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Paper Citation Record · LEDGER

Benchmarking fault-tolerant quantum computing hardware via QLOPS

As of 7 August 2026, this Paper Citation Record lists 37 of 37 outbound references and 0 inbound Pith citation observations for arXiv:2507.12024.

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

pith.paper-citation-record.v1
2507.12024 v2

Coverage vector

measured 37 of 37 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-05-19T04:58:14.451413Z

measured 37 of 37 standing notices

One-hop event checks from named stored sources.

Source: scholarly_work_events, retraction_status_cache, observed 2026-08-07T06:34:17.273281+00:00

measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links

measured 0 of 1 external citation measurements

A source-named dated measurement, never combined with another source.

Source: cited_works

Reference resolution

37 of 37 outbound references displayed

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  • verified fuzzy25
  • unresolved0
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External citation measurements

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Outbound references

Observation 9fb4873d-d3e4-41b9-b87e-673afca44629 · outbound

This paper cites Algorithms for quantum com- putation: discrete logarithms and factoring.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Algorithms for quantum com- putation: discrete logarithms and factoring

Reference 1

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Observation 312412a9-ab5a-482c-a633-5b0531e1c263 · outbound

This paper cites Toward the first quantum simulation with quantum speedup.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Toward the first quantum simulation with quantum speedup

Reference 2

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Observation 4cc661dc-8642-4c11-931d-d5e160826364 · outbound

This paper cites Quantum algorithm for linear systems of equations.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Quantum algorithm for linear systems of equations

Reference 3

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Observation 749ad2fa-7597-4d69-9556-2d2055b0377f · outbound

This paper cites Superconducting quan- tum computing: a review.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Superconducting quan- tum computing: a review

Reference 4

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Observation 43b4f9b3-8539-4326-b2ee-20e0b6b630cc · outbound

This paper cites A quantum engineer’s guide to supercon- ducting qubits.

Benchmarking fault-tolerant quantum computing hardware via QLOPS A quantum engineer’s guide to supercon- ducting qubits

Reference 5

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Observation c96f1676-bea7-457a-84d5-ef349e3eea50 · outbound

This paper cites Neutral atom quantum com- puting hardware: performance and end-user perspective.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Neutral atom quantum com- puting hardware: performance and end-user perspective

Reference 6

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Observation c9118ae9-9ada-48ac-a2c9-4da2f4ba31a2 · outbound

This paper cites Logical quantum pro- cessor based on reconfigurable atom arrays.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Logical quantum pro- cessor based on reconfigurable atom arrays

Reference 7

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Observation fe7b83e1-1647-469d-90d9-97b9efb5d8ee · outbound

This paper cites Trapped- ion quantum computing: Progress and challenges.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Trapped- ion quantum computing: Progress and challenges

Reference 8

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Observation 938318fc-78a2-46ff-90b1-bf3d9e1738ca · outbound

This paper cites Validating quantum computers using randomized model circuits.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Validating quantum computers using randomized model circuits

Reference 9

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Observation e638bbb9-74bc-4db2-94bb-496b1eca025a · outbound

This paper cites Challengesandopportunitiesofnear- term quantum computing systems.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Challengesandopportunitiesofnear- term quantum computing systems

Reference 10

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Observation fe71c233-d3db-4ba8-84e5-8f1973e5e1fb · outbound

This paper cites Demonstration of quantum volume 64 on a superconducting quantum computing system.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Demonstration of quantum volume 64 on a superconducting quantum computing system

Reference 11

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Observation 7ac7eff2-6555-47d6-aff7-30b071ecbf82 · outbound

This paper cites A volumetric framework for quantum com- puter benchmarks.

Benchmarking fault-tolerant quantum computing hardware via QLOPS A volumetric framework for quantum com- puter benchmarks

Reference 12

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Observation c599429b-2e83-4ca9-a51b-163aef0e371d · outbound

This paper cites Measuring the capabilities of quan- tum computers.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Measuring the capabilities of quan- tum computers

Reference 13

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Observation b27c869c-e046-40cf-bc0c-e6299e11d5d7 · outbound

This paper cites Quality, Speed, and Scale: three key attributes to measure the performance of near-term quantum computers.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Quality, Speed, and Scale: three key attributes to measure the performance of near-term quantum computers

Reference 14

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Observation 43ec61d0-f40a-495a-8749-9d2adce0679a · outbound

This paper cites Using Azure quantum re- source estimator for assessing performance of fault tolerant quantum computation.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Using Azure quantum re- source estimator for assessing performance of fault tolerant quantum computation

Reference 15

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Observation fc7190c1-0cd1-407f-97ee-7f241576538a · outbound

This paper cites qSIEVE: Efficient qLDPC Memory via Systolic Movement in Atom Arrays.

Benchmarking fault-tolerant quantum computing hardware via QLOPS qSIEVE: Efficient qLDPC Memory via Systolic Movement in Atom Arrays

Reference 16

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Observation a8f483e9-765d-48dc-bff6-429819819a2c · outbound

This paper cites Scalable surface- code decoders with parallelization in time.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Scalable surface- code decoders with parallelization in time

Reference 17

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Observation 58c5e560-435a-4308-bea0-0273730e64be · outbound

This paper cites Parallel window decoding enables scal- able fault tolerant quantum computation.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Parallel window decoding enables scal- able fault tolerant quantum computation

Reference 18

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Observation 9da5bd4f-5263-465e-b44e-88fb539574ee · outbound

This paper cites A Game of Surface Codes: 11 Large-Scale Quantum Computing with Lat- tice Surgery.

