近红外区域荧光图像的自动分割方法

N. A. Obukhova, Xin Yang
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引用次数: 0

摘要

介绍。近红外荧光成像技术在腹腔镜手术中应用广泛。术中荧光导航是基于对近红外图像(NIR)荧光区域的精确分割,从而提高手术干预的准确性和安全性。同时也是腹腔镜手术的重要辅助技术。因此,寻找一种能够准确分割近红外图像荧光区域的自动方法,有助于提高术中导航的效率。一种近红外荧光图像自动分割方法的开发。材料和方法。该方法分为两个阶段。在第一阶段,基于Otsu方法找到的自适应阈值对图像进行初步分割。第二阶段,使用Otsu加权法对分割区域进行细化。该方法的主要优点在于参数α的自动确定,而参数α决定了Otsu加权方法的性能。实验使用了276张实际的腹腔镜图像。用度量误分类误差(ME)来评价分割的质量。该方法的平均代谢能为10.4%,而传统的Otsu方法的平均代谢能为27.1%。与Otsu的方法相比,该方法提高了荧光图像分割的效率和准确性。这允许在腹腔镜手术中更高的诊断准确性和更有效的导航。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automatic Method for Segmentation of Fluorescent Images Obtained in the Near-Infrared Region
Introduction. Near-infrared fluorescence imaging technology is widely used in laparoscopic surgery. Intraoperative fluorescence navigation is based on accurate segmentation of fluorescent regions in near-infrared images (NIR images), thus increasing the accuracy and safety of surgical intervention. Moreover, it is an important auxiliary technology for laparoscopic surgery. Therefore, the search for an automatic method that allows for accurate segmentation of fluorescent regions in NIR images can contribute to an improved efficiency of intraoperative navigation.Aim. Development of a method for automatic segmentation of fluorescent images obtained in the near infrared range. Materials and methods. The proposed method consists of two stages. At the first stage, a preliminary segmentation of the image is performed based on the adaptive threshold found by Otsu’s method. At the second stage, the segmented area is refined using Otsu’s weighted method. The main advantage of the proposed method consists in the automatic determination of parameter α, which determines the performance of Otsu’s weighted method. Experiments were carried out using 276 actual laparoscopic images. The metric misclassification error (ME) was used to assess the quality of segmentation.Results. The average ME of the proposed method was found to be 10.4 %, compared to that obtained by the conventional Otsu’s method of 27.1 %.Conclusion. In comparison with Otsu’s method, the developed method shows an increased efficiency and accuracy of fluorescent image segmentation. This allows for a higher diagnostic accuracy and a more efficient navigation during laparoscopic surgery.
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