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首页> 外文期刊>Cytopathology >Validation of a decision support system for the cytodiagnosis of fine needle aspirates of the breast using a prospectively collected dataset from multiple observers in a working clinical environment.
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Validation of a decision support system for the cytodiagnosis of fine needle aspirates of the breast using a prospectively collected dataset from multiple observers in a working clinical environment.

机译:使用前瞻性收集的来自工作环境中多个观察者的数据集,对用于乳腺细针抽吸的细胞诊断的决策支持系统进行验证。

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摘要

We have used a 692 case dataset, collected retrospectively by a single observer, to develop decision support systems for the cytodiagnosis of fine needle aspirates of breast lesions. In this study, we use a 322 case dataset that was prospectively collected by multiple observers in a working clinical environment to test two predictive systems, using logistic regression and the multilayer perceptron (MLP) type of neural network. Ten observed features and the patient age were used as input features. The systems were developed using a training set and test set from the single observer dataset and then applied to the multiple observer dataset. For the independent test cases from the single observer dataset, with a threshold set for no false positives on the training set, logistic regression produced a sensitivity of 82% (95% confidence interval 73-91) and a predictive value of a positive result (PV +) of 98% (95-99), the values for the MLP were 79% (69-89) and 100%, respectively. However the performance on the prospective multiple observer dataset was much worse, with a sensitivity of 72% (65-80), and PV + of 97% (94-99) for logistic regression and 67% (60-75) and 91% (85-97) for the MLP. These results suggest that there is considerable interobserver variability for the defined features and that this system is unsuitable for further development in the clinical environment unless this problem can be overcome.
机译:我们已经使用了由单个观察者回顾性收集的692个病例数据集来开发决策支持系统,用于乳腺病变细针抽吸的细胞诊断。在这项研究中,我们使用了322个病例数据集,该数据集是由多个观察者在工作的临床环境中前瞻性收集的,用于使用逻辑回归和多层感知器(MLP)类型的神经网络来测试两个预测系统。将十个观察到的特征和患者年龄用作输入特征。使用来自单个观察者数据集的训练集和测试集开发系统,然后将其应用于多个观察者数据集。对于来自单个观察者数据集的独立测试用例,为训练集设置了无假阳性的阈值,逻辑回归得出的敏感性为82%(95%置信区间73-91),阳性结果的预测值为( PV +)为98%(95-99),MLP值分别为79%(69-89)和100%。但是,预期多观察者数据集的性能要差得多,对逻辑回归的敏感性为72%(65-80),PV +为97%(94-99),对67%(60-75)和91% (85-97)为MLP。这些结果表明,对于定义的特征,观察者之间存在很大差异,并且除非可以解决此问题,否则该系统不适合在临床环境中进行进一步开发。

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