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An Artificial Neural Network-Based Stock Trading System Using Technical Analysis And Big Data Framework

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dc.contributor.author Sezer, Ömer Berat
dc.contributor.author Özbayoğlu, Ahmet Murat
dc.contributor.author Doğdu, Erdoğan
dc.date.accessioned 2020-05-12T04:12:40Z
dc.date.available 2020-05-12T04:12:40Z
dc.date.issued 2017-04-13
dc.identifier.citation Sezer, O.B.; Ozbayoglu, A.M.; Dogdu, E., "An Artificial Neural Network-Based Stock Trading System Using Technical Analysis And Big Data Framework",Proceedings of the Southeast Conference, Acmse 2017, pp. 223-226, (2017). tr_TR
dc.identifier.issn 978-145035024-2
dc.identifier.uri http://hdl.handle.net/20.500.12416/3716
dc.description.abstract In this paper, a neural network-based stock price prediction and trading system using technical analysis indicators is presented. The model developed first converts the financial time series data into a series of buy-sell-hold trigger signals using the most commonly preferred technical analysis indicators. Then, a Multilayer Perceptron (MLP) artificial neural network (ANN) model is trained in the learning stage on the daily stock prices between 1997 and 2007 for all of the Dow30 stocks. Apache Spark big data framework is used in the training stage. The trained model is then tested with data from 2007 to 2017. The results indicate that by choosing the most appropriate technical indicators, the neural net- work model can achieve comparable results against the Buy and Hold strategy in most of the cases. Furthermore, fine tuning the technical indicators and/or optimization strategy can enhance the overall trading performance. tr_TR
dc.publisher Association for Computing Machinery tr_TR
dc.relation.isversionof 10.1145/3077286.3077294 tr_TR
dc.rights info:eu-repo/semantics/openAccess tr_TR
dc.subject Stock Market tr_TR
dc.subject Artificial Neural Network tr_TR
dc.subject Multi Layer Perceptron tr_TR
dc.subject Algorithmic Trading tr_TR
dc.subject Technical Analysis tr_TR
dc.title An Artificial Neural Network-Based Stock Trading System Using Technical Analysis And Big Data Framework tr_TR
dc.type conferenceObject tr_TR
dc.relation.journal Proceedings of the Southeast Conference, Acmse 2017 tr_TR
dc.identifier.startpage 223 tr_TR
dc.identifier.endpage 226 tr_TR
dc.contributor.department Çankaya Üniversitesi, Mühendislik Fakültesi, Bilgisayar Mühendisliği Bölümü tr_TR


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