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基于尿路造影信息评估用于诊断肾囊肿、肿瘤及正常变异的计算机化贝叶斯模型。

Evaluation of a computerized Bayesian model for diagnosis of renal cyst vs. tumor vs. normal variant from urogram information.

作者信息

Fryback D G, Thornbury J R

出版信息

Invest Radiol. 1976 Mar-Apr;11(2):102-11. doi: 10.1097/00004424-197603000-00005.

Abstract

The diagnostic problem of cyst/tumor/normal variant raised on an excretory urogram leads to a decision to do needle aspiration or renal arteriography. This decision depends critically upon the probability distribution for the three diagnoses. A computerized Bayesian model of a uroradiologist's diagnostic process in solving the problem was developed. The model was based on subjective probabilities supplied by an experienced uroradiologist. The model was evaluated in terms of its ability to decrease the cost of further diagnosis regarding aspiration versus arteriography. The model's output was compared with decisions made by unaided radiologists viewing the same panel of 50 urogram test cases. Results indicate that the model does not improve upon the decisions made by a radiologist highly experienced with this diagnostic problem. However, the decisions made by unaided, less experienced radiologists result in greater cost than those of the model.

摘要

排泄性尿路造影中出现的囊肿/肿瘤/正常变异的诊断问题,会导致决定进行针吸活检或肾动脉造影。这一决定关键取决于三种诊断的概率分布。开发了一个计算机化的贝叶斯模型,用于模拟泌尿放射科医生解决该问题的诊断过程。该模型基于一位经验丰富的泌尿放射科医生提供的主观概率。根据该模型在降低针吸活检与动脉造影进一步诊断成本方面的能力进行评估。将该模型的输出结果与观看同一组50例尿路造影测试病例的无辅助放射科医生所做的决定进行比较。结果表明,该模型在有此诊断问题丰富经验的放射科医生所做的决定方面并无改进。然而,无辅助、经验较少的放射科医生所做的决定比该模型导致的成本更高。

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