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Paper Citation Record · LEDGER

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist

As of 17 August 2026, this Paper Citation Record lists 100 of 105 outbound references and 0 inbound Pith citation observations for arXiv:2607.14271.

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

pith.paper-citation-record.v1
2607.14271 v1

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measured 100 of 105 reference resolution

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Pith citing papers itemized under the disclosed page cap.

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Reference resolution

100 of 105 outbound references displayed

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Outbound references

Observation ba67cd94-72d0-431f-8b35-94d2b864b834 · outbound

This paper cites Axiomatic attribution for deep networks,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Axiomatic attribution for deep networks,

Reference 1

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Observation 10bed0b8-9e7e-4f8e-90d9-3eb1ebd633ed · outbound

This paper cites A unified approach to interpret- ing model predictions,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist A unified approach to interpret- ing model predictions,

Reference 2

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Observation 8f8ffce6-37a2-48cf-ac78-a7fe50b8246f · outbound

This paper cites “Why should I trust you?.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist “Why should I trust you?

Reference 3

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Observation eeb38e52-1704-46eb-930b-214485a36922 · outbound

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

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Grad-CAM: Visual explanations from deep networks via gradient-based localization,

Reference 4

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Observation 83099474-934c-4c2d-a566-6d333b2ba35c · outbound

This paper cites On pixel-wise explanations for non-linear classifier decisions by layer-wise relevance propagation,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist On pixel-wise explanations for non-linear classifier decisions by layer-wise relevance propagation,

Reference 5

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Observation 25283c30-38c9-42a6-843a-674a76482112 · outbound

This paper cites Learning impor- tant features through propagating activation differences,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Learning impor- tant features through propagating activation differences,

Reference 6

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This paper cites The disagreement problem in explainable machine learning: A practitioner’s perspective,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist The disagreement problem in explainable machine learning: A practitioner’s perspective,

Reference 7

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Observation 2c03e2cd-763c-4f37-b823-fc7d27b394ba · outbound

This paper cites Impossibility theorems for feature attribution,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Impossibility theorems for feature attribution,

Reference 8

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Observation 075ad6e7-b78d-4308-b661-5a42f63c22f1 · outbound

This paper cites Sanity checks for saliency maps,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Sanity checks for saliency maps,

Reference 9

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Observation 970e21f6-77ae-475d-afe3-d203394756f2 · outbound

This paper cites The (un)reliability of saliency methods,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist The (un)reliability of saliency methods,

Reference 10

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Observation cd1a4eb3-2fe0-46b9-a33a-111d3c7fca0c · outbound

This paper cites Sanity checks for saliency metrics,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Sanity checks for saliency metrics,

Reference 11

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Observation 8173e5d3-7b31-45d8-b063-73b4bafae9e0 · outbound

This paper cites A bench- mark for interpretability methods in deep neural networks,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist A bench- mark for interpretability methods in deep neural networks,

Reference 12

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Observation b15d8a1c-1188-495f-a937-c186549dcf2c · outbound

This paper cites Explanations can be manipulated and geometry is to blame,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Explanations can be manipulated and geometry is to blame,

Reference 13

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Observation 6bcf1191-5e26-4312-8cd1-08d62277e2bf · outbound

This paper cites Interpretation of neural networks is fragile,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Interpretation of neural networks is fragile,

Reference 14

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This paper cites Fooling LIME and SHAP: Adversarial attacks on post-hoc explanation methods,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Fooling LIME and SHAP: Adversarial attacks on post-hoc explanation methods,

Reference 15

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Observation 848b4363-8cba-4a62-84bb-43eb544afe2c · outbound

This paper cites Four axiomatic characteri- zations of the integrated gradients attribution method,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Four axiomatic characteri- zations of the integrated gradients attribution method,

Reference 16

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Observation e1e6f75c-5b8c-4799-af92-4a75eac2a9dd · outbound

This paper cites The many Shapley values for model explanation,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist The many Shapley values for model explanation,

Reference 17

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Observation 964e7b0f-efda-48ed-97f6-cebbc3545bfe · outbound

This paper cites Problems with Shapley-value-based explanations as feature importance measures,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Problems with Shapley-value-based explanations as feature importance measures,

Reference 18

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Observation 00ee7c97-304a-424d-a595-57231be3a8d9 · outbound

