3D Hyperspectral Light-Field Imaging: a first intraoperative implementation

Q4 Engineering
Eric L. Wisotzky, Peter Eisert, Anna Hilsmann
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引用次数: 0

Abstract

Abstract Hyperspectral imaging is an emerging technology that has gained significant attention in the medical field due to its ability to provide precise and accurate imaging of biological tissues. The current methods of hyperspectral imaging, such as filter-wheel, snapshot, line-scanning, and push-broom cameras have limitations such as low spatial and spectral resolution, slow acquisition time. New developments on the field of light field cameras show the potential to overcome these limitations. In this paper, we use a novel hyperspectral lightfield camera and try to combine the capability of hyperspectral and 3D analysis. For this purpose we calibrate our system and test it during two ENT-surgeries to show its potential for improving surgical outcomes. The micro-lenses of the camera map 66 spectral sub-images onto the sensor allowing to reconstruct the spectral behavior of the captured scene in the spectral range of 350-1000nm. In addition, we use the sensor data to apply a 3D camera calibration pipeline to allow 3D surface reconstruction. We captured 26 calibration images and achieved calibration results in accordance to stated company data. The best calibration showed a re-projection error of 0.55 px. Further, we tested the camera during a parotidectomy and a neck-dissection. The extracted reflectance spectra of the selected venal and arterial regions correspond perfectly to the spectrum of oxygenated and deoxygenated hemoglobin. For the first time, up to our knowledge, a hyperspectral lightfield camera has been used during a surgery. We were able to continuously capture images and analyze the reconstructed spectra of specific tissue types. Further, we are able to use the sensor data of the micro-lens projections to calibrate the multilens camera system for later intraoperative measurement tasks.
3D高光谱光场成像:术中首次应用
高光谱成像是一项新兴技术,由于其能够提供精确和准确的生物组织成像,在医学领域受到了极大的关注。目前的高光谱成像方法,如滤波轮、快照、行扫描和推扫帚相机等,存在空间和光谱分辨率低、采集时间慢等局限性。光场相机领域的新发展显示了克服这些限制的潜力。本文采用了一种新型的高光谱光场相机,并尝试将高光谱与三维分析相结合。为此,我们校准了我们的系统,并在两次ent手术中对其进行了测试,以显示其改善手术结果的潜力。相机的微镜头将66个光谱子图像映射到传感器上,从而可以在350-1000nm的光谱范围内重建捕获场景的光谱行为。此外,我们使用传感器数据应用3D相机校准管道,以允许3D表面重建。我们捕获了26张校准图像,并根据所述公司数据获得了校准结果。最佳校准显示重投影误差为0.55 px。此外,我们在腮腺切除术和颈部清扫术中测试了相机。所提取的静脉和动脉区域的反射光谱与氧合血红蛋白和脱氧血红蛋白的光谱完全对应。据我们所知,这是第一次在手术中使用高光谱光场相机。我们能够连续捕获图像并分析特定组织类型的重建光谱。此外,我们能够使用微透镜投影的传感器数据来校准多透镜相机系统,以用于后期的术中测量任务。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Current Directions in Biomedical Engineering
Current Directions in Biomedical Engineering Engineering-Biomedical Engineering
CiteScore
0.90
自引率
0.00%
发文量
239
审稿时长
14 weeks
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