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Jeongrak Son

@perp-waterfall.bsky.social
401 followers 296 following 32 posts

PhD student @ NTU Singapore Quantum Information and Thermodynamics jeongrak-son.github.io

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Reposted by Jeongrak Son
bihong.bsky.social @bihong.bsky.social · 15/01/2026
(2) quantum-journal.org/papers/q-202..., with coauthor Yudai Suzuki, @marekgluza.mathstodon.xyz.ap.brid.gy @perp-waterfall.bsky.social @nellynghy.bsky.social @qzoeholmes.bsky.social (meme creator). A new recipe for implementing polynomial transformation of a Hermitian matrix without post selection~~
quantum-journal.org
Double-bracket algorithm for quantum signal processing without post-selection
Yudai Suzuki, Bi Hong Tiang, Jeongrak Son, Nelly H. Y. Ng, Zoe Holmes, and Marek Gluza, Quantum 9, 1954 (2025). Quantum Signal Processing (QSP), a framework for implementing matrix-valued polynomials,...
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Reposted by Jeongrak Son
bihong.bsky.social @bihong.bsky.social · 15/01/2026
Two double-bracket works just jumped out🧑‍🍳🧑‍🍳— (1) PRL journals.aps.org/prl/abstract... With coauthors @marekgluza.mathstodon.xyz.ap.brid.gy @perp-waterfall.bsky.social @nellynghy.bsky.social @qzoeholmes.bsky.social, Yudai Suzuki, René Zander, Raphael Seidel
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Reposted by Jeongrak Son
Marek Gluza @marekgluza.mathstodon.xyz.ap.brid.gy · 12/01/2026
Double-bracket quantum imaginary-time evolution - a #quantum algorithm for implementing ground-states of local Hamiltonians is now published at PRL. journals.aps.org/prl/abstract/10.11… and the equivalent freely accessible preprint is here arxiv.org/abs/2412.04554 […]
mathstodon.xyz
Original post on mathstodon.xyz
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Jeongrak Son @perp-waterfall.bsky.social · 09/09/2025
Last week I defended my thesis "Quantum Qomrades: Catalysts in Resource Theories and Memories in Dynamic Programming". This journey was possible thanks to all my human comrades, especially my amazing adviser @nellynghy.bsky.social !
Jeongrak receives a cake and a hat for celebration
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Alex @itsmealeale.bsky.social · 11/08/2025
Our tutorial "A friendly guide to exorcising Maxwell's demon" (journals.aps.org/prxquantum/p...) is out! The big question after the tutorial is whether I’m finally done drawing demons?
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Jeongrak Son @perp-waterfall.bsky.social · 23/07/2025
This is actually the first no-go result for robust catalysis (i.e. catalytic transformations that are catalytic even with small state preparation noise) outside completely resource non-generating operations. Next step: robust catalysis in LOCC or stabiliser operations?🥴🥴
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Reposted by Jeongrak Son
Henrik Wilming @arrr.de · 23/07/2025
A fun project with Seok Hyung, Jeongrak ( @perp-waterfall.bsky.social ), @nellynghy.bsky.social , and Paul Boes. We dusted off some old notes because there seemed to be renewed interest in what differentiates thermal operations from Gibbs-preserving maps. arxiv.org/abs/2507.16637
arxiv.org
Thermal operations from informational equilibrium
Thermal operations are quantum channels that have taken a prominent role in deriving fundamental thermodynamic limitations in quantum systems. We show that these channels are uniquely characterized by...
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Reposted by Jeongrak Son
Nelly Ng @nellynghy.bsky.social · 23/07/2025
Years down the road, Jeongrak and I were trying to figure out whether robust catalytic advantage exists for thermal operations. We then realized that the conceptual key was hidden in those early, unannounced results by our friends all along! arxiv.org/abs/2412.06900
arxiv.org
Robust Catalysis and Resource Broadcasting: The Possible and the Impossible
In resource theories, catalysis refers to the possibility of enabling otherwise inaccessible quantum state transitions by providing the agent with an auxiliary system, under the condition that this au...
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Nelly Ng @nellynghy.bsky.social · 23/07/2025
Whether or not you're a fan of thermal operations, there's something fundamentally special about them: by pinning down what it means to equilibrate, thermal operations uniquely emerge! With this, we also uncover nice hierarchy of unital channels, in contrast with the classical Birkhoff theorem.
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The Hilbert Space Post @hilbertspacepost.bsky.social · 22/07/2025
Grover's algorithm is reinterpreted as a product formula approximation of imaginary-time evolution in a new paper. @marekgluza.mathstodon.xyz.ap.brid.gy @perp-waterfall.bsky.social @nellynghy.bsky.social @qzoeholmes.bsky.social arxiv.org/abs/2507.15065
arxiv.org
Grover's algorithm is an approximation of imaginary-time evolution
We reveal the power of Grover's algorithm from thermodynamic and geometric perspectives by showing that it is a product formula approximation of imaginary-time evolution (ITE), a Riemannian gradient f...
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Reposted by Jeongrak Son
Zoe Holmes @qzoeholmes.bsky.social · 22/07/2025
Finally, we show that quantum signal processing can be used to implement imaginary time evolution for unstructured search without post selection. And this enables us to design a new `fixed-point' quantum search algorithm i.e., a Grover type algorithm that never overshoots the solution
