Publication | Closed Access
Image-Based 3D Human Pose Recovery with Locality Sensitive Sparse Retrieval
34
Citations
41
References
2013
Year
Unknown Venue
Sparse CodingHuman Pose RecoveryImage AnalysisMachine VisionEngineeringImage-based 3DPattern Recognition3D Pose EstimationBiometricsCompressive SensingSparse RepresentationHuman Pose EstimationInverse ProblemsComputational ImagingMulti-view Geometry3D ReconstructionComputational GeometryComputer Vision
Image-based 3D human pose recovery is usually conducted by retrieving relevant poses with image features. However, it suffers from high dimensionality of image features and low efficiency of retrieving process. In this paper, we propose a novel approach to recover 3D human poses from silhouettes. This approach improves traditional methods by adopting locality sensitive sparse coding in the retrieving process. It incorporates a local similarity preserving term into the objective of sparse coding, which groups similar silhouettes to alleviate the instability of sparse codes. The experimental results demonstrate the effectiveness of the proposed method.
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