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20242026
most citedPost-measurement Quantum Monte Carlo

1 citations · 2 across the 5 of their papers we have counts for

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quant-ph2026

Entanglement transitions in translation-invariant tensor networks

Yi-Cheng Wang, Samuel J. Garratt, Ehud Altman

We study the complexity of approximately contracting translation-invariant tensor networks. The computational cost of row-by-row tensor network contraction, which defines a discret…

quant-ph2025

Stability of quantum chaos against weak non-unitarity

Yi-Cheng Wang, Ehud Altman, Samuel J. Garratt

We study the quantum dynamics generated by the repeated action of a non-unitary evolution operator on a system of qubits. Breaking unitarity can lead to the purification of mixed i…

quant-ph2025

Lower bounds on the complexity of preparing mixed states

Max McGinley, Samuel J. Garratt

We establish a relationship between the correlations in a many-qubit mixed state and the minimum circuit depth needed for its preparation. If the mutual information between two sub…

quant-ph2025

Machine learning the effects of many quantum measurements

Wanda Hou, Samuel J. Garratt, Norhan M. Eassa +4

Measurements are essential for the processing and protection of information in quantum computers. They can also induce long-range entanglement between unmeasured qubits. However, w…

quant-ph2025

Entanglement and private information in many-body thermal states

Samuel J. Garratt, Max McGinley

We use concepts from quantum cryptography to relate the entanglement in many-body mixed states to standard correlation functions. If a system can be used as a resource for distilli…

quant-ph2024

Quantum Algorithm to Prepare Quasi-Stationary States

Samuel J. Garratt, Soonwon Choi

Quantum dynamics can be analyzed via the structure of energy eigenstates. However, in the many-body setting, preparing eigenstates associated with finite temperatures requires time…