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[DesireCourse.Com] Udemy - Ensemble Machine Learning in Python Random Forest, AdaBoost
Other
Size
826 MB
Seeders
1
Leechers
1
Files
84
Category
Other
Added
04/26/19
at 3:04am GMT+1
Status
Verified by VeriPLUS
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c36599619801d7fb84e1c3d652da4bb26ca9afcd
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Description
Ensemble Machine Learning in Python: Random Forest, AdaBoost
Ensemble Methods: Boosting, Bagging, Boostrap, and Statistical Machine Learning for Data Science in Python
For More Courses Visit: https://desirecourse.com
File list
[DesireCourse.Com] Udemy - Ensemble Machine Learning in Python Random Forest, AdaBoost
1. Get Started/1. Outline and Motivation.mp4
7.2 MB
1. Get Started/1. Outline and Motivation.vtt
6 KB
1. Get Started/2. Where to get the Code and Data.mp4
3.4 MB
1. Get Started/2. Where to get the Code and Data.vtt
2.6 KB
1. Get Started/3. All Data is the Same.mp4
5.3 MB
1. Get Started/3. All Data is the Same.vtt
3.9 KB
1. Get Started/4. Plug-and-Play.mp4
3.5 MB
1. Get Started/4. Plug-and-Play.vtt
2.6 KB
2. Bias-Variance Trade-Off/1. Bias-Variance Key Terms.mp4
10.2 MB
2. Bias-Variance Trade-Off/1. Bias-Variance Key Terms.vtt
7.8 KB
2. Bias-Variance Trade-Off/2. Bias-Variance Trade-Off.mp4
4.9 MB
2. Bias-Variance Trade-Off/2. Bias-Variance Trade-Off.vtt
3.6 KB
2. Bias-Variance Trade-Off/3. Bias-Variance Decomposition.mp4
5.4 MB
2. Bias-Variance Trade-Off/3. Bias-Variance Decomposition.vtt
3.5 KB
2. Bias-Variance Trade-Off/4. Polynomial Regression Demo.mp4
41.8 MB
2. Bias-Variance Trade-Off/4. Polynomial Regression Demo.vtt
11.4 KB
2. Bias-Variance Trade-Off/5. K-Nearest Neighbor and Decision Tree Demo.mp4
13.9 MB
2. Bias-Variance Trade-Off/5. K-Nearest Neighbor and Decision Tree Demo.vtt
5.1 KB
2. Bias-Variance Trade-Off/6. Cross-Validation as a Method for Optimizing Model Complexity.mp4
7 MB
2. Bias-Variance Trade-Off/6. Cross-Validation as a Method for Optimizing Model Complexity.vtt
5.1 KB
3. Bootstrap Estimates and Bagging/1. Bootstrap Estimation.mp4
47.7 MB
3. Bootstrap Estimates and Bagging/1. Bootstrap Estimation.vtt
11 KB
3. Bootstrap Estimates and Bagging/2. Bootstrap Demo.mp4
11 MB
3. Bootstrap Estimates and Bagging/2. Bootstrap Demo.vtt
3.6 KB
3. Bootstrap Estimates and Bagging/3. Bagging.mp4
3.9 MB
3. Bootstrap Estimates and Bagging/3. Bagging.vtt
2.7 KB
3. Bootstrap Estimates and Bagging/4. Bagging Regression Trees.mp4
15.9 MB
3. Bootstrap Estimates and Bagging/4. Bagging Regression Trees.vtt
4 KB
3. Bootstrap Estimates and Bagging/5. Bagging Classification Trees.mp4
20.3 MB
3. Bootstrap Estimates and Bagging/5. Bagging Classification Trees.vtt
4.8 KB
3. Bootstrap Estimates and Bagging/6. Stacking.mp4
6.1 MB
3. Bootstrap Estimates and Bagging/6. Stacking.vtt
4.5 KB
4. Random Forest/1. Random Forest Algorithm.mp4
14.4 MB
4. Random Forest/1. Random Forest Algorithm.vtt
10.7 KB
4. Random Forest/2. Random Forest Regressor.mp4
14.9 MB
4. Random Forest/2. Random Forest Regressor.vtt
7.5 KB
4. Random Forest/3. Random Forest Classifier.mp4
