基于层次聚类和回归分类的基于电影应用的评论分析

D. Manjunath, Basavaraj S Hadimani
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引用次数: 1

摘要

近年来,情感分析在意见挖掘中扮演着重要的角色,对情感分析的研究主要集中在对网络中特定应用的意见及其情感的提取上。本文从各种基于电影的应用中对电影进行了回顾分析。本文更侧重于情感分析的基本方面,包括分析评论的不同方法,包括数据提取、聚类和分类。本文从各种基于电影的应用程序(如IMDB、Pay tm等)中提取评论,可以提取并形成电影数据集,这个电影API由电影名称、评论、评论、评分、表情符号等组成。本文首先采用数据预处理技术对数据集进行清理,然后对采集的属性进行分层聚类,然后对属性进行基于回归的分类,根据不同用户提供的负面评价和正面评价组成聚类,最后结合现有的决策树技术,采用所提出的分层聚类和回归技术确定准确率,所提出技术的准确率更高实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hierarchical Clustering and Regression Classification based Review analysis on Movie based Applications
In recent year sentiment analysis plays an important role in the opinion mining where the research on the analysis is mainly focused on the extraction of opinions and their emotions towards a particular application in the web. This paper presents review analysis of movie from various movie based applications. This paper concentrates more on the fundamental aspects of sentimental analysis which includes different methods of analyzing the reviews including data extraction, clustering and classification. In this paper extraction of the reviews from various movie based applications like IMDB, Pay tm etc.,, can be taken and formed the Movie dataset, This Movie API consists of movie name, comments, reviews, rating, emoji’s etc., In this paper first data pre-processing techniques is applied to clean the dataset and then apply the hierarchical clustering for the attributes taken and then regression based classification on the attributes to form a cluster based on negative and the positive reviews provided by the different users and finally determining the accuracy using proposed hierarchical clustering and regression technique with existing decision tree technique and the accuracy of proposed technique more accuracy is achieved.
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