DLP technology application: 3D head tracking and motion correction in medical brain imaging

O. V. Olesen, J. Wilm, R. Paulsen, L. Højgaard, R. Larsen
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引用次数: 1

Abstract

In this paper we present a novel sensing system, robust Near-infrared Structured Light Scanning (NIRSL) for three-dimensional human model scanning application. Human model scanning due to its nature of various hair and dress appearance and body motion has long been a challenging task. Previous structured light scanning methods typically emitted visible coded light patterns onto static and opaque objects to establish correspondence between a projector and a camera for triangulation. In the success of these methods rely on scanning objects with proper reflective surface for visible light, such as plaster, light colored cloth. Whereas for human model scanning application, conventional methods suffer from low signal to noise ratio caused by low contrast of visible light over the human body. The proposed robust NIRSL, as implemented with the near infrared light, is capable of recovering those dark surfaces, such as hair, dark jeans and black shoes under visible illumination. Moreover, successful structured light scan relies on the assumption that the subject is static during scanning. Due to the nature of body motion, it is very time sensitive to keep this assumption in the case of human model scan. The proposed sensing system, by utilizing the new near-infrared capable high speed LightCrafter DLP projector, is robust to motion, provides accurate and high resolution three-dimensional point cloud, making our system more efficient and robust for human model reconstruction. Experimental results demonstrate that our system is effective and efficient to scan real human models with various dark hair, jeans and shoes, robust to human body motion and produces accurate and high resolution 3D point cloud.
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DLP技术应用:医学脑成像中的三维头部跟踪和运动校正
本文提出了一种新的传感系统——鲁棒近红外结构光扫描(NIRSL),用于三维人体模型扫描。人体模型扫描由于其各种发型、服装外观和身体运动的性质,一直是一项具有挑战性的任务。以前的结构光扫描方法通常会将可见的编码光模式发射到静态和不透明的物体上,以在投影仪和相机之间建立三角测量的对应关系。这些方法的成功依赖于扫描具有适当可见光反射表面的物体,如石膏、浅色布。然而,在人体模型扫描应用中,由于人体上的可见光对比度较低,传统的扫描方法存在低信噪比的问题。采用近红外光实现的鲁棒NIRSL能够在可见光照明下恢复那些深色表面,如头发、深色牛仔裤和黑色鞋子。此外,成功的结构光扫描依赖于被扫描对象在扫描过程中是静态的假设。由于人体运动的性质,在人体模型扫描的情况下保持这个假设是非常敏感的。该传感系统利用新型近红外高速LightCrafter DLP投影仪,对运动具有鲁棒性,可提供准确、高分辨率的三维点云,使我们的系统更高效、更鲁棒地用于人体模型重建。实验结果表明,该系统对各种深色头发、牛仔裤和鞋子的真实人体模型具有良好的扫描效果,对人体运动具有较强的鲁棒性,能够生成准确、高分辨率的三维点云。
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