Forecasting Financial Markets Using Neural Networks: An Analysis of Methods and Accuracy

Abstract

This research examines and analyzes the use of neural networks as a forecasting tool. Specifically a neural network's ability to predict future trends of Stock Market Indices is tested. Accuracy is compared against a traditional forecasting method, multiple linear regression analysis. Finally, the probability of the model's forecast being correct is calculated using conditional probabilities. While only briefly discussing neural network theory, this research determines the feasibility and practicality of using neural networks as a forecasting tool for the individual investor. This study builds upon the work done by Edward Gately in his book Neural Networks for Financial Forecasting. This research validates the work of Gately and describes the development of a neural network that achieved a 93.3 percent probability of predicting a market rise, and an 88.07 percent probability of predicting a market drop in the S&P500. It was concluded that neural networks do have the capability to forecast financial markets and, if properly trained, the individual investor could benefit from the use of this forecasting tool.

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Document Details

Document Type
Technical Report
Publication Date
Sep 01, 1998
Accession Number
ADA355005

Entities

People

  • Jason E. Kutsurelis

Organizations

  • Naval Postgraduate School

Tags

DTIC Thesaurus Topics

  • Accuracy
  • Artificial Intelligence
  • Artificial Intelligence Software
  • Computer Programs
  • Computers
  • Data Analysis
  • Data Mining
  • Data Science
  • Descriptive Analytics
  • Information Science
  • Linear Regression Analysis
  • Network Science
  • Neural Networks
  • Regression Analysis
  • Spreadsheet Software
  • Statistics
  • United States Naval Academy

Fields of Study

  • Computer science

Readers

  • International Relations and European Studies
  • Neural Network Machine Learning.
  • Regression Analysis.

Technology Areas

  • AI & ML
  • AI & ML - Bayesian Inference
  • AI & ML - DoD AI Strategy
  • AI & ML - Neural Networks