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Francisca Vasconcelos

@franvasco.bsky.social
349 followers 88 following 37 posts

CS PhD Student @ UC Berkeley Interested in Quantum Algorithms & Complexity + Machine Learning Qubit x Qubit Founding Academic Director franciscavasconcelos.github.io

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Francisca Vasconcelos @franvasco.bsky.social · 01/10/2026
Did you know there was a quartic quantum advantage for SDP solving? Unfortunately, we show it's only a quadratic speedup by dequantizing the Quantum OR lemma... 🥲 But, our quantum-inspired algorithm is the first sublinear time classical solver for general sparse SDPs! 🥳 arxiv.org/abs/2609.40302
arxiv.org
Solving Sparse SDPs in Sublinear Time: A Classical Algorithm Inspired by the Quantum OR Lemma
We give the first sublinear-time classical solvers for sparse semidefinite programs in the bounded-radius regime, without low-rank assumptions or Frobenius norm dependence on the constraint matrices. ...
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Francisca Vasconcelos @franvasco.bsky.social · 01/10/2026
I am very excited to share my recent work, "Depth-Optimal Quantum Compilation". Per usual, this project started with a question about QAC^0, but led down an interesting gate-synthesis rabbit hole... There are a number of cool take-aways and results (summarized below). arxiv.org/abs/2609.34659
arxiv.org
Depth-Optimal Quantum Compilation
We achieve the first constant-depth circuit for arbitrary single-qubit gate synthesis. Unlike prior approaches, the construction is fully unitary and requires no pre-supplied catalyst. For any constan...
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Ben Recht @beenwrekt.bsky.social · 11/09/2026
Ted Chiang wrote the definitive essay on p(doom) in 2017. It's worth reading again in light of this week's events.
buzzfeednews.com
Silicon Valley Is Turning Into Its Own Worst Fear
We asked a group of writers to consider the forces that have shaped our lives in 2017. Here, science fiction writer Ted Chiang looks at capitalism, Silicon Valley, and its fear of superintelligent AI.
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Francisca Vasconcelos @franvasco.bsky.social · 09/09/2026
Today I put out a short note outlining a new decision separation between QAC^0 and AC^0, based on 2-fold Forrelation! In particular, I give a QAC^0 circuit implementing explicit -input, non-oracular 2-Fold Forrelation. arxiv.org/abs/2609.07060
arxiv.org
2-Fold Forrelation is in QAC$^0$
We show that 2-fold Forrelation with inverse-polylogarithmic promise gap can be solved, with bounded error, by polynomial-size QAC$^0$ circuits. Unlike the standard oracle-based Forrelation algorithm,...
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Quanta Magazine @quantamagazine.org · 17/02/2026
Henry Yuen went into computer science to design video games, but he ended up studying the theoretical foundations of quantum computing. "Looking back, I couldn't have predicted any of the twists and turns that my interests have taken," he said.
quantamagazine.org
A New Complexity Theory for the Quantum Age | Quanta Magazine
Henry Yuen is developing a new mathematical language to describe problems whose inputs and outputs aren’t ordinary numbers.
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Francisco Machado @fmachado.eu · 16/02/2026
I'm currently hiring PhD students for my group at QuTech. If you are (or know of) a theory MSc student interested in the theory of how we can utilize quantum systems for new forms of communication, sensing, and simulation, I have a vacancy up. Please check: qutech.nl/vacancy/2-ph...
qutech.nl
2 PhD's Positions on Quantum Communication, Sensing and Simulation - QuTech
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Francisca Vasconcelos @franvasco.bsky.social · 16/01/2026
Very excited to share a new paper with Malvika Joshi (@malvikaraj.bsky.social) on "Constant-Depth Unitary Preparation of Dicke States"! In this work, we offer the first unitary, constant-depth circuits for exact preparation of arbitrary-weight Dicke states. arXiv: arxiv.org/abs/2601.10693
arxiv.org
Constant-Depth Unitary Preparation of Dicke States
Dicke states serve as a critical resource in quantum metrology, communication, and computation. However, unitary preparation of Dicke states is limited to logarithmic depth in standard circuit models ...
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John Preskill @preskill.bsky.social · 06/01/2026
Dominik Hangleiter weighs in with an informative post about a much debated question: Has quantum advantage been achieved? This is the first post in a three-part series. quantumfrontiers.com/2026/01/06/h...
quantumfrontiers.com
Has quantum advantage been achieved?
Recently, I gave a couple of perspective talks on quantum advantage, one at the annual retreat of the CIQC and one at a recent KITP programme. I started off by polling the audience on who believed …
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Francisca Vasconcelos @franvasco.bsky.social · 17/12/2025
Very excited to share a new paper with Malvika Joshi, Avishay Tal, and John Wright on “Improved Lower Bounds for QAC^0”! In this work, we prove the strongest known lower-bounds to date for QAC^0 with the full power of polynomially many ancillae. arXiv: arxiv.org/abs/2512.14643
arxiv.org
Improved Lower Bounds for QAC0
In this work, we establish the strongest known lower bounds against QAC$^0$, while allowing its full power of polynomially many ancillae and gates. Our two main results show that: (1) Depth 3 QAC$^0...
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Tom Gur @tomgur.bsky.social · 20/11/2025
Join us for the first Quantum Cambridge–Oxford–Warwick Colloquium (Quantum COW, if you insist...), 11–12 December 2025 at the University of Oxford. This meeting focuses on Quantum Low-Depth Complexity, with talks, tutorials, and open discussions. Details: qcow.cs.ox.ac.uk
qcow.cs.ox.ac.uk
QCOW
Department of Computer Science - People: Sergii Strelchuk - QCOW
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Francisca Vasconcelos @franvasco.bsky.social · 23/09/2025
