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检索条件"作者=Peter Gnip"
14 条 记 录,以下是1-10 订阅
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An experimental survey of imbalanced learning algorithms for bankruptcy prediction
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ARTIFICIAL INTELLIGENCE REVIEW 2025年 第4期58卷 1-57页
作者: gnip, peter Kanasz, Robert Zoricak, Martin Drotar, peter Tech Univ Kosice Fac Elect Engn & Informat Dept Comp & Informat Letna 9 Kosice 04001 Slovakia Tech Univ Kosice Fac Econ Dept Finance Nemcovej 32 Kosice 04010 Slovakia
Information about imminent bankruptcy is crucial for financial institutions, decision-making managers, and state agencies. Since bankruptcy prediction is a prevalent research topic, many new methods have been continuo... 详细信息
来源: 评论
A Deep Ensemble Learning Approach for Imbalanced Data in Bankruptcy Prediction
A Deep Ensemble Learning Approach for Imbalanced Data in Ban...
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2025 IEEE Symposium on Computational Intelligence for Financial Engineering and Economics, CiFer 2025
作者: gnip, peter Drotár, peter Kanász, Róbert Zoričak, Martin Technical University of Košice Faculty of Electrical Engineering and Informatics Košice Slovakia Technical University of Košice Faculty of Economics Košice Slovakia
Skewed data distribution poses many challenges in various domains, including the financial sector. Information about a company's potential bankruptcy is crucial for financial institutions and decision-making manag... 详细信息
来源: 评论
A Deep Ensemble Learning Approach for Imbalanced Data in Bankruptcy Prediction
A Deep Ensemble Learning Approach for Imbalanced Data in Ban...
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Computational Intelligence for Financial Engineering and Economics (CiFer), IEEE Symposium on
作者: peter gnip peter Drotár Róbert Kanász Martin Zoričak Faculty of Electrical Engineering and Informatics Technical University of Košice Košice Slovakia Faculty of Economics Technical University of Košice Košice Slovakia
Skewed data distribution poses many challenges in various domains, including the financial sector. Information about a company's potential bankruptcy is crucial for financial institutions and decision-making manag...
来源: 评论
Ensemble methods for strongly imbalanced data: Bankruptcy prediction  17
Ensemble methods for strongly imbalanced data: Bankruptcy pr...
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17th IEEE International Symposium on Intelligent Systems and Informatics, SISY 2019
作者: gnip, peter Drotar, peter Kosice Slovakia
Application of the machine learning methods on strongly imbalanced datasets is a challenging task in the field of data processing. Imbalanced learning is part of many real-world applications and it is a very vivid res... 详细信息
来源: 评论
Stability analysis of WkNN feature selection  13
Stability analysis of WkNN feature selection
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IEEE 13th International Symposium on Applied Computational Intelligence and Informatics (SACI)
作者: Bugata, peter gnip, peter Drotar, peter FEI TU Kosice Dept Comp & Informat Kosice Slovakia
Recently, huge amounts of data have been generated by computer and internet applications in multiple domains, including healthcare, bioinformatics, social media, e-commerce, and transportation. These data often have c... 详细信息
来源: 评论
Single-Class Bankruptcy Prediction Based on the Data from Annual Reports  19th
Single-Class Bankruptcy Prediction Based on the Data from An...
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19th International Conference on Intelligent Data Engineering and Automated Learning (IDEAL)
作者: Drotar, peter gnip, peter Zoricak, Martin Gazda, Vladimir Tech Univ Kosice Fac Elect Engn & Informat Letna 9 Kosice Slovakia Tech Univ Kosice Fac Econ Nemcovej 32 Kosice Slovakia
The companies involved in all areas of the business and industry can due to the unfavourable financial situation or inappropriate investments face financial problems resulting in bankruptcy of the company. The ability... 详细信息
来源: 评论
Clash of titans on imbalanced data: TabNet vs XGBoost  2
Clash of titans on imbalanced data: TabNet vs XGBoost
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2nd IEEE Conference on Artificial Intelligence (CAI)
作者: Kanasz, Robert Drotar, peter gnip, peter Zoricak, Martin Tech Univ Kosice Fac Elect Engn & Informat Kosice Slovakia Tech Univ Kosice Fac Econ Kosice Slovakia
In machine learning, particularly with tabular data, ensemble methods and neural networks stand as the preeminent approaches for predictive modeling. Among these, XGBoost and TabNet have demonstrated remarkable effica... 详细信息
来源: 评论
Bankruptcy prediction for small- and medium-sized companies using severely imbalanced datasets
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ECONOMIC MODELLING 2020年 84卷 165-176页
作者: Zoricak, Martin gnip, peter Drotar, peter Gazda, Vladimir Tech Univ Kosice Fac Econ Dept Finance Bozeny Nemcovej 32 Kosice 04200 Slovakia Tech Univ Kosice Fac Elect Engn & Informat Dept Comp & Informat Letna 9 Kosice 04200 Slovakia
Bankruptcy prediction is still important topic receiving notable attention. Information about an imminent bankruptcy threat is a crucial aspect of the decision-making process of managers, financial institutions, and g... 详细信息
来源: 评论
Selective oversampling approach for strongly imbalanced data
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PEERJ COMPUTER SCIENCE 2021年 7卷 e604-e604页
作者: gnip, peter Vokorokos, Liberios Drotar, peter Tech Univ Kosice Dept Comp & Informat Kosice Slovakia
Challenges posed by imbalanced data are encountered in many real-world applications. One of the possible approaches to improve the classifier performance on imbalanced data is oversampling. In this paper, we propose t... 详细信息
来源: 评论
Bankruptcy prediction using ensemble of autoencoders optimized by genetic algorithm
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PEERJ COMPUTER SCIENCE 2023年 9卷 e1257页
作者: Kanasz, Robert gnip, peter Zoricak, Martin Drotar, peter Tech Univ Kosice Fac Elect Engn & Informat Dept Comp & Informat Kosice Slovakia Tech Univ Kosice Fac Econ Dept Finance Kosice Slovakia
The prediction of imminent bankruptcy for a company is important to banks, government agencies, business owners, and different business stakeholders. Bankruptcy is influenced by many global and local aspects, so it ca... 详细信息
来源: 评论