English

Measurement-Driven Adaptive Low-Overhead Implementation of Multi-Controlled Toffoli Gates

Quantum Physics 2026-05-21 v1 Emerging Technologies

Abstract

The Toffoli gate is a fundamental building block for quantum arithmetic and reversible logic, yet its efficient realization remains a major challenge in both near-term and fault-tolerant quantum architectures. Recent advances in dynamic quantum circuit capabilities, including mid-circuit measurement and classical feedforward, provide new opportunities for reducing the resource overhead of non-Clifford operations. In this work, we propose a set of dynamic decomposition strategies for multi-controlled Toffoli gates that exploit adaptive circuit execution and ancilla-assisted constructions. Our methods systematically reduce entangling-gate count, T-count, and T-depth compared with conventional static decompositions, while preserving fault-tolerance guarantees. Through analytical cost models and experimental evaluation, we demonstrate that relative-phase primitives and measurement-conditioned corrections enable scalable implementations with improved depth and resource efficiency.

Keywords

Cite

@article{arxiv.2605.18159,
  title  = {Measurement-Driven Adaptive Low-Overhead Implementation of Multi-Controlled Toffoli Gates},
  author = {Abhoy Kole and Till Schnittka and Rolf Drechsler},
  journal= {arXiv preprint arXiv:2605.18159},
  year   = {2026}
}
R2 v1 2026-07-22T07:18:41.649Z