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children storybooks

Children storybooks are books written and designed for young audiences that present narrative fiction, such as fairy tales, fables, and imaginative tales, typically accompanied by visual illustrations. These works use accessible language, clear plot structures, and relatable characters to engage developing readers and listeners. Beyond providing entertainment, children storybooks play a vital role in early education and language acquisition by fostering literacy skills, reading comprehension, vocabulary growth, and cognitive development.

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Educational Question Generation of Children Storybooks via Question Type Distribution Learning and Event-centric Summarization

Educational Question Generation of Children Storybooks via Question Type Distribution Learning and Event-centric Summarization

Zhenjie Zhao, Yufang Hou, Dakuo Wang, Mo Yu, Chengzhong Liu, Xiaojuan Ma

OrganizationsIBMNanjing University of Information Science and TechnologyNankai UniversityTencentThe Hong Kong University of Science and Technology

Why you should read this

Proposes a framework that pairs question type distribution learning with event-centric summarization to automatically generate high-cognitive-demand educational questions from children's storybooks.

Generating educational questions of fairytales or storybooks is vital for improving children’s literacy ability. However, it is challenging to generate questions that capture the interesting aspects of a fairytale story with educational meaningfulness. In this paper, we propose a novel question generation method that first learns the question type distribution of an input story paragraph, and then summarizes salient events which can be used to generate high-cognitive-demand questions. To train the event-centric summarizer, we fine-tune a pre-trained transformer-based sequence-to-sequence model using silver samples composed by educational question-answer pairs. On a newly proposed educational question-answering dataset FairytaleQA, we show good performance of our method on both automatic and human evaluation metrics. Our work indicates the necessity of decomposing question type distribution learning and event-centric summary generation for educational question generation.

Added

2026-10-03