Abstract
Purpose: This paper aims to conduct a thorough analysis to determine the influence of several possible factors on the level of confidence in Ukrainian banks. This scientific research project is based on data from the World Values Survey (WVS). The paper also aims to empirically investigate a number of independent variables, that creates trust in banks, based on Machine Learning Algorithms. Besides that, use some of the predictive analytics techniques to anticipate the level of trust in Ukrainian banks. Methodology: To calculate the index of Confidence in Banks var., by using linear regression, logistic regression (as a robustness check), Random Forrest, Decision Tree and XGBoost Models. Verify the output and results by using the Residual graphs, Cross-validation, Confusion matrix, ROC and model accuracy estimations. Main Findings: Age, level of financial satisfaction, scale income and life satisfaction, general trust, lack of cash and other indicators has a significant impact on the the level of trust in Ukrainian banks. This paper represents a number and probability value of the variables spectrum; effect plots and other visualization graphs.
Original language | English |
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Title of host publication | 2019 9th International Conference on Advanced Computer Information Technologies, ACIT |
Publisher | IEEE |
Pages | 234-239 |
Number of pages | 6 |
ISBN (Electronic) | 9781728104492 |
DOIs | |
Publication status | Published - Aug 2019 |
Event | 9th International Conference on Advanced Computer Information Technologies, ACIT 2019 - Ceske Budejovice, Czech Republic Duration: 5 Jun 2019 → 7 Jun 2019 |
Publication series
Name | 2019 9th International Conference on Advanced Computer Information Technologies, ACIT 2019 - Proceedings |
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Conference
Conference | 9th International Conference on Advanced Computer Information Technologies, ACIT 2019 |
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Country/Territory | Czech Republic |
City | Ceske Budejovice |
Period | 5/06/19 → 7/06/19 |
Bibliographical note
Publisher Copyright:© 2019 IEEE.
Keywords
- bank run
- data science
- data visualization
- deposit guarantee
- Machine Learning Algorithm
- trust in banks