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Paper Citation Record · LEDGER

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell

As of 10 August 2026, this Paper Citation Record lists 100 of 113 outbound references and 0 inbound Pith citation observations for arXiv:2607.27571.

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

pith.paper-citation-record.v1
2607.27571 v1

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measured 100 of 113 reference resolution

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measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

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measured 0 of 1 external citation measurements

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Reference resolution

100 of 113 outbound references displayed

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Outbound references

Observation 154db108-db6c-4822-bfe1-f32cab81872c · outbound

This paper cites Quantum computing at the frontiers of biological sciences,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum computing at the frontiers of biological sciences,

Reference 1

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Biology begins to tangle with quantum computing,

Reference 2

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum computing algorithms: getting closer to critical problems in computational biology,

Reference 3

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This paper cites Perspective on the current state-of-the-art of quantum computing for drug discovery applications,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Perspective on the current state-of-the-art of quantum computing for drug discovery applications,

Reference 4

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This paper cites Biology and medicine in the landscape of quantum advantages,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Biology and medicine in the landscape of quantum advantages,

Reference 5

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This paper cites Quantum computing for biomedical computational and data sciences: A joint doe-nih roundtable,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum computing for biomedical computational and data sciences: A joint doe-nih roundtable,

Reference 6

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum computing in the next-generation computa- tional biology landscape: from protein folding to molecular dynamics,

Reference 7

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This paper cites Complexity of life sciences in quantum and ai era,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Complexity of life sciences in quantum and ai era,

Reference 8

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This paper cites A community approach to whole-cell modeling,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell A community approach to whole-cell modeling,

Reference 9

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Statistical and computational challenges for whole cell modelling,

Reference 10

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This paper cites Estimating computational limits on theoretical descriptions of biological cells,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Estimating computational limits on theoretical descriptions of biological cells,

Reference 11

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This paper cites Multi-scale models of whole cells: progress and challenges,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Multi-scale models of whole cells: progress and challenges,

Reference 12

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Molecular dynamics simulation of an entire cell,

Reference 13

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell The variational quantum eigensolver: a review of methods and best practices,

Reference 14

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Resource-efficient quantum algorithm for protein folding,

Reference 15

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Hardware-Efficient Variational Quantum Eigensolver for Small Molecules and Quantum Magnets,

Reference 16

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell A Quantum Approximate Optimization Algorithm

Reference 17

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Molecular quantum computations on a protein,

Reference 18

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Optimal hamiltonian simulation by quantum signal processing,

Reference 19

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Hamiltonian simulation by qubitization,

Reference 20

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Boyd and L

Reference 21

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Numerical optimization,

Reference 22

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum gene regulatory networks,

Reference 23

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell What is flux balance analysis?,

Reference 24

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Palsson, Systems biology

Reference 25

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell A fast quantum mechanical algorithm for database search,

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Identifying protein co-regulatory network logic by solving b-sat problems through gate-based quantum computing,

Reference 27

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Unresolved cited work

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum algorithm for linear systems of equations,

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum Linear System Solvers: A Survey of Algorithms and Applications

Reference 30

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Solving linear systems on quantum hardware with hybrid hhl++,

Reference 31

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell An Early Investigation of the HHL Quantum Linear Solver for Scientific Applications

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Efficient quantum algorithm for dissipative nonlinear differential equations,

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum algorithm for subcellular multiscale reaction-diffusion systems,

Reference 34

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Finding flows of a navier–stokes fluid through quantum computing,

Reference 35

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Towards a quantum algorithm for the incompressible nonlinear navier-stokes equations,

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Solving the Hele–Shaw flow using the Harrow–Hassidim–Lloyd algorithm on superconducting devices: A study of efficiency and challenges,

Reference 37

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Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Incompressible navier–stokes solve on noisy quantum hardware via a hybrid quantum–classical scheme,

Reference 38

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Observation bf5cc7b8-2bab-485b-b180-d75329c9548a · outbound

This paper cites Exact stochastic simulation of coupled chemical reactions,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Exact stochastic simulation of coupled chemical reactions,

