Ben Foxman

dblp:349/0592 · DBLP profile ↗
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2ranked-venue papers
1as first author
2since 2021 · last 2026
0009-0008-4422-6251ORCID · corroborated

Domains — the database's venue-derived domains; a paper can count in several

Systems, architecture and hardware · 1 · 1 since 2021Theory of computation · 1 · 1 first-author · 1 since 2021

Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.

Computer architecture, parallel and distributed computing, and storage systems
1 paper
Emerging computing paradigms · 100%

Topics — the 3 heaviest of 3, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Emerging computing paradigms
quantum computer architecture
0.712023
Systems Architecture for Quantum Random Access Memory · MICRO 2023
Emerging computing paradigms › quantum computing
quantum memory
0.712023
Systems Architecture for Quantum Random Access Memory · MICRO 2023
Emerging computing paradigms › quantum computer architecture
quantum random access memory
0.712023
Systems Architecture for Quantum Random Access Memory · MICRO 2023

Methods — techniques the papers use, named apart from their topics

QRAM architecture design · 0.7
YearPublicationVenuePosition
2026 Random Unitaries in Constant (Quantum) Time
abstract
Random unitaries are a central object of study in quantum information, with applications to quantum computation, quantum many-body physics, and quantum cryptography. Recent work has constructed unitary designs and pseudorandom unitaries (PRUs) using Θ(log log n)-depth unitary circuits with two-qubit gates. In this work, we show that unitary designs and PRUs can be efficiently constructed in several well-studied models of constant-time quantum computation (i.e., the time complexity on the quantum computer is independent of the system size). These models are constant-depth circuits augmented with certain nonlocal operations, such as (a) many-qubit TOFFOLI gates, (b) many-qubit FANOUT gates, or (c) mid-circuit measurements with classical feedforward control. Recent advances in quantum computing hardware suggest experimental feasibility of these models in the near future. Our results demonstrate that unitary designs and PRUs can be constructed in much weaker circuit models than previously thought. Furthermore, our construction of PRUs in constant-depth with many-qubit TOFFOLI gates shows that, under cryptographic assumptions, there is no polynomial-time learning algorithm for the circuit class QAC⁰. Finally, our results suggest a new approach towards proving that PARITY is not computable in QAC⁰, a long-standing question in quantum complexity theory.
Ben Foxman, Natalie Parham, Francisca Vasconcelos, Henry Yuen
ITCS1
2023 Systems Architecture for Quantum Random Access Memory
abstract
Operating on the principles of quantum mechanics, quantum algorithms hold the promise for solving problems that are beyond the reach of the best-available classical algorithms. An integral part of realizing such speedup is the implementation of quantum queries, which read data into forms that quantum computers can process. Quantum random access memory (QRAM) is a promising architecture for realizing quantum queries. However, implementing QRAM in practice poses significant challenges, including query latency, memory capacity and fault-tolerance.
Shifan Xu, Connor T. Hann, Ben Foxman, Steven M. Girvin, Yongshan Ding 0001
MICRO3