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Paper Citation Record · LEDGER

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures

As of 19 August 2026, this Paper Citation Record lists 56 of 56 outbound references and 0 inbound Pith citation observations for arXiv:2607.05650.

A citation records a reference. It does not transfer a finding from one paper to another.

pith.paper-citation-record.v1
2607.05650 v1

Coverage vector

measured 56 of 56 reference resolution

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Source: paper_references, paper_reference_links, observed 2026-07-11T04:21:01.555368Z

measured 56 of 56 standing notices

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Source: scholarly_work_events, retraction_status_cache, observed 2026-08-18T06:34:40.430872+00:00

measured 0 of 0 inbound itemization

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56 of 56 outbound references displayed

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Outbound references

Observation a0525d0f-ab62-4fd8-8f4d-e41184ba1945 · outbound

This paper cites Universal blind quantum computation.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Universal blind quantum computation

Reference 1

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Observation 20f98dce-b8fa-45af-ad10-b301bda1e18d · outbound

This paper cites Uncondition- ally verifiable blind quantum computation.Physical Re- view A, 96(1):012303, 2017.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Uncondition- ally verifiable blind quantum computation.Physical Re- view A, 96(1):012303, 2017

Reference 2

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source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:0a5fa062289db6950b2010b33aa661dfea9e95e73e09f3f29f81b5e92a3cafd8

Observation 8f1c1b72-a566-41b3-b242-0df3796a4ae7 · outbound

This paper cites Secure entangle- ment distillation for double-server blind quantum com- putation.Physical Review Letters, 111:020502, Jul 2013.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Secure entangle- ment distillation for double-server blind quantum com- putation.Physical Review Letters, 111:020502, Jul 2013

Reference 3

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Observation 5705387d-5f74-4d07-b72d-4547f572e6fa · outbound

This paper cites Deterministic entanglement distillation for secure double-server blind quantum com- putation.Scientific reports, 5(1):7815, 2015.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Deterministic entanglement distillation for secure double-server blind quantum com- putation.Scientific reports, 5(1):7815, 2015

Reference 4

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Observation e603aa73-a5ea-4a7d-ac47-771ab2f47dd1 · outbound

This paper cites Triple-server blind quantum computation using en- tanglement swapping.Physical Review A, 89(4):040302, 2014.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Triple-server blind quantum computation using en- tanglement swapping.Physical Review A, 89(4):040302, 2014

Reference 5

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Observation 46413e4f-27bb-485b-97a1-5700fdf5cef4 · outbound

This paper cites Verifiable blind quantum computation with identity authentication for multi-type clients.IEEE Transactions on Information Forensics and Security, 2023.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Verifiable blind quantum computation with identity authentication for multi-type clients.IEEE Transactions on Information Forensics and Security, 2023

Reference 6

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Observation f3836957-0236-4fe1-a29e-11e87dcd6c6c · outbound

This paper cites Multi-client distributed blind quantum computation with the qline architecture.Nature Communications, 14(1):7743, 2023.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Multi-client distributed blind quantum computation with the qline architecture.Nature Communications, 14(1):7743, 2023

Reference 7

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Observation abff4060-1b30-4f73-b5f1-1c6d136063b9 · outbound

This paper cites Bruzewicz, John Chiaverini, Robert McConnell, and Jeremy M.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Bruzewicz, John Chiaverini, Robert McConnell, and Jeremy M

Reference 8

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Observation 1a70322e-7388-41aa-a935-2cf8fef99f32 · outbound

This paper cites Doherty, Neil B.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Doherty, Neil B

Reference 9

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Observation fc53d3fc-e559-43e6-adbf-98a318d31002 · outbound

This paper cites Quantum computing with neutral atoms.Quantum, 4:327, 2020.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Quantum computing with neutral atoms.Quantum, 4:327, 2020

Reference 10

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Observation 1312e2c7-676f-4a19-932c-a788cde5500e · outbound

This paper cites Classical verification of quantum com- putations.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Classical verification of quantum com- putations

Reference 11

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Observation efb8af38-f2ef-43b4-a67b-bdf05f58322d · outbound

This paper cites Quantum homomor- phic encryption for circuits of low T-gate complexity.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Quantum homomor- phic encryption for circuits of low T-gate complexity

Reference 12

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Observation 5b7159d5-4cc8-4e64-9312-25cbac9f293e · outbound

