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An Automated Video-Based System for Iris Recognition

机译:基于视频的自动虹膜识别系统

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We have successfully implemented a Video-based Automated System for Iris Recognition (VASIR), evaluating its successful performance on the MBGC dataset. The proposed method facilitates the ultimate goal of automatically detecting an eye area, extracting eye images, and selecting the best quality iris image from video frames. The selection method's performance is evaluated by comparing it to the selection performed by humans. Masek's algorithm was adapted to segment and normalize the iris region. Encoding the iris pattern and then completing the matching followed this stage. The iris templates from video images were compared to pre-existing still iris images for the purpose of the verification. This experiment has shown that even under varying illumination conditions, low quality, and off-angle video imagery, that iris recognition is feasible. Furthermore, our study showed that in practice an automated best image selection is nearly equivalent to human selection.
机译:我们已经成功实施了基于视频的虹膜识别自动系统(VASIR),并评估了它在MBGC数据集上的成功表现。所提出的方法实现了自动检测眼睛区域,提取眼睛图像以及从视频帧中选择最佳质量虹膜图像的最终目标。通过将选择方法的性能与人工选择的性能进行比较,可以评估该方法的性能。 Masek的算法适用于分割和标准化虹膜区域。在此阶段之后,对虹膜图案进行编码,然后完成匹配。为了验证,将来自视频图像的虹膜模板与预先存在的静止虹膜图像进行了比较。该实验表明,即使在变化的照明条件,低质量和偏角视频图像下,虹膜识别也是可行的。此外,我们的研究表明,实际上最佳的自动图像选择几乎等同于人工选择。

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