I was very excited to present my first research project on quantum algorithms at QSim 2025! This work, joint with András Gilyén, develops new space-time and space-accuracy tradeoffs for manipulation of block encodings, helping reduce ancilla-overhead in quantum algorithms. youtu.be/7AaZzzoSAic?...
youtu.be
Francisca Vasconcelos: “Methods for Reducing Ancilla-Overhead in Block Encodings”
YouTube video by Institute for Robust Quantum Simulation
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Francisca Vasconcelos @franvasco.bsky.social · 19/08/2025
In exciting new work with Ben Foxman, @nat-parham.bsky.social , and @henryyuen.bsky.social we show that t-designs and pseudorandom unitaries are implementable in constant (quantum) time! arxiv.org/abs/2508.11487
arxiv.org
Random Unitaries in Constant (Quantum) Time
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 unitar...
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Francisca Vasconcelos @franvasco.bsky.social · 02/07/2025
What better way to celebrate the 100th anniversary of quantum mechanics than a foundations conference in Gdańsk? I especially enjoyed learning about modern work on contextuality, quantum speed limits, & generalized probability + sharing ideas on connections between quantum logic and the QSVT ⚛️
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Francisca Vasconcelos @franvasco.bsky.social · 18/06/2025
I had a lot of fun giving my first philosophy (lightning) talk and catching up with quantum learning theory friends at Foundations of Quantum Computing 2025, in Edinburgh!
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Quantum [Unofficial] @quantum-journal.org.web.brid.gy · 06/05/2025
quantum-journal.org
A Quadratic Speedup in Finding Nash Equilibria of Quantum Zero-Sum Games
Quantum 9, 1737 (2025). https://doi.org/10.22331/q-2025-05-06-1737 Recent developments in domains such as non-local games, quantum interactive proofs, and quantum generative adversarial networks have renewed interest in quantum game theory and, specifically, quantum zero-sum games. Central to classical game theory is the efficient algorithmic computation of Nash equilibria, which represent optimal strategies for both players. In 2008, Jain and Watrous proposed the first classical algorithm for computing equilibria in quantum zero-sum games using the Matrix Multiplicative Weight Updates (MMWU) method to achieve a convergence rate of $\mathcal{O}(d/\epsilon^2)$ iterations to $\epsilon$-Nash equilibria in the $4^d$-dimensional spectraplex. In this work, we propose a hierarchy of quantum optimization algorithms that generalize MMWU via an extra-gradient mechanism. Notably, within this proposed hierarchy, we introduce the Optimistic Matrix Multiplicative Weights Update (OMMWU) algorithm and establish its average-iterate convergence complexity as $\mathcal{O}(d/\epsilon)$ iterations to $\epsilon$-Nash equilibria. This quadratic speed-up relative to Jain and Watrous' original algorithm sets a new benchmark for computing $\epsilon$-Nash equilibria in quantum zero-sum games. Surfing the Ocean ERC seminar talk: QTML talk slides
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David Ho @davidho.bsky.social · 04/05/2025
I think a lot about what Carl Sagan said in one of his final interviews.
"WE'VE ARRANGED A society based on science and technology, in which nobody understands anything about science technology. And this combustible mixture of ignorance and power, sooner or later, is going to blow up in our faces. Who is running the science and technology in a democracy if the people don't know anything about it?"
"Science is more than a body of knowledge, it's a way of thinking. A way of skeptically interrogating the universe with a fine understanding of human fallibility. If we are not able to ask skeptical questions, to interrogate those who tell us that something is true, to be skeptical of those in authority, then we're up for grabs for the next charlatan, political or religious, who comes ambling along."
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Francisca Vasconcelos @franvasco.bsky.social · 17/03/2025
Last week, I spoke at the Surfing the Ocean ERC seminar on faster classical algorithms for finding Nash equilibria of quantum zero-sum games. In particular, we achieve an O(1/\eps) convergence rate -- a quadratic speedup over the Jain-Watrous MMWU algorithm (2009). www.youtube.com/watch?v=lw0J...
youtube.com
Surfing the OCEAN - Francisca Vasconcelos
YouTube video by Erc Ocean
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Francisca Vasconcelos @franvasco.bsky.social · 08/02/2025
On behalf of Qubit x Qubit: 🚀 Calling all Quantum Computing and Cybersecurity Companies in NY! We're seeking internship hosts in NY state to provide hands-on experience in quantum computing and cybersecurity! 📨 If you’re in NY state and are interested in more details, email us at eqci@the-cs.org.
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Francisca Vasconcelos @franvasco.bsky.social · 18/12/2024
At QTML 2024, I spoke about recent work with Robert Huang on "Learning shallow quantum circuits with many-qubit gates" (a.k.a. efficient learning of QAC^0 unitaries). In this ~15min talk I discuss the project motivation, key results, and high-level proof ideas. www.youtube.com/watch?v=iRiJ...
youtube.com
Learning shallow quantum circuits with many-qubit gates - Francisca Vasconcelos
YouTube video by QTML Conference
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Francisca Vasconcelos @franvasco.bsky.social · 12/12/2024
Very excited that our work was featured on @tomgur.bsky.social's 2024 advent calendar, alongside many great math/TCS talks from the year! 😊
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Jens Eisert @jenseisert.bsky.social · 26/11/2024
Day two of #qtml2024 brings another bouquet of exciting talks, e.g, by Maria Schuld and Kristan Temme - and also my plenary talk and a small technical talk have been happening today. I like how the meeting is developing: Lots of solid, rigorous technical work.
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