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Estimation of image quality factors for face recognition.

机译:估计人脸识别的图像质量因子。

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Over the past few years, verification and identification of humans using biometric has gained attention of researchers and of the public in general. Face recognition systems are used by the public and the government and are applied in different facets of life including security, identification of criminals and identification of terrorists. Because of the importance of these applications, it is of great necessity that face recognition systems be as accurate as possible. Some research has shown that image quality degrades the performance of face recognition systems. Most previous research has focused on designing algorithms for face recognition that deal or compensate a single effect such as blur, lighting conditions, pose, and emotions. In this thesis we identify a number of factors influencing recognition performance and conduct an extensive study of the effects of image quality factors on recognition performance and discuss methods to estimate this quality factors.
机译:在过去的几年中,使用生物识别技术对人类进行验证和识别已引起研究人员和整个公众的关注。面部识别系统已被公众和政府使用,并应用于生活的各个方面,包括安全,罪犯的身份识别和恐怖分子的身份识别。由于这些应用的重要性,因此非常需要人脸识别系统尽可能地准确。一些研究表明,图像质量会降低人脸识别系统的性能。先前的大多数研究都集中在设计用于面部识别的算法,该算法可以处理或补偿诸如模糊,光照条件,姿势和情感之类的单个效果。在本文中,我们确定了许多影响识别性能的因素,并对图像质量因素对识别性能的影响进行了广泛的研究,并讨论了估计该质量因素的方法。

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