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Computing Cliques and Cavities in Networks

by Dinghua Shi ID: arxiv-paper--2101.00536

Complex networks contain complete subgraphs such as nodes, edges, triangles, etc., referred to as simplices and cliques of different orders. Notably, cavities consisting of higher-order cliques play an important role in brain functions. Since searching for maximum cliques is an NP-complete problem, ...

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BibTeX
@misc{arxiv_paper__2101.00536,
  author = {Dinghua Shi},
  title = {Computing Cliques and Cavities in Networks Paper},
  year = {2026},
  howpublished = {\url{https://arxiv.org/abs/2101.00536v3}},
  note = {Accessed via Free2AITools Knowledge Fortress}
}
APA Style
Dinghua Shi. (2026). Computing Cliques and Cavities in Networks [Paper]. Free2AITools. https://arxiv.org/abs/2101.00536v3

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πŸ“ Executive Summary

"Complex networks contain complete subgraphs such as nodes, edges, triangles, etc., referred to as simplices and cliques of different orders. Notably, cavities consisting of higher-order cliques play an important role in brain functions. Since searching for maximum cliques is an NP-complete problem, we use k-core decomposition to determine the computability of a given network. For a computable network, we design a search method with an implementable algorithm for finding cliques of different o..."

❝ Cite Node

@article{Shi2021Computing,
  title={Computing Cliques and Cavities in Networks},
  author={Dinghua Shi and Zhifeng Chen and Xiang Sun and Qinghua Chen and Chuang Ma and Yang Lou and Guanrong Chen},
  journal={arXiv preprint arXiv:arxiv-paper--2101.00536},
  year={2021}
}

πŸ‘₯ Collaborating Minds

Dinghua Shi Zhifeng Chen Xiang Sun Qinghua Chen Chuang Ma Yang Lou Guanrong Chen

Abstract & Analysis

Complex networks contain complete subgraphs such as nodes, edges, triangles, etc., referred to as simplices and cliques of different orders. Notably, cavities consisting of higher-order cliques play an important role in brain functions. Since searching for maximum cliques is an NP-complete problem, we use k-core decomposition to determine the computability of a given network. For a computable network, we design a search method with an implementable algorithm for finding cliques of different orders, obtaining also the Euler characteristic number. Then, we compute the Betti numbers by using the ranks of boundary matrices of adjacent cliques. Furthermore, we design an optimized algorithm for finding cavities of different orders. Finally, we apply the algorithm to the neuronal network of C. elegans with data from one typical dataset, and find all of its cliques and some cavities of different orders, providing a basis for further mathematical analysis and computation of its structure and function.

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id
arxiv-paper--2101.00536
source
arxiv
author
Dinghua Shi
tags
arxiv:cs.NE

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