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Paper Citation Record · LEDGER

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations

As of 8 August 2026, this Paper Citation Record lists 55 of 55 outbound references and 0 inbound Pith citation observations for arXiv:2607.23835.

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

pith.paper-citation-record.v1
2607.23835 v1

Coverage vector

measured 55 of 55 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-07-30T11:00:16.249792Z

measured 55 of 55 standing notices

One-hop event checks from named stored sources.

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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

55 of 55 outbound references displayed

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Outbound references

Observation 66242aa2-9dab-4f25-bcdd-6e090d36bfbd · outbound

This paper cites Where mllms attend and what they rely on: Explaining autoregressive token generation,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Where mllms attend and what they rely on: Explaining autoregressive token generation,

Reference 1

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Observation 764eb823-7d08-4001-ba50-138e4841ce6a · outbound

This paper cites Less is More: Efficient Black-box Attribution via Minimal Interpretable Subset Selection.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Less is More: Efficient Black-box Attribution via Minimal Interpretable Subset Selection

Reference 2

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Observation f941b623-cdaa-41aa-9c9f-426562ea409c · outbound

This paper cites Axiomatic attribution for deep networks,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Axiomatic attribution for deep networks,

Reference 3

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Observation 44cee7dc-7aff-4f32-8a8d-94f236979a88 · outbound

This paper cites Ig 2: Integrated gradient on iterative gradient path for feature attribution,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Ig 2: Integrated gradient on iterative gradient path for feature attribution,

Reference 4

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Observation a09c5d05-86ca-410b-9690-239082ff84b4 · outbound

This paper cites Path choice matters for clear attributions in path methods,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Path choice matters for clear attributions in path methods,

Reference 5

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Observation a602ca7d-6d5a-434a-a839-8abaa7ff3268 · outbound

This paper cites Gradient-based visual explanation for transformer-based CLIP,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Gradient-based visual explanation for transformer-based CLIP,

Reference 6

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Observation 84647671-231f-4712-8dfa-8ae4a3d4e91d · outbound

This paper cites A unified approach to interpreting model predictions,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations A unified approach to interpreting model predictions,

Reference 7

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Observation 3e0a03bf-c0a9-4124-88d1-d2323cb24dba · outbound

This paper cites Going beyond XAI: A systematic survey for explanation-guided learning,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Going beyond XAI: A systematic survey for explanation-guided learning,

Reference 8

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Observation de8ff9a2-b48d-416c-ab34-5bea4882ff4a · outbound

This paper cites Generalized semantic contrastive learning via embedding side information for few- shot object detection,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Generalized semantic contrastive learning via embedding side information for few- shot object detection,

Reference 9

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Observation 1cd6afef-5da0-43cc-93ba-654b1e848313 · outbound

This paper cites Where Not to Learn: Prior-Aligned Training with Subset-based Attribution Constraints for Reliable Decision-Making.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Where Not to Learn: Prior-Aligned Training with Subset-based Attribution Constraints for Reliable Decision-Making

Reference 10

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Observation 6fc860be-c25e-4bcf-8931-f007fdc68744 · outbound

This paper cites Underspec- ification presents challenges for credibility in modern machine learning,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Underspec- ification presents challenges for credibility in modern machine learning,

Reference 11

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Observation 22293379-50e5-41e9-ba94-b853f0b0c24a · outbound

This paper cites Imagenet-trained cnns are biased towards texture; in- creasing shape bias improves accuracy and robustness,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Imagenet-trained cnns are biased towards texture; in- creasing shape bias improves accuracy and robustness,

Reference 12

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Observation c143e242-57d3-4216-a1b1-4d78e389c4fd · outbound

This paper cites Evaluating the robustness of inter- pretability methods through explanation invariance and equivariance,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Evaluating the robustness of inter- pretability methods through explanation invariance and equivariance,

Reference 13

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Observation cc598a7f-4520-4fe2-a5d3-eb8ba17dad29 · outbound

This paper cites Hive: Evaluating the human interpretability of visual explanations,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Hive: Evaluating the human interpretability of visual explanations,

