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模擬平台

  • Open-source Python framework to build and run autonomous AI agents in customizable multi-agent simulation environments.
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    What is Aeiva?
    Aeiva is a developer-first platform that enables you to create, deploy, and evaluate autonomous AI agents within flexible simulation environments. It features a plugin-based engine for environment definition, intuitive APIs to customize agent decision loops, and built-in metrics collection for performance analysis. The framework supports integration with OpenAI Gym, PyTorch, and TensorFlow, plus real-time web UI for monitoring live simulations. Aeiva’s benchmarking tools let you organize agent tournaments, record results, and visualize agent behaviors to fine-tune strategies and accelerate multi-agent AI research.
    Aeiva Core Features
    • Modular environment and agent API
    • Integration with OpenAI Gym, PyTorch, TensorFlow
    • Real-time web dashboard for visualization
    • Built-in tournament benchmarking tools
    • Extensible plugin architecture
    • Automated metrics collection and logging
    Aeiva Pro & Cons

    The Cons

    Some features and capabilities are still marked as 'to be updated', indicating under development
    No direct pricing or commercial offering details available
    Lacks mobile or app store presence

    The Pros

    Supports multimodal input processing (text, image, audio, video)
    Focuses on augmenting human intelligence
    Emphasizes safety, controllability, and interpretability in AI
    Open source under Apache 2.0 license
    Targets acceleration of scientific discovery in specialized domains
    Supports multi-agent AI community and self-evolving AI societies
    Aeiva Pricing
    Has free planNo
    Free trial details
    Pricing model
    Is credit card requiredNo
    Has lifetime planNo
    Billing frequency
    For the latest prices, please visit: https://chatsci.github.io/Aeiva/
  • A multi-agent reinforcement learning environment simulating vacuum cleaning robots collaboratively navigating and cleaning dynamic grid-based scenarios.
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    What is VacuumWorld?
    VacuumWorld is an open-source simulation platform designed to facilitate the development and evaluation of multi-agent reinforcement learning algorithms. It provides grid-based environments where virtual vacuum cleaner agents operate to detect and remove dirt patches across customizable layouts. Users can adjust parameters such as grid size, dirt distribution, stochastic movement noise, and reward structures to model diverse scenarios. The framework includes built-in support for agent communication protocols, real-time visualization dashboards, and logging utilities for performance tracking. With simple Python APIs, researchers can quickly integrate their RL algorithms, compare cooperative or competitive strategies, and conduct reproducible experiments, making VacuumWorld ideal for academic research and teaching.
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