University of Alberta
Reinforcement Learning Specialization

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University of Alberta

Reinforcement Learning Specialization

Master the Concepts of Reinforcement Learning. Implement a complete RL solution and understand how to apply AI tools to solve real-world problems.

Adam White
Martha White

Instructors: Adam White

57,697 already enrolled

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4.8

(3,308 reviews)

Intermediate level

Recommended experience

2 months
at 10 hours a week
Flexible schedule
Learn at your own pace
Get in-depth knowledge of a subject
4.8

(3,308 reviews)

Intermediate level

Recommended experience

2 months
at 10 hours a week
Flexible schedule
Learn at your own pace

What you'll learn

  • Build a Reinforcement Learning system for sequential decision making.

  • Understand the space of RL algorithms (Temporal- Difference learning, Monte Carlo, Sarsa, Q-learning, Policy Gradients, Dyna, and more).

  • Understand how to formalize your task as a Reinforcement Learning problem, and how to begin implementing a solution.

  • Understand how RL fits under the broader umbrella of machine learning, and how it complements deep learning, supervised and unsupervised learning 

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Taught in English

Advance your subject-matter expertise

  • Learn in-demand skills from university and industry experts
  • Master a subject or tool with hands-on projects
  • Develop a deep understanding of key concepts
  • Earn a career certificate from University of Alberta
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Specialization - 4 course series

Fundamentals of Reinforcement Learning

Course 115 hours4.8 (2,832 ratings)

What you'll learn

  • Formalize problems as Markov Decision Processes

  • Understand basic exploration methods and the exploration / exploitation tradeoff

  • Understand value functions, as a general-purpose tool for optimal decision-making

  • Know how to implement dynamic programming as an efficient solution approach to an industrial control problem

Skills you'll gain

Category: Algorithms
Category: Function Approximation
Category: Markov Model
Category: Artificial Intelligence (AI)
Category: Intelligent Systems
Category: Applied Machine Learning
Category: Machine Learning
Category: Artificial Intelligence
Category: Reinforcement Learning

Sample-based Learning Methods

Course 222 hours4.8 (1,244 ratings)

What you'll learn

Skills you'll gain

Category: Artificial Intelligence and Machine Learning (AI/ML)
Category: Sampling (Statistics)
Category: Function Approximation
Category: Artificial Intelligence (AI)
Category: Probability Distribution
Category: Intelligent Systems
Category: Machine Learning Algorithms
Category: Machine Learning
Category: Statistical Methods
Category: Simulations
Category: Reinforcement Learning

Prediction and Control with Function Approximation

Course 321 hours4.8 (829 ratings)

What you'll learn

Skills you'll gain

Category: Deep Learning
Category: Artificial Neural Networks
Category: Pseudocode
Category: Function Approximation
Category: Supervised Learning
Category: Artificial Intelligence (AI)
Category: Feature Engineering
Category: Intelligent Systems
Category: Machine Learning
Category: Linear Algebra
Category: Reinforcement Learning

A Complete Reinforcement Learning System (Capstone)

Course 415 hours4.7 (635 ratings)

What you'll learn

Skills you'll gain

Category: Artificial Intelligence and Machine Learning (AI/ML)
Category: Algorithms
Category: Technical Writing
Category: Solution Architecture
Category: Performance Testing
Category: Intelligent Systems
Category: Machine Learning
Category: Simulations
Category: Reinforcement Learning
Category: Systems Development
Category: Artificial Neural Networks
Category: Function Approximation
Category: Markov Model
Category: Artificial Intelligence (AI)
Category: Applied Machine Learning
Category: Machine Learning Algorithms

Instructors

Adam White
University of Alberta
4 Courses103,838 learners

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