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Titel:

Self Supervised Adversarial Domain Adaptation for Cross-Corpus and Cross-Language Speech Emotion Recognition

Dokumenttyp:
Article
Autor(en):
Latif, Siddique; Rana, Rajib; Khalifa, Sara; Jurdak, Raja; Schuller, Bjorn
Abstract:
Despite the recent advancement in speech emotion recognition (SER) within a single corpus setting, the performance of these SER systems degrades significantly for cross-corpus and cross-language scenarios. The key reason is the lack of generalisation in SER systems towards unseen conditions, which causes them to perform poorly in cross-corpus and cross-language settings. Recent studies focus on utilising adversarial methods to learn domain generalised representation for improving cross-corpus an...     »
Zeitschriftentitel:
IEEE Trans Affect Comput
Jahr:
2023
Band / Volume:
14
Heft / Issue:
3
Seitenangaben Beitrag:
1912-1926
Volltext / DOI:
doi:10.1109/TAFFC.2022.3167013
Print-ISSN:
1949-3045
TUM Einrichtung:
Lehrstuhl für Health Informatics (Prof. Schuller)
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