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Visible-light and near-infrared face recognition at a distance

机译:远距离可见光和近红外人脸识别

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摘要

A method to solve the problem of face recognition at a distance (FRAD) under the visible-light (VIS) and the near-infrared (NIR) spectra is presented in this work. For images taken under visible light at day time, we perform the coarse-scale alignment/enhancement to eliminate a set of unlikely candidates at the first stage. Then, the fine-scale alignment/enhancement steps are conducted to refine the candidate list furthermore iteratively at the second stage. To address the additional challenge associated with NIR images captured at night time, we incorporate a restoration mechanism that reconstructs low-quality patches through a locally linear embedding (LLE) process with a local constraint. It is shown by experimental results that our FRAD solution outperforms state-of-the-art methods on both VIS and NIR images. (C) 2016 Elsevier Inc. All rights reserved.
机译:本文提出了一种解决可见光(VIS)和近红外(NIR)光谱下的人脸识别问题(FRAD)的方法。对于白天在可见光下拍摄的图像,我们在第一阶段执行粗略对齐/增强以消除一组不太可能的候选对象。然后,在第二阶段,进行精细尺度的对准/增强步骤以进一步迭代地精炼候选列表。为了解决与夜间捕获的NIR图像相关的其他挑战,我们采用了一种恢复机制,该机制可以通过具有局部约束的局部线性嵌入(LLE)过程来重建低质量补丁。实验结果表明,我们的FRAD解决方案在VIS和NIR图像上均优于最新方法。 (C)2016 Elsevier Inc.保留所有权利。

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