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Paper Citation Record · LEDGER

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution

As of 8 August 2026, this Paper Citation Record lists 62 of 62 outbound references and 0 inbound Pith citation observations for arXiv:2603.02692.

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

pith.paper-citation-record.v1
2603.02692 v1

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measured 62 of 62 reference resolution

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measured 62 of 62 standing notices

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measured 0 of 0 inbound itemization

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62 of 62 outbound references displayed

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Outbound references

Observation 6a152767-16d4-4b75-a99e-bac70aa8159d · outbound

This paper cites Ntire 2017 challenge on single image super-resolution: Dataset and study.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Ntire 2017 challenge on single image super-resolution: Dataset and study

Reference 1

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Observation cbc27395-8b7a-4cce-8620-707e6468fa8b · outbound

This paper cites Guidesr: Rethinking guidance for one-step high-fidelity diffusion-based super-resolution.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Guidesr: Rethinking guidance for one-step high-fidelity diffusion-based super-resolution

Reference 2

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Observation a32ab740-a89c-49a1-bdaf-7a7dd42c3472 · outbound

This paper cites Toward real-world single image super-resolution: A new benchmark and a new model.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Toward real-world single image super-resolution: A new benchmark and a new model

Reference 3

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Observation 744f0e4e-d5bc-4347-abe3-8dad55a4a819 · outbound

This paper cites Swinfsr: Stereo image super-resolution using swinir and frequency domain knowledge.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Swinfsr: Stereo image super-resolution using swinir and frequency domain knowledge

Reference 4

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Observation e4fe8328-2902-453a-b684-8f9b3a36a9f8 · outbound

This paper cites Freqformer: Frequency-aware transformer for lightweight image super-resolution.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Freqformer: Frequency-aware transformer for lightweight image super-resolution

Reference 5

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Observation 5215ad9d-fc44-4c00-905d-bcea71557c6e · outbound

This paper cites Diffusion models beat gans on image synthesis.Advances in neural informa- tion processing systems, 34:8780–8794, 2021.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Diffusion models beat gans on image synthesis.Advances in neural informa- tion processing systems, 34:8780–8794, 2021

Reference 6

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Observation 6abfd596-02ad-41ad-be60-7d1fd3dc7e2f · outbound

This paper cites Image quality assessment: Unifying structure and texture similarity.IEEE transactions on pattern analysis and ma- chine intelligence, 44(5):2567–2581, 2020.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Image quality assessment: Unifying structure and texture similarity.IEEE transactions on pattern analysis and ma- chine intelligence, 44(5):2567–2581, 2020

Reference 7

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Observation c3add996-4957-46f8-80c2-5b4cd4afaaff · outbound

This paper cites Tsd-sr: One-step diffusion with target score distillation for real-world image super-resolution.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Tsd-sr: One-step diffusion with target score distillation for real-world image super-resolution

Reference 8

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Observation 0d73f4d2-a49b-4382-b2cd-4f0380eb57ea · outbound

This paper cites Scaling recti- fied flow transformers for high-resolution image synthesis.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Scaling recti- fied flow transformers for high-resolution image synthesis

Reference 9

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Observation cfeaec88-7ac3-41eb-bc77-7de6eecd9e7b · outbound

This paper cites Generative adversarial nets.Advances in neural information processing systems, 27, 2014.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Generative adversarial nets.Advances in neural information processing systems, 27, 2014

Reference 10

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Observation 64b64c56-ecd7-4f5e-acbb-1f837b33741f · outbound

This paper cites Deep wavelet prediction for image super- resolution.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Deep wavelet prediction for image super- resolution

Reference 11

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Observation f4064b0a-5575-457a-9762-dee811398351 · outbound

This paper cites Gans trained by a two time-scale update rule converge to a local nash equilib- rium.Advances in neural information processing systems, 30, 2017.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Gans trained by a two time-scale update rule converge to a local nash equilib- rium.Advances in neural information processing systems, 30, 2017

Reference 12

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Observation 06c12067-8356-4f01-8b1f-9600f1adc68b · outbound

This paper cites Denoising dif- fusion probabilistic models.Advances in neural information processing systems, 33:6840–6851, 2020.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Denoising dif- fusion probabilistic models.Advances in neural information processing systems, 33:6840–6851, 2020

Reference 13

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Observation e3125325-7a27-41c2-ba58-380f2baa4545 · outbound

This paper cites Parameter-efficient transfer learning for nlp.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Parameter-efficient transfer learning for nlp

Reference 14

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Observation 61d9b94e-cef7-45cf-898f-79f9e4697dcc · outbound

