Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-14T14:44:50.161834Z
Paper Citation Record · LEDGER
As of 17 August 2026, this Paper Citation Record lists 54 of 54 outbound references and 0 inbound Pith citation observations for arXiv:1908.02686.
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 2026-08-14T14:44:50.161834Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-16T06:30:59.297886+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
54 of 54 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation b6bf071c-5f84-46d2-ba6b-61ea7d6eea80 · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Local explanation methods for deep neural networks lack sensitivity to parameter values
Reference 1
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Observation 8cacfd36-1fd9-4f4f-8eb4-19085898f87b · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks A survey on automated microaneurysm detection in dia- betic retinopathy retinal images
Reference 2
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Observation 3d86d572-aed9-48ab-a383-079a8ca7d5a0 · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Arunkumar and P
Reference 3
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks On pixel-wise explanations for non-linear classi- fier decisions by layer-wise relevance propagation.PloS one, 10(7):e0130140, 2015
Reference 4
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks How to explain individual classification decisions
Reference 5
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Explaining Image Classifiers by Counterfactual Generation
Reference 6
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Balasubramanian
Reference 7
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Colas, A
Reference 8
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks The cityscapes dataset for semantic urban scene understanding
Reference 9
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Observation a0a6acc6-c88a-48dc-ae9c-6a5143087704 · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks EyePACS: an adapt- able telemedicine system for diabetic retinopathy screening
Reference 10
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Real time image saliency for black box classifiers
Reference 11
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Doll ´ar, C
Reference 12
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Techniques for Interpretable Machine Learning
Reference 13
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Observation 550d0d60-bb08-4bee-8767-d5ef6e3c1f32 · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks To- wards explanation of dnn-based prediction with guided fea- ture inversion
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Observation f3bdc381-40fb-4cbe-9f9c-ae7af21d401e · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks https://www.kaggle.com/c/diabetic-retinopathy- detection
Reference 15
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks https://www.kaggle.com/c/diabetic-retinopathy- detection/discussion/15617
Reference 16
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Observation a77597cf-f817-4866-a047-77156407c1c8 · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Fong and Andrea Vedaldi
Reference 17
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Observation 18e853d2-fbd5-43fe-acd8-f9052fa0efd9 · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Gondal, Jan M
Reference 18
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Explaining and harnessing adversarial examples
Reference 19
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Development and validation of a deep learning algo- rithm for detection of diabetic retinopathy in retinal fundus photographs
Reference 20
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks A Gaussian Scale Space Approach For Exudates Detection, Classification And Severity Prediction
Reference 21
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Observation 390c5dd0-6adf-44b5-8295-e5722eaedab8 · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Learning both weights and connections for efficient neural network
Reference 22
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Deep residual learning for image recognition
Reference 23
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Observation 1c730fd2-cf0f-4c60-bf1a-a59f5b761ce8 · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Distilling the Knowledge in a Neural Network
Reference 24
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Observation 36152dd5-f876-49d9-aeb4-d3b80767f2b7 · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks The DIARETDB1 diabetic retinopathy database and evaluation protocol
Reference 25
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks ImageNet classification with deep convolutional neural net- works
Reference 26
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Observation defc7247-2e0c-4c8a-a66d-e4ea59fc3fa9 · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Adversarial examples in the physical world
Reference 27
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Observation e91243c9-cb56-48aa-a7b2-db28a56ba35b · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks A location-to-segmentation strategy for automatic exudate segmentation in colour retinal fundus images
Reference 28
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Observation ae895a81-771c-4faf-8741-a3486e18d98d · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks De- tection of red lesions in diabetic retinopathy affected fundus images
Reference 29
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Observation ec3aeb0d-188c-46cb-8e36-a909f7777c6a · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Concrete problems for autonomous vehicle safety: Advantages of Bayesian deep learning
Reference 30
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Observation 85cb1dc7-73ca-41bf-b422-7e30a5aa2049 · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks A Theoretical Explanation for Perplexing Behaviors of Backpropagation-based Visualizations
Reference 31
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Observation e1ee5708-803f-431d-8648-f0d5f2ff21ba · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Rise: Random- ized input sampling for explanation of black-box models
Reference 32
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Why should I trust you?: Explaining the predictions of any classifier
Reference 33
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Observation 8292487c-2f06-4b31-a58a-e51f6a722d4a · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Berg, and Li Fei-Fei
Reference 34
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Selvaraju, Michael Cogswell, Abhishek Das, Ramakrishna Vedantam, Devi Parikh, and Dhruv Ba- tra
Reference 35
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Observation 2953658c-ef20-4c50-9a78-d2317998710f · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Regional Multi-scale Approach for Visually Pleasing Explanations of Deep Neural Networks
Reference 36
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Observation 7207bc28-7ea5-4413-ab0c-0d7947a93674 · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Learning important features through propagating activation differences
Reference 37
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Deep inside convolutional networks: Visualising image clas- sification models and saliency maps
Reference 38
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Observation dde99103-8d64-445c-83e0-e514348b237a · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Very Deep Convolutional Networks for Large-Scale Image Recognition
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks SmoothGrad: removing noise by adding noise
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Solomon, Emily Chew, Elia J
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Striving for simplicity: The all convolutional net
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Observation eedf79ac-7086-4f09-8c36-2ebd62c0304a · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Going deeper with convolutions
Reference 44
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Reference 45
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Development and validation of a deep learn- ing system for diabetic retinopathy and related eye diseases using retinal images from multiethnic populations with dia- betes
Reference 46
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Rogers, Ryo Kawasaki, Ecosse L
Reference 47
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Reference 48
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Top-down neural attention by excitation backprop
Reference 49
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Observation e2bc5f23-0152-4b76-8ac7-6994c43d3aeb · outbound
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Reference 50
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Uniqueness-driven saliency analysis for automated lesion detection with applications to retinal diseases
Reference 51
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Object Detectors Emerge in Deep Scene CNNs
Reference 52
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Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Learning deep features for discrimi- native localization
Reference 53
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Observation ef7c5f0e-2e2d-4824-b674-b08f82856898 · outbound
Interpretable and Fine-Grained Visual Explanations for Convolutional Neural Networks Au- tomatic hemorrhage detection in color fundus images based on gradual removal of vascular branches
Reference 54
Source-reported events for the cited work
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No inbound Pith citation observations are available.