作者
Yafeng Lu, Robert Krüger, Dennis Thom, Feng Wang, S Koch, T Ertl, R Maciejewski
发表日期
2014
期刊
Proc. IEEE Conference on Visual Analytics Science and Technology
简介
A key analytical task across many domains is model building and exploration for predictive analysis. Data is collected, parsed and analyzed for relationships, and features are selected and mapped to estimate the response of a system under exploration. As social media data has grown more abundant, data can be captured that may potentially represent behavioral patterns in society. In turn, this unstructured social media data can be parsed and integrated as a key factor for predictive intelligence. In this paper, we present a framework for the development of predictive models utilizing social media data. We combine feature selection mechanisms, similarity comparisons and model cross-validation through a variety of interactive visualizations to support analysts in model building and prediction. In order to explore how predictions might be performed in such a framework, we present results from a user study focusing …
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Y Lu, R Krüger, D Thom, F Wang, S Koch, T Ertl… - 2014 IEEE Conference on Visual Analytics Science …, 2014