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Health Recommender System for Cervical Cancer Prognosis in Women

机译:女性宫颈癌预后的健康推荐系统

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The large amount of digital data of patients are available for health domain to be used successfully for extracting information and aid disease prediction. Therefore, the available digital information for patient-oriented decision-making substantially expanded. Recommender systems may offer more laymen-friendly knowledge to patients in this sense, helping to better understand their clinical status as reflected by their reports. Health Recommender Systems (HRSs) are a viable solution when it comes to offering resources to support clinicians in the diagnosis of illnesses, as well as supporting people with guidance on how to preserve their health. This study has proposed a Health Recommender System using a feature selection method based on the Multi Objective Genetic Algorithm (MOGA) to help women by providing information on the features responsible for prognosis of Cervical Cancer in women. It also recommends some prediction models for Cervical Cancer prediction with high accuracy. It has used Cervical Cancer Risk Classification dataset for implementation and accuracy as the evaluation parameter.
机译:患者的大量数字数据可用于健康域,以成功用于提取信息和辅助疾病预测。因此,用于患者导向的决策的可用数字信息基本上扩展。在这种意义上,推荐系统可以为患者提供更多的友好知识,帮助更好地了解他们的报告反映的临床状况。健康推荐系统(HRSS)是一种可行的解决方案,旨在提供资源,以支持临床医生在诊断疾病中,以及支持如何保护健康的指导。本研究提出了一种使用基于多目标遗传算法(MOGA)的特征选择方法的健康推荐系统,以帮助女性提供有关妇女宫颈癌预后的特征的信息。它还为宫颈癌预测的预测模型提供了高精度。它使用宫颈癌风险分类数据集进行了实现和准确性作为评估参数。

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