On the connection between quantum pseudorandomness and quantum hardware assumptions
Author(s) -
Mina Doosti,
Niraj Kumar,
Elham Kashefi,
Kaushik Chakraborty
Publication year - 2022
Publication title -
quantum science and technology
Language(s) - English
Resource type - Journals
ISSN - 2058-9565
DOI - 10.1088/2058-9565/ac66fb
Subject(s) - pseudorandomness , pseudorandom number generator , computer science , construct (python library) , quantum , connection (principal bundle) , theoretical computer science , protocol (science) , set (abstract data type) , quantum computer , algorithm , discrete mathematics , computer engineering , mathematics , computer network , quantum mechanics , physics , programming language , medicine , geometry , alternative medicine , pathology
This paper, for the first time, addresses the questions related to the connections between quantum pseudorandomness and quantum hardware assumptions, specifically quantum physical unclonable functions (qPUFs). Our results show that efficient pseudorandom quantum states (PRS) are sufficient to construct the challenge set for universally unforgeable qPUFs, improving the previous existing constructions based on the Haar-random states. We also show that both the qPUFs and the quantum pseudorandom unitaries (PRUs) can be constructed from each other, providing new ways to obtain PRS from the hardware assumptions. Moreover, we provide a sufficient condition (in terms of the diamond norm) that a set of unitaries should have to be a PRU in order to construct a universally unforgeable qPUF, giving yet another novel insight into the properties of the PRUs. Later, as an application of our results, we show that the efficiency of an existing qPUF-based client–server identification protocol can be improved without losing the security requirements of the protocol.
Accelerating Research
Robert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom
Address
John Eccles HouseRobert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom