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Free Course Download100% Free Direct MP4 LinksOreillyAI, Machine Learning & Data Science2023-5 Edition

Download Ensemble Methods for Machine Learning, Video Edition Course for Free

Download the complete Ensemble Methods for Machine Learning, Video Edition video course for free with high-definition MP4 video lectures, project exercise archives, and step-by-step masterclasses. Learn offline at your own pace with zero paywalls or recurring subscriptions.

55Lectures
11.8Total Hours
1563.3MB Total Size
MP4 / 1080p HD
Instructor: Senior Industry Specialist
English
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All Video Lectures Available to Download55 Videos

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Chapter 1. Summary Ensemble Methods for Machine Learning, Video Edition

MP4 HD1m2.96 MB
Stream

Chapter 1. Our first ensemble Ensemble Methods for Machine Learning, Video Edition

MP4 HD7m14.49 MB
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Chapter 1. Ensemble methods Hype or hallelujah Ensemble Methods for Machine Learning, Video Edition

MP4 HD10m23.03 MB
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Chapter 1. Fit vs. complexity in individual models Ensemble Methods for Machine Learning, Video Edition

MP4 HD19m42.11 MB
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Chapter 1. Terminology and taxonomy for ensemble methods Ensemble Methods for Machine Learning, Video Edition

MP4 HD5m11.42 MB
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Chapter 1. Why you should care about ensemble learning Ensemble Methods for Machine Learning, Video Edition

MP4 HD8m16.95 MB
Stream

Chapter 2. Case study Breast cancer diagnosis Ensemble Methods for Machine Learning, Video Edition

MP4 HD13m29.63 MB
Stream

Chapter 2. Bagging Bootstrap aggregating Ensemble Methods for Machine Learning, Video Edition

MP4 HD19m41.90 MB
Stream

Chapter 2. Homogeneous parallel ensembles Bagging and random forests Ensemble Methods for Machine Learning, Video Edition

MP4 HD7m14.96 MB
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Chapter 2. More homogeneous parallel ensembles Ensemble Methods for Machine Learning, Video Edition

MP4 HD7m16.18 MB
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Chapter 2. Summary Ensemble Methods for Machine Learning, Video Edition

MP4 HD2m5.34 MB
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Chapter 3. Case study Sentiment analysi Ensemble Methods for Machine Learning, Video Edition

MP4 HD17m37.88 MB
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Chapter 2. Random forests Ensemble Methods for Machine Learning, Video Edition

MP4 HD10m22.32 MB
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Chapter 3. Combining predictions by meta-learning Ensemble Methods for Machine Learning, Video Edition

MP4 HD16m35.21 MB
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Chapter 3. Combining predictions by weighting Ensemble Methods for Machine Learning, Video Edition

MP4 HD19m42.25 MB
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Chapter 3. Summary Ensemble Methods for Machine Learning, Video Edition

MP4 HD3m7.68 MB
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Chapter 3. Heterogeneous parallel ensembles Combining strong learners Ensemble Methods for Machine Learning, Video Edition

MP4 HD17m38.37 MB
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Chapter 4. AdaBoost Adaptive boosting Ensemble Methods for Machine Learning, Video Edition

MP4 HD23m51.51 MB
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Chapter 4. AdaBoost in practice Ensemble Methods for Machine Learning, Video Edition

MP4 HD10m21.11 MB
Stream

Chapter 4. Case study Handwritten digit classification Ensemble Methods for Machine Learning, Video Edition

MP4 HD9m19.79 MB
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Chapter 4. LogitBoost Boosting with the logistic loss Ensemble Methods for Machine Learning, Video Edition

MP4 HD7m14.52 MB
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Chapter 4. Summary Ensemble Methods for Machine Learning, Video Edition

MP4 HD2m4.55 MB
Stream

Chapter 4. Sequential ensembles Adaptive boosting Ensemble Methods for Machine Learning, Video Edition

MP4 HD8m18.08 MB
Stream

Chapter 5. Case study Document retrieval Ensemble Methods for Machine Learning, Video Edition

MP4 HD11m23.31 MB
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Chapter 5. LightGBM A framework for gradient boosting Ensemble Methods for Machine Learning, Video Edition

MP4 HD11m23.36 MB
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Chapter 5. LightGBM in practice Ensemble Methods for Machine Learning, Video Edition

MP4 HD20m43.41 MB
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Chapter 5. Gradient boosting Gradient descent + boosting Ensemble Methods for Machine Learning, Video Edition

MP4 HD25m56.03 MB
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Chapter 5. Summary Ensemble Methods for Machine Learning, Video Edition

MP4 HD2m5.44 MB
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Chapter 5. Sequential ensembles Gradient boosting Ensemble Methods for Machine Learning, Video Edition

MP4 HD28m61.36 MB
Stream

Chapter 6. Case study redux Document retrieval Ensemble Methods for Machine Learning, Video Edition

MP4 HD8m17.26 MB
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Chapter 6. Sequential ensembles Newton boosting Ensemble Methods for Machine Learning, Video Edition

