预测膀胱炎症和急性肾盂肾炎的分类模型

Chanin Lochotinunt, Suejit Pechprasarn, T. Treebupachatsakul
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引用次数: 0

摘要

泌尿系统疾病可发生在泌尿系统的许多器官,如肾脏、膀胱、肾盂、输尿管和尿道。泌尿系统最常见的疾病是膀胱炎症、膀胱炎和急性肾炎。本研究应用分类人工智能模型从患者体温、恶心、腰痛、尿推、排尿痛、尿道灼烧6个参数预测膀胱炎症和急性肾盂肾炎2种症状。这里,主成分分析或PCA也被用于识别用于训练机器学习模型的关键参数。在这里,我们建议比较几种机器学习分类模型,并展示准确诊断这两种症状的合适模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Classification model for predicting inflammation of the urinary bladder and acute nephritis of the renal pelvis
Urinary tract diseases can occur in many organs of the urinary system, such as kidneys, urinary bladder, renal pelvis, ureters, and urethra. The most common disease in the urinary system is bladder inflammation, cystitis, and acute nephritis. In this research, the classification artificial intelligent model is applied to predict 2 symptoms of inflammation of the urinary bladder and acute nephritis of the renal pelvis from 6 parameters, including body temperature of patient, nausea, lumbar pain, urinary pushing, micturition pains, and burning of the urethra. Here, the principal components analysis or PCA are also applied to identify the critical parameters employed to train the machine learning model. Here, we propose to compare several machine learning classification models and show the proper model accurately diagnosing these two symptoms.
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