基于人体形状的毫米波图像生物识别

E. González-Sosa, R. Vera-Rodríguez, Julian Fierrez, J. Ortega-Garcia
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引用次数: 8

摘要

最近在生物识别领域提出了毫米波图像的使用,旨在克服使用可见频率图像时的某些局限性。本文将几种基于人体形状的技术应用于94ghz采集的人体图像的轮廓建模。提出了三种主要方法:基于欧几里得距离的基线系统、动态规划方法和使用形状上下文描述符的过程。结果表明,动态时间规整算法在系统性能(约1.3% EER)和计算成本方面取得了最佳效果。本文的结果也与以往基于人体轮廓几个关键点之间的几何度量提取的工作进行了比较。在这里报告的工作中,平均相对改善了33%的EER。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Body shape-based biometric recognition using millimeter wave images
The use of MMW images has been proposed recently in the biometric field aiming to overcome certain limitations when using images acquired at visible frequencies. In this paper, several body shape-based techniques are applied to model the silhouette of images of people acquired at 94 GHz. Three main approaches are presented: a baseline system based on the Euclidean distance, a dynamic programming method and a procedure using Shape Contexts descriptors. Results show that the dynamic time warping algorithm achieves the best results regarding the system performance (around 1.3% EER) and the computation cost. Results achieved here are also compared to previous works based on the extraction of geometric measures between several key points of the body contour. An average relative improvement of 33% EER is achieved for the work reported here.
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