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An Enhanced Face Recognition Method for Lighting Problem

机译:一种改进的光照问题人脸识别方法

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One of the most popular tool implemented in face recognition issues is Principal Component Analysis (PCA) which is successfully used in machine learning and data analysis. However, if the images are not regular with some factors that affect the image recognition accuracy such as variation of facial expressions, different poses or lighting problems, this technique may show some deficiencies. In this work, different kinds of methods were implemented by combining different preprocessing techniques to evaluate and compare them under different lighting conditions of images. In order to have the same lighting conditions for every image, the methods were applied to them after PCA processing. As a result, the face recognition accuracy was improved by means of implementing the techniques separately or in combination.
机译:在人脸识别问题中实现的最流行的工具之一是主成分分析(PCA),该方法已成功用于机器学习和数据分析中。但是,如果由于某些影响图像识别精度的因素(例如表情变化,不同的姿势或光线问题)而导致图像不规则,则此技术可能会出现一些缺陷。在这项工作中,通过组合不同的预处理技术来评估和比较它们在不同光照条件下的图像,从而实现了不同类型的方法。为了使每个图像具有相同的照明条件,在PCA处理之后将这些方法应用于它们。结果,通过单独地或组合地实施技术来提高面部识别精度。

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