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Learning Sparse Quantum States

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Aniruddha Sen (Sep 14 2026).
Abstract: We study the problem of tomography for kkk-sparse quantum states. In contrast to classical distribution learning, where tight sample and time complexity bounds in terms of support size are well understood, no non-trivial bounds were previously shown for this problem. We give the first near optimal algorithm for learning nnn-qubit kkk-sparse pure quantum states, obtaining fidelity at least 1−ε1-\varepsilon1−ε with high probability using O~(k/ε)\tilde{O}(k/\varepsilon)O~(k/ε) copies of the state and O~(kn/ε)\tilde{O}(kn/\varepsilon)O~(kn/ε) time. Both bounds are optimal up to polylogarithmic factors. As an implication, we also obtain an algorithm with near optimal O~(kr/ε)\tilde{O}(kr/\varepsilon)O~(kr/ε) sample complexity for learning kkk-sparse rank-rrr mixed states, via the random purification channel technique. Obtaining time complexity nearly matching the sample complexity, for r>1r>1r>1, remains an important open question.
Arxiv: https://arxiv.org/abs/2609.12219

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