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Intelligent systems. Theory and applications, 2021, Volume 25, Issue 4, Pages 92–95 (Mi ista423)  

This article is cited in 1 scientific paper (total in 1 paper)

Part 2. Mathematics and Computer Science

On modeling trading strategies for currency pairs using deep neural networks and method of moving separation of mixtures

A. L. Vilyaeva, A. K. Gorsheninb

a Lomonosov Moscow State University
b Russian Academy of Sciences
Full-text PDF (404 kB) Citations (1)
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Abstract: The paper describes the use of deep neural networks and the method of moving separation of mixtures to construct models for analyzing the foreign exchange market and choosing trading strategies. The architecture of a neural network and methods of statistical extension of the feature space are considered. The results of a trading model demonstrating the advantages of the proposed approach are presented.
Keywords: deep neural networks, LSTM, moving separation of mixtures, currency pairs.
Document Type: Article
Language: Russian
Citation: A. L. Vilyaev, A. K. Gorshenin, “On modeling trading strategies for currency pairs using deep neural networks and method of moving separation of mixtures”, Intelligent systems. Theory and applications, 25:4 (2021), 92–95
Citation in format AMSBIB
\Bibitem{VilGor21}
\by A.~L.~Vilyaev, A.~K.~Gorshenin
\paper On modeling trading strategies for currency pairs using deep neural networks and method of moving separation of mixtures
\jour Intelligent systems. Theory and applications
\yr 2021
\vol 25
\issue 4
\pages 92--95
\mathnet{http://mi.mathnet.ru/ista423}
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  • https://www.mathnet.ru/eng/ista423
  • https://www.mathnet.ru/eng/ista/v25/i4/p92
  • This publication is cited in the following 1 articles:
    Citing articles in Google Scholar: Russian citations, English citations
    Related articles in Google Scholar: Russian articles, English articles
    Intelligent systems. Theory and applications
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    Abstract page:71
    Full-text PDF :33
    References:20
     
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