基于改进HOG和稀疏表示的秦岭鼻古猿人脸识别

Cuan Ying, Shi Yaojie
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引用次数: 2

摘要

结合对金丝猴人脸识别的研究,本文提出了一些改进传统HOG和稀疏表示的方法,以提高识别金丝猴的效率。我们知道,改进的HOG是显示图像部分信息的最佳方式。此外,它还可以在光学和几何畸变中发挥至关重要的稳定作用,这意味着金丝猴的表情,姿势和角度的变化也可以忽略不计。利用这些特征作为原始图像的替代,作为稀疏字典的一部分,对金丝猴进行稀疏表示的人脸识别,是一种理想的方法,可以消除许多不必要的信息,提高金丝猴人脸识别的准确性。与主流识别方法相比,该方法更可靠、有效,具有更高的识别效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Face Recognition of the Rhinopithecus Roxellana Qinlingensis Based on Improved HOG and Sparse Representation
With the researches on face recognition of Rhinopithecusroxellanaqinlingensis, this thesis comes up with some methods that refining traditional HOG and Sparse Representation in order to improve the efficiency in recognizing golden monkeys. As we know, improved HOG is an optimal way to show partial information of an image. Besides, it can also plays an crucial role in staying stability in both optical and geometric distortion, which means the changes in expressions, postures and angles of golden monkeys can also be ignored. By using these characteristics as a alternation of original images to be a part of Sparse dictionary, and make a facial recognition on golden monkey with Sparse Representation, which can be a ideal method to erase many unnecessary messages and improve the accuracy on facial recognition of golden monkeys. Compared with mainstream method in recognition, this method is more reliable and effective and has a higher efficiency in recognition.
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