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Paper Citation Record · LEDGER

Object Recognition Datasets and Challenges: A Review

As of 8 August 2026, this Paper Citation Record lists 100 of 278 outbound references and 0 inbound Pith citation observations for arXiv:2507.22361.

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

pith.paper-citation-record.v1
2507.22361 v1

Coverage vector

measured 100 of 278 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-08-06T11:51:10.410373Z

measured 100 of 100 standing notices

One-hop event checks from named stored sources.

Source: scholarly_work_events, retraction_status_cache, observed 2026-08-08T06:32:00.761636+00:00

measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links

measured 0 of 1 external citation measurements

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

Source: cited_works

Reference resolution

100 of 278 outbound references displayed

  • verified exact7
  • verified fuzzy0
  • unresolved86
  • parse uncertain0
  • malformed identifier7
  • metadata mismatch0

External citation measurements

No source-named external measurement is stored.

Outbound references

Observation b78b1172-ed2d-451d-a825-29aea9d4ff4a · outbound

This paper cites IEEE Xplore Full-Text PDF:.

Object Recognition Datasets and Challenges: A Review IEEE Xplore Full-Text PDF:

Reference 1

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Observation 91fceaf9-b5c7-4448-9a7c-b27007a08423 · outbound

This paper cites 2D and 3D face recognition: A survey.

Object Recognition Datasets and Challenges: A Review 2D and 3D face recognition: A survey

Reference 2

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Observation a6d51d34-e5b7-425d-8cea-9a1fe07e18b4 · outbound

This paper cites Endoscopy artifact detection (EAD 2019) challenge dataset , 1–13doi: 10.17632/C7FJBXCGJ9.1.

Object Recognition Datasets and Challenges: A Review Endoscopy artifact detection (EAD 2019) challenge dataset , 1–13doi: 10.17632/C7FJBXCGJ9.1

Reference 4

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Observation cc59b21c-d2cf-41e3-94d1-1d6f85774c8a · outbound

This paper cites EAD 2019.

Object Recognition Datasets and Challenges: A Review EAD 2019

Reference 5

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Observation e0b3b685-5e87-422f-9040-1358df346773 · outbound

This paper cites Overview of artificial intelligence in Medicine.

Object Recognition Datasets and Challenges: A Review Overview of artificial intelligence in Medicine

Reference 6

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Observation 9a4bbd36-6aae-4e78-a52a-73d516917fc4 · outbound

This paper cites CVPR 2019 W AD Beyond Single-frame Perception Challenge.

Object Recognition Datasets and Challenges: A Review CVPR 2019 W AD Beyond Single-frame Perception Challenge

Reference 7

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Observation 43ee2bcd-2302-4454-a62a-c3e5658cec04 · outbound

This paper cites ICIAR 2018.

Object Recognition Datasets and Challenges: A Review ICIAR 2018

Reference 8

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Observation 75106de8-b7eb-4b9d-836a-f27577fa2a89 · outbound

This paper cites BACH: Grand challenge on breast cancer histology images.

Object Recognition Datasets and Challenges: A Review BACH: Grand challenge on breast cancer histology images

Reference 9

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Observation ee4d265c-a4aa-49ae-be91-153ade7f9ca6 · outbound

This paper cites The Lung Image Database Consortium (LIDC) and Image Database Resource Initiative (IDRI): A completed reference database of lung nodules on CT scans.

Object Recognition Datasets and Challenges: A Review The Lung Image Database Consortium (LIDC) and Image Database Resource Initiative (IDRI): A completed reference database of lung nodules on CT scans

Reference 10

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Observation 37bbab47-08a1-422a-be6c-99641629666f · outbound

This paper cites UMDFaces: An Annotated Face Dataset for Training Deep Networks.

Object Recognition Datasets and Challenges: A Review UMDFaces: An Annotated Face Dataset for Training Deep Networks

Reference 11

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Observation 68f434d2-4e12-4134-825d-cad1c8385830 · outbound

This paper cites ObjectNet: A large-scale bias-controlled dataset for pushing the limits of object recognition models.

Object Recognition Datasets and Challenges: A Review ObjectNet: A large-scale bias-controlled dataset for pushing the limits of object recognition models

Reference 12

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Observation fe053a96-2975-4bcf-a963-8da754531824 · outbound

This paper cites Surf: Speeded up robust features , 404–417.

Object Recognition Datasets and Challenges: A Review Surf: Speeded up robust features , 404–417

Reference 13

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Observation acb45b4a-334e-4c81-9837-b3b5545b405c · outbound

This paper cites SemanticKITTI: A Dataset for Semantic Scene Understanding of LiDAR Sequences.

