collaborators

8 papers

quant-ph2026

Optimizing Parallel Execution of Commuting Pauli Product Rotations

Sayam Sethi, Devika Nambisan, Jonathan Mark Baker

Fault-Tolerant Quantum Computation (FTQC) permits parallel execution of mutually commuting Pauli Product Rotations (PPRs), but per-qubit access point/port limits (e.g. two X and tw…

quant-ph2026

Price and Payoff: Non-Determinism in Fault Tolerant Quantum Computation

Aditi Awasthi, Sayam Sethi, Sahil Khan +2

A promising approach to achieving scalable fault-tolerant quantum computation is the use of quantum error correction (QEC) codes augmented with magic states i.e. resource states pr…

quant-ph2026

ReloQate: Transient Drift Detection and In-Situ Recalibration in Surface Code Quantum Error Correction

Maxwell Poster, Jason Chadwick, Jonathan Mark Baker

Quantum error correction (QEC) promises to exponentially suppress qubit noise, but typically assumes spatially-uniform and temporally-constant noise rates. However, real quantum ha…

quant-ph2026

INJEQT: Improved Magic-State Injection Protocol for Fault-Tolerant Quantum Extractor Architectures

Sayam Sethi, Sahil Khan, Aditi Awasthi +2

Near-term FTQC system designs are constrained by limited error budgets and largely sequential execution of non-Clifford gates. As a result, reducing the number of the most-error pr…

quant-ph2026

Architecting Early Fault Tolerant Neutral Atoms Systems with Quantum Advantage

Sahil Khan, Sayam Sethi, Kaavya Sahay +6

Recent advancements in neutral atom platforms have enabled exploration of early fault-tolerant (FT) architectures for applications with quantum advantage, such as quantum dynamics…

quant-ph2026

Optimizing Logical Mappings for Quantum Low-Density Parity Check Codes

Sayam Sethi, Sahil Khan, Maxwell Poster +2

Early demonstrations of fault tolerant quantum systems have paved the way for logical-level compilation. For fault-tolerant applications to succeed, execution must finish with a lo…