DocumentCode :
969718
Title :
Building models of animals from video
Author :
Ramanan, D. ; Forsyth, D.A. ; Barnard, K.
Author_Institution :
Toyota Technol. Inst., Chicago, IL
Volume :
28
Issue :
8
fYear :
2006
Firstpage :
1319
Lastpage :
1334
Abstract :
This paper argues that tracking, object detection, and model building are all similar activities. We describe a fully automatic system that builds 2D articulated models known as pictorial structures from videos of animals. The learned model can be used to detect the animal in the original video - in this sense, the system can be viewed as a generalized tracker (one that is capable of modeling objects while tracking them). The learned model can be matched to a visual library; here, the system can be viewed as a video recognition algorithm. The learned model can also be used to detect the animal in novel images - in this case, the system can be seen as a method for learning models for object recognition. We find that we can significantly improve the pictorial structures by augmenting them with a discriminative texture model learned from a texture library. We develop a novel texture descriptor that outperforms the state-of-the-art for animal textures. We demonstrate the entire system on real video sequences of three different animals. We show that we can automatically track and identify the given animal. We use the learned models to recognize animals from two data sets; images taken by professional photographers from the Corel collection, and assorted images from the Web returned by Google. We demonstrate quite good performance on both data sets. Comparing our results with simple baselines, we show that, for the Google set, we can detect, localize, and recover part articulations from a collection demonstrably hard for object recognition
Keywords :
image sequences; image texture; object detection; object recognition; video signal processing; 2D articulated models; Corel collection; Google set; animal model building; animal textures; animal videos; discriminative texture model; object detection; object recognition; pictorial structures; texture descriptor; texture library; video recognition algorithm; video sequences; visual library; Animal structures; Buildings; Deformable models; Head; Leg; Libraries; Object detection; Object recognition; Shape; Video sequences; Tracking; object recognition; shape.; texture; video analysis; Algorithms; Animals; Artificial Intelligence; Computer Simulation; Image Enhancement; Image Interpretation, Computer-Assisted; Imaging, Three-Dimensional; Information Storage and Retrieval; Models, Anatomic; Models, Biological; Movement; Pattern Recognition, Automated; Photography; Video Recording;
fLanguage :
English
Journal_Title :
Pattern Analysis and Machine Intelligence, IEEE Transactions on
Publisher :
ieee
ISSN :
0162-8828
Type :
jour
DOI :
10.1109/TPAMI.2006.155
Filename :
1642665
Link To Document :
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