Machine Learning: Step-by-Step Guide To Implement Machine Learning Algorithms with Python



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Machine Learning Step-by-Step Guide To Implement Machine Learning Algorithms with Python ( PDFDrive )

Questions
1. Explain how to combine different models in detail.
2. What are the goals and benefits of combining models?

Document Outline

  • CHAPTER 1
  • INTRODUCTION TO MACHINE LEARNING
    • Theory
    • What is machine learning?
    • Why machine learning?
    • When should you use machine learning?
    • Types of Systems of Machine Learning
    • Supervised and unsupervised learning
      • Supervised Learning
      • The most important supervised algorithms
      • Unsupervised Learning
      • The most important unsupervised algorithms
    • Reinforcement Learning
    • Batch Learning
    • Online Learning
    • Instance based learning
    • Model-based learning
    • Bad and Insufficient Quantity of Training Data
    • Poor-Quality Data
    • Irrelevant Features
      • Feature Engineering
    • Testing
    • Overfitting the Data
      • Solutions
    • Underfitting the Data
      • Solutions
    • EXERCISES
    • SUMMARY
    • REFERENCES
  • CHAPTER 2
  • CLASSIFICATION
    • Installation
    • The MNIST
    • Measures of Performance
    • Confusion Matrix
    • Recall
    • Recall Tradeoff
    • ROC
    • Multi-class Classification
    • Training a Random Forest Classifier
    • Error Analysis
    • Multi-label Classifications
    • Multi-output Classification
    • EXERCISES
    • REFERENCES
  • CHAPTER 3
  • HOW TO TRAIN A MODEL
    • Linear Regression
    • Computational Complexity
    • Gradient Descent
    • Batch Gradient Descent
    • Stochastic Gradient Descent
    • Mini-Batch Gradient Descent
    • Polynomial Regression
    • Learning Curves
    • Regularized Linear Models
      • Ridge Regression
      • Lasso Regression
    • EXERCISES
    • SUMMARY
    • REFERENCES
  • Chapter 4
  • Different models combinations
    • Implementing a simple majority classifer
    • Combining different algorithms for classification with majority vote
    • Questions

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