MPCAuth: Multi-factor Authentication for Distributed-trust Systems

Sijun Tan, Weikeng Chen, Ryan Deng, R. A. Popa
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引用次数: 1

Abstract

Systems with distributed trust have attracted growing research attention and seen increasing industry adoptions. In these systems, critical secrets are distributed across N servers, and computations are performed privately using secure multi-party computation (SMPC). Authentication for these distributed-trust systems faces two challenges. The first challenge is ease-of-use. Namely, how can an authentication protocol maintain its user experience without sacrificing security? To avoid a central point of attack, a client needs to authenticate to each server separately. However, this would require the client to authenticate N times for each authentication factor, which greatly hampers usability. The second challenge is privacy, as the client’s sensitive profiles are now exposed to all N servers under different trust domains, which creates N times the attack surface for the profile data.We present MPCAuth, a multi-factor authentication system for distributed-trust applications that address both challenges. Our system enables a client to authenticate to N servers independently with the work of only one authentication. In addition, our system is profile hiding, meaning that the client’s authentication profiles such as her email username, phone number, passwords, and biometric features are not revealed unless all servers are compromised. We propose secure and practical protocols for an array of widely adopted authentication factors, including email passcodes, SMS messages, U2F, security questions/passwords, and biometrics. Our system finds practical applications in the space of cryptocurrency custody and collaborative machine learning, and benefits future adoptions of distributed-trust applications.
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MPCAuth:分布式信任系统的多因素身份验证
分布式信任系统吸引了越来越多的研究关注,并被越来越多的行业所采用。在这些系统中,关键机密分布在 N 台服务器上,并使用安全多方计算(SMPC)进行私密计算。这些分布式信任系统的身份验证面临两个挑战。第一个挑战是易用性。也就是说,认证协议如何才能在不牺牲安全性的前提下保持用户体验?为了避免中心攻击点,客户端需要分别对每个服务器进行身份验证。然而,这就要求客户端对每个认证因素进行 N 次认证,从而大大影响了可用性。第二个挑战是隐私问题,因为客户端的敏感档案现在暴露在不同信任域下的所有 N 台服务器上,这就为档案数据创造了 N 倍的攻击面。我们的系统使客户端只需进行一次身份验证,就能对 N 台服务器进行独立身份验证。此外,我们的系统还具有配置文件隐藏功能,也就是说,除非所有服务器都遭到破坏,否则客户端的身份验证配置文件(如电子邮件用户名、电话号码、密码和生物特征)不会泄露。我们为一系列广泛采用的认证因素提出了安全实用的协议,包括电子邮件密码、短信、U2F、安全问题/密码和生物识别。我们的系统可实际应用于加密货币保管和协作机器学习领域,并有利于未来分布式信任应用的采用。
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