The state of the art in integrating machine learning into visual analytics

Endert, A.; Ribarsky, W.; Turkay, C.; Wong, B.L. William; Nabney, I.; Díaz Blanco, I. and Rossi, F. The state of the art in integrating machine learning into visual analytics. Computer Graphics Forum, in pre ,

Abstract

Visual analytics systems combine machine learning or other analytic techniques with interactive data visualization to promote sensemaking and analytical reasoning. It is through such techniques that people can make sense of large, complex data. While progress has been made, the tactful combination of machine learning and data visualization is still under-explored. This state-of-the-art report presents a summary of the progress that has been made by highlighting and synthesizing select research advances. Further, it presents opportunities and challenges to enhance the synergy between machine learning and visual analytics for impactful future research directions.

Publication DOI: https://doi.org/10.1111/cgf.13092
Divisions: Engineering & Applied Sciences > Systems analytics research institute (SARI)
Engineering & Applied Sciences > Computer science
Engineering & Applied Sciences > Non-linearity and complexity research group
Engineering & Applied Sciences > Computer science research group
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Additional Information: This is the peer reviewed version of the following article: Endert, A., Ribarsky, W., Turkay, C., Wong, B. L. W., Nabney, I., Blanco, I. D., & Rossi, F. (2017). The State of the Art in Integrating Machine Learning into Visual Analytics. Computer Graphics Forum, in press. which has been published in final form at http://dx.doi.org/10.1111/cgf.13092. This article may be used for non-commercial purposes in accordance with Wiley Terms and Conditions for Self-Archiving.
Uncontrolled Keywords: categories and subject descriptors,data mining,information visualization,visual analytics,visualization,human-centred computing,Computer Networks and Communications

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