Reference 15

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Observation 618e3f80-f389-492a-adc4-6e78d761f294 · outbound

This paper cites Making deep neural networks right for the right scientific reasons by interacting with their explanations,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Making deep neural networks right for the right scientific reasons by interacting with their explanations,

Reference 16

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Observation 191c3891-904e-43cc-9ce3-15285c0161c9 · outbound

This paper cites Right for the right rea- sons: Training differentiable models by constraining their explanations,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Right for the right rea- sons: Training differentiable models by constraining their explanations,

Reference 17

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Observation 1465c17c-0443-4de3-8300-44696e8483ac · outbound

This paper cites Taking a HINT: leveraging explanations to make vision and language models more grounded,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Taking a HINT: leveraging explanations to make vision and language models more grounded,

Reference 18

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Observation 971a3bbe-d412-42d9-a748-053b238335c7 · outbound

This paper cites Improving visual grounding by encouraging consistent gradient-based explanations,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Improving visual grounding by encouraging consistent gradient-based explanations,

Reference 19

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Observation 926e83ac-e709-4f05-a2ac-fe38907fd6b2 · outbound

This paper cites Explainable models with consistent inter- pretations,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Explainable models with consistent inter- pretations,

Reference 20

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Observation af086037-9e48-4683-bc83-8653d8a9a4b8 · outbound

This paper cites Consistent explanations by contrastive learning,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Consistent explanations by contrastive learning,

Reference 21

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Observation 62aa879c-0c3a-4c02-8d13-80bdb8e61c1a · outbound

This paper cites Are data-driven explanations robust against out-of-distribution data?.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Are data-driven explanations robust against out-of-distribution data?

Reference 22

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Observation 02a2467c-79b8-487e-9b92-24355f9b7fc4 · outbound

This paper cites ICEL: learning with inconsistent expla- nations,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations ICEL: learning with inconsistent expla- nations,

Reference 23

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Observation eb0a8e36-9af5-46e3-841b-0b1bb0279dcb · outbound

This paper cites Grad-cam: Visual explanations from deep networks via gradient-based localization,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Grad-cam: Visual explanations from deep networks via gradient-based localization,

Reference 24

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Observation f06a3cf1-bdf6-4774-b621-0016c438e8af · outbound

This paper cites Sanity checks for saliency maps,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Sanity checks for saliency maps,

Reference 25

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Observation ee42f2a0-f08b-42a9-91ea-d3ca37886bea · outbound

This paper cites On the relationship between explanation and prediction: A causal view,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations On the relationship between explanation and prediction: A causal view,

Reference 26

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Observation 5a7081f7-71cb-4644-9ef2-2311d9c9e1a7 · outbound

This paper cites Less is more: Fewer interpretable region via submodular subset selection,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Less is more: Fewer interpretable region via submodular subset selection,

Reference 27

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Observation f668ef24-6f20-4058-aec4-247362474570 · outbound

This paper cites One explanation is not enough: structured attention graphs for image classification,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations One explanation is not enough: structured attention graphs for image classification,

Reference 28

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Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Identifying important group of pixels using interactions,

Reference 29

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Observation d6705c0d-77cf-4dde-95d1-e548ebaed401 · outbound

This paper cites Interpreting object-level foundation models via visual precision search,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Interpreting object-level foundation models via visual precision search,

Reference 30

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Observation a179055b-59e7-41c1-85c9-acafe09f13fe · outbound

This paper cites Grounding DINO: marrying DINO with grounded pre-training for open-set object detection,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Grounding DINO: marrying DINO with grounded pre-training for open-set object detection,

Reference 31

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Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Florence-2: Advancing a unified representation for a variety of vision tasks,

Reference 32

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Observation 1fad4a30-d5d4-467a-b537-9873f52c0f51 · outbound

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Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations On the Robustness of Interpretability Methods

Reference 33

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This paper cites Interpretation of neural networks is fragile,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Interpretation of neural networks is fragile,

Reference 34

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Observation 171c5263-19cc-4952-9283-18fff446bead · outbound

