Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-05T23:06:52.923494Z
Paper Citation Record · LEDGER
As of 7 August 2026, this Paper Citation Record lists 71 of 71 outbound references and 0 inbound Pith citation observations for arXiv:2508.09189.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-05T23:06:52.923494Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-07T06:34:17.273281+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
A source-named dated measurement, never combined with another source.
Source: cited_works
71 of 71 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 34d536fc-7b75-4489-803a-fd2020631e8d · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Edd2020: A comprehensive dataset for en- doscopic artifact detection
Reference 1
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Observation 33bfda1f-280b-4946-bb55-3ff1bd2ddaec · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Polypgen: A multi-center polyp detection and segmentation dataset
Reference 2
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Hybrid(Transformer+CNN)-based Polyp Segmentation Unresolved cited work
Reference 3
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Observation f24e5623-d2d9-4be7-a5a6-4adfe60f1510 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Artificial intelligence in knee arthroplasty: Current concept of the available clinical applications
Reference 4
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Observation 97f5208b-0f8c-4d4e-bec1-c9230072521c · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation To- wards automatic polyp detection with a polyp appearance model
Reference 5
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Observation 83e28350-b95b-4d74-809e-f127140194e7 · outbound
Reference 6
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Hybrid(Transformer+CNN)-based Polyp Segmentation Wm- dova maps for accurate polyp highlighting in colonoscopy
Reference 7
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Hybrid(Transformer+CNN)-based Polyp Segmentation Comparative validation of polyp detection methods in video colonoscopy
Reference 8
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Observation ef93a6c7-1477-4eb1-95c0-5babdda7ec04 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Un- derstanding robustness of transformers for image classifica- tion
Reference 9
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Observation e8740568-0b29-4a2c-9679-14cc67e41d8c · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Hyperkvasir: A comprehensive multi- class image and video dataset for gastrointestinal endoscopy
Reference 10
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Observation 7293c825-40aa-4328-aebf-be78a579e227 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Swin-Unet: Unet-like Pure Transformer for Medical Image Segmentation
Reference 11
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Observation 2d920f53-b2b3-4c4d-9509-633489d1d509 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation TransUNet: Transformers Make Strong Encoders for Medical Image Segmentation
Reference 12
Source-reported events for the cited work
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Observation 925e43aa-ceef-4d85-a204-217e94512c2d · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Polyp-pvt: Polyp segmentation with pyramid vision transformers
Reference 13
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Observation be3388cd-1fa7-4b98-8085-aef3e324459e · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation An image is worth 16x16 words: Transformers for image recognition at scale
Reference 14
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Observation d457a9aa-0bd4-457a-95b3-96d0667d2d1e · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Espinosa, Gaston A
Reference 15
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Observation 4c8f9513-d068-4af1-9127-8c0317561123 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Sun-seg: A large-scale dataset for sur- gical scene segmentation
Reference 16
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Observation 41edbae3-eed5-4a21-a802-37f493efc4c2 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Pranet: Parallel reverse attention network for polyp segmentation
Reference 17
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Observation c96f3b20-24bd-4137-a438-f996007c9eee · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Roth, and Daguang Xu
Reference 18
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Observation b8ba2dfc-c339-49c6-8193-f8cefec94ece · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Deep residual learning for image recognition
Reference 19
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Observation 1a93f96f-d705-48a3-a0f4-59aad595b1d9 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Kvasir-capsule: A video capsule en- doscopy dataset
Reference 20
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Observation 3dd98453-80a0-40a8-9881-224ba08c2c1a · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Piccolo dataset for endoscopic polyp segmentation
Reference 21
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Observation 98d4faab-db09-48ee-b4f1-9e3d1c0ae559 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Real- time polyp detection, localization and segmentation in colonoscopy using deep learning
Reference 22
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Observation 947e05fc-cc86-4f32-acb4-5c8cf143fef1 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Johansen, Dag Johansen, Jens Rittscher, Michael A
Reference 23
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Observation cc7feaae-009d-46e7-96c3-2203f84ea41d · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Smedsrud, Daniel Johansen, et al
Reference 24
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Observation 9bf27669-a29a-43bf-859b-b2cbe6fd9947 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Smedsrud, Michael A
Reference 25
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Observation fe26f35c-167c-4619-9884-039924d94ec8 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Kvasir-SEG: A Segmented Polyp Dataset
Reference 26
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Observation 246ff0e1-5017-4c4b-a0fd-0a4534bfd88c · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Smedsrud, Michael A
Reference 27
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Observation d89e7c9b-5ac5-4988-a325-2b01229f3aa8 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Nanonet: real-time polyp segmentation in video capsule endoscopy and colonoscopy
Reference 28
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Observation afc5622e-46d5-4079-aa58-4fd030b804b9 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Deep learning-based detection of polyps in colonoscopy
Reference 29
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Observation 8eaf62aa-afd9-466d-a74b-bbb2fd9a56df · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Li-segpnet: A lightweight pyramid network for real-time polyp segmentation
Reference 30
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Observation 4a9ce29b-efba-4cd3-bc26-f71d76b253e9 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Sun: A large-scale dataset for surgical understanding
Reference 31
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Observation 3358be66-4f28-4981-b808-158613ca0334 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Cp-child: A pediatric colon polyp dataset
Reference 32
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Observation 698c84be-6a96-40cc-a9dd-d153373667b9 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Ddanet: Dual decoder attention network for automatic polyp segmentation
Reference 33
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Observation 590d5724-ec4b-483d-80b1-043df92aa056 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Ld polyp video: A large-scale colonoscopy video dataset
Reference 34
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Observation 7c07922a-eaf3-462d-9e88-d84f43151f72 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Swin trans- former: Hierarchical vision transformer using shifted win- dows
