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Estimating Survival in Patients with Operable Skeletal Metastases: An Application of a Bayesian Belief Network

机译:估计可手术骨骼转移患者的生存:贝叶斯信念网络的应用。

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摘要

BackgroundAccurate estimations of life expectancy are important in the management of patients with metastatic cancer affecting the extremities, and help set patient, family, and physician expectations. Clinically, the decision whether to operate on patients with skeletal metastases, as well as the choice of surgical procedure, are predicated on an individual patient's estimated survival. Currently, there are no reliable methods for estimating survival in this patient population. Bayesian classification, which includes Bayesian belief network (BBN) modeling, is a statistical method that explores conditional, probabilistic relationships between variables to estimate the likelihood of an outcome using observed data. Thus, BBN models are being used with increasing frequency in a variety of diagnoses to codify complex clinical data into prognostic models. The purpose of this study was to determine the feasibility of developing Bayesian classifiers to estimate survival in patients undergoing surgery for metastases of the axial and appendicular skeleton.
机译:背景技术准确估计预期寿命对治疗影响四肢的转移性癌症患者非常重要,并有助于设定患者,家庭和医生的期望。在临床上,是否对骨骼转移患者进行手术以及手术方法的选择取决于每个患者的估计生存时间。当前,没有可靠的方法来估计该患者人群的存活率。贝叶斯分类(包括贝叶斯信念网络(BBN)建模)是一种统计方法,该方法探索变量之间的条件,概率关系,以使用观察到的数据估计结果的可能性。因此,BBN模型在各种诊断中的使用频率越来越高,以将复杂的临床数据编码为预后模型。这项研究的目的是确定开发贝叶斯分类器以评估接受轴向和阑尾骨骼转移的手术患者生存率的可行性。

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