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Machine Learning and AI Foundations: Value Estimations

Via LinkedIn Learning

LinkedIn Learning based on 281 ratings

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Overview

"Machine Learning and AI Foundations: Value Estimations" introduces learners to key concepts and techniques for estimating the value or expected outcomes of decisions within AI and machine learning frameworks. This course is essential for understanding how algorithms evaluate potential actions to optimize performance in dynamic and uncertain environments. You will explore fundamental methods such as expected value calculations, reward functions, and utility theory, which form the basis of decision-making models in AI. The course covers value estimation techniques in reinforcement learning,...

Syllabus

Introduction

  • Welcome
  • What you should know
  • Using the exercise files
  • Set up the development environment

1. What Is Machine Learning and Value Prediction?

  • What is machine learning?
  • Supervised machine learning for value prediction
  • Build a simple home value estimator
  • Find the best weights automatically
  • Cool uses of value prediction

2. An Overview of Building a Machine Learning System

  • Introduction to NumPy, scikit-learn, and pandas
  • Think in vectors: How to work with large data sets efficiently
  • The basic workflow for training a supervised machine learning model
  • Gradient boosting: A versatile machine learning algorithm

3. Training Data

  • Explore a home value data set
  • Standard conventions for naming training data
  • Decide how much data you need

4. Features

  • Feature engineering
  • Choose the best features for home value prediction
  • Use as few features as possible: The curse of dimensionality

5. Coding Our System

  • Prepare the features
  • Training vs. testing data
  • Train the value estimator
  • Measure accuracy with mean absolute error

6. Improving Our System

  • Overfitting and underfitting
  • The brute force solution: Grid search
  • Feature selection

7. Using the Estimator in a Real-World Program

  • Predict values for new data
  • Retrain the classifier with fresh data

Conclusion

  • Wrap-up
Machine Learning and AI Foundations: Value Estimations
Go to Class

via LinkedIn Learning

1 hour 5 minutes

Certificate Available

English

On-Demand

Instructor

Adam Geitgey

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