Udemy - Machine Learning with Imbalanced Data

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Udemy - Machine Learning with Imbalanced Data

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Udemy - Machine Learning with Imbalanced Data
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102 B
1. Combining Over and Under-sampling - Intro.mp4
MP4
36.9 MB
1. Combining Over and Under-sampling - Intro.srt
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7.3 KB
1. Cost-sensitive Learning - Intro.mp4
MP4
32.7 MB
1. Cost-sensitive Learning - Intro.srt
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7.8 KB
1. Ensemble methods with Imbalanced Data.mp4
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26.5 MB
1. Ensemble methods with Imbalanced Data.srt
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5.4 KB
1. Imbalanced classes - Introduction.mp4
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33.3 MB
1. Imbalanced classes - Introduction.srt
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6.5 KB
1. Introduction to Performance Metrics.mp4
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10.8 MB
1. Introduction to Performance Metrics.srt
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3.3 KB
1. Introduction.mp4
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32.3 MB
1
117.5 KB
1. Introduction.srt
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4 KB
1. Next steps.html
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716 B
1. Over-Sampling Methods - Introduction.mp4
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21.1 MB
1. Over-Sampling Methods - Introduction.srt
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4.4 KB
1. Probability Calibration.mp4
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34.1 MB
1. Probability Calibration.srt
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7.3 KB
1. Under-Sampling Methods - Introduction.mp4
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31.5 MB
1. Under-Sampling Methods - Introduction.srt
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6.6 KB
2
982.7 KB
3
156.1 KB
4
428.6 KB
5
15.5 KB
10. Borderline SMOTE.mp4
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46.2 MB
10. Borderline SMOTE.srt
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9.3 KB
10. Calibrating a Classifier with Cost-sensitive Learning.mp4
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25.2 MB
10. Calibrating a Classifier with Cost-sensitive Learning.srt
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4.6 KB
10. Edited Nearest Neighbours - Intro.mp4
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22.6 MB
10. Edited Nearest Neighbours - Intro.srt
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5.4 KB
10. Geometric Mean, Dominance, Index of Imbalanced Accuracy - Demo.mp4
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86.8 MB
10. Geometric Mean, Dominance, Index of Imbalanced Accuracy - Demo.srt
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12.2 KB
10. MetaCost.mp4
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42.6 MB
10. MetaCost.srt
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8.5 KB
11. Borderline SMOTE - Demo.mp4
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24.8 MB
11. Borderline SMOTE - Demo.srt
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3.6 KB
11. Edited Nearest Neighbours - Demo.mp4
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30.8 MB
11. Edited Nearest Neighbours - Demo.srt
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5.1 KB
11. MetaCost - Demo.mp4
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22.9 MB
11. MetaCost - Demo.srt
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4.5 KB
11. Probability Additional reading resources.html
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921 B
11. ROC-AUC.mp4
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39.3 MB
11. ROC-AUC.srt
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8.3 KB
12. Optional MetaCost Base Code.mp4
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36.9 MB
12. Optional MetaCost Base Code.srt
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7.5 KB
12. ROC-AUC - Demo.mp4
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31.6 MB
12. ROC-AUC - Demo.srt
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5.3 KB
12. Repeated Edited Nearest Neighbours - Intro.mp4
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24.3 MB
12. Repeated Edited Nearest Neighbours - Intro.srt
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5.4 KB
12. SVM SMOTE.mp4
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25.3 MB
12. SVM SMOTE.srt
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6.1 KB
13. Additional Reading Resources.html
HTML
2 KB
13. Precision-Recall Curve.mp4
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40.5 MB
13. Precision-Recall Curve.srt
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9.2 KB
13. Repeated Edited Nearest Neighbours - Demo.mp4
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22.9 MB
13. Repeated Edited Nearest Neighbours - Demo.srt
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3.9 KB
13. SVM SMOTE - Demo.mp4
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37 MB
13. SVM SMOTE - Demo.srt
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4.9 KB
14. All KNN - Intro.mp4
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16.3 MB
14. All KNN - Intro.srt
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4.3 KB
14. K-Means SMOTE.mp4
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27.6 MB
14. K-Means SMOTE.srt
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6 KB
14. Precision-Recall Curve - Demo.mp4
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18.1 MB
14. Precision-Recall Curve - Demo.srt
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3.4 KB
15. Additional reading resources (Optional).html
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1.6 KB
15. All KNN - Demo.mp4
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22.7 MB
15. All KNN - Demo.srt
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3.6 KB
15. K-Means SMOTE - Demo.mp4
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24.8 MB
15. K-Means SMOTE - Demo.srt
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3.9 KB