Object Recognition Datasets and Challenges: A Review SemanticKITTI: A Dataset for Semantic Scene Understanding of LiDAR Sequences

Reference 14

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Observation 2c0126b9-cb80-4edd-a202-3511e5b66105 · outbound

This paper cites OPENSURF ACES: A richly annotated catalog of surface appearance.

Object Recognition Datasets and Challenges: A Review OPENSURF ACES: A richly annotated catalog of surface appearance

Reference 15

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Observation 3cd443a2-c47f-43cf-838e-f3f05b46282e · outbound

This paper cites Greedy layer-wise training of deep networks, in: Advances in neural information processing systems, pp.

Object Recognition Datasets and Challenges: A Review Greedy layer-wise training of deep networks, in: Advances in neural information processing systems, pp

Reference 16

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Observation 12beec22-f484-4c8c-bbd6-f8b67d2aca85 · outbound

This paper cites Names and faces in the news.

Object Recognition Datasets and Challenges: A Review Names and faces in the news

Reference 17

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Observation 9ce64dad-0d98-466c-ba64-6c86ebebbd87 · outbound

This paper cites CVPR 2018 - Berkeley DeepDrive challenges.

Object Recognition Datasets and Challenges: A Review CVPR 2018 - Berkeley DeepDrive challenges

Reference 19

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Observation c858b28f-30c1-4a88-80bf-331e76e94dcd · outbound

This paper cites Towards automatic polyp detection with a polyp appearance model.

Object Recognition Datasets and Challenges: A Review Towards automatic polyp detection with a polyp appearance model

Reference 20

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Observation e1e99a4e-54e5-4638-beba-f10c74923d2e · outbound

This paper cites Automatic 3D face authentication.

Object Recognition Datasets and Challenges: A Review Automatic 3D face authentication

Reference 21

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Observation 731227cb-7813-49ee-8fb4-120beeed9760 · outbound

This paper cites Deep-learning-assisted diagnosis for knee magnetic resonance imaging: Development and retrospective validation of MRNet.

Object Recognition Datasets and Challenges: A Review Deep-learning-assisted diagnosis for knee magnetic resonance imaging: Development and retrospective validation of MRNet

Reference 22

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Observation 6f28c98f-4d88-43f4-b398-aff90c0ae6d2 · outbound

This paper cites The inD Dataset: A Drone Dataset of Naturalistic Road User Trajectories at German Intersections.

Object Recognition Datasets and Challenges: A Review The inD Dataset: A Drone Dataset of Naturalistic Road User Trajectories at German Intersections

Reference 23

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Observation 97e8c3e8-5658-4cdc-b3c5-c5e1c6802174 · outbound

This paper cites Long- term underwater camera surveillance for monitoring and analysis of fish populations.

Object Recognition Datasets and Challenges: A Review Long- term underwater camera surveillance for monitoring and analysis of fish populations

Reference 24

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Observation 63876462-7d4b-4c31-bd97-6649d665c0b1 · outbound

This paper cites Learning fuzzy concept definitions.

Object Recognition Datasets and Challenges: A Review Learning fuzzy concept definitions

Reference 25

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Observation f68fecd8-3093-41f1-9d0f-1ab3bc09bbc0 · outbound

This paper cites AU-AIR: A Multi-modal Unmanned Aerial Vehicle Dataset for Low Altitude Traffic Surveillance.

Object Recognition Datasets and Challenges: A Review AU-AIR: A Multi-modal Unmanned Aerial Vehicle Dataset for Low Altitude Traffic Surveillance

Reference 26

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Observation 917e0845-672e-4a2a-874c-72ee929cba14 · outbound

This paper cites The EuroCity Persons Dataset: A Novel Benchmark for Object Detection.

Object Recognition Datasets and Challenges: A Review The EuroCity Persons Dataset: A Novel Benchmark for Object Detection

Reference 27

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Observation 3e994a5e-099d-40f9-ad65-63401455dbd4 · outbound

This paper cites Segmentation and Recognition using SfM Point Clouds.

Object Recognition Datasets and Challenges: A Review Segmentation and Recognition using SfM Point Clouds

Reference 28

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Observation 59dba67d-d4db-477f-bc07-b69b45967a41 · outbound

This paper cites Segmentation and Recognition Using Structure from Motion Point Clouds , 44–57.

Object Recognition Datasets and Challenges: A Review Segmentation and Recognition Using Structure from Motion Point Clouds , 44–57

Reference 29

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Observation 84f98f89-8ff3-4641-8f01-f626dcaf5c3d · outbound

This paper cites Object Segmentation by Long Term Analysis of Point Trajectories, in: Daniilidis, K., Maragos, P., Paragios, N.

