14
collaborators
2022–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
2 Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Power and limitations of distributed quantum state purification | TQC 2026 | regular | Yu-Ao Chen, Xuanqiang Zhao, Chengkai Zhu, Giulio Chiribella, Xin Wang |
Quantum state purification protocols, which mitigate noise by converting multiple copies of noisy quantum states into fewer copies with a lower noise level, have applications in quantum communication and computation with imperfect devices. Here, we systematically study the task of state purification in distributed quantum systems, demanding that purification be achieved by local operations and classical communication (LOCC). We prove that, in the presence of depolarizing noise, no LOCC purification protocol starting from two copies can work blindly for all the states in three important sets: the set of all pure two-qubit states, the set of all two-qubit maximally entangled states, and the Bell basis. In stark contrast, we show that a targeted, single-state purification is always achievable in the presence of depolarizing noise, and we provide an explicit analytical LOCC protocol for every given two-qubit state. For arbitrary finite sets of pure states and arbitrary noise profiles, we develop an optimization-based algorithm that systematically designs LOCC purification protocols, and we demonstrate it through concrete examples. Overall, our results identify both fundamental limitations and practical noise reduction strategies for distributed quantum information processing. |
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| Information recoverability of noisy quantum states | TQC 2022 | regular | ▸Xuanqiang Zhao, Zihan Xia, Xin Wang |
7 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Dynamic LOCC Circuits for Automated Entanglement Manipulation | QIP 2026 | ▸Xia Liu, Jiayi Zhao, Xin Wang |
| The communication power of indefinite causal order | TQC 2026 | Xuanqiang Zhao, Cyril Branciard, Giulio Chiribella |
Quantum theory is in principle compatible with scenarios where physical processes occur in an indefinite order, potentially yielding advantages in a broad range of information processing tasks. However, advantages in communication, the most basic form of information processing, have so far remained controversial and hard to prove. Here we provide a framework for assessing the role of causal order in communication, by comparing different causal structures under the constraint that the allowed operations must not generate signaling from signaling-incapable devices. Using this framework, we establish a clear-cut advantage of indefinite causal order, and, at the same time, we identify a series of fundamental limits to the communication power of causal structures in quantum mechanics. Notably, we find that a special form of indefinite causal order, obtained by coherently controlling the order of two processes, enhances the transmission of classical messages in a one-shot scenario, but no quantum operation with indefinite order can offer advantages over shared entanglement when asymptotically many uses of the same communication device are employed. Overall, our results unveil non-trivial relations between communication, causal order, entanglement, and no-signaling quantum processes. |
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| Retrieving non-linear features from noisy quantum states | QIP 2024 | Mingrui Jing, Lei Zhang, Xuanqiang Zhao, Kun Wang, Xin Wang |
| Probabilistic channel simulation using coherence | TQC 2024 | Kosuke Ito, Keisuke Fujii |
| Retrieving non-linear features from noisy quantum states | TQC 2024 | Mingrui Jing, Lei Zhang, Xuanqiang Zhao, Kun Wang, Yu-Ao Chen, Xin Wang |
| Power of quantum measurement in simulating unphysical operations | TQC 2024 | Xuanqiang Zhao, Lei Zhang, Xin Wang |
| Information recoverability of noisy quantum states | QIP 2023 | Xuanqiang Zhao, Zihan Xia, Xin Wang |
Collaborators
| Co-author | Joint talks |
|---|---|
| Xin Wang | 7 |
| Xuanqiang Zhao | 7 |
| Lei Zhang | 3 |
| Giulio Chiribella | 2 |
| Kun Wang | 2 |
| Mingrui Jing | 2 |
| Yu-Ao Chen | 2 |
| Zihan Xia | 2 |
| Chengkai Zhu | 1 |
| Cyril Branciard | 1 |
| Jiayi Zhao | 1 |
| Keisuke Fujii | 1 |
| Kosuke Ito | 1 |
| Xia Liu | 1 |