16. Neighbourhood Cleaning Rule - Intro.mp4
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23 MB
16. Neighbourhood Cleaning Rule - Intro.srt
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5 KB
16. Over-Sampling Method Comparison.mp4
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39.8 MB
16. Over-Sampling Method Comparison.srt
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7.2 KB
16. Probability.mp4
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20.6 MB
16. Probability.srt
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5.5 KB
16.1 Link to Jupyter notebook.html
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204 B
17. Neighbourhood Cleaning Rule - Demo.mp4
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15.9 MB
17. Neighbourhood Cleaning Rule - Demo.srt
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2.6 KB
18. NearMiss - Intro.mp4
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17.2 MB
18. NearMiss - Intro.srt
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4.4 KB
19. NearMiss - Demo.mp4
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26.3 MB
19. NearMiss - Demo.srt
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4.5 KB
2. Accuracy.mp4
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21.4 MB
2. Accuracy.srt
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5.3 KB
2. Combining Over and Under-sampling - Demo.mp4
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34.3 MB
2. Combining Over and Under-sampling - Demo.srt
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6.3 KB
2. Course Curriculum Overview.mp4
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17.5 MB
2. Course Curriculum Overview.srt
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3.9 KB
2. Foundations of Ensemble Learning.mp4
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19.7 MB
2. Foundations of Ensemble Learning.srt
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3.2 KB
2. Nature of the imbalanced class.mp4
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35.1 MB
2. Nature of the imbalanced class.srt
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5.9 KB
2. Probability Calibration Curves.mp4
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28.8 MB
2. Probability Calibration Curves.srt
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6.7 KB
2. Random Over-Sampling.mp4
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15.6 MB
2. Random Over-Sampling.srt
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3.7 KB
2. Random Under-Sampling - Intro.mp4
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25.6 MB
2. Random Under-Sampling - Intro.srt
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6.6 KB
2. Types of Cost.mp4
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44 MB
2. Types of Cost.srt
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12.1 KB
20. Instance Hardness Threshold - Intro.mp4
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19.7 MB
20. Instance Hardness Threshold - Intro.srt
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5 KB
21. Instance Hardness Threshold - Demo.mp4
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30.5 MB
21. Instance Hardness Threshold - Demo.srt
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4.8 KB
22. Undersampling Method Comparison.mp4
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47.5 MB
22. Undersampling Method Comparison.srt
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9.3 KB
23. Summary Table.html
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102 B
23.1 Undersampling-Comparison.pdf
PDF
205.5 KB
3. Accuracy - Demo.mp4
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47.6 MB
3. Accuracy - Demo.srt
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7.3 KB
3. Approaches to work with imbalanced datasets - Overview.mp4
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20.2 MB
3. Approaches to work with imbalanced datasets - Overview.srt
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4.7 KB
3. Bagging.mp4
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18.2 MB
3. Bagging.srt
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3.2 KB
3. Comparison of Over and Under-sampling Methods.mp4
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36.5 MB
3. Comparison of Over and Under-sampling Methods.srt
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6.5 KB
3. Course Material.mp4
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11 MB
3. Course Material.srt
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2.4 KB
3. Obtaining the Cost.mp4
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19 MB
3. Obtaining the Cost.srt
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4.6 KB
3. Probability Calibration Curves - Demo.mp4
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64.9 MB
3. Probability Calibration Curves - Demo.srt
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11.5 KB
3. Random Over-Sampling - Demo.mp4
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35.2 MB
3. Random Over-Sampling - Demo.srt
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6.3 KB
3. Random Under-Sampling - Demo.mp4
MP4
66.9 MB
3. Random Under-Sampling - Demo.srt
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13.5 KB
4. Additional Reading Resources (Optional).html
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1 KB
4. Bagging plus Over- or Under-Sampling.mp4
MP4
42.9 MB
4. Bagging plus Over- or Under-Sampling.srt
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6.4 KB
4. Brier Score.mp4
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17.1 MB
4. Brier Score.srt
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3.7 KB
4. Code Jupyter notebooks.html
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921 B
4. Condensed Nearest Neighbours - Intro.mp4
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32.4 MB
4. Condensed Nearest Neighbours - Intro.srt
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8.3 KB
4. Cost Sensitive Approaches.mp4
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10.3 MB
4. Cost Sensitive Approaches.srt
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1.8 KB
4. Precision, Recall and F-measure.mp4
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67 MB