This paper cites Lora: Low-rank adaptation of large language models.ICLR, 1(2):3, 2022.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Lora: Low-rank adaptation of large language models.ICLR, 1(2):3, 2022

Reference 15

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Observation 6c0baa2c-d575-4955-b335-b994ac9f4788 · outbound

This paper cites Focal frequency loss for image reconstruction and synthesis.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Focal frequency loss for image reconstruction and synthesis

Reference 16

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Observation be93cb7c-e17a-43b9-972b-d791ade0436a · outbound

This paper cites A style-based generator architecture for generative adversarial networks.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution A style-based generator architecture for generative adversarial networks

Reference 17

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Observation e425a62e-44ec-4fa0-aa4d-82e86072fdee · outbound

This paper cites Musiq: Multi-scale image quality transformer.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Musiq: Multi-scale image quality transformer

Reference 18

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Observation 5537beb8-70cb-4be3-9ba0-bcaf802e9c13 · outbound

This paper cites Deep laplacian pyramid networks for fast and accurate super-resolution.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Deep laplacian pyramid networks for fast and accurate super-resolution

Reference 19

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Observation 24d9a76d-164e-4f3e-862a-665f094960df · outbound

This paper cites Photo- realistic single image super-resolution using a generative ad- versarial network.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Photo- realistic single image super-resolution using a generative ad- versarial network

Reference 20

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Observation 1d6a94a9-a52e-4781-8580-f92c8d347485 · outbound

This paper cites Srdiff: Single image super-resolution with diffusion probabilistic models.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Srdiff: Single image super-resolution with diffusion probabilistic models

Reference 21

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Observation 7b0e4bf1-e859-41d1-9547-fbf3b136e866 · outbound

This paper cites Lsdir: A large scale dataset for image restoration.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Lsdir: A large scale dataset for image restoration

Reference 22

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Observation bae3aac5-bc1a-4723-8a2e-cf151426c75c · outbound

This paper cites A timestep-adaptive frequency-enhancement framework for diffusion-based im- age super-resolution.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution A timestep-adaptive frequency-enhancement framework for diffusion-based im- age super-resolution

Reference 23

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Observation cb9692d4-ead3-4837-9fca-8b5860a52a38 · outbound

This paper cites Details or artifacts: A locally discriminative learning approach to realistic im- age super-resolution.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Details or artifacts: A locally discriminative learning approach to realistic im- age super-resolution

Reference 24

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Observation ac609458-da5b-4cf3-aa9b-8f622be73b40 · outbound

This paper cites Diff- bir: Toward blind image restoration with generative diffusion prior.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Diff- bir: Toward blind image restoration with generative diffusion prior

Reference 25

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Observation be46791a-04a8-4ae5-82ba-27870c1188cc · outbound

This paper cites Decoupled Weight Decay Regularization.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Decoupled Weight Decay Regularization

Reference 26

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Observation 68780ba1-9315-4da9-97ff-2d4ea7db7a34 · outbound

This paper cites Waving goodbye to low-res: A diffusion-wavelet approach for image super-resolution.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Waving goodbye to low-res: A diffusion-wavelet approach for image super-resolution

Reference 27

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Observation 01a3a12a-36f0-4e51-824e-ec9d0481ef4a · outbound

This paper cites Fcanet: Frequency channel attention networks.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Fcanet: Frequency channel attention networks

Reference 28

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Observation 27866da2-1371-4f7c-8932-0c393f59a289 · outbound

This paper cites Xpsr: Cross-modal priors for diffusion-based image super-resolution.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Xpsr: Cross-modal priors for diffusion-based image super-resolution

Reference 29

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Observation eaeaae31-f29f-4918-9070-68e68cce9853 · outbound

This paper cites High-resolution image synthesis with latent diffusion models.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution High-resolution image synthesis with latent diffusion models

Reference 30

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Observation 6cf5f376-60f2-4d90-a199-37750148f0de · outbound

This paper cites Image super- resolution via iterative refinement.IEEE transactions on pattern analysis and machine intelligence, 45(4):4713–4726,.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Image super- resolution via iterative refinement.IEEE transactions on pattern analysis and machine intelligence, 45(4):4713–4726,

Reference 31

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Observation 0e88c577-29e5-42fb-8b49-1fae56e0f4c9 · outbound

This paper cites Adversarial diffusion distillation.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Adversarial diffusion distillation

Reference 32

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Observation 864a5b66-3ac6-4d89-a2b8-c107bac36680 · outbound

This paper cites Resdiff: Combining cnn and diffusion model for image super-resolution.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Resdiff: Combining cnn and diffusion model for image super-resolution

