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Head direction estimation from low resolution images with scene adaptation

机译:具有场景自适应功能的低分辨率图像的头部方向估计

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摘要

This paper presents an appearance-based method for estimating head direction that automatically adapts to individual scenes. Appearance-based estimation methods usually require a ground-truth dataset taken from a scene that is similar to test video sequences. However, it is almost impossible to acquire many manually labeled head images for each scene. We introduce an approach that automatically aggregates labeled head images by inferring head direction labels from walking direction. Furthermore, in order to deal with large variations that occur in head appearance even within the same scene, we introduce an approach that segments a scene into multiple regions according to the similarity of head appearances. Experimental results demonstrate that our proposed method achieved higher accuracy in head direction estimation than conventional approaches that use a scene-independent generic dataset.
机译:本文提出了一种基于外观的方法来估计头部方向,该方法可以自动适应各个场景。基于外观的估计方法通常需要从与测试视频序列相似的场景中获取的真实数据集。但是,几乎不可能为每个场景获取许多手动标记的头部图像。我们引入一种方法,该方法通过从行走方向推断头部方向标签来自动聚合已标记的头部图像。此外,为了处理即使在同一场景中头部外观也会发生较大变化,我们引入了一种根据头部外观的相似性将场景划分为多个区域的方法。实验结果表明,与使用独立于场景的通用数据集的传统方法相比,我们提出的方法在头部方向估计中具有更高的准确性。

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