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Paper Citation Record · LEDGER

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls

As of 12 August 2026, this Paper Citation Record lists 59 of 59 outbound references and 0 inbound Pith citation observations for arXiv:2607.21381.

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

pith.paper-citation-record.v1
2607.21381 v1

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measured 59 of 59 reference resolution

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measured 59 of 59 standing notices

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measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

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Reference resolution

59 of 59 outbound references displayed

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Outbound references

Observation 3b66b22d-aeef-4406-a146-bc6d31755e69 · outbound

This paper cites Active and semi-supervised graph neural networks for graph classification,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Active and semi-supervised graph neural networks for graph classification,

Reference 1

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Observation 56e96cc4-630b-4bd0-99b9-8030956e5e02 · outbound

This paper cites Semisuper- vised graph neural networks for graph classification,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Semisuper- vised graph neural networks for graph classification,

Reference 2

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Observation b33caafe-956b-438e-9332-0478d80ea08f · outbound

This paper cites Edge classification on graphs: New directions in topological imbalance,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Edge classification on graphs: New directions in topological imbalance,

Reference 3

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Observation 0a8e2d80-9a2e-48ed-9e68-4b832126ebfe · outbound

This paper cites A simple yet effective baseline for non-attributed graph classification.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls A simple yet effective baseline for non-attributed graph classification

Reference 4

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Observation 78e7d84a-233e-4bb4-8489-819c0f50c7fe · outbound

This paper cites TUDataset: A collection of benchmark datasets for learning with graphs.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls TUDataset: A collection of benchmark datasets for learning with graphs

Reference 5

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Observation 5ce0e358-ff14-4256-9e5d-32e927ad0dd9 · outbound

This paper cites Protein function prediction via graph kernels,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Protein function prediction via graph kernels,

Reference 6

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Observation 3066455d-f7f3-46a0-bca4-ae153810dfe4 · outbound

This paper cites Spline-fitting with a genetic algorithm: A method for developing classification structure activity relationships,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Spline-fitting with a genetic algorithm: A method for developing classification structure activity relationships,

Reference 7

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Observation e8a596fa-81fe-4d68-b4a2-5d4c936f2bd6 · outbound

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

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Towards A Rigorous Science of Interpretable Machine Learning

Reference 8

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Observation 064987d8-4eff-4055-915a-4733a6ffe883 · outbound

This paper cites Explainability in graph neural networks: A taxonomic survey,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Explainability in graph neural networks: A taxonomic survey,

Reference 9

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Observation a4cd5cfe-2c16-4bd3-a63c-9e657fc4bd1b · outbound

This paper cites Gnnex- plainer: Generating explanations for graph neural networks,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Gnnex- plainer: Generating explanations for graph neural networks,

Reference 10

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Observation 54c41894-d675-49e0-a0dc-f772523c93b0 · outbound

This paper cites Xgnn: Towards model-level explanations of graph neural networks,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Xgnn: Towards model-level explanations of graph neural networks,

Reference 11

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Observation 56d3e7e9-a688-439a-99c8-3b1f85e66127 · outbound

This paper cites GNNInterpreter: A Probabilistic Generative Model-Level Explanation for Graph Neural Networks.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls GNNInterpreter: A Probabilistic Generative Model-Level Explanation for Graph Neural Networks

Reference 12

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Observation 321b7578-6679-45eb-b6e5-e750c05ece0b · outbound

This paper cites D4explainer: In-distribution explanations of graph neural network via discrete denoising diffusion,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls D4explainer: In-distribution explanations of graph neural network via discrete denoising diffusion,

Reference 13

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Observation a6541a70-540f-4cf4-a621-33e07e783245 · outbound

This paper cites Gnnboundary: Towards explaining graph neural networks through the lens of decision boundaries,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Gnnboundary: Towards explaining graph neural networks through the lens of decision boundaries,

Reference 14

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This paper cites Graphon-explainer: Generating model- level explanations for graph neural networks using graphons,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Graphon-explainer: Generating model- level explanations for graph neural networks using graphons,

Reference 15

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Observation 76663b6e-3441-49dd-8923-48d71fb772e0 · outbound

This paper cites Graphlime: Local interpretable model explanations for graph neural networks,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Graphlime: Local interpretable model explanations for graph neural networks,

Reference 16

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Observation b9f15b8e-d13d-42cd-a62c-f7713c6d3174 · outbound