12.6 MB
4. Random Forest/3. Random Forest Classifier.vtt
5 KB
4. Random Forest/4. Random Forest vs Bagging Trees.mp4
7.8 MB
4. Random Forest/4. Random Forest vs Bagging Trees.vtt
3.9 KB
4. Random Forest/5. Implementing a Not as Random Forest.mp4
8.7 MB
4. Random Forest/5. Implementing a Not as Random Forest.vtt
4.4 KB
4. Random Forest/6. Connection to Deep Learning Dropout.mp4
4.2 MB
4. Random Forest/6. Connection to Deep Learning Dropout.vtt
2.8 KB
5. AdaBoost/1. AdaBoost Algorithm.mp4
10.9 MB
5. AdaBoost/1. AdaBoost Algorithm.vtt
8 KB
5. AdaBoost/2. Additive Modeling.mp4
2.8 MB
5. AdaBoost/2. Additive Modeling.vtt
2.1 KB
5. AdaBoost/3. AdaBoost Loss Function Exponential Loss.mp4
11.2 MB
5. AdaBoost/3. AdaBoost Loss Function Exponential Loss.vtt
7.4 KB
5. AdaBoost/4. AdaBoost Implementation.mp4
15.8 MB
5. AdaBoost/4. AdaBoost Implementation.vtt
9.6 KB
5. AdaBoost/5. Comparison to Stacking.mp4
5.5 MB
5. AdaBoost/5. Comparison to Stacking.vtt
3.8 KB
5. AdaBoost/6. Connection to Deep Learning.mp4
6 MB
5. AdaBoost/6. Connection to Deep Learning.vtt
4.2 KB
5. AdaBoost/7. Summary and What's Next.mp4
7.4 MB
5. AdaBoost/7. Summary and What's Next.vtt
5.5 KB
6. Appendix/1. What is the Appendix.mp4
5.5 MB
6. Appendix/1. What is the Appendix.vtt
3.3 KB
6. Appendix/10. BONUS Where to get Udemy coupons and FREE deep learning material.mp4
4 MB
6. Appendix/10. BONUS Where to get Udemy coupons and FREE deep learning material.vtt
3 KB
6. Appendix/11. Python 2 vs Python 3.mp4
7.8 MB
6. Appendix/11. Python 2 vs Python 3.vtt
5.4 KB
6. Appendix/12. What order should I take your courses in (part 1).mp4
29.3 MB
6. Appendix/12. What order should I take your courses in (part 1).vtt
14.1 KB
6. Appendix/13. What order should I take your courses in (part 2).mp4
37.6 MB
6. Appendix/13. What order should I take your courses in (part 2).vtt
20.2 KB
6. Appendix/2. Confidence Intervals.mp4
12.6 MB
6. Appendix/2. Confidence Intervals.vtt
11.5 KB
6. Appendix/3. Windows-Focused Environment Setup 2018.mp4
186.3 MB
6. Appendix/3. Windows-Focused Environment Setup 2018.vtt
17.4 KB
6. Appendix/4. How to install Numpy, Scipy, Matplotlib, Pandas, IPython, Theano, and TensorFlow.mp4
43.9 MB
6. Appendix/4. How to install Numpy, Scipy, Matplotlib, Pandas, IPython, Theano, and TensorFlow.vtt
12.4 KB
6. Appendix/5. How to Code by Yourself (part 1).mp4
24.5 MB
6. Appendix/5. How to Code by Yourself (part 1).vtt
19.8 KB
6. Appendix/6. How to Code by Yourself (part 2).mp4
14.8 MB
6. Appendix/6. How to Code by Yourself (part 2).vtt
11.6 KB
6. Appendix/7. How to Succeed in this Course (Long Version).mp4
13 MB
6. Appendix/7. How to Succeed in this Course (Long Version).vtt
12.9 KB
6. Appendix/8. Is this for Beginners or Experts Academic or Practical Fast or slow-paced.mp4
39 MB
6. Appendix/8. Is this for Beginners or Experts Academic or Practical Fast or slow-paced.vtt
27.8 KB
6. Appendix/9. Proof that using Jupyter Notebook is the same as not using it.mp4
78.3 MB
6. Appendix/9. Proof that using Jupyter Notebook is the same as not using it.vtt
12.2 KB
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