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Source: paper_references, paper_reference_links, observed 2026-08-03T05:21:55.675970Z
Paper Citation Record · LEDGER
As of 14 August 2026, this Paper Citation Record lists 100 of 121 outbound references and 0 inbound Pith citation observations for arXiv:2607.29525.
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Source: paper_references, paper_reference_links, observed 2026-08-03T05:21:55.675970Z
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Source: scholarly_work_events, retraction_status_cache, observed 2026-08-14T06:32:32.682623+00:00
Pith citing papers itemized under the disclosed page cap.
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100 of 121 outbound references displayed
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Observation 459e6a1d-65ef-4cd7-af71-9e479f48e93d · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers InverseProblems, 33(12):124007, 2017
Reference 1
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Observation 34ee2678-9e72-4fc9-b6a5-f39f826d6ee0 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Aliprantis and Kim C
Reference 2
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Observation 43d30244-83f6-4be9-985c-7ec4e49e025c · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Solving inverse problems using data-driven models.ActaNumerica, 28:1–174, May 2019
Reference 3
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Observation abe30725-35bf-4138-a023-18eb2f71559b · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers A variational approach to removing multiplicative noise
Reference 4
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Observation 90c29e64-a676-4724-bfb2-17b40a9361e5 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers DifferentialInclusions: Set-ValuedMapsandViabilityTheory
Reference 5
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Observation 9251106d-c556-4353-910e-a34afa638215 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers ConvexAnalysisandMonotoneOperatorTheoryinHilbertSpaces
Reference 6
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Observation 030ead08-4ba3-4f73-af86-5f20cd51a460 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Society for Industrial and Applied Mathematics, October 2017
Reference 7
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Observation 0057990c-65ec-43b3-a367-0a2586c68e9f · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Modern regularization methods for inverse problems.Acta numerica, 27:1–111, 2018
Reference 8
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Observation 24d8578a-5b4a-4ff5-8c79-720836d238ef · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Deep unfolding of a proximal interior point method for image restoration.Inverse Problems, 36(3):034005, 2020
Reference 9
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Observation d837f226-57c4-405d-9d16-f2273e6ee8bd · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Ontikhonovfunctionals penalizedby bregmandistances
Reference 10
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Observation c7d5a720-67bf-43ed-850a-d289f2e20258 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers On the mean speed of convergence of empirical and oc- cupationmeasuresinWassersteindistance
Reference 11
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Observation 2b051f22-febb-4003-a40e-ec3303f09526 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Tweedie Moment Projected Diffusions For Inverse Problems
Reference 12
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Observation 4654faba-27db-45f7-9e92-651742527a14 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Learning firmly nonexpansive operators
Reference 13
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Observation 51f3f626-46c2-4bbc-b82b-f383b6d9cd60 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Total generalized variation.SIAM Journal on ImagingSciences, 3(3):492–526, January 2010
Reference 14
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Observation 92717850-6e10-420d-b8f4-25c403df1477 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Buskulic, M
Reference 15
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Observation bdc109fb-4024-475c-b1c8-5ee55327950b · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Convergence and recovery guarantees of unsuper- visedneuralnetworksforinverseproblems
Reference 16
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Observation 3f52ab13-f6b0-4a17-8b1c-e47d6f6619c4 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Unresolved cited work
Reference 17
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Observation 6b5722c2-0be9-439c-b954-a6f1081220fc · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Convergence guarantees of overparametrized wide deepinverseprior
Reference 18
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Observation 2fd62fd0-078a-44a2-acb1-e9387a406254 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Image recovery via total variation minimization and related problems.NumerischeMathematik, 76:167–188, 1997
Reference 19
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Observation 9fbb65c6-c95b-4b71-9ab7-8b66618635ac · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Diffusion Posterior Sampling for General Noisy Inverse Problems
Reference 20
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Observation 6ffafa72-8735-4bb8-a717-c799d4149b6a · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Improving diffusion models for inverse problems using manifold constraints.Advances in Neural Information Processing Systems, 35:25683–25696, 2022
Reference 21
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Observation 7277216d-0d79-487d-97ef-31ed2e004242 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Consistent Diffusion Meets Tweedie: Training Exact Ambient Diffusion Models with Noisy Data
Reference 22
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Observation 936aa4db-80f6-4e2a-8098-a60e92639a14 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Deep generative models and inverse problems.Mathematical Aspects of DeepLearning, 400, 2022
