面向医疗诊断系统的室外空气污染预测信息模型

Valerii Lovkin, A. Oliinyk, Tetiana Fedoronchak, Yurii Lukashenko
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引用次数: 0

摘要

医疗诊断系统需要空气污染物浓度的预测数据,以支持个人决定一天的户外活动。应将医生就医疗诊断作出的决定扩大到病人作出的决定。提出了室外空气污染预测的信息模型。信息模型是在预测模型的基础上建立并训练的用于预测二氧化氮浓度的预测模型。采用基于长短期记忆结构的递归神经网络建立预测模型。实验调查使用2001 - 2020年在马德里收集的数据集进行。实验验证了所建立模型的有效性。将所建立的信息模型作为医学诊断系统中二氧化氮浓度预测的独立模块进行开发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Information Model of Outdoor Air Pollution Prediction for Medical Diagnosis System
Medical diagnosis system needs prediction data on concentration of air pollutants to support making of personal decisions about outdoor activities for a day. It should extend decision made by doctor concerning medical diagnosis to decisions made by patient. Information model of outdoor air pollution prediction was presented. Information model is based on prediction model which was created and trained for prediction of nitrogen dioxide concentration. Prediction model was created using recurrent neural network based on long short term memory architecture. Experimental investigation was performed using dataset collected in Madrid during period from 2001 to 2020. Experimental investigation approved efficiency of the developed model. The created information model was developed as separate module of nitrogen dioxide concentration prediction inside medical diagnosis system.
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