This paper cites Qenclave-a practical so- lutionforsecurequantumcloudcomputing.npj Quantum Information, 8(1):128, 2022.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Qenclave-a practical so- lutionforsecurequantumcloudcomputing.npj Quantum Information, 8(1):128, 2022

Reference 13

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Observation ffcac20b-2e6a-4d24-8207-9c017b10f657 · outbound

This paper cites Aone-wayquan- tum computer.Physical Review Letters, 86(22):5188, 2001.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Aone-wayquan- tum computer.Physical Review Letters, 86(22):5188, 2001

Reference 14

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Observation 216f9638-095f-4dc1-95b0-4e010593562c · outbound

This paper cites Mul- tiparty entanglement in graph states.Physical Re- view A—Atomic, Molecular, and Optical Physics, 69(6):062311, 2004.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Mul- tiparty entanglement in graph states.Physical Re- view A—Atomic, Molecular, and Optical Physics, 69(6):062311, 2004

Reference 15

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source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:b8c5398a6d43b51695a7342d090e7fa6cc8ef4ca7e99e9b106144c1c783bc3b5

Observation 47c860b5-f409-4c40-9659-96ed49c719e5 · outbound

This paper cites Secure assisted quantum computa- tion.Quantum Information & Computation, 5(6):456– 466, 2005.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Secure assisted quantum computa- tion.Quantum Information & Computation, 5(6):456– 466, 2005

Reference 16

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Observation 2589c2d5-1b56-4ee9-8cbe-f80585d15dcc · outbound

This paper cites Verification of quantum computation: An overview of existing approaches.Theory of computing systems, 63(4):715–808, 2019.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Verification of quantum computation: An overview of existing approaches.Theory of computing systems, 63(4):715–808, 2019

Reference 17

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Observation 2869be3a-6a1c-472b-a22f-e05238be0446 · outbound

This paper cites Verification for measurement- only blind quantum computing.Physical Review A, 89(6):060302(R), 2014.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Verification for measurement- only blind quantum computing.Physical Review A, 89(6):060302(R), 2014

Reference 18

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Observation 637d2fdc-9c61-4568-9179-225f7b28bd3f · outbound

This paper cites Verifiable measurement-only blind quantum computing with sta- bilizer testing.Physical review letters, 115(22):220502, 2015.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Verifiable measurement-only blind quantum computing with sta- bilizer testing.Physical review letters, 115(22):220502, 2015

Reference 19

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Observation efcbecb3-ee94-45bf-86e0-e64fc89371e4 · outbound

This paper cites Quantum field theory cannot provide faster-than-light communication.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Quantum field theory cannot provide faster-than-light communication

Reference 20

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Observation 1ed429b3-37cc-4563-8ea4-89a9d1fa8cab · outbound

This paper cites Single-click protocols for remote state preparation using weak coherent pulses.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Single-click protocols for remote state preparation using weak coherent pulses

Reference 21

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Observation 371959f4-18bb-4185-823c-8f427b3aff3d · outbound

This paper cites Efficient high-fidelity quantum computation using matter qubits and linear op- tics.Physical Review A—Atomic, Molecular, and Optical Physics, 71(6):060310, 2005.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Efficient high-fidelity quantum computation using matter qubits and linear op- tics.Physical Review A—Atomic, Molecular, and Optical Physics, 71(6):060310, 2005

Reference 22

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Observation dffbef5c-f43b-4e5b-83ee-6325b407a93d · outbound

This paper cites Measurement- based entanglement under conditions of extreme photon loss.Physical review letters, 101(13):130502, 2008.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Measurement- based entanglement under conditions of extreme photon loss.Physical review letters, 101(13):130502, 2008

Reference 23

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Observation 2fa4716b-eabb-46b5-978d-221ddf9aeabc · outbound

This paper cites Single photon ab- sorption by a single quantum emitter.Physical review letters, 100(9):093603, 2008.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Single photon ab- sorption by a single quantum emitter.Physical review letters, 100(9):093603, 2008

Reference 24

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Observation db77cde9-b0b6-4801-8e7b-d550fdb5a5c3 · outbound

This paper cites Analysis of deterministic swapping of photonic and atomic states through single-photon raman interaction.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Analysis of deterministic swapping of photonic and atomic states through single-photon raman interaction

Reference 25

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source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:d3529a3f481899edfbe96e13d4f908da09c21d851403a5b28b8d2d008f3d5690