Object Recognition Datasets and Challenges: A Review Object Segmentation by Long Term Analysis of Point Trajectories, in: Daniilidis, K., Maragos, P., Paragios, N

Reference 30

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Observation 9a59ca90-ccc2-4ce5-a081-3b1c3cbee332 · outbound

This paper cites The 2019 DAVIS Challenge on VOS: Unsupervised Multi-Object Segmentation.

Object Recognition Datasets and Challenges: A Review The 2019 DAVIS Challenge on VOS: Unsupervised Multi-Object Segmentation

Reference 31

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Observation cdd3fc81-5f6c-43fe-a050-705061e8556d · outbound

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Object Recognition Datasets and Challenges: A Review Unresolved cited work

Reference 32

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Observation dc1b2386-dcc0-4371-968c-26c0d2182fa1 · outbound

This paper cites Multi-Modality Vertebra Recognition in Arbitrary Views Using 3D Deformable Hierarchical Model.

Object Recognition Datasets and Challenges: A Review Multi-Modality Vertebra Recognition in Arbitrary Views Using 3D Deformable Hierarchical Model

Reference 33

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Observation ee8cbd1b-c671-4cb2-bad3-7d0d8ea5312c · outbound

This paper cites an unresolved cited work.

Object Recognition Datasets and Challenges: A Review Unresolved cited work

Reference 34

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Observation 751452d5-92c0-4add-b96f-7b1899a570ef · outbound

This paper cites ISIC 2018.

Object Recognition Datasets and Challenges: A Review ISIC 2018

Reference 35

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Observation 44b3cf04-2cf1-4761-8084-0bba79982890 · outbound

This paper cites Nucleus segmentation across imaging experiments: the 2018 Data Science Bowl.

Object Recognition Datasets and Challenges: A Review Nucleus segmentation across imaging experiments: the 2018 Data Science Bowl

Reference 36

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Observation 926859e3-0c3c-4b58-a36d-72c36bb8a05e · outbound

This paper cites Argoverse: 3D tracking and forecasting with rich maps.

Object Recognition Datasets and Challenges: A Review Argoverse: 3D tracking and forecasting with rich maps

Reference 37

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Observation edfaa34a-dad9-4965-9239-46f071a6d8f2 · outbound

This paper cites an unresolved cited work.

Object Recognition Datasets and Challenges: A Review Unresolved cited work

Reference 38

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Observation 200fb07e-a0da-4eb0-8553-1f59d15e0c3e · outbound

This paper cites D$^2$-City: A Large-Scale Dashcam Video Dataset of Diverse Traffic Scenarios.

Object Recognition Datasets and Challenges: A Review D$^2$-City: A Large-Scale Dashcam Video Dataset of Diverse Traffic Scenarios

Reference 39

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Observation f1f03ad0-46c8-488a-b9da-f4a667aba86c · outbound

This paper cites Return of the devil in the details: Delving deep into convolutional nets.

Object Recognition Datasets and Challenges: A Review Return of the devil in the details: Delving deep into convolutional nets

Reference 40

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Observation 74b71199-74c1-43f4-b904-ce3aab2ff7b6 · outbound

This paper cites Cross-Age Reference Coding for Age-Invariant Face Recognition and Retrieval , 768–783.

Object Recognition Datasets and Challenges: A Review Cross-Age Reference Coding for Age-Invariant Face Recognition and Retrieval , 768–783

Reference 41

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Observation 5a4db81f-d3da-4240-b214-10ff9539e3a1 · outbound

This paper cites High Performance Convolutional Neural Networks for Document Processing, in: Lorette, G.

Object Recognition Datasets and Challenges: A Review High Performance Convolutional Neural Networks for Document Processing, in: Lorette, G

Reference 42

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Observation c42d7cc6-6ea6-4aa3-b3bf-ed6523c606c0 · outbound

This paper cites Deeplab: Semantic image segmentation with deep convolutional nets, atrous convolution, and fully connected crfs.

Object Recognition Datasets and Challenges: A Review Deeplab: Semantic image segmentation with deep convolutional nets, atrous convolution, and fully connected crfs

Reference 43

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Observation 515df6b1-1c3c-42c5-90d0-b9ac4ec0d4bb · outbound

This paper cites Deeplab: Semantic image segmentation with deep convolutional nets, atrous convolution, and fully connected crfs.

Object Recognition Datasets and Challenges: A Review Deeplab: Semantic image segmentation with deep convolutional nets, atrous convolution, and fully connected crfs

Reference 44

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Observation 66ed7bb5-9f9a-4dfd-8178-810c061f5cbd · outbound

This paper cites TensorMask: A Foundation for Dense Object Segmentation.

