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Recognizing surgically altered faces using local edge gradient Gabor magnitude pattern

机译:使用局部边缘梯度Gabor幅度模式识别手术改变的面

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For humans, every face is unique and can be recognized amongst similar faces. This is yet to be so for machines. Our assumption is that beneath the uncertain primitive visual features of face images are intrinsic structural patterns that uniquely distinguish a sample face from those of other faces. In order to unlock the intrinsic structural patterns, this paper presents in a typical face recognition framework a new descriptor, namely the local edge gradient Gabor magnitude (LEGGM) descriptor. LEGGM first of all uncovers the primitive inherent structural pattern (PISP) locked in every pixel through determining the pixel gradient in relation to its neighbors. Then, the resulting output is embedded in the pixel original (grey-level) pattern using additive function. This forms a pixel's complete structural pattern, which is further encoded using Gabor wavelets to encode the frequency characteristics of the resulting pattern. From these steps emerges an efficient descriptor for describing every pixel point in a face image. The proposed descriptor-based face recognition method shows impressive results over contemporary descriptors on the Plastic surgery database despite using a base classifier and without employing subspace learning. The ability of the descriptor to be adapted to real-world face recognition scenario is demonstrated by running experiments with a heterogeneous database.
机译:对于人类来说,每张面部都是独一无二的,可以在类似的面孔中被识别。机器尚未如此。我们的假设是面部图像的不确定原始视觉特征是内在结构图案,其唯一地区分样品面的样品面。为了解锁内在结构图案,本文呈现在典型的面部识别框架中,是新描述符,即局部边缘梯度Gabor幅度(LEGGM)描述符。首先通过确定与其邻居相关的像素梯度来揭示锁定在每个像素中的原始固有结构模式(PISP)。然后,使用添加功能嵌入产生的输出以像素原始(灰度)模式嵌入。这形成了一种像素的完整结构图案,其使用Gabor小波进一步编码以对所得模式的频率特性进行编码。从这些步骤出现了一种用于描述面部图像中的每个像素点的有效描述符。尽管使用基础分类器,但是,所提出的基于描述符的面部识别方法显示了整形手术数据库上的当代描述符令人印象深刻的结果,而不使用子空间学习。通过用异构数据库运行实验,对描述符适应真实面部识别方案的能力。

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