情感分析作为网页优化的一种方式

M. Osama, K. Ahmad, A. Dana
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引用次数: 2

摘要

网页优化是优化网页以增加网站在搜索引擎中的可见度或排名的过程。此外,这个过程也从多个角度来看,从优化服务器间通信,为用户的查询提供最佳响应,并为网站用户提供有针对性的广告。在这方面,从用户评论中自动分类和信息提取的过程,也称为情感分析(SA)或意见挖掘,对于根据用户的偏好为用户提供最佳的在线体验变得至关重要。有许多可用于SA的算法。因此,在应用任何极性检测算法之前,都要对注释进行预处理。本研究分析了我们如何编写执行SA的算法,以及应用于初始数据的不同类型的处理(如词干提取或消除停止词)如何影响该算法的性能。结果表明,即使使用小样本,如果应用适当的自然语言处理算法,情感分析也可以以很高的准确率(超过70%)完成。拥有一种猜测情绪的方法可以使我们从互联网上摘录意见并预测在线客户的喜好,这可以确定对商业或营销研究的价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sentiment analysis as a way of web optimization
Web optimization is the process of optimizing the web to increase visibility or rank of websites in search engines. Furthermore, this process is also viewed from multiple perspectives, from optimizing inter-server communication that offers the best responses to users’ queries and provides targeted advertisements to users of a website. With this regard, the process of automatic classification and information extraction from users’ comments, also known as Sentiment Analysis (SA) or opinion mining, becomes vital to offer users the best online experience, based on their preferences. There are numerous algorithms available for SA. Therefore before applying any algorithm for polarity detection, pre-processing on comments is carried out. This study analyzes how we can write an algorithm for performing SA, and how different types of processing that are applied to initial data such as stemming or eliminating stop words affect the performance of this algorithm. The results show that even when a small sample is used, sentiment analysis can be done with a high accuracy (over 70%) if appropriate natural language processing algorithms are applied. Having a method for guessing sentiments could enable us, to excerpt opinions from the internet and predict online customer’s favorites, which could ascertain valuable for commercial or marketing research.
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来源期刊
Scientific Research and Essays
Scientific Research and Essays 综合性期刊-综合性期刊
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发文量
6
审稿时长
3.3 months
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