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A method of personal positioning based on sensor data fusion of wearable camera and self-contained sensors

机译:基于可穿戴式摄像头与自包含传感器的传感器数据融合的个人定位方法

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In this paper, we propose a method of personal positioning that combines images taken from a wearable camera with data from self-contained sensors attached to the user through a Kalman filter as a data integration mechanism. The proposed method estimates the user's position and direction by image registration between the input images from the camera and a set of images captured at known positions and directions beforehand as a database. It updates the estimation of the user's position and direction with pedestrian dead-reckoning by detecting walking behavior of the user and by estimating the heading direction of the body with the self-contained sensors.
机译:在本文中,我们提出了一种个人定位方法,该方法将可穿戴式相机拍摄的图像与通过卡尔曼滤波器作为数据集成机制从用户自备传感器获取的数据进行组合。所提出的方法通过将来自相机的输入图像与预先在已知位置和方向处捕获的一组图像之间的图像配准来估计用户的位置和方向,作为数据库。它通过检测用户的步行行为并使用独立的传感器来估计身体的前进方向,从而通过行人死区推算来更新用户的位置和方向的估计。

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