論文 ·日本語 ·未確認

Predicting Depression for Japanese Blog Text

Misato Hiraga

刊行年
2017-01-01
言語
英語
openalex
W2740304191
doi
10.18653/v1/p17-3018
mag
2740304191
URL
https://www.aclweb.org/anthology/P17-3018.pdf

要旨

This study aims to predict clinical depression, a prevalent mental disorder, from blog posts written in Japanese by using machine learning approaches. The study focuses on how data quality and various types of linguistic features (characters, tokens, and lemmas) affect prediction outcome. Depression prediction achieved 95.5% accuracy using selected lemmas as features.

主題

この書誌の出所

  • openalex— W2740304191(2026-08-13取得)

引用キー: Hiraga2017PredictingDepressionJapanese

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