Events

A modular quantum computer based on bivariate bicycle codes: quantum error correction with long-range connected qubits

Michael Beverland, IBM Quantum

We present the bicycle architecture, a modular quantum computing framework based on high-rate, low-overhead quantum LDPC codes identified in prior work. For two specific bivariate bicycle codes with distances 12 and 18, we construct explicit fault-tolerant logical instruction sets and estimate the logical error rate of the instructions under circuit noise. We develop a compilation strategy adapted to the constraints of the bicycle architecture, enabling large-scale universal quantum circuit execution. Integrating these components, we perform end-to-end resource estimates demonstrating that an order of magnitude larger logical circuits can be implemented with a given number of physical qubits on the bicycle architecture than on surface code architectures. We anticipate further improvements through advances in code constructions, circuit designs, and compilation techniques.

Date

Oct 28 2025
Expired!

Time

1:30 pm - 2:30 pm

Location

C421 Physics and Astronomy Building
C421 Physics and Astronomy Building

Other Locations

Cyber Space
Cyber Space
Category

Organizer

Xiaojun Yao
Email
xjyao@uw.edu