跨文化视角下高校英语翻译教学评价体系的构建

IF 3.1 Q1 Mathematics Applied Mathematics and Nonlinear Sciences Pub Date : 2024-01-01 DOI:10.2478/amns-2024-0653
Tong He
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引用次数: 0

摘要

跨文化视角下高校英语翻译教学评价体系的构建,提高翻译教学质量。重点是整合 LMBP 神经网络算法和量化判断指标,为英语翻译教学提供充分的评价模型。研究采用基于 LMBP 的神经网络算法,结合 "AHP+DEA "和 "熵赋值法+欧氏距离法 "等定量处理方法,对教学评价指标进行了系统构建和实证分析。研究发现,教学建设、应用和效果是评价的核心指标。在教学建设方面,课堂内容完整性(相关系数 0.428)和学习资源完整性(相关系数 0.439)是关键因素。教学应用分析表明,混合式教学与学生成绩呈正相关(r=0.569)。效果分析表明,学生讨论和课堂表现与教学评价呈显著正相关(P<0.005)。这些结果证明了所构建的评价体系的有效性和实用性。
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Construction of Evaluation System for English Translation Teaching in Colleges and Universities under Cross-cultural Perspective
The construction of the evaluation system of English translation teaching in colleges and universities under the cross-cultural perspective to improve the quality of translation education. The focus is on integrating the LMBP neural network algorithm and quantitative judgment indexes to provide an adequate evaluation model for English translation teaching. The study adopts the neural network algorithm based on LMBP, combined with the quantitative processing methods of “AHP+DEA” and “Entropy Assignment Method+Euclidean Distance Method”, to systematically construct and empirically analyze the evaluation indexes of teaching. It is found that teaching construction, application and effect are the core indicators of evaluation. Regarding teaching construction, classroom content integrity (correlation coefficient 0.428) and learning resources integrity (correlation coefficient 0.439) are the key factors. Teaching application analysis showed that hybrid teaching positively correlated with student achievement (r=0.569). Conducting effectiveness analysis showed that student discussion and in-class performance were significantly and positively correlated with teaching evaluation (p<0.005). These results prove the effectiveness and usefulness of the constructed evaluation system.
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来源期刊
Applied Mathematics and Nonlinear Sciences
Applied Mathematics and Nonlinear Sciences Engineering-Engineering (miscellaneous)
CiteScore
2.90
自引率
25.80%
发文量
203
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