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公安视角下细颗粒度授权与数据分类分层保护模型研究
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作者 陈光宣 刘丰毓 《中国人民警察大学学报》 2025年第10期26-33,共8页
为提高B/S模式下公安现代化业务信息查询平台用户权限管理和授权访问的安全性,提出一种细颗粒度权限管理模型。该模型基于角色访问控制原理,以公安系统原有基于角色的访问控制(RBAC)架构为基础,提出细颗粒度数据权限控制(FDPC)架构,并... 为提高B/S模式下公安现代化业务信息查询平台用户权限管理和授权访问的安全性,提出一种细颗粒度权限管理模型。该模型基于角色访问控制原理,以公安系统原有基于角色的访问控制(RBAC)架构为基础,提出细颗粒度数据权限控制(FDPC)架构,并针对公安信息庞杂、用户数量众多、职务变动频繁等特点进行设计。通过功能与数据的“字段级”对应,实现细颗粒度分解资源的访问权限。同时,基于查询日志进行两步聚类分析,实现特定部门下最优角色分配方案设计。通过角色授权和直接用户授权,对权限进行分类分层次管理,可大幅提升公安实战用户权限管理的灵活性和可扩展性。 展开更多
关键词 访问控制 fdpc 细颗粒度授权 两步聚类 公安工作现代化
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Fast density peak-based clustering algorithm for multiple extended target tracking 被引量:4
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作者 SHEN Xinglin SONG Zhiyong +1 位作者 FAN Hongqi FU Qiang 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2019年第3期435-447,共13页
The key challenge of the extended target probability hypothesis density (ET-PHD) filter is to reduce the computational complexity by using a subset to approximate the full set of partitions. In this paper, the influen... The key challenge of the extended target probability hypothesis density (ET-PHD) filter is to reduce the computational complexity by using a subset to approximate the full set of partitions. In this paper, the influence for the tracking results of different partitions is analyzed, and the form of the most informative partition is obtained. Then, a fast density peak-based clustering (FDPC) partitioning algorithm is applied to the measurement set partitioning. Since only one partition of the measurement set is used, the ET-PHD filter based on FDPC partitioning has lower computational complexity than the other ET-PHD filters. As FDPC partitioning is able to remove the spatially close clutter-generated measurements, the ET-PHD filter based on FDPC partitioning has good tracking performance in the scenario with more clutter-generated measurements. The simulation results show that the proposed algorithm can get the most informative partition and obviously reduce computational burden without losing tracking performance. As the number of clutter-generated measurements increased, the ET-PHD filter based on FDPC partitioning has better tracking performance than other ET-PHD filters. The FDPC algorithm will play an important role in the engineering realization of the multiple extended target tracking filter. 展开更多
关键词 FAST DENSITY peak-based clustering (fdpc) MULTIPLE extended target partition probability hypothesis DENSITY (PHD) filter track.
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