吉林大学学报(信息科学版) ›› 2025, Vol. 43 ›› Issue (5): 1151-1157.

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基于核极限学习机的多源异构数据安全聚合算法设计

周 翔1a, 唐智国1b, 张 彬1c, 曹明军1a, 李若雨2   

  1. 1. 安徽省妇幼保健院a. 信息中心;b. 行政管理部门;c. 科教处,合肥230001; 2. 皖南医学院医学信息学院,安徽芜湖241002
  • 收稿日期:2023-12-08 出版日期:2025-09-28 发布日期:2025-11-20
  • 通讯作者: 唐智国(1979— ), 男, 安徽马鞍山人, 安徽省妇幼 保健院副主任医师,主要从事医院管理和医疗信息化研究,(Tel)86-15955103089(E-mail)Tangzhiguodoctor@163.com。 E-mail:Tangzhiguodoctor@163.com
  • 作者简介:周翔(1992— ), 男, 合肥人, 安徽省妇幼保健院信息系统项目管理师(高级), 主要从事医院管理和医疗信息化研究, (Tel)86-13856965404(E-mail)31415926007zx@163. com
  • 基金资助:
    安徽省教育厅人文社科重点基金资助项目(2022AH050630); 安徽省社会科学创新发展攻关研究类基金资助项目 (2021CX520); 中国妇幼健康领域科研创新技术基金资助项目(ZGFYBJXH-KY2106); 安徽省妇幼保健院院级科研基金 资助项目(yb2023-1-9)

Design of Secure Aggregation Algorithm for Multi-Source Heterogeneous Data Based on Kernel Limit Learning Machine

ZHOU Xiang1a, TANG Zhiguo1b, ZHANG Bing1c, CAO Mingjun1a, LI Ruoyu   

  1. 1a. Information Center; 1b. Administrative Department; 1c. Science and Education Department, Anhui Province Maternity & Child Health Hospital, Hefei 230001, China; 2. School of Medical Information, Wannan Medical College, Wuhu 241002, China
  • Received:2023-12-08 Online:2025-09-28 Published:2025-11-20

摘要: 针对多源异构数据会包含敏感信息和个人隐私信息,使数据泄漏风险增加的问题,提出了基于核极限学习机的多源异构数据安全聚合算法。 利用偏最小二乘算法提取多源异构数据特征,通过引入核函数对极限学习机实施优化,并将获得的数据特征输入核极限学习机中完成数据按类聚合。 采用椭圆曲线加密算法对聚合后数据实施加密,提高数据的安全性,从而达到多源异构数据安全聚合的目标。 实验结果表明,该算法的多源异构数据聚合精度高、数据加密性能好,可以在实际中得到广泛应用。

关键词: 核极限学习机, 多源异构数据, 数据安全聚合, 偏最小二乘算法, 椭圆曲线加密

Abstract: Multi source heterogeneous data may contain sensitive and personal privacy information, increasing the risk of data leakage. Therefore, a multi-source heterogeneous data security aggregation algorithm based on kernel extreme learning machine is designed. Partial least squares algorithm is used to extract features from multi-source heterogeneous data, the extreme learning machine is optimized by introducing kernel functions, and the obtained data features inputtied into the kernel extreme learning machine to complete data aggregation by class. Elliptic curve encryption algorithm is used to encrypt the aggregated data, improving data security and achieving the goal of secure aggregation of multi-source heterogeneous data. The experimental results show that the algorithm has high accuracy in multi-source heterogeneous data aggregation and good data encryption performance, and can be widely applied in practice. 

Key words: kernel extreme learning machine, multi source heterogeneous data, data security aggregation, partial least squares algorithm, elliptic curve encryption

中图分类号: 

  • TP391