Textometr: an online tool for automated complexity level assessment of texts for Russian language learners

Q2 Arts and Humanities Russian Language Studies Pub Date : 2021-09-28 DOI:10.22363/2618-8163-2021-19-3-331-345
A. Laposhina, Лапошина Антонина Николаевна, M. Lebedeva, Лебедева Мария Юрьевна
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引用次数: 3

Abstract

Evaluation of text accessibility seems to be an extremely urgent and labor-consuming task in the process of preparing texts for teaching Russian as a foreign language. On the other hand, the procedure of assigning a text to one of the levels on the CEFR scale (from A1 to C2) is well-formalized and described in the professional literature, which opens opportunities for its automation. This paper presents Textometr - a new free web-based tool for estimating CEFR level and other key statistics from any given text in Russian that can be relevant for adapting it for foreign students. The automated assessment of the text level here is based on a regression model, trained on the dataset of more than 800 texts from Russian textbooks for foreigners, applying several machine learning and natural language processing methods. In addition to the CEFR level, the tool provides information relevant for adapting the text to educational tasks: lists of keywords and words for a potential vocabulary list, statistics on the text coverage by frequency lists and CEFR-graded vocabulary lists (lexical minima), a frequency list of the text, a forecast of the time needed for reading. The tool shortages at the current stage of development and suggested ways to solve them are also discussed. Finally, the results of the test on the tool quality and the vectors for its further development are reported. Textometr can provide helpful information not only to teachers and guidance teachers, but to authors of textbooks and publishers to check the compliance of the text content with the declared level and educational goals.
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Textometr:一个在线工具,用于俄语学习者文本的自动复杂程度评估
在对外俄语教学教材的编写过程中,文本可及性评价是一项极其紧迫和费力的工作。另一方面,将文本分配到CEFR等级(从A1到C2)中的一个等级的过程是很好的形式化的,并且在专业文献中有描述,这为其自动化提供了机会。本文介绍了Textometr -一个新的免费的基于网络的工具,用于估计CEFR水平和其他关键统计数据,可以从任何给定的俄语文本中进行相关的调整,以供外国学生使用。这里对文本水平的自动评估基于一个回归模型,该模型在800多篇外国人俄语教科书文本的数据集上进行了训练,应用了几种机器学习和自然语言处理方法。除了CEFR水平外,该工具还提供了使文本适应教育任务的相关信息:用于潜在词汇表的关键词和单词列表,根据频率列表和CEFR分级词汇列表(词汇最小值)统计文本覆盖率,文本的频率列表,阅读所需时间的预测。讨论了当前发展阶段存在的工具不足及解决方法。最后,给出了刀具质量的测试结果和进一步发展的方向。textmeter不仅可以为教师和指导教师提供有用的信息,还可以为教科书的作者和出版商提供有用的信息,以检查文本内容是否符合所宣布的水平和教育目标。
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来源期刊
Russian Language Studies
Russian Language Studies Arts and Humanities-Language and Linguistics
CiteScore
1.00
自引率
0.00%
发文量
27
审稿时长
10 weeks
期刊最新文献
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