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Multiple feature fusion for unimodal emotion recognition 被引量:1
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作者 Yang Lingzhi Ban Xiaojuan +1 位作者 Michele Mukeshimana Chen Zhe 《The Journal of China Universities of Posts and Telecommunications》 EI CSCD 2019年第2期17-29,共13页
A new semi-serial fusion method of multiple feature based on learning using privileged information(LUPI) model was put forward.The exploitation of LUPI paradigm permits the improvement of the learning accuracy and its... A new semi-serial fusion method of multiple feature based on learning using privileged information(LUPI) model was put forward.The exploitation of LUPI paradigm permits the improvement of the learning accuracy and its stability,by additional information and computations using optimization methods.The execution time is also reduced,by sparsity and dimension of testing feature.The essence of improvements obtained using multiple features types for the emotion recognition(speech expression recognition),is particularly applicable when there is only one modality but still need to improve the recognition.The results show that the LUPI in unimodal case is effective when the size of the feature is considerable.In comparison to other methods using one type of features or combining them in a concatenated way,this new method outperforms others in recognition accuracy,execution reduction,and stability. 展开更多
关键词 MULTIPLE FEATURE LUPI EMOTION recognition semi-serial fusion method
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