基于机器学习的情感分析综述

Sumit Sindhu, Sanjeev Kumar, Amandeep Noliya
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引用次数: 0

摘要

情感分析[SA]是一种用于检测某些信息或文本状态的方法。它可以应用于文本分类和摘要等任务,并且可以使用各种方法从文本中提取情感,包括机器学习算法和基于规则的系统。情感分析是企业了解顾客反馈、衡量顾客满意度和忠诚度的重要工具。它将给定的文本分为三类:肯定的、否定的或中性的。“电视的画质很好”这句话表达了对某台电视的正面评价,而“声音不够好”则表达了负面评价。情感分析最近面临的挑战包括捕捉讽刺、文本中的情感和处理长文本。本文介绍了许多机器学习技术和深度学习模型的文献综述,如CNN、LS TM等。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Review on Sentiment Analysis using Machine Learning
Sentiment Analysis [SA] is a method that is used to detect the state of some information or text. It can be applied to tasks such as text classification and summarization, and various methods can be used to extract sentiment from text, including machine learning algorithms and rule-based systems. Sentiment analysis is an important tool for businesses to understand customer feedback and measure customer satisfaction and loyalty. It classifies the given text into three categories: positive, negative, or neutral. The statement “the picture quality of TV is good” expresses a positive opinion about a particular TV, while “the sound is not adequate” expresses a negative opinion. Recent challenges with sentiment analysis indude capturing sarcasm, emotion in text and dealing with long texts. The paper presents a literature survey of many machine learning techniques as well as deep learning models such as CNN, LS TM, etc.
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