基于规则和自动方法的文本情感分析评价

P. A. Grana, Vinod S Agrawal
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引用次数: 0

摘要

确定文本是好的、消极的还是中性的技术被称为情感分析(SA)。情感分析可以通过许多名称来识别,如文本分析,意见挖掘。情感分析是自然语言处理(NLP)的一个分支,侧重于从多个来源收集关于主题的主观观点和感受的表达。情感分析是检测和提取意见并将其用于业务运营的方法的集合。它是一种以寻找意见和决策观点为目标的分类算法。情感分析以多种方式执行,自动分类方法涉及朴素贝叶斯(NB),支持向量机(SVM),线性回归是监督机器学习方法(LR)的示例。使用无监督机器学习来探索数据。递归神经网络(RNN)衍生物也用于分类。基于规则的方法涉及到各种分类的NLP过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluation of Sentiment Analysis of Text Using Rule-Based and Automatic Approach
The technique of determining whether a text is good, negative or neutral is known as sentiment analysis (SA).Sentiment Analysis can be identified by many names like Textual Analysis, Opinion Mining. Sentiment Analysis is a branch of Natural Language Processing (NLP) that focuses on the expression of subjective views and feelings about a topic gathered from multiple sources. Sentiment Analysis is a collection of methods for detecting and extracting opinions and uses them for the benefit of business operation. It is a classification algorithm aimed at finding opinions and decision-making point of view. Sentiment Analysis is performed in many ways, Automatic classification approach involves Nave Bayes (NB), Support Vector Machine (SVM), and Linear Regression is examples of supervised machine learning methods (LR). The data is explored using unsupervised machine learning. Recurrent Neural Network (RNN) derivatives are also used for classification. Rule-based approach involves various NLP process for classification.
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