Collaborative Research: Using Multi-Modal Digital Footprints to Infer Public Sentiment
Collaborative Research: Using Multi-Modal Digital Footprints to Infer Public Sentiment
批准号:
1111092
负责人:
Bing Liu
金额:
$44.98万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-09-01 至 2015-08-31
中文摘要
社会科学认为行为人根据信念行事是不言自明的:然而,梳理出信念和行动之间的相关性并不是一件简单的事。传统上,社会科学家依靠调查数据来衡量可能表明经济趋势变化的情绪,并通过实验室实验来测试被操纵的信念的行为。然而,众所周知,调查的规模昂贵,难以经常进行,并且存在偏见;实验室实验人为地限制了决策,因此无法捕捉现实世界行动的复杂依赖关系。该项目将使用有史以来最大的人类行为数据集之一,直接从人们的行为中生成公众情绪的测量结果:在Twitter等平台上表达的在线意见或在新闻网站上发布的评论,代表Google搜索查询量的时间序列,以及通话详细记录。利用这些数字足迹,该项目将开发新的社会计算措施,以衡量与经济状况、预期失业率和对国家优先事项的关注有关的公众情绪。更广泛的影响:该项目将提供新的替代调查作为衡量公众情绪,也将产生前所未有的洞察美国人口的在线和现场行为。这项研究也有可能帮助公共和私人组织更好地了解客户和成员的动态行为,并根据数据得出的经济趋势做出商业和政策决策。该项目将通过对研究生进行跨学科培训来加强教育。将积极鼓励来自代表性不足群体的研究生和本科生参与该项目。还将建立一个公开网站,详细介绍项目成果。
英文摘要
Social science takes as axiomatic that agents act on beliefs: however, teasing out the correlations between belief and action is no simple feat. Traditionally, social scientists relied on survey data to measure sentiment that might indicate changing economic trends, and on lab experiments to test actions given manipulated beliefs. Surveys, however, are notoriously expensive to scale, difficult to conduct frequently, and possess bias; lab experiments artificially constrain decision-making and thus fail to capture the complex dependencies of real-world actions. This project will generate measurements of public sentiment directly from the actions of people, using one of the largest datasets of human behavior ever studied: online opinions expressed on platforms like Twitter or comments posted on news websites, time series representing the volume of search queries on Google, and call detail records. Using these digital footprints, the project will develop new social-computational measures of public sentiments related to the state of the economy, expected unemployment, and concerns about national priorities. Broader impacts: The project will offer new alternatives to surveys as a measure of public sentiment, and will also generate unprecedented insight into the online and onsite behavior of the American population. This research also has the potential to help public and private organizations better understand the dynamic behaviors of customers and constituents, and to make business and policy decisions informed by economic trends derived from data. The project will enhance education through the interdisciplinary training of graduate students. Both graduate and undergraduate students from underrepresented groups will be actively encouraged to participate in the project. A public website will also be set up detailing the project results.
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会议论文
III: Small: A Holistic Approach to Sentiment Analysis
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批准号:1910424
-
项目类别:Standard Grant
-
资助金额:$49.99万
-
财政年份:2019
-
负责人:Bing Liu
-
依托单位:
III: Medium: Collaborative Research: Collective Opinion Fraud Detection: Identifying and Integrating Cues from Language, Behavior, and Networks
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批准号:1407927
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项目类别:Standard Grant
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资助金额:$30.0万
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财政年份:2014
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负责人:Bing Liu
-
依托单位:
On Partially Supervised Text Classification
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批准号:0307239
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项目类别:Continuing Grant
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资助金额:$23.02万
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财政年份:2003
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负责人:Bing Liu
-
依托单位:
国内基金
海外基金
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