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User Profile & Attitude Analysis Based on Unstructured Social Media and Online Activity
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作者 Yuting Tan Vijay K. Madisetti 《Journal of Software Engineering and Applications》 2024年第6期463-473,共11页
As social media and online activity continue to pervade all age groups, it serves as a crucial platform for sharing personal experiences and opinions as well as information about attitudes and preferences for certain ... As social media and online activity continue to pervade all age groups, it serves as a crucial platform for sharing personal experiences and opinions as well as information about attitudes and preferences for certain interests or purchases. This generates a wealth of behavioral data, which, while invaluable to businesses, researchers, policymakers, and the cybersecurity sector, presents significant challenges due to its unstructured nature. Existing tools for analyzing this data often lack the capability to effectively retrieve and process it comprehensively. This paper addresses the need for an advanced analytical tool that ethically and legally collects and analyzes social media data and online activity logs, constructing detailed and structured user profiles. It reviews current solutions, highlights their limitations, and introduces a new approach, the Advanced Social Analyzer (ASAN), that bridges these gaps. The proposed solutions technical aspects, implementation, and evaluation are discussed, with results compared to existing methodologies. The paper concludes by suggesting future research directions to further enhance the utility and effectiveness of social media data analysis. 展开更多
关键词 social media user Behavior analysis sentiment analysis Data Mining Machine Learning user Profiling CYBERSECURITY Behavioral Insights Personality Prediction
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基于网络用户情感分析的预测方法研究 被引量:32
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作者 徐健 《中国图书馆学报》 CSSCI 北大核心 2013年第3期96-107,共12页
网络用户情感分析领域的研究为特定领域社会行为的预测提供了新的方法和工具。本文分析了基于情感分析进行预测的逻辑基础、典型预测方法、关键技术以及当前存在的问题和发展趋势。研究发现:研究基于网络用户情感分析预测社会活动趋势... 网络用户情感分析领域的研究为特定领域社会行为的预测提供了新的方法和工具。本文分析了基于情感分析进行预测的逻辑基础、典型预测方法、关键技术以及当前存在的问题和发展趋势。研究发现:研究基于网络用户情感分析预测社会活动趋势的方法在政治、财经等多个领域具备应用条件;典型预测方法可归纳为以情感分析结果作为辅助依据的预测方法和以情感分析结果作为主要依据的预测方法;预测过程涉及情感分析源的选择、预测时间提前量的确定以及情感词统计处理三个关键环节;当前研究还存在网络用户情感的代表性,待分析语料的全面和正确获取,以及网络用户情感的正确分析和统计等问题,有待深入研究。 展开更多
关键词 社会化媒体 网络用户 情感分析 预测方法
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