Binary classification with fuzzy logistic regression under class imbalance and complete separation in clinical studies
Georgios Charizanos,
Haydar Demirhan,
Duygu İçen
Abstract:Background
In binary classification for clinical studies, an imbalanced distribution of cases to classes and an extreme association level between the binary dependent variable and a subset of independent variables can create significant classification problems. These crucial issues, namely class imbalance and complete separation, lead to classification inaccuracy and biased results in clinical studies.
Method
To deal with class imbalance and comple… Show more
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