VLDB 2026 Research / reviewers in the wild / expert
He-Liang Huang
dblp:243/3321
· DBLP profile ↗
2ranked-venue papers
0as first author
2since 2021 · last 2025
0000-0002-5121-3028ORCID · corroborated
Domains — the database's venue-derived domains; a paper can count in several
Artificial intelligence and machine learning · 2 · 2 since 2021Graphics, computer vision, multimedia, augmented reality and games · 1 · 1 since 2021
Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.
| Computer architecture, parallel and distributed computing, and storage systems
1 paper |
Emerging computing paradigms · 100% |
Topics — the 3 heaviest of 3, each with the papers that count most for it
| Topic | Weight | Papers | Last | Evidence papers |
|---|---|---|---|---|
Emerging computing paradigms › quantum computer architecture
quantum compilation |
0.9 | 1 | 2025 | AI-Powered Algorithm-Centric Quantum Processor Topology Design · AAAI 2025 |
Emerging computing paradigms
quantum computer architecture |
0.9 | 1 | 2025 | AI-Powered Algorithm-Centric Quantum Processor Topology Design · AAAI 2025 |
Emerging computing paradigms › quantum computer architecture
qubit mapping |
0.9 | 1 | 2025 | AI-Powered Algorithm-Centric Quantum Processor Topology Design · AAAI 2025 |
Methods — techniques the papers use, named apart from their topics
reinforcement learning · 0.9
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2025 | AI-Powered Algorithm-Centric Quantum Processor Topology DesignabstractQuantum computing promises to revolutionize various fields, yet the execution of quantum programs necessitates an effective compilation process. This involves strategically mapping quantum circuits onto the physical qubits of a quantum processor. The qubits' arrangement, or topology, is pivotal to the circuit's performance, a factor that often defies traditional heuristic or manual optimization methods due to its complexity. In this study, we introduce a novel approach leveraging reinforcement learning to dynamically tailor qubit topologies to the unique specifications of individual quantum circuits, guiding algorithm-driven quantum processor topology design for reducing the depth of mapped circuit, which is particularly critical for the output accuracy on noisy quantum processors. Our method marks a significant departure from previous methods that have been constrained to mapping circuits onto a fixed processor topology. Experiments demonstrate that we have achieved notable enhancements in circuit performance, with a minimum of 20% reduction in circuit depth in 60% of the cases examined, and a maximum enhancement of up to 46%. Furthermore, the pronounced benefits of our approach in reducing circuit depth become increasingly evident as the scale of the quantum circuits increases, exhibiting the scalability of our method in terms of problem size. This work advances the co-design of quantum processor architecture and algorithm mapping, offering a promising avenue for future research and development in the field. Xiao-Yue Xu, Tian-Ci Tian, Wei-You Liao, He-Liang Huang |
AAAI | 7 |
| 2022 | Quantum-Inspired Support Vector MachineabstractSupport vector machine (SVM) is a particularly powerful and flexible supervised learning model that analyzes data for both classification and regression, whose usual algorithm complexity scales polynomially with the dimension of data space and the number of data points. To tackle the big data challenge, a quantum SVM algorithm was proposed, which is claimed to achieve exponential speedup for least squares SVM (LS-SVM). Here, inspired by the quantum SVM algorithm, we present a quantum-inspired classical algorithm for LS-SVM. In our approach, an improved fast sampling technique, namely indirect sampling, is proposed for sampling the kernel matrix and classifying. We first consider the LS-SVM with a linear kernel, and then discuss the generalization of our method to nonlinear kernels. Theoretical analysis shows our algorithm can make classification with arbitrary success probability in logarithmic runtime of both the dimension of data space and the number of data points for low rank, low condition number, and high dimensional data matrix, matching the runtime of the quantum SVM. Chen Ding 0013, Tian-Yi Bao, He-Liang Huang |
IEEE Trans. Neural Networks Learn. Syst. | 3 |