garbled-circuit
PySyft
garbled-circuit | PySyft | |
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1 | 8 | |
74 | 9,581 | |
- | 0.4% | |
3.4 | 10.0 | |
7 months ago | 6 days ago | |
Python | Python | |
- | Apache License 2.0 |
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garbled-circuit
PySyft
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Day 1 : Daily Notes for #30DayOfFLCode
PySyft: An open-source library developed by OpenMined that provides tools for building secure, privacy-preserving federated learning systems using PyTorch. Link
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A Better Mastodon Client
https://github.com/OpenMined/PySyft - Federated Learning data science
Incentives are much harder but smart contracts can handle the tech part.
Going this route eventually you quickly have "quantum AI app store" and your system of government is a 12GB download. Can't even say if it's a good idea compared to e.g. anarcho-primitivism.
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Just about conspirancy theories... Can you say this guy isn't rigth?
Something that maybe can help keeping sensor specs secret while still getting critical information out: https://github.com/OpenMined/PySyft
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I made a YT video showing how to host your own super accurate (microsecond) network time (NTP) server using the PPS output of a $12 GPS module
Love this kind of project. To me this is just like https://github.com/open-quantum-safe/oqs-demos/ or https://github.com/OpenMined/PySyft or even k3s so often mentioned in this sub in the sense that I personally don't have a need for it. Yet I find it amazing that us, random curious geeks, have access to this kind of mind blowing technologies for basically free.
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Help on creating a Federated Recommender System
Or do I have to actually simulate the whole client server thing because thats how these frameworks do it - Flower and Pysyft .
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Integration test: Complexity of privacy-preserving bird call bio-sensor for distributed ecological monitoring?
Some of the technologies which could be integrated include differential privacy, distributed online machine learning, misinformation resilience and multi-party computation, all within the context of smart contracts and bioinformatics.
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Google Strikes Deal With Hospital Chain to Develop Healthcare Algorithms
I think this is how it will be done. Look up PySift for how we can extract high-level insights from private datasets while preserving granular privacy.
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Is it even possible to have a service as "intelligent" as Google while still being privacy respecting?
What you are talking about is privacy-focused fed ML. Google FLOC is actually trying to achieve something similar. If you are interested in building something for yourself, check this out. https://github.com/OpenMined/PySyft
What are some alternatives?
tf-encrypted - A Framework for Encrypted Machine Learning in TensorFlow
QuantumKatas - Tutorials and programming exercises for learning Q# and quantum computing
tandem - A maliciously secure two-party computation engine which is embeddable and accessible
Watermark-Removal-Pytorch - 🔥 CNN for Watermark Removal using Deep Image Prior with Pytorch 🔥.
garble-lang - Turing-Incomplete Programming Language for Multi-Party Computation with Garbled Circuits
AugLy - A data augmentations library for audio, image, text, and video.
Yao.jl - Extensible, Efficient Quantum Algorithm Design for Humans.
99-ML-Learning-Projects - A list of 99 machine learning projects for anyone interested to learn from coding and building projects
AIDungeon - Infinite adventures await!
fastai - The fastai deep learning library
openfl - An Open Framework for Federated Learning.
unix-history-repo - Continuous Unix commit history from 1970 until today