Reinforcement Learning: From Q-Learning to Deep Policy Gradients

Build a solid foundation in reinforcement learning by implementing classic Q-learning, Deep Q-Networks, and policy gradient algorithms using modern Python libraries.

⏱ 42 min 📚 7 lezioni 🎧 Versione audio

Informazioni sul corso

Reinforcement learning is the driving force behind modern decision-making AI, from game-playing agents to autonomous systems. Understanding how agents learn through trial and error is crucial for anyone entering the field of advanced artificial intelligence. This text-based course guides you from the absolute basics of decision-making frameworks to implementing powerful deep reinforcement learning algorithms. You will learn how to model environments, define rewards, and train agents that can adapt and optimize their behavior over time. What you'll learn: - Understand the core mathematical foundations of Markov Decision Processes and reward structures - Implement classic tabular Q-learning algorithms to solve grid-world decision problems - Transition to deep reinforcement learning by building Deep Q-Networks with neural networks - Apply policy gradient methods including REINFORCE and understand actor-critic architectures - Configure standardized environments using the modern Gymnasium API for training agents - Explore contemporary applications of reinforcement learning, including the concepts behind RLHF We begin with essential terminology, state-action-reward loops, and dynamic programming. From there, you will progress through step-by-step written explanations and code implementations of both value-based and policy-based deep learning methods. This course is designed for beginners in machine learning who want to specialize in reinforcement learning. A basic familiarity with Python and neural network concepts is recommended, but no prior reinforcement learning experience is required. Start reading today to master the algorithms that power modern adaptive AI.

Cosa otterrai

  • 📜 Certificato di completamento
    Aggiungilo al tuo profilo LinkedIn
  • 💬 Personal AI tutor
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  • 🎧 Versione audio inclusa
    Impara ovunque, senza schermo
  • ♾️ Accesso a vita
    Torna quando vuoi, senza scadenza
  • 📱 Telefono o computer
    Funziona ovunque, su qualsiasi dispositivo
  • 💸 Rimborso entro 30 giorni
    Senza domande
  • Breve e mirato
    42 min di contenuto pratico

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Cosa serve per seguire questo corso? +

Basta un telefono o un computer con internet. Niente installazioni, nessun hardware speciale.

Come si paga? +

Con carta via Stripe o con criptovaluta. Non conserviamo i dati della carta — Stripe li gestisce in sicurezza.

Posso ottenere un rimborso? +

Sì — rimborso completo entro 30 giorni, senza domande.

Per quanto tempo avrò accesso? +

Per sempre. Una volta acquistato, il corso è tuo e puoi rivederlo quando vuoi.

Riceverò un certificato? +

Sì. Al completamento riceverai un certificato da aggiungere al tuo profilo LinkedIn.

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