<?xml version="1.0" encoding="utf-8" standalone="yes"?><rss version="2.0" xmlns:atom="http://www.w3.org/2005/Atom"><channel><title>Dominik Leichtle | LIP6 - Équipe QI</title><link>https://qi.lip6.fr/fr/people/dominik-leichtle/</link><atom:link href="https://qi.lip6.fr/fr/people/dominik-leichtle/index.xml" rel="self" type="application/rss+xml"/><description>Dominik Leichtle</description><generator>Hugo Blox Builder (https://hugoblox.com)</generator><language>fr</language><copyright>© 2022 LIP6 Quantum Information Team</copyright><lastBuildDate>Mon, 09 Mar 2026 00:00:00 +0000</lastBuildDate><image><url>https://qi.lip6.fr/media/icon_hu_bdeccd9e706ea09d.png</url><title>Dominik Leichtle</title><link>https://qi.lip6.fr/fr/people/dominik-leichtle/</link></image><item><title>Composable simultaneous purification: when all communication scenarios reduce to spatial correlations</title><link>https://qi.lip6.fr/fr/publication/5543334-composable-simultaneous-purification-when-all-communication-scenarios-reduce-to-spatial-correlations/</link><pubDate>Mon, 09 Mar 2026 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/5543334-composable-simultaneous-purification-when-all-communication-scenarios-reduce-to-spatial-correlations/</guid><description>&lt;p&gt;Bell non-locality is a powerful framework to distinguish classical, quantum and post-quantum resources, which relies on non-communicating players. Under which restriction can we have the same separations, if we allow for communication? Non-signalling state assemblages, and the fact that they can always be simultaneously purified, turned out to be the key element to restrict the simplest bipartite communication scenario, the prepare-and-measure, to the standard bipartite Bell scenario. Yet, many distinctive features of quantum theory are genuinely multipartite and cannot be reduced to two-party behaviour. In this work we are interested in extending this simultaneous purification inspired result to all multipartite communication schemes. As a first step, we unify and extend the simultaneous purification result from states to instruments and super-instruments, which are composable structures, and open up the possibility to explore more complex communication scenarios. Our main contribution is to establish that arbitrary compositions of non-signalling assemblages cannot escape the standard spatial quantum Bell correlations set. As a consequence, any interactive quantum realization of correlations outside of this set must involve at least one signalling assemblage of quantum operations, even when the resulting correlations are non-signalling.&lt;/p&gt;</description></item><item><title>Quantitative quantum soundness for all multipartite compiled nonlocal games</title><link>https://qi.lip6.fr/fr/publication/5543393-quantitative-quantum-soundness-for-all-multipartite-compiled-nonlocal-games/</link><pubDate>Mon, 09 Mar 2026 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/5543393-quantitative-quantum-soundness-for-all-multipartite-compiled-nonlocal-games/</guid><description>&lt;p&gt;Compiled nonlocal games transfer the power of Bell-type multi-prover tests into a single-device setting by replacing spatial separation with cryptography. Concretely, the KLVY compiler (STOC'23) maps any multi-prover game to an interactive single-prover protocol, using quantum homomorphic encryption. A crucial security property of such compilers is quantum soundness, which ensures that a dishonest quantum prover cannot exceed the original game&amp;rsquo;s quantum value. For practical cryptographic implementations, this soundness must be quantitative, providing concrete bounds, rather than merely asymptotic. While quantitative quantum soundness has been established for the KLVY compiler in the bipartite case, it has only been shown asymptotically for multipartite games. This is a significant gap, as multipartite nonlocality exhibits phenomena with no bipartite analogue, and the difficulty of enforcing space-like separation makes single-device compilation especially compelling. This work closes this gap by showing the quantitative quantum soundness of the KLVY compiler for all multipartite nonlocal games. On the way, we introduce an NPA-like hierarchy for quantum instruments and prove its completeness, thereby characterizing correlations from operationally-non-signaling sequential strategies. We further develop novel geometric arguments for the decomposition of sequential strategies into their signaling and non-signaling parts, which might be of independent interest.