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A Full Inversion Unconstrained Ultrasound Elastography Technique for Prostate Cancer Assessment

机译:前列腺癌评估的全反转无约束超声弹性成像技术

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Prostate cancer detection at early stage is very critical for desirable treatment outcome. In fact prostate cancer can be cured, if it is detected at early stage. Among imaging modalities used for cancer assessment, ultrasound elastography is emerging as an effective clinical tool for prostate and breast cancer diagnosis. Current clinical ultrasound elastography systems utilize strain imaging where tissue strain images are generated to approximate the tissue elastic modulus distribution. While strain images can be generated in real-time fashion, they lack the accuracy necessary for having high sensitivity and specificity. To improve strain imaging, researchers have developed full inversion based elastography techniques. These techniques are not based on simplifying assumptions such as tissue stress uniformity leading to accurate elastic modulus reconstruction. The drawback of these techniques, however, is that they are computationally intensive, hence are not suitable for real-time imaging. Among these techniques, a constrained elastography technique was developed which showed promising results as long as the tumor geometry can be obtained accurately from the imaging modality used in conjunction with elastography. This requirement is not easy to fulfill, especially with ultrasound imaging. To address this issue, we present an unconstrained full inversion ultrasound elastography method for prostate cancer imaging where knowledge of tissue geometry is not necessary. Tissue elastic modulus reconstruction in the proposed elastography technique is iterative, where each iteration involves tissue stress computation using Finite Element Method(FEM)followed by Young's modulus updating using Hooke's law. The method was validated using in silico and tissue mimicking prostate phantom studies. Results obtained from these studies indicate that the technique is reasonably accurate and robust.
机译:早期检测前列腺癌对于理想的治疗结果非常关键。实际上,如果在早期发现前列腺癌,就可以治愈。在用于癌症评估的成像方式中,超声弹性成像正在成为前列腺和乳腺癌诊断的有效临床工具。当前的临床超声弹性成像系统利用应变成像,其中产生组织应变图像以近似组织弹性模量分布。尽管可以实时生成应变图像,但它们缺乏具有高灵敏度和特异性的必要精度。为了改善应变成像,研究人员开发了基于反演的完全弹性成像技术。这些技术不是基于简化的假设,例如组织应力均匀性会导致精确的弹性模量重建。但是,这些技术的缺点是它们计算量大,因此不适合实时成像。在这些技术中,开发了一种受约束的弹性成像技术,该技术显示出令人鼓舞的结果,只要可以从与弹性成像结合使用的成像方式中准确获得肿瘤的几何形状即可。这个要求不容易实现,尤其是在超声成像中。为了解决这个问题,我们提出了一种无约束力的全倒置超声弹性成像方法,用于不需要组织几何学知识的前列腺癌成像。所提出的弹性成像技术中的组织弹性模量重建是迭代的,其中每次迭代都涉及使用有限元方法(FEM)进行组织应力计算,然后使用胡克定律更新杨氏模量。该方法已通过计算机模拟和模拟前列腺体模的组织进行了验证。从这些研究中获得的结果表明,该技术相当准确且可靠。

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