4. Precision, Recall and F-measure.srt
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15.1 KB
4. SMOTE.mp4
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44.6 MB
4. SMOTE.srt
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10 KB
5. Boosting.mp4
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70.6 MB
5. Boosting.srt
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10.6 KB
5. Brier Score - Demo.mp4
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49 MB
5. Brier Score - Demo.srt
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8.8 KB
5. Condensed Nearest Neighbours - Demo.mp4
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52.7 MB
5. Condensed Nearest Neighbours - Demo.srt
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9.2 KB
5. Install Yellowbrick.html
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716 B
5. Misclassification Cost in Logistic Regression.mp4
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18.7 MB
5. Misclassification Cost in Logistic Regression.srt
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3.6 KB
5. Presentations covered in the course.html
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307 B
5. SMOTE - Demo.mp4
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18.4 MB
5. SMOTE - Demo.srt
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3.2 KB
6. Boosting plus Re-Sampling.mp4
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47.3 MB
6. Boosting plus Re-Sampling.srt
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8 KB
6. Misclassification Cost in Decision Trees.mp4
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21.3 MB
6. Misclassification Cost in Decision Trees.srt
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4.1 KB
6. Precision, Recall and F-measure - Demo.mp4
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80.3 MB
6. Precision, Recall and F-measure - Demo.srt
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12.2 KB
6. Python package Imbalanced-learn.html
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716 B
6. SMOTE-NC.mp4
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48 MB
6. SMOTE-NC.srt
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10.4 KB
6. Tomek Links - Intro.mp4
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19 MB
6. Tomek Links - Intro.srt
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5.3 KB
6. Under- and Over-sampling and Cost-sensitive learning on Probability Calibration.mp4
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29.6 MB
6. Under- and Over-sampling and Cost-sensitive learning on Probability Calibration.srt
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6.2 KB
7. Calibrating a Classifier.mp4
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27.2 MB
7. Calibrating a Classifier.srt
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5.9 KB
7. Confusion tables, FPR and FNR.mp4
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29.7 MB
7. Confusion tables, FPR and FNR.srt
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7.4 KB
7. Cost Sensitive Learning with Scikit-learn- Demo.mp4
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56.1 MB
7. Cost Sensitive Learning with Scikit-learn- Demo.srt
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9 KB
7. Download Datasets.html
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307 B
7. Hybdrid Methods.mp4
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30.5 MB
7. Hybdrid Methods.srt
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5.3 KB
7. SMOTE-NC - Demo.mp4
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21.4 MB
7. SMOTE-NC - Demo.srt
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3.3 KB
7. Tomek Links - Demo.mp4
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24 MB
7. Tomek Links - Demo.srt
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4.1 KB
8. ADASYN.mp4
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31.6 MB
8. ADASYN.srt
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7.7 KB
8. Additional resources for Machine Learning and Python programming.html
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2.6 KB
8. Calibrating a Classifier - Demo.mp4
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46.7 MB
8. Calibrating a Classifier - Demo.srt
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7.3 KB
8. Confusion tables, FPR and FNR - Demo.mp4
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49.1 MB
8. Confusion tables, FPR and FNR - Demo.srt
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9.6 KB
8. Ensemble Methods - Demo.mp4
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70.8 MB
8. Ensemble Methods - Demo.srt
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11.8 KB
8. Find Optimal Cost with hyperparameter tuning.mp4
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22.9 MB
8. Find Optimal Cost with hyperparameter tuning.srt
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4.4 KB
8. One Sided Selection - Intro.mp4
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11.9 MB
8. One Sided Selection - Intro.srt
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2.8 KB
9. ADASYN - Demo.mp4
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20.9 MB
9. ADASYN - Demo.srt
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3.7 KB
9. Additional Reading Resources.html
HTML
2 KB
9. Bayes Conditional Risk.mp4
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72 MB
9. Bayes Conditional Risk.srt
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14.7 KB
9. Calibrating a Classfiier after SMOTE or Under-sampling.mp4
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52 MB
9. Calibrating a Classfiier after SMOTE or Under-sampling.srt
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10.4 KB
9. Geometric Mean, Dominance, Index of Imbalanced Accuracy.mp4
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23.1 MB
9. Geometric Mean, Dominance, Index of Imbalanced Accuracy.srt
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5.2 KB
9. One Sided Selection - Demo.mp4
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25.6 MB
9. One Sided Selection - Demo.srt
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4.7 KB
TutsNode.com.txt
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