&lt;/p&gt;</description></item><item><title>Bounding the asymptotic quantum value of all multipartite compiled non-local games</title><link>https://qi.lip6.fr/fr/publication/5543388-bounding-the-asymptotic-quantum-value-of-all-multipartite-compiled-non-local-games/</link><pubDate>Sun, 11 Jan 2026 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/5543388-bounding-the-asymptotic-quantum-value-of-all-multipartite-compiled-non-local-games/</guid><description>&lt;p&gt;Abstract Non-local games are a powerful tool to distinguish between correlations possible in classical and quantum worlds. Kalai et al. (STOC’23) proposed a compiler that converts multipartite non-local games into interactive protocols with a single prover, relying on cryptographic tools to remove the assumption of physical separation of the players. While quantum completeness and classical soundness of the construction have been established for all multipartite games, quantum soundness is known only in the special case of bipartite games. In this paper, we prove that the Kalai et al.’s compiler indeed achieves quantum soundness for all multipartite compiled non-local games, by showing that any correlations that can be generated in the asymptotic case correspond to quantum commuting strategies. Our proof uses techniques from the theory of operator algebras, and relies on a characterisation of sequential operationally no-signalling strategies as quantum commuting operator strategies in the multipartite case, thereby generalising several previous results. On the way, we construct universal C(^&lt;em&gt;)-algebras of sequential PVMs and prove a new chain rule for Radon-Nikodym derivatives of completely positive maps on C(^&lt;/em&gt;)-algebras which may be of independent interest.&lt;/p&gt;</description></item><item><title>Dominik Leichtle - Not specified</title><link>https://qi.lip6.fr/fr/seminars/2025-03-14-dominik-leichtle/</link><pubDate>Fri, 14 Mar 2025 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/seminars/2025-03-14-dominik-leichtle/</guid><description>&lt;h2 id="not-specified"&gt;Not specified&lt;/h2&gt;
&lt;p&gt;Ce séminaire, donné par Dominik Leichtle, aura lieu le 14 March 2025, à 15:0.
Il aura lieu en salle Not specified.&lt;/p&gt;
&lt;p&gt;Vous trouverez un plan du campus &lt;a href="https://sciences.sorbonne-universite.fr/vie-de-campus-sciences/accueil-vie-pratique/plan-du-campus" target="_blank" rel="noopener"&gt;ici&lt;/a&gt;.&lt;/p&gt;
&lt;h2 id="résumé"&gt;Résumé&lt;/h2&gt;
&lt;p&gt;Not specified&lt;/p&gt;</description></item><item><title>An operating system for executing applications on quantum network nodes</title><link>https://qi.lip6.fr/fr/publication/5363746-an-operating-system-for-executing-applications-on-quantum-network-nodes/</link><pubDate>Wed, 12 Mar 2025 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/5363746-an-operating-system-for-executing-applications-on-quantum-network-nodes/</guid><description/></item><item><title>An operating system for executing applications on quantum network nodes</title><link>https://qi.lip6.fr/fr/publication/5407784-an-operating-system-for-executing-applications-on-quantum-network-nodes/</link><pubDate>Wed, 12 Mar 2025 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/5407784-an-operating-system-for-executing-applications-on-quantum-network-nodes/</guid><description>&lt;p&gt;The goal of future quantum networks is to enable new internet applications that are impossible to achieve using only classical communication1,2,3. Up to now, demonstrations of quantum network applications4,5,6 and functionalities7,8,9,10,11,12 on quantum processors have been performed in ad hoc software that was specific to the experimental setup, programmed to perform one single task (the application experiment) directly into low-level control devices using expertise in experimental physics. Here we report on the design and implementation of an architecture capable of executing quantum network applications on quantum processors in platform-independent high-level software. We demonstrate the capability of the architecture to execute applications in high-level software by implementing it as a quantum network operating system—QNodeOS—and executing test programs, including a delegated computation from a client to a server13 on two quantum network nodes based on nitrogen-vacancy (NV) centres in diamond14,15. We show how our architecture allows us to maximize the use of quantum network hardware by multitasking different applications. Our architecture can be used to execute programs on any quantum processor platform corresponding to our system model, which we illustrate by demonstrating an extra driver for QNodeOS for a trapped-ion quantum network node based on a single 40Ca+ atom16. Our architecture lays the groundwork for computer science research in quantum network programming and paves the way for the development of software that can bring quantum network technology to society.