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A Deep Neural-Network Based Stock Trading System Based on Evolutionary Optimized Technical Analysis Parameters

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2017

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Elsevier Science Bv

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Abstract

In this study, we propose a stock trading system based on optimized technical analysis parameters for creating buy-sell points using genetic algorithms. The model is developed utilizing Apache Spark big data platform. The optimized parameters are then passed to a deep MLP neural network for buy-sell-hold predictions. Dow 30 stocks are chosen for model validation. Each Dow stock is trained separately using daily close prices between 1996-2016 and tested between 2007-2016. The results indicate that optimizing the technical indicator parameters not only enhances the stock trading performance but also provides a model that might be used as an alternative to Buy and Hold and other standard technical analysis models. (c) 2017 The Authors. Published by Elsevier B.V.

Description

Ozbayoglu, Murat/0000-0001-7998-5735; Dogdu, Erdogan/0000-0001-5987-0164

Keywords

Stock Trading, Stock Market, Deep Neural-Network, Evolutionary Algorithms, Technical Analysis

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Citation

Sezer, Omer Berat; Ozbayoglu, Murat; Dogdu, Erdogan (2017). A Deep Neural-Network Based Stock Trading System Based on Evolutionary Optimized Technical Analysis Parameters, Conference: Complex Adaptive Systems Conference on Engineering Cyber Physical Systems (CAS) Location: Chicago, IL Date: OCT 30-NOV 01, 2017, Complex Adaptive Systems Conference With Theme: Engineering Cyber Physical Systems, Cas, 114, 473-480.

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77

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Complex Adaptive Systems Conference on Engineering Cyber Physical Systems (CAS) -- OCT 30-NOV 01, 2017 -- Chicago, IL

Volume

114

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Start Page

473

End Page

480
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CrossRef : 50

Scopus : 87

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Mendeley Readers : 197

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86

checked on Nov 26, 2025

Web of Science™ Citations

56

checked on Nov 26, 2025

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