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Zoe Holmes @qzoeholmes.bsky.social · 22/07/2025
Here's a new perspective on why Grover’s algorithm algorithm works: Unstructured search can be written as ground state problem. Then Grover's is just a product formula approximation of imaginary-time evolution or, equivalently, a Riemannian gradient flow on SU(d) to find this ground state.
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bihong.bsky.social @bihong.bsky.social · 22/07/2025
Check out this arXiv paper if you're interested! arxiv.org/abs/2507.15065
arxiv.org
Grover's algorithm is an approximation of imaginary-time evolution
We reveal the power of Grover's algorithm from thermodynamic and geometric perspectives by showing that it is a product formula approximation of imaginary-time evolution (ITE), a Riemannian gradient f...
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Reposted by Jeongrak Son
bihong.bsky.social @bihong.bsky.social · 22/07/2025
Our Grover preprint just popped up! (with Yudai Suzuki, @qzoeholmes.bsky.social, @marekgluza.mathstodon.xyz.ap.brid.gy, @nellynghy.bsky.social, @perp-waterfall.bsky.social) Turns out… Grover's algorithm is secretly moonlighting as a first-order approximation to the imaginary time evolution!
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Jeongrak Son @perp-waterfall.bsky.social · 21/05/2025
Our paper (w/ Marek, @ryujitakagi.bsky.social, @nellynghy.bsky.social ) on Quantum Dynamic Programming has recently been published in PRL: journals.aps.org/prl/abstract... Xin Yi from CQT wrote a great highlight article for this paper: www.cqt.sg/highlight/20...
journals.aps.org
Quantum Dynamic Programming
We introduce a quantum extension of dynamic programming, a fundamental computational method that efficiently solves recursive problems using memory. Our innovation lies in showing how to coherently ge...
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Jeongrak Son @perp-waterfall.bsky.social · 04/04/2025
Thm.2 is derived from Eq. (16), which I am particularly fond of. This equation shows that any linear combination of a Hermitian matrix and the identity can be applied to a quantum state exactly and deterministically (given one can synthesise the exponential of a commutator).
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Zoe Holmes @qzoeholmes.bsky.social · 03/04/2025
Today we posted a paper showing how a double-bracket quantum algorithm can implement quantum signal processing (DB-QSP), i.e., apply polynomial functions of operators to states. Crucially our approach doesn't need any post-selection - but this comes at the expense of increased circuit depths.
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The Hilbert Space Post @hilbertspacepost.bsky.social · 03/04/2025
A new paper introduces Double-Bracket QSP (DB-QSP), a novel quantum signal processing approach that eliminates the need for auxiliary qubits and post-selection by using approximate unitary synthesis. arxiv.org/abs/2504.01077
arxiv.org
Double-bracket algorithm for quantum signal processing without post-selection
Quantum signal processing (QSP), a framework for implementing matrix-valued polynomials, is a fundamental primitive in various quantum algorithms. Despite its versatility, a potentially underappreciat...
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Reposted by Jeongrak Son
Mark M. Wilde @markwilde.bsky.social · 18/03/2025
Nelly Ng "Robust Catalysis and Resource Broadcasting: The Possible and the Impossible" #QuantumResources2025 I asked if there might be implications for Deutschian closed timelike curves. When I asked my question, I wasn't so serious, but thinking more afterwards, I think there is more to explore
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Jeongrak Son @perp-waterfall.bsky.social · 11/12/2024
Another paper of the week! scirate.com/arxiv/2412.0... In resource theories, catalysis provides many amazing advantages. However, it turns out that whenever there is system preparation error, most of them stop being catalytic. Fret not! We introduced a new class that is robust under such errors.
catalytic advantages go away as soon as state preparation noise comes
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Zoe Holmes @qzoeholmes.bsky.social · 09/12/2024
Nature cools things easily but getting a quantum computer to do it is hard! Give us an approx ground state, we present an algorithm that approximates imaginary time evolution to: - Cool that state by an amount proportional to its energy fluctuations - Increase its fidelity with the ground state
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Jeongrak Son @perp-waterfall.bsky.social · 09/12/2024
New preprint on arXiv! scirate.com/arxiv/2412.0... Quantum imaginary-time evolution (QITE) is amazing, but its compilation is not straightforward. We found an iterative way of doing this, using the equivalence of QITE and double-bracket flows.
scirate.com
Double-bracket quantum algorithms for quantum imaginary-time evolution
Efficiently preparing approximate ground-states of large, strongly correlated systems on quantum hardware is challenging and yet nature is innately adept at this. This has motivated the study of therm...
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arXiv bot (quant-ph) @krxiv-quant-ph.bsky.social · 09/12/2024
Double-bracket quantum algorithms for quantum imaginary-time evolution arxiv.org/pdf/2412.04554 Marek Gluza, Jeongrak Son, Bi Hong Tiang, Yudai Suzuki, Zoë Holmes, Nelly H. Y. Ng
arxiv.org
https://arxiv.org/abs/2412.04554
arXiv abstract link
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