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具有增强现实的新型多模态、多尺度成像系统。

Novel Multimodal, Multiscale Imaging System with Augmented Reality.

作者信息

Mela Christopher, Papay Francis, Liu Yang

机构信息

Iowa Technology Institute, The University of Iowa, 103 South Capitol Street, Iowa City, IA 52242, USA.

Department of Biomedical Engineering, The University of Akron, 302 E Buchtel Ave, Akron, OH 44325, USA.

出版信息

Diagnostics (Basel). 2021 Mar 4;11(3):441. doi: 10.3390/diagnostics11030441.

Abstract

A novel multimodal, multiscale imaging system with augmented reality capability were developed and characterized. The system offers 3D color reflectance imaging, 3D fluorescence imaging, and augmented reality in real time. Multiscale fluorescence imaging was enabled by developing and integrating an in vivo fiber-optic microscope. Real-time ultrasound-fluorescence multimodal imaging used optically tracked fiducial markers for registration. Tomographical data are also incorporated using optically tracked fiducial markers for registration. Furthermore, we characterized system performance and registration accuracy in a benchtop setting. The multiscale fluorescence imaging facilitated assessing the functional status of tissues, extending the minimal resolution of fluorescence imaging to ~17.5 µm. The system achieved a mean of Target Registration error of less than 2 mm for registering fluorescence images to ultrasound images and MRI-based 3D model, which is within clinically acceptable range. The low latency and high frame rate of the prototype system has shown the promise of applying the reported techniques in clinically relevant settings in the future.

摘要

开发并表征了一种具有增强现实能力的新型多模态、多尺度成像系统。该系统可实时提供三维彩色反射成像、三维荧光成像和增强现实。通过开发和集成体内光纤显微镜实现了多尺度荧光成像。实时超声-荧光多模态成像使用光学跟踪的基准标记进行配准。断层扫描数据也通过光学跟踪的基准标记进行配准并入。此外,我们在台式设置中表征了系统性能和配准精度。多尺度荧光成像有助于评估组织的功能状态,将荧光成像的最小分辨率扩展到约17.5 µm。该系统在将荧光图像与超声图像和基于MRI的三维模型配准时,目标配准误差的平均值小于2 mm,这在临床可接受范围内。原型系统的低延迟和高帧率显示了未来在临床相关环境中应用所报道技术的前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ba3f/7999725/23f7d9a95e49/diagnostics-11-00441-g001.jpg

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