A Study of English Informative Teaching Strategies Based on Deep Learning

The rapid development of artificial intelligence brings new development opportunities and challenges to English teaching university. This paper explores the concept of “smart education” and the path of building an ecological information-based teaching model of English college by interpreting the con...

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Main Author: Yaojun Guo
Format: Article
Language:English
Published: Wiley 2021-01-01
Series:Journal of Mathematics
Online Access:http://dx.doi.org/10.1155/2021/5364892
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author Yaojun Guo
author_facet Yaojun Guo
author_sort Yaojun Guo
collection DOAJ
description The rapid development of artificial intelligence brings new development opportunities and challenges to English teaching university. This paper explores the concept of “smart education” and the path of building an ecological information-based teaching model of English college by interpreting the concepts of artificial intelligence, deep learning, ecological linguistics, and language education. Artificial intelligence, especially deep learning, will be promising in many aspects, such as the analysis of individual differences of language learners, customized learning content, diversified and three-dimensional teaching media, the role of teachers as smart classroom designers, and multidimensional and dynamic formative assessments. By relying on the data mining technology of deep learning to analyze learners’ characteristics, the smart classroom design, the promotion of language learners’ independent learning, and the establishment of dynamic and complete learner profiles, the language learning process is no longer a linear process but an evolving open loop, ultimately forming a harmonious development of various ecological niches in the language learning process. In this paper, we study and design a deep learning-based English informatics teaching system to develop a deep learning-based scoring prediction model. The model incorporates deep learning models based on word embedding and text convolutional networks, which can uncover the hidden interest features of academics for English. The experimental research results prove that the online e-learning service platform cannot only effectively meet the diverse and personalized English learning needs of university students, but also improve the learning efficiency of teachers and students.
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institution Kabale University
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spelling doaj-art-aff2cbf1a03046cb82bba6cb2a0ade092025-02-03T07:24:09ZengWileyJournal of Mathematics2314-47852021-01-01202110.1155/2021/5364892A Study of English Informative Teaching Strategies Based on Deep LearningYaojun Guo0School of Applied Foreign LanguagesThe rapid development of artificial intelligence brings new development opportunities and challenges to English teaching university. This paper explores the concept of “smart education” and the path of building an ecological information-based teaching model of English college by interpreting the concepts of artificial intelligence, deep learning, ecological linguistics, and language education. Artificial intelligence, especially deep learning, will be promising in many aspects, such as the analysis of individual differences of language learners, customized learning content, diversified and three-dimensional teaching media, the role of teachers as smart classroom designers, and multidimensional and dynamic formative assessments. By relying on the data mining technology of deep learning to analyze learners’ characteristics, the smart classroom design, the promotion of language learners’ independent learning, and the establishment of dynamic and complete learner profiles, the language learning process is no longer a linear process but an evolving open loop, ultimately forming a harmonious development of various ecological niches in the language learning process. In this paper, we study and design a deep learning-based English informatics teaching system to develop a deep learning-based scoring prediction model. The model incorporates deep learning models based on word embedding and text convolutional networks, which can uncover the hidden interest features of academics for English. The experimental research results prove that the online e-learning service platform cannot only effectively meet the diverse and personalized English learning needs of university students, but also improve the learning efficiency of teachers and students.http://dx.doi.org/10.1155/2021/5364892
spellingShingle Yaojun Guo
A Study of English Informative Teaching Strategies Based on Deep Learning
Journal of Mathematics
title A Study of English Informative Teaching Strategies Based on Deep Learning
title_full A Study of English Informative Teaching Strategies Based on Deep Learning
title_fullStr A Study of English Informative Teaching Strategies Based on Deep Learning
title_full_unstemmed A Study of English Informative Teaching Strategies Based on Deep Learning
title_short A Study of English Informative Teaching Strategies Based on Deep Learning
title_sort study of english informative teaching strategies based on deep learning
url http://dx.doi.org/10.1155/2021/5364892
work_keys_str_mv AT yaojunguo astudyofenglishinformativeteachingstrategiesbasedondeeplearning
AT yaojunguo studyofenglishinformativeteachingstrategiesbasedondeeplearning