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Making investment decisions in stock markets using a forecasting-Markowitz based decision-making approaches

Zahra Moeini Najafabadi (Isfahan University of Technology, Isfahan, Iran)
Mehdi Bijari (Isfahan University of Technology, Isfahan, Iran)
Mehdi Khashei (Department of Industrial and Systems Engineering, Isfahan University of Technology, Isfahan, Iran)

Journal of Modelling in Management

ISSN: 1746-5664

Article publication date: 3 December 2019

Issue publication date: 23 April 2020

566

Abstract

Purpose

This study aims to make investment decisions in stock markets using forecasting-Markowitz based decision-making approaches.

Design/methodology/approach

The authors’ approach offers the use of time series prediction methods including autoregressive, autoregressive moving average and artificial neural network, rather than calculating the expected rate of return based on distribution.

Findings

The results show that using time series prediction methods has a significant effect on improving investment decisions and the performance of the investments.

Originality/value

In this study, in contrast to previous studies, the alteration in the Markowitz model started with the investment expected rate of return. For this purpose, instead of considering the distribution of returns and determining the expected returns, time series prediction methods were used to calculate the future return of each asset. Then, the results of different time series methods replaced the expected returns in the Markowitz model. Finally, the overall performance of the method, as well as the performance of each of the prediction methods used, was examined in relation to nine stock market indices.

Keywords

Citation

Moeini Najafabadi, Z., Bijari, M. and Khashei, M. (2020), "Making investment decisions in stock markets using a forecasting-Markowitz based decision-making approaches", Journal of Modelling in Management, Vol. 15 No. 2, pp. 647-659. https://doi.org/10.1108/JM2-12-2018-0217

Publisher

:

Emerald Publishing Limited

Copyright © 2019, Emerald Publishing Limited

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