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Fusion of Heterogeneous Range Sensors Dataset for High Fidelity Surface Generation

机译:用于高保真表面生成的异构范围传感器数据集的融合

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Due to the need for higher quality depth data than possible with an individual range sensing approach nowadays, there has been a growing interest to develop an integrated depth sensing technique by fusion of different $3D$ acquisition approaches that are more precise than the individual devices. In this paper, a new unsupervised range data fusion method using distinct range sensors has been presented for the extraction of an accurate surface model. In the fusion method, the analysis of Kinect's depth data based on Haar wavelets is used to identify regions requiring finer scan by the Laser range sensor. The fused data illustrate the more accurate descriptive characteristic of the surface. The experimental results show a high quality reconstructed $3D$ model which validates the correctness of the real surfaces.
机译:由于需要更高的质量深度数据,而是通过单独的范围感测方法如今,通过融合不同的融合来发展集成深度感测技术越来越感兴趣 $ 3d $ 采集方法比各个设备更精确。在本文中,已经提取了一种新的无监督范围数据融合方法,用于提取精确的表面模型。在融合方法中,基于HAAR小波的基于Kinect的深度数据分析用于识别激光范围传感器需要更精细扫描的区域。融合数据说明了表面的更准确的描述性特征。实验结果表明了高质量的重建 $ 3d $ 验证真实表面的正确性的模型。

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