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Information extraction from image sequences of real-world facial expressions

机译:从真实面部表情的图像序列中提取信息

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摘要

Information extraction of facial expressions deals with facial-feature detection, feature tracking, and capture of the spatiotemporal relationships among features. It is a fundamental task in facial expression analysis and will ultimately determine the performance of expression recognition. For a real-world facial expression sequence, there are three challenges: (1) detection failure of some or all facial features due to changes in illumination and rapid head movement; (2) non-rigid object tracking resulting from facial expression change; and (3) feature occlusion due to out-of-plane head rotation. In this paper, a new approach is proposed to tackle these challenges. First, we use an active infrared (IR) illumination to reliably detect pupils under variable lighting conditions and head orientations. The pupil positions are then used to guide the entire information-extraction process. The simultaneous use of a global head motion constraint and Kalman filtering can robustly track individual facial features even in condition of rapid head motion and significant expression change. To handle feature occlusion, we propose a warping-based reliability propagation method. The reliable neighbor features and the spatial semantics among these features are used to detect and infer occluded features through an interframe warping transformation. Experimental results show that accurate information extraction can be achieved for video sequences with real-world facial expressions.
机译:面部表情的信息提取涉及面部特征检测,特征跟踪以及特征之间的时空关系捕获。这是面部表情分析中的一项基本任务,并将最终决定表情识别的性能。对于现实世界中的面部表情序列,存在三个挑战:(1)由于光照变化和头部快速移动而导致部分或全部面部特征检测失败; (2)面部表情变化导致的非刚性物体跟踪; (3)由于头部平面外旋转而造成的特征闭塞。本文提出了一种新方法来应对这些挑战。首先,我们使用主动红外(IR)照明在可变的照明条件和头部方向下可靠地检测瞳孔。然后将瞳孔位置用于指导整个信息提取过程。同时使用全局头部运动约束和卡尔曼滤波可以稳健地跟踪单个面部特征,即使在头部快速运动和表情变化显着的情况下也是如此。为了处理特征遮挡,我们提出了一种基于翘曲的可靠性传播方法。可靠的邻居特征和这些特征之间的空间语义用于通过帧间变形变换来检测和推断被遮挡的特征。实验结果表明,对于具有真实世界面部表情的视频序列,可以实现准确的信息提取。

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