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Active Surface Reconstruction Using the Gradient Strategy

机译:使用梯度策略的主动表面重建

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This paper describes the design and implementation of an active surface reconstruction algorithm for two-frame image sequences using passive imaging. A novel strategy base don the statistical grouping of image gradient features is used. It is shown that the gradient of the intensity in an image can successfully be used to drive the direction of the viewer's motion. A such, an increased efficiency in the accumulation of information is demonstrated through a significant increase in the convergence rate of the depth estimator (3 to 4 times for the presented results) over traditional passive depth-from-motion. The viewer is considered to be restricted to a short baseline. A maximal-estimation framework is adopted to provide a simple approach for propagating information in a bottom-up fashion in the system. A Kalman filtering scheme is used for accumulating information temporally. The paper provides results for real-textured data to support the findings.
机译:本文介绍了使用被动成像的双帧图像序列有源表面重建算法的设计和实现。使用新的战略基础Don统计分组图像梯度特征。结果表明,图像中的强度的梯度可以成功地用于驱动观看者运动的方向。求出的累积效率提高通过深度估计器的收敛速度(对于所呈现的结果3至4次)在传统的被动深度从动作中显着增加来证明。观看者被认为仅限于短基线。采用最大估计框架来提供一种简单的方法,用于在系统中以自下而上的方式传播信息。卡尔曼滤波方案用于临时累积信息。本文提供了实际纹理数据的结果,以支持调查结果。

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