通过TF-IDF向儿童传递地震减灾知识

Elkawnie Pub Date : 2020-12-30 DOI:10.22373/ekw.v6i2.7281
Maria Umran, H. M. Sarim
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引用次数: 4

摘要

摘要:过去在灾害期间的观察发现,当儿童与父母分离时,他们会因为无法理解减灾概念而受苦。本研究提出了一种基于k -最近邻(KNN)和Term Frequency - Inverse Document Frequency (TF-IDF)框架的过程,用于将大量文档形式的知识提取为简单的单词。这些简单的单词可以利用人工智能歌词生成器排列成上下文歌词,然后使用音乐生成器编曲成歌曲。这件作品是拟议过程的产出,用于向儿童传授有关地震减灾的知识。对班达亚齐省9-10岁学生问卷的定量分析显示,这首歌在向儿童传递地震减灾知识方面具有非常显著的效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Knowledge Transfer About Earthquake Disaster Mitigation To Children Through TF-IDF
Abstract: Past observations during a disaster identify that when children are separated from parents, they suffer due to the inability to comprehend disaster mitigation concepts. This study proposes a process from the existing framework K-Nearest Neighbor (KNN) and Term Frequency - Inverse Document Frequency (TF-IDF) for extracting a large body of knowledge in the form of documents into simple words. Those simple words can be arranged into contextual lyrics utilizing an Artificial Intelligence lyrics generator and then orchestrated into a song using a music generator. The piece, which is the output of the proposed process, is utilized to transfer the knowledge about earthquake disaster mitigation to children. A quantitative analysis of questionnaires on students aged 9-10 in Banda Aceh shows the song's highly significant effect in transferring the knowledge about earthquake disaster mitigation to children.
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