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Updated
Oct 14, 2019 - Python
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roc-score
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This research work summarized different machine learning algorithms to create models for predicting diabetes patients utilizing the Diabetes Dataset (PIDD) from the UCI repository. The classifiers were K-Nearest Neighbors, Naïve Bayes, Support Vector, Decision Tree, Random Forest, Logistic Regression and Ensemble Model using a voting classifier.
machine-learning
random-forest
svm
naive-bayes-classifier
ensemble-learning
logistic-regression
confusion-matrix
decision-trees
feature-engineering
knn
boxplot
datavisualization
voting-classifier
roc-score
streamlit-webapp
confusion-matrix-heatmap
auc-score
handling-outlier
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Updated
Jan 8, 2023 - Jupyter Notebook
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