Multi-Media Fusion through Application of Machine Learning and NLP

Chinatsu Aone, Scott Bennett, Jim Gorlinsky · 1996

This paper describes work on a system to dynamically cluster and present information from live multimedia news sources. Features are obtained by applying statistical and natural language processing techniques to texts associated with the media (new wire stories or closed-captions). Conceptual clustering is employed to dynamically build a set of hierarchical clusters. Results are presented objectively comparing automated clustering with hand clustering of the same articles.

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