This paper cites Eig-search: Generating edge-induced subgraphs for gnn explanation in linear time,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Eig-search: Generating edge-induced subgraphs for gnn explanation in linear time,

Reference 17

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Observation afb5b027-1334-4874-ab65-6e0543948edf · outbound

This paper cites Interpreting Graph Neural Networks for NLP With Differentiable Edge Masking.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Interpreting Graph Neural Networks for NLP With Differentiable Edge Masking

Reference 18

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Observation b280d936-f48f-4c5b-8e32-18fa546b6853 · outbound

This paper cites On explainability of graph neural networks via subgraph explorations,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls On explainability of graph neural networks via subgraph explorations,

Reference 19

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Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Parameterized explainer for graph neural network,

Reference 20

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Observation e6768652-8311-469b-95bf-4505bfa5394d · outbound

This paper cites Zhang and G.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Zhang and G

Reference 21

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This paper cites Network flows: Theory, algorithms, and applications,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Network flows: Theory, algorithms, and applications,

Reference 22

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Observation 4989b21f-be6d-4a4a-b181-dc0f4857104b · outbound

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Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls A fast adaptive k-means with no bounds,

Reference 23

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This paper cites An efficient and adaptive granular-ball generation method in classification problem,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls An efficient and adaptive granular-ball generation method in classification problem,

Reference 24

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Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Online graph dictionary learning

Reference 25

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Observation d28d325f-2326-4a26-bd93-cc905e88d2bc · outbound

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Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Semi-Supervised Classification with Graph Convolutional Networks

Reference 26

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Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls How Powerful are Graph Neural Networks?

Reference 27

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This paper cites Explainability methods for graph convolutional neural networks,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Explainability methods for graph convolutional neural networks,

Reference 28

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Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Explainability Techniques for Graph Convolutional Networks

Reference 29

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Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls DEGREE: Decomposition Based Explanation For Graph Neural Networks

Reference 30

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This paper cites Graphsvx: Shapley value explanations for graph neural networks,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Graphsvx: Shapley value explanations for graph neural networks,

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This paper cites Dis- till n’explain: explaining graph neural networks using simple surrogates,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Dis- till n’explain: explaining graph neural networks using simple surrogates,

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This paper cites Relex: A model-agnostic relational model explainer,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Relex: A model-agnostic relational model explainer,

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This paper cites Towards multi- grained explainability for graph neural networks,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Towards multi- grained explainability for graph neural networks,

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This paper cites Zorro: Valid, sparse, and stable explanations in graph neural networks,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Zorro: Valid, sparse, and stable explanations in graph neural networks,

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This paper cites Gstarx: Explaining graph neural networks with structure-aware cooperative games,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Gstarx: Explaining graph neural networks with structure-aware cooperative games,

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This paper cites Topological structure in visual perception,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Topological structure in visual perception,

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Observation 8448b712-2d86-4361-bf7e-d9805d89b234 · outbound

This paper cites Dgcc: data-driven granular cognitive computing,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Dgcc: data-driven granular cognitive computing,

Reference 38

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Observation 9d45365e-6bda-4217-8225-444184b2a9da · outbound

This paper cites Gb-rvfl: Fusion of randomized neural network and granular ball computing,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Gb-rvfl: Fusion of randomized neural network and granular ball computing,

Reference 39

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Observation 18166c4e-3a7a-4d0c-ad10-4ac1011eb2d5 · outbound

This paper cites Ball kk-means: Fast adaptive clustering with no bounds,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Ball kk-means: Fast adaptive clustering with no bounds,

Reference 40

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Observation 5bbdca11-887a-4625-be28-fd819413f7ed · outbound

This paper cites Gbct: efficient and adaptive clustering via granular-ball computing for complex data,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Gbct: efficient and adaptive clustering via granular-ball computing for complex data,

Reference 41

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Observation 39a457ad-4e8f-48e5-a515-3bd0be242ef0 · outbound

This paper cites Generation of granular-balls for clus- tering based on the principle of justifiable granularity,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Generation of granular-balls for clus- tering based on the principle of justifiable granularity,

Reference 42

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Observation 7c65f303-d3d9-4e8d-a7fb-91422999c245 · outbound

This paper cites Granular-ball regeneration clustering with principle of justifiable gran- ularity,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Granular-ball regeneration clustering with principle of justifiable gran- ularity,