Reference 33

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Observation c8ca8a38-67a7-4205-a529-e0f11431e3bf · outbound

This paper cites Multi-scale adversarial diffusion network for image super- resolution.Scientific Reports, 15(1):11690, 2025.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Multi-scale adversarial diffusion network for image super- resolution.Scientific Reports, 15(1):11690, 2025

Reference 34

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Observation 0a501b9a-fa8b-40a8-893c-e509b01f4745 · outbound

This paper cites Freeu: Free lunch in diffusion u-net.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Freeu: Free lunch in diffusion u-net

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Observation 565f30a7-6d6d-4804-bed0-7d5c571ac6b1 · outbound

This paper cites Score-Based Generative Modeling through Stochastic Differential Equations.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Score-Based Generative Modeling through Stochastic Differential Equations

Reference 36

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source=pdf_text observed=2026-08-02T19:24:42.002447Z digest=sha256:1417dd92c160ea5bea1dcbad8910d3b5697e2227b424d7d31d76d3d48d3d77c6

Observation 67cb066e-bb31-4daf-b52c-df6002a968d0 · outbound

This paper cites Stable diffusion.https://stability.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Stable diffusion.https://stability

Reference 37

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source=pdf_text observed=2026-08-02T19:24:42.053121Z digest=sha256:b52cdaa8c541a422d2e62efa5d44f3eab082e7a1dbd9d47437984b485a849370

Observation 516e1fb2-687f-4939-8c4f-a370c50000a3 · outbound

This paper cites Improving the Stability and Efficiency of Diffusion Models for Content Consistent Super-Resolution.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Improving the Stability and Efficiency of Diffusion Models for Content Consistent Super-Resolution

Reference 38

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source=pdf_text observed=2026-08-02T19:24:42.102210Z digest=sha256:ab523bc636bfaa0f4f96e8d08d3e6f26d6ba5b43acbd889eccb04cd170b4d3c9

Observation e1fab0a4-4f03-426d-8442-8e6b1e5adeb9 · outbound

This paper cites Pixel-level and semantic-level ad- justable super-resolution: A dual-lora approach.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Pixel-level and semantic-level ad- justable super-resolution: A dual-lora approach

Reference 39

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source=pdf_text observed=2026-08-02T19:24:42.149464Z digest=sha256:922503bf90ff30105085f8895694f9c82108b26531cf3b24256bd44beb667f38

Observation 9dc5fefc-f967-4121-b003-e68053e2377d · outbound

This paper cites Ntire 2017 challenge on single image super-resolution: Methods and results.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Ntire 2017 challenge on single image super-resolution: Methods and results

Reference 40

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source=pdf_text observed=2026-08-02T19:24:42.204220Z digest=sha256:3f640905177b503f38bb3cbfb86c6ee4fdb3cdf176be164b661418e2fdbcc0ed

Observation 7a6779ae-28b7-470a-bd80-e0cf68d63f8e · outbound

This paper cites Ex- ploring clip for assessing the look and feel of images.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Ex- ploring clip for assessing the look and feel of images

Reference 41

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source=pdf_text observed=2026-08-02T19:24:42.250887Z digest=sha256:17b3190194376d2502b1dfb2c21b2c955db8421641f863d1016f7446d7c164c2

Observation 5e8d3243-5f35-444d-a03d-fc0c17e2b311 · outbound

This paper cites Exploiting diffusion prior for real-world image super-resolution.International Journal of Computer Vision, 132(12):5929–5949, 2024.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Exploiting diffusion prior for real-world image super-resolution.International Journal of Computer Vision, 132(12):5929–5949, 2024

Reference 42

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source=pdf_text observed=2026-08-02T19:24:42.311485Z digest=sha256:5ca522964155e02ba161e85071c420a79121561e896967de88c8b6890a4a535d

Observation 4e5f8c01-990c-4c43-a469-ce664ff03492 · outbound

This paper cites Esrgan: En- hanced super-resolution generative adversarial networks.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Esrgan: En- hanced super-resolution generative adversarial networks

Reference 43

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source=pdf_text observed=2026-08-02T19:24:42.371043Z digest=sha256:3066ae60adce9842d3fc75d8d46481af11f0adf62bf1e20a8dbb0e91d01d743b

Observation bae56118-7197-47bc-a4a7-058899077756 · outbound

This paper cites Real-esrgan: Training real-world blind super-resolution with pure synthetic data.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Real-esrgan: Training real-world blind super-resolution with pure synthetic data

