Construction of the Information Dissemination Model and Calculation of User Influence Based on Attenuation Coefficient

IF 5 2区 计算机科学 Q1 COMPUTER SCIENCE, ARTIFICIAL INTELLIGENCE International Journal of Intelligent Systems Pub Date : 2024-11-04 DOI:10.1155/2024/2103945
Lin Guo, Su Zhang, Xiaoying Liu
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Abstract

Users’ online activities serve as a mirror, reflecting their unique personas, affiliations, interests, and hobbies within the real world. Network information dissemination is inherently targeted, as users actively seek information to facilitate precise and swift communication. Delving into the nuances of information propagation on the Internet holds immense potential for facilitating commercial endeavors such as targeted advertising, personalized product recommendations, and insightful consumer behavior analyses. Recognizing that the intensity of information transmission diminishes with the proliferation of competing messages, increased transmission distances, and the passage of time, this paper draws inspiration from the concept of heat attenuation to formulate an innovative information propagation model. This model simulates the “heat index” of each node in the transmission process, thereby capturing the dynamic nature of information flow. Extensive experiments, bolstered by comparative analyses of multiple datasets and relevant algorithms, validate the correctness, feasibility, and efficiency of our proposed algorithm. Notably, our approach demonstrates remarkable accuracy and stability, underscoring its potential for real-world applications.

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根据衰减系数构建信息传播模型并计算用户影响力
用户的网上活动就像一面镜子,反映了他们在现实世界中的独特角色、从属关系、兴趣和爱好。网络信息传播本质上是有针对性的,因为用户会主动寻找信息,以促进精确而迅速的交流。深入研究互联网信息传播的细微差别,对于促进商业活动(如有针对性的广告、个性化产品推荐和有洞察力的消费者行为分析)具有巨大的潜力。本文认识到信息传播的强度会随着竞争信息的激增、传输距离的增加和时间的流逝而减弱,因此从热衰减的概念中汲取灵感,制定了一个创新的信息传播模型。该模型模拟了传输过程中每个节点的 "热指数",从而捕捉到信息流的动态本质。通过对多个数据集和相关算法的对比分析,大量的实验验证了我们提出的算法的正确性、可行性和效率。值得注意的是,我们的方法表现出了显著的准确性和稳定性,突出了其在现实世界中的应用潜力。
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来源期刊
International Journal of Intelligent Systems
International Journal of Intelligent Systems 工程技术-计算机:人工智能
CiteScore
11.30
自引率
14.30%
发文量
304
审稿时长
9 months
期刊介绍: The International Journal of Intelligent Systems serves as a forum for individuals interested in tapping into the vast theories based on intelligent systems construction. With its peer-reviewed format, the journal explores several fascinating editorials written by today''s experts in the field. Because new developments are being introduced each day, there''s much to be learned — examination, analysis creation, information retrieval, man–computer interactions, and more. The International Journal of Intelligent Systems uses charts and illustrations to demonstrate these ground-breaking issues, and encourages readers to share their thoughts and experiences.
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