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Automatic features reduction procedures in palm vein recognition

机译:棕榈静脉识别中的自动特征减少程序

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Feature or dimensionality reduction has become one of fundamental problem in the field of pattern recognition such as biometrics. Selecting the number of feature or dimension has become one challenge. Instead selecting number of feature manually, this work proposed a procedure for feature reduction by finding the correlation between recognition rates and number of features. The procedure started with collecting recognition rates from available classes against a number of features and then calculated some variables from the distribution to be used as anchors for estimating number of features in case there are new classes to be added. This study was applied on a palm vein biometrics system which used DCT and k-PCA as features extraction method. The results of the experiment showed that the procedure was able to achieve a number of features that have an average offset of less than 6 from those obtained from direct observation and an average error of 1.1% from the real recognition rates.
机译:特征或维数减少已成为模式识别领域的基本问题之一,例如生物识别。选择功能或维度的数量已成为一个挑战。代替手动选择特征数量,这项工作提出了通过在识别率和特征数之间找到相关性来减少功能的过程。该过程开始从可用类中收集来自多个功能的可用类,然后从分发计算一些变量以用作锚点,以估计要添加新类的功能数量。本研究应用于棕榈静脉生物测定系统,其使用DCT和K-PCA作为特征提取方法。实验结果表明,该程序能够实现许多特征,该特征具有从直接观察结果获得的平均偏移量的平均偏移,并且从真实识别率的平均误差为1.1%。

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