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source=pdf_text observed=2026-08-01T05:31:08.054187Z digest=sha256:a9b48dc947eb839e7b1089b3528af3885e9bfbe55daa648f7acbc7e019462841

Observation 2f7b1e08-8c06-467c-9bf4-0fd52e841b0a · outbound

This paper cites Stochastic simulation of chemical kinetics,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Stochastic simulation of chemical kinetics,

Reference 40

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source=pdf_text observed=2026-08-01T05:31:08.159955Z digest=sha256:dc07b5b512563dd6ac75c00502fa9df3d00300bd07f8b0855eaafc3f21c0a6b4

Observation 21205efa-cbb8-4d14-bbef-2ce46528f5cb · outbound

This paper cites Direct solution of the chemical master equation using quantized tensor trains,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Direct solution of the chemical master equation using quantized tensor trains,

Reference 41

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source=pdf_text observed=2026-08-01T05:31:08.254257Z digest=sha256:aaa52e59bc3ed211e2941b396524ec36e30750a9b9d939465d826ba247e7790d

Observation 50eb1ddc-20d1-40bd-80c0-6154249badcd · outbound

This paper cites An in-silico human cell model reveals the influence of spatial organization on rna splicing,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell An in-silico human cell model reveals the influence of spatial organization on rna splicing,

Reference 42

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source=pdf_text observed=2026-08-01T05:31:08.335410Z digest=sha256:28e2ae08645845e83e4347373c633c27104d90ab554edae3deca637496ef72a7

Observation 548e104d-0868-4e27-b74c-ea5faebe2f4b · outbound

This paper cites Quantifying the roles of space and stochasticity in computer simulations for cell biology and cellular biochemistry,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantifying the roles of space and stochasticity in computer simulations for cell biology and cellular biochemistry,

Reference 43

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source=pdf_text observed=2026-08-01T05:31:08.451851Z digest=sha256:eb83a4176c16263ff13f6c3405e0f01d859c46cb7c760ff0748d42073bef38e9

Observation bd493b75-cdd0-4580-9df3-14ee71a5e294 · outbound

This paper cites Quantum-accelerated multilevel monte carlo methods for stochastic differential equations in mathematical finance,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum-accelerated multilevel monte carlo methods for stochastic differential equations in mathematical finance,

Reference 44

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source=pdf_text observed=2026-08-01T05:31:08.536823Z digest=sha256:fdcaf358d6a7b441089af80eab10bcc3257526f96f2e9782e6144d60a9eb13bf

Observation 9128bc1e-bc3b-4f3b-a390-c7bcd975f2dc · outbound

This paper cites Quantum algorithms for stochastic differential equations: A schrödingerisation approach,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum algorithms for stochastic differential equations: A schrödingerisation approach,

Reference 45

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source=pdf_text observed=2026-08-01T05:31:08.626116Z digest=sha256:c50ae6a152afd5a5fd9efb8c8cb7c464103d3e0c1ddebf8925ded4c945f24c89

Observation 6c9ac8b7-0187-48ba-8b9d-608c0a8f61e1 · outbound

This paper cites Quantum speed-up of markov chain based algorithms,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum speed-up of markov chain based algorithms,

Reference 46

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source=pdf_text observed=2026-08-01T05:31:08.736495Z digest=sha256:1ed83bfb888e75bbdae9c8ed44d75a389a446ce8eb3c27b71b3e0672d867b557

Observation 962975c9-20b3-4256-b2f1-9ae07683f467 · outbound

This paper cites Quantum walks: a comprehensive review,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum walks: a comprehensive review,

Reference 47

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source=pdf_text observed=2026-08-01T05:31:08.826346Z digest=sha256:923324204b88ac9f2cf73246269feb9c79cc25f8ff66d2ed86c6ffa5c5cb6b05

Observation b3461495-8f87-4609-a838-1990733d09f5 · outbound

This paper cites Quantum-enhanced markov chain monte carlo,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum-enhanced markov chain monte carlo,

