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BLOCKCHAIN-EMPOWERED CROWDSOURCED COMPUTING SYSTEM

机译:区块链拥挤的人群计算系统

摘要

In various embodiments, the present invention is directed to a decentralized and secure method for developing machine learning models using homomorphic encryption and blockchain smart contracts technology to realize a secure, decentralized system and privacy-preserving computing system incentivizes the sharing of private data or at least the sharing of resultant machine learning models from the analysis of private data. In various embodiments, the method uses a homomorphic encryption (HE)-based encryption interface designed to ensure the security and the privacy-preservation of the shared learning models, while minimizing the computation overhead for performing calculation on the encrypted domain and, at the same time, ensuring the accuracy of the quantitative verifications obtained by the verification contributors in the cipherspace.
机译:在各种实施例中,本发明针对一种用于使用同态加密和区块链智能合约技术来开发机器学习模型的去中心化和安全方法,以实现安全,去中心化的系统,并且隐私保护计算系统激励私有数据的共享或至少鼓励共享。通过分析私有数据共享结果机器学习模型。在各种实施例中,该方法使用基于同态加密(HE)的加密接口,该接口设计为确保共享学习模型的安全性和隐私保护,同时最小化用于在加密域上执行计算的计算开销,并且与此同时时间,以确保验证贡献者在密码空间中获得的定量验证的准确性。

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