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Automatic Children Speech Sound Disorder Detection with Age and Speaker Bias Mitigation
- Kim, Gahye;
- Eom, Yunjung;
- Sung, Selina S.;
- Ha, Seunghee;
- Yoon, Tae-Jin;
- ... So, Jungmin
WEB OF SCIENCE
4SCOPUS
3초록
Addressing speech sound disorders (SSD) in early childhood is pivotal for mitigating cognitive and communicative impediments. Previous works on automatic SSD detection rely on audio features without considering the age and speaker bias which results in degraded performance. In this paper, we propose an SSD detection system in which debiasing techniques are applied to mitigate the biases. For the age bias, we use a multi-head model where the feature extractor is shared across different age groups but the final decision is made using the age-dependent classifier. For the speaker bias, we augment the dataset by mixing the audios of the multiple speakers in the same age group. When evaluated with our Korean SSD dataset, the proposed method showed significant improvements over previous approaches.
키워드
- 제목
- Automatic Children Speech Sound Disorder Detection with Age and Speaker Bias Mitigation
- 저자
- Kim, Gahye; Eom, Yunjung; Sung, Selina S.; Ha, Seunghee; Yoon, Tae-Jin; So, Jungmin
- 발행일
- 2024
- 유형
- Proceedings Paper
- 저널명
- Proceedings of the Annual Conference of the International Speech Communication Association, INTERSPEECH
- 페이지
- 1420 ~ 1424