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High-order information for robust iris recognition under less controlled conditions

机译:高阶信息可在较少控制的条件下实现可靠​​的虹膜识别

摘要

Iris recognition has achieved great progress in cooperative environments in the past decades. However, in less controlled conditions it is still an open and challenging problem because of severe noisy factors induced by non-cooperative subjects. For handling this challenging problem, we propose a method called ordinal measure of outer product tensor (O2PT) which leverages the high-order information of image features. O2PT consists of two components. First we compute outer product tensors of raw features (e.g. SIFT) which are vectorized and locally aggregated, characterizing the second-order statistics of raw features. And then we compute the ordinal measure of the aggregated outer product tensors to model the order relation of iris texture, which makes the representation more compact and robust to noise and illumination changes. Furthermore, we combine two modalities to improve the matching performance, namely, O2PT for iris image matching and Fisher Vector (FV), which also exploits the high-order information, for eye image matching. We have achieved competitive matching performance on the challenging UBIRIS.v2 and CASIA-Iris-Thousand databases.
机译:在过去的几十年中,虹膜识别在合作环境中取得了巨大的进步。但是,在不受控制的条件下,由于非合作对象引起的严重噪声因素,这仍然是一个开放且具有挑战性的问题。为了解决这个具有挑战性的问题,我们提出了一种称为外部乘积张量序数测量(O2PT)的方法,该方法利用了图像特征的高阶信息。 O2PT由两个组件组成。首先,我们计算原始特征(例如SIFT)的外积张量,这些向量经过矢量化和局部聚合,以表征原始特征的二阶统计量。然后,我们计算聚集的外部乘积张量的有序度量,以建模虹膜纹理的顺序关系,这使得该表示对于噪声和光照变化更加紧凑和稳健。此外,我们结合了两种模式来提高匹配性能,分别是用于虹膜图像匹配的O2PT和也利用高阶信息进行眼睛图像匹配的Fisher向量(FV)。我们已经在具有挑战性的UBIRIS.v2和CASIA-Iris-Thousand数据库上实现了具有竞争力的匹配性能。

著录项

  • 作者

    Yang G; Zeng H; Li P; Zhang L;

  • 作者单位
  • 年度 2015
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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