<?xml version="1.0" encoding="utf-8" standalone="yes"?><rss version="2.0" xmlns:atom="http://www.w3.org/2005/Atom"><channel><title>Theodoros Kapourniotis | LIP6 - Équipe QI</title><link>https://qi.lip6.fr/fr/people/theodoros-kapourniotis/</link><atom:link href="https://qi.lip6.fr/fr/people/theodoros-kapourniotis/index.xml" rel="self" type="application/rss+xml"/><description>Theodoros Kapourniotis</description><generator>Hugo Blox Builder (https://hugoblox.com)</generator><language>fr</language><copyright>© 2022 LIP6 Quantum Information Team</copyright><lastBuildDate>Sun, 24 Nov 2024 00:00:00 +0000</lastBuildDate><image><url>https://qi.lip6.fr/media/icon_hu_bdeccd9e706ea09d.png</url><title>Theodoros Kapourniotis</title><link>https://qi.lip6.fr/fr/people/theodoros-kapourniotis/</link></image><item><title>Asymmetric Quantum Secure Multi-Party Computation With Weak Clients Against Dishonest Majority</title><link>https://qi.lip6.fr/fr/publication/4800472-asymmetric-quantum-secure-multi-party-computation-with-weak-clients-against-dishonest-majority/</link><pubDate>Sun, 24 Nov 2024 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/4800472-asymmetric-quantum-secure-multi-party-computation-with-weak-clients-against-dishonest-majority/</guid><description>&lt;p&gt;Secure multi-party computation (SMPC) protocols allow several parties that distrust each other to collectively compute a function on their inputs. In this paper, we introduce a protocol that lifts classical SMPC to quantum SMPC in a composably and statistically secure way, even for a single honest party. Unlike previous quantum SMPC protocols, our proposal only requires very limited quantum resources from all but one party; it suffices that the weak parties, i.e. the clients, are able to prepare single-qubit states in the X-Y plane. The novel quantum SMPC protocol is constructed in a naturally modular way, and relies on a new technique for quantum verification that is of independent interest. This verification technique requires the remote preparation of states only in a single plane of the Bloch sphere. In the course of proving the security of the new verification protocol, we also uncover a fundamental invariance that is inherent to measurement-based quantum computing.&lt;/p&gt;</description></item><item><title>Asymmetric Quantum Secure Multi-Party Computation With Weak Clients Against Dishonest Majority</title><link>https://qi.lip6.fr/fr/publication/4079704-asymmetric-quantum-secure-multi-party-computation-with-weak-clients-against-dishonest-majority/</link><pubDate>Mon, 24 Apr 2023 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/4079704-asymmetric-quantum-secure-multi-party-computation-with-weak-clients-against-dishonest-majority/</guid><description>&lt;p&gt;Secure multi-party computation (SMPC) protocols allow several parties that distrust each other to collectively compute a function on their inputs. In this paper, we introduce a protocol that lifts classical SMPC to quantum SMPC in a composably and statistically secure way, even for a single honest party. Unlike previous quantum SMPC protocols, our proposal only requires very limited quantum resources from all but one party; it suffices that the weak parties, i.e. the clients, are able to prepare single-qubit states in the X-Y plane. The novel quantum SMPC protocol is constructed in a naturally modular way, and relies on a new technique for quantum verification that is of independent interest. This verification technique requires the remote preparation of states only in a single plane of the Bloch sphere. In the course of proving the security of the new verification protocol, we also uncover a fundamental invariance that is inherent to measurement-based quantum computing.&lt;/p&gt;</description></item><item><title>Unifying Quantum Verification and Error-Detection: Theory and Tools for Optimisations</title><link>https://qi.lip6.fr/fr/publication/3857850-unifying-quantum-verification-and-error-detection-theory-and-tools-for-optimisations/</link><pubDate>Thu, 17 Nov 2022 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/3857850-unifying-quantum-verification-and-error-detection-theory-and-tools-for-optimisations/</guid><description>&lt;p&gt;With the recent availability of cloud quantum computing services, the question of verifying quantum computations delegated by a client to a quantum server is becoming of practical interest. While Verifiable Blind Quantum Computing (VBQC) has emerged as one of the key approaches to address this challenge, current protocols still need to be optimised before they are truly practical. To this end, we establish a fundamental correspondence between error-detection and verification and provide sufficient conditions to both achieve security in the Abstract Cryptography framework and optimise resource overheads of all known VBQC-based protocols. As a direct application, we demonstrate how to systematise the search for new efficient and robust verification protocols for $\mathsf{BQP}$ computations. While we have chosen Measurement-Based Quantum Computing (MBQC) as the working model for the presentation of our results, one could expand the domain of applicability of our framework via direct known translation between the circuit model and MBQC.