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Person detection in hyperspectral images via skin segmentation using an active learning approach

机译:使用主动学习方法通​​过皮肤分割在高光谱图像中进行人检测

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摘要

Human skin detection is a computer vision problem that has been widely researched in color images. In this article we deal with this task as an interactive segmentation problem in hyperspectral outdoor images. We have focused on the problem of skin identification in hyperspectral cameras allowing a fine sampling of the light spectrum, so that the information gathered at each pixel is a high dimensional vector. The problem is treated as a classification problem, where we make use of active learning strategies to provide an interactive robust solution reaching high accuracy in a short training/testing cycle.
机译:人体皮肤检测是计算机视觉问题,已经在彩色图像中进行了广泛研究。在本文中,我们将此任务作为高光谱室外图像中的交互式分割问题进行处理。我们已经关注了高光谱相机中的皮肤识别问题,该问题允许对光谱进行精细采样,因此在每个像素处收集的信息都是高维向量。该问题被视为分类问题,在该问题中,我们利用主动学习策略来提供交互式的健壮解决方案,从而在较短的培训/测试周期内达到高精度。

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