法语学生学习土耳其语的语言学习挑战的人工神经网络建模:以法国为例

Erdogan Kartal
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引用次数: 3

摘要

本研究是关于在法国大学学习土耳其语作为外语的学生遇到的语言挑战的人工神经网络建模。这项研究是在四所大学进行的,这些大学将土耳其语作为选修外语教授。66名母语为阿拉伯语或法语的学生组成了学习小组。本研究以整合的单一案例模式为背景,采用混合研究方法,收集和联合解释定性和定量数据组,以更好地了解该研究领域遇到的知识空白。研究数据是通过参与者回答研究者准备的以下开放式问题收集的:你在学习土耳其语时遇到的挑战是什么?采用内容分析法对数据进行分析。结果显示,学生认为语言元素是最具挑战性的,其次是“后缀”、“语法”和“句法”方面。根据这些结果,基于学生的母语和语言挑战,利用MATLAB计算环境软件建立了一个人工神经网络模型,并详细说明了该模型在教学环境中的应用。
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The Artificial Neural Network Modeling of Language Learning Challenges of French-Speaking Students Learning Turkish as a Foreign Language: The Case of France
This study is about artificial neural network modeling of the linguistic challenges encountered by students learning Turkish as a foreign language in universities in France. The study was conducted in four universities where Turkish is taught as an optional foreign language. Sixty-six students whose mother tongues were either Arabic or French constituted the study group. Planned on a background of an integrated single-case pattern, this study was conducted using a mixed research method which involved gathering and joint interpretation of qualitative and quantitative data groups with an objective to better understand the gaps in knowledge encountered in this research field. The research data were collected through participants’ answers to the following open-ended question prepared by the researcher: What are the challenges you encounter when learning Turkish? Data were analyzed using the content analysis method. The results indicated that students find the linguistic elements the most challenging, followed by the aspects of “suffixes,” “grammar” and “syntax.” In line with these results, an artificial neural network model using the MATLAB computing environment software was created based on the students’ mother tongues and linguistic challenges, and the application of this modeling in teaching environments is explained in detail.
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Educational Sciences: Theory and Practice
Educational Sciences: Theory and Practice Social Sciences-Education
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