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Breast Cancer Predictions by Neural Networks Analysis: a Comparison with Logistic Regression

机译:神经网络分析的乳腺癌预测:与Logistic回归的比较

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This paper presents an exploratory fixed time study to identify the most significant covariates as a precursor to a longitudinal study of specific mortality, disease free survival and disease recurrences. The data comprise consecutive patients diagnosed with primary breast cancer and entered into the study from 1996 at a single French clinical center, Centre L茅on B茅rard, based in Lyon, where they received standard treatment. The methodology was to compare and contrast multi-layer perceptron neural networks (NN) with logistic regression (LR), to identify key covariates and their interactions and to compare the selected variables with those routinely used in clinical severity of illness indices for breast cancer. The Logistic regression in this work was chosen as an accepted standard for prediction by biostatisticians in order to evaluate the neural network. Only covariates available at the time of diagnosis and immediately following surgery were used. We used for comparison classification performance indices: AUROC (AREA Under Receiver-Operating Characteristics) curves, sensitivity, specificity, accuracy and positive predictive value for the two following events of interest: Specific Mortality and Disease Free Survival.
机译:本文介绍了探索性的固定时间研究,以确定最重要的协变量,作为特异性死亡率,无病生存和疾病复发的纵向研究。该数据包括诊断出患有原发性乳腺癌的连续患者,并于1996年在一家法国临床中心进入研究,该研究中心L茅在B茅rard,在里昂,他们接受标准治疗。该方法是将与逻辑回归(LR)进行对比和对比多层的Perceptron神经网络(NN),以识别关键协变量及其相互作用,并将所选择的变量与常规用于乳腺癌疾病指数的临床严重程度进行比较。本工作中的逻辑回归被选为可接受的用于止痛主义者预测的标准,以便评估神经网络。仅使用诊断时和紧接在手术后的协变量。我们用于比较分类性能指数:AUROC(接收器操作特征下的面积)曲线,灵敏度,特异性,准确性和阳性预测值,其两个兴趣事件:特异性死亡率和无病生存。

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