This paper cites Which explanation should i choose? A function approximation perspective to characterizing post hoc explanations,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Which explanation should i choose? A function approximation perspective to characterizing post hoc explanations,

Reference 19

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Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Improving KernelSHAP: Practical Shapley value estimation using linear regression,

Reference 20

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This paper cites Towards better understanding of gradient-based attribution methods for deep neural networks,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Towards better understanding of gradient-based attribution methods for deep neural networks,

Reference 21

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Observation 84601c2c-7322-4d24-902f-0ac55a8a46a9 · outbound

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Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist The mythos of model interpretability,

Reference 22

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This paper cites Towards A Rigorous Science of Interpretable Machine Learning.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Towards A Rigorous Science of Interpretable Machine Learning

Reference 23

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This paper cites Feature relevance quantification in explainable AI: A causal problem,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Feature relevance quantification in explainable AI: A causal problem,

Reference 24

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Observation a5152c53-4ff2-4cb5-a926-1bf7d6290b94 · outbound

This paper cites Shapley explainability on the data manifold,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Shapley explainability on the data manifold,

Reference 25

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Observation c84a9903-9a73-4224-97ba-1c3dbe682685 · outbound

This paper cites Interpretability beyond feature attribution: Quantitative testing with concept activation vectors (TCAV),.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Interpretability beyond feature attribution: Quantitative testing with concept activation vectors (TCAV),

Reference 26

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Observation 1dea0125-21fd-40e8-9a83-e875ada7e69e · outbound

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Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Network dissection: Quantifying interpretability of deep visual representations,

Reference 27

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This paper cites A survey of methods for explaining black box models,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist A survey of methods for explaining black box models,

Reference 28

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This paper cites Peeking inside the black-box: A surveyonexplainableartificialintelligence,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Peeking inside the black-box: A surveyonexplainableartificialintelligence,

Reference 29

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Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Explaining explanations: An overview of inter- pretability of machine learning,

Reference 30

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This paper cites Molnar,Interpretable Machine Learning, 2nd ed.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Molnar,Interpretable Machine Learning, 2nd ed

Reference 31

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Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Explaining deep neural networks: A survey on the global interpretation methods,

Reference 32

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This paper cites Gradient based Feature Attribution in Explainable AI: A Technical Review.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Gradient based Feature Attribution in Explainable AI: A Technical Review

Reference 33

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This paper cites Additive-feature-attribution methods: a review on explainable artificial intelligence for fluid dynamics and heat transfer.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Additive-feature-attribution methods: a review on explainable artificial intelligence for fluid dynamics and heat transfer

Reference 34

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Observation c8adf701-f82f-4cba-a904-6ffa486053df · outbound

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Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Shapley value: From cooperative game to explainable artificial intelligence,

Reference 35

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Observation 75b59146-b719-470f-99f2-5430a25ac4a1 · outbound

This paper cites From anecdotal evidence to quantitative evaluation methods: A systematic review on evaluating explainable AI,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist From anecdotal evidence to quantitative evaluation methods: A systematic review on evaluating explainable AI,

Reference 36

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Observation 26aaef64-0f8a-443d-a5d2-777ad8fa10a7 · outbound

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Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Ex- plainable AI: A review of machine learning interpretability methods,

Reference 37

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Observation 9c1b0261-e59b-4de3-a91b-248d6c3c3490 · outbound

This paper cites Improving performance of deep learning models with axiomatic attribution priors and expected gradients,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Improving performance of deep learning models with axiomatic attribution priors and expected gradients,

Reference 38

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This paper cites Explaining individual predictions when features are dependent: More accurate ap- proximations to Shapley values,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Explaining individual predictions when features are dependent: More accurate ap- proximations to Shapley values,

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Observation e1c3a03a-1521-4193-8e9b-03221d35f71d · outbound

This paper cites The explanation game: Explaining machine learning models using Shapley values,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist The explanation game: Explaining machine learning models using Shapley values,

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Observation 52714fa3-d443-4a5b-a5b4-f82ec9440499 · outbound

This paper cites Guided integrated gradients: An adaptive path method for removing noise,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Guided integrated gradients: An adaptive path method for removing noise,

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This paper cites Attribution in scale and space,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Attribution in scale and space,

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This paper cites Explaining image classifiers by counterfactual generation,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Explaining image classifiers by counterfactual generation,

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This paper cites A value for n-person games,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist A value for n-person games,

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This paper cites From local explanations to global understanding with explainable AI for trees,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist From local explanations to global understanding with explainable AI for trees,

