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Comprehensive Reinforcement Learning library containing implementations from Labs 1-7

Project description

RL Labs Library

A comprehensive Python library containing reinforcement learning implementations from Labs 1-7. This library provides educational implementations of fundamental RL algorithms using Gymnasium environments.

Features

  • Lab 1: Basic agent-environment interaction with FrozenLake
  • Lab 2: GridWorld MDP implementation with transition probabilities
  • Lab 3: Markov Reward Processes and Monte Carlo estimation
  • Lab 4: Policy evaluation and value iteration algorithms
  • Lab 5: Policy improvement and policy iteration methods
  • Lab 6: Value iteration with convergence analysis
  • Lab 7: Temporal Difference learning (MC, TD(0), TD(λ))

Installation

pip install rl-labs

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