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предобученные модели

  • Metamorph Labs: AI/ML platform for resources and collaboration.
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    What is Metamorph Labs?
    Metamorph Labs is a dedicated platform for the vibrant AI/ML community. It offers a variety of resources, including datasets, pre-trained models, research papers, AI tools, and tutorials. Designed to empower developers, researchers, and AI enthusiasts, the platform facilitates knowledge sharing, product development, and innovative solutions in AI/ML. Metamorph Labs aims to build a thriving AI/ML ecosystem that supports every individual, from novice to expert, in harnessing the power of artificial intelligence.
  • A reinforcement learning framework enabling autonomous robots to navigate and avoid collisions in multi-agent environments.
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    What is RL Collision Avoidance?
    RL Collision Avoidance provides a complete pipeline for developing, training, and deploying multi-robot collision avoidance policies. It offers a set of Gym-compatible simulation scenarios where agents learn collision-free navigation through reinforcement learning algorithms. Users can customize environment parameters, leverage GPU acceleration for faster training, and export learned policies. The framework also integrates with ROS for real-world testing, supports pre-trained models for immediate evaluation, and features tools for visualizing agent trajectories and performance metrics.
  • An RL-based AI agent that learns optimal betting strategies to play heads-up limit Texas Hold'em poker efficiently.
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    What is TexasHoldemAgent?
    TexasHoldemAgent provides a modular environment built on Python to train, evaluate, and deploy an AI-powered poker player for heads-up limit Texas Hold’em. It integrates a custom simulation engine with deep reinforcement learning algorithms, including DQN, for iterative policy improvement. Key capabilities include hand state encoding, action space definition (fold, call, raise), reward shaping, and real-time decision evaluation. Users can customize learning parameters, leverage CPU/GPU acceleration, monitor training progress, and load or save trained models. The framework supports batch simulation to test various strategies, generate performance metrics, and visualize win rates, empowering researchers, developers, and poker enthusiasts to experiment with AI-driven gameplay strategies.
  • Daytona is an AI agent platform that enables developers to build, orchestrate, and deploy autonomous agents for business workflows.
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    What is Daytona?
    Daytona empowers organizations to rapidly create, orchestrate, and manage autonomous AI agents that execute complex workflows end to end. Through its drag-and-drop workflow designer and catalog of pre-trained models, users can build agents for customer service, sales outreach, content generation, and data analysis. Daytona’s API connectors integrate with CRMs, databases, and web services, while its SDK and CLI allow custom function extensions. Agents can be tested in sandbox and deployed on scalable cloud or self-hosted environments. With built-in security, logging, and a real-time dashboard, teams gain visibility and control over agent performance.
  • TorchVision simplifies computer vision tasks with datasets, models, and transformations.
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    What is PyTorch Vision (TorchVision)?
    TorchVision is a package in PyTorch designed to ease the process of developing computer vision applications. It offers a collection of popular datasets such as ImageNet and COCO, along with a variety of pre-trained models that can be easily integrated into projects. Transformations for image preprocessing and augmentation are also included, streamlining the preparation of data for training deep learning models. By providing these resources, TorchVision allows developers to focus on model architecture and training without the need to create every component from scratch.
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