2022
DOI: 10.18187/pjsor.v18i4.3927
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An Intelligent Hybrid Model Using Artificial Neural Networks and Particle Swarm Optimization Technique For Financial Crisis Prediction

Abstract: Financial crisis prediction is a critical issue in the economic phenomenon. Correct predictions can provide the knowledge for stakeholders to make policies to preserve and increase economic stability. Several approaches for predicting the financial crisis have been developed. However, the classification model's performance and prediction accuracy, as well as legal data, are insufficient for usage in real applications. So that, an efficient prediction model is required for higher performance results. This paper… Show more

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Cited by 4 publications
(3 citation statements)
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“…Swarm optimization approaches such as Ant Colony Optimization (ACO) [ 31 ], Particle Swarm Optimization [ 32 ], Grey Wolf Optimization (IGWO), and Fuzzy Neural Classifier (FNC) [ 33 ] can be used also to develop smart systems able to accurately predict the financial crisis and bankruptcy. Although many appreciated efforts have been paid to solve financial crisis prediction issues, few works have used the concept of Explainable Artificial Intelligence (XAI) in predicting financial crises.…”
Section: Related Workmentioning
confidence: 99%
“…Swarm optimization approaches such as Ant Colony Optimization (ACO) [ 31 ], Particle Swarm Optimization [ 32 ], Grey Wolf Optimization (IGWO), and Fuzzy Neural Classifier (FNC) [ 33 ] can be used also to develop smart systems able to accurately predict the financial crisis and bankruptcy. Although many appreciated efforts have been paid to solve financial crisis prediction issues, few works have used the concept of Explainable Artificial Intelligence (XAI) in predicting financial crises.…”
Section: Related Workmentioning
confidence: 99%
“…CNN is based on the artificial neural networks (ANN) architecture. The main objective of designing and training a neural network model is to identify, modify, and optimize parameters in order to minimize objective functions and generate precise predictions for incoming inputs [16].…”
Section: Data Processing 231 Convolutional Neural Networkmentioning
confidence: 99%
“…Different features of the financial crisis have been studied by economists in order to identify an accurate methodology for predicting financial crisis using the data from historical years [1,2]. The prediction aims to forewarn the decision-makers within the economy to prevent or reduce the damage caused by the crisis as much as possible by taking advanced actions.…”
Section: Introductionmentioning
confidence: 99%