Showing 5 open source projects for "process control kill"

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  • 1
    AxonHub

    AxonHub

    Use any SDK to call 100+ LLMs

    AxonHub is an open-source AI gateway platform designed to simplify the process of integrating and switching between different large language model providers. The system acts as a compatibility layer that allows developers to use the same SDK interface while routing requests to various AI services behind the scenes. Instead of rewriting code when switching providers such as OpenAI or Anthropic, developers can simply change configuration settings within the gateway. AxonHub translates requests...
    Downloads: 47 This Week
    Last Update:
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  • 2
    Flexpilot IDE

    Flexpilot IDE

    Open-Source AI Native IDE

    ...Because it is open source, developers can modify the IDE, extend its capabilities, or integrate new AI models according to their workflow needs. The project emphasizes transparency, community collaboration, and developer control over how AI tools are integrated into the software development process.
    Downloads: 2 This Week
    Last Update:
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  • 3
    CSGHub

    CSGHub

    CSGHub is a brand-new open-source platform for managing LLMs

    CSGHub is an open-source framework designed for collaborative scientific research and content generation. It enables researchers to utilize AI-driven tools for literature review, hypothesis generation, and automated writing assistance, streamlining the scientific discovery process.
    Downloads: 0 This Week
    Last Update:
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  • 4
    mergekit

    mergekit

    Tools for merging pretrained large language models

    ...This approach allows researchers to combine specialized models into a more versatile system capable of performing multiple tasks. mergekit implements a variety of merging algorithms and strategies that control how model parameters are blended together during the merging process. The library is designed to operate efficiently even in environments with limited hardware resources by using memory-efficient processing methods that can run entirely on CPUs. It also provides configuration-driven workflows that allow users to experiment with different merging strategies without modifying source code.
    Downloads: 0 This Week
    Last Update:
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  • 5
    local-llm

    local-llm

    Run LLMs locally on Cloud Workstations

    ...It focuses on making generative AI development more accessible by leveraging quantized models and CPU-based execution, eliminating the dependency on expensive GPU infrastructure. The repository includes tools, Docker configurations, and command-line utilities that simplify the process of downloading, running, and interacting with language models directly on local or cloud-based workstations. This approach improves data privacy and control, as all inference can be performed locally without sending sensitive information to external APIs. It also integrates seamlessly with Google Cloud services, allowing developers to build and test AI-powered applications within the broader cloud ecosystem.
    Downloads: 3 This Week
    Last Update:
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