Object Recognition Datasets and Challenges: A Review TensorMask: A Foundation for Dense Object Segmentation

Reference 45

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source=pdf_text observed=2026-08-06T11:51:10.287939Z digest=sha256:e96235b2e25795a7ec9892098cce6a2e0cb762611c1a77196b895d1c17abec38

Observation 90c4b537-a0c8-4364-be8c-c0e4791cbc6b · outbound

This paper cites Rethinking Atrous Convolution for Semantic Image Segmentation.

Object Recognition Datasets and Challenges: A Review Rethinking Atrous Convolution for Semantic Image Segmentation

Reference 46

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Observation 94ac2489-2e3a-478b-8e5d-6603c2a6894b · outbound

This paper cites A survey on object detection in optical remote sensing images.

Object Recognition Datasets and Challenges: A Review A survey on object detection in optical remote sensing images

Reference 47

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Observation 09c1a793-6778-4bf1-a192-257483b44167 · outbound

This paper cites an unresolved cited work.

Object Recognition Datasets and Challenges: A Review Unresolved cited work

Reference 48

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source=pdf_text observed=2026-08-06T11:51:10.289991Z digest=sha256:b5ccf7159b4f997fa2600600ac8ec54c9552fcbcc831c01f816892836a8eec82

Observation 9d25f4c3-21de-419d-b9cd-db19dc921622 · outbound

This paper cites Salientshape: Group saliency in image collections.

Object Recognition Datasets and Challenges: A Review Salientshape: Group saliency in image collections

Reference 49

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source=pdf_text observed=2026-08-06T11:51:10.296414Z digest=sha256:989b0f5ed0627bab7eb8f453d9ff7ef2fa5ddbf9ed4cd7afed8a0a49184b48ac

Observation d89fc3b7-1674-411f-bda2-30dd61119c34 · outbound

This paper cites Remote Sensing Image Scene Classification: Benchmark and State of the Art.

Object Recognition Datasets and Challenges: A Review Remote Sensing Image Scene Classification: Benchmark and State of the Art

Reference 50

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Observation 2e24d1ce-ec62-4068-9e6e-7a358bd540da · outbound

This paper cites Xception: Deep learning with depthwise separable convolutions.

Object Recognition Datasets and Challenges: A Review Xception: Deep learning with depthwise separable convolutions

Reference 51

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source=pdf_text observed=2026-08-06T11:51:10.300208Z digest=sha256:14a1cc3d9a54fd56f0b5c9a7804f08996afdc328e8f1581ce20e6cfd942250c3

Observation 28efae46-68eb-4146-8752-388ee872cee3 · outbound

This paper cites KAIST Multi-Spectral Day/Night Data Set for Autonomous and Assisted Driving.

Object Recognition Datasets and Challenges: A Review KAIST Multi-Spectral Day/Night Data Set for Autonomous and Assisted Driving

Reference 52

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Observation 2e2975b5-b78e-4cb7-9ba7-2240ec112103 · outbound

This paper cites Skin Lesion Analysis Toward Melanoma Detection 2018: A Challenge Hosted by the International Skin Imaging Collaboration (ISIC) , 1–12.

Object Recognition Datasets and Challenges: A Review Skin Lesion Analysis Toward Melanoma Detection 2018: A Challenge Hosted by the International Skin Imaging Collaboration (ISIC) , 1–12

Reference 53

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source=pdf_text observed=2026-08-06T11:51:10.304331Z digest=sha256:3ead5c4d00981e55485bf2b32b32fcd2cb668317bbabc2b91cbb778ada8489de

Observation 1940df68-33ac-4eb1-89fe-0beccb464f84 · outbound

This paper cites Functional Map of the World.

Object Recognition Datasets and Challenges: A Review Functional Map of the World

Reference 54

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source=pdf_text observed=2026-08-06T11:51:10.302109Z digest=sha256:22109b17a1b78c0ba22d9c85b33845963c004af29ff2ef81a815b459a3111f76

Observation 8db8281b-99fc-4b55-8b70-dfe9ee8efc33 · outbound

This paper cites The Cityscapes Dataset for Semantic Urban Scene Understanding.

Object Recognition Datasets and Challenges: A Review The Cityscapes Dataset for Semantic Urban Scene Understanding

Reference 55

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source=pdf_text observed=2026-08-06T11:51:10.308343Z digest=sha256:6ae9cced45bb55dfef4e697c721c340fce3d6151e02e817611a09c75a90cdef9

Observation a0fb95bc-3598-4de1-b5a6-09fa2c693db5 · outbound

This paper cites A critical evaluation of the Next Generation Simulation (NGSIM) vehicle trajectory dataset.

