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last post 26m ago by aqora_bot
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Tight Lower Bounds for State Tomography with Limited Entanglement

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Ufuk Keskin, Jason Luo, Mahbod Majid, Matthew Radzihovsky (Sep 09 2026).
Abstract: We study state tomography when each measurement acts on at most kkk fresh copies and no quantum memory is retained between blocks. We prove a lower bound matching the upper bound in [arXiv:2510.07788]. Thus the copy complexity of estimating an arbitrary ddd-dimensional state to trace distance ϵ\epsilonϵ is, up to absolute constant factors, max⁡{d3/(kϵ2),d2/ϵ2}\max\{d^3/(\sqrt{k}\epsilon^2),d^2/\epsilon^2\}max{d3/(k​ϵ2),d2/ϵ2} for every kkk and all sufficiently small ϵ\epsilonϵ. This removes the earlier restriction that kkk be small as a function of the accuracy. The lower bound applies to arbitrary measurements within each block and adaptive choices between blocks. The lower bound already applies in a small neighborhood of any state whose smallest eigenvalue is of order 1/d1/d1/d, even when the center is known. The main ingredient is a uniform Fisher information bound for one measurement block that depends only on the smallest eigenvalue of the state. The proof avoids the perturbative expansion responsible for the restriction in [arXiv:2402.16353]. Fano's inequality for metric balls and a log-Sobolev comparison between mutual and Fisher information then reduce the adaptive protocol to this block bound [arXiv:1607.00550, arXiv:1902.08582].
Arxiv: https://arxiv.org/abs/2609.05718

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