Q Learning in Reinforcement Training Basics

129 students enrolled
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. By the end of this course, you will be able to: Understand Q-Learning: Explain its role in reinforcement learning and decision-making Explore Key Components: Q-values, rewards, episodes, and temporal difference Apply Strategies: Balance exploration vs. exploitation for optimal agent behavior Implement Algorithms: Build and test Q-Learning models with guided demos Design Intelligent Systems: Apply Q-Learning in robotics, gaming, and AI projects Ideal for developers, analysts, and professionals seeking practical reinforcement learning skills.
CERTIFICATEKatılım Sertifikası
FORMAT100% Online
DURATIONSelf-paced

What you'll learn

  • Reinforcement Learning
  • Agentic systems
  • Model Training

Details

  • ProviderSimplilearn
  • TypeCourse
  • CategoryData Science & AI
  • LanguageEnglish

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Ramazan Bölükbaşı
Çok yoğun programı olan öğrenciler için büyük bir fırsat. Bir şeylerin gelişmesi değişmesi için çabalamalıyız.
Melis Gülsar
Hızlı desteği ve üst düzey hizmeti ile Campus Online ve Sosyal Medya Sertifika Programı hizmeti sağlayan Adnan Menderes Üniversitesine sonsuz teşekkürlerimi sunuyorum.
Nazif Bayram
$49
CampusOnline Assistant
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