Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-07-31T05:28:04.652450Z
Paper Citation Record · LEDGER
As of 8 August 2026, this Paper Citation Record lists 61 of 61 outbound references and 0 inbound Pith citation observations for arXiv:2607.28499.
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 2026-07-31T05:28:04.652450Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-08T06:32:00.761636+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
A source-named dated measurement, never combined with another source.
Source: cited_works
61 of 61 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation fcd936a1-a94f-444e-8f8d-54c3dd37b5a2 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Withh= 1/N h and using sinθ k ≥0 for 0≤k < N h, |λk|= 2N h sinθ k, θ k = πk Nh .(29) Thus each block in Eq
Reference 1
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Observation ca69e4d2-3762-4463-a55c-92bb45a622ec · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor , nh −1}and anyϕ∈R, CR (r) Z (ϕ) = Nh−1X k=0 |k⟩⟨k| ⊗Rz(ϕkr),(39) wherek r ∈ {0,1}is ther-th bit in the binary expansionk= Pnh−1 r=0 kr2r, withN h = 2nh
Reference 2
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Observation 0cbf7243-f9fd-45b0-acef-e45afd588ea3 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 3
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Observation 2ee05ddd-2fc8-4763-94c9-e644ba496b66 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor (24) to the Fourier domain, we apply the two-dimensional QFT acting on the two spatial registers
Reference 4
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Observation cdddfa54-318f-4c08-82e4-e4321e3c1d01 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Each of the Hamiltonians is acting in one direction, for which the circuit implemented has been outlined in Section V A
Reference 5
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Observation 1dd08446-491f-4f60-8a46-47115470bb37 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor A more efficient construction follows by first identifying the velocity superposition that actually couples to pressure
Reference 6
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Observation 473bbb2d-3195-4786-b2c6-bc1a2f69982e · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor In the hardware implementation reported here, we do not evaluate the square root or atan2 coherently
Reference 7
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Observation d5e7cf7b-f9fc-4af8-af30-38bcf4d50580 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor 14 and 15
Reference 8
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Observation 5ef6ca96-a3a2-4ad5-a491-e953c7316782 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 9
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Observation e4e94682-d6e2-4c58-a03f-e8e7f4c4be25 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Because the full measurement count distribution is available, the kinetic energy can be computed on any subdomain in post-processing; we report the half-domainX= (0, 1 2 ), i.e
Reference 10
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Observation c9c2a5d6-6a7b-421a-915e-bf026602a88f · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor The detailed circuit construction is described in Section B 2
Reference 11
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Observation 77dde21d-da0a-462b-a5e5-e68c1544185b · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor In the field encoding of Eq
Reference 12
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Observation 17c793cd-2de4-479d-98eb-6d34f0d87ada · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 13
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Observation 5995884e-e95f-4267-bbbc-77094e8bda60 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor (122) with m− = 0,m + = 2, and, following the same protocol as Section VI A 1
Reference 14
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Observation 25aaad1d-6281-4eff-bf52-0e29c4733c70 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor (123), since the Dirac-dynamics circuit retains the one-dimensional construction’s velocity–flux field encoding with the mass term added only through the TrotterizedH mass sub-step
Reference 15
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Observation 0399c4cf-af57-4bab-b899-889d84fa3764 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor It therefore suffices to prepare|ψ p⟩in the spatial register
Reference 16
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Observation 007be151-4861-4699-ad07-0f2b99dd978e · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor This case is small enough that the nonlinear angles can be synthesized by Boolean expansions in the retained-mode bits, avoiding a general arithmetic circuit
Reference 17
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Observation 6c602eb3-d257-4f35-8d0b-90670ef64c52 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 18
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Observation d2f9afdf-8d8e-4b8e-b54c-025d9b2673b8 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 19
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Observation cf418d0c-ed38-496b-afe0-e3e3ccd2e977 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Lloyd, Science273, 1073 (1996)
Reference 20
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Observation 3cd3aac8-c2c7-4e94-906b-686c4dafd4a1 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor High-order quantum algorithm for solving linear differential equations
Reference 21
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Observation b90a54a2-18be-4803-9805-3b78e9e8c42a · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Quantum algorithm for solving linear systems of equations
Reference 22
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Observation c62c02fc-0c3e-42d9-a9ab-c61c26959253 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Quantum Computing in the NISQ era and beyond
Reference 23
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Observation 9f5f8403-d937-4072-8c40-fe9d14f4083b · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 24
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Observation e3ede537-212e-48ba-8749-dea8e5ca80b1 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Marxer, J
Reference 25
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Observation f4abcb51-4231-483b-8c10-baaf2c66cea6 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Wen and Y
Reference 26
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Observation 478ed1a4-6c28-402f-9763-bb8e089c45f5 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Babbush, N
Reference 27
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Observation 566f312e-0785-4517-b49b-e05b9eb15405 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Noisy intermediate-scale quantum simulation of the one-dimensional wave equation
