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Accurate and Robust Eye Center Localization via Fully Convolutional Networks 被引量:7
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作者 Yifan Xia Hui Yu Fei-Yue Wang 《IEEE/CAA Journal of Automatica Sinica》 SCIE EI CSCD 2019年第5期1127-1138,共12页
Eye center localization is one of the most crucial and basic requirements for some human-computer interaction applications such as eye gaze estimation and eye tracking. There is a large body of works on this topic in ... Eye center localization is one of the most crucial and basic requirements for some human-computer interaction applications such as eye gaze estimation and eye tracking. There is a large body of works on this topic in recent years, but the accuracy still needs to be improved due to challenges in appearance such as the high variability of shapes, lighting conditions, viewing angles and possible occlusions. To address these problems and limitations, we propose a novel approach in this paper for the eye center localization with a fully convolutional network(FCN),which is an end-to-end and pixels-to-pixels network and can locate the eye center accurately. The key idea is to apply the FCN from the object semantic segmentation task to the eye center localization task since the problem of eye center localization can be regarded as a special semantic segmentation problem. We adapt contemporary FCN into a shallow structure with a large kernel convolutional block and transfer their performance from semantic segmentation to the eye center localization task by fine-tuning.Extensive experiments show that the proposed method outperforms the state-of-the-art methods in both accuracy and reliability of eye center localization. The proposed method has achieved a large performance improvement on the most challenging database and it thus provides a promising solution to some challenging applications. 展开更多
关键词 DEEP learning eye CENTER LOCALIZATION eye gaze estimation eye TRACKING fully convolutional network (FCN) humancomputer interaction
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基于类注意力的眼睛凝视估计网络
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作者 徐金龙 董明瑞 +2 位作者 李颖颖 刘艳青 韩林 《计算机科学》 CSCD 北大核心 2024年第10期295-301,共7页
近年来,眼睛凝视估计引起广泛关注。基于RGB外观的凝视估计方法使用普通摄像机和深度学习来进行凝视估计,避免了像商用眼动仪一样使用昂贵的红外设备,为更准确和成本更低的眼睛凝视估计提供了可能。然而,RGB外观图像中包含如光照强度、... 近年来,眼睛凝视估计引起广泛关注。基于RGB外观的凝视估计方法使用普通摄像机和深度学习来进行凝视估计,避免了像商用眼动仪一样使用昂贵的红外设备,为更准确和成本更低的眼睛凝视估计提供了可能。然而,RGB外观图像中包含如光照强度、肤色等多种与凝视无关的特征,这些无关特征会在深度学习回归的过程中产生干扰,进而影响凝视估计的精度。针对以上问题,提出了一种名为类注意力网络(CA-Net)的新架构,它包含通道、尺度、眼睛3种不同的类注意力模块,通过这些类注意力模块可以提取和融合不同种类的注意力编码,从而降低与凝视无关特征所占的权重。在GazeCapture数据集上的大量实验表明,在基于RGB外观的凝视估计方法中,相比现有的最先进方法,CA-Net在手机和平板上分别能够提高约0.6%和7.4%的凝视估计精度。 展开更多
关键词 类注意力 轻压缩激励 自注意力 多尺度 眼睛凝视估计
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基于眼角精确定位的视线估计 被引量:2
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作者 孙艳蕊 田书贞 《东北大学学报(自然科学版)》 EI CAS CSCD 北大核心 2014年第6期780-784,共5页
设计了一个单摄像机、单红外光源的视线估计系统.利用了眼角的位置信息,提出了利用USM锐化粗定位和Gabor眼角滤波器精确定位的两步定位眼角的方法;针对传统的利用瞳孔普尔钦斑点向量进行多项式拟合在头部运动时估计精度下降的问题,提出... 设计了一个单摄像机、单红外光源的视线估计系统.利用了眼角的位置信息,提出了利用USM锐化粗定位和Gabor眼角滤波器精确定位的两步定位眼角的方法;针对传统的利用瞳孔普尔钦斑点向量进行多项式拟合在头部运动时估计精度下降的问题,提出了利用内眼角间距对普尔钦斑点向量进行矫正,并采用支持向量回归建立眼部特征参数与多项式拟合误差之间的关系,进行误差补偿;结合精确定位的眼角位置,建立了二维眼部特征与屏幕坐标之间的映射关系.实验表明,该方法实现了一定范围内头部自由运动下精确的视线估计. 展开更多
关键词 眼角检测 视线估计 多项式拟合 支持向量回归
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