面部表情识别的局部分割与全局分割

J. Whitehill, C. Omlin
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引用次数: 9

摘要

我们研究了一个悬而未决的问题,即通过对眼睛、眉毛和嘴巴周围的局部区域进行分类,与分析整个面部相比,是否可以更准确地识别FACS动作单元(AUs)。我们的实证结果表明,与我们的直觉相反,局部表达分析在识别精度上没有一致的提高。此外,在眼睛和眉毛区域的某些au上,全局分析优于局部分析。我们将这一意想不到的结果部分归因于Cohn-Kanade表达数据库中不同au之间的高度相关性。这强调了建立一个大型的、公开可用的、包含单个发生的AU的AU数据库的重要性,以促进未来的研究
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Local versus global segmentation for facial expression recognition
We examined the open issue of whether FACS action units (AUs) can be recognized more accurately by classifying local regions around the eyes, brows, and mouth compared to analyzing the face as a whole. Our empirical results showed that, contrary to our intuition, local expression analysis showed no consistent improvement in recognition accuracy. Moreover, global analysis outperformed local analysis on certain AUs of the eye and brow regions. We attributed this unexpected result partly to high correlations between different AUs in the Cohn-Kanade expression database. This underlines the importance of establishing a large, publicly available AU database with singly-occurring AUs to facilitate future research
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