&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/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>Experimental verifiable multi-client blind quantum computing on a Qline architecture</title><link>https://qi.lip6.fr/fr/publication/4800383-experimental-verifiable-multi-client-blind-quantum-computing-on-a-qline-architecture/</link><pubDate>Sun, 24 Nov 2024 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/4800383-experimental-verifiable-multi-client-blind-quantum-computing-on-a-qline-architecture/</guid><description>&lt;p&gt;The exploitation of certification tools by end users represents a fundamental aspect of the development of quantum technologies as the hardware scales up beyond the regime of classical simulatability. Certifying quantum networks becomes even more crucial when the privacy of their users is exposed to malicious quantum nodes or servers as in the case of multi-client distributed blind quantum computing, where several clients delegate a joint private computation to remote quantum servers, such as federated quantum machine learning. In such protocols, security must be provided not only by keeping data hidden but also by verifying that the server is correctly performing the requested computation while minimizing the hardware assumptions on the employed devices. Notably, standard verification techniques fail in scenarios where the clients receive quantum states from untrusted sources such as, for example, in a recently demonstrated linear quantum network performing multi-client blind quantum computation. However, recent theoretical results provide techniques to verify blind quantum computations even in the case of untrusted state preparation. Equipped with such theoretical tools, in this work, we provide the first experimental implementation of a two-client verifiable blind quantum computing protocol in a distributed architecture. The obtained results represent novel perspectives for the verification of multi-tenant distributed quantum computation in large-scale networks.&lt;/p&gt;</description></item><item><title>Heuristic-free Verification-inspired Quantum Benchmarking</title><link>https://qi.lip6.fr/fr/publication/4800396-heuristic-free-verification-inspired-quantum-benchmarking/</link><pubDate>Sun, 24 Nov 2024 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/4800396-heuristic-free-verification-inspired-quantum-benchmarking/</guid><description>&lt;p&gt;In this paper, we introduce a new approach to quantum benchmarking inspired by quantum verification motivating new paradigms of quantum benchmarking. Our proposed benchmark not only serves as a robust indicator of computational capability but also offers scalability, customizability, and universality. By providing formal statements regarding the quality of quantum devices while assuming device consistency, we eliminate the reliance on heuristics. We establish a deep connection between quantum verification and quantum benchmarking. For practical application, we present a concrete benchmarking protocol derived from a quantum verification protocol, and prove it to match our redefined standards for quantum benchmarking.&lt;/p&gt;</description></item><item><title>On-Chip Verified Quantum Computation with an Ion-Trap Quantum Processing Unit</title><link>https://qi.lip6.fr/fr/publication/4800344-on-chip-verified-quantum-computation-with-an-ion-trap-quantum-processing-unit/</link><pubDate>Sun, 24 Nov 2024 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/4800344-on-chip-verified-quantum-computation-with-an-ion-trap-quantum-processing-unit/</guid><description/></item><item><title>Design and demonstration of an operating system for executing applications on quantum network nodes</title><link>https://qi.lip6.fr/fr/publication/4796965-design-and-demonstration-of-an-operating-system-for-executing-applications-on-quantum-network-nodes/</link><pubDate>Thu, 21 Nov 2024 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/4796965-design-and-demonstration-of-an-operating-system-for-executing-applications-on-quantum-network-nodes/</guid><description>&lt;p&gt;The goal of future quantum networks is to enable new internet applications that are impossible to achieve using solely classical communication. Up to now, demonstrations of quantum network applications and functionalities on quantum processors have been performed in ad-hoc software that was specific to the experimental setup, programmed to perform one single task (the application experiment) directly into low-level control devices using expertise in experimental physics. Here, we report on the design and implementation