Reference 23
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Observation 2e0d5bb4-640d-4e70-b366-0810f5b689a8 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Unresolved cited work
Reference 24
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Observation 2f63e617-8bd9-4b79-9da0-b33944bf5483 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Regularising inverse problems with generative machine learning models.Journal of MathematicalImagingandVision, 66(1):37–56, 2024
Reference 25
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Observation 55aa90e2-0f67-4e4b-8ccb-fa5b713b0686 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Vincent Poor, and Shlomo Shamai Shitz
Reference 26
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Observation 28aea273-c621-4d82-a6a0-07465dad1d14 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Plug-and-playimagereconstructionisaconvergentregulariza- tion method.IEEETransactionsonImageProcessing, 33:1476–1486, 2024
Reference 27
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Observation 70995c9e-078d-46e3-85e6-af0404b97034 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers ProximalLangevinsamplingwith inexact proximal mapping.SIAMJournal on ImagingSciences, 17(3):1729–1760, 2024
Reference 28
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Observation 0fbc1141-88eb-4f9f-9a00-565cebe579dd · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Regularization of inverse problems.MathematicsanditsApplications, 375, 1996
Reference 29
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Observation 526e3be9-7f02-4a79-bab4-b84513b6c077 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Esposito
Reference 30
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Observation e3f1be9f-475e-44dd-a77d-5345a3b2aa2a · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Falconer
Reference 31
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Observation 1097e807-45cc-4ab3-bedb-32abf44ee592 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers On a formula for thel2 wasserstein metric between measures on euclidean and hilbert spaces.MathematischeNachrichten, 147:185–203, 1990
Reference 32
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Observation a0b37706-0900-4148-b887-4db69b9d794f · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Stein’sunbiasedriskestimate and hyv\" arinen’s score matching.arXivpreprint arXiv:2502.20123, 2025
Reference 33
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Observation 923fbee1-f74f-40cd-9294-fdcbff196c3c · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers The split bregman method for l1-regularized problems.SIAM Journal on ImagingSciences, 2(2):323–343, January 2009
Reference 34
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Observation 853740e5-99a1-4cca-99f8-37f791d8a6fe · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Learningfastapproximationsofsparsecoding
Reference 35
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Observation c377d334-f438-4d18-a6e3-bae40196cde6 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Shouldpenalizedleastsquaresregressionbeinterpretedasmaximumaposteriori estimation? IEEE TransactionsonSignal Processing, 59(5):2405–2410, May 2011
Reference 36
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Observation 10c3a81d-7909-4e3c-b490-7aa88ef702e3 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers priors" and
Reference 37
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Observation ea5be1dc-bfec-4cde-9d86-b30844cd1911 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Agem: Solvinglinearinverseproblemsviadeeppriors and sampling.Advancesin NeuralInformationProcessingSystems, 32, 2019
Reference 38
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Observation 998c317c-25e7-44aa-b720-595eac1fe3c7 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Shamai, and S
Reference 39
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Observation b8bdd0d6-4409-433d-a435-0d8ecfb2799c · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Estimationingaussiannoise: Proper- tiesoftheminimummean-squareerror
Reference 40
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Observation 4aa32f77-1d6f-4ea8-ad26-7d34ab13b05a · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Agenerativevariationalmodelforinverseproblemsinimaging
Reference 41
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Observation ed6588c6-080f-4437-b307-cf7f02ebe571 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Universal bayes consistency in metric spaces.Ann.Statist., 49(4):2129–2150, August 2021
Reference 42
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Observation 712108fd-403d-4a74-bf48-c7ca81647477 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Hatsell and L
Reference 43
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Observation 69c828d7-cb2b-4668-9b6b-cc755c558594 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers MachineLearningSolutions forInverseProblems: Part A, volume 26 ofHandbookof NumericalAnalysis
Reference 44
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Observation 4ba2dea0-8f7d-47af-9396-05e3c97b3cf9 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Convergent regularizationininverseproblemsandlinearplug-and-playdenoisers
Reference 45
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Observation 23965d4f-c16d-4dbb-b005-f32c4734d6ef · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Denoising diffusion probabilistic models.Advancesin neuralinformationprocessing systems, 33:6840–6851, 2020
Reference 46
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Observation cfcd373f-861e-4b27-9b16-c5ebfb4e2de1 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Convergentplug-and-play methods for image inverse problems with explicit and nonconvexdeep regularization
Reference 47
