3D human pose estimation from pairs of panoramic cameras via fisheye-to-rectilinear image transformation followed by stereo reconstruction.
DeepPose: Human Pose Estimation via Deep Neural Networks
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abstract
We propose a method for human pose estimation based on Deep Neural Networks (DNNs). The pose estimation is formulated as a DNN-based regression problem towards body joints. We present a cascade of such DNN regressors which results in high precision pose estimates. The approach has the advantage of reasoning about pose in a holistic fashion and has a simple but yet powerful formulation which capitalizes on recent advances in Deep Learning. We present a detailed empirical analysis with state-of-art or better performance on four academic benchmarks of diverse real-world images.
fields
cs.CV 1years
2019 1verdicts
UNVERDICTED 1representative citing papers
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Large Area 3D Human Pose Detection Via Stereo Reconstruction in Panoramic Cameras
3D human pose estimation from pairs of panoramic cameras via fisheye-to-rectilinear image transformation followed by stereo reconstruction.