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Synthesis of DHV Images for the Enlargement of the Existing DataBase Based on PCA

机译:基于PCA的DHV图像合成以扩展现有数据库

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It is very important for the performance evaluation of dorsa-hand vein (DHV) recognition algorithms to construct very large DHV databases. However, limited by the real conditions, there are no very large common DHV databases now. This paper introduces a novel synthesis method of DHV images using principal component analysis (PCA), which will be applied to enlarging the existing DHV image database to a large and new one. Based on the method of PCA, new data are synthesized with the feature extracted from the existing real data. The feature space grows up with the sample sets, the number of which is decided by our experiments. Extensive experiments show that the synthesized DHV databases can be very large. The experimental results show that the synthesized database has a good recognition rate, which indicates the proposed method performs well and would be applicable in the simulation test.
机译:构建非常大的DHV数据库对于手背静脉(DHV)识别算法的性能评估非常重要。但是,受实际条件的限制,现在没有非常大的通用DHV数据库。本文介绍了一种使用主成分分析(PCA)的DHV图像合成的新方法,该方法将用于将现有DHV图像数据库扩大为一个大型的新数据库。基于PCA的方法,将新数据与从现有真实数据中提取的特征进行合成。特征空间随样本集的增长而增长,样本集的数量由我们的实验决定。大量实验表明,合成的DHV数据库可能非常庞大。实验结果表明,该综合数据库具有较高的识别率,表明该方法性能良好,可用于仿真测试。

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