VLDB 2026 Research / reviewers in the wild / expert
Natalie C. Brown
dblp:241/9796
· DBLP profile ↗
3ranked-venue papers
0as first author
0since 2021 · last 2020
0000-0002-7163-7223ORCID · corroborated
Domains — the database's venue-derived domains; a paper can count in several
Systems, architecture and hardware · 1Software engineering, systems software and programming languages · 1Theory of computation · 1Applied, interdisciplinary, general and emerging computing · 1
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
2 papers |
Emerging computing paradigms · 100% |
Topics — the 6 heaviest of 6, each with the papers that count most for it
| Topic | Weight | Papers | Last | Evidence papers |
|---|---|---|---|---|
Emerging computing paradigms
quantum computer architecture |
0.8 | 2 | 2020 | Resource-Efficient Quantum Computing by Breaking Abstractions · Proc. IEEE 2020 Asymptotic improvements to quantum circuits via qutrits · ISCA 2019 |
Emerging computing paradigms › quantum computer architecture
quantum error correction |
0.4 | 1 | 2020 | Resource-Efficient Quantum Computing by Breaking Abstractions · Proc. IEEE 2020 |
Emerging computing paradigms › quantum computer architecture › quantum software stack
quantum instruction set |
0.4 | 1 | 2020 | Resource-Efficient Quantum Computing by Breaking Abstractions · Proc. IEEE 2020 |
Emerging computing paradigms › quantum computer architecture
quantum software stack |
0.4 | 1 | 2020 | Resource-Efficient Quantum Computing by Breaking Abstractions · Proc. IEEE 2020 |
Emerging computing paradigms › quantum computing
quantum circuit |
0.4 | 1 | 2019 | Asymptotic improvements to quantum circuits via qutrits · ISCA 2019 |
Emerging computing paradigms › quantum computer architecture › quantum circuit synthesis
quantum gate decomposition |
0.4 | 1 | 2019 | Asymptotic improvements to quantum circuits via qutrits · ISCA 2019 |
Methods — techniques the papers use, named apart from their topics
quantum error correction · 0.4quantum compilation · 0.4circuit simulation · 0.4
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2020 | Resource-Efficient Quantum Computing by Breaking AbstractionsabstractBuilding a quantum computer that surpasses the computational power of its classical counterpart is a great engineering challenge. Quantum software optimizations can provide an accelerated pathway to the first generation of quantum computing (QC) applications that might save years of engineering effort. Current quantum software stacks follow a layered approach similar to the stack of classical computers, which was designed to manage the complexity. In this review, we point out that greater efficiency of QC systems can be achieved by breaking the abstractions between these layers. We review several works along this line, including two hardware-aware compilation optimizations that break the quantum instruction set architecture (ISA) abstraction and two error-correction/information-processing schemes that break the qubit abstraction. Last, we discuss several possible future directions. Yunong Shi, Pranav Gokhale, Prakash Murali, Jonathan M. Baker, Casey Duckering, Yongshan Ding 0001, Natalie C. Brown, Christopher Chamberland, Ali Javadi-Abhari, Andrew W. Cross, David I. Schuster, Kenneth R. Brown, Margaret Martonosi, Fred Chong |
Proc. IEEE | 7 |
| 2020 | Improved Quantum Circuits via Intermediate QutritsabstractQuantum computation is traditionally expressed in terms of quantum bits, or qubits. In this work, we instead consider three-level qu trits . Past work with qutrits has demonstrated only constant factor improvements, owing to the log 2 (3) binary-to-ternary compression factor. We present a novel technique, intermediate qutrits, to achieve sublinear depth decompositions of the Generalized Toffoli and other arithmetic circuits using no additional ancilla—a significant improvement over linear depth for the best qubit-only equivalents. For example, our Generalized Toffoli construction features a 70× improvement in two-qudit gate count over a qubit-only decomposition. This results in circuit cost reductions for important algorithms like quantum neurons, Grover search, and even Shor’s algorithm. Using a previously developed simulator with near-term noise models, we demonstrate for these models over 90% mean reliability (fidelity) for the Toffoli construction, versus under 30% for the qubit-only baseline. For our other constructions, such as the Incrementer, the A + B adder and the +K adder, we demonstrate the power of intermediate qutrits in producing asymptotic depth improvements with no additional ancilla. Together, these results suggest qutrits offer a promising path toward scaling quantum computation. Jonathan M. Baker, Casey Duckering, Pranav Gokhale, Natalie C. Brown, Kenneth R. Brown, Fred Chong |
ACM Trans. Quantum Comput. | 4 |
| 2019 | Asymptotic improvements to quantum circuits via qutritsabstractQuantum computation is traditionally expressed in terms of quantum bits, or qubits. In this work, we instead consider three-level qutrits. Past work with qutrits has demonstrated only constant factor improvements, owing to the log2(3) binary-to-ternary compression factor. We present a novel technique using qutrits to achieve a logarithmic depth (runtime) decomposition of the Generalized Toffoli gate using no ancilla-a significant improvement over linear depth for the best qubit-only equivalent. Our circuit construction also features a 70x improvement in two-qudit gate count over the qubit-only equivalent decomposition. This results in circuit cost reductions for important algorithms like quantum neurons and Grover search. We develop an open-source circuit simulator for qutrits, along with realistic near-term noise models which account for the cost of operating qutrits. Simulation results for these noise models indicate over 90% mean reliability (fidelity) for our circuit construction, versus under 30% for the qubit-only baseline. These results suggest that qutrits offer a promising path towards scaling quantum computation. Pranav Gokhale, Jonathan M. Baker, Casey Duckering, Natalie C. Brown, Kenneth R. Brown, Fred Chong |
ISCA | 4 |