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Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Weighted voting doesn’t work: A mathematical analysis,

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This paper cites Multilinear extensions of games,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Multilinear extensions of games,

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Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Unresolved cited work

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Observation 06e44182-148e-4878-b9b7-78761a256522 · outbound

This paper cites On the robustness of interpretability methods,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist On the robustness of interpretability methods,

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Observation 81046067-9ad0-4872-8109-b213ddd3a9c7 · outbound

This paper cites An efficient explanation of individual classifications using game theory,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist An efficient explanation of individual classifications using game theory,

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This paper cites Algorithmic transparency via quantitative input influence: Theory and experiments with learning systems,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Algorithmic transparency via quantitative input influence: Theory and experiments with learning systems,

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Observation 8cb2b836-9c4c-4a4e-9752-ffb44a916263 · outbound

This paper cites Algo- rithms to estimate Shapley value feature attributions,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Algo- rithms to estimate Shapley value feature attributions,

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This paper cites Understanding global feature contributions with additive importance measures,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Understanding global feature contributions with additive importance measures,

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Observation 603f71c7-f632-40db-ad4d-bf4496cf0b21 · outbound

This paper cites Shapley values for feature selection: The good, the bad, and the axioms.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Shapley values for feature selection: The good, the bad, and the axioms

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Observation 631263a3-837f-4b15-b005-37c61f7c85b3 · outbound

This paper cites The Shapley-Taylor interaction index,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist The Shapley-Taylor interaction index,

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Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Explaining ex- planations: Axiomatic feature interactions for deep networks,

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Observation d6335e04-d5c3-43c2-89ff-5d7b339aa159 · outbound

This paper cites Detecting statistical interac- tions from neural network weights,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Detecting statistical interac- tions from neural network weights,

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Observation af2d1222-87e0-4434-9faa-1804a758efe3 · outbound

This paper cites Neuron Shapley: Discovering the responsible neurons,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Neuron Shapley: Discovering the responsible neurons,

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This paper cites Visualizingtheimpact of feature attribution baselines,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Visualizingtheimpact of feature attribution baselines,

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Observation 43ac0ae6-e6f6-48ae-a91a-2b3034241094 · outbound

This paper cites XRAI: Better attributions through regions,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist XRAI: Better attributions through regions,

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This paper cites How important is a neuron?.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist How important is a neuron?

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This paper cites Deep Inside Convolutional Networks: Visualising Image Classification Models and Saliency Maps.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Deep Inside Convolutional Networks: Visualising Image Classification Models and Saliency Maps

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This paper cites How to explain individual classification decisions,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist How to explain individual classification decisions,

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Observation a914882c-819f-4edc-af1f-ff71b80087e3 · outbound

This paper cites SmoothGrad: removing noise by adding noise.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist SmoothGrad: removing noise by adding noise

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This paper cites Striving for simplicity: The all convolutional net,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Striving for simplicity: The all convolutional net,

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This paper cites Visualizing and understanding convolutional networks,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Visualizing and understanding convolutional networks,

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Observation 6fce9436-ab4d-4b80-a107-09b70e8ec814 · outbound

This paper cites Explaining nonlinear classification decisions with deep Taylor decomposition,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Explaining nonlinear classification decisions with deep Taylor decomposition,

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Observation ed4a5c8c-bffb-4e2b-8796-1d299ccf11de · outbound

This paper cites Full-gradient representation for neural network visualization,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Full-gradient representation for neural network visualization,

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Observation 74cdfcd2-47f8-4757-ae46-24d9bdd8e73c · outbound

This paper cites Learning deep features for discriminative localization,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Learning deep features for discriminative localization,

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Observation 1a90dec5-e48e-4173-a6a3-6d6adfa83e50 · outbound

This paper cites Grad-CAM++: Improved visual explanations for deep convolutional networks,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Grad-CAM++: Improved visual explanations for deep convolutional networks,

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Observation e2898f88-90dd-43ae-a453-d40d445d7be9 · outbound

This paper cites Score-CAM: Score-weighted visual explanations for convolutional neural networks,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Score-CAM: Score-weighted visual explanations for convolutional neural networks,

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Observation 88b1c07d-e460-40d3-a704-f47799bcaeab · outbound

This paper cites Ablation-CAM: Visual explanations for deep convolutional network via gradient-free localization,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Ablation-CAM: Visual explanations for deep convolutional network via gradient-free localization,

