Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-01T04:26:24.897682Z
Paper Citation Record · LEDGER
As of 16 August 2026, this Paper Citation Record lists 45 of 45 outbound references and 1 inbound Pith citation observation for arXiv:2607.22853.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-01T04:26:24.897682Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-16T06:30:59.297886+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-08-01T04:26:20.728306Z
A source-named dated measurement, never combined with another source.
Source: cited_works
45 of 45 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 2ed4693a-d22a-454c-85f1-930c3d4eb78f · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Machine Learning of Quantum Entanglement from Noisy Measurements
Reference 1
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Observation 996b4763-0d83-45c5-bd16-1d560286dc17 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Density Matrix Representation The mathematical description of quantum systems is based on the formalism of Hilbert spaces and linear opera- tors acting upon them
Reference 2
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Observation e2470b6d-f2ab-4a26-a69e-8af767f2e0fc · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Unresolved cited work
Reference 3
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Observation a7724fa5-333c-4b54-9b0c-6d52e3200cd6 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements The analysis is organized according to the two datasets considered in this work
Reference 4
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Observation dea4c43b-03f3-4474-a21d-c63923d8be79 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements The analysis was based on pseudo-experimental measurement data generated us- ing SIC-POVM operators
Reference 5
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Observation 6a4ccd28-4a28-42df-b3b1-4b6ac7122638 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Nielsen and Isaac L
Reference 6
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Observation 09548341-2b82-4ac1-87f9-6bb768966b27 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Quantum entanglement.Rev
Reference 7
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Observation f9c28e57-5814-488f-a410-69f468bc2586 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Unresolved cited work
Reference 8
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Observation 11b15a50-5faf-426c-96c9-9312d38302ac · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Unresolved cited work
Reference 9
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Observation 65aae389-5a7b-4ab8-a317-3258839b551d · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Quantum communication.Nat
Reference 10
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Observation 3e00b7a8-4f6a-47be-87a1-88924343b679 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Andersen, Leonardo Banchi, Mario Berta, Darius Bunandar, Roger Colbeck, Dirk Englund, Tobias Gehring, Cosmo Lupo, Carlo Ottaviani, Joseph Pereira, Mohsen Razavi, Jonatan S
Reference 11
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Observation 920a527f-e2a6-46fc-b718-1284485f4e3f · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Separability criterion for density matrices.Phys
Reference 12
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Observation b6274672-3409-4cb7-b29d-9bf441c71b1c · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Separability of mixed states: Necessary and sufficient conditions.Phys
Reference 13
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Observation 798f8d81-aa4d-4efa-ac75-327d57586181 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Entanglement of a pair of quantum bits.Phys
Reference 14
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Observation c34ad6af-abed-4db2-b5d0-c5e7fd7c006d · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Wootters
Reference 15
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Observation b76edffd-3125-46e2-86e3-dc20520e7038 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Machine learning and the physical sciences.Rev
Reference 16
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Observation 77bc6e3b-f816-4271-b26d-53cffbe2aafc · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Quantum machine learning.Nature, 549(7671):195–202, 2017
Reference 17
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Observation 14535afc-1d8d-43fc-91f1-9c8e166b5ac1 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Neural networks for quantum state tomography with constrained measurements.Quantum Inf
Reference 18
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Observation 5eca2a6b-2d1a-4c48-80b3-2529d1c8f4a8 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Entanglement detection with artificial neural networks.Sci
Reference 19
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Observation 493d8a48-94d4-4a5c-b111-3da2a26d8a5a · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Entanglement detection with classical deep neural networks.Sci
Reference 20
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Observation 475d3575-2d90-441f-856e-3a33dbf10e26 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Deep learning of quantum entanglement from incomplete measurements.Sci
Reference 21
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Observation cb0ebe1d-b830-4eed-8ac5-3deca1a931b6 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Measuring Quantum Entanglement from Local Information by Machine Learning
Reference 22
