基于注视跟踪和视频内容分析的视频观看者状态估计

Jae-Woo Kim, Jong-Ok Kim
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引用次数: 1

摘要

本文提出了一种基于注视跟踪和视频内容分析的观看者状态模型。本文有两个主要贡献。我们首先结合视频内容分析,显著提高了注视状态分类。然后,基于估计的注视状态,我们提出了一种新的观看者状态模型,该模型同时显示了观看者的兴趣和是否存在观看者的roi。实验验证了所提出的凝视状态分类器和观看者状态模型的性能。实验结果表明,在注视状态分类中使用视频内容分析大大提高了分类结果,从而使观看者状态模型能够正确地估计视频观看者的兴趣状态。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Video viewer state estimation using gaze tracking and video content analysis
In this paper, we propose a novel viewer state model based on gaze tracking and video content analysis. There are two primary contributions in this paper. We first improve gaze state classification significantly by combining video content analysis. Then, based on the estimated gaze state, we propose a novel viewer state model indicating both viewer's interest and existence of viewer's ROIs. Experiments were conducted to verify the performance of the proposed gaze state classifier and viewer state model. The experimental results show that the use of video content analysis in gaze state classification considerably improves the classification results and consequently, the viewer state model correctly estimates the interest state of video viewers.
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