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Multi-View Human Body Pose Estimation with CUDA-PSO

机译:CUDA-PSO的多视角人体姿势估计

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The authors formulate the body pose estimation as a multi-dimensional nonlinear optimization problem, suitable to be approximately solved by a meta-heuristic, specifically, the particle swarm optimization (PSO). Starting from multi-view video sequences acquired in a studio environment, a full skeletal configuration of the human body is retrieved. They use a generic subdivision-surface body model in 3-D to generate solutions for the optimization problem. PSO then looks for the best match between the silhouettes generated by the projection of the model in a candidate pose and the silhouettes extracted from the original video sequence. The optimization method, in this case PSO, is run in parallel on the Graphics Processing Unit (GPU) and is implemented in Cuda-C™ on the n Vidia CUDA™ architecture. The authors compare the results obtained by different configurations of the camera setup, fitness function, and PSO neighborhood topologies.
机译:作者将体位估计公式化为多维非线性优化问题,适用于通过元启发式算法(特别是粒子群优化(PSO))近似解决。从在演播室环境中获取的多视点视频序列开始,检索人体的完整骨架配置。他们使用3-D中的通用细分曲面体模型来生成优化问题的解决方案。然后,PSO在候选姿势中由模型的投影生成的轮廓与从原始视频序列中提取的轮廓之间寻找最佳匹配。优化方法(在这种情况下为PSO)在图形处理单元(GPU)上并行运行,并在n Vidia CUDA™架构的Cuda-C™中实现。作者比较了通过摄像机设置,适应度功能和PSO邻域拓扑的不同配置获得的结果。

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