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Observation ae0b4fa9-6a54-4f37-be4b-1a29665d298a · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Gradient Step Denoiser for convergent Plug-and-Play
Reference 48
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Observation 25ea7b08-d539-40a8-acda-b88c3f6d2aa8 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Proximaldenoiserforconvergentplug-and- play optimization with nonconvex regularization.arXivpreprint, 2022
Reference 49
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Observation 66d233f4-c068-409f-8fc2-45e7f42f9207 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Estimationofnon-normalizedstatisticalmodelsbyscorematching
Reference 50
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Observation 2009a7d6-dedb-4c78-ac00-aeeacadb5563 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Deep convolutional neuralnetworkforinverseproblemsinimaging
Reference 51
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Observation de872bf3-5752-41b1-bd27-7a085e24f3ac · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers McCann, Emmanuel Froustey, and Michael Unser
Reference 52
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Observation cb1fa51b-97f5-4997-a36d-2320a78536ca · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Stochastic mirror descent method for linear ill-posed problems in banach spaces.InverseProblems, 39(6):065010, May 2023
Reference 53
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Observation f4699896-8def-451d-954a-95cf84653779 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Stochastic solutions for linear inverse problems using the prior implicit in a denoiser.Advancesin Neural Information Processing Systems, 34:13242–13254, 2021
Reference 54
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Observation e9d23307-9aef-44f3-99c8-da788ac56785 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Plug-and-play methods for integrating physical and learned models in computational imaging: Theory, algorithms, and applications.IEEESignal ProcessingMagazine, 40(1):85–97, 2023
Reference 55
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Observation 543fc55b-cf60-41c2-912f-46c6cfff3096 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Accurate image superresolution using very deep convolutional networks.2016 IEEE Conference on Computer Vision and Pattern Recognition (CVPR), pages 1646–1654, 2016
Reference 56
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Observation 85c835db-3619-4943-91df-565c6d44880d · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Total deep variation for linear inverse problems
Reference 57
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Observation 9197d307-92da-4014-a26a-c3a72b838cb3 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Bayesian imaging using plug & play priors: when Langevin meets tweedie.SIAM Journal onImagingSciences, 15(2):701–737, 2022
Reference 58
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Observation ef7240ec-a9f0-4094-a313-a8542ec5d3a1 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers On maximum a posteriori estimation with plug & play priors and stochastic gradient de- scent
Reference 59
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Observation 7c3a8c4b-605d-4d2d-b9a2-30c4f2ce3726 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Leterme, A
Reference 60
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Observation 36eb0afd-5505-41c0-a03c-fa78b3860211 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers NETT: solving inverse problems with deep neural networks.InverseProblems, 36(6):065005, June 2020
Reference 61
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Observation 6791e4e2-dc04-4ddc-bb23-7197d8082c58 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Recovery analysis for plug-and- play priors using the restricted eigenvalue condition.Advances in Neural Information Processing Systems, 34:5921–5933, 2021
Reference 62
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Observation 5b903c8e-8b11-475a-837d-00375ce85501 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Outersemicontinuityofpositivehullmappingswithapplication tosemi-infiniteandstochasticprogramming
Reference 63
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Observation 3b286675-9e5c-4e01-9325-c31a66937d2d · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Adversarialregularizersininverseprob- lems
Reference 64
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Observation 8a3c272c-5734-4a73-b5df-b5ad9e8f69c9 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Elsevier, 1999
Reference 65
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Observation 8dd8c8c3-dad8-4c2a-8a0d-80800c602cf8 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers An empirical bayes estimator of the mean of a normal population.Bull
Reference 66
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Observation db3b3491-db67-4b55-87b4-69de710ad70f · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Algorithm unrolling: Interpretable, efficient deep learning for signal and image processing.IEEESignal ProcessingMagazine, 38(2):18–44, 2021
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Observation 95f69bdb-e214-4a2b-a957-c3a171a4a77b · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Data-driven convex regularizersforinverseproblems.In ICASSP2024-2024IEEEInternationalConferenceonAcoustics, SpeechandSignalProcessing (ICASSP), pages 13386–13390
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Observation c4756583-9601-479d-8762-2b024cbed239 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers End-to-end reconstructionmeetsdata-drivenregularizationforinverseproblems
Reference 69
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Observation b30404ab-0810-4b43-9594-287dd091dfc0 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Learned reconstruction methods with convergence guarantees: a survey of concepts and applications
Reference 70
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Observation e44d3420-765a-4c0a-b969-3434e3998977 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Chaudhury