of the first architecture capable of executing quantum network applications on quantum processors in platform-independent high-level software. We demonstrate the architecture&amp;rsquo;s capability to execute applications in high-level software, by implementing it as a quantum network operating system &amp;ndash; QNodeOS &amp;ndash; and executing test programs including a delegated computation from a client to a server on two quantum network nodes based on nitrogen-vacancy (NV) centers in diamond. We show how our architecture allows us to maximize the use of quantum network hardware, by multitasking different applications on a quantum network for the first time. Our architecture can be used to execute programs on any quantum processor platform corresponding to our system model, which we illustrate by demonstrating an additional driver for QNodeOS for a trapped-ion quantum network node based on a single $^{40}\text{Ca}^+$ atom. Our architecture lays the groundwork for computer science research in the domain of quantum network programming, and paves the way for the development of software that can bring quantum network technology to society.&lt;/p&gt;</description></item><item><title>Quantum Error Suppression with Subgroup Stabilisation</title><link>https://qi.lip6.fr/fr/publication/4800423-quantum-error-suppression-with-subgroup-stabilisation/</link><pubDate>Mon, 09 Sep 2024 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/4800423-quantum-error-suppression-with-subgroup-stabilisation/</guid><description>&lt;p&gt;Quantum state purification is the functionality that, given multiple copies of an unknown state, outputs a state with increased purity. This will be an essential building block for near- and middle-term quantum ecosystems before the availability of full fault tolerance, where one may want to suppress errors not only in expectation values but also in quantum states. We propose an effective state purification gadget with a moderate quantum overhead by projecting $M$ noisy quantum inputs to their symmetric subspace defined by a set of projectors forming a symmetric subgroup with order $M$. Our method, applied in every short evolution over $M$ redundant copies of noisy states, can suppress both coherent and stochastic errors by a factor of $1/M$, respectively. This reduces the circuit implementation cost $M$ times smaller than the state projection to the full symmetric subspace proposed by Barenco et al. more than two decades ago. We also show that our gadget purifies the depolarised inputs with probability $p$ to asymptotically $O\left(p^{2}\right)$ with an optimal choice of $M$ when $p$ is small. The sampling cost scales $O\left(p^{-1}\right)$ for small $p$, which is also shown to be asymptotically optimal. Our method provides flexible choices of state purification depending on the hardware restrictions before fully fault-tolerant computation is available.&lt;/p&gt;</description></item><item><title>Verification of Quantum Computations without Trusted Preparations or Measurements</title><link>https://qi.lip6.fr/fr/publication/4800428-verification-of-quantum-computations-without-trusted-preparations-or-measurements/</link><pubDate>Tue, 16 Apr 2024 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/4800428-verification-of-quantum-computations-without-trusted-preparations-or-measurements/</guid><description>&lt;p&gt;With the advent of delegated quantum computing as a service, verifying quantum computations is becoming a question of great importance. Existing information theoretically Secure Delegated Quantum Computing (SDQC) protocols require the client to possess the ability to perform either trusted state preparations or measurements. Whether it is possible to verify universal quantum computations with information-theoretic security without trusted preparations or measurements was an open question so far. In this paper, we settle this question in the affirmative by presenting a modular, composable, and efficient way to turn known verification schemes into protocols that rely only on trusted gates. Our first contribution is an extremely lightweight reduction of the problem of quantum verification for BQP to the trusted application of single-qubit rotations around the Z axis and bit flips. The second construction presented in this work shows that it is generally possible to information-theoretically verify arbitrary quantum computations with quantum output without trusted preparations or measurements. However, this second protocol requires the verifier to perform multi-qubit gates on a register whose size is independent of the size of the delegated computation.