Observation 009b0091-349c-4bb5-a4bf-ede02c43d980 · outbound

This paper cites Scalable photonic quantum computation through cavity-assisted interactions.Phys- ical review letters, 92(12):127902, 2004.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Scalable photonic quantum computation through cavity-assisted interactions.Phys- ical review letters, 92(12):127902, 2004

Reference 26

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Observation b8dfadbd-2bd0-48ee-96a6-2990698ce293 · outbound

This paper cites Passive quantum interconnects: multiplexed remote entanglement generation with cavity-assisted photon scattering.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Passive quantum interconnects: multiplexed remote entanglement generation with cavity-assisted photon scattering

Reference 27

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Observation d450df59-a2ee-497d-b387-9c042d92fa3d · outbound

This paper cites Hardware requirements for trapped- ion-based verifiable blind quantum computing with a measurement-only client.Quantum Science and Tech- nology, 9(4):045031, 2024.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Hardware requirements for trapped- ion-based verifiable blind quantum computing with a measurement-only client.Quantum Science and Tech- nology, 9(4):045031, 2024

Reference 28

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source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:9efec25057848b157ac24a0cc655af744a22a3ee7dd8f305c88a9ac6f7dbdf97

Observation c32283cc-b5a2-43ba-9764-8097365f0ab3 · outbound

This paper cites Verification of Quantum Computations without Trusted Preparations or Measurements.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Verification of Quantum Computations without Trusted Preparations or Measurements

Reference 29

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source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:94ff0d9ffe4e222ed7272fd6ad29b90386419b65740a3a39ca3dda115c31e03a

Observation 110d64db-479a-4c6d-80e4-08d592c837dc · outbound

This paper cites Blind quantum computation where a user only performs single-qubit gates.Optics & Laser Technology, 142:107190, 2021.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Blind quantum computation where a user only performs single-qubit gates.Optics & Laser Technology, 142:107190, 2021

Reference 30

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source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:2e5f535c5cbc7d17d5e9db4be260202ad91f814db9aca596323d2022639599da

Observation c4112d60-e76a-458e-b3a6-8fb8752db16c · outbound

This paper cites Blind quantum computation with a client performing different single- qubit gates.Chinese Physics B, 32(11):110302, 2023.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Blind quantum computation with a client performing different single- qubit gates.Chinese Physics B, 32(11):110302, 2023

Reference 31

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source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:a772f1ceb042c3c8be13ccd5ace2b65f1e5101ac1e2d830d1d5819edbceaac75

Observation 8530f4cf-5f9d-4544-be00-74b3db290474 · outbound

This paper cites Verification of many-qubit states.Phys.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Verification of many-qubit states.Phys

Reference 32

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Observation 6a852bdb-62ab-49c7-9a3a-d7ec6ddb4567 · outbound

This paper cites Verifying bqp computations on noisy devices with minimal overhead.PRX Quantum, 2(4):040302, 2021.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Verifying bqp computations on noisy devices with minimal overhead.PRX Quantum, 2(4):040302, 2021

Reference 33

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Observation 09efbf83-de38-4ab7-930d-5927ffd47210 · outbound

This paper cites Unifying quan- tum verification and error-detection: theory and tools for optimisations.Quantum Science and Technology, 9(3):035036, 2024.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Unifying quan- tum verification and error-detection: theory and tools for optimisations.Quantum Science and Technology, 9(3):035036, 2024

Reference 34

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Observation 4b3570f9-ab2a-4668-9096-7eec8585e7dc · outbound

This paper cites Composable security of del- egated quantum computation.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Composable security of del- egated quantum computation

Reference 35

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source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:da79c3f9e99abc5f2271fff1280ee0e87a9ef42e864afdcfb572266f5d7418a5

Observation f590068d-efb0-484c-a1f8-527009d44c16 · outbound

This paper cites Composably secure delegated quantum computation with weak coherent pulses.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Composably secure delegated quantum computation with weak coherent pulses

Reference 36

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source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:4bbc8f46ddbab99a4c3a40793c641e43beb36f51eeb1b1a0dd3c60ca018cf566

Observation 56ddb233-7c77-4248-b0a6-18cd4a33c913 · outbound

This paper cites Asymmetric Quantum Secure Multi-Party Computation With Weak Clients Against Dishonest Majority.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Asymmetric Quantum Secure Multi-Party Computation With Weak Clients Against Dishonest Majority

Reference 37

Resolution
verified exact
local_arxiv, observed 2026-07-11T04:27:50.738787Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:3a95a235391a138ac6b7c67c1360e77fdc9087d844385de31221d1f24df0f13c

