An End-to-end Tag-based Recommendation System for Verbal Reasoning Questions

Zhixiong Yue, Yinghao Jiang, Dong Pan, Zongwei Luo
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Abstract

Developing a verbal reasoning question recommendation system is an ideal way to help the GRE® test takers improve their verbal reasoning abilities by practicing questions more efficiently. As there are a great number of verbal reasoning practice questions and limited practice time for test takers, it is impossible to practice all kinds of questions at the same time. Personalized referral systems should be built based on the characteristics of specific respondents, and forming professional recommendation systems for different questions. Based on the examinee's current practicing accuracy and fallible difficulties, we propose an End-to-end Tag-based Recommendation System (ETRS) for task takers to optimize practice effect. Code of this paper can be found on https://github.com/Oliver-Q/ETRS-for-Verbal-Reasoning-Questions.
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基于标签的端到端语言推理问题推荐系统
开发一个口头推理问题推荐系统是帮助GRE®考生通过更有效地练习问题来提高口头推理能力的理想方法。由于口语推理练习题数量众多,考生的练习时间有限,不可能同时练习所有题型。针对具体被调查者的特点,建立个性化的推荐系统,针对不同的问题形成专业的推荐系统。针对考生目前的练习正确率和易错性,本文提出了一种基于标签的端到端推荐系统(ETRS),以优化考生的练习效果。本文的代码可以在https://github.com/Oliver-Q/ETRS-for-Verbal-Reasoning-Questions上找到。
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