Reference 48

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source=pdf_text observed=2026-08-01T05:31:08.916869Z digest=sha256:027d5a33079014b0f542faefd9059245cb516a68a1015f2a4fd07308471c33fe

Observation eef52478-b212-46b6-a065-99212700e405 · outbound

This paper cites Bringing the genetically minimal cell to life on a computer in 4d,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Bringing the genetically minimal cell to life on a computer in 4d,

Reference 49

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source=pdf_text observed=2026-08-01T05:31:09.011203Z digest=sha256:f7fec491364086ab548e411d49824ff1689ff46c04e49b4cb7cbd164536d885d

Observation 20348634-1e79-4cba-895c-7480197e605c · outbound

This paper cites Qm/mm methods for biomolecular systems,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Qm/mm methods for biomolecular systems,

Reference 50

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source=pdf_text observed=2026-08-01T05:31:09.100653Z digest=sha256:fcdea0749f4f053b495254701153e88a8ac7ef3eb32824ec737750c0cea3a8c9

Observation 68574b9d-1d6a-42fa-927c-1e9161dd443f · outbound

This paper cites The protein data bank,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell The protein data bank,

Reference 51

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source=pdf_text observed=2026-08-01T05:31:09.165641Z digest=sha256:6d22da1171261b6f57cd561c5e45f3601411d7b867ec1db019a7912d985bc3bb

Observation 68b08568-352b-4ea6-8ea0-bd2b32f5d28d · outbound

This paper cites Announcing the worldwide protein data bank,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Announcing the worldwide protein data bank,

Reference 52

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source=pdf_text observed=2026-08-01T05:31:09.252881Z digest=sha256:4233cc50b587768463e070a466c474ab618497ec9d7dd2219889ae41f90404e4

Observation 1d44fad4-36d4-444a-82f5-92dfdcaee24a · outbound

This paper cites Highly accurate protein structure prediction with alphafold,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Highly accurate protein structure prediction with alphafold,

Reference 53

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source=pdf_text observed=2026-08-01T05:31:09.344839Z digest=sha256:13eecd637854493d4758ae49fee08f484f90dbdaedd7f31fee0cadd620f47ec1

Observation 9877074e-eec4-44de-b149-ef42144b3620 · outbound

This paper cites Accurate structure prediction of biomolecular interactions with alphafold 3,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Accurate structure prediction of biomolecular interactions with alphafold 3,

Reference 54

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source=pdf_text observed=2026-08-01T05:31:09.430582Z digest=sha256:7cf131f45a75997defa602a458cb6971e2d9a0fb23cf2be07eb12d12f4883452

Observation 34359148-9879-4fab-b8c7-ad1cabe8b01d · outbound

This paper cites Elucidating reaction mechanisms on quantum computers,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Elucidating reaction mechanisms on quantum computers,

Reference 55

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source=pdf_text observed=2026-08-01T05:31:09.526682Z digest=sha256:185ed2250bae5779eb7fb367fb8b3eeb9bb5361a4ea94a8c144080fe1ec29300

Observation 6cb2a8db-95eb-427a-860b-12005ff1846a · outbound

This paper cites Macromolecular crowding: obvious but underappreciated,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Macromolecular crowding: obvious but underappreciated,

Reference 56

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source=pdf_text observed=2026-08-01T05:31:09.624372Z digest=sha256:44036ac35d6ecffb841dd37a7eb8156bcc3bef2c2a5eb4c00760b7e42c0b6be4

Observation 6b34e961-11c8-414b-8fe5-b6041776925a · outbound

This paper cites Quantum measurements and the Abelian Stabilizer Problem.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum measurements and the Abelian Stabilizer Problem

Reference 57

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source=pdf_text observed=2026-08-01T05:31:09.716377Z digest=sha256:fd31505d64a20d46ce18df3cab430b92eff21ea522a5fb427d932c2e861953ec

Observation 264a3ac9-fbf1-4e75-ae28-7287d57ed34b · outbound

This paper cites Crossing the 12,000-atom barrier with heterogeneous quantum-classical supercomputing: quantum chemistry of protein-ligand complexes.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Crossing the 12,000-atom barrier with heterogeneous quantum-classical supercomputing: quantum chemistry of protein-ligand complexes