Object Recognition Datasets and Challenges: A Review A critical evaluation of the Next Generation Simulation (NGSIM) vehicle trajectory dataset

Reference 56

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source=pdf_text observed=2026-08-06T11:51:10.306380Z digest=sha256:640199123b40728fa18c7267639bcf1e6753090a699ed99c4625097592ec5a38

Observation a768bdd5-f554-4a1d-b682-77e2d37f56b4 · outbound

This paper cites SARAS-ESAD Dataset.

Object Recognition Datasets and Challenges: A Review SARAS-ESAD Dataset

Reference 57

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source=pdf_text observed=2026-08-06T11:51:10.312233Z digest=sha256:c11622e6e48b6833568be8ca1e34fd8214c62e98c4d948faa51a882cb35bd0d6

Observation 981faa5a-fd02-41a7-8659-1f613dd2784f · outbound

This paper cites SARAS-ESAD 2020.

Object Recognition Datasets and Challenges: A Review SARAS-ESAD 2020

Reference 58

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Observation 973ec6a8-bec1-491a-8bf0-18a8fb94d869 · outbound

This paper cites EchoNet-Dynamic Dataset.

Object Recognition Datasets and Challenges: A Review EchoNet-Dynamic Dataset

Reference 59

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source=pdf_text observed=2026-08-06T11:51:10.316889Z digest=sha256:2802721703c0c526b40e067f40f6d3c747c2454a69bbd35fa5a447dea4058015

Observation 074381e6-e9d4-4107-b964-f61da1545a2f · outbound

This paper cites Histograms of oriented gradients for human detection.

Object Recognition Datasets and Challenges: A Review Histograms of oriented gradients for human detection

Reference 60

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source=pdf_text observed=2026-08-06T11:51:10.314411Z digest=sha256:d961b7d7d96cde597d990d496c5f618b24906a0b12908596cd3934bcf94a490d

Observation bc2dfa89-3985-44c0-8384-72b96274cda3 · outbound

This paper cites ImageNet: A large-scale hierarchical image database , 248–255doi:10.1109/cvpr.2009.5206848.

Object Recognition Datasets and Challenges: A Review ImageNet: A large-scale hierarchical image database , 248–255doi:10.1109/cvpr.2009.5206848

Reference 61

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source=pdf_text observed=2026-08-06T11:51:10.321000Z digest=sha256:4246c2d894f1f196f78bfcb2499ecd5a0253f1e35a8f529be3bebdada7196317

Observation d9a3b19e-a6e1-4a9b-93a5-573f621d9006 · outbound

This paper cites DeepGlobe 2018: A Challenge to Parse the Earth through Satellite Images.

Object Recognition Datasets and Challenges: A Review DeepGlobe 2018: A Challenge to Parse the Earth through Satellite Images

Reference 62

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source=pdf_text observed=2026-08-06T11:51:10.318850Z digest=sha256:30a42918f055cfc5c970d00bf6c70b8d2c6b32d0df08f97d5823ddf635436843

Observation 7a013069-8d7d-4b2e-a3fc-0b7c169d1568 · outbound

This paper cites Automatic detection of geometrical anomalies in composites manufacturing : a deep learning-based computer vision approach.

Object Recognition Datasets and Challenges: A Review Automatic detection of geometrical anomalies in composites manufacturing : a deep learning-based computer vision approach

Reference 63

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source=pdf_text observed=2026-08-06T11:51:10.324770Z digest=sha256:af977c7b5412c1ae0c789602c1993772390764f0932858158e1d2c8ae0bcae86

Observation 635b122d-af8b-469b-ba94-3596bcffe995 · outbound

This paper cites D2-City Detection Domain Adaptation Challenge.

Object Recognition Datasets and Challenges: A Review D2-City Detection Domain Adaptation Challenge

Reference 64

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source=pdf_text observed=2026-08-06T11:51:10.322897Z digest=sha256:0a9fbda4449d29f59d9203eb4b3f40509bfb944de7cc561f8fec38d4480f507d

Observation 9f5ce941-cf45-4a5c-bf5a-ac126eaa62ec · outbound

This paper cites ELCAP Public Lung Image Database.

Object Recognition Datasets and Challenges: A Review ELCAP Public Lung Image Database

Reference 65

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source=pdf_text observed=2026-08-06T11:51:10.329139Z digest=sha256:23ecd0ec3e43a009ce11088e49a3a5fdcb8b4ad8230d1faae7985a1ca151e156

Observation ae5a91cb-e3fa-41bd-a1be-ec3558f7cec5 · outbound

This paper cites Pedestrian detection: A benchmark, Institute of Electrical and Electronics Engineers (IEEE).

