VLDB 2026 Research / reviewers in the wild / expert
Zhaohui Wei
dblp:21/9668
· DBLP profile ↗
12ranked-venue papers
5as first author
4since 2021 · last 2025
0000-0002-7831-1082ORCID · conflict
Domains — the database's venue-derived domains; a paper can count in several
Theory of computation · 8 · 2 first-author · 2 since 2021Computer networks · 2 · 2 first-author · 1 since 2021Databases, data management, data science and information retrieval · 1 · 1 first-author · 1 since 2021Applied, interdisciplinary, general and emerging computing · 1
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2025 | Enriching Responses with Crowd-Sourced Knowledge for Task-Oriented Conversational AgentsabstractTask-oriented conversational agents strive to aid users across various tasks by concentrating on generating suitable responses to guarantee successful task accomplishment. Nonetheless, several factors have a substantial influence on user contentment beyond task fulfillment, requiring further investigation. Within this work, we aim to analyze diverse behavioral patterns of conversational agents with the goal of enhancing user satisfaction. Our findings lead to the exploration of three different enriched response generation schemes: EnRG-ATT, EnRG-TIP, and EnRG-SIM. Specifically, EnRG-ATT is designed to integrate the model's capabilities with a dual attention mechanism across two distinct modalities of external resources. It employs a pair of gates to regulate the utilization of such sources efficiently. More elegantly, we introduce EnRG-TIP, which simplifies response enrichment as a sequence prediction problem and exploits the pre-trained language model to capture user tips related to the conversation. Moreover, building on the efficiency of grounding on similar responses, EnRG-SIM further enhances response generation by inserting similar responses into the training sequences, to direct the pre-trained model's attention towards this additional knowledge. Our comprehensive experiments demonstrate that our three proposed methods not only achieve good task completion but also generate responses that yield higher user satisfaction. Zhaohui Wei, Lizi Liao, Xinguang Xiang, Xiaoyu Du 0002 |
ACM Trans. Intell. Syst. Technol. | 1 |
| 2024 | The Generations of Classical Correlations via Quantum SchemesabstractSuppose two separated parties, Alice and Bob, share a bipartite quantum state or a classical correlation called aseed, and they try to generate a target classical correlation by performing local quantum or classical operations on the seed, i.e., any communications are not allowed. We consider the following fundamental problem about this setting: whether Alice and Bob can use a given seed to generate a target classical correlation. We show that this problem has rich mathematical structures. Firstly, we prove that even if the seed is a pure bipartite state, the above decision problem is already NP-hard and a similar conclusion can also be drawn when the seed is also a classical correlation, implying that this problem is hard to solve generally. Furthermore, we prove that when the seed is a pure quantum state, solving the problem is equivalent to finding out whether the target classical correlation has some diagonal form of positive semi-definite factorizations that matches the seed pure state, revealing an interesting connection between the current problem and optimization theory. Based on this observation and other insights, we give several necessary conditions where the seed pure state has to satisfy to generate the target classical correlation, and it turns out that these conditions can also be generalized to the case that the seed is a mixed quantum state. Lastly, since diagonal forms of positive semi-definite factorizations play a crucial role in solving the problem, we develop an algorithm that can compute them for an arbitrary classical correlation, which has decent performance on the cases we test. Lijinzhi Lin, Xiaodie Lin, Zhaohui Wei, Penghui Yao |
IEEE Trans. Inf. Theory | 4 |
