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首页> 外文期刊>Applied optics >Improved multi-resolution foveated laparoscope with real-time digital transverse chromatic correction
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Improved multi-resolution foveated laparoscope with real-time digital transverse chromatic correction

机译:改进的多分辨率进行腹腔镜,具有实时数字横向校正

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摘要

A multi-resolution foveated laparoscope (MRFL) with autofocus and zooming capabilities was previously designed to address the limiting trade-off between spatial resolution and field of view during laparoscopic minimally invasive surgery. The MRFL splits incoming light into two paths enabling simultaneous capture of the full surgical field and a zoomed-in view of the local surgical site. A fully functional prototype was constructed to demonstrate and test the autofocus, zooming capabilities, and clinical utility of this new laparoscope. The test of the prototype in both dry lab and animal models was successful, but it also revealed several major limitations of the prototype. In this paper, we present a brief overview of the aforementioned MRFL prototype design and results, and the shortcomings associated with its optical and mechanical designs. We then present several methods to address the shortcomings of the existing prototype with a modified optical layout and redesigned mechanics. The performances of the new and old system prototypes are comparatively analyzed in accordance with the design goals of the new MRFL. Finally, we present and demonstrate a real-time digital method for correcting transverse chromatic aberration to further improve the overall image quality, which can be adapted to future MRFL systems. (C) 2020 Optical Society of America
机译:先前,具有自动对焦和变焦能力的多分辨率进行的腹腔镜(MRFL),以解决空间分辨率与腹腔镜微创手术期间的空间分辨率和视野之间的限制权衡。 MRFL将输入光分成两条路径,从而同时捕获完整的外科手术场和局部外科部位的缩小视图。构建了一个全功能的原型,以证明和测试这种新的腹腔镜的自动对焦,变焦能力和临床效用。干燥实验室和动物模型的原型的测试成功,但它还揭示了原型的几个主要限制。在本文中,我们介绍了上述MRFL原型设计和结果的简要概述,以及与其光学和机械设计相关的缺点。然后,我们提出了几种方法来解决现有原型的缺点,并通过修改的光学布局和重新设计的力学来解决现有原型的缺点。根据新MRFL的设计目标相比分析了新的和旧系统原型的性能。最后,我们展示并展示了一种用于校正横向色差的实时数字方法,以进一步提高整体图像质量,这可以适应未来的MRFL系统。 (c)2020美国光学学会

著录项

  • 来源
    《Applied optics》 |2020年第22期|共13页
  • 作者单位

    Univ Arizona 3D Visualizat &

    Imaging Syst Lab Coll Opt Sci 1630 E Univ Blvd Tucson AZ 85721 USA;

    Univ Arizona 3D Visualizat &

    Imaging Syst Lab Coll Opt Sci 1630 E Univ Blvd Tucson AZ 85721 USA;

    Univ Arizona 3D Visualizat &

    Imaging Syst Lab Coll Opt Sci 1630 E Univ Blvd Tucson AZ 85721 USA;

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  • 正文语种 eng
  • 中图分类 应用;
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