MP4 HD23m50.42 MB
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Chapter 6. Summary Ensemble Methods for Machine Learning, Video Edition

MP4 HD3m6.57 MB
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Chapter 6. Newton boosting Newton’s method + boosting Ensemble Methods for Machine Learning, Video Edition

MP4 HD19m41.72 MB
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Chapter 6. XGBoost A framework for Newton boosting Ensemble Methods for Machine Learning, Video Edition

MP4 HD12m25.39 MB
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Chapter 6. XGBoost in practice Ensemble Methods for Machine Learning, Video Edition

MP4 HD7m15.96 MB
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Chapter 7. Case study Demand forecasting Ensemble Methods for Machine Learning, Video Edition

MP4 HD22m48.15 MB
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Chapter 7. Learning with continuous and count labels Ensemble Methods for Machine Learning, Video Edition

MP4 HD42m91.72 MB
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Chapter 7. Parallel ensembles for regression Ensemble Methods for Machine Learning, Video Edition

MP4 HD16m35.29 MB
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Chapter 7. Summary Ensemble Methods for Machine Learning, Video Edition

MP4 HD3m7.37 MB
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Chapter 7. Sequential ensembles for regression Ensemble Methods for Machine Learning, Video Edition

MP4 HD17m36.90 MB
Stream

Chapter 8. Case study Income prediction Ensemble Methods for Machine Learning, Video Edition

MP4 HD17m36.92 MB
Stream

Chapter 8. Encoding high-cardinality string features Ensemble Methods for Machine Learning, Video Edition

MP4 HD10m21.97 MB
Stream

Chapter 8. CatBoost A framework for ordered boosting Ensemble Methods for Machine Learning, Video Edition

MP4 HD12m27.16 MB
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Chapter 8. Learning with categorical features Ensemble Methods for Machine Learning, Video Edition

MP4 HD33m72.47 MB
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Chapter 8. Summary Ensemble Methods for Machine Learning, Video Edition

MP4 HD5m10.42 MB
Stream

Chapter 9. Case study Data-driven marketing Ensemble Methods for Machine Learning, Video Edition

MP4 HD9m19.37 MB
Stream

Chapter 9. Black-box methods for local explainability Ensemble Methods for Machine Learning, Video Edition

MP4 HD28m62.46 MB
Stream

Chapter 9. Black-box methods for global explainability Ensemble Methods for Machine Learning, Video Edition

MP4 HD22m48.71 MB
Stream

Chapter 9. Explaining your ensembles Ensemble Methods for Machine Learning, Video Edition

MP4 HD23m50.97 MB
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Chapter 9. Summary Ensemble Methods for Machine Learning, Video Edition

MP4 HD7m14.74 MB
Stream

Chapter 9. Glass-box ensembles Training for interpretability Ensemble Methods for Machine Learning, Video Edition

MP4 HD17m36.73 MB
Stream

Part 1. The basics of ensembles Ensemble Methods for Machine Learning, Video Edition

MP4 HD1m2.61 MB
Stream

Part 2 Essential ensemble methods Ensemble Methods for Machine Learning, Video Edition

MP4 HD2m4.43 MB
Stream

Epilogue Ensemble Methods for Machine Learning, Video Edition

MP4 HD11m25.12 MB
Stream

Part 3. Ensembles in the wild Adapting ensemble methods to your data Ensemble Methods for Machine Learning, Video Edition

MP4 HD3m7.28 MB
Stream
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What You'll Master in this Free Download Course

Classification, Regression, and Recommendation Methods
Sophisticated Implementations of Off-the-Shelf Ensembles
Random Forests, Boosting, and Gradient Boosting
Feature Engineering and Group Diversity
Interpretability and Explainability for Ensemble Methods
And…

About this Free Download Course

Ensemble Methods for Machine Learning, Video Edition is a course on improving the performance of machine learning models using Ensemble methods, published by Oreillly Online Academy. The course covers various techniques such as bundling, boosting, stacking, and voting, and shows how combining multiple models can lead to improved prediction accuracy and generalization. Learners will be introduced to popular ensemble algorithms such as Random Forests, AdaBoost, Gradient Boosting, and XGBoost. Through practical coding examples, participants will understand the theory behind these methods and how they are applied to real-world problems.You will discover core ensemble methods that have proven track records in both data science competitions and real-world applications. Practical case studies will show you how each algorithm works in production. Learners will gain a deep understanding of the theory behind Ensemble techniques and how they are applied to real-world machine learning problems. By the end of the course, learners will have a solid foundation in Ensemble methods, equipped with the skills to create high-performance models for complex machine learning tasks.

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Free Download Summary

Price:100% Free
Total Lectures:55 videos
Total Duration:11.8 hours
Video Format:MP4 (1080p HD)
Exercise Archives:1 ZIP files
Registration:None (Instant Access)
Offline Playback:Supported
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Instructor

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Senior Industry Specialist

Specialist in AI, Machine Learning & Data Science. Real-world engineering curriculum and hands-on masterclasses.

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