Reference 58

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source=pdf_text observed=2026-08-01T05:31:09.818653Z digest=sha256:57e3252a28381c6d6b4f6d7479cf08a8b48b0f4b806c9c5ab2d62b64af74c1bd

Observation e7664172-1959-49dd-b0d9-8bb7b69a288f · outbound

This paper cites A perspective on quantum computing applications in quantum chemistry using 25–100 logical qubits,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell A perspective on quantum computing applications in quantum chemistry using 25–100 logical qubits,

Reference 59

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source=pdf_text observed=2026-08-01T05:31:09.910447Z digest=sha256:9cc2eba44003331febb9eb4114915b1d7b493988fb72fda59e0e3a1a113688a3

Observation c65bd3ac-f786-4750-85d3-3ef611759856 · outbound

This paper cites A general method for numerically simulating the stochastic time evolution of coupled chemical reactions,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell A general method for numerically simulating the stochastic time evolution of coupled chemical reactions,

Reference 60

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source=pdf_text observed=2026-08-01T05:31:10.002039Z digest=sha256:3b9cdaa40855bde6994f586872651927d29ce7ad251845bad323a0fbb7025a33

Observation d9bc0ee6-0fc6-47de-9dda-114e6a0941fb · outbound

This paper cites Biochemical network stochastic simulator (bionets): software for stochastic modeling of biochemical networks,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Biochemical network stochastic simulator (bionets): software for stochastic modeling of biochemical networks,

Reference 61

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source=pdf_text observed=2026-08-01T05:31:10.072721Z digest=sha256:79de7d8314a5c1429dcb49929dc1ffb56bb0294af521e16e1d5a13d1a4657fd8

Observation 184b8b37-da68-42dd-b7e9-33bdfbe5c026 · outbound

This paper cites A stochastic model for the evolution of metabolic networks with neighbor dependence,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell A stochastic model for the evolution of metabolic networks with neighbor dependence,

Reference 62

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source=pdf_text observed=2026-08-01T05:31:10.144438Z digest=sha256:57b6089d30100974ba45293ac16df5bbfa95c91387e2a006d9b9b68e02a36f4a

Observation 8f02189c-cfa9-4732-89d0-e1675530404e · outbound

This paper cites Stochastic simulation of cellular metabolism,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Stochastic simulation of cellular metabolism,

Reference 63

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source=pdf_text observed=2026-08-01T05:31:10.227794Z digest=sha256:697d93124c71d8299b01aa4312d99415319c669aa3c3f4d973f0c93ea5c8195f

Observation 9646d08c-8a20-42a8-99af-7bbc52b4f216 · outbound

This paper cites Convex optimization using quantum oracles,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Convex optimization using quantum oracles,

Reference 64

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source=pdf_text observed=2026-08-01T05:31:10.312083Z digest=sha256:bd41d6c08e443c46073aaa8f43f4246fccbc877fc026a38246de621ef51c7877

Observation 31acc255-93ed-400d-a1aa-3ddf40cdc920 · outbound

This paper cites Fast quantum subroutines for the simplex method,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Fast quantum subroutines for the simplex method,

Reference 65

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source=pdf_text observed=2026-08-01T05:31:10.386758Z digest=sha256:c0fec1119e5ad6b72e67c971d367ad4d9a14701c4d223c7f95a3c254f5d3f4a7

Observation 3faa7282-08a6-4b99-a800-6711c64542b2 · outbound

This paper cites Quantum speed-ups for solving semidefinite programs,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum speed-ups for solving semidefinite programs,

Reference 66

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source=pdf_text observed=2026-08-01T05:31:10.476665Z digest=sha256:087da1dd82c9a9bf675e2e35f486fc9fc0582b7d942a6df3cc5e2dbb39fb77b8

Observation f0517fba-7042-449a-9ed4-fe2d23e3b3aa · outbound

This paper cites Simulation of chemical reactions on a quantum computer,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Simulation of chemical reactions on a quantum computer,

