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Randomly Rotate Qubits, Compute and Reverse for Weak Measurements Resilient QKD and Securing Entanglement (Extended Abstract)

机译:随机旋转Qubits,计算和反向弱测量弹性QKD和保护纠缠(扩展摘要)

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Homomorphic encryption (HE) schemes enable the process-ing of encrypted data and may be used by a user to outsource storage and computations to an untrusted server. A plethora of HE schemes has been suggested in the past four decades, based on various assumptions, which achieve different attributes. In this work, we assume that the user and server are quantum computers and look for HE schemes of classical data. We set a high bar of requirements and ask what can be achieved under these requirements. Namely, we look for HE schemes which are efficient, information-theoretically secure, perfectly correct, and which support homomorphic operations in a fully compact and non-interactive way. Fully compact means that decryption costs O(l) time and space. We suggest an encryption scheme based on random bases and discuss the homomorphic properties of that scheme. The main advantage of our scheme is providing better security in the face of weak measurements (WM). Measurements of this kind enable collecting partial information on a quantum state while only slightly disturbing the state. We suggest here a novel QKD scheme based on our encryption scheme, which is resilient against WM-based attacks.We bring up a new concept we call securing entanglement. We look at entangled systems of qubits as a resource used for carrying out quan-tum computations and show how our scheme may be used to guarantee that an entangled system can be used only by its rightful owners. To the best of our knowledge, this concept has not been discussed in previous literature.
机译:同性恋加密(HE)方案能够加密数据的处理,并且可以由用户使用将存储和计算外包给不受信任的服务器。根据各种假设的过去四十年来说,在过去的四十年中提出了一项计划,这是达到不同的属性的各种假设。在这项工作中,我们假设用户和服务器是量子计算机,并寻找古典数据的方案。我们设定了一个高级要求,并询问这些要求可以实现什么。即,我们寻找他的方案,这些计划是有效的,信息理论上是安全的,完全正确的,并且以完全紧凑和非交互式方式支持同性恋操作。完全紧凑意味着解密成本为O(l)时间和空间。我们建议基于随机碱基的加密方案,并讨论该方案的同态性。我们方案的主要优点在于面对弱测量(WM)提供更好的安全性。这种测量能够在量子状态上收集部分信息,同时仅略微扰乱状态。我们在这里建议这是一种基于我们的加密方案的新型QKD方案,这是对基于WM的攻击有所困难。我们提出了一个我们称之为保护纠缠的新概念。我们将Qubits的纠缠系统视为用于执行Quan-Tum计算的资源,并展示我们的方案如何用于保证纠缠系统只能由其合法的所有者使用。据我们所知,这一概念尚未在以前的文献中讨论。

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