Observation 59a5589b-fb6c-499c-91dd-6af2d2114a0a · outbound

This paper cites Optimizing Resource Costs: A Practical Guide to Achieving Target Security in Verifiable Blind Quantum Computing.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Optimizing Resource Costs: A Practical Guide to Achieving Target Security in Verifiable Blind Quantum Computing

Reference 38

Resolution
verified exact
local_arxiv, observed 2026-07-11T04:27:50.761421Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:d600b8ef1843128c384e405793e1ca98169857a155aab6dd2447b9c60fb8a617

Observation 70cc19fa-b661-4817-b2b3-856b4629a96d · outbound

This paper cites En- tanglement of trapped-ion qubits separated by 230 me- ters.Physical Review Letters, 130(5):050803, 2023.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures En- tanglement of trapped-ion qubits separated by 230 me- ters.Physical Review Letters, 130(5):050803, 2023

Reference 39

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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:2261f29dddb4c66856939b254d2873130c67cee5a554766be279413475f260e4

Observation 3f79becf-6aed-4f69-bd37-2297bc9d1d35 · outbound

This paper cites The measurement calculus.Journal of the ACM (JACM), 54(2):8–es, 2007.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures The measurement calculus.Journal of the ACM (JACM), 54(2):8–es, 2007

Reference 40

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source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:54c9b91d1dbd80e1de5547a8759c20ae3689d841c349af9bfd8d8c40c83df456

Observation b1d4dc26-a212-4283-a575-6ca6447d9bb3 · outbound

This paper cites John Wiley & Sons, 1995.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures John Wiley & Sons, 1995

Reference 41

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no resolver link, observed 2026-07-11T04:21:01.555368Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:c420cdf82233c3d805caa4b203f4e12e2c15d22b8dc589d697d1cf41deb54343

Observation 3608e7d2-46be-4ad4-9688-b6a9c4317727 · outbound

This paper cites Elucidatingreactionmech- anisms on quantum computers.Proceedings of the na- tional academy of sciences, 114(29):7555–7560, 2017.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Elucidatingreactionmech- anisms on quantum computers.Proceedings of the na- tional academy of sciences, 114(29):7555–7560, 2017

Reference 42

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Source-reported events for the cited work

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source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:333fbd486beb839c7bb7138d2ad93472c661189844463cde531a959684402cf1

Observation e45645bf-403e-4f48-8af8-23141664c353 · outbound

This paper cites Quan- tum strategies to overcome classical multiplexing limits.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Quan- tum strategies to overcome classical multiplexing limits

Reference 43

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no resolver link, observed 2026-07-11T04:21:01.555368Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:34e4233d4e30a8f97d226f7e36f4084fe80c7ecf5a788a7c01838f27cc402caa

Observation 4569c5aa-1e26-45bc-8640-dc413d4404a1 · outbound

This paper cites Time-resolvedtwo-photonquantuminterference.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Time-resolvedtwo-photonquantuminterference

Reference 44

Resolution
unresolved
no resolver link, observed 2026-07-11T04:21:01.555368Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:f24d55052fcec59d38d4615fbe3e42020cb2b6d449e727fccdebfae872440bdc

Observation 175fd174-8229-4cea-b679-fd43c446c8cd · outbound

This paper cites Directphotoniccouplingofasemiconductor quantum dot and a trapped ion.Physical review letters, 114(12):123001, 2015.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Directphotoniccouplingofasemiconductor quantum dot and a trapped ion.Physical review letters, 114(12):123001, 2015

Reference 45

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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:067d45b2f14ee1ce7e3038563b70eec4b1cd1a29bca9e5c55dcc60be054b7d2e

Observation 39038e4f-9e11-4171-9c8c-b1eaff70243e · outbound

This paper cites Resonance absorption by nuclear magnetic mo- ments in a solid.Physical review, 69(1-2):37, 1946.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Resonance absorption by nuclear magnetic mo- ments in a solid.Physical review, 69(1-2):37, 1946

Reference 46

Resolution
unresolved
no resolver link, observed 2026-07-11T04:21:01.555368Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:6a689449479e4c180204557b0b2174d10cf8a56b98d57d3d250ab0b5a15f35c1

Observation 5672ba8e-1a38-4270-9fb8-608ef184045f · outbound

This paper cites Veri- fiable blind quantum computing with trapped ions and single photons.Physical Review Letters, 132(15):150604, 2024.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Veri- fiable blind quantum computing with trapped ions and single photons.Physical Review Letters, 132(15):150604, 2024

