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Comparison of Body Shape Descriptors for Biometric Recognition Using MMW Images

机译:使用MMW图像进行生物特征识别的身体形状描述符的比较

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The use of Millimetre wave images has been proposed recently in the biometric field to overcome certain limitations when using images acquired at visible frequencies. In this paper, several body shape-based techniques were applied to model the silhouette of images of people acquired at 94 GHz. We put forward several methods for the parameterization and classification stage with the objective of finding the best configuration in terms of biometric recognition performance. Contour coordinates, shape contexts, Fourier descriptors and silhouette landmarks were used as feature approaches and for classification we utilized Euclidean distance and a dynamic programming method. Results showed that the dynamic programming algorithm improved the performance of the system with respect to the baseline Euclidean distance and the necessity of a minimum resolution of the contour to achieve promising equal error rates. The use of the contour coordinates is the most suitable feature to use in the system regarding the performance and the computational cost involved when having at least 3 images for model training. Besides, Fourier descriptors are more robust against rotations, which may be of interest when dealing with few training images.
机译:近年来,在生物识别领域中已经提出使用毫米波图像,以克服使用以可见频率获取的图像时的某些局限性。在本文中,应用了几种基于人体形状的技术来对以94 GHz频率采集的人的图像轮廓进行建模。我们提出了几种参数化和分类阶段的方法,目的是在生物特征识别性能方面找到最佳配置。等高线坐标,形状上下文,傅立叶描述符和轮廓界标被用作特征方法,对于分类,我们使用了欧氏距离和动态规划方法。结果表明,相对于基线欧几里得距离,动态编程算法提高了系统的性能,并且有必要使用最小轮廓分辨率来实现有希望的相等错误率。关于轮廓坐标的使用是在系统中使用的最合适的功能,涉及到至少有3张图像用于模型训练时涉及的性能和计算成本。此外,傅立叶描述符对于旋转更鲁棒,这在处理少量训练图像时可能会引起关注。

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