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  4. Estimating Beauty Ratings of Videos using Supervoxels
 
conference paper

Estimating Beauty Ratings of Videos using Supervoxels

Yildirim, Gökhan  
•
Shaji, Appu  
•
Süsstrunk, Sabine  
2013
Proceedings of the 21st ACM international conference on Multimedia
21st ACM International Conference on Multimedia

The major low-level perceptual components that influence the beauty ratings of video are color, contrast, and motion. To estimate the beauty ratings of the NHK dataset, we propose to extract these features based on supervoxels, which are a group of pixels that share similar color and spatial information through the temporal domain. Recent beauty methods use frame-level processing for visual features and disregard the spatio-temporal aspect of beauty. In this paper, we explicitly model this property by introducing supervoxel-based visual and motion features. In order to create a beauty estimator, we first identify 60 videos (either beautiful or not beautiful) in the NHK dataset. We then train a neural network regressor using the supervoxel-based features and binary beauty ratings. We rate the 1000 videos in the NHK dataset and rank them according to their ratings. When comparing our rankings with the actual rankings of the NHK dataset, we obtain a Spearman correlation coefficient of 0.42.

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Type
conference paper
DOI
10.1145/2502081.2508125
Author(s)
Yildirim, Gökhan  
Shaji, Appu  
Süsstrunk, Sabine  
Date Issued

2013

Published in
Proceedings of the 21st ACM international conference on Multimedia
ISBN of the book

978-1-4503-2404-5

Start page

385

End page

388

Subjects

Video beauty

•

supervoxel

•

video ranking

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
IVRL  
Event nameEvent placeEvent date
21st ACM International Conference on Multimedia

Barcelona, Spain

October 21-25, 2013

Available on Infoscience
November 1, 2013
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/96516
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