Model for Re-ranking Agent on Hybrid Search Engine for E-learning

Axita Shah, Sonal Jain, Rushabh Chheda, A. Mashru
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引用次数: 3

Abstract

The Web provides an enormous amount of learning tutorials. Searching standard content is not easy for common user of traditional search engine. The user only focuses on the top results from the enormous quantity of the arrived results. So the Re-ranking problem turns into the significant responsibility for the search systems. This paper proposes a novel model of Re-ranking Agent on Hybrid search engine (Meta-search engine and Topical search engine) for helping learners searching online Learning tutorials efficiently and in the effective way. With the aim of providing users with relevant tutorials we have proposed model classified by subject topic, prepared by professional persons and preferred by learners.
面向电子学习的混合搜索引擎Agent重新排序模型
网络提供了大量的学习教程。对于传统搜索引擎的普通用户来说,搜索标准内容并不容易。用户只会从大量到达的结果中关注最前面的结果。因此,重新排序问题成为搜索系统的重要责任。本文提出了一种基于混合搜索引擎(元搜索引擎和主题搜索引擎)的重新排序代理模型,以帮助学习者高效、有效地搜索在线学习教程。为了给用户提供相关的教程,我们提出了按主题分类的模型,由专业人员编写,学习者首选。
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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