首页> 外文期刊>IEEE transactions on visualization and computer graphics >FibAR: Embedding Optical Fibers in 3D Printed Objects for Active Markers in Dynamic Projection Mapping
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FibAR: Embedding Optical Fibers in 3D Printed Objects for Active Markers in Dynamic Projection Mapping

机译:纤维:在动态投影映射中嵌入3D打印物体中的光纤,用于动态投影映射中的活动标记

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This paper presents a novel active marker for dynamic projection mapping (PM) that emits a temporal blinking pattern of infrared (IR) light representing its ID. We used a multi-material three dimensional (3D) printer to fabricate a projection object with optical fibers that can guide IR light from LEDs attached on the bottom of the object. The aperture of an optical fiber is typically very small; thus, it is unnoticeable to human observers under projection and can be placed on a strongly curved part of a projection surface. In addition, the working range of our system can be larger than previous marker-based methods as the blinking patterns can theoretically be recognized by a camera placed at a wide range of distances from markers. We propose an automatic marker placement algorithm to spread multiple active markers over the surface of a projection object such that its pose can be robustly estimated using captured images from arbitrary directions. We also propose an optimization framework for determining the routes of the optical fibers in such a way that collisions of the fibers can be avoided while minimizing the loss of light intensity in the fibers. Through experiments conducted using three fabricated objects containing strongly curved surfaces, we confirmed that the proposed method can achieve accurate dynamic PMs in a significantly wide working range.
机译:本文提出了一种用于动态投影映射(PM)的新型活性标记,发出表示其ID的红外(IR)光的时间闪烁模式。我们使用了一种多材料三维(3D)打印机来制造具有光纤的投影物体,可以将来自连接在物体底部的LED的IR光。光纤的光圈通常非常小;因此,对投影下的人类观察者是不可抑制的,并且可以放置在投影表面的强弯曲部分上。另外,我们的系统的工作范围可以比以前的基于标记的方法大,因为理论上可以由放置在来自标记的各种距离范围内的摄像机识别的闪透图案。我们提出了一种自动标记放置算法来扩展在投影对象的表面上的多个活动标记,使得可以使用从任意方向的捕获图像鲁棒地估计其姿势。我们还提出了一种优化框架,用于以这样的方式确定光纤的路线,使得可以避免纤维的碰撞,同时最小化纤维中的光强度的损失。通过使用具有强烈弯曲表面的三个制造物体进行的实验,我们确认所提出的方法可以在明显宽的工作范围内实现精确的动态PM。

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