jason-RL

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Jason-RL is an open-source extension for the Jason AgentSpeak platform, embedding reinforcement learning algorithms like Q-learning and SARSA into BDI agents. It empowers agents to autonomously learn optimal behaviors through interaction and reward feedback. Developers can seamlessly integrate RL modules into agent plans, customize reward functions, and run simulations to refine agent policies for dynamic, multi-agent environments.
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May 11 2025
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jason-RL

jason-RL

0
0
jason-RL
Jason-RL is an open-source extension for the Jason AgentSpeak platform, embedding reinforcement learning algorithms like Q-learning and SARSA into BDI agents. It empowers agents to autonomously learn optimal behaviors through interaction and reward feedback. Developers can seamlessly integrate RL modules into agent plans, customize reward functions, and run simulations to refine agent policies for dynamic, multi-agent environments.
Added on:
Social & Email:
Platform:
May 11 2025
--
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What is jason-RL?

jason-RL adds a reinforcement learning layer to the Jason multi-agent framework, allowing AgentSpeak BDI agents to learn action-selection policies via reward feedback. It implements Q-learning and SARSA algorithms, supports configuration of learning parameters (learning rate, discount factor, exploration strategy), and logs training metrics. By defining reward functions in agent plans and running simulations, developers can observe agents improve decision making over time, adapting to changing environments without manual policy coding.

Who will use jason-RL?

  • AI researchers
  • Multi-agent system developers
  • Academic educators
  • AI students

How to use the jason-RL?

  • Step1: Install Java (8+) and the Jason interpreter.
  • Step2: Clone the jason-RL GitHub repository.
  • Step3: Add the jason-RL library JAR to your Jason project classpath.
  • Step4: Define reinforcement learning settings and reward functions in AgentSpeak plans.
  • Step5: Execute your Jason simulation to train agents with Q-learning or SARSA.
  • Step6: Monitor learning progress via logs and adjust parameters as needed.

Platform

  • mac
  • windows
  • linux

jason-RL's Core Features & Benefits

The Core Features

  • Q-learning integration
  • SARSA integration
  • Configurable learning parameters
  • Reward function support
  • Training metric logging

The Benefits

  • Enables autonomous agent adaptation
  • Reduces manual policy design
  • Supports dynamic multi-agent scenarios
  • Fully open-source and extensible

jason-RL's Main Use Cases & Applications

  • Adaptive navigation in robotics simulation
  • Game AI agents learning strategies
  • Dynamic resource allocation in MAS
  • Autonomous scheduling agents

FAQs of jason-RL

jason-RL Company Information

jason-RL Reviews

5/5
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jason-RL's Main Competitors and alternatives?

  • BDIAgentRL
  • JADE-RL plugin
  • OpenAI Gym
  • RLlib

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