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- W3204659206 abstract "Speech is one of the most studied modalities of emotion recognition. Most studies use one or more labeled data sets that contain multiple emotions to extract and select speech features to be trained by machine learning algorithms. Instead of this multi-class approach, our study focuses on selecting features that most distinguish an emotion from others. This requires a one-against-all (OAA) binary classification approach. The features that are extracted and selected for the multi-class case is compared to features extracted for seven one-against-all cases using a standard backpropagation feedforward neural network (BFNN). The results while OAA distinguishes some of the emotions better than the multi-class BFNN configurations, this is not true for all cases. However, when multi-class BFNN is tested with all emotions, the error rate is as high as 16.48." @default.
- W3204659206 created "2021-10-11" @default.
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- W3204659206 date "2021-08-25" @default.
- W3204659206 modified "2023-10-16" @default.
- W3204659206 title "Selecting Emotion Specific Speech Features to Distinguish One Emotion from Others" @default.
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- W3204659206 doi "https://doi.org/10.1109/inista52262.2021.9548533" @default.
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