Network Analysis Resources & Updates – Telegram
Network Analysis Resources & Updates
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📄Privacy-Preserving Graph Machine Learning from Data to Computation: A Survey

🗓Publish year: 2023

📎Study paper

📱Channel: @ComplexNetworkAnalysis
#paper #Privacy #Preserving #Graph_Machine_Learning #Computation #survey
👍3
📄 A Survey on Graph Neural Networks for Time Series: Forecasting, Classification, Imputation, and Anomaly Detection

🗓Publish year: 2023

📎
Study paper

📲Channel: @ComplexNetworkAnalysis
#paper #survey #GNN #anomaly_detection #time_series
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📄A Survey on Graph Counterfactual Explanations: Definitions, Methods, Evaluation, and Research Challenges

📘 journal: ACM Computing Surveys (I.F=16.6)
🗓
Publish year: 2023

📎Study paper

📱Channel: @ComplexNetworkAnalysis
#paper #Graph #Counterfactual #Explanations #Evaluation #Challenges #survey
👍3
📄Machine Learning for Anomaly Detection: A Systematic Review

📘 journal: IEEE Acess (I.F=3.476)
🗓Publish year: 2021

📎Study paper

📲Channel: @ComplexNetworkAnalysis
#paper #graph #Anomaly_detection #review
🔥3
📄 Survey of Deep Graph Clustering: Taxonomy,Challenge, Application, and Open Resource

🗓Publish year: 2023

📎Study paper

📱Channel: @ComplexNetworkAnalysis
#paper #Deep #Graph #Clustering #Taxonomy #Challenge #Application #Open_Resource #survey
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📄Information cascades in complex networks

📘 journal: Journal of Complex Networks (I.F=1.492)
🗓Publish year: 2017

📎Study paper

📲Channel: @ComplexNetworkAnalysis
#paper #graph #cascades #review
👍5👏1
📄Spatial social network research: a bibliometric analysis

📘 journal: Computational Urban Science
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Publish year: 2022

📎Study paper

📱Channel: @ComplexNetworkAnalysis
#paper #Spatial #research #bibliometric
2
📚Graph Theory Notes

🧑‍💼 author: Vadim Lozin in Institute of Mathematics University of Warwick

📎Study

📲Channel: @ComplexNetworkAnalysis
#Booklet #graph
👍3
📄Complex systems and network science: a survey

📘 journal: Journal of Systems Engineering and Electronics (I.F=2.1)
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Publish year: 2023

📎Study paper

📱Channel: @ComplexNetworkAnalysis
#paper #Complex_systems #network_science #survey
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📚 Knowledge Graphs

This book provides a comprehensive and accessible introduction to knowledge graphs, which have recently garnered notable attention from both industry and academia. Knowledge graphs are founded on the principle of applying a graph-based abstraction to data, and are now broadly deployed in scenarios that require integrating and extracting value from multiple, diverse sources of data at large scale.

🧑‍💼 authors: Aidan Hogan, Eva Blomqvist, Michael Cochez, Claudia D'Amato, Gerard de Melo, Claudio Gutierrez, Sabrina Kirrane, Jose Emilio Labra Gayo, Roberto Navigli, Sebastian Neumaier, Axel-Cyrille Ngonga Ngomo, Axel Polleres, Sabbir M Rashid, Anisa Rula, Juan Sequeda, Lukas Schmelzeisen, Steffen Staab, Antoine Zimmerman
🗓Publish year: 2021

📎Study

📲Channel: @ComplexNetworkAnalysis
#Book #graph #Data_Graphs #Graph_Algorithms #Graph_Analytics #Graph_Neural_Networks #Knowledge_Graphs #Social_Networks
👍5
📄Wolfram MathWorld

💥Technical online booklet and workspace

🌐 Study

📲Channel: @ComplexNetworkAnalysis

#online_book #Graph #Graph_Theory
👍3
📄New Developments in Social Network Analysis

📘 journal: Annual Review of Organizational Psychology and Organizational Behavior (I.F=13.7)
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Publish year: 2022

📎Study paper

📱Channel: @ComplexNetworkAnalysis
#paper #Developments
👍3
🎞 Community Detection in R in 2021 and Beyond, Part 1

💥2021 Social Networks Workshop

📽 Watch

📱Channel: @ComplexNetworkAnalysis

#video #Community_Detection #R
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2020_Graph_weeds_net_A_graph_based_deep_learning_method_for_weed.pdf
2.7 MB
📄Graph weeds net: A graph-based deep learning method for weed recognition

📘 journal: Computers and Electronics in Agriculture (I.F=6.757)
🗓Publish year: 2020

📎Study paper

📲Channel: @ComplexNetworkAnalysis
#paper #graph #deep_learnin #weed_recognition
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2021-Graphnet Graph Clustering with Deep Neural Networks.pdf
2.3 MB
📄Graphnet: Graph Clustering with Deep Neural Networks

📘 Conference: IEEE International Conference on Acoustics, Speech and Signal Processing (ICASSP)
🗓Publish year: 2021

📎Study paper

📲Channel: @ComplexNetworkAnalysis
#paper #Graphnet #Deep_Neural_Networks #Clustering
👍21
🎞 Anomaly Detection: Algorithms, Explanations, Applications

💥Free recorded tutorial by Dr. Dietterich’s.He is part of the leadership team for OSU’s Ecosystem Informatics programs including the NSF Summer Institute in Ecoinformatics

💥Anomaly detection is important for data cleaning, cybersecurity, and robust AI systems. This talk will review recent work in our group on (a) benchmarking existing algorithms, (b) developing a theoretical understanding of their behavior, (c) explaining anomaly “alarms” to a data analyst, and (d) interactively re-ranking candidate anomalies in response to analyst feedback. Then the talk will describe two applications: (a) detecting and diagnosing sensor failures in weather networks and (b) open category detection in supervised learning.

📽 Watch

📱Channel: @ComplexNetworkAnalysis

#video #Anomaly_Detection #Algorithms #Explanations #Applications
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📄Current and future directions in network biology

🗓Publish year: 2023

📎Study paper

📲Channel: @ComplexNetworkAnalysis
#paper #graph #biology
2
🎞 Network data visualization in Gephi

💥Dr. Daria Maltseva, PhD, Head, International Laboratory for Applied Network Research, HSE.

💥14th Summer School 'Methods and Tools for Social Network Analysis'.

📽 Watch

📱Channel: @ComplexNetworkAnalysis

#video #Network #data #visualization #Gephi
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📄Graph Neural Networks in IoT: A Survey

🗓Publish year: 2022

📎Study paper

📲Channel: @ComplexNetworkAnalysis
#paper #GNN #IOT #survey
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