Enhancements in Immediate Speech Emotion Detection: Harnessing Prosodic and Spectral Characteristics

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Abstract

Speech is essential to human communication for expressing and understanding feelings. Emotional speech processing has challenges with expert data sampling, dataset organization, and computational complexity in large-scale analysis. This study aims to reduce data redundancy and high dimensionality by introducing a new speech emotion recognition system. The system employs Diffusion Map to reduce dimensionality and includes Decision Trees and K-Nearest Neighbors(KNN)ensemble classifiers. These strategies are suggested to increase voice emotion recognition accuracy. Speech emotion recognition is gaining popularity in affective computing for usage in medical, industry, and academics. This project aims to provide an…

Citation impact

1,663
total citations
FWCI
742.87
Percentile
100%
References
34
Citations per year

Authors

3

Topics & keywords

Keywords
  • Speech recognition
  • Computer science
  • Emotion detection
  • Psychology
  • Emotion recognition
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