Mining and Recognition of English Learning Patterns of Mobile Users Based on Intelligent Algorithm

Jingtai Li
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Abstract

The latest research results show that activity recognition based on frequent pattern mining is the main method. Its advantages are that the activity patterns obtained through learning mining are comprehensive and accurate, and the recognition effect of activities in the corresponding environment is good. Besides, some activities that can only be carried out in a specific environment can be identified. This study attempts to use data mining technology to help foreign language education systems to further transform massive data, so as to mine more valuable content, helping educators to further tap teaching potential, and improving the efficiency of teaching resources utilization.
基于智能算法的移动用户英语学习模式挖掘与识别
最新的研究结果表明,基于频繁模式挖掘的活动识别是主要的识别方法。其优点是通过学习挖掘获得的活动模式全面、准确,对活动在相应环境中的识别效果好。此外,一些只能在特定环境中进行的活动可以被识别出来。本研究试图利用数据挖掘技术,帮助外语教育系统对海量数据进行进一步的转化,从而挖掘出更多有价值的内容,帮助教育工作者进一步挖掘教学潜力,提高教学资源利用效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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