| Management number | 233423576 | Release Date | 2026/06/27 | List Price | $1.04 | Model Number | 233423576 | ||
|---|---|---|---|---|---|---|---|---|---|
| Category | |||||||||
How do you teach an AI to make smart decisions on its own? You reward it.Reinforcement Learning Simplified is a beginner-friendly introduction to one of the most fascinating fields in artificial intelligence—where machines learn not from data alone, but from experience, feedback, and trial and error. From training agents to play games, navigate environments, or optimize real-world systems, this book explains core concepts in plain language with practical Python examples.No heavy math or academic jargon. Just the foundations you need to understand how reinforcement learning works—and how to build and experiment with your own agents.Inside, you'll learn how to:Understand key ideas like agents, environments, rewards, and policiesBuild simple RL simulations from scratch in PythonExplore core algorithms like Q-learning, SARSA, and Deep Q-Networks (DQN)Visualize how agents learn over timeApply RL to small games, grid environments, and decision-making tasksUse libraries like gym, stable-baselines3, and PyTorch for hands-on developmentUnderstand the role of exploration vs. exploitationTune hyperparameters and avoid common training pitfallsWhether you're a student, hobbyist, or aspiring AI developer, Reinforcement Learning Simplified is the perfect first step into a field that’s powering the next generation of intelligent systems—from robotics to self-driving cars to recommendation engines. Read more
| ASIN | B0FH9318SR |
|---|---|
| XRay | Not Enabled |
| Language | English |
| File size | 690 KB |
| Page Flip | Enabled |
| Word Wise | Not Enabled |
| Print length | 142 pages |
| Accessibility | Learn more |
| Screen Reader | Supported |
| Publication date | July 10, 2025 |
| Enhanced typesetting | Enabled |
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