VLDB 2026 Research / reviewers in the wild / expert
Shifan Xu
dblp:349/0495
· DBLP profile ↗
4ranked-venue papers
3as first author
4since 2021 · last 2026
0009-0005-9103-228XORCID · corroborated
Domains — the database's venue-derived domains; a paper can count in several
Systems, architecture and hardware · 4 · 3 first-author · 4 since 2021Software engineering, systems software and programming languages · 3 · 2 first-author · 3 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2026 | Distilling Magic States in the Bicycle Architecture
Shifan Xu, Patrick Rall, Zhiyang He, Yongshan Ding 0001 |
ISCA | 1 |
| 2025 | HetEC: Architectures for Heterogeneous Quantum Error Correction CodesabstractQuantum Error Correction (QEC) is essential for future quantum computers due to its ability to exponentially suppress physical errors. The surface code is a leading error-correcting code candidate because of its local topological structure, experimentally achievable thresholds, and support for universal gate operations with magic states. However, its physical overhead scales quadratically with number of correctable errors. Conversely, quantum low-density parity-check (qLDPC) codes offer superior scaling but lack, on their own, a clear path to universal logical computation. Therefore, it is becoming increasingly evident that there are significant advantages to designing architectures using multiple codes. Heterogeneous architectures provide a clear path to universal logical computation as well as the ability to access different resource trade offs. Samuel A. Stein, Shifan Xu, Andrew W. Cross, Theodore J. Yoder, Ali Javadi-Abhari, Zeyuan Zhou, Charlie Guinn, Yufei Ding 0001, Yongshan Ding 0001, Ang Li 0006 |
ASPLOS (2) | 2 |
| 2025 | Fat-Tree QRAM: A High-Bandwidth Shared Quantum Random Access Memory for Parallel QueriesabstractQuantum Random Access Memory (QRAM) is a crucial architectural component for querying classical or quantum data in superposition, enabling algorithms with wide-ranging applications in quantum arithmetic, quantum chemistry, machine learning, and quantum cryptography. In this work, we introduce Fat-Tree QRAM, a novel query architecture capable of pipelining multiple quantum queries simultaneously while maintaining desirable scalings in query speed and fidelity. Specifically, Fat-Tree QRAM performs $O(\log (N))$ independent queries in $O(\log (N))$ time using $O(N)$ qubits, offering immense parallelism benefits over traditional QRAM architectures. To demonstrate its experimental feasibility, we propose modular and on-chip implementations of Fat-Tree QRAM based on superconducting circuits and analyze their performance and fidelity under realistic parameters. Furthermore, a query scheduling protocol is presented to maximize hardware utilization and access the underlying data at an optimal rate. These results suggest that Fat-Tree QRAM is an attractive architecture in a shared memory system for practical quantum computing. Shifan Xu, Alvin Lu, Yongshan Ding 0001 |
ASPLOS (2) | 1 |
| 2023 | Systems Architecture for Quantum Random Access MemoryabstractOperating on the principles of quantum mechanics, quantum algorithms hold the promise for solving problems that are beyond the reach of the best-available classical algorithms. An integral part of realizing such speedup is the implementation of quantum queries, which read data into forms that quantum computers can process. Quantum random access memory (QRAM) is a promising architecture for realizing quantum queries. However, implementing QRAM in practice poses significant challenges, including query latency, memory capacity and fault-tolerance. Shifan Xu, Connor T. Hann, Ben Foxman, Steven M. Girvin, Yongshan Ding 0001 |
MICRO | 1 |