This foundational course on Q-Learning equips you with the essential knowledge to understand reinforcement learning concepts and apply them in real-world AI scenarios. Learn the fundamentals of Q-Learning, including Q-values, rewards, episodes, temporal difference, and the exploration vs. exploitation trade-off. Progress to applying Q-Learning by determining Q-values and guiding agent decision-making. Gain practical skills through step-by-step guided demos, where you’ll implement Q-Learning and see how agents optimize their actions in environments like robotics, gaming, and intelligent systems. Build the confidence to design adaptive AI models that learn and improve over time.

Q Learning in Reinforcement Training Basics

Q Learning in Reinforcement Training Basics

Instructor: Priyanka Mehta
Access provided by UNext Learning
Gain insight into a topic and learn the fundamentals.
Beginner level
Recommended experience
2 hours to complete
Flexible schedule
Learn at your own pace
What you'll learn
Grasp Q-Learning fundamentals and reinforcement learning concepts
Understand Q-values, rewards, episodes, and temporal difference
Balance exploration vs. exploitation in training AI agents
Implement Q-Learning models with hands-on demos for real-world use
Skills you'll gain
Details to know

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Assessments
6 assignments
Taught in English
Recently updated!
September 2025
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There are 2 modules in this course
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