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Improved SOM search algorithm for high-dimensional data with application to face recognition across pose and illumination

机译:改进的用于高维数据的SOM搜索算法,可应用于姿势和照明中的人脸识别

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In this paper we focus on dealing with large size databases. Such databases require the construction of suitable feature spaces to accommodate data. The paper presents a new search algorithm based on the self organizing map (SOM) avoids the high-cost of computation in such cases. The proposed SOM algorithm is combined with support vector machine (SVM) to form a new appearance based approach. The proposed approach is evaluated in face recognition experiments across variations in pose and illumination. A huge-size database is used to judge effectively the proposed approach. The results have compared with another reported approach based on light field theory using same huge database.
机译:在本文中,我们专注于处理大型数据库。这样的数据库需要构造合适的特征空间以容纳数据。本文提出了一种新的基于自组织图(SOM)的搜索算法,避免了这种情况下的高计算成本。提出的SOM算法与支持向量机(SVM)相结合,形成了一种基于外观的新方法。在脸部识别实验中,通过姿势和照明的变化对提出的方法进行了评估。使用巨大的数据库来有效地判断所提出的方法。将结果与使用相同大型数据库的基于光场理论的另一种报道方法进行了比较。

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