Отрывок: 8) was used, where 4 refers to the number of communities, N refers to the number of nodes, 16 refers to the average degree of nodes, and 0.8 refers to the tightness of node connections. (2) Real data sets [15] included YouTube (user and user relationship network), DBLP (author partnership network), Zachary (karate club membership network) and an American university football team network, as shown in Table 1. Table 1. Real data set Data set Number of nodes Numbe...
Название : Network community partition based on intelligent clustering algorithm
Авторы/Редакторы : Cai, Z.M.
Ключевые слова : clustering algorithm
network community
node similarity
community division
Дата публикации : Дек-2020
Издательство : Самарский национальный исследовательский университет
Библиографическое описание : Cai ZM. Network community partition based on intelligent clustering algorithm. Computer Optics 2020; 44(6): 985-989. DOI: 10.18287/2412-6179-CO-724.
Серия/номер : 44;6
Аннотация : The division of network community is an important part of network research. Based on the clustering algorithm, this study analyzed the partition method of network community. Firstly, the classic Louvain clustering algorithm was introduced, and then it was improved based on the node similarity to get better partition results. Finally, experiments were carried out on the random network and the real network. The results showed that the improved clustering algorithm was faster than GN and KL algorithms, the community had larger modularity, and the purity was closer to 1. The experimental results show the effectiveness of the proposed method and make some contributions to the reliable community division.
URI (Унифицированный идентификатор ресурса) : https://dx.doi.org/10.18287/2412-6179-CO-724
http://repo.ssau.ru/handle/Zhurnal-Komputernaya-optika/Network-community-partition-based-on-intelligent-clustering-algorithm-86863
Другие идентификаторы : Dspace\SGAU\20210106\86863
Располагается в коллекциях: Журнал "Компьютерная оптика"

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