paper

Compiling the 2D Fermi-Hubbard ground-state energy estimation algorithm for active volume quantum architectures

arXiv:2609.05316

Abstract

As quantum computing enters the early fault-tolerant era, circuit compilation choices will increasingly depend on details of the underlying architecture rather than solely optimizing for generic proxies such as non-Clifford count. We present an active-volume-aware compilation of the ground-state energy estimation algorithm for the two-dimensional Fermi-Hubbard model using quantum phase estimation and Trotterized time evolution. The proposed compilation reduces the active volume across square lattices with to , achieving up to a reduction over prior work optimized for non-Clifford cost. As a by-product of these compilation improvements, the resulting circuits also achieve state-of-the-art Toffoli counts, with a ~ reduction for the case. Lastly, the active volume architecture and recent execution scheduling advances provide a means of translating these reduction trends into runtime. This demonstrates the increasing importance of architecture-aware compilation for practical early fault-tolerant quantum computing.

57 pages

Compiling the 2D Fermi-Hubbard ground-state energy estimation algorithm for active volume quantum architectures · wovepaper