Implementation of Naïve Bayes Method with Certainty Factor for Disease and Pest Diagnosis on Onion Plants

Yahya Alamudin, R. Arifudin
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Abstract

Shallots can be regarded as non-substituted, which is a plant that is used as a food seasoning and herbal medicine. Every year, the demand for shallots is increasing. But along with the ever-increasing demand, it is inversely proportional to the lack of availability. The cause of this is the lack of knowledge about shallot cultivation, including pest and disease disturbances. The purpose of this research is to help farmers diagnose early diseases and pests that attack shallot plants. With the presence of these pests and diseases, a system that contains knowledge from an expert is needed to diagnose early symptoms experienced by plants. In this study, the authors created an expert system for the diagnosis of diseases and pests on shallot plants. Researchers used the Naïve Bayes method as a classification method for each selected symptom. Then the Certainty Factor as a method of determining the value of confidence in the diagnosis results in the first method. In this study, it produced an accuracy rate of 97%.
Naïve确定因子贝叶斯方法在洋葱病虫害诊断中的实现
葱可视为非代用品,是一种用作食品调味料和草药的植物。每年对青葱的需求都在增加。但随着需求的不断增长,它与可用性的缺乏成反比。造成这种情况的原因是缺乏关于大葱栽培的知识,包括病虫害的干扰。这项研究的目的是帮助农民早期诊断攻击葱植物的病虫害。由于这些病虫害的存在,需要一个包含专家知识的系统来诊断植物所经历的早期症状。在本研究中,作者建立了葱病虫害诊断专家系统。研究人员使用Naïve贝叶斯方法作为每个选定症状的分类方法。然后,确定因子作为确定诊断置信度值的方法得到了第一种方法的结果。在这项研究中,它产生了97%的准确率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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