Reference 35
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Observation 59406eaa-bfab-49e7-a750-1a520db560db · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Fully convolutional networks for semantic segmentation
Reference 36
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Observation f94b10e4-2234-45c3-ab79-807d10316b1d · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Decoupled weight de- cay regularization
Reference 37
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Observation 42722c43-806d-4dac-9912-f9c0562788a8 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Mamonov, Isabel N
Reference 38
Source-reported events for the cited work
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Observation d4d141cb-b87e-47ac-98cd-e79b006d1ee1 · outbound
Reference 39
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Observation d0c096fc-14a7-49bf-9b13-23f813ddb8f4 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Understanding your diagno- sis: Colonoscopy
Reference 40
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Observation d0fa745c-0dbc-4169-973e-baf42541a97d · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation A deep learning method for early detection of dia- betic foot using decision fusion and thermal images
Reference 41
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Observation 6d219cb7-1837-4fd1-acee-c1bb238904d1 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Cancer stat facts: Colorectal cancer
Reference 42
Source-reported events for the cited work
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Observation 7dd932a5-8ebe-4206-80ab-6a94ff29e9c5 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Uacanet: Unified adaptive context-aware network for polyp segmentation
Reference 43
Source-reported events for the cited work
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Observation 570a2294-446a-4188-967a-6eeae6728253 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Deep learning and hand-crafted fea- tures for automatic polyp detection
Reference 44
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Observation 42475eb4-ae1f-4424-870c-a651718fe673 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Nbi and wl ucdb databases for computer-assisted detection of ulcerative lesions
Reference 45
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Observation 13d6ecc6-5e22-4c8e-9908-712ef1cfa5a6 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Rodr ´ıguez-Merch´an and Pilar G ´omez-Cardero
Reference 46
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Observation 0299050e-ba7d-43fb-a0bf-5f29a9c6c4c0 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation U-net: Convolutional networks for biomedical image segmentation
Reference 47
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Hybrid(Transformer+CNN)-based Polyp Segmentation Toward embedded detection of polyps in wce images for early diagnosis of colorectal can- cer
Reference 48
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Hybrid(Transformer+CNN)-based Polyp Segmentation Toward embedded detection of polyps in wce images for early diagnosis of colorectal can- cer
Reference 49
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Observation 7f35dbce-3d7f-41f0-b501-59cbb8765bc6 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Very deep con- volutional networks for large-scale image recognition
Reference 50
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Hybrid(Transformer+CNN)-based Polyp Segmentation Unresolved cited work
Reference 51
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Observation fb76f631-00bf-43d0-9252-f0bcd55e2226 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation The effect of a graft transformation on distance signless Laplacian spectral radius of the graphs
Reference 52
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Hybrid(Transformer+CNN)-based Polyp Segmentation Gurudu, and Jianming Liang
Reference 53
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Hybrid(Transformer+CNN)-based Polyp Segmentation Automated polyp detection in colonoscopy videos using shape and context information
Reference 54
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Observation a433a20f-41e9-4592-ad6d-41141605da63 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Unresolved cited work
Reference 55
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Hybrid(Transformer+CNN)-based Polyp Segmentation Atten- tion is all you need
Reference 56
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Reference 57
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Hybrid(Transformer+CNN)-based Polyp Segmentation Vezakis, Konstantinos Georgas, Dimitrios Fo- tiadis, and George K
Reference 58
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Hybrid(Transformer+CNN)-based Polyp Segmentation Duck-net: Dense u-shaped convolutional ker- nel network for polyp segmentation
Reference 59
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Observation 53cbe711-9850-407a-8a17-a15c3dce949a · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Nanonet: Real-time polyp segmentation with ultra-lightweight models for edge devices
Reference 60
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Hybrid(Transformer+CNN)-based Polyp Segmentation Pvt v2: Improved baselines with pyramid vision transformer
Reference 61
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Hybrid(Transformer+CNN)-based Polyp Segmentation A versatile back- bone for dense prediction without convolutions
Reference 62
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Observation 0f71ea7e-c71d-42ad-9783-442bbc11e3d3 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Msrfe-net: Multi-scale residual feature enhancement network for polyp segmentation
Reference 63
Source-reported events for the cited work
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Observation c2879b4d-4f10-4976-9736-128fcfa05092 · outbound
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Reference 64
Source-reported events for the cited work
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Observation da9526a6-dd0d-4673-8af0-921ec0fb2274 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Alvarez, and Ping Luo
Reference 65
Source-reported events for the cited work
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Observation 36b5bfa6-82f6-4bf8-8e0d-afb56fa9bb6b · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Colonformer: An efficient transformer based method for colon polyp segmentation
Reference 66
Source-reported events for the cited work
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Observation ea3f4e80-74ce-4834-a3d8-f776b17708f1 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Fcb- former: A fully convolutional bridge transformer with pyra- mid squeeze-excitation for colonoscopy segmentation
Reference 67
Source-reported events for the cited work
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Observation 8c628e4d-4203-4d94-8922-c8d4268859c3 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Road extraction by deep residual u-net
Reference 68
Source-reported events for the cited work
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Observation feb87228-fc65-4767-a4dc-34648f5d4af4 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Road ex- traction by deep residual u-net
Reference 69
Source-reported events for the cited work
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Observation d1a30977-27c5-4cf3-8fe8-362636db652a · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation UNet++: A Nested U-Net Architecture for Medical Image Segmentation
Reference 70
Source-reported events for the cited work
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Observation 02999c62-30a7-44ea-abac-8bf471a03e60 · outbound
Hybrid(Transformer+CNN)-based Polyp Segmentation Very Deep Convolutional Networks for Large-Scale Image Recognition
Reference 2015
Source-reported events for the cited work
Unavailable: canonical work link unavailable.
No inbound Pith citation observations are available.