Reference 44

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source=pdf_text observed=2026-08-02T19:24:42.452227Z digest=sha256:f038b29b460bd12b1a405ac6cdd74fcffffa548a619e33fb4eb3d92f12d6c347

Observation 2371ece8-5445-417e-b265-77444bc35089 · outbound

This paper cites Frequency- domain refinement with multiscale diffusion for super res- olution.arXiv preprint arXiv:2405.10014, 2024.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Frequency- domain refinement with multiscale diffusion for super res- olution.arXiv preprint arXiv:2405.10014, 2024

Reference 45

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source=pdf_text observed=2026-08-02T19:24:42.515385Z digest=sha256:a92b1a3877ff7da63ae52d6d5e1f1fa79615c00facc895f216c61a3ace869106

Observation 560a33f9-247c-44f9-9b5a-ea3b0a4e6cd5 · outbound

This paper cites Reconstruct-and-Generate Diffusion Model for Detail-Preserving Image Denoising.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Reconstruct-and-Generate Diffusion Model for Detail-Preserving Image Denoising

Reference 46

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source=pdf_text observed=2026-08-02T19:24:42.561106Z digest=sha256:a81801854c3d9e153831b1bb8086b25aade48f090742fa5a03e88fccfd7143b2

Observation 27e23ae0-0a33-4222-af3f-5c0ce296897a · outbound

This paper cites Sinsr: diffusion-based image super- resolution in a single step.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Sinsr: diffusion-based image super- resolution in a single step

Reference 47

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source=pdf_text observed=2026-08-02T19:24:42.639195Z digest=sha256:666339804ca657fa48bbdec8a20f000ca59de19202a4aa67af9e89b6045ba99f

Observation fe496cd1-4468-462f-bf8a-fdbbe958ec09 · outbound

This paper cites Image quality assessment: from error visibility to structural similarity.IEEE transactions on image processing, 13(4):600–612, 2004.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Image quality assessment: from error visibility to structural similarity.IEEE transactions on image processing, 13(4):600–612, 2004

Reference 48

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source=pdf_text observed=2026-08-02T19:24:42.724174Z digest=sha256:b72fd857e72a99854071558656dfec1dd5927f683e18d07d64b5102295a1816f

Observation 46def7e5-ccc2-44c2-9f7b-a52563afed22 · outbound

This paper cites Prolificdreamer: High-fidelity and diverse text-to-3d generation with variational score distilla- tion.Advances in neural information processing systems, 36: 8406–8441, 2023.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Prolificdreamer: High-fidelity and diverse text-to-3d generation with variational score distilla- tion.Advances in neural information processing systems, 36: 8406–8441, 2023

Reference 49

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source=pdf_text observed=2026-08-02T19:24:42.782149Z digest=sha256:26ac8e4c01a9df11703b0c2098ac935142970d7f58133eb69c407150907b4a39

Observation 6649d5d4-561a-4cf7-8d32-f1fbd709323c · outbound

This paper cites Component divide-and-conquer for real-world image super-resolution.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Component divide-and-conquer for real-world image super-resolution

Reference 50

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source=pdf_text observed=2026-08-02T19:24:42.861407Z digest=sha256:ab4fdd43c957075408c6e48ffb3a1c7601d34e542e9e4a43bc127b70aa15a1cf

Observation 643e77ef-4ea3-4585-930a-c96b63b3be9c · outbound

This paper cites One-step effective diffusion network for real-world image super-resolution.Advances in Neural Information Process- ing Systems, 37:92529–92553, 2024.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution One-step effective diffusion network for real-world image super-resolution.Advances in Neural Information Process- ing Systems, 37:92529–92553, 2024

Reference 51

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source=pdf_text observed=2026-08-02T19:24:42.941184Z digest=sha256:92c6cb5c31c5460a9115d02caf3812fc0f90375535ebea2afbec478d5fa88444

Observation feec59ee-3953-4231-a1d5-44cd43b21d23 · outbound

This paper cites Seesr: Towards semantics- aware real-world image super-resolution.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Seesr: Towards semantics- aware real-world image super-resolution

Reference 52

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source=pdf_text observed=2026-08-02T19:24:43.058026Z digest=sha256:3304f8ec192eb6680b59993dd9a14b6ad950d3e388ab2b5c278be51087b1e8dc

Observation 4e76134b-7db9-4247-a8a7-7db9dbb5045d · outbound

This paper cites AddSR: Accelerating Diffusion-based Blind Super-Resolution with Adversarial Diffusion Distillation.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution AddSR: Accelerating Diffusion-based Blind Super-Resolution with Adversarial Diffusion Distillation

