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别笑,这不是笑话
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作者 高金国 《青年记者》 2010年第24期85-85,共1页
想了左面,再想想右面:看了正面,再看看反面。话别说得太满,别盲信专家。
关键词 《别笑 这不是活》 随笔 杂文 高金国
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别笑!我是高考零分作文
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《计算机应用文摘》 2012年第18期89-89,共1页
放榜了放榜了!今天我们来放个历年高考零分作文“光荣榜”!仅供吐槽!真假自辨!
关键词 幽默 文学作品 现代文学 《别笑!我是高考零分作文》
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别笑我
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《快乐语文(下半月)》 2009年第7期82-82,共1页
山下有颗葡萄树, 葡萄藤儿弯又粗。 蜗牛背着小房屋, 它说来爬葡萄树。 白天爬到月亮升, 夜晚爬到太阳出。
关键词 《别笑我》 小学 语文教学 诗歌 作文
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Spontaneous versus posed smile recognition via region-specific texture descriptor and geometric facial dynamics 被引量:1
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作者 Ping-ping WU Hong LIU +1 位作者 Xue-wu ZHANG Yuan GAO 《Frontiers of Information Technology & Electronic Engineering》 SCIE EI CSCD 2017年第7期955-967,共13页
As a typical biometric cue with great diversities, smile is a fairly influential signal in social interaction, which reveals the emotional feeling and inner state of a person. Spontaneous and posed smiles initiated by... As a typical biometric cue with great diversities, smile is a fairly influential signal in social interaction, which reveals the emotional feeling and inner state of a person. Spontaneous and posed smiles initiated by different brain systems have differences in both morphology and dynamics. Distinguishing the two types of smiles remains challenging as discriminative subtle changes need to be captured, which are also uneasily observed by human eyes. Most previous related works about spontaneous versus posed smile recognition concentrate on extracting geometric features while appearance features are not fully used, leading to the loss of texture information. In this paper, we propose a region-specific texture descriptor to represent local pattern changes of different facial regions and compensate for limitations of geometric features. The temporal phase of each facial region is divided by calculating the intensity of the corresponding facial region rather than the intensity of only the mouth region. A mid-level fusion strategy of support vector machine is employed to combine the two feature types. Experimental results show that both our proposed appearance representation and its combination with geometry-based facial dynamics achieve favorable performances on four baseline databases: BBC, SPOS, MMI, and UvA-NEMO. 展开更多
关键词 Facial landmark localization Geometric feature Appearance feature Smile recognition
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