Reinforcement Learning with Python Explained for Beginners

Although introduced academically decades ago, the recent developments in the field of reinforcement learning have been phenomenal. Domains such as self-driving cars, natural language processing, he

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Last updated Fri, 28-Jul-2023
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Course overview

Although introduced academically decades ago, the recent developments in the field of reinforcement learning have been phenomenal. Domains such as self-driving cars, natural language processing, healthcare industry, online recommender systems, and so on have already seen how RL-based AI agents can bring tremendous gains.

This course will help you get started with reinforcement learning first by establishing the motivation for this field and then covering all the essential topics, such as Markov Decision Processes, policy and rewards, model-free learning, temporal difference learning, and so on.

Each topic is accompanied by exercises and complementing analysis to help you gain practical and tangible coding skills.

By the end of this course, not only will you have gained the necessary understanding to implement RL in your projects but also implemented an actual Frozenlake project using the OpenAI Gym toolkit.

What will i learn?

  • Understand the motivation for reinforcement learning
  • Understand all the elements of a Markov Decision Process
  • Learn how to model uncertainty of the environments
  • Solve Markov Decision Processes
  • Implement temporal difference learning and Q-learning in Python
  • Execute the Frozenlake project using the OpenAI Gym toolkit
Requirements
Curriculum for this course
1 Lessons 9 hrs 7 mins
Reinforcement Learning with Python Explained for Beginners
1 Lessons 09:07:00 Hours
  • Reinforcement Learning with Python Explained for Beginners
    Preview 09:07:00
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Includes:
  • 9 hrs 7 mins On demand videos
  • 1 Lessons
  • Access on mobile and tv
  • Full lifetime access