Reference 28
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Observation a02ef494-d86b-4357-bc1d-16e3a01fcfff · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Lubasch, Y
Reference 29
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Observation 1d3fafed-7d01-4a42-a552-e5bc8ee82c85 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 30
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Observation 014fc869-797b-4386-9ef9-30f128417532 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 31
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Observation d5a0fd1f-d449-483e-8f43-1de7ea2c15de · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Quantum Algorithm for Simulating the Wave Equation
Reference 32
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Observation 0bfe06b4-6d3d-42e7-9694-8aa2b75e2ca9 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Practical Quantum Computing: solving the wave equation using a quantum approach
Reference 33
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Observation f76278c2-8586-4906-b3c7-57588c1dafe2 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor High-precision quantum algorithms for partial differential equations
Reference 34
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Observation 46b90816-2926-4e47-be44-2028356846fe · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Hamiltonian simulation for hyperbolic partial differential equations by scalable quantum circuits
Reference 35
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Observation aa2c59a3-e4c1-4fbf-a330-ac27b9d07aeb · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor High order schemes for solving partial differential equations on a quantum computer
Reference 36
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Observation af7ec5af-d1a5-4e3b-b3ed-55db9410d224 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor A quantum computing concept for 1-D elastic wave simulation with exponential speedup
Reference 37
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Observation 96dfa762-88a8-4310-94b2-807a9143d900 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Quantum Algorithms for Solving Ordinary Differential Equations via Classical Integration Methods
Reference 38
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Observation 451b9005-0524-4605-be4f-d46049f9fa5a · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Schillo and A
Reference 39
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Observation 906be2f0-8bcf-4318-8b3d-484cb655171f · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Quantum simulation of the Dirac equation
Reference 40
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Observation eebfe275-0b77-4b36-b441-a13a6826976a · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Quantum simulation of the Klein paradox with trapped ions
Reference 41
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Observation 52c1a853-07f4-4035-8c55-adb9e6c07a11 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Quantum Simulation of Klein Gordon Equation and Observation of Klein Paradox in IBM Quantum Computer
Reference 42
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Observation c11719d1-f8b7-4d7b-8d01-089b8942c341 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Larsson and V
Reference 43
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Observation c6f063eb-f0ab-4642-aaba-1017f076c4c2 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 44
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Observation af3433c9-79bf-4c0e-9bd1-190169ed96fc · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 46
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Observation 38996f24-077b-4c74-aa05-b26e48ca6250 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Quantum computing with Qiskit
Reference 47
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Observation 95e41959-5480-4484-9320-46d48b67c8fe · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor t$|$ket$\rangle$ : A Retargetable Compiler for NISQ Devices
Reference 48
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Observation 4310cb45-985f-4d43-85fe-6ea4b49474f0 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 49
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Observation 659958f8-2317-4c8a-b37b-67ea948ab2c9 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Fleischhauer, A
Reference 50
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Observation 44178c62-5ac6-4064-9891-dcd1abcb3142 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 51
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Observation 4af7030e-936d-4df3-97fc-a93852e479da · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 52
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Observation 38a33233-0710-4520-897b-e2e4cc1e2f59 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Temme, S
Reference 53
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Observation f795827d-5917-4164-bc94-64ae4fca0d74 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Ezzell, B
Reference 54
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Observation ee1057b6-b567-4d53-b464-eeed5e17e0f8 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Improving Dynamical Decoupling for Trapped-Ion QCCD Quantum Computers
Reference 55
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Observation 7ec85fd1-0c30-4ac2-a1b2-c7b95a598799 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 56
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Observation 339ccc05-bdf3-420c-98a5-90872b8e2b0a · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 57
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Observation a5e16bb2-b17b-4c23-b137-a4f8bd678adf · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 58
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Observation 1cc4c2f2-b58e-4f97-9bd8-7f9cd2628d68 · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 59
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Observation c02cfbfe-1537-4ae3-b0d3-e611b6722a2e · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 60
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Observation c1aba5bd-e8e4-471d-b7cd-e6754eda04cd · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor Unresolved cited work
Reference 61
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Observation ccfaa48c-d837-4fdd-b9e9-f0d2245845cf · outbound
Structure-Preserving Quantum Simulation of Wave Equations on a Trapped-Ion Processor These results confirm that QFT allows the wave dynamics can be simulated at almost constant depth, due to the fast-forwarding by QFT
Reference 73
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No inbound Pith citation observations are available.