A resource-efficient quantum-walker Quantum RAM
Abstract
Efficient and coherent data retrieval and storage are essential for harnessing quantum algorithms' speedup. Such a fundamental task is addressed by a quantum Random Access Memory (qRAM). Despite their promising scaling properties, current qRAM proposals demand excessive resources and rely on operations beyond the capabilities of current hardware requirements, rendering their practical realization inefficient. We introduce a novel architecture that significantly reduces resource requirements while preserving optimal complexity scaling for quantum queries. Moreover, unlike previous proposals, our algorithm design leverages a simple, repeated operational block based exclusively on local unitary operations and short-range interactions between a limited number of quantum walkers traveling over a single binary tree. This novel approach not only simplifies experimental requirements by reducing the complexity of necessary operations but also enhances the architecture's scalability by ensuring a resource-efficient, modular design that maintains optimal quantum query performance.
Cite
@article{arxiv.2508.02855,
title = {A resource-efficient quantum-walker Quantum RAM},
author = {Giuseppe De Riso and Giuseppe Catalano and Seth Lloyd and Vittorio Giovannetti and Dario De Santis},
journal= {arXiv preprint arXiv:2508.02855},
year = {2026}
}
Comments
5+17 pages, 8 figures; v2: improved circuit depth through new parallelization scheme, fixed some typos