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Robust Protocols for Securely Expanding Randomness and Distributing Keys Using Untrusted Quantum Devices

机译:使用不受信任的量子设备安全扩展随机性和分发密钥的可靠协议

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Randomness is a vital resource for modern-day information processing, especially for cryptography. A wide range of applications critically rely on abundant, high-quality random numbers generated securely. Here, we show how to expand a random seed at an exponential rate without trusting the underlying quantum devices. Our approach is secure against the most general adversaries, and has the following new features: cryptographic level of security, tolerating a constant level of imprecision in devices, requiring only unit size quantum memory (for each device component) in an honest implementation, and allowing a large natural class of constructions for the protocol. In conjunction with a recent work by Chung et al. [2014], it also leads to robust unbounded expansion using just 2 multipart devices. When adapted for distributing cryptographic keys, our method achieves, for the first time, exponential expansion combined with cryptographic security and noise tolerance. The proof proceeds by showing that the Renyi divergence of the outputs of the protocol (for a specific bounding operator) decreases linearly as the protocol iterates. At the heart of the proof are a new uncertainty principle on quantum measurements and a method for simulating trusted measurements with untrusted devices.
机译:随机性是现代信息处理(尤其是密码学)的重要资源。广泛的应用严重依赖安全地生成的大量高质量随机数。在这里,我们展示了如何在不信任底层量子设备的情况下以指数速率扩展随机种子。我们的方法可抵御最一般的对手,并具有以下新功能:加密级别的安全性,设备中恒定的不精确度,在诚实的实现中仅需要单位大小的量子内存(用于每个设备组件)以及允许该协议具有很大的自然结构。结合Chung等人的最新工作。 [2014],它还导致仅使用2个多部分设备即可实现强大的无限扩展。当适用于分配加密密钥时,我们的方法首次实现了指数扩展以及加密安全性和噪声容限。证明通过证明协议的输出(对于特定的边界运算符)的输出仁义散度随协议迭代而线性减小而进行。证明的核心是有关量子测量的新不确定性原理以及一种使用不可信设备模拟可信测量的方法。

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