SOTAVerified

Community Detection

Community Detection is one of the fundamental problems in network analysis, where the goal is to find groups of nodes that are, in some sense, more similar to each other than to the other nodes.

Source: Randomized Spectral Clustering in Large-Scale Stochastic Block Models

Papers

Showing 451–500 of 919 papers

TitleStatusHype
Data clustering with edge domination in complex networks—0
Data-driven Clustering in Ad-hoc Networks based on Community Detection—0
Data-driven Influence Based Clustering of Dynamical Systems—0
DCC: A Cascade based Approach to Detect Communities in Social Networks—0
Deep Amortized Relational Model with Group-Wise Hierarchical Generative Process—0
Deep Clustering via Community Detection—0
Deep Graph Clustering via Mutual Information Maximization and Mixture Model—0
Descriptive vs. inferential community detection in networks: pitfalls, myths, and half-truths—0
Community Structure Recovery and Interaction Probability Estimation for Gossip Opinion Dynamics—0
Detecting Communities in Complex Networks using an Adaptive Genetic Algorithm and node similarity-based encoding—0
Detecting Communities in Heterogeneous Multi-Relational Networks:A Message Passing based Approach—0
Detecting Community Structures in Hi-C Genomic Data—0
Detecting Dynamic Community Structure in Functional Brain Networks Across Individuals: A Multilayer Approach—0
Detecting Local Community Structures in Social Networks Using Concept Interestingness—0
Detecting local processing unit in drosophila brain by using network theory—0
Detecting Overlapping Communities in Networks Using Spectral Methods—0
Detecting User Community in Sparse Domain via Cross-Graph Pairwise Learning—0
Detection of Community Structures in Networks with Nodal Features based on Generative Probabilistic Approach—0
Determining Code Words in Euphemistic Hate Speech Using Word Embedding Networks—0
Differentially Private Community Detection for Stochastic Block Models—0
Differentially private exact recovery for stochastic block models—0
Direct Comparative Analysis of Nature-inspired Optimization Algorithms on Community Detection Problem in Social Networks—0
Discriminative community detection for multiplex networks—0
Disentangling group and link persistence in Dynamic Stochastic Block models—0
Disentangling homophily, community structure and triadic closure in networks—0
Distributed Representation of Subgraphs—0
Distribution-Free Model for Community Detection—0
Disunited Nations? A Multiplex Network Approach to Detecting Preference Affinity Blocs using Texts and Votes—0
Diversified Top-k Partial MaxSAT Solving—0
Diversity of meso-scale architecture in human and non-human connectomes—0
Down the Rabbit Hole: Detecting Online Extremism, Radicalisation, and Politicised Hate Speech—0
Dual regularized Laplacian spectral clustering methods on community detection—0
Dynamic change-point detection using similarity networks—0
Dynamic Community Detection into Analyzing of Wildfires Events—0
Dynamic Community Detection via Adversarial Temporal Graph Representation Learning—0
Dynamic Network Sampling for Community Detection—0
Dynamic Range in the C.elegans Brain Network—0
Early Detection of Research Trends—0
Early Identification of Pathogenic Social Media Accounts—0
Edge Augmentation on Disconnected Graphs via Eigenvalue Elevation—0
Edge Label Inference in Generalized Stochastic Block Models: from Spectral Theory to Impossibility Results—0
Effective Resistance-based Germination of Seed Sets for Community Detection—0
Efficiently Detecting Overlapping Communities through Seeding and Semi-Supervised Learning—0
Efficient Minimax Signal Detection on Graphs—0
Efficient Personalized Community Detection via Genetic Evolution—0
Enhancing Community Detection in Networks: A Comparative Analysis of Local Metrics and Hierarchical Algorithms—0
Enhancing Scalability of Optimal Kron-based Reduction of Networks (Opti-KRON) via Decomposition with Community Detection—0
Ensemble approaches for improving community detection methods—0
Entropic Spectral Learning for Large-Scale Graphs—0
Estimating mixed memberships in multi-layer networks—0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1GNNAccuracy-NE2—Unverified
2CommunityGANF1-score0.09—Unverified
3Ego-SplittingF1-score0.04—Unverified
#ModelMetricClaimedVerifiedStatus
1EdMotNMI0.42—Unverified
2CDNMFNMI0.4—Unverified
#ModelMetricClaimedVerifiedStatus
1CDNMFACC0.48—Unverified
#ModelMetricClaimedVerifiedStatus
1CommunityGANF1-Score0.15—Unverified
#ModelMetricClaimedVerifiedStatus
1Smooth GEMSEC 2Modularity0.56—Unverified
#ModelMetricClaimedVerifiedStatus
1Smooth GEMSEC 2Modularity0.69—Unverified
#ModelMetricClaimedVerifiedStatus
1Smooth GEMSEC 2Modularity0.65—Unverified
#ModelMetricClaimedVerifiedStatus
1Smooth GEMSEC 2Modularity0.68—Unverified
#ModelMetricClaimedVerifiedStatus
1Smooth GEMSEC 2Modularity0.71—Unverified
#ModelMetricClaimedVerifiedStatus
1Smooth GEMSEC 2Modularity0.57—Unverified
#ModelMetricClaimedVerifiedStatus
1Smooth GEMSEC 2Modularity0.86—Unverified
#ModelMetricClaimedVerifiedStatus
1Smooth GEMSEC 2Modularity0.85—Unverified
#ModelMetricClaimedVerifiedStatus
1CDNMFACC0.67—Unverified