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Efficient Palmprint Search Based on Database Clustering for Personal Identification

机译:基于数据库聚类的高效PalmPrint搜索个人识别

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This paper proposes an efficient palmprint searching algorithm for personal identification based on database clustering, which reduces the search space of fine matching. A complex filter is applied to double orientation field to detect the symmetry of the palm lines as the main feature at coarse-level search. A K-means clustering technique is applied to partition the symmetry feature space into clusters. A query processing is proposed to facilitate an efficient searching. The experimental results on the public database of Hong Kong Polytechnic University show the effectiveness of the proposed searching algorithm.
机译:本文提出了一种基于数据库聚类的个人识别的高效掌纹搜索算法,从而减少了精细匹配的搜索空间。复杂的滤波器被施加到双取向场,以检测掌线的对称作为粗级搜索处的主要特征。 k-means聚类技术应用于将对称特征空间分区为集群。提出了一种促进高效搜索的查询处理。香港理工大学公共数据库实验结果表明了提出的搜索算法的有效性。

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