Fourier Descriptor for Pedestrian Shape Recognition using Support Vector Machine

The main objective of this study is to analyse Fourier Descriptor (FD) as feature vectors for pedestrian shape representation and recognition. FD is chosen since it is the best known boundary based shape descriptor and has proven to outperform most other boundary based methods in terms of accuracy....

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Published in2007 IEEE International Symposium on Signal Processing and Information Technology pp. 636 - 641
Main Authors Tahir, M.N., Hussain, A., Mustafa, M.M.
Format Conference Proceeding
LanguageEnglish
Published IEEE 01.12.2007
Subjects
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ISBN9781424418343
1424418348
ISSN2162-7843
DOI10.1109/ISSPIT.2007.4458054

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Abstract The main objective of this study is to analyse Fourier Descriptor (FD) as feature vectors for pedestrian shape representation and recognition. FD is chosen since it is the best known boundary based shape descriptor and has proven to outperform most other boundary based methods in terms of accuracy. FD is also invariant to geometric transformations and has good noise tolerance. Initial results showed that using 10 descriptors of both low and high frequency components of pedestrian and vehicle shapes are sufficient for recognition based on high classification rate achieved. Moreover, the tremendous performance of Support Vector Machine (SVM) as classifier is confirmed based on the Kappa Score calculated. These findings have proven that our method is an effective approach for pedestrian recognition.
AbstractList The main objective of this study is to analyse Fourier Descriptor (FD) as feature vectors for pedestrian shape representation and recognition. FD is chosen since it is the best known boundary based shape descriptor and has proven to outperform most other boundary based methods in terms of accuracy. FD is also invariant to geometric transformations and has good noise tolerance. Initial results showed that using 10 descriptors of both low and high frequency components of pedestrian and vehicle shapes are sufficient for recognition based on high classification rate achieved. Moreover, the tremendous performance of Support Vector Machine (SVM) as classifier is confirmed based on the Kappa Score calculated. These findings have proven that our method is an effective approach for pedestrian recognition.
Author Tahir, M.N.
Hussain, A.
Mustafa, M.M.
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  surname: Mustafa
  fullname: Mustafa, M.M.
  organization: Univ. Kebangsaan Malaysia, Bangi
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Snippet The main objective of this study is to analyse Fourier Descriptor (FD) as feature vectors for pedestrian shape representation and recognition. FD is chosen...
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StartPage 636
SubjectTerms Fourier Descriptor (FD)
Humans
Image processing
Information technology
Kappa Score
Pattern recognition
Pedestrian
Shape
Signal processing
Support Vector Machine (SVM)
Support vector machine classification
Support vector machines
Systems engineering and theory
Vehicle safety
Title Fourier Descriptor for Pedestrian Shape Recognition using Support Vector Machine
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