Reference 67

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source=pdf_text observed=2026-08-01T05:31:10.540935Z digest=sha256:b06f7ff02d6bc2b1266b132975ea09b5a7afc167b608ce49aa35c467366a7520

Observation d1a28411-cb71-4f39-84c5-1fc56c6460fa · outbound

This paper cites mrna secondary structure prediction using utility-scale quantum computers,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell mrna secondary structure prediction using utility-scale quantum computers,

Reference 68

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source=pdf_text observed=2026-08-01T05:31:10.603352Z digest=sha256:eafcf397b196d73b4e7180cb997f86a558cf25801026c73764b5c58733c9f430

Observation d55d1d4f-e1c6-4408-bff1-cc6fe8287bf5 · outbound

This paper cites A review on quantum approximate optimization algorithm and its variants,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell A review on quantum approximate optimization algorithm and its variants,

Reference 69

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source=pdf_text observed=2026-08-01T05:31:10.670435Z digest=sha256:c864ce8770d020f0361c8c522e14b7f322e5cb6ddd72d680b236d1d100c7b3fb

Observation 62ca5e99-98d2-4950-a06d-62dd952c2756 · outbound

This paper cites Quantum walk based search algorithms,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum walk based search algorithms,

Reference 70

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source=pdf_text observed=2026-08-01T05:31:10.743830Z digest=sha256:4d5a282cb497d9c3818afb23a3ab687ec538a6fe7cd0d4e4b4c381a1c33a3033

Observation 0852d439-59ee-4863-a27f-083ccae20b1f · outbound

This paper cites Modeling Stochastic Chemical Kinetics on Quantum Computers.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Modeling Stochastic Chemical Kinetics on Quantum Computers

Reference 71

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source=pdf_text observed=2026-08-01T05:31:10.820641Z digest=sha256:3c6fa1a4186c7178bf57c4dbed2f1c8a4674cf286e6edb2dbb2c6b3d2fe8df5f

Observation 82149cf6-9751-422b-9c6e-4f8563111160 · outbound

This paper cites On the asymptotic complexity of matrix multiplication,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell On the asymptotic complexity of matrix multiplication,

Reference 72

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source=pdf_text observed=2026-08-01T05:31:10.904807Z digest=sha256:2232892333954091a8fb878e20fff0574d796ffd9f4bc861de05b0eb2fd3054c

Observation 36d1c49a-d27c-4631-a43f-ffdac3de8356 · outbound

This paper cites High-performance whole-cell simulation exploiting modular cell biology principles,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell High-performance whole-cell simulation exploiting modular cell biology principles,

Reference 73

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source=pdf_text observed=2026-08-01T05:31:10.986537Z digest=sha256:d1be0cb87e6d49e0a9d30272124f95aafff85ff005b9fdbc953011007732a7c4

Observation 433136bf-6ba5-41bd-a1db-787c5ad5b6d2 · outbound

This paper cites Fundamental behaviors emerge from simulations of a living minimal cell,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Fundamental behaviors emerge from simulations of a living minimal cell,

Reference 74

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source=pdf_text observed=2026-08-01T05:31:11.057325Z digest=sha256:883e30d9b9ad03fa1f8f68b9b59427eade10a32aa02a9d6a8588c3c1387e6a4d

Observation 79357ed8-8d02-4751-aa69-1340192aab0b · outbound

This paper cites Quantum algorithms for multiscale partial differential equations,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum algorithms for multiscale partial differential equations,

Reference 75

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source=pdf_text observed=2026-08-01T05:31:11.119382Z digest=sha256:1554d0caab887edc4147583888b58879ec8c41f0fb85fbf1b23889287031524e

Observation e71e8a1e-af0b-4f41-bd7b-6f71859df8fd · outbound

This paper cites A quantum algorithm to solve nonlinear differential equations.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell A quantum algorithm to solve nonlinear differential equations

Reference 76

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source=pdf_text observed=2026-08-01T05:31:11.203207Z digest=sha256:491c6306bf975250557097d8cfccaa051ff4b8ba4b1429010d13425bfb562556

