A survey on still image based human action recognition
Recently still image-based human action recognition has become an active research topic in computer vision and pattern recognition. It focuses on identifying a person׳s action or behavior from a single image. Unlike the traditional action recognition approaches where videos or image sequences are us...
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Published in | Pattern recognition Vol. 47; no. 10; pp. 3343 - 3361 |
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Main Authors | , |
Format | Journal Article |
Language | English |
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Elsevier Ltd
01.10.2014
Elsevier |
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Abstract | Recently still image-based human action recognition has become an active research topic in computer vision and pattern recognition. It focuses on identifying a person׳s action or behavior from a single image. Unlike the traditional action recognition approaches where videos or image sequences are used, a still image contains no temporal information for action characterization. Thus the prevailing spatiotemporal features for video-based action analysis are not appropriate for still image-based action recognition. It is more challenging to perform still image-based action recognition than the video-based one, given the limited source of information as well as the cluttered background for images collected from the Internet. On the other hand, a large number of still images exist over the Internet. Therefore it is demanding to develop robust and efficient methods for still image-based action recognition to understand the web images better for image retrieval or search. Based on the emerging research in recent years, it is time to review the existing approaches to still image-based action recognition and inspire more efforts to advance the field of research. We present a detailed overview of the state-of-the-art methods for still image-based action recognition, and categorize and describe various high-level cues and low-level features for action analysis in still images. All related databases are introduced with details. Finally, we give our views and thoughts for future research.
•A comprehensive survey of the research works on still image-based action recognition is conducted, for the first time.•Categorization of existing approaches into different categories with a clear organization is done.•Some thoughts for future research are presented to inspire new efforts in the field. |
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AbstractList | Recently still image-based human action recognition has become an active research topic in computer vision and pattern recognition. It focuses on identifying a person׳s action or behavior from a single image. Unlike the traditional action recognition approaches where videos or image sequences are used, a still image contains no temporal information for action characterization. Thus the prevailing spatiotemporal features for video-based action analysis are not appropriate for still image-based action recognition. It is more challenging to perform still image-based action recognition than the video-based one, given the limited source of information as well as the cluttered background for images collected from the Internet. On the other hand, a large number of still images exist over the Internet. Therefore it is demanding to develop robust and efficient methods for still image-based action recognition to understand the web images better for image retrieval or search. Based on the emerging research in recent years, it is time to review the existing approaches to still image-based action recognition and inspire more efforts to advance the field of research. We present a detailed overview of the state-of-the-art methods for still image-based action recognition, and categorize and describe various high-level cues and low-level features for action analysis in still images. All related databases are introduced with details. Finally, we give our views and thoughts for future research.
•A comprehensive survey of the research works on still image-based action recognition is conducted, for the first time.•Categorization of existing approaches into different categories with a clear organization is done.•Some thoughts for future research are presented to inspire new efforts in the field. Recently still image-based human action recognition has become an active research topic in computer vision and pattern recognition. It focuses on identifying a person's action or behavior from a single image. Unlike the traditional action recognition approaches where videos or image sequences are used, a still image contains no temporal information for action characterization. Thus the prevailing spatiotemporal features for video-based action analysis are not appropriate for still image-based action recognition. It is more challenging to perform still image-based action recognition than the video-based one, given the limited source of information as well as the cluttered background for images collected from the Internet. On the other hand, a large number of still images exist over the Internet. Therefore it is demanding to develop robust and efficient methods for still image-based action recognition to understand the web images better for image retrieval or search. Based on the emerging research in recent years, it is time to review the existing approaches to still image-based action recognition and inspire more efforts to advance the field of research. We present a detailed overview of the state-of-the-art methods for still image-based action recognition, and categorize and describe various high-level cues and low-level features for action analysis in still images. All related databases are introduced with details. Finally, we give our views and thoughts for future research. |
Author | Guo, Guodong Lai, Alice |
Author_xml | – sequence: 1 givenname: Guodong surname: Guo fullname: Guo, Guodong email: guodong.guo@mail.wvu.edu – sequence: 2 givenname: Alice surname: Lai fullname: Lai, Alice |
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Snippet | Recently still image-based human action recognition has become an active research topic in computer vision and pattern recognition. It focuses on identifying a... |
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SubjectTerms | Action recognition Applied sciences Artificial intelligence Character recognition Computer science; control theory; systems Evaluation Exact sciences and technology Feature recognition Human Image processing Information, signal and communications theory Internet Object recognition Pattern recognition Pattern recognition. Digital image processing. Computational geometry Signal and communications theory Signal processing Signal representation. Spectral analysis Signal, noise Still image based Survey Telecommunications and information theory Temporal logic Various cues |
Title | A survey on still image based human action recognition |
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