認知科学
Online ISSN : 1881-5995
Print ISSN : 1341-7924
ISSN-L : 1341-7924
特集 創造性研究の最新地図
拡散的思考課題の自動採点に関するシステマティックレビュー
石黒 千晶山川 真由櫃割 仁平
著者情報
ジャーナル フリー HTML

2025 年 32 巻 1 号 p. 26-40

詳細
Translated Abstract

Recently, researchers have proposed a more valid process for performing and scoring divergent thinking (DT) tasks and new approaches to automatically score DT tasks using natural language processing and machine learning. Despite the recent proposals for this approach, its usefulness has been gaining attention. However, few comprehensive reviews have been conducted on the measurement advances in DT tasks in Japan. Therefore, this study summarizes issues related to scoring validity from the implementation of DT tasks and then conducts a systematic review focusing on the automated scoring approach for DT tasks. The current study examined (1) the types of participants, (2) the types of DT tasks, and (3) the types of automated scoring methods used for DT tasks. The results indicated that the automated scoring of DT tasks was conducted primarily on English responses to the language versions of alternative-use tasks, primarily for college students and adults in general. The most common automated scoring method is semantic distance based-scoring. However, scoring methods using supervised learning and large-scale language models have been proposed recently. Future research should examine the feasibility of using automated scoring methods by scoring DT tasks with more diverse participant populations and responses from speakers of more varied languages.

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