Reference 53

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source=pdf_text observed=2026-08-02T19:24:43.133816Z digest=sha256:ecc82ebe838ef4613c3a3f5c1cd5d06102dc96de6864dfa0de30fe2267a01c4a

Observation a5409a69-f0cd-4476-a376-f9a6c0f34363 · outbound

This paper cites Image super-resolution via sparse representation.IEEE transactions on image processing, 19(11):2861–2873, 2010.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Image super-resolution via sparse representation.IEEE transactions on image processing, 19(11):2861–2873, 2010

Reference 54

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source=pdf_text observed=2026-08-02T19:24:43.220259Z digest=sha256:e1668ad9a7ca30c152bcf66ed82b347171b5275b749fcdf4f522f3d7edfa468a

Observation 8d99a883-4c6f-4e5c-b77e-4b459c47cb18 · outbound

This paper cites Maniqa: Multi-dimension attention network for no-reference image quality assessment.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Maniqa: Multi-dimension attention network for no-reference image quality assessment

Reference 55

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source=pdf_text observed=2026-08-02T19:24:43.328911Z digest=sha256:6e615745b587036fa48077de1459d27b63ed28ac6392df21c8f660e722841474

Observation d89a4633-5fda-4261-8516-f956313533a6 · outbound

This paper cites Pixel-aware stable diffusion for realistic image super-resolution and personalized stylization.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Pixel-aware stable diffusion for realistic image super-resolution and personalized stylization

Reference 56

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source=pdf_text observed=2026-08-02T19:24:43.478838Z digest=sha256:91624085795dab4541e286b6cf82a55a5d7642c32594c520e1d778b0365b6622

Observation e0f59099-72d0-4392-aa27-f06f5ce122a1 · outbound

This paper cites One-step diffusion with distribution matching distillation.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution One-step diffusion with distribution matching distillation

Reference 57

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source=pdf_text observed=2026-08-02T19:24:43.559646Z digest=sha256:238df07e9acc8326fb101fd712f9aba39533ff6dabc74c9af6cababbfaad7fe6

Observation d9c6622d-8b9d-4fa7-905d-21cc4e2a03e3 · outbound

This paper cites Resshift: Efficient diffusion model for image super- resolution by residual shifting.Advances in Neural Infor- mation Processing Systems, 36:13294–13307, 2023.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Resshift: Efficient diffusion model for image super- resolution by residual shifting.Advances in Neural Infor- mation Processing Systems, 36:13294–13307, 2023

Reference 58

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source=pdf_text observed=2026-08-02T19:24:43.617373Z digest=sha256:394caa86047943fee794f215d45a30fb772a372e55049583aff4de058bc9fde3

Observation 16e2eb7e-7448-4ceb-a861-cc9e54af6297 · outbound

This paper cites Designing a practical degradation model for deep blind im- age super-resolution.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Designing a practical degradation model for deep blind im- age super-resolution

Reference 59

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source=pdf_text observed=2026-08-02T19:24:43.700911Z digest=sha256:5bb4bbd9088db72b6eafcc4deecd77a67f7506d9fe4beddcb9d92fb776a1a903

Observation 7b38bf94-a43e-4384-9830-8992e91ed4fd · outbound

This paper cites A feature-enriched completely blind image quality evaluator.IEEE Transactions on Image Processing, 24(8):2579–2591, 2015.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution A feature-enriched completely blind image quality evaluator.IEEE Transactions on Image Processing, 24(8):2579–2591, 2015

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source=pdf_text observed=2026-08-02T19:24:43.751250Z digest=sha256:5c76a9e962cd4bbd7168bc6e28ad35bdd126b77f740ab1cf8dca2d8e1ab555f1

Observation 8e6dfa7d-13aa-4375-9250-13e8a4d1b15c · outbound

This paper cites The unreasonable effectiveness of deep features as a perceptual metric.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution The unreasonable effectiveness of deep features as a perceptual metric

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source=pdf_text observed=2026-08-02T19:24:43.824108Z digest=sha256:d5d5f0d1bf0840fd678490c98c44656b81d82cf479260df0a976c48ecbe69a39

Observation 12c6f230-e351-4933-9783-b5db1b717d65 · outbound

This paper cites Recognize anything: A strong image tagging model.

FiDeSR: High-Fidelity and Detail-Preserving One-Step Diffusion Super-Resolution Recognize anything: A strong image tagging model

Reference 62

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source=pdf_text observed=2026-08-02T19:24:43.904090Z digest=sha256:0f9994583ef3adc204de7025552d576735764fae20ce0b1a69e96dfa44a5333a

Pith citing papers

No inbound Pith citation observations are available.