用透镜移位结构光高分辨率获取细节表面

M. Ritz, M. Scholz, M. Goesele, A. Stork
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引用次数: 19

摘要

本文提出了一种基于低成本投影相机系统的结构光重建的高分辨率三维几何图像采集技术。在投影仪光路中使用1D机械移镜器扩展,投影模式在亚像素尺度上以精细的步骤移动,每个投影像素的粒度低至2048步,这为获得的几何图形在深度精度和平滑度方面开辟了新的可能性。将机械移透镜扩展与多相移技术相结合,可产生120x80 mm的测量范围,同时提供优于100微米的高深度分辨率。远远超出了传统的结构光扫描方法与投影相机系统所实现的深度分辨率,完全避免了传统技术固有的深度分层效果。仅依靠低成本的消费产品,我们达到了低至55微米的区域分辨率(受相机限制)。我们看到了两个有利的领域。首先,我们的采集设置可以重建古钱币等小型文物的最精细细节,从而以适当的精度对其进行数字保存。其次,我们精确的高度场可以作为基于物理的渲染的可行输入,结合测量的材料brdf来重现引人注目的空间变化,特定于材料的效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High Resolution Acquisition of Detailed Surfaces with Lens-Shifted Structured Light
We present a novel 3D geometry acquisition technique at high resolution based on structured light reconstruction with a low-cost projector-camera system. Using a 1D mechanical lens-shifter extension in the projector light path, the projected pattern is shifted in fine steps at sub-pixel scale with a granularity of down to 2048 steps per projected pixel, which opens up novel possibilities in depth accuracy and smoothness for the acquired geometry. Combining the mechanical lens-shifter extension with a multiple phase shifting technique yields a measuring range of 120x80 mm while at the same time providing a high depth resolution of better than 100 micron. Reaching far beyond depth resolutions achieved by conventional structured light scanning approaches with projector-camera systems, depth layering effects inherent to conventional techniques are fully avoided. Relying on low-cost consumer products only, we reach an area resolution of down to 55 micron (limited by the camera). We see two fields of benefit. Firstly, our acquisition setup can reconstruct finest details of small Cultural Heritage objects such as antique coins and thus digitally preserve them in appropriate precision. Secondly, our accurate height fields can be viable input to physically based rendering in combination with measured material BRDFs to reproduce compelling spatially varying, material-specific effects.
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