Prediction Performance Analysis for ML Models Based on Impacts of Data Imbalance and Bias

Author:

Gao Chunlan1ORCID,Shi Yong2ORCID

Affiliation:

1. Georgia State University, Atlanta, Georgia, USA

2. Kennesaw State University, Marietta, Georgia, USA

Publisher

ACM

Reference22 articles.

1. Benchmarking state-of-the-art classification algorithms for credit scoring

2. Alejandro Correa Bahnsen, Djamia Aouada, and Björn Ottersten. 2014. Example-dependent Cost-sensitive Logistic Regression for Credit Scoring. In 2014 13th International conference on machine learning and applications. Detroit, USA, 263--269.

3. Ricardo Barandela, Rosa M Valdovinos, J Salvador Sánchez, and Francesc J Ferri. 2004. The Imbalanced Training Sample Problem: Under or Over Sampling?. In Structural, Syntactic, and Statistical Pattern Recognition: Joint IAPR International Workshops, SSPR 2004 and SPR 2004, Lisbon, Portugal, August 18-20, 2004. Proceedings. Springer, 806--814.

4. Evaluation Measures for Models Assessment Over Imbalanced Data Sets;Bekkar Mohamed;J Inf Eng Appl,2013

5. SMOTE: Synthetic Minority Over-sampling Technique

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