Reference 71
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Observation a2a81d5a-2143-4628-bc30-7934eb2cca1c · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Multiscale hierarchical decomposition of im- ageswithapplicationstodeblurring,denoising,andsegmentation
Reference 72
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Observation cdfc9dc5-34d9-4fdd-8bf7-27f102031b08 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers An analytic theory of convo- lutional neural network inverse problems solvers.arXivpreprint, 2026
Reference 73
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Observation 01533b83-ed96-4bc8-b38e-5252e5592021 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Stein Diffusion Guidance: Training-Free Posterior Correction for Sampling Beyond High-Density Regions
Reference 74
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Observation b7c36494-d924-48f4-921c-950911a52d48 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Metzler, Richard G
Reference 75
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Observation 13cf2150-0eea-47af-b73d-fe955daa46e4 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Aniterativeregularization methodfortotalvariation-basedimagerestoration
Reference 76
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Observation b9867ada-50b6-420c-acb9-e497e878a37e · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Palomar and S
Reference 77
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Observation 153ad3ab-b3e7-4872-9b32-14f4f01a006f · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers MAP estimation with denoisers: Convergence rates and guarantees
Reference 78
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Observation 267b9d95-4fcf-4825-ba9a-8247eabef89d · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Optimalapproximationofpiecewisesmoothfunctionsusing deep relu neural networks.NeuralNetworks, 108:296–330, December 2018
Reference 79
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Observation 44cf5058-bc51-425d-9793-8265d7271f5c · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Deep neural networks can stably solve high-dimensional, noisy, non-linear inverse problems
Reference 80
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Observation b5580a9a-5137-49f0-ad9a-e206cc2413ab · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers TheVolumeofConvexBodiesandBanachSpaceGeometry
Reference 81
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Observation 2eb237f2-ea48-4940-8def-d9b084ba67d0 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Nonasymptotic Convergence Rates for Plug-and-Play Methods With MMSE Denoisers
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Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Learninglocalregularization forvariationalimagerestoration
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Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Unresolved cited work
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Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Tyrrell Rockafellar and Roger J
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Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers MatrixAnalysis
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Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers The little engine that could: Regularization by denoising (red).SIAMJournal onImagingSciences, 10(4):1804–1844, 2017
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Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Nonlinear total variation based noise removal algorithms
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Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Mc-Graw-Hill, Boston, 2nd edition, 1991
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Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Lipschitz regularity of deep neural networks: analysis and efficient estimation
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Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Variationalmethodsin imaging, volume 167
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Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Regularization methods in banach spaces.RegularizationMethodsinBanachSpaces, 07 2012
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Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Deep null space learning for inverse problems: convergence analysis and rates.InverseProblems, 35(2):025008, 2019
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Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Model-baseddeeplearning: Keyapproachesanddesignguidelines
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Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Weakly con- vex regularisers for inverse problems: convergence of critical points and primal-dual optimisation
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Observation 523c48d5-b9d5-47b6-abb0-1acc20ef32cf · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Generativemodelingbyestimatinggradientsofthedatadistribution
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Observation cc776c89-4e3d-462b-b225-3f20860504e8 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Solving Inverse Problems in Medical Imaging with Score-Based Generative Models
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Observation fc34396d-7a1b-4f5a-9cb0-af0498432d34 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Higher order convergence rates for bregman iterated varia- tional regularization of inverse problems.NumerischeMathematik, 141(1):215–252, July 2018
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Observation 88f94390-0e6a-4b96-86a1-dd36ac1809a7 · outbound
Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Cambridge university press, 2010
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Physics Matters in PnP: Recovery Guarantees with the MMSE and NN Denoisers Scalable plug-and-play admmwithconvergenceguarantees
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