从孤立的量子位构建一次性存储器:(扩展摘要)

Yi-Kai Liu
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引用次数: 9

摘要

一次性存储器(OTM)是简单的防篡改加密设备,可用于实现一次性程序,这是一种非常通用的软件保护和程序混淆形式。本文研究了利用量子力学器件构建OTM的可能性。已知OTM不可能存在于全量子世界或全经典世界中。相反,我们提出了一种基于孤立量子比特的新模型-只能通过局部操作和经典通信(LOCC)访问的量子比特。该模型将量子资源(单量子位测量)与经典限制(量子位之间的通信)相结合,并且可以使用当前技术实现,例如金刚石中的氮空位中心。在这个模型中,我们构建的OTM在信息理论上是安全的,可以对抗使用2个结果测量的单次LOCC对手。我们的结构类似于Wiesner的量子共轭编码的旧思想,使用随机纠错码实现;我们的安全性证明使用熵链来约束一个合适的经验过程的极值。此外,我们推测我们的随机码可以被一些有效可解码的代码所取代,以获得计算效率高的OTM,这些OTM对计算有限的LOCC对手是安全的。此外,我们构建了数据隐藏状态,允许LOCC发送方将(n- o(1))位的消息编码为n个量子位,使得单次LOCC接收方最多可以提取消息的一半,而一般量子接收方可以提取整个消息。
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Building one-time memories from isolated qubits: (extended abstract)
One-time memories (OTM's) are simple tamper-resistant cryptographic devices, which can be used to implement one-time programs, a very general form of software protection and program obfuscation. Here we investigate the possibility of building OTM's using quantum mechanical devices. It is known that OTM's cannot exist in a fully-quantum world or in a fully-classical world. Instead, we propose a new model based on isolated qubits - qubits that can only be accessed using local operations and classical communication (LOCC). This model combines a quantum resource (single-qubit measurements) with a classical restriction (on communication between qubits), and can be implemented using current technologies, such as nitrogen vacancy centers in diamond. In this model, we construct OTM's that are information-theoretically secure against one-pass LOCC adversaries that use 2-outcome measurements. Our construction resembles Wiesner's old idea of quantum conjugate coding, implemented using random error-correcting codes; our proof of security uses entropy chaining to bound the supremum of a suitable empirical process. In addition, we conjecture that our random codes can be replaced by some class of efficiently-decodable codes, to get computationally-efficient OTM's that are secure against computationally-bounded LOCC adversaries. In addition, we construct data-hiding states, which allow an LOCC sender to encode an (n-O(1))-bit messsage into n qubits, such that at most half of the message can be extracted by a one-pass LOCC receiver, but the whole message can be extracted by a general quantum receiver.
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