Observation ddebf963-0c5a-4025-b535-71414dceb957 · outbound

This paper cites Quantum algorithm for nonlinear differential equations.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum algorithm for nonlinear differential equations

Reference 77

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source=pdf_text observed=2026-08-01T05:31:11.285947Z digest=sha256:bf094dadbb1ed5cc8b25cb8c062f8499ccb5eaf1324480c3f7191d667168891e

Observation 0429f1a3-9fed-4dae-9c84-33927d0b0c61 · outbound

This paper cites Koopman–von neumann approach to quantum simulation of nonlinear classical dynamics,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Koopman–von neumann approach to quantum simulation of nonlinear classical dynamics,

Reference 78

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Observation 83d927c2-7dda-456a-9ad6-b54431f58065 · outbound

This paper cites Quantum algorithms for nonlinear partial differential equations,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum algorithms for nonlinear partial differential equations,

Reference 79

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Observation cfd45ae9-b829-484e-ae93-a022893b8591 · outbound

This paper cites Quantum simulation of a noisy classical nonlinear dynamics,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quantum simulation of a noisy classical nonlinear dynamics,

Reference 80

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source=pdf_text observed=2026-08-01T05:31:11.501339Z digest=sha256:2bed3a7fdc1059489fb0600e8850df8ab7199eefd21aa491c101d6bb4066acba

Observation bf8249c4-f993-4afc-9f7c-81cbabcf263e · outbound

This paper cites Multigrid renormalization,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Multigrid renormalization,

Reference 81

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source=pdf_text observed=2026-08-01T05:31:11.568820Z digest=sha256:0f915a14a3c979f57fe56da52716eb0aebbb0f011d54698cedac2cbf026bc06c

Observation 5138bba7-2154-459d-b107-09a49ed9c447 · outbound

This paper cites Variational quantum algorithms for nonlinear problems,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Variational quantum algorithms for nonlinear problems,

Reference 82

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Observation a5b85434-8cb3-4cf1-9231-38bfd36780e3 · outbound

This paper cites A tensor network-based quantum algorithm for the nonlinear 1d burgers’ equation,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell A tensor network-based quantum algorithm for the nonlinear 1d burgers’ equation,

Reference 83

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Observation 655a08d3-eeca-4d9e-ad37-94bae4a46c34 · outbound

This paper cites Enabling large-scale and high-precision fluid simulations on near-term quantum computers,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Enabling large-scale and high-precision fluid simulations on near-term quantum computers,

Reference 84

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source=pdf_text observed=2026-08-01T05:31:11.774639Z digest=sha256:cb61fa357e52e2bbec468d151078ea3cfe4cfa15e3fc14b0f8e0d3405e1fd72a

Observation aa35bce8-8842-46e3-b337-77b11c27f569 · outbound

This paper cites Practical scalability of lugo: Benchmarking the hhl algorithm using an enhanced qpe algorithm,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Practical scalability of lugo: Benchmarking the hhl algorithm using an enhanced qpe algorithm,

Reference 85

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Observation 451a9794-6154-449f-8641-6903c6d20929 · outbound

This paper cites Simulating fluid vortex interactions on a superconducting quantum processor,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Simulating fluid vortex interactions on a superconducting quantum processor,

Reference 86

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source=pdf_text observed=2026-08-01T05:31:11.934757Z digest=sha256:ea07fdc87422852df11c8e78b97c770fd9e77c2c0ede2b2601386560a5728c85

Observation b350acee-bc64-413a-9203-6207412f31ff · outbound

This paper cites Systematizing the generation of missing metabolic knowledge,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Systematizing the generation of missing metabolic knowledge,

Reference 87

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Observation 36b97318-0a8a-4c5a-9d75-08d35dff0640 · outbound

This paper cites Discovering missing reactions of metabolic networks by using gene co- expression data,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Discovering missing reactions of metabolic networks by using gene co- expression data,

