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Real-time structured light-based otoscopy for quantitative measurement of eardrum deformation

机译:实时结构化的基于光的耳镜,可定量测量鼓膜变形

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摘要

An otological profilometry device based on real-time structured light triangulation is presented. A clinical otoscope head is mounted onto a custom-handheld unit containing both a small digital light projector and a high-speed digital camera. Digital fringe patterns are projected onto the eardrum surface and are recorded at a rate of 120 unique frames per second. The relative angle between projection and camera axes causes the projected patterns to appear deformed by the eardrum shape, allowing its full-field three-dimensional (3-D) surface map to be reconstructed. By combining hardware triggering between projector and camera with a dedicated parallel processing pipeline, the proposed system is capable of acquiring a live stream of point clouds of over 300,000 data points per frame at a rate of 40 Hz. Real-time eardrum profilometry adds an additional dimension of depth to the standard two-dimensional otoscopy image and provides a noninvasive tool to enhance the qualitative depth perception of the clinical operator with quantitative 3-D data. Visualization of the eardrum from different perspectives can improve the diagnosis of existing and the detection of impending middle ear pathology. The capability of the device to detect small middle ear pressure changes by monitoring eardrum deformation in real time is demonstrated.
机译:提出了一种基于实时结构化光三角测量的耳科轮廓仪。将临床耳镜头安装到既包含小型数字投光器又包含高速数字照相机的定制手持设备上。数字条纹图案投射到鼓膜表面,并以每秒120个唯一帧的速率记录。投影轴和相机轴之间的相对角度使投影的图案因鼓膜形状而出现变形,从而可以重建其全场三维(3-D)表面图。通过将投影仪和照相机之间的硬件触发与专用的并行处理流水线相结合,所提出的系统能够以40 Hz的速率获取每帧超过300,000个数据点的实时点流。实时鼓膜轮廓测定法为标准的二维耳镜图像增加了深度的附加维度,并提供了一种非侵入性的工具,可通过定量的3D数据增强临床操作人员的定性深度感知。从不同角度可视化鼓膜可以改善对现有耳膜的诊断以及对即将发生的中耳病理的检测。演示了该设备通过实时监视鼓膜变形来检测中耳小压力变化的能力。

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