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English vocabulary online teaching based on machine learning recognition and target visual detection

机译:基于机器学习识别和目标视觉检测的英语词汇在线教学

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摘要

Online education has become an important way of learning English at present, and English vocabulary teaching can improve the efficiency of English vocabulary teaching through target visual detection. However, from the existing research, it can be seen that there are still some shortcomings in English vocabulary recognition. In order to improve the English vocabulary recognition effect, based on machine learning recognition technology, this study combines English vocabulary recognition needs of online education to construct an English vocabulary detection model based on convolutional neural network. The model takes the word's overall feature as the feature extraction principle and adopts the analysis and extraction of the joint segment feature. Moreover, it discards the complicated process of first dividing a single letter and then performing feature extraction and recognition. In addition, this study design example tests to perform algorithm performance analysis. The experimental results show that the proposed algorithm model has certain effects, and it can be used as an auxiliary algorithm for online English vocabulary teaching.
机译:目前在线教育已成为学习英语的重要途径,英语词汇教学可以通过目标视觉检测提高英语词汇教学的效率。然而,从现有的研究中,可以看出英语词汇表征仍然存在一些缺点。为了提高英语词汇识别效果,基于机器学习识别技术,本研究结合了在线教育的英语词汇识别需求构建基于卷积神经网络的英语词汇检测模型。该模型将单词的整体功能作为特征提取原理,采用联合段特征的分析和提取。此外,它丢弃了首次划分单个字母然后执行特征提取和识别的复杂过程。此外,本研究设计示例测试以执行算法性能分析。实验结果表明,该算法模型具有一定的效果,可用作在线英语词汇教学的辅助算法。

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