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用于改善经直肠超声引导的弥散光学断层扫描以进行前列腺癌成像的层次聚类方法。

Hierarchical clustering method to improve transrectal ultrasound-guided diffuse optical tomography for prostate cancer imaging.

作者信息

Kavuri Venkaiah C, Liu Hanli

机构信息

Department of Bioengineering, University of Texas at Arlington, 500 UTA BLVD., Arlington, TX, 76010.

Department of Bioengineering, University of Texas at Arlington, 500 UTA BLVD., Arlington, TX, 76010.

出版信息

Acad Radiol. 2014 Feb;21(2):250-62. doi: 10.1016/j.acra.2013.11.003.

Abstract

The inclusion of anatomical prior information in reconstruction algorithms can improve the quality of reconstructed images in near-infrared diffuse optical tomography (DOT). Prior literature on possible locations of human prostate cancer from transrectal ultrasound (TRUS), however, is limited and has led to biased reconstructed DOT images. In this work, we propose a hierarchical clustering method (HCM) to improve the accuracy of image reconstruction with limited prior information. HCM reconstructs DOT images in three steps: 1) to reconstruct the human prostate, 2) to divide the prostate region into geometric clusters to search for anomalies in finer clusters, 3) to continue the geometric clustering within anomalies for improved reconstruction. We demonstrated this hierarchical clustering method using computer simulations and laboratory phantom experiments. Computer simulations were performed using combined TRUS/DOT probe geometry with a multilayered model; experimental demonstration was performed with a single-layer tissue simulating phantom. In computer simulations, two hidden absorbers without prior location information were reconstructed with a recovery rate of 100% in their locations and 95% in their optical properties. In experiments, a hidden absorber without prior location information was reconstructed with a recovery rate of 100% in its location and 83% in its optical property.

摘要

在近红外漫射光学层析成像(DOT)的重建算法中纳入解剖学先验信息,可以提高重建图像的质量。然而,先前关于经直肠超声(TRUS)检测人类前列腺癌可能位置的文献有限,这导致了重建的DOT图像存在偏差。在这项工作中,我们提出了一种层次聚类方法(HCM),以在有限的先验信息下提高图像重建的准确性。HCM分三步重建DOT图像:1)重建人体前列腺;2)将前列腺区域划分为几何簇,以便在更精细的簇中搜索异常;3)在异常区域内继续进行几何聚类以改进重建。我们通过计算机模拟和实验室体模实验展示了这种层次聚类方法。计算机模拟使用结合了TRUS/DOT探头几何结构的多层模型进行;实验演示使用单层组织模拟体模进行。在计算机模拟中,两个没有先验位置信息的隐藏吸收体在位置上的恢复率为100%,在光学特性上的恢复率为95%。在实验中,一个没有先验位置信息的隐藏吸收体在位置上的恢复率为100%,在光学特性上的恢复率为83%。

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