activity
20242026
collaborators

7 papers

quant-ph2026

X-Z Round Scheduling for the Surface Code with Defects under Biased Noise

Lakshika Rathi, Pau Escofet, Joshua Viszlai +1

Fault-tolerant Quantum Computing (FTQC) relies on Quantum Error Correction (QEC) codes that encode logical qubits across many physical qubits to detect and correct errors. The surf…

quant-ph2026

An Analysis of Speculative Window Decoders for Quantum Error Correction

Jocelyn Li, Margaret Martonosi

Fault-tolerant quantum computing is essential for realizing the substantial computational speedups that quantum computing can bring, but it requires real-time error decoding with h…

quant-ph2026

PropHunt: Automated Optimization of Quantum Syndrome Measurement Circuits

Joshua Viszlai, Satvik Maurya, Swamit Tannu +2

Fault-Tolerant Quantum Computing (FTQC) relies on Quantum Error Correction (QEC) codes to reach error rates necessary for large scale quantum applications. At a physical level, QEC…

quant-ph2025

Statistical Assertions for Debugging Quantum Circuits and States in CUDA-Q

Jocelyn Li, Ella Rubinshtein, Margaret Martonosi

As quantum computing continues to mature, more developers are designing, coding, and simulating quantum circuits. A challenge exists, however, in debugging quantum circuits, partic…

cs.ET2025

TensorQC: Towards Scalable Distributed Quantum Computing via Tensor Networks

Wei Tang, Margaret Martonosi

A quantum processing unit (QPU) must contain a large number of high quality qubits to produce accurate results for problems at useful scales. In contrast, most scientific and indus…

quant-ph2024

Quantum-centric Supercomputing for Materials Science: A Perspective on Challenges and Future Directions

Yuri Alexeev, Maximilian Amsler, Paul Baity +124

Computational models are an essential tool for the design, characterization, and discovery of novel materials. Hard computational tasks in materials science stretch the limits of e…