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The project covers various aspects, from machine learning advancements to decentralized file sharing, and aims to transform the accessibility and management of files while contributing to the progress of artificial intelligence.

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Banbury-inc/NeuraNet

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🤖 Empowering Decentralized AI Advancement through Personal Device Networks 🤖

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NeuraNet combines the concepts of web 3.0 file services and machine learning. The overall goal is to create a service that enables users to train/use/maintain artificial inteligence through a decentralized file sharing network. This could be an incredibly powerful and useful tool, as developing large language models are oftentimes limited to high net worth corporations. Our goal is to eliminate the necessity of cloud computing by empowering individuals with the tools necessary to seamlessly connect all of their devices. By allowing all of our devices to actively participate in the advancement on Artifical Intelligence, we can create tools beyond our imagination.


NeuraNet serves as the decentralized file sharing network. This tool transforms personal and corporate networks into a decentralized cloud storage system, eliminating reliance on traditional cloud providers and offering unparalleled control over data security, compliance, and sovereignty. Our revolutionary concept aims to transform every household into a personal data center, leveraging the unused potential of existing devices for cloud storage needs. This addresses the common issue of limited storage capacity on individual devices and traditional cloud services. We have just released a beta version of the CLI tool. This serves as a prototype to the file sharing network. From here, you can connect devices, upload files, and download files without the use of a cloud service like Google Drive. Click here for more information on how to get started: https://website2-v3xlkt54dq-uc.a.run.app/

NeuraNet Features

  • Seamless connectivity of devices, regardless of what network they are on
  • Predict device downtime
  • predict future wifi speed
  • GPU, CPU, RAM predictions
  • Predicting the popularity and demand for specific content based on historical usage patterns, user preferences, and content characteristics.
  • Anticipating user requests and pre-fetching or caching content to reduce latency and improve content delivery speed.
  • predicit optimal allocation of files based on the values above

Artificial Intelligence

Incorporating AI into the app elevates its functionality, offering users intelligent features like content analysis, categorization, search optimization, and personalized recommendations. At the core of this integration, each user's device hosts a lightweight AI model, such as a Language Model, tasked with local data analysis and processing. Leveraging federated learning techniques, these models collaboratively train across multiple devices, ensuring data privacy and security are upheld. Crucially, AI models dynamically evolve through user interactions and feedback, steadily enhancing their performance and relevance over time. This iterative learning process not only refines the app's capabilities but also tailors its responses to better suit individual user needs, ultimately enriching the overall user experience.

To Start Developing NeuraNet

NeuraNet is developed by Banbury and by users like you. We welcome both pull requests and issues on Github. Want to get paid to work on openpilot? Banbury is hiring and offers lots of bounties for external contributors.

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