抄録
Depression is a prevalent mental ailment that causes many diseases all over the world. Identification of people with mental illness faces a challenge, as there is no difference between mentally ill people and normal people in physiology, and clinicians can only make a subjective diagnosis according to the relevant information of patients. Hence, it has become imperative to develop automated methods for audiovisual depression prediction. Although many studies have been conducted in the field, there still remains a challenge. Long-term temporal context information is difficult to extract from long sequences of aural and visual data. This study aimed to construct a novel transformer-based multimodal network to distinguish depressed patients from normal people. We evaluate our approach on the Chinese Soochow University depressive severity dataset and demonstrate that our method outperforms the existing method.
| 本文言語 | 英語 |
|---|---|
| ホスト出版物のタイトル | GCCE 2022 - 2022 IEEE 11th Global Conference on Consumer Electronics |
| 出版社 | Institute of Electrical and Electronics Engineers Inc. |
| ページ | 761-764 |
| ページ数 | 4 |
| ISBN(電子版) | 9781665492324 |
| DOI | |
| 出版ステータス | 出版済み - 2022 |
| イベント | 11th IEEE Global Conference on Consumer Electronics, GCCE 2022 - Osaka, 日本 継続期間: 18-10-2022 → 21-10-2022 |
出版物シリーズ
| 名前 | GCCE 2022 - 2022 IEEE 11th Global Conference on Consumer Electronics |
|---|
会議
| 会議 | 11th IEEE Global Conference on Consumer Electronics, GCCE 2022 |
|---|---|
| 国/地域 | 日本 |
| City | Osaka |
| Period | 18-10-22 → 21-10-22 |
UN SDG
この成果は、次の持続可能な開発目標に貢献しています
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SDG 3 すべての人に健康と福祉を
All Science Journal Classification (ASJC) codes
- 信号処理
- 情報システムおよび情報管理
- 電子工学および電気工学
- メディア記述
- 器械工学
- 社会心理学
フィンガープリント
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