&lt;/p&gt;</description></item><item><title>Verifiable Blind Quantum Computing with Trapped Ions and Single Photons</title><link>https://qi.lip6.fr/fr/publication/4800470-verifiable-blind-quantum-computing-with-trapped-ions-and-single-photons/</link><pubDate>Wed, 10 Apr 2024 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/4800470-verifiable-blind-quantum-computing-with-trapped-ions-and-single-photons/</guid><description>&lt;p&gt;We report the first hybrid matter-photon implementation of verifiable blind quantum computing. We use a trapped-ion quantum server and a client-side photonic detection system networked via a fiber-optic quantum link. The availability of memory qubits and deterministic entangling gates enables interactive protocols without postselection—key requirements for any scalable blind server, which previous realizations could not provide. We quantify the privacy at ≲ 0.03 leaked classical bits per qubit. This experiment demonstrates a path to fully verified quantum computing in the cloud. Published by the American Physical Society 2024&lt;/p&gt;</description></item><item><title>Security and Efficiency of Delegated Quantum Computing</title><link>https://qi.lip6.fr/fr/defended_thesis/dominik-leichtle/</link><pubDate>Fri, 23 Feb 2024 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/defended_thesis/dominik-leichtle/</guid><description>&lt;p&gt;Quantum information promises to revolutionize our world, from the way in which we communicate to the way in which we compute, deriving its power directly from the laws that govern the behavior of nature on extremely small scales - quantum mechanics. In the near future, the hardware of possibly useful quantum computers is expected to remain very expensive and thus out of reach for most interested end users. In such a world, it is an important problem to provide security guarantees for customers who wish to remotely instruct quantum servers, by keeping their data private (blindness) and checking the correctness of the results (verification). This functionality of secure delegated quantum computing received a lot of attention during recent years, but still admits many open questions.&lt;/p&gt;
&lt;p&gt;In this thesis, we explore the (im)possibility of securing delegated quantum computations in different settings: what is the hardware that the client needs trusted access to, what is the minimum hardware required by the server, and how must the parties communicate? This work is driven by the motivation to break down the barriers that keep us from securing and verifying quantum computations in practice, by identifying and removing unnecessary overheads.&lt;/p&gt;
&lt;p&gt;We set out by questioning the necessity of quantum communication between the client and the server, and find that, while in specific situations classical communication is entirely sufficient, most generally the security of delegation protocols relies irreplaceably on the very quantumness of the information exchanged between the parties. This proves that quantum communication is indeed an essential asset in our cryptographic toolbox.&lt;/p&gt;
&lt;p&gt;We then shift our focus to the server that was suffering from impractical overheads in previous attempts at quantum verification. We show that for a large class of interesting quantum computations, there is no fundamental need to reserve extra hardware for any cryptographic techniques. Indeed, we give concrete constructions of secure protocols that achieve blindness and verification on hardware of the same size that would be required to perform the original, unsecured computation, and provide a systematic way of optimizing their efficiency in customized settings.&lt;/p&gt;
&lt;p&gt;Our journey then takes us to the problem of quantum secure multi-party computation, a generalization of the previous functionality to more than two participating, mutually distrusting parties. We explore how the improvements that we obtained in the two-party setting can be transferred to the multi-party case, and finish with the presentation of two actual experiments that demonstrate the practical impact and real-world feasibility of the results obtained during the course of this thesis.