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Improved Infrared Thermography Based Image Construction for Biomedical applications using Markov Chain Monte Carlo method

机译:利用马尔可夫链Monte Carlo方法改进了用于生物医学应用的红外热成像基于图像结构

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Breast Thermography is one of the scanning techniques used for breast cancer detection. Looking at breast thermal image it is difficult to interpret parameters of tumor such as depth, size and location which are useful for diagnosis and treatment of breast cancer. In our previous work (ITBIC) we proposed a framework for estimation of tumor size using clever algorithms and the radiative heat transfer model. In this paper, we expand it to incorporate the more realistic Pennes bio-heat transfer model and Markov Chain Monte Carlo (MCMC) method, and analyze it's performance in terms of computational speed, accuracy, robustness against noisy inputs, ability to make use of prior information and ability to estimate multiple parameters simultaneously. We discuss the influence of various parameters used in its implementation. We apply this method on clinical data and extract reliable results for the first time using breast thermography.
机译:乳房热成像是用于乳腺癌检测的扫描技术之一。看着乳房热图是难以解释肿瘤的参数,如深度,大小和位置,这对于乳腺癌的诊断和治疗有用。在我们以前的工作(ITBIC)中,我们提出了一种使用巧妙算法和辐射传热模型估计肿瘤大小的框架。在本文中,我们将其扩展以纳入更现实的Pennes生物传热模型和马尔可夫链蒙特卡罗(MCMC)方法,并在计算速度,准确性,对嘈杂输入的鲁棒性方面进行分析,令人忍耐输入,利用的能力以前的信息和能力同时估计多个参数。我们讨论了各种参数在实现中的影响。我们在临床数据上应用此方法,并使用乳房热成像首次提取可靠的结果。

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