EasyHypergraph: an open-source software for fast and memory-saving analysis and learning of higher-order networks
Higher-order relationships exist widely across different disciplines. In the realm of real-world systems, significant interactions involving multiple entities are common. The traditional pairwise modeling approach leads to the loss of important higher-order structures, while hypergraph is one of the...
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| Published in | Humanities & social sciences communications Vol. 12; no. 1; pp. 1291 - 19 |
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| Main Authors | , , , , , , , |
| Format | Journal Article |
| Language | English |
| Published |
London
Palgrave Macmillan UK
09.08.2025
Springer Nature B.V Springer Nature |
| Subjects | |
| Online Access | Get full text |
| ISSN | 2662-9992 2662-9992 |
| DOI | 10.1057/s41599-025-05180-5 |
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| Abstract | Higher-order relationships exist widely across different disciplines. In the realm of real-world systems, significant interactions involving multiple entities are common. The traditional pairwise modeling approach leads to the loss of important higher-order structures, while hypergraph is one of the most typical representations of higher-order relationships. To deeply explore the higher-order relationships, researchers and practitioners use hypergraph analysis to model the higher-order relationships and describe the important topological features in higher-order networks. At the same time, they carry out hypergraph learning studies to learn better node representations by designing hypergraph neural network models. However, existing hypergraph libraries still have the following research gaps. The first is that most of them are not able to support both hypergraph analysis and hypergraph learning, which negatively impacts the user experience. The second is that the existing libraries exhibit insufficient computational performance, which causes researchers and practitioners to spend more time and incur expensive resource costs. To fill these research gaps, we present EasyHypergraph, a comprehensive, computationally efficient, and storage-saving hypergraph computational library. To ensure comprehensiveness, EasyHypergraph designs data structures to support both hypergraph analysis and hypergraph learning. To ensure fast computation and efficient memory utilization, EasyHypergraph designs the computational workflow and demonstrates its effectiveness. Through experiments on five typical hypergraph datasets, EasyHypergraph saves at most 8470 s and 935 s over two baseline libraries in terms of analyzing node distance on a dataset with more than one hundred thousand nodes. For hypergraph learning, EasyHypergraph reduces HGNN training time by approximately 70.37% in a similar scenario. Finally, by conducting case studies for hypergraph analysis and learning, EasyHypergraph exhibits its usefulness in social science research. |
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| AbstractList | Abstract Higher-order relationships exist widely across different disciplines. In the realm of real-world systems, significant interactions involving multiple entities are common. The traditional pairwise modeling approach leads to the loss of important higher-order structures, while hypergraph is one of the most typical representations of higher-order relationships. To deeply explore the higher-order relationships, researchers and practitioners use hypergraph analysis to model the higher-order relationships and describe the important topological features in higher-order networks. At the same time, they carry out hypergraph learning studies to learn better node representations by designing hypergraph neural network models. However, existing hypergraph libraries still have the following research gaps. The first is that most of them are not able to support both hypergraph analysis and hypergraph learning, which negatively impacts the user experience. The second is that the existing libraries exhibit insufficient computational performance, which causes researchers and practitioners to spend more time and incur expensive resource costs. To fill these research gaps, we present EasyHypergraph, a comprehensive, computationally efficient, and storage-saving hypergraph computational library. To ensure comprehensiveness, EasyHypergraph designs data structures to support both hypergraph analysis and hypergraph learning. To ensure fast computation and efficient memory utilization, EasyHypergraph designs the computational workflow and demonstrates its effectiveness. Through experiments on five typical hypergraph datasets, EasyHypergraph saves at most 8470 s and 935 s over two baseline libraries in terms of analyzing node distance on a dataset with more than one hundred thousand nodes. For hypergraph learning, EasyHypergraph reduces HGNN training time by approximately 70.37% in a similar scenario. Finally, by conducting case studies for hypergraph analysis and learning, EasyHypergraph exhibits its usefulness in social science research. Higher-order relationships exist widely across different disciplines. In the realm of real-world systems, significant interactions involving multiple entities are common. The traditional pairwise modeling approach leads to the loss of important higher-order structures, while hypergraph is one of the most typical representations of higher-order relationships. To deeply explore the higher-order relationships, researchers and practitioners use hypergraph analysis to model the higher-order relationships and describe the important topological features in higher-order networks. At the same time, they carry out hypergraph learning studies to learn better node representations by designing hypergraph neural network models. However, existing hypergraph libraries still have the following research gaps. The first is that most of them are not able to support both hypergraph analysis and hypergraph learning, which negatively impacts the user experience. The second is that the existing libraries exhibit insufficient computational performance, which causes researchers and practitioners to spend more time and incur expensive resource costs. To fill these research gaps, we present EasyHypergraph, a comprehensive, computationally efficient, and storage-saving hypergraph computational library. To ensure comprehensiveness, EasyHypergraph designs data structures to support both hypergraph analysis and hypergraph learning. To ensure fast computation and efficient memory utilization, EasyHypergraph designs the computational workflow and demonstrates its effectiveness. Through experiments on five typical hypergraph datasets, EasyHypergraph saves at most 8470 s and 935 s over two baseline libraries in terms of analyzing node distance on a dataset with more than one hundred thousand nodes. For hypergraph learning, EasyHypergraph reduces HGNN training time by approximately 70.37% in a similar scenario. Finally, by conducting case studies for hypergraph analysis and learning, EasyHypergraph exhibits its usefulness in social science research. |
| ArticleNumber | 1291 |
| Author | Gong, Qingyuan Ye, Bodian Wang, Xin Chen, Yang Zhang, Zi-Ke Gao, Min He, Xinlei Zhan, Xiu-Xiu |
| Author_xml | – sequence: 1 givenname: Bodian surname: Ye fullname: Ye, Bodian organization: College of Computer Science and Artificial Intelligence, Fudan University – sequence: 2 givenname: Min surname: Gao fullname: Gao, Min organization: College of Computer Science and Artificial Intelligence, Fudan University – sequence: 3 givenname: Xiu-Xiu surname: Zhan fullname: Zhan, Xiu-Xiu organization: Research Center for Complexity Sciences, Hangzhou Normal University – sequence: 4 givenname: Xinlei surname: He fullname: He, Xinlei organization: Hong Kong University of Science and Technology (Guangzhou) – sequence: 5 givenname: Zi-Ke surname: Zhang fullname: Zhang, Zi-Ke organization: Center for Digital Communication Studies, Zhejiang University – sequence: 6 givenname: Qingyuan surname: Gong fullname: Gong, Qingyuan email: gongqingyuan@fudan.edu.cn organization: Research Institute of Intelligent Complex Systems, Fudan University – sequence: 7 givenname: Xin surname: Wang fullname: Wang, Xin organization: College of Computer Science and Artificial Intelligence, Fudan University – sequence: 8 givenname: Yang surname: Chen fullname: Chen, Yang email: chenyang@fudan.edu.cn organization: College of Computer Science and Artificial Intelligence, Fudan University |
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| Title | EasyHypergraph: an open-source software for fast and memory-saving analysis and learning of higher-order networks |
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