Silhouette extraction of a human body based on fusion of hog and graph-cut segmentation in dynamic backgrounds

In this paper we presents a novel and effective way for extracting a region based silhouette of a human with a moving background thereby facilitating subsequent analysis like action recognition. The system first detects objects in the video that can be classified as human or non human. For this, the...

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Published inProceedings of third International Conference on Computational Intelligence and Information Technology pp. 527 - 531
Main Authors Lakshmi, N.D, Latha, Y.M, Damodaram, A
Format Conference Proceeding
LanguageEnglish
Published Stevenage, UK IET 2013
The Institution of Engineering & Technology
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ISBN9781849198592
1849198594
DOI10.1049/cp.2013.2641

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Abstract In this paper we presents a novel and effective way for extracting a region based silhouette of a human with a moving background thereby facilitating subsequent analysis like action recognition. The system first detects objects in the video that can be classified as human or non human. For this, the Histogram of Oriented Gradients (HOG) is used as descriptors and Support Vector Machine (SVM) is used as a classifier. The localized human part also contains unnecessary background information. Hence, we propose to use Graph-Cut method for extracting the foreground (humans) information from the video. Since our goal is to extract only human regions, we propose a region-based approach that fuses Graph-cut segmentation with human object detection. Sports videos are used to test the proposed system and algorithms, and the extensive and encouraging experimental results show their effectiveness in getting region based silhouette of a player in the sports video and also supports its suitability for segmenting videos with dynamic backgrounds.
AbstractList In this paper we presents a novel and effective way for extracting a region based silhouette of a human with a moving background thereby facilitating subsequent analysis like action recognition. The system first detects objects in the video that can be classified as human or non human. For this, the Histogram of Oriented Gradients (HOG) is used as descriptors and Support Vector Machine (SVM) is used as a classifier. The localized human part also contains unnecessary background information. Hence, we propose to use Graph-Cut method for extracting the foreground (humans) information from the video. Since our goal is to extract only human regions, we propose a region-based approach that fuses Graph-cut segmentation with human object detection. Sports videos are used to test the proposed system and algorithms, and the extensive and encouraging experimental results show their effectiveness in getting region based silhouette of a player in the sports video and also supports its suitability for segmenting videos with dynamic backgrounds.
Author Latha, Y.M
Lakshmi, N.D
Damodaram, A
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Keywords graph cut segmentation
graph theory
image fusion
object detection
SVM
feature extraction
image segmentation
graph cut method
silhouette extraction
subsequent analysis
video segmentation
gradient methods
video signal processing
dynamic backgrounds
HOG
histogram of oriented gradients
support vector machines
human regions
human body
sports videos
background information
hog fusion
support vector machine
video information
action recognition
human object detection
Language English
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Snippet In this paper we presents a novel and effective way for extracting a region based silhouette of a human with a moving background thereby facilitating...
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StartPage 527
SubjectTerms Combinatorial mathematics
Computer vision and image processing techniques
Knowledge engineering techniques
Optical, image and video signal processing
Optimisation techniques
Video signal processing
Title Silhouette extraction of a human body based on fusion of hog and graph-cut segmentation in dynamic backgrounds
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