Object Recognition Datasets and Challenges: A Review Pedestrian detection: A benchmark, Institute of Electrical and Electronics Engineers (IEEE)

Reference 66

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source=pdf_text observed=2026-08-06T11:51:10.327108Z digest=sha256:33d1f03f61df104b1b33d863534aa103eb0229a2128d4b5e0d37ea949ed2f697

Observation 643d6bf3-d320-4941-9aa6-aa2b3b75b5c5 · outbound

This paper cites SpaceNet: A Remote Sensing Dataset and Challenge Series.

Object Recognition Datasets and Challenges: A Review SpaceNet: A Remote Sensing Dataset and Challenge Series

Reference 67

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source=pdf_text observed=2026-08-06T11:51:10.333020Z digest=sha256:c2c50f4c6947d76c83fed5d6079f5df9a0cc220cc8d207d5c3bcd2c7218833c0

Observation 9678e6bf-a318-46dc-a2fa-8ad202355fde · outbound

This paper cites Monocular pedestrian detection: Survey and experiments, in: IEEE Transactions on Pattern Analysis and Machine Intelligence, pp.

Object Recognition Datasets and Challenges: A Review Monocular pedestrian detection: Survey and experiments, in: IEEE Transactions on Pattern Analysis and Machine Intelligence, pp

Reference 68

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source=pdf_text observed=2026-08-06T11:51:10.331033Z digest=sha256:33642805249d7937838dd9ca79905142f2d92ed609b605d16e78e35993057bfb

Observation 2d68605f-272a-4bd1-9bc4-b9c224794117 · outbound

This paper cites ”Hello! My name is.

Object Recognition Datasets and Challenges: A Review ”Hello! My name is

Reference 69

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source=pdf_text observed=2026-08-06T11:51:10.337290Z digest=sha256:20b52ec7a11d9090461c251e2f3318829deabd4c394bac1d8232e6c002be248b

Observation 23d0eb22-7d68-482b-a6aa-c6c4d6856d4f · outbound

This paper cites The Pascal Visual Object Classes Challenge: A Retrospective.

Object Recognition Datasets and Challenges: A Review The Pascal Visual Object Classes Challenge: A Retrospective

Reference 70

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source=pdf_text observed=2026-08-06T11:51:10.334949Z digest=sha256:57f020678ac4fb06cb93b2c0524f0daa2651149d001ff26f166b588af796b742

Observation c6a9454c-1632-4b39-afa7-3899a8d4a429 · outbound

This paper cites Camouflaged Object Detection.

Object Recognition Datasets and Challenges: A Review Camouflaged Object Detection

Reference 71

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source=pdf_text observed=2026-08-06T11:51:10.341235Z digest=sha256:33c5d8c9a3866fdd1969fd72c679b9baafddfd60c516f4940b38fb6b44fe8408

Observation 0f1edfcc-471c-4ef1-a73a-7a8f62bbc407 · outbound

This paper cites The pascal visual object classes (VOC) challenge.

Object Recognition Datasets and Challenges: A Review The pascal visual object classes (VOC) challenge

Reference 72

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source=pdf_text observed=2026-08-06T11:51:10.339192Z digest=sha256:8f5471c9c76114d9a4a25eafcea7ac03ad3f9488bdcb164e97a2ff6b69a74c06

Observation ffb3f936-cf8f-4582-b51b-2f92f235cd89 · outbound

This paper cites Salient objects in clutter: Bringing salient object detection to the foreground.

Object Recognition Datasets and Challenges: A Review Salient objects in clutter: Bringing salient object detection to the foreground

Reference 73

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source=pdf_text observed=2026-08-06T11:51:10.345160Z digest=sha256:0f5512ffbca587aed23f74b33198887e470cf8b3b9e83549df0aa2639afe5edc

Observation a85572df-f5fd-45dd-ba27-91d78327e5f1 · outbound

This paper cites Camouflaged object detection , 2774–2784doi: 10.

Object Recognition Datasets and Challenges: A Review Camouflaged object detection , 2774–2784doi: 10

Reference 74

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source=pdf_text observed=2026-08-06T11:51:10.343205Z digest=sha256:64ed46f3c460d79efa5f72a31f2c55b8d8dd8fe903c3928e5f64a55a062212e3

Observation 6934de3f-fd4b-4f1b-8590-87f06ea07319 · outbound

This paper cites Learning Generative Visual Models from Few Training Examples :.

Object Recognition Datasets and Challenges: A Review Learning Generative Visual Models from Few Training Examples :

Reference 75

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source=pdf_text observed=2026-08-06T11:51:10.349000Z digest=sha256:6c9a0775c062b1d538a42660b6f8fab3833120d3fd546efaccf8167b48124fba

Observation 0cdfbebc-de63-43ed-84c2-c8d46430e63d · outbound

This paper cites JumpCut: Non-Successive Mask Transfer and Interpolation for Video Cutout.