| 2023 | Lightweight Federated Learning for Large-Scale IoT Devices With Privacy GuaranteeabstractWith the massive deployment of the Internet of Things (IoT) devices, many data analysis applications emerge for the large amount of data accumulated by IoT. Federated learning (FedL) on IoT devices is an appealing mode to train a precise data analysis model. However, existing FedL schemes either take expensive computation costs (e.g., public-key cryptographic operations) or a large number of interactions among participants. Obviously, these schemes are unsuitable for IoT devices due to the limited computational and communication resources. In this work, we propose a lightweight privacy-preserving FedL scheme for IoT devices. To protect the privacy of individual local data, we add masks to intervening parameters. An effective secret-sharing scheme is adopted to ensure that masks can be eliminated accurately. Considering that FedL involves multiple iterations and mask generation for each iteration costs a large number of interactions among users for privacy guarantee, we also design a secure mask reusing mechanism for large-scale FedL tasks. We prove that our scheme is secure against the honest-but-curious model. In addition, we also expand our scheme to deal with the collusion attack. Extensive experiments on real IoT devices demonstrate the accuracy and efficiency of our work. Zhaohui Wei, Qingqi Pei, Ning Zhang 0007, Xuefeng Liu 0002, Celimuge Wu, Amirhosein Taherkordi |
IEEE Internet Things J. | 1 |
| 2022 | Quantum and Classical Hybrid Generations for Classical CorrelationsabstractWe consider two-stage hybrid protocols that combine quantum resources and classical resources to generate classical correlations shared by two separated players. Our motivation is twofold. First, in the near future, the scale of quantum information processing is quite limited, and when quantum resource available is not sufficient for certain tasks, a possible way to strengthen the capability of quantum schemes is introducing extra classical resources. We analyze the mathematical structures of these hybrid protocols, and characterize the relation between the amount of quantum resources and classical resources needed. Second, a fundamental open problem in communication complexity theory is to describe the advantage of sharing prior quantum entanglement over sharing prior randomness, which is still widely open. It turns out that our quantum and classical hybrid protocols provide new insight into this important problem. Xiaodie Lin, Zhaohui Wei, Penghui Yao |
IEEE Trans. Inf. Theory | 2 |
| 2020 | Efficient distributed privacy-preserving collaborative outlier detection
Zhaohui Wei, Qingqi Pei, Xuefeng Liu 0002, Lichuan Ma |
Peer-to-Peer Netw. Appl. | 1 |
| 2018 | Quantum Error-Correcting Codes for Qudit Amplitude DampingabstractTraditional quantum error-correcting codes are designed for the depolarizing channel modeled by generalized Pauli errors occurring with equal probability. Amplitude damping channels model, in general, the decay process of a multilevel atom or energy dissipation of a bosonic system with Markovian bath at zero temperature. We discuss quantum error-correcting codes adapted to amplitude damping channels for higher dimensional systems (qudits). For multi-level atoms, we consider a natural kind of decay process, and for bosonic systems, we consider the qudit amplitude damping channel obtained by truncating the Fock basis of the bosonic modes (e.g., the number of photons) to a certain maximum occupation number. We construct families of single-error-correcting quantum codes that can be used for both cases. Our codes have larger code dimensions than the previously known single-error-correcting codes of the same lengths. In addition, we present families of multi-error correcting codes for these two channels, as well as generalizations of our construction technique to error-correcting codes for the qutrit V and Λ channels. Markus Grassl, Linghang Kong, Zhaohui Wei, Zhang-Qi Yin, Bei Zeng |
IEEE Trans. Inf. Theory | 3 |
| 2017 | Multipartite Quantum Correlation and Communication Complexities
Rahul Jain 0001, Zhaohui Wei, Penghui Yao, Shengyu Zhang 0002 |
Comput. Complex. | 2 |
| 2017 | Quantum game players can have advantage without discord
Zhaohui Wei, Shengyu Zhang 0002 |
Inf. Comput. | 1 |
| 2015 | Quantum Game Players Can Have Advantage Without Discord
Zhaohui Wei, Shengyu Zhang 0002 |
TAMC | 1 |
