Sophia Fuhui Lin

dblp:278/6100 · DBLP profile ↗
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7ranked-venue papers
2as first author
6since 2021 · last 2026
0009-0005-0226-6093ORCID · corroborated

Domains — the database's venue-derived domains; a paper can count in several

Systems, architecture and hardware · 6 · 2 first-author · 5 since 2021Software engineering, systems software and programming languages · 2 · 1 first-author · 2 since 2021Theory of computation · 1 · 1 since 2021
YearPublicationVenuePosition
2026 qSIEVE: Efficient qLDPC Memory via Systolic Movement in Atom Arrays
abstract
As quantum machines have scaled up in their number of qubits, significant research has turned towards increasing their fidelity with quantum error correction codes. Although promising results have been shown with the surface code, which only requires near-neighbor connections between qubits, the high qubit overhead of such local codes promises to be problematic. Consequently, recent work has explored non-local quantum LDPC (qLDPC) codes, which have good asymptotic encoding rates. Despite theoretical progress, hardware implementations of these codes have been a longstanding challenge. At the experimental level, demonstrations of movement based communication on atom arrays suggest this is a powerful new primitive to achieve non-local connectivity. Leveraging this, we present a protocol for implementing non-local qLDPC codes in hardware. Our protocol, qSIEVE, is a co-design of such codes with movement in atom arrays. qSIEVE defines a restricted family of qLDPC codes that can be implemented efficiently with systolic movement. We then quantify the utility of qSIEVE in the context of a complete fault tolerant architecture. We compare the cost of implementing benchmark programs in a standard, surface code only architecture and a mixed architecture where data is stored in qLDPC memory with qSIEVE and loaded to surface codes for computation.
Joshua Viszlai, Willers Yang, Sophia Fuhui Lin, Junyu Liu, Natalia Nottingham, Jonathan M. Baker, Fred Chong
ACM Trans. Quantum Comput.3
2025 Interleaved Logical Qubits in Atom Arrays
abstract
Neutral atom arrays have seen exciting progress as a platform for quantum computation. However, as we move towards the regime of fault-tolerance, the large-scale impact of fundamental features in these systems is not well-studied. In this work we point out that the use of movement in neutral atom arrays may set an unavoidable constraint on the speed of computation, erasing potential quantum advantage. As one solution, we propose a movement-free QEC architecture based on groups of interleaved surface codes. Our architecture enables fast, high-fidelity transversal CNOTs on surface codes in the same group. We also introduce interleaved lattice surgery to create high-capacity routing channels between groups. We validate our architecture through detailed numerical simulations of the underlying circuits and we evaluate its scalability through compilation of key benchmark applications. In regimes of high parallelism, we find our architecture leads to a $\sim 3 \times$ reduction in compute time. Our architecture leverages experimentally demonstrated dualspecies atom arrays which exhibit asymmetric interaction strengths that scale with $1 / r^{3}$ for interspecies interactions and with $1 / r^{6}$ for standard, intraspecies interactions. We examine how such scalings enable interleaving with high fidelity and propose how error rates required for QEC could be achieved. We also evaluate the tolerance of our architecture to two-qubit gate fidelities. We find the advantage of interleaving admits sizable tolerances of $\sim 1 \times$ to $3 \times$ increase in error rates. We conclude the benefits of our proposed interleaved architecture grants strong motivation for future experimental efforts targeting longer range dual-species gates.
Joshua Viszlai, Sophia Fuhui Lin, Siddharth Dangwal, Conor Bradley, Vikram Ramesh, Jonathan M. Baker, Hannes Bernien, Fred Chong
HPCA2
2024 Codesign of quantum error-correcting codes and modular chiplets in the presence of defects
abstract
Fabrication errors pose a significant challenge in scaling up solid-state quantum devices to the sizes required for fault-tolerant (FT) quantum applications. To mitigate the resource overhead caused by fabrication errors, we combine two approaches: (1) leveraging the flexibility of a modular architecture, (2) adapting the procedure of quantum error correction (QEC) to account for fabrication defects.
Sophia Fuhui Lin, Joshua Viszlai, Kaitlin N. Smith, Gokul Subramanian Ravi, Charles Yuan, Fred Chong, Benjamin J. Brown
ASPLOS (2)1
2023 Better Than Worst-Case Decoding for Quantum Error Correction
abstract