Object Recognition Datasets and Challenges: A Review JumpCut: Non-Successive Mask Transfer and Interpolation for Video Cutout

Reference 76

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source=pdf_text observed=2026-08-06T11:51:10.347108Z digest=sha256:8baf0412a87a879a049282b7a032671d395dc9945317fd15725611b57603e499

Observation 3cd978f6-ae25-4a56-8fa4-1c16a8510f8f · outbound

This paper cites WordNet: an Electronic Lexical Database.

Object Recognition Datasets and Challenges: A Review WordNet: an Electronic Lexical Database

Reference 78

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source=pdf_text observed=2026-08-06T11:51:10.351028Z digest=sha256:0538434da71fac0c456fd6bfb537edc0e315cd323c8ca8fc16f06cb2108690bd

Observation ce904338-00eb-4b58-9aa3-64723af2fd78 · outbound

This paper cites Construction of a Machine Learning Dataset through Collaboration: The RSNA 2019 Brain CT Hemorrhage Challenge.

Object Recognition Datasets and Challenges: A Review Construction of a Machine Learning Dataset through Collaboration: The RSNA 2019 Brain CT Hemorrhage Challenge

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source=pdf_text observed=2026-08-06T11:51:10.357021Z digest=sha256:4c8f81f63f97f37eba2b8137b7563a232c3891523ee7b53cdd4a9ca17f1ca58a

Observation 43faf34f-3f85-4e02-a781-451e939b51cc · outbound

This paper cites Deep multi-modal object detection and semantic segmentation for autonomous driving: Datasets, methods, and challenges.

Object Recognition Datasets and Challenges: A Review Deep multi-modal object detection and semantic segmentation for autonomous driving: Datasets, methods, and challenges

Reference 80

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Observation 7a393a5c-b141-4617-98ba-a4121f2df4b2 · outbound

This paper cites A review on deep learning techniques applied to semantic segmentation.

Object Recognition Datasets and Challenges: A Review A review on deep learning techniques applied to semantic segmentation

Reference 81

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Observation cb77c89b-6bda-49ee-b74a-07628e116d72 · outbound

This paper cites Research and development of power grid dispatching operation control system based on transmission section control.

Object Recognition Datasets and Challenges: A Review Research and development of power grid dispatching operation control system based on transmission section control

Reference 82

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Observation 0b4578bd-7b2a-49a5-9fa6-b83e924e89aa · outbound

This paper cites The KITTI 2D Object Evaluation Benchmark.

Object Recognition Datasets and Challenges: A Review The KITTI 2D Object Evaluation Benchmark

Reference 83

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Observation 59b86be2-e745-4579-9e3e-db5f338f437c · outbound

This paper cites an unresolved cited work.

Object Recognition Datasets and Challenges: A Review Unresolved cited work

Reference 84

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Observation deadf2c6-422e-4463-bffc-9511dade2683 · outbound

This paper cites Vision meets robotics: The KITTI dataset.

Object Recognition Datasets and Challenges: A Review Vision meets robotics: The KITTI dataset

Reference 85

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Observation 2963703a-783e-4a58-abf7-cfc4d99bfda7 · outbound

This paper cites The KITTI 3D Object Evaluation Benchmark.

Object Recognition Datasets and Challenges: A Review The KITTI 3D Object Evaluation Benchmark

Reference 86

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Observation 398c6a6b-86ed-45eb-9ee1-369daf20aaca · outbound

This paper cites Fast r-cnn, in: Proceedings of the IEEE international conference on computer vision, pp.

Object Recognition Datasets and Challenges: A Review Fast r-cnn, in: Proceedings of the IEEE international conference on computer vision, pp

Reference 87

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Observation e6180fe5-79be-49c9-b2fd-a26f03506eed · outbound

This paper cites Overview of LifeCLEF Plant identification task 2019: Diving into data deficient tropical countries, in: CEUR Workshop Proceedings, pp.

Object Recognition Datasets and Challenges: A Review Overview of LifeCLEF Plant identification task 2019: Diving into data deficient tropical countries, in: CEUR Workshop Proceedings, pp

Reference 89

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Observation a2367e9e-4648-44af-92a2-f6c8fdd05be8 · outbound

This paper cites Rich feature hierarchies for accurate object detection and semantic segmentation, in: Proceedings of the IEEE conference on computer vision and pattern recognition, pp.