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Observation c818febc-7512-4d7b-85b5-60494493aa92 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Symmetric informationally complete quantum measurements.J
Reference 23
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Observation 97a65249-63cb-44c4-a003-63dc0927a3f4 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements The sic question: History and state of play.Axioms, 6(3):21, 2017
Reference 24
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Observation 8a4f4e54-fcac-4a47-995a-03cc47b865cb · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Springer Science & Business Media, 2012
Reference 25
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Observation f31b7406-a0cd-4ba7-bfd3-ed967136210e · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Quantum-state estimation.Phys
Reference 26
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Observation c4ccac80-0dec-4f03-a4a8-4607ff41ef5b · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Springer Science & Business Media, 2004
Reference 27
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Observation 67589c50-7619-4bd1-a73f-b22134394ae5 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Minimal number of operators for observability of n-level quantum systems.Int
Reference 28
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Observation 628df48e-75c2-459b-bf87-ad7927789855 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements On complete and incomplete sets of observables, the principle of maximum entropy—revisited
Reference 29
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Observation f5e0fc14-7894-44fc-8b34-b9b4613b5a26 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Selected concepts of quantum state tomography.Optics, 3(3):268–286, 2022
Reference 30
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Observation 7fce15c2-a459-41b3-9d35-2ea4aa03b98b · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Measurement of qubits.Phys
Reference 31
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Observation 1cc4531f-2dd7-4d24-ac83-6ef2dd856ecc · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Minimal qubit tomography.Phys
Reference 32
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Observation fd290f81-95a6-4cbb-a3c8-cc399a0aab8b · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Photon, poisson noise
Reference 33
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Observation b3a5364c-4720-4253-a318-5b3c8524800a · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Tomography of time-bin quantum states using time-resolved detection.Phys
Reference 34
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Observation d12c9c55-0466-46ea-91df-65838cf9e0e8 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Unresolved cited work
Reference 35
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Observation 8cdbaf74-c9f2-4988-b8f0-51e469eda91e · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Bishop.Pattern Recognition and Machine Learning
Reference 36
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Observation d23c3626-d7f5-44b9-a528-37c7f93e71db · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Scikit-learn: Machine learning in python.J
Reference 37
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Observation 6e258360-b052-4743-bb8d-ea2f13b6555b · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Unresolved cited work
Reference 38
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Observation 66c9ce4f-bdb2-4d70-bf29-3ebd0956f632 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Unresolved cited work
Reference 39
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Observation 8ae6b643-f68b-440b-8c81-0645323881b0 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Consequently, each quantum state was represented by a sixteen-dimensional measurement vector x= (n 1, n2,
Reference 40
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Observation 2aff9abc-a665-49f8-829d-473c9aaf47d9 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements For this purpose, we employed the family of Werner states, which provides a convenient interpolation between maximally mixed and maximally entangled two-qubit states
Reference 41
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Observation fa7f1a20-44cb-442e-9ade-bac0a3666ae2 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements However, using only the canonical Werner form would restrict the generated states to a highly symmetric subset of the full two-qubit state space
Reference 42
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Observation 1306ce66-52f7-498c-99a5-668832d3f54f · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements Unresolved cited work
Reference 43
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Observation e4389759-16e6-437e-aacc-5a46fa9d75d9 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements For thek-th measurement operatorM k, the corresponding probability was evaluated using Born’s rule: pk = Tr Mkρ(LU) W , k= 1,
Reference 44
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Observation 9577e982-4fc7-4d6d-88b0-3513b24f2552 · outbound
Machine Learning of Quantum Entanglement from Noisy Measurements , n16, C,Cbin, p .(B28) Equivalently, the ML input vector was x= (n 1, n2,
Reference 45
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Observation 2ed4693a-d22a-454c-85f1-930c3d4eb78f · inbound
Machine Learning of Quantum Entanglement from Noisy Measurements Machine Learning of Quantum Entanglement from Noisy Measurements
Reference 1
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