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Erschienen in: Machine Vision and Applications 1/2014

01.01.2014 | Special Issue Paper

Multimedia event detection with multimodal feature fusion and temporal concept localization

verfasst von: Sangmin Oh, Scott McCloskey, Ilseo Kim, Arash Vahdat, Kevin J. Cannons, Hossein Hajimirsadeghi, Greg Mori, A. G. Amitha Perera, Megha Pandey, Jason J. Corso

Erschienen in: Machine Vision and Applications | Ausgabe 1/2014

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Abstract

We present a system for multimedia event detection. The developed system characterizes complex multimedia events based on a large array of multimodal features, and classifies unseen videos by effectively fusing diverse responses. We present three major technical innovations. First, we explore novel visual and audio features across multiple semantic granularities, including building, often in an unsupervised manner, mid-level and high-level features upon low-level features to enable semantic understanding. Second, we show a novel Latent SVM model which learns and localizes discriminative high-level concepts in cluttered video sequences. In addition to improving detection accuracy beyond existing approaches, it enables a unique summary for every retrieval by its use of high-level concepts and temporal evidence localization. The resulting summary provides some transparency into why the system classified the video as it did. Finally, we present novel fusion learning algorithms and our methodology to improve fusion learning under limited training data condition. Thorough evaluation on a large TRECVID MED 2011 dataset showcases the benefits of the presented system.

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Fußnoten
1
Note that the use of the terms, “mid-level” and “high-level” may be different from other work.
 
2
TRECVID MED’12 dataset is larger; however, the ground truth will not be publicly released for several years.
 
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Metadaten
Titel
Multimedia event detection with multimodal feature fusion and temporal concept localization
verfasst von
Sangmin Oh
Scott McCloskey
Ilseo Kim
Arash Vahdat
Kevin J. Cannons
Hossein Hajimirsadeghi
Greg Mori
A. G. Amitha Perera
Megha Pandey
Jason J. Corso
Publikationsdatum
01.01.2014
Verlag
Springer Berlin Heidelberg
Erschienen in
Machine Vision and Applications / Ausgabe 1/2014
Print ISSN: 0932-8092
Elektronische ISSN: 1432-1769
DOI
https://doi.org/10.1007/s00138-013-0525-x

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