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Optical Flow-Based Gait Modeling Algorithm for Pedestrian Navigation Using Smartphone Sensors

机译:基于智能手机传感器的基于光流的步行导航步态建模算法

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An optical flow-based pedestrian gait modeling method integrating with attitude acquisition is proposed. The proposed method accomplishes online training of the gait model with displacement and frequency information whenever steps are detected. The displacement information inferred from optical flow is assigned adaptive weight to suppress outliers that arise from the pedestrian’s feet and legs in the images. Moreover, a self-pruning linear regression mechanism is presented in gait modeling process to attenuate the adverse effects of abnormal samples. The experimental results demonstrate that the proposed method can achieve better performance compared with the existing methods in terms of accuracy and efficiency. Furthermore, complex scenario experiments where the textures of the ground changed, were also conducted and the results verified the adaptability of our proposed method.
机译:提出了一种结合姿态获取的基于光流的步行步态建模方法。所提出的方法可以在步距被检测到时用位移和频率信息完成步态模型的在线训练。从光流中推断出的位移信息被分配了自适应权重,以抑制图像中行人的脚和腿产生的离群值。此外,在步态建模过程中提出了一种自修剪线性回归机制,以减轻异常样本的不利影响。实验结果表明,与现有方法相比,该方法在精度和效率上都可以达到更好的性能。此外,还进行了复杂的场景实验,其中地面的纹理发生了变化,结果验证了我们提出的方法的适应性。

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