计算机科学
聚类分析
无监督学习
人工智能
机器学习
集合(抽象数据类型)
复杂网络
学位(音乐)
数据挖掘
万维网
物理
声学
程序设计语言
作者
Akansha Mittal,Anurag Goel
标识
DOI:10.1109/icais56108.2023.10073881
摘要
A community is referred to as a set of nodes in a network that has a high degree of connectivity with each other and a low degree of connectivity with other nodes in the same network. Community Detection is a renowned research problem for the past many years. The applications of Community Detection is spread across several domains like social networks, transportation networks, genetic networks, citation networks, web networks etc. In this work, several unsupervised learning techniques namely Louvain Algorithm, K-means clustering Algorithm and Gaussian Mixture Model have been examined to identify communities in social networks. The results demonstrated that the Louvain Algorithm outperforms the other two unsupervised learning techniques.
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