The goal of this project is to address the problem of secure delegation of quantum computations on the "quantum cloud". With recent progress in the development of experimental quantum computing devices, we can imagine a medium-term future where large-scale quantum computers are available for rent through a classically accessible cloud. This situation suggests a fundamental challenge: given that such quantum device’s behavior cannot be classically predicted—how can it be benchmarked, and can its computation be trusted?
Traditional methods, such as state and process tomography, are inapplicable due not only to the scale of the systems that need to be tested but also major sources of experimental noise that affect even the highest quality implementations. Due to their fundamental nature these obstacles will only grow with time. In this project we aim to develop methods by which a secure and trustworthy interaction with a powerful quantum computer can be established, even in situations where the quantum computer is not perfect, ie. it may be affected by noise or even behave maliciously. Ultimately our work will lead to concrete protocols that can be used to remotely, securely benchmark and verify the behavior of a quantum computer. In the shorter term, we expect our research to uncover and leverage fundamental properties of quantum information (for example, understanding how the no-cloning principle can be turned from a limitation into an asset bounding the capabilities of malicious quantum devices) as well as develop new techniques in computer science to efficiently and securely interact between classical and quantum devices.
To achieve our results we we draw on a variety of areas across quantum information and computation and classical computer science. In particular we make use of and further develop the framework of interactive proofs in quantum complexity theory, and similarly make use of techniques from quantum cryptography, such as quantum fully homomorphic encryption, while developing new cryptographic principles (such as the notion of a test of quantumness).