论文标题

使用改良的局部二进制模式和基于TANI-MOTO的最近邻居算法在人脸图像中开发性别分类方法

Developing a gender classification approach in human face images using modified local binary patterns and tani-moto based nearest neighbor algorithm

论文作者

Fekri-Ershad, Shervan

论文摘要

人类识别是计算机视觉中的一个非常关注的问题。性别分类在人类识别中起重要作用,作为预处理步骤。到目前为止,已经提出了各种方法来解决此问题。绝对,分类准确性是研究人员在性别分类中的主要挑战。但是,在智能手机图像捕获中可能会发生一些挑战,例如旋转,灰度变化,姿势,照明变化。在这方面,本文提出了一种多步进方法,以根据改进的局部二进制模式(MLBP)对人的面部图像进行分类。 LBP是一种纹理描述符,它提取局部对比度和局部空间结构信息。一些问题,例如噪声灵敏度,旋转灵敏度和低判别特征,可以视为基本LBP的缺点。 MLBP使用新理论来处理缺点,以对基本LBP的提取二进制模式进行分类。拟议的方法包括两个阶段。首先,针对基于MLBP的人脸图像提取特征向量。接下来,非线性分类器可用于对性别进行分类。在本文中,根据TANI-MOTO度量作为距离度量,评估最近的社区分类器。在结果部分中,两个数据库自我收集和ICPR用作人脸数据库。在本文献中,某些最先进的算法比较了结果,该算法显示了拟议方法在准确率方面的高质量。所提出方法的其他一些主要优势是旋转不变,低噪声灵敏度,大小不变和计算复杂性低。由于减少了数据库比较的数量,因此提出的方法降低了智能手机应用程序的计算复杂性。由于记忆和CPU使用减少,它还可以提高Smarphone中同步应用的性能。

Human identification is a much attention problem in computer vision. Gender classification plays an important role in human identification as preprocess step. So far, various methods have been proposed to solve this problem. Absolutely, classification accuracy is the main challenge for researchers in gender classification. But, some challenges such as rotation, gray scale variations, pose, illumination changes may be occurred in smart phone image capturing. In this respect, a multi step approach is proposed in this paper to classify genders in human face images based on improved local binary patters (MLBP). LBP is a texture descriptor, which extract local contrast and local spatial structure information. Some issues such as noise sensitivity, rotation sensitivity and low discriminative features can be considered as disadvantages of the basic LBP. MLBP handle disadvantages using a new theory to categorize extracted binary patterns of basic LBP. The proposed approach includes two stages. First of all, a feature vector is extracted for human face images based on MLBP. Next, non linear classifiers can be used to classify gender. In this paper nearest neighborhood classifier is evaluated based on Tani-Moto metric as distance measure. In the result part, two databases, self-collected and ICPR are used as human face database. Results are compared by some state-ofthe-art algorithms in this literature that shows the high quality of the proposed approach in terms of accuracy rate. Some of other main advantages of the proposed approach are rotation invariant, low noise sensitivity, size invariant and low computational complexity. The proposed approach decreases the computational complexity of smartphone applications because of reducing the number of database comparisons. It can also improve performance of the synchronous applications in the smarphones because of memory and CPU usage reduction.

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