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The application of artificial neural networks and decision tree model in predicting post-operative complication for gastric cancer patients.

机译:人工神经网络和决策树模型在胃癌患者术后并发症预测中的应用。

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BACKGROUND/AIMS: Gastric cancer remains a leading cause of death worldwide. Post-operative complication is one important factor which causes mortality of gastric cancer patients after gastrectomy. Better prediction of post-operative complication before gastrectomy can significantly reduce post-operative mortality and morbidity. Therefore, 3 data mining techniques were applied in this study on improving prediction of post-operative complication. METHODOLOGY: A retrospective study was performed on 521 patients from 3 over 2,000 acute-bed medical centers in Taiwan during February 2002 to October 2004. Pre- and post-operative clinical data were collected and analyzed by applying 3 data mining techniques, included Artificial Neural Networks (ANN), Decision Tree (DT) and Logistic Regression (LR). RESULTS: Results of this study indicated that ANN was a better technique than DT and LR in predicting post-operative complication. Nutritious status, pathological characteristics and operational characteristics wereimportant predictors of post-operative complication. CONCLUSIONS: Further study on predicting postoperative complication in gastric cancer patients is still important. However, how to combine different data mining techniques to improve accuracies of prediction will be another important issue for clinicians and researchers.
机译:背景/目的:胃癌仍然是世界范围内主要的死亡原因。术后并发症是导致胃癌患者胃切除术后死亡的重要因素之一。对胃切除术术后并发症的更好的预测可以显着降低术后死亡率和发病率。因此,本研究采用了3种数据挖掘技术来改善术后并发症的预测。方法:从2002年2月至2004年10月,对台湾3个超过2,000个急性病床医疗中心的521例患者进行了回顾性研究。采用包括人工神经在内的3种数据挖掘技术,对术前和术后的临床数据进行了收集和分析。网络(ANN),决策树(DT)和逻辑回归(LR)。结果:本研究结果表明,在预测术后并发症方面,人工神经网络比DT和LR更好。营养状况,病理特征和手术特征是术后并发症的重要预测指标。结论:进一步研究预测胃癌患者术后并发症的方法仍很重要。但是,如何结合不同的数据挖掘技术来提高预测的准确性将是临床医生和研究人员的另一个重要问题。

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