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Extraction of Risk Factors by Multi-agent Voting Model Using Automatically Defined Groups

机译:使用自动定义组的多主体投票模型提取风险因素

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摘要

In medical treatment, it is difficult to diagnose diseases directly from raw real value data obtained by medical examination for patients. For support of the task, it is necessary to transform the raw data into meaningful knowledge representations, which represent whether the characteristic symptoms of the disease are observed. In this research, we aim to acquire such multiple risk factors automatically from the medical database. We consider that a multi-agent approach is effective for extracting multiple factors. In order to realize the approach, we propose a new method using an improved Genetic Programming method, Automatically Defined Groups (ADG). By using this method, multiple risk factors are extracted, and the diagnosis is performed through multi-agent cooperative voting. We applied this method to the coronary heart disease database, and showed the effectiveness of this method.
机译:在医疗中,难以直接通过对患者进行身体检查获得的原始真实价值数据来诊断疾病。为了支持该任务,有必要将原始数据转换为有意义的知识表示,以表示是否观察到疾病的特征症状。在这项研究中,我们旨在从医学数据库中自动获取这样的多个风险因素。我们认为,多主体方法可有效提取多个因素。为了实现该方法,我们提出了一种使用改进的遗传规划方法的新方法,即自动定义组(ADG)。通过这种方法,可以提取多个风险因素,并通过多主体合作投票进行诊断。我们将该方法应用于冠心病数据库,并证明了该方法的有效性。

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