Reference 88

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source=pdf_text observed=2026-08-01T05:31:12.058990Z digest=sha256:3a188bd6a7e0985977fd1c2f9d423dcc0b84f2dc701b6e81ac782a885179d61a

Observation 55734dab-5c4c-4167-ac49-19556d7d1974 · outbound

This paper cites Integrating quantum computing resources into scientific hpc ecosystems,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Integrating quantum computing resources into scientific hpc ecosystems,

Reference 89

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source=pdf_text observed=2026-08-01T05:31:12.118419Z digest=sha256:b643d292b4b4526e4e782c40955754ac923e942a1c9fba82155a0d92fa233ede

Observation d0fadb3e-8c15-43b0-954c-79c9866ceafb · outbound

This paper cites Bridging paradigms: Designing for hpc-quantum convergence,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Bridging paradigms: Designing for hpc-quantum convergence,

Reference 90

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source=pdf_text observed=2026-08-01T05:31:12.192470Z digest=sha256:be062ce8219e3b361dde41197f08ac30872e6c9ca4f1884556bca7b60e3f60fe

Observation 3e34b1de-0fcd-4408-ab76-65ae3423292a · outbound

This paper cites Disentangling hype from practicality: On realistically achieving quantum advantage,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Disentangling hype from practicality: On realistically achieving quantum advantage,

Reference 91

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Observation 0dc6aa36-d6d4-446a-b4b9-3171438d442d · outbound

This paper cites Distributed variational quantum algorithm with many-qubit for optimization challenges,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Distributed variational quantum algorithm with many-qubit for optimization challenges,

Reference 92

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Observation d18f8ee7-3ada-4e94-8dca-b5819a23bcf8 · outbound

This paper cites Variational quantum algorithms,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Variational quantum algorithms,

Reference 93

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Observation da004393-3877-4333-9be7-17b12ed45b8c · outbound

This paper cites Frontier: exploring exascale,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Frontier: exploring exascale,

Reference 94

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Observation 69abb589-9a87-47d8-b28a-f14997248af5 · outbound

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

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Quality, speed, and scale: three key attributes to measure the performance of near-term quantum computers,

Reference 95

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Observation c7b2017c-bb5d-4a41-b026-ec2a58bfce7b · outbound

This paper cites Technology and Performance Benchmarks of IQM's 20-Qubit Quantum Computer.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Technology and Performance Benchmarks of IQM's 20-Qubit Quantum Computer

Reference 96

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Observation 167b0f06-a9f1-455a-a13b-8eb419832c64 · outbound

This paper cites Reconstruction and use of microbial metabolic networks: the core escherichia coli metabolic model as an educational guide,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Reconstruction and use of microbial metabolic networks: the core escherichia coli metabolic model as an educational guide,

Reference 97

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source=pdf_text observed=2026-08-01T05:31:12.666462Z digest=sha256:b7bf59a08580e4d2014afe1c8ee1bc82e6e1a7676a395a7ac43c7a9ebe24f98a

Observation 7a1ecea5-9826-43f6-81a1-42b43d59c7ba · outbound

This paper cites i ml1515, a knowledgebase that computes escherichia coli traits,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell i ml1515, a knowledgebase that computes escherichia coli traits,

Reference 98

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Observation 1e786494-6a27-4b1f-93d7-3c7a63328681 · outbound

This paper cites A consensus s. cerevisiae metabolic model yeast8 and its ecosystem for comprehensively probing cellular metabolism,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell A consensus s. cerevisiae metabolic model yeast8 and its ecosystem for comprehensively probing cellular metabolism,

Reference 99

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source=pdf_text observed=2026-08-01T05:31:12.791954Z digest=sha256:81b7d87fbd9f4413120799df521a347e14725437b83d25b494aa0d20f4552f0d

Observation 07feeef8-aabb-4bdc-997d-753266192b25 · outbound

This paper cites Stochkit2: software for discrete stochastic simulation of biochemical systems with events,.

Exploring the use of quantum computing for facilitating spatially and temporally resolved models of a biological cell Stochkit2: software for discrete stochastic simulation of biochemical systems with events,

Reference 100

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