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Observation 6e45e81d-98d4-4a09-8dc7-bf39344dfb18 · outbound

This paper cites LayerCAM: Exploring hierarchical class activation maps for localization,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist LayerCAM: Exploring hierarchical class activation maps for localization,

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Observation b7422442-308d-42f2-bbe8-da38f62177e8 · outbound

This paper cites Eigen-CAM: Class Activation Map using Principal Components.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Eigen-CAM: Class Activation Map using Principal Components

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Observation 9b3c295d-148d-483c-b21a-f5f0f0e78572 · outbound

This paper cites Use HiResCAM instead of Grad-CAM for faithful explanations of convolutional neural networks.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Use HiResCAM instead of Grad-CAM for faithful explanations of convolutional neural networks

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Observation 7d0ef711-8c03-442d-b181-6574941d3e7f · outbound

This paper cites Shap-CAM: Visual explanationsforconvolutionalneuralnetworksbasedonShapley value,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Shap-CAM: Visual explanationsforconvolutionalneuralnetworksbasedonShapley value,

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Observation 6f80524e-c81a-417a-9a91-1fe9ee61e490 · outbound

This paper cites Attention is not explanation,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Attention is not explanation,

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This paper cites Is attention interpretable?.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Is attention interpretable?

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This paper cites Attention is not not explanation,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Attention is not not explanation,

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Observation 2db69e05-46fe-485a-83bb-1e4ac00d0d80 · outbound

This paper cites Quantifying attention flow in transformers,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Quantifying attention flow in transformers,

Reference 80

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This paper cites Transformer interpretability beyond attention visualization,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Transformer interpretability beyond attention visualization,

Reference 81

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This paper cites Vi- sualizing deep neural network decisions: Prediction difference analysis,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Vi- sualizing deep neural network decisions: Prediction difference analysis,

Reference 82

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This paper cites Model agnostic supervised local explanations,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Model agnostic supervised local explanations,

Reference 83

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This paper cites Random forests,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Random forests,

Reference 84

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This paper cites Greedy function approximation: A gradient boosting machine,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Greedy function approximation: A gradient boosting machine,

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This paper cites Anchors: High- precision model-agnostic explanations,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Anchors: High- precision model-agnostic explanations,

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Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Interpretable explanations of black boxes by meaningful perturbation,

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This paper cites Understanding deep networks via extremal perturbations and smooth masks,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Understanding deep networks via extremal perturbations and smooth masks,

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Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist RISE: Randomized input sampling for explanation of black-box models,

Reference 89

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Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Real time image saliency for black box classifiers,

Reference 90

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Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Restricting the flow: Information bottlenecks for attribution,

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This paper cites Evaluating the visualization of what a deep neural network has learned,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Evaluating the visualization of what a deep neural network has learned,

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This paper cites ERASER: A benchmark to evaluate rationalized NLP models,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist ERASER: A benchmark to evaluate rationalized NLP models,

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This paper cites Towards faithfully interpretable NLP systems: How should we define and evaluate faithfulness?.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Towards faithfully interpretable NLP systems: How should we define and evaluate faithfulness?

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This paper cites On the (in)fidelity and sensitivity of explanations,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist On the (in)fidelity and sensitivity of explanations,

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

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Right for the right reasons: Training differentiable models by constraining their explanations,

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This paper cites Interpretations are useful: Penalizing explanations to align neural networks with prior knowledge,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Interpretations are useful: Penalizing explanations to align neural networks with prior knowledge,

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Observation a2a7f44a-0106-4bc7-9c0b-c3b0fe02ba9b · outbound

This paper cites "Will You Find These Shortcuts?" A Protocol for Evaluating the Faithfulness of Input Salience Methods for Text Classification.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist "Will You Find These Shortcuts?" A Protocol for Evaluating the Faithfulness of Input Salience Methods for Text Classification

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Observation 17b9e7c4-5b94-4d02-a8e2-d9affc2d3832 · outbound

This paper cites The shattered gradients problem: If resnets are the answer, then what is the question?.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist The shattered gradients problem: If resnets are the answer, then what is the question?

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Observation 821c55cd-4da1-4e35-9814-f19b021abd4b · outbound

This paper cites Explain- ing recurrent neural network predictions in sentiment analysis,.

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist Explain- ing recurrent neural network predictions in sentiment analysis,

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