&lt;/p&gt;</description></item><item><title>Randomized Benchmarking with Stabilizer Verification and Gate Synthesis</title><link>https://qi.lip6.fr/fr/publication/3452719-randomized-benchmarking-with-stabilizer-verification-and-gate-synthesis/</link><pubDate>Sat, 27 Nov 2021 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/3452719-randomized-benchmarking-with-stabilizer-verification-and-gate-synthesis/</guid><description>&lt;p&gt;Recently, there has been an emergence of useful applications for noisy intermediate-scale quantum (NISQ) devices notably, though not exclusively, in the fields of quantum machine learning and variational quantum algorithms. In such applications, circuits of various depths and composed of different sets of gates are run on NISQ devices. Therefore, it is crucial to find practical ways to capture the general performance of circuits on these devices. Motivated by this pressing need, we modified the standard Clifford randomized benchmarking (RB) and interleaved RB schemes targeting them to hardware limitations. Firstly we remove the requirement for, and assumptions on, the inverse operator, in Clifford RB by incorporating a tehchnique from quantum verification. This introduces another figure of merit by which to assess the quality of the NISQ hardware, namely the acceptance probability of quantum verification. Many quantum algorithms, that provide an advantage over classical algorithms, demand the use of Clifford as well as non-Clifford gates. Therefore, as our second contribution we develop a technique for characterising a variety of non-Clifford gates, by combining tools from gate synthesis with interleaved RB. Both of our techniques are most relevant when used in conjunction with RB schemes that benchmark generators (or native gates) of the Clifford group, and in low error regimes.&lt;/p&gt;</description></item><item><title>Delegating Multi-Party Quantum Computations vs. Dishonest Majority in Two Quantum Rounds</title><link>https://qi.lip6.fr/fr/publication/3156988-delegating-multi-party-quantum-computations-vs-dishonest-majority-in-two-quantum-rounds/</link><pubDate>Tue, 02 Mar 2021 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/3156988-delegating-multi-party-quantum-computations-vs-dishonest-majority-in-two-quantum-rounds/</guid><description>&lt;p&gt;Multi-Party Quantum Computation (MPQC) has attracted a lot of attention as a potential killer-app for quantum networks through it&amp;rsquo;s ability to preserve privacy and integrity of the highly valuable computations they would enable. Contributing to the latest challenges in this field, we present a composable protocol achieving blindness and verifiability even in the case of a single honest client. The security of our protocol is reduced, in an information-theoretically secure way, to that of a classical composable Secure Multi-Party Computation (SMPC) used to coordinate the various parties. Our scheme thus provides a statistically secure upgrade of such classical scheme to a quantum one with the same level of security. In addition, (i) the clients can delegate their computation to a powerful fully fault-tolerant server and only need to perform single qubit operations to unlock the full potential of multi-party quantum computation; (ii) the amount of quantum communication with the server is reduced to sending quantum states at the beginning of the computation and receiving the output states at the end, which is optimal and removes the need for interactive quantum communication; and (iii) it has a low constant multiplicative qubit overhead compared to the single-client delegated protocol it is built upon. The main technical ingredient of our paper is the bootstraping of the MPQC construction by Double Blind Quantum Computation, a new composable resource for blind multiparty quantum computation, that demonstrates the surprising fact that the full protocol does not require verifiability of all components to achieve security.&lt;/p&gt;</description></item><item><title>Verification of Quantum Computation: An Overview of Existing Approaches</title><link>https://qi.lip6.fr/fr/publication/2164412-verification-of-quantum-computation-an-overview-of-existing-approaches/</link><pubDate>Wed, 01 May 2019 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/2164412-verification-of-quantum-computation-an-overview-of-existing-approaches/</guid><description/></item><item><title>Information Theoretically Secure Hypothesis Test for Temporally Unstructured Quantum Computation (Extended Abstract)</title><link>https://qi.lip6.fr/fr/publication/2164421-information-theoretically-secure-hypothesis-test-for-temporally-unstructured-quantum-computation-extended-abstract/</link><pubDate>Tue, 27 Feb 2018 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/2164421-information-theoretically-secure-hypothesis-test-for-temporally-unstructured-quantum-computation-extended-abstract/</guid><description/></item><item><title>Verification of Quantum Computation and the Price of Trust</title><link>https://qi.lip6.fr/fr/publication/2164547-verification-of-quantum-computation-and-the-price-of-trust/</link><pubDate>Thu, 08 Jun 2017 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/2164547-verification-of-quantum-computation-and-the-price-of-trust/</guid><description/></item></channel></rss>