This paper cites Evaluating the robustness of inter- pretability methods through explanation invariance and equivariance,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Evaluating the robustness of inter- pretability methods through explanation invariance and equivariance,

Reference 35

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Observation 322be3b0-438e-40d2-91c0-05bc26e6c48c · outbound

This paper cites An analysis of approximations for maximizing submodular set functions - I,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations An analysis of approximations for maximizing submodular set functions - I,

Reference 36

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Observation 1b5f7823-9540-4935-9092-62ec25610ce0 · outbound

This paper cites Boosting the visual interpretability of CLIP via adversarial fine-tuning,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Boosting the visual interpretability of CLIP via adversarial fine-tuning,

Reference 37

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Observation 0bce00c9-1a66-40df-8302-adfcc0169b1c · outbound

This paper cites Imagenet: A large-scale hierarchical image database,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Imagenet: A large-scale hierarchical image database,

Reference 38

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This paper cites Are we done with ImageNet?.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Are we done with ImageNet?

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This paper cites Do imagenet classifiers generalize to imagenet?.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Do imagenet classifiers generalize to imagenet?

Reference 40

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This paper cites Benchmarking neural network robustness to common corrup- tions and perturbations,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Benchmarking neural network robustness to common corrup- tions and perturbations,

Reference 41

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

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Objectnet: A large-scale bias-controlled dataset for pushing the limits of object recognition models,

Reference 42

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This paper cites Learning robust global representations by penalizing local predictive power,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Learning robust global representations by penalizing local predictive power,

Reference 43

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This paper cites The many faces of robustness: A critical analysis of out-of-distribution generalization,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations The many faces of robustness: A critical analysis of out-of-distribution generalization,

Reference 44

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Observation fbdf54c0-e51c-4a80-97a3-7ebc07eba202 · outbound

This paper cites Imagenet-trained cnns are biased towards texture; increasing shape bias improves accuracy and robustness,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Imagenet-trained cnns are biased towards texture; increasing shape bias improves accuracy and robustness,

Reference 45

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Observation c2af901c-54b9-4ed8-8f27-6d03d30d77c6 · outbound

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Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Natural adversarial examples,

Reference 46

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Observation b23a7995-2ff7-4496-856f-0ca208f4568e · outbound

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Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Leaving reality to imagination: Robust classification via generated datasets,

Reference 47

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Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Are data-driven explanations robust against out-of-distribution data?

Reference 48

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Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Training for stable explanation for free,

Reference 49

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Observation 1c381a15-87de-4c65-8973-1c7449c0b893 · outbound

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Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Explanation-guided adversarial training for robust and interpretable models,

Reference 50

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Observation 6366721f-b22b-4b41-98f7-99c71beca20e · outbound

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Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Rise: Randomized input sampling for explanation of black-box models,

Reference 51

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Observation 2b064219-a334-43d3-93dc-0ca4861f7ef0 · outbound

This paper cites Benchmarking deletion metrics with the principled explanations,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Benchmarking deletion metrics with the principled explanations,

Reference 52

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Observation 6f2ac21d-77d0-46c8-9eaa-dc1349471228 · outbound

This paper cites G-CAME: Gaussian-Class Activation Mapping Explainer for Object Detectors.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations G-CAME: Gaussian-Class Activation Mapping Explainer for Object Detectors

Reference 53

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Observation 6a1e82b3-7582-47ff-8160-b0c8fa1c48f1 · outbound

This paper cites How to probe: Simple yet effective techniques for improving post-hoc explanations,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations How to probe: Simple yet effective techniques for improving post-hoc explanations,

Reference 54

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Observation aaec3e5d-e262-4bf8-8991-fb73ae216a23 · outbound

This paper cites Deep residual learning for image recognition,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations Deep residual learning for image recognition,

Reference 55

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Observation 23a6002d-aa33-4182-b31e-b03bfb5cba29 · outbound

This paper cites A convnet for the 2020s,.

Consistent Evidence, Robust Recognition: Faithful Attribution Regularization under Geometric Transformations A convnet for the 2020s,

Reference 56

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