&lt;/p&gt;</description></item><item><title>Multi-client distributed blind quantum computation with the Qline architecture</title><link>https://qi.lip6.fr/fr/publication/4800461-multi-client-distributed-blind-quantum-computation-with-the-qline-architecture/</link><pubDate>Sat, 25 Nov 2023 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/4800461-multi-client-distributed-blind-quantum-computation-with-the-qline-architecture/</guid><description>&lt;p&gt;Universal blind quantum computing allows users with minimal quantum resources to delegate a quantum computation to a remote quantum server, while keeping intrinsically hidden input, algorithm, and outcome. State-of-art experimental demonstrations of such a protocol have only involved one client. However, an increasing number of multi-party algorithms, e.g. federated machine learning, require the collaboration of multiple clients to carry out a given joint computation. In this work, we propose and experimentally demonstrate a lightweight multi-client blind quantum computation protocol based on a recently proposed linear quantum network configuration (Qline). Our protocol originality resides in three main strengths: scalability, since we eliminate the need for each client to have its own trusted source or measurement device, low-loss, by optimizing the orchestration of classical communication between each client and server through fast classical electronic control, and compatibility with distributed architectures while remaining intact even against correlated attacks of server nodes and malicious clients.&lt;/p&gt;</description></item><item><title>Multi-client distributed blind quantum computation with the Qline architecture</title><link>https://qi.lip6.fr/fr/publication/4284568-multi-client-distributed-blind-quantum-computation-with-the-qline-architecture/</link><pubDate>Tue, 14 Nov 2023 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/4284568-multi-client-distributed-blind-quantum-computation-with-the-qline-architecture/</guid><description>&lt;p&gt;Universal blind quantum computing allows users with minimal quantum resources to delegate a quantum computation to a remote quantum server, while keeping intrinsically hidden input, algorithm, and outcome. State-of-art experimental demonstrations of such a protocol have only involved one client. However, an increasing number of multi-party algorithms, e.g. federated machine learning, require the collaboration of multiple clients to carry out a given joint computation. In this work, we propose and experimentally demonstrate a lightweight multi-client blind quantum computation protocol based on a novel linear quantum network configuration (Qline). Our protocol originality resides in three main strengths: scalability, since we eliminate the need for each client to have its own trusted source or measurement device, low-loss, by optimizing the orchestration of classical communication between each client and server through fast classical electronic control, and compatibility with distributed architectures while remaining intact even against correlated attacks of server nodes and malicious clients.&lt;/p&gt;</description></item><item><title>Verifiable blind quantum computing with trapped ions and single photons</title><link>https://qi.lip6.fr/fr/publication/4133397-verifiable-blind-quantum-computing-with-trapped-ions-and-single-photons/</link><pubDate>Mon, 19 Jun 2023 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/4133397-verifiable-blind-quantum-computing-with-trapped-ions-and-single-photons/</guid><description>&lt;p&gt;We present the first hybrid matter-photon implementation of verifiable blind quantum computing. We use a trapped-ion quantum server and a client-side photonic detection system connected by a fibre-optic quantum network link. The availability of memory qubits and deterministic quantum logic enables interactive protocols without post-selection - a requirement for any scalable blind quantum cloud server which previous realisations could not provide. Our apparatus supports guaranteed privacy with &amp;lt;0.001 leaked bits per qubit and shows a clear path to fully verified quantum computing in the cloud.&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>Verifying BQP Computations on Noisy Devices with Minimal Overhead</title><link>https://qi.lip6.fr/fr/publication/3452705-verifying-bqp-computations-on-noisy-devices-with-minimal-overhead/</link><pubDate>Fri, 01 Oct 2021 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/3452705-verifying-bqp-computations-on-noisy-devices-with-minimal-overhead/</guid><description>&lt;p&gt;With the development of delegated quantum computation, clients will want to ensure confidentiality of their data and algorithms, and the integrity of their computations. While protocols for blind and verifiable quantum computation exist, they suffer from high overheads and from over-sensitivity: When running on noisy devices, imperfections trigger the same detection mechanisms as malicious attacks, resulting in perpetually aborted computations. We introduce the first blind and verifiable protocol for delegating BQP computations to a powerful server with repetition as the only overhead. It is composable and statistically secure with exponentially-low bounds and can tolerate a constant amount of global noise.