An approach to experimental photonic quantum digital signatures in fiber

R. Donaldson, R. Collins, V. Dunjko, Partick J. Clarke, E. Andersson, J. Jeffers, G. Buller
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Abstract

As society becomes more reliant on electronic communication and transactions, ensuring the security of these interactions becomes more important. Digital signatures are a widely used form of cryptography which allows parties to certify the origins of their communications, meaning that one party, a sender, can send information to other parties in such a way that messages cannot be forged. In addition, messages are transferrable, meaning that a recipient who accepts a message as genuine can be sure that if it is forwarded to another recipient, it will again be accepted as genuine. The classical digital signature schemes currently employed typically rely on computational complexity for security. Quantum digital signatures offer the potential for increased security. In our system, quantum signature states are passed through a network of polarization maintaining fiber interferometers (a multiport) to ensure that recipients will not disagree on the validity of a message. These signatures are encoded in the phase of photonic coherent states and the choice of photon number, signature length and number of possible phase states affects the level of security possible by this approach. We will give a brief introduction into quantum digital signatures and present results from our experimental demonstration system.
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光纤中光子量子数字签名的实验方法
随着社会越来越依赖电子通信和交易,确保这些互动的安全变得更加重要。数字签名是一种广泛使用的密码学形式,它允许各方证明其通信的来源,这意味着一方(发送方)可以以无法伪造的方式向其他各方发送信息。此外,消息是可转移的,这意味着接受消息为真实消息的收件人可以确保,如果将消息转发给另一个收件人,它将再次被接受为真实消息。目前采用的经典数字签名方案通常依赖于计算复杂度来保证安全性。量子数字签名提供了提高安全性的潜力。在我们的系统中,量子签名状态通过保持偏振的光纤干涉仪(多端口)网络传递,以确保接收方不会对信息的有效性产生分歧。这些签名在光子相干态的相位中编码,光子数、签名长度和可能的相位数的选择影响了这种方法可能的安全级别。我们将简要介绍量子数字签名,并介绍我们的实验演示系统的结果。
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