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Model-based Human Posture Estimation for Gesture Analysis in an Opportunistic Fusion Smart Camera Network

机译:机遇融合智能摄像机网络中手势分析的模型人体姿态估算

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In multi-camera networks rich visual data is provided both spatially and temporally. In this paper a method of human posture estimation is described incorporating the concept of an opportunistic fusion framework aiming to employ manifold sources of visual information across space, time, and feature levels. One motivation for the proposed method is to reduce raw visual data in a single camera to elliptical parameterized segments for efficient communication between cameras. A 3D human body model is employed as the convergence point of spatiotemporal and feature fusion. It maintains both geometric parameters of the human posture and the adaptively learned appearance attributes, all of which are updated from the three dimensions of space, time and features of the opportunistic fusion. In sufficient confidence levels parameters of the 3D human body model are again used as feedback to aid subsequent in-node vision analysis. Color distribution registered in the model is used to initialize segmentation. Perceptually Organized Expectation Maximization (POEM) is then applied to refine color segments with observations from a single camera. Geometric configuration of the 3D skeleton is estimated by Particle Swarm Optimization (PSO).
机译:在多相机网络中,在空间和时间内提供丰富的可视数据。在本文中,描述了一种人体姿势估计的方法,包括机会融合框架的概念,其旨在跨空间,时间和特征级别采用可视信息的歧管源。提出方法的一个动机是将单个相机中的原始视觉数据减少到椭圆形参数化段,以便在相机之间有效通信。使用3D人体模型作为时空和特征融合的收敛点。它保持人体姿势的几何参数和自适应地学习的外观属性,所有这些都是从机会融合的三个空间,时间和特征的三维更新。在足够的置信度水平中,3D人体模型的参数再次被用作反馈以帮助随后的节点视觉分析。在模型中注册的颜色分布用于初始化分段。然后,感知组织期望最大化(诗)将在单个相机的观察中施加优化颜色段。通过粒子群优化(PSO)估计了3D骨架的几何配置。

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