Reference 47

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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:fc994692074cb67803d46cb7c67166cf94dfbdae3cfe9c0bc87675000a55eb34

Observation d1c5dc98-60dc-44c4-801d-a32e5ea7469a · outbound

This paper cites Classical homomorphic encryption for quantum circuits.SIAM Journal on Computing, 52(6):FOCS18–189, 2020.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Classical homomorphic encryption for quantum circuits.SIAM Journal on Computing, 52(6):FOCS18–189, 2020

Reference 48

Resolution
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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:8d2efb323f0c88a0033d73bfca0e515901798d3916f429817350d73417a28194

Observation 065beaf3-6f9b-41ae-b527-6d89b8db3c64 · outbound

This paper cites Computationally-secure and composable remote state preparation.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Computationally-secure and composable remote state preparation

Reference 49

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no resolver link, observed 2026-07-11T04:21:01.555368Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:8f5cb8a150a6b81c0befee579597e331795098ae7b364e78d2c28fe0abe4f1ba

Observation 461441a0-b9d4-4c5d-b05a-01168dfcb8f3 · outbound

This paper cites Tools for the analysis of quantum protocols requiring state generation within a time window.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Tools for the analysis of quantum protocols requiring state generation within a time window

Reference 50

Resolution
verified exact
local_arxiv, observed 2026-07-11T04:27:50.716819Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:4131b65c9bd71e17ab550025bb4fd0e9371d643d8b758ec2144c6e75551e7028

Observation 7ca57d52-a7f2-4ec2-ae72-8941637b117f · outbound

This paper cites Exact rate analysis for quantum repeaters with imperfect memories and entanglement swapping as soon as possible.Physical Review Research, 5(2):023086, 2023.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Exact rate analysis for quantum repeaters with imperfect memories and entanglement swapping as soon as possible.Physical Review Research, 5(2):023086, 2023

Reference 51

Resolution
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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:cd36ec42ee405975da3c5e7d3b23314eb0b6877e9f1900a9dd8e8658885b19e2

Observation c9643383-fae0-47fb-ae50-75bf7cae6009 · outbound

This paper cites For the graph state generation problem the events are the times at which graph states are successfully delivered, or at which a cutoff condition is violated.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures For the graph state generation problem the events are the times at which graph states are successfully delivered, or at which a cutoff condition is violated

Reference 52

Resolution
unresolved
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source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:4939319cc88f561b74a8f5e6972ffeb77b0baf88cf559535b045a223addeaff4

Observation b463df4a-907c-444b-b300-059847ef9a9e · outbound

This paper cites an unresolved cited work.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures Unresolved cited work

Reference 53

Resolution
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Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:45d4584c8ccc075976c84c13bb0a693237652c64b3335861746dfba770e453a3

Observation 1a799bd9-a111-4c0d-bd4b-a3dbc3d9619e · outbound

This paper cites We consider a brickwork graph with nr rows andn c columns for a total ofn=n rnc qubits.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures We consider a brickwork graph with nr rows andn c columns for a total ofn=n rnc qubits

Reference 54

Resolution
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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:33c463fcbc642e9525d236d641ce4774b6be6c18ed7ae3788e64f36468f9b9d6

Observation a29f7807-3c66-4b0b-85b0-230edfd4bace · outbound

This paper cites The reduction in dependencies is achieved by usingcolumnwise cutoffin which the cutoffs are on the number of attempts per column.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures The reduction in dependencies is achieved by usingcolumnwise cutoffin which the cutoffs are on the number of attempts per column

Reference 55

Resolution
unresolved
no resolver link, observed 2026-07-11T04:21:01.555368Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:532fd13e25ade046c33efd9db91a1811b6e7b52fba981b7ac8727dca66323860

Observation 3fa8ad87-00d2-47bf-9196-8f2a244d7781 · outbound

This paper cites This gives the brickwork with columnwise cutoffs the same structure as a linear graph with qubitwise cutoffs.

Verifiable blind quantum computing: Comparative analysis and design considerations for client architectures This gives the brickwork with columnwise cutoffs the same structure as a linear graph with qubitwise cutoffs

Reference 56

Resolution
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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-11T04:21:01.555368Z digest=sha256:b080285136ab68b6a455c92fe41c4b40276b9dca20444743351abd067cb13e25

Pith citing papers

No inbound Pith citation observations are available.