The overheads of classical decoding for quantum error correction in cryogenic quantum systems grow rapidly with the number of logical qubits and their correction code distance. Decoding at room temperature is bottlenecked by refrigerator I/O bandwidth while cryogenic on-chip decoding is limited by area/power/thermal budget.
Gokul Subramanian Ravi, Jonathan M. Baker, Arash Fayyazi, Sophia Fuhui Lin, Ali Javadi-Abhari, Massoud Pedram, Fred Chong
ASPLOS (2)4
2023 HetArch: Heterogeneous Microarchitectures for Superconducting Quantum Systems
abstract
Noisy Intermediate-Scale Quantum Computing (NISQ) has dominated headlines in recent years, with the longer-term vision of Fault-Tolerant Quantum Computation (FTQC) offering significant potential albeit at currently intractable resource costs and quantum error correction (QEC) overheads. For problems of interest, FTQC will require millions of physical qubits with long coherence times, high-fidelity gates, and compact sizes to surpass classical systems. Just as heterogeneous specialization has offered scaling benefits in classical computing, it is likewise gaining interest in FTQC. However, systematic use of heterogeneity in either hardware or software elements of FTQC systems remains a serious challenge due to the vast design space and variable physical constraints.
Samuel A. Stein, Sara Sussman, Teague Tomesh, Charlie Guinn, Esin Tureci, Sophia Fuhui Lin, James Ang 0001, Srivatsan Chakram, Ang Li 0006, Margaret Martonosi, Fred Chong, Andrew A. Houck, Isaac L. Chuang, Michael DeMarco
MICRO6
2022 Let Each Quantum Bit Choose Its Basis Gates
abstract
Near-term quantum computers are primarily limited by errors in quantum operations (or gates) between two quantum bits (or qubits). A physical machine typically provides a set of basis gates that include primitive 2-qubit (2Q) and 1-qubit (1Q) gates that can be implemented in a given technology. 2Q entangling gates, coupled with some 1Q gates, allow for universal quantum computation. In superconducting technologies, the current state of the art is to implement the same 2Q gate between every pair of qubits (typically an XX-or XY-type gate). This strict hardware uniformity requirement for 2Q gates in a large quantum computer has made scaling up a time and resource-intensive endeavor in the lab. We propose a radical idea – allow the 2Q basis gate(s) to differ between every pair of qubits, selecting the best entangling gates that can be calibrated between given pairs of qubits. This work aims to give quantum scientists the ability to run meaningful algorithms with qubit systems that are not perfectly uniform. Scientists will also be able to use a much broader variety of novel 2Q gates for quantum computing. We develop a theoretical framework for identifying good 2Q basis gates on “nonstandard” Cartan trajectories that deviate from “standard” trajectories like XX. We then introduce practical methods for calibration and compilation with nonstandard 2Q gates, and discuss possible ways to improve the compilation. To demonstrate our methods in a case study, we simulated both standard XY-type trajectories and faster, nonstandard trajectories using an entangling gate architecture with far-detuned transmon qubits. We identify efficient 2Q basis gates on these nonstandard trajectories and use them to compile a number of standard benchmark circuits such as QFT and QAOA. Our results demonstrate an 8x improvement over the baseline 2Q gates with respect to speed and coherence-limited gate fidelity.
Sophia Fuhui Lin, Sara Sussman, Casey Duckering, Pranav S. Mundada, Jonathan M. Baker, Rohan S. Kumar, Andrew A. Houck, Fred Chong
MICRO1
2020 Systematic Crosstalk Mitigation for Superconducting Qubits via Frequency-Aware Compilation
abstract
One of the key challenges in current Noisy Intermediate-Scale Quantum (NISQ) computers is to control a quantum system with high-fidelity quantum gates. There are many reasons a quantum gate can go wrong - for superconducting transmon qubits in particular, one major source of gate error is the unwanted crosstalk between neighboring qubits due to a phenomenon called frequency crowding. We motivate a systematic approach for understanding and mitigating the crosstalk noise when executing near-term quantum programs on superconducting NISQ computers. We present a general software solution to alleviate frequency crowding by systematically tuning qubit frequencies according to input programs, trading parallelism for higher gate fidelity when necessary. The net result is that our work dramatically improves the crosstalk resilience of tunable-qubit, fixed-coupler hardware, matching or surpassing other more complex architectural designs such as tunable-coupler systems. On NISQ benchmarks, we improve worst-case program success rate by 13.3x on average, compared to existing traditional serialization strategies.
Yongshan Ding 0001, Pranav Gokhale, Sophia Fuhui Lin, Richard Rines, Thomas Propson, Fred Chong
MICRO3