Object Recognition Datasets and Challenges: A Review Rich feature hierarchies for accurate object detection and semantic segmentation, in: Proceedings of the IEEE conference on computer vision and pattern recognition, pp

Reference 90

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Observation d1653b4a-3b5c-44b7-97a6-1982bb052ce7 · outbound

This paper cites STARE Database.

Object Recognition Datasets and Challenges: A Review STARE Database

Reference 92

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Observation f62108fe-ed11-4c32-9eca-4b655013d27f · outbound

This paper cites MS-Celeb-1M: A Dataset and Benchmark for Large-Scale Face Recognition.

Object Recognition Datasets and Challenges: A Review MS-Celeb-1M: A Dataset and Benchmark for Large-Scale Face Recognition

Reference 93

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Observation 880303cb-8e24-41aa-88c4-f0313a0e2ed2 · outbound

This paper cites Caltech-256 Object Category Dataset , 300.

Object Recognition Datasets and Challenges: A Review Caltech-256 Object Category Dataset , 300

Reference 94

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Observation aeb21e91-e411-446f-b36d-044df6044291 · outbound

This paper cites Semantic Contours from Inverse Detectors * - Hariharan et al.pdf.

Object Recognition Datasets and Challenges: A Review Semantic Contours from Inverse Detectors * - Hariharan et al.pdf

Reference 95

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Observation 52d94001-1c8b-4e35-b48a-4cf057e12e70 · outbound

This paper cites Lvis: A dataset for large vocabulary instance segmentation.

Object Recognition Datasets and Challenges: A Review Lvis: A dataset for large vocabulary instance segmentation

Reference 96

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Observation 58757db1-b5a4-43bf-8117-075ae43b7c39 · outbound

This paper cites Deep residual learning for image recognition, in: Proceedings of the IEEE Computer Society Conference on Computer Vision and Pattern Recognition, IEEE Computer Society.

Object Recognition Datasets and Challenges: A Review Deep residual learning for image recognition, in: Proceedings of the IEEE Computer Society Conference on Computer Vision and Pattern Recognition, IEEE Computer Society

Reference 97

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Observation d363efe5-f64a-43f7-a9e4-6e3357277f31 · outbound

This paper cites Mask r-cnn, in: Proceedings of the IEEE international conference on computer vision, pp.

Object Recognition Datasets and Challenges: A Review Mask r-cnn, in: Proceedings of the IEEE international conference on computer vision, pp

Reference 98

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Observation 0a26d955-8375-4e44-896b-1aeccb127858 · outbound

This paper cites Philip Chang, K., Munishkumaran, S., 2001.

Object Recognition Datasets and Challenges: A Review Philip Chang, K., Munishkumaran, S., 2001

Reference 99

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Observation 1a0acb35-5626-412d-bf71-365c655dc0c7 · outbound

This paper cites Philip Chang, K., Munishkumaran, S.,.

Object Recognition Datasets and Challenges: A Review Philip Chang, K., Munishkumaran, S.,

Reference 100

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Observation 707eca05-e348-4fc4-af0d-772766025230 · outbound

This paper cites The KiTS19 Challenge Data: 300 Kidney Tumor Cases with Clinical Context, CT Semantic Segmentations, and Surgical Outcomes , 1–14.

Object Recognition Datasets and Challenges: A Review The KiTS19 Challenge Data: 300 Kidney Tumor Cases with Clinical Context, CT Semantic Segmentations, and Surgical Outcomes , 1–14

Reference 101

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Observation ee5f0597-9f98-4a3f-9594-b8c98fd1d6ce · outbound

This paper cites Learning Spatial Context: Using Stuff to Find Things.

Object Recognition Datasets and Challenges: A Review Learning Spatial Context: Using Stuff to Find Things

Reference 102

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Observation 0aa378b9-fddc-4c09-995d-47082feafb5f · outbound

This paper cites Reducing the dimensionality of data with neural networks.

Object Recognition Datasets and Challenges: A Review Reducing the dimensionality of data with neural networks

Reference 103

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Observation 8e2748dc-92b1-4dc7-b4c8-079504bb4fab · outbound

This paper cites A fast learning algorithm for deep belief nets.

Object Recognition Datasets and Challenges: A Review A fast learning algorithm for deep belief nets

Reference 104

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Observation cd3ad8a5-8483-48fa-a5c9-244f3e829bbc · outbound

This paper cites The iNaturalist Species Classification and Detection Dataset, in: Proceedings of the IEEE Computer Society Conference on Computer Vision and Pattern Recognition, pp.

Object Recognition Datasets and Challenges: A Review The iNaturalist Species Classification and Detection Dataset, in: Proceedings of the IEEE Computer Society Conference on Computer Vision and Pattern Recognition, pp

Reference 105

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Pith citing papers

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