International Journal of Computational Intelligence Systems

Volume 10, Issue 1, 2017, Pages 336 - 346

A Performance Comparison of Neural Networks in Forecasting Stock Price Trend

Authors
Binghui Wu*, 1, 2, vcmd@163.com, Tingting Duan2, duantingting417@163.com
1School of Economics and Management, Southeast University, Nanjing, Jiangsu Province 211189, China
2Finance Department, Lanzhou University of Finance and Economics, Lanzhou, Gansu Province 730020, China
*Corresponding author.
Corresponding Author
Binghui Wuvcmd@163.com
Received 22 April 2016, Accepted 31 October 2016, Available Online 1 January 2017.
DOI
10.2991/ijcis.2017.10.1.23How to use a DOI?
Keywords
Stock market; BP neural network; Elman neural network; CSI 300 Index; relative error
Abstract

The stock price shows the character of complex non-linear system, along with changes of internal and external environmental factors in stock market. As a form of artificial intelligence, neural network can fully reveal the complex relationship between investors and price fluctuations. After comparing network structures of different neural networks, the conclusions show Elman neural network has an obvious advantage over BP neural network in predicting price trend of Chinese stock market both in theory and practice.

Copyright
© 2017, the Authors. Published by Atlantis Press.
Open Access
This is an open access article under the CC BY-NC license (http://creativecommons.org/licences/by-nc/4.0/).

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Journal
International Journal of Computational Intelligence Systems
Volume-Issue
10 - 1
Pages
336 - 346
Publication Date
2017/01/01
ISSN (Online)
1875-6883
ISSN (Print)
1875-6891
DOI
10.2991/ijcis.2017.10.1.23How to use a DOI?
Copyright
© 2017, the Authors. Published by Atlantis Press.
Open Access
This is an open access article under the CC BY-NC license (http://creativecommons.org/licences/by-nc/4.0/).

Cite this article

TY  - JOUR
AU  - Binghui Wu
AU  - Tingting Duan
PY  - 2017
DA  - 2017/01/01
TI  - A Performance Comparison of Neural Networks in Forecasting Stock Price Trend
JO  - International Journal of Computational Intelligence Systems
SP  - 336
EP  - 346
VL  - 10
IS  - 1
SN  - 1875-6883
UR  - https://doi.org/10.2991/ijcis.2017.10.1.23
DO  - 10.2991/ijcis.2017.10.1.23
ID  - Wu2017
ER  -