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2020_Applications_of_link_prediction_in_social_networks_A_review.pdf
2.4 MB
πŸ“„Applications of link prediction in social networks: A review

πŸ“˜journal: Journal of Network and Computer Applications (I.F=8.7)
πŸ—“Publish year: 2020

πŸ“ŽStudy paper

πŸ“±Channel: @ComplexNetworkAnalysis
#paper #Applications #link_prediction #review
πŸ“„Influence maximization on temporal
networks: a review

πŸ—“Publish year: 2023

πŸ“ŽStudy paper

πŸ“±Channel: @ComplexNetworkAnalysis
#paper #Influence #maximization #temporal_networks #review
2020_A_survey_on_network_node_ranking_algorithms_Representative.pdf
793.4 KB
πŸ“„A survey on network node ranking algorithms: Representative methods, extensions, and applications

πŸ“˜journal: Science China Technological Sciences(I.F= 4.6)
πŸ—“Publish year: 2020

πŸ“ŽStudy paper

πŸ“±Channel: @ComplexNetworkAnalysis
#paper #network #node #ranking #algorithms #Representative #methods #extensions #applications #survey
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πŸ“„Python modularity Examples

πŸ’₯Technical paper

🌐 Study

πŸ“²Channel: @ComplexNetworkAnalysis

#paper #Graph #code #python #modularity
πŸ“„Network Analysis Based on Important Node Selection and Community Detection

πŸ“˜journal: MATHEMATICS-BASEL(I.F= 2.4)
πŸ—“Publish year: 2021

πŸ“ŽStudy paper

πŸ“±Channel: @ComplexNetworkAnalysis
#paper #Important_Nodes #Community_Detection
πŸ“„Community Detection

πŸ’₯Technical paper
 
🌐 Study 

πŸ“²Channel: @ComplexNetworkAnalysis

#paper #Graph #code #python #Community_Detection
πŸ‘1
πŸ“„A Mini Review of Node Centrality Metrics in Biological Networks

πŸ“˜journal: International Journal of Network Dynamics and Intelligence (IJNDI)
πŸ—“Publish year: 2022

πŸ“ŽStudy paper

πŸ“±Channel: @ComplexNetworkAnalysis
#paper #Node_Centrality #Metrics #Biological_Network #Mini_Review
πŸ“„Identifying spreading influence nodes for social networks

πŸ“˜journal: Frontiers of Engineering Management (FEM)(I.F=7.4)
πŸ—“Publish year: 2022

πŸ“ŽStudy paper

πŸ“±Channel: @ComplexNetworkAnalysis
#paper #Identifying #spreading #influence_nodes
πŸ“„A Survey on Graph Neural Networks for Time Series: Forecasting, Classification, Imputation, and Anomaly Detection

πŸ—“Publish year: 2021

πŸ“Ž Study the paper

πŸ“²Channel: @ComplexNetworkAnalysis
#paper #GNN #Survey #Neural_Network #Forecasting #Anomaly_Detection
πŸ‘2πŸ‘1
🎞 Social Network Analysis - network structure
πŸ’₯Free recorded lecture from UCCSS (University of California Computational Social Sciences)

πŸ”ΉThis lecture is part of the University of California wide online course on Computational Social Science (UCCSS), produced with input from Professors from all 10 UC campuses and offered to UC students for credit since 2018. For more on this topic, see the open Online Specialization link
.

πŸ“½ Watch

πŸ’»Open Online Specialization

πŸ“±Channel: @ComplexNetworkAnalysis

#video #network_structure
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πŸ“„Construction of Knowledge Graphs: Current State and Challenges

πŸ—“Publish year: 2023

πŸ“Ž Study the paper

πŸ“²Channel: @ComplexNetworkAnalysis
#paper #Knowledge_Graph
πŸ‘2
πŸ“„Fairness-Aware Graph Neural Networks: A Survey

πŸ—“Publish year: 2023

πŸ“ŽStudy paper

πŸ“±Channel: @ComplexNetworkAnalysis
#paper #Fairness #Graph_Neural_Networks #survey
🎞 Machine Learning with Graphs: Reasoning in Knowledge Graphs, Answering Predictive Queries, Query2box: Reasoning over KGs

πŸ’₯Free recorded course by Jure Leskovec, Computer Science, PhD

πŸ’₯ IIn this lecture, we introduce how to perform reasoning over knowledge graphs and provide answers to complex queries. We talk about different possible queries that one can get over a knowledge graph, and how to answer them by traversing over the graph. We also show how incompleteness of knowledge graphs can limit our ability to provide complete answers. We finally talk about how we can solve this problem by generalizing the link prediction task.

πŸ“½ Watch: part1 part2 part3

πŸ“ slide

πŸ“²Channel: @ComplexNetworkAnalysis

#video #course #Graph #Machine_Learning #Knowledge_Graph
πŸ‘1
πŸ“„Construction of Knowledge Graphs: Current State and Challenges

πŸ—“Publish year: 2023

πŸ“ŽStudy paper

πŸ“±Channel: @ComplexNetworkAnalysis
#paper #Knowledge_Graph #Current_State
#Challenges
❀2πŸ‘2
πŸŽ“Graph entropy and related topics

πŸ“˜Phd’s Dissertation, at the University of Twente.

πŸ—“Publish year: 2023

πŸ“ŽStudy Dissertation

πŸ“²Channel: @ComplexNetworkAnalysis

#Dissertation #Graph #Network_Comparison
πŸ‘6
πŸ“„Everything is Connected: Graph Neural Networks

πŸ“˜Journal: Current opinion in structural biology (l.F=7.876)
πŸ—“Publish year: 2023

πŸ“Ž Study the paper

πŸ“²Channel: @ComplexNetworkAnalysis
#paper #GNN
πŸ‘1
πŸ“„Network Analysis of Time Series: Novel Approaches to Network Neuroscience

πŸ“˜journal :Frontiers in Neuroscience (I.F= 4.3)
πŸ—“Publish year: 2022

πŸ“ŽStudy paper

πŸ“±Channel: @ComplexNetworkAnalysis
#paper #Time_Series #Neuroscience
πŸ“„A Survey of Graph Neural Networks for Recommender Systems: Challenges, Methods, and Directions

πŸ“˜journal: ACM Transactions on Recommender Systems (l.F=4.657)
πŸ—“Publish year: 2023

πŸ“Ž Study the paper

πŸ“²Channel: @ComplexNetworkAnalysis
#paper #Survey #GNN #Recommender_Systems
πŸ“„A Comprehensive Survey on Graph Neural Networks

πŸ—“Publish year: 2019

πŸ“ŽStudy paper

πŸ“±Channel: @ComplexNetworkAnalysis
#paper #Graph_Neural_Networks #survey
πŸ“„Summary of Static Graph Embedding Algorithms

πŸ“˜Conference: 2023 4th International Conference on Computer Vision, Image and Deep Learning (CVIDL)
πŸ—“Publish year: 2023

πŸ“Ž Study the paper

πŸ“²Channel: @ComplexNetworkAnalysis
#paper #Graph_Embedding #Summary