for Predicting the Sunspot of Solar Cycle en_US
dc.type Article en_US


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