Extracting Sentiments from YouTube Comments

Rahul Pradhan
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引用次数: 2

Abstract

YouTube is the most used social media platform, and it has been the most popular website where users can post the video. The public generally does comment, like or dislike, video-sharing on a YouTube video. Comment plays a vital role in expressing opinions and mindset, and it is used as an expression of public opinion. The massive amount of comment comes mainly on famous channels where challenges arise to analyze public opinion or behavior regarding that particular video. This article proposes sentiment analysis on YouTube video by Natural Language Processing (NLP) technique. Sentiment Analysis is when comprehension, citation, and processing of text-based data is done, and it directly converts it into sentiment information. This analysis help users to get the report of their YouTube Video. The output of this analysis gives the classification of sentiment analysis, i.e., positive, negative, or neutral.
从YouTube评论中提取情感
YouTube是最常用的社交媒体平台,也是用户上传视频最受欢迎的网站。公众通常会对YouTube视频上的视频分享进行评论,喜欢或不喜欢。评论在表达意见和心态方面起着至关重要的作用,它是一种民意的表达。大量的评论主要来自著名的频道,在这些频道中,分析公众对特定视频的意见或行为出现了挑战。本文提出了一种基于自然语言处理(NLP)的YouTube视频情感分析方法。情感分析是对基于文本的数据进行理解、引用和处理,并将其直接转换为情感信息。这种分析可以帮助用户获得他们的YouTube视频报告。该分析的输出给出了情感分析的分类,即积极、消极或中性。
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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