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Facial expression analysis is essential to enable socially intelligent processing of multimedia video content. Most facial expression recognition algorithms generally analyze the whole image sequence of an expression to exploit its temporal characteristics. However, it is seldom studied whether it is necessary to utilize all the frames of a sequence, since human beings are able to capture the dynamics...
Large amount of labeled training data is required to develop robust and effective facial expression analysis methods. However, obtaining such data is typically a tedious and time-consuming task that is proportional to the size of the database. Due to the rapid advance of Internet and Web technologies, it is now feasible to collect a tremendous number of images with potential label information at a...
Automatic video annotation has been proposed to bridge the semantic gap introduced by content based retrieval so as to facilitate concept based video retrieval. Recently, utilizing context information has emerged as an important direction in automatic visual information annotation. %Most of existing approaches aim to assign linguistic terms to visual information without considering its given context...
Exploring semantic similarity between concepts in visual domain has a wide range of applications such as natural language processing and multimedia retrieval, which in general requires both a large pool of sample images for each concept and a model to capture its visual characteristics. Instead of relying on high quality and large quantity sample data which is very difficult to obtain, in this paper,...
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