VLDB 2026 Research / reviewers in the wild / expert
Jason Chadwick
dblp:334/2460 · also Jason D. Chadwick
· DBLP profile ↗
3ranked-venue papers
0as first author
3since 2021 · last 2025
0000-0002-7932-1418ORCID · corroborated
Domains — the database's venue-derived domains; a paper can count in several
Systems, architecture and hardware · 3 · 3 since 2021Software engineering, systems software and programming languages · 3 · 3 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2025 | SWIPER: Minimizing Fault-Tolerant Quantum Program Latency via Speculative Window DecodingabstractReal-time decoding is a key ingredient in future fault-tolerant quantum systems, yet many decoders are too slow to run in real time.Prior work has shown that parallel window decoding can scalably meet throughput requirements in the presence of increasing decoding times.However, windowed decoding require that some decoding tasks be delayed until others have completed, which can be problematic during time-sensitive operations such as T gate teleportation, leading to suboptimal program runtimes.To alleviate this, we introduce SWIPER, a speculative window decoder.Taking inspiration from branch prediction in classical computer architecture, SWIPER utilizes a light-weight speculation step to predict data dependencies between adjacent decoding windows, allowing multiple layers of decoding tasks to be resolved simultaneously.Through a state-of-the-art compilation pipeline and a detailed open-source simulator, we find that SWIPER reduces application runtimes by 40% on average compared to prior parallel window decoders. Joshua Viszlai, Jason Chadwick, Gokul Subramanian Ravi, Yanjing Li, Fred Chong |
ISCA | 2 |
| 2023 | Qompress: Efficient Compilation for Ququarts Exploiting Partial and Mixed Radix Operations for Communication ReductionabstractQuantum computing is in an era of limited resources. Current hardware lacks high fidelity gates, long coherence times, and the number of computational units required to perform meaningful computation. Contemporary quantum devices typically use a binary system, where each qubit exists in a superposition of the 0 and 1 states. However, it is often possible to access the 2 or even 3 states in the same physical unit by manipulating the system in different ways. In this work, we consider automatically encoding two qubits into one four-state ququart via a compression scheme. We use quantum optimal control to design efficient proof-of-concept gates that fully replicate standard qubit computation on these encoded qubits. Andrew Litteken, Lennart Maximilian Seifert, Jason Chadwick, Natalia Nottingham, Fred Chong, Jonathan M. Baker |
ASPLOS (2) | 3 |
| 2023 | Dancing the Quantum Waltz: Compiling Three-Qubit Gates on Four Level ArchitecturesabstractSuperconducting quantum devices are a leading technology for quantum computation, but they face several challenges. Gate errors, coherence errors and a lack of connectivity all contribute to low fidelity results. In particular, connectivity restrictions enforce a gate set that requires three-qubit gates to be decomposed into one- or two-qubit gates. This substantially increases the number of two-qubit gates that need to be executed. However, many quantum devices have access to higher energy levels. We can expand the qubit abstraction of |0〉 and |1〉 to a ququart which has access to the |2〉 and |3〉 state, but with shorter coherence times. This allows for two qubits to be encoded in one ququart, enabling increased virtual connectivity between physical units from two adjacent qubits to four fully connected qubits. This connectivity scheme allows us to more efficiently execute three-qubit gates natively between two physical devices. Andrew Litteken, Lennart Maximilian Seifert, Jason Chadwick, Natalia Nottingham, Tanay Roy, David I. Schuster, Fred Chong, Jonathan M. Baker |
ISCA | 3 |