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COMP 442See offeringsHas prerequisites
Reinforcement Learning
CT Score
1500
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COMP 330 Description: This course introduces students to reinforcement learning (RL), a general and impactful machine learning paradigm for solving sequential decision-making problems and designing autonomous agents. The course will cover both classical and recent algorithms for reinforcement learning (including deep RL) and imitation learning (including inverse RL). Through the assignments and final project, students will get hands-on experience in applying reinforcement learning algorithms to solve problems inspired by real-world applications. The course will conclude with an overview of open problems and ongoing research in reinforcement learning. Graduate/Undergraduate Equivalency: COMP 552→COMP 442→unlocks 0 courses
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