Reference 43

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Observation 85c37048-63ae-4b51-8cb2-b434f693768b · outbound

This paper cites Aw-gbgae: an adaptive weighted graph autoencoder based on granular-balls for general data clustering,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Aw-gbgae: an adaptive weighted graph autoencoder based on granular-balls for general data clustering,

Reference 44

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Observation 550dfc5e-87a3-49ef-8218-5c985d862826 · outbound

This paper cites Gbrs: A unified granular-ball learning model of pawlak rough set and neighborhood rough set,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Gbrs: A unified granular-ball learning model of pawlak rough set and neighborhood rough set,

Reference 45

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Observation 72e32024-30d9-4448-9b8a-11b2821bd36a · outbound

This paper cites Constructing three-way decision with fuzzy granular-ball rough sets based on uncertainty invariance,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Constructing three-way decision with fuzzy granular-ball rough sets based on uncertainty invariance,

Reference 46

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Observation 5dfabf73-e231-4bbf-b889-2f677e35cb3d · outbound

This paper cites Fuzzy granule density-based outlier detection with multi-scale granular balls,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Fuzzy granule density-based outlier detection with multi-scale granular balls,

Reference 47

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Observation 93ecadea-12fd-41e6-a14a-fca06929045c · outbound

This paper cites Graph coarsening via supervised granular-ball for scalable graph neural network training,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Graph coarsening via supervised granular-ball for scalable graph neural network training,

Reference 48

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Observation 94ae91e2-ee10-498c-9fd2-e5bb30254a7c · outbound

This paper cites an unresolved cited work.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Unresolved cited work

Reference 49

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Observation f4237b55-8a6e-4790-8038-22d0e4e3928a · outbound

This paper cites A new internal index based on density core for clustering validation,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls A new internal index based on density core for clustering validation,

Reference 50

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Observation ed152090-b3a2-48e2-833a-f055593d97fb · outbound

This paper cites The upper bound of the optimal number of clusters in fuzzy clustering,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls The upper bound of the optimal number of clusters in fuzzy clustering,

Reference 51

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Observation 7d0c4970-6309-4784-99a1-ed1ba2a948e6 · outbound

This paper cites an unresolved cited work.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Unresolved cited work

Reference 52

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Observation cfe9a1a7-d0df-431c-9cf8-1c77536ee424 · outbound

This paper cites Structure-activity relationship of muta- genic aromatic and heteroaromatic nitro compounds. correlation with molecular orbital energies and hydrophobicity,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Structure-activity relationship of muta- genic aromatic and heteroaromatic nitro compounds. correlation with molecular orbital energies and hydrophobicity,

Reference 53

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Observation 062befa9-376b-4eab-9a13-30d831705a43 · outbound

This paper cites Derivation and validation of tox- icophores for mutagenicity prediction,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Derivation and validation of tox- icophores for mutagenicity prediction,

Reference 54

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Observation 64152b61-1484-4bf2-aa4a-b7a2656b0915 · outbound

This paper cites Comparison of descriptor spaces for chemical compound retrieval and classification,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Comparison of descriptor spaces for chemical compound retrieval and classification,

Reference 55

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Observation 37e23760-d70c-471a-aa31-dd8fa367370d · outbound

This paper cites Fast unfolding of communities in large networks,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Fast unfolding of communities in large networks,

Reference 56

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source=pdf_text observed=2026-08-01T07:41:35.340353Z digest=sha256:aa11d5ec8aac2c17df230ee36f7e376b5bddd1e886869bb5c90bc15fd9220460

Observation 59bd789d-59b4-440a-98f0-7118af85a76b · outbound

This paper cites Weisfeiler and leman go sparse: Towards scalable higher-order graph embeddings,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Weisfeiler and leman go sparse: Towards scalable higher-order graph embeddings,

Reference 57

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Observation 88c4b026-b01b-4cb4-8967-57ae964e187a · outbound

This paper cites Towards better understanding of gradient-based attribution methods for Deep Neural Networks.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Towards better understanding of gradient-based attribution methods for Deep Neural Networks

Reference 58

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Observation 0471c972-0293-4a98-986c-51ff8e7dde2b · outbound

This paper cites Explainability methods for graph convolutional neural networks,.

Towards Faithful Graph Explanations with Synergistic Edge Effects via Granular Balls Explainability methods for graph convolutional neural networks,

Reference 59

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Pith citing papers

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