&lt;/p&gt;</description></item><item><title>Security Limitations of Classical-Client Delegated Quantum Computing</title><link>https://qi.lip6.fr/fr/publication/2997004-security-limitations-of-classical-client-delegated-quantum-computing/</link><pubDate>Mon, 07 Dec 2020 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/2997004-security-limitations-of-classical-client-delegated-quantum-computing/</guid><description>&lt;p&gt;Secure delegated quantum computing allows a computationally weak client to outsource an arbitrary quantum computation to an untrusted quantum server in a privacy-preserving manner. One of the promising candidates to achieve classical delegation of quantum computation is classical-client remote state preparation ($RSP_{CC}$), where a client remotely prepares a quantum state using a classical channel. However, the privacy loss incurred by employing $RSP_{CC}$ as a sub-module is unclear. In this work, we investigate this question using the Constructive Cryptography framework by Maurer and Renner (ICS'11). We first identify the goal of $RSP_{CC}$ as the construction of ideal RSP resources from classical channels and then reveal the security limitations of using $RSP_{CC}$. First, we uncover a fundamental relationship between constructing ideal RSP resources (from classical channels) and the task of cloning quantum states. Any classically constructed ideal RSP resource must leak to the server the full classical description (possibly in an encoded form) of the generated quantum state, even if we target computational security only. As a consequence, we find that the realization of common RSP resources, without weakening their guarantees drastically, is impossible due to the no-cloning theorem. Second, the above result does not rule out that a specific $RSP_{CC}$ protocol can replace the quantum channel at least in some contexts, such as the Universal Blind Quantum Computing (UBQC) protocol of Broadbent et al. (FOCS &amp;lsquo;09). However, we show that the resulting UBQC protocol cannot maintain its proven composable security as soon as $RSP_{CC}$ is used as a subroutine. Third, we show that replacing the quantum channel of the above UBQC protocol by the $RSP_{CC}$ protocol QFactory of Cojocaru et al. (Asiacrypt &amp;lsquo;19), preserves the weaker, game-based, security of UBQC.&lt;/p&gt;</description></item><item><title>Securing Quantum Computations in the NISQ Era</title><link>https://qi.lip6.fr/fr/publication/3016586-securing-quantum-computations-in-the-nisq-era/</link><pubDate>Fri, 20 Nov 2020 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/3016586-securing-quantum-computations-in-the-nisq-era/</guid><description>&lt;p&gt;Recent experimental achievements motivate an ever-growing interest from companies starting to feel the limitations of classical computing. Yet, in light of ongoing privacy scandals, the future availability of quantum computing through remotely accessible servers pose peculiar challenges: Clients with quantum-limited capabilities want their data and algorithms to remain hidden, while being able to verify that their computations are performed correctly. Research in blind and verifiable delegation of quantum computing attempts to address this question. However, available techniques suffer not only from high overheads but also from over-sensitivity: When running on noisy devices, imperfections trigger the same detection mechanisms as malicious attacks, resulting in perpetually aborted computations. Hence, while malicious quantum computers are rendered harmless by blind and verifiable protocols, inherent noise severely limits their usability. We address this problem with an efficient, robust, blind, verifiable scheme to delegate deterministic quantum computations with classical inputs and outputs. We show that: 1) a malicious Server can cheat at most with an exponentially small success probability; 2) in case of sufficiently small noise, the protocol succeeds with a probability exponentially close to 1; 3) the overhead is barely a polynomial number of repetitions of the initial computation interleaved with test runs requiring the same physical resources in terms of memory and gates; 4) the amount of tolerable noise, measured by the probability of failing a test run, can be as high as 25% for some computations and will be generally bounded by 12.5% when using a planar graph resource state. The key points are that security can be provided without universal computation graphs and that, in our setting, full fault-tolerance is not needed to amplify the confidence level exponentially close to 1.&lt;/p&gt;</description></item></channel></rss>