Benchmarking fault-tolerant quantum computing hardware via QLOPS A Game of Surface Codes: 11 Large-Scale Quantum Computing with Lat- tice Surgery

Reference 19

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Observation b88ce51a-46c8-4e4e-b400-9bb12b93abec · outbound

This paper cites Low-overhead fault-tolerant quan- tum computing using long-range connectiv- ity.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Low-overhead fault-tolerant quan- tum computing using long-range connectiv- ity

Reference 20

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Observation d5242376-aba3-4dbc-8122-e6a3317f89a6 · outbound

This paper cites Parallel Logical Measurements via Quantum Code Surgery.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Parallel Logical Measurements via Quantum Code Surgery

Reference 21

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Observation ba356644-5c78-4840-9f95-00029c99092b · outbound

This paper cites How to factor 2048 bit RSA integers with less than a million noisy qubits.

Benchmarking fault-tolerant quantum computing hardware via QLOPS How to factor 2048 bit RSA integers with less than a million noisy qubits

Reference 22

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Observation 05d13698-ffc9-490e-bd0a-448edf6870ba · outbound

This paper cites Resource analysis of low- overhead transversal architectures for recon- figurable atom arrays.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Resource analysis of low- overhead transversal architectures for recon- figurable atom arrays

Reference 23

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Observation 331232c4-ff71-4bf3-8a28-5116d5d5b159 · outbound

This paper cites Correlated decoding of logical algorithms with transversal gates.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Correlated decoding of logical algorithms with transversal gates

Reference 24

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Observation a92838b4-a4b0-40f5-909f-ec2816cb1b0f · outbound

This paper cites Decoding across transversal Clifford gates in the surface code.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Decoding across transversal Clifford gates in the surface code

Reference 25

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Observation 58adf1d2-f0e2-4575-ad63-865c1444e68e · outbound

This paper cites Fast correlated decoding of transversal logical algorithms.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Fast correlated decoding of transversal logical algorithms

Reference 26

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Observation 51c46c70-1869-42d2-8f6f-0d9eb4aae9d7 · outbound

This paper cites Scalable decoding protocols for fast transversal logic in the surface code.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Scalable decoding protocols for fast transversal logic in the surface code

Reference 27

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Observation b1411b44-c6d1-4887-9f33-5f9be5061d97 · outbound

This paper cites Quantum error cor- rection for quantum memories.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Quantum error cor- rection for quantum memories

Reference 28

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Observation 773de255-20ad-4b11-8e27-72bd4c83b330 · outbound

This paper cites Quantum error correction below the surface code threshold.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Quantum error correction below the surface code threshold

Reference 29

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Observation 58b86d8d-11ad-482d-9652-741b1c206bcc · outbound

This paper cites Relaxing Hardware Requirements for Surface Code Circuits using Time- dynamics.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Relaxing Hardware Requirements for Surface Code Circuits using Time- dynamics

Reference 30

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Observation 862cd1cd-df89-427d-93ca-5cea6908f200 · outbound

This paper cites Constant-overhead fault-tolerant quantum computation with reconfigurable atom arrays.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Constant-overhead fault-tolerant quantum computation with reconfigurable atom arrays

Reference 31

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Observation 405f3328-dedd-4a65-a4b2-2f4253af8173 · outbound

This paper cites Quintavalle, Jens Eisert, Robert Wille, and Joschka Roffe.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Quintavalle, Jens Eisert, Robert Wille, and Joschka Roffe

Reference 32

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Observation 447eed54-abbb-46c6-8607-286af815c3df · outbound

This paper cites A tweezer array with 6100 highly coherent atomic qubits.

Benchmarking fault-tolerant quantum computing hardware via QLOPS A tweezer array with 6100 highly coherent atomic qubits

Reference 33

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Observation 47cafe3d-a1fb-4a13-bcbd-2cab72181e8a · outbound

This paper cites Improved belief propagation is sufficient for real-time decoding of quantum memory.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Improved belief propagation is sufficient for real-time decoding of quantum memory

Reference 34

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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.

source=pdf_text observed=2026-05-19T04:58:14.451413Z digest=sha256:5c2f092ac92101948e1ddad3984253383f27040ccee9892062412ea67362c26c

Observation aca0cafc-290e-43e3-a412-5e20566f2a7f · outbound

This paper cites Magic State Distillation: Not as Costly as You Think.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Magic State Distillation: Not as Costly as You Think

Reference 35

Resolution
verified fuzzy
raw_fallback, observed 2026-05-19T05:27:07.046389Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.

source=pdf_text observed=2026-05-19T04:58:14.451413Z digest=sha256:0f1ad6b563546ce1f00dc355d3517103ce9c677243a60be322b8c5a5faee9171

Observation a91aac2f-a169-445b-8501-1261b0e46ca3 · outbound

This paper cites Magic state cultivation: growing T states as cheap as CNOT gates.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Magic state cultivation: growing T states as cheap as CNOT gates

Reference 36

Resolution
verified exact
local_arxiv, observed 2026-05-19T05:02:05.092116Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.

source=pdf_text observed=2026-05-19T04:58:14.451413Z digest=sha256:6efa3480cd57a691e4c0b6440949ef643502ee72c309f67ab6144770d35b8f9b

Observation 47b69667-6441-47f6-95b7-5920a4711da4 · outbound

This paper cites Flexible layout of surface code computations using AutoCCZ states.

Benchmarking fault-tolerant quantum computing hardware via QLOPS Flexible layout of surface code computations using AutoCCZ states

Reference 37

Resolution
verified exact
local_arxiv, observed 2026-05-19T05:02:05.117063Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.

source=pdf_text observed=2026-05-19T04:58:14.451413Z digest=sha256:a7bd94aa285ec0c4559aa155ff9f8a846a94b1066945e40f385d9ae61199f622

Pith citing papers

No inbound Pith citation observations are available.