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Privacy-Preserving Collaborative Deep Learning Using Verifiable Multi-Secret Sharing Scheme

机译:使用可验证的多机密共享方案保护隐私的协作深度学习

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Collaborative deep learning is an approach used to handle the amount of training data needed to build a better deep learning model. In collaborative deep learning, the central server collects user data and run the deep learning algorithm to get more accurate models. However, centralized training data collection can cause serious like privacy leakage problems and damage to the integrity of training data. In this paper, we introduce the privacy-preserving collaborative deep learning model using verifiable (k, t, n) multi-secret sharing based on the Elliptic Curve Diffie Hellman and SHA3-256 as a hash function. Where all training data will be formed into n shares using a session key generated from the private key and public key Elliptic Curve Diffie Hellman to protect the privacy and avoid all training data using SHA3-256 for the verification process before sending to the server. The test results show the integrity of damaged training data and colluding participants can be verified. In addition, the accuracy of the model produced using or without using Verifiable Multi-Secret Sharing Scheme has the same value. Therefore proposed model can protect the privacy and integrity of training data and maintain the accuracy of the deep learning model.
机译:协作深度学习是一种用于处理构建更好的深度学习模型所需的训练数据量的方法。在协作式深度学习中,中央服务器收集用户数据并运行深度学习算法以获得更准确的模型。但是,集中的训练数据收集会导致严重的隐私泄露问题,并破坏训练数据的完整性。在本文中,我们介绍了基于椭圆曲线Diffie Hellman和SHA3-256作为哈希函数的可验证的(k,t,n)多秘密共享的隐私保护协作深度学习模型。使用私钥和公钥椭圆曲线Diffie Hellman生成的会话密钥将所有训练数据形成n个共享,以保护隐私并避免在将验证码发送到服务器之前使用SHA3-256进行验证的所有训练数据。测试结果表明损坏的训练数据的完整性,并且可以验证合谋参与者。此外,使用或不使用可验证的多秘密共享方案生成的模型的准确性具有相同的价值。因此,提出的模型可以保护训练数据的隐私和完整性,并保持深度学习模型的准确性。

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