DocumentCode :
1730164
Title :
Predicting multivariate financial time series using neural networks: the Swiss bond case
Author :
Ankenbrand, Thomas ; Tomassini, Marco
Author_Institution :
Inst. d´´Inf., Lausanne Univ., Switzerland
fYear :
1996
Firstpage :
27
Lastpage :
33
Abstract :
Presents an integrated approach for modelling the behaviour of financial markets with artificial neural networks (ANNs). The method allows the forecasting of financial time series. Its originality lies in the fact that it is based on statistics and macroeconomics principles, integrating fundamental economic knowledge in a multivariate, nonlinear time-series ANN model. The core of the work is a feasibility analysis, which is seldom attempted in ANN work, consisting of a series of different univariate and multivariate, linear and nonlinear statistical tests. The enhancement of prior work is a sensitivity analysis with bootstrap as part of the feasibility analysis. The feasibility analysis evaluates the “a priori” chance of forecasting the defined system and helps in defining the topology of the ANN. The method is applied to a real-life case study with a few data samples
Keywords :
economic cybernetics; financial data processing; forecasting theory; network topology; neural nets; securities trading; sensitivity analysis; statistical analysis; time series; Swiss bonds; artificial neural network topology; bootstrap; data samples; feasibility analysis; financial markets behavioural modelling; forecasting; linear statistical tests; macroeconomics; multivariate financial time series prediction; multivariate nonlinear time-series model; nonlinear statistical tests; sensitivity analysis; univariate tests; Artificial neural networks; Bonding; Computer aided software engineering; Economic forecasting; Macroeconomics; Neural networks; Predictive models; Sensitivity analysis; System testing; Time series analysis;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computational Intelligence for Financial Engineering, 1996., Proceedings of the IEEE/IAFE 1996 Conference on
Conference_Location :
New York City, NY
Print_ISBN :
0-7803-3236-9
Type :
conf
DOI :
10.1109/CIFER.1996.501819
Filename :
501819
Link To Document :
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