用深度学习方法分析和估计病理数据和结果

Ahmet Anıl Şakir, A. Işık, Ö. Özmen, V. Ipek
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引用次数: 0

摘要

与人类疾病一样,动物疾病的快速诊断具有重要意义。为了正确地进行疾病治疗,诊断必须具有高准确性和快速诊断。在本研究中,通过使用决策树分类模型和KNN分类模型估计了Burdur Mehmet Akif Ersoy大学兽医学院病理学系2000-2020年期间检查的数据集中的疾病类型。对数据集中的年龄、类型、城市和性别等类别进行了图形分析。为了给出准确的估计和分析过程,通过一些预处理对数据集进行了校正,并完成了数据集中缺失的数据。人们认为,从估计和分析中获得的结果将允许在动物疾病诊断中进行快速和准确的诊断。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis and Estimation of Pathological Data and Findings with Deep Learning Methods
As in human diseases, rapid diagnosis of animal diseases is of great importance. In order for the disease treatments to be carried out properly, the diagnosis must be of high accuracy, as well as the rapid diagnosis. In this study, the disease types in the data set consisting of the data examined between the years 2000-2020 belonging to the Department of Pathology of the Faculty of Veterinary Medicine of Burdur Mehmet Akif Ersoy University were estimated by using the decision tree classification model and the KNN classification model. Categories such as age, type, city, and gender in the data set were analyzed in graphics. For the estimation and analysis processes to give accurate results, the data set was corrected by going through some pre-processes and the missing data in the data set was completed. It is thought that the results obtained from the estimation and analysis will allow rapid and accurate diagnosis in animal disease diagnoses.
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