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In this paper, we propose a novel affective video classification method based on facial expression recognition by learning the spatio-temporal feature fusion of actors' and viewers' facial expressions. For spatial features, we integrate Haar-like features into compositional ones according to the features' correlation, and train a mid classifier during the period. Then this process is embedded into...
This paper designs a novel hiding strategy based on an equivalence relation, which can remarkably enhance the quality of stego image without sacrificing the security and capacity of original steganography schemes. According to a constructed equivalence relation based on the capacity of hiding units, all hiding units can be partitioned into equivalence classes. Following that, the hiding procedure...
The goal of steganography is to hide information into media without disclosing the fact of existing communication. Currently, stganography such as least significant bit (LSB), quantization index modulation (QIM) and spread spectrum (SS), has become increasingly widespread. Steganalysis as a counterpart of stganography is to detect the presence of it. In this paper, we present a new universal steganalysis...
This paper presents a subspace SVM ensemble algorithm for adaptive relevance feedback (RF) learning. Our method deals with the case that userpsilas relevance feedback examples are usually insufficient and overlapped together in feature space, which decreases the learning effectiveness of RF classifiers. To enhance classification efficiency in such case, multiple SVMs are learned by clustering-based...
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