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An Improved Method for Face Recognition with Incremental Approach in Illumination Invariant Conditions

机译:在照明不变条件下具有增量方法的面部识别改进方法

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In this paper we propose an enhanced method with an acceptable level of accuracy for face recognition with an incremental approach in invariant conditions like illumination, pose, expressions and occlusions. The proposed method hold the class-separation criterion for maximizing the input samples as well as the asymmetrical characteristics for training data distributions. This enhanced approach helps the learning model to get adjusted the weak features inline with enhanced or boosted feature classifier for online samples. This enhanced model also helps in calculating feature loses during the training process of offline samples. For representing the illumination invariant face features local binary pattern (LBP) are extracted from the input samples and IFLDA is used for representation and classification. This modified algorithm with incremental approach gives the acceptable results by detecting and recognizing the faces in extreme illuminations varying conditions.
机译:在本文中,我们提出了一种增强的方法,具有可接受的精度,用于面部识别,以不变条件,如照明,姿势,表达和闭塞等增量方法。所提出的方法保持类别分离标准,用于最大化输入样本以及培训数据分布的不对称特性。这种增强的方法有助于学习模型调整弱功能,其中包含用于在线样本的增强或升级的特征分类器。该增强型模型还有助于在离线样本的培训过程中计算特征丢失。对于表示照明不变面,从输入样本中提取局部二进制模式(LBP),并且IFLDA用于表示和分类。这种具有增量方法的修改算法通过检测和识别极端照明变化条件的面部来提供可接受的结果。

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