Gait recognition using radon transform and linear discriminant analysis.
other · Level V
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Abstract
A new feature extraction process is proposed for gait representation and recognition. The new system is based on the Radon transform of binary silhouettes. For each gait sequence, the transformed silhouettes are used for the computation of a template. The set of all templates is subsequently subjected to linear discriminant analysis and subspace projection. In this manner, each gait sequence is described using a low-dimensional feature vector consisting of selected Radon template coefficients. Given a test feature vector, gait recognition and verification is achieved by appropriately comparing it to feature vectors in a reference gait database. By using the new system on the Gait Challenge database, very considerable improvements in recognition performance are seen in comparison to state-of-the-art methods for gait recognition.
Medical subject headings
- Algorithms
- Artificial Intelligence
- Biometry
- Gait
- Image Interpretation, Computer-Assisted
- Pattern Recognition, Automated
- Whole Body Imaging