| 2014 | Quantum error-correcting codes for amplitude dampingabstractTraditional quantum error-correcting codes are designed for the depolarizing channel modeled by generalized Pauli errors occurring with equal probability. Amplitude damping channels, in general, model the decay process of a multilevel atom or energy dissipation of a bosonic system at zero temperature. We discuss quantum error-correcting codes adapted to amplitude damping channels for higher dimensional systems (qudits). For multi-level atoms, we consider a natural kind of decay process, and for bosonic systems, we consider the qudit amplitude damping channel obtained by truncating the Fock basis of the bosonic modes to a certain maximum occupation number. We construct families of single-error-correcting quantum codes that can be used for both cases. Our codes have larger code dimensions than the previously known single-error-correcting codes of the same lengths. Markus Grassl, Zhaohui Wei, Zhang-Qi Yin, Bei Zeng |
ISIT | 2 |
| 2013 | Efficient protocols of generating bipartite classical distributions and quantum statesabstractWe investigate the fundamental problem of generating bipartite classical distributions or quantum states. By designing efficient communication protocols and proving their optimality, we establish a number of intriguing connections to fundamental measures in optimization, convex geometry, and information theory. 1. To generate a classical distribution P(x, y), we tightly characterize the minimum amount of quantum communication needed by the psd-rank of P (as a matrix), a measure recently proposed by Fiorini, Massar, Pokutta, Tiwary and de Wolf (Proceedings of the 44th A CM Symposium on Theory of Computing, pages 95–106, 2012) in studies of the minimum size of extended formulations of optimization problems such as TSP. This echos the previous characterization for the optimal classical communication cost by the nonnegative rank of P. The result is obtained via investigating the more general case of bipartite quantum state generation and designing an optimal protocol for it. 2. When an approximation of ε is allowed to generate a distribution (X, Y) ∼ P, we present a classical protocol of the communication cost O((C(X, Y) + 1)/ε), where C(X, Y) is common information, a well-studied measure in information theory introduced by Wyner (IEEE Transactions on Information Theory, 21(2):163–179, 1975). This also links nonnegative rank and common information, two seemingly unrelated quantities in different fields. 3. For approximately generating a quantum pure state |ψ〉, we completely characterize the minimum cost by a corresponding approximate rank, closing a possibly exponential gap left in Ambainis, Schulman, Ta-Shma, Vazirani and Wigderson (SIAM Journal on Computing, 32(6):1570–1585, 2003). Rahul Jain 0001, Yaoyun Shi, Zhaohui Wei, Shengyu Zhang 0002 |
SODA | 3 |
| 2013 | Efficient Protocols for Generating Bipartite Classical Distributions and Quantum StatesabstractWe investigate the fundamental problem of generating bipartite classical distributions or quantum states. By designing efficient communication protocols and proving their optimality, we establish a number of intriguing connections to fundamental measures in optimization, convex geometry, and information theory. 1) To generate a classical distribution P(x,y), we tightly characterize the minimum amount of quantum communication needed by the psd-rank of P (as a matrix), a measure recently proposed by Fiorini et al. (Proc. 44th ACM Symp. Theory Comput., pp. 95-106, 2012) in studies of the minimum size of extended formulations of optimization problems such as TSP. This echos the previous characterization for the optimal classical communication cost by the nonnegative rank of P. The result is obtained via investigating the more general case of bipartite quantum state generation and designing an optimal protocol for it. 2) When an approximation ϵ is allowed to generate a distribution (X,Y)~P, we present a classical protocol of the communication cost O((C(X,Y)+1)/ϵ, where C(X,Y) is common information, a well-studied measure in information theory introduced by Wyner (IEEE Trans. Inf. Theory, 21 (2):163-179, 1975). This also links nonnegative rank and common information, two seemingly unrelated quantities in different fields. 3) For approximately generating a quantum pure state |ψ〉, we completely characterize the minimum cost by a corresponding approximate rank, closing a possibly exponential gap left in Ambainis etal. (SIAM J. Comput., 32 (6):1570-1585, 2003). Rahul Jain 0001, Yaoyun Shi, Zhaohui Wei, Shengyu Zhang 0002 |
IEEE Trans. Inf. Theory | 3 |