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Bag of Facial Components: A Data Enrichment Approach for Face Image Processing

机译:面部组件袋:用于面部图像处理的数据丰富方法

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Facial images are one of the raw data that can be processed to produce various information/representations, especially for computer vision, pattern recognition, and biometrics. Moreover, identity recognition, expression recognition and visitor demographic calculations are applications that can be generated through the processing of facial images. In order to perform face image processing, a face detection mechanism is needed to isolate the face area (region-of-interest-ROI). Previous research generally views facial images as unity for further processing with feature extraction techniques and recognition. This paper proposes post-processing from face detection (Viola-Jones based) to produce a bag of facial components as a data representation for the next processes which are feature extraction and recognition. The post-processing is done based on the geometric rules of the face and golden ratio to produce more accurate detection. From the experiment, the proposed method achieves 96.88% of accuracy on the development part whilst the accuracy of testing part reaches 92.52% (with precision 95.32% and recall 96.62%).
机译:面部图像是可以处理以产生各种信息/表示的原始数据之一,尤其是对于计算机视觉,模式识别和生物识别而言。此外,身份识别,表情识别和访问者人口统计是可以通过面部图像处理生成的应用程序。为了执行面部图像处理,需要面部检测机制来隔离面部区域(关注区域-ROI)。先前的研究通常将面部图像视为一个整体,以便通过特征提取技术和识别进行进一步处理。本文提出了从面部检测(基于Viola-Jones)进行后处理,以产生一包面部组件作为数据表示的下一过程,这些过程是特征提取和识别。根据面部的几何规则和黄金分割率进行后处理,以产生更准确的检测结果。通过实验,提出的方法在开发部分的准确度达到96.88%,而测试部分的准确度达到92.52%(准确度为95.32%,召回率为96.62%)。

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