Application of Forward Chaining Method, Certainty Factor, and Bayes Theorem for Cattle Disease

Q3 Agricultural and Biological Sciences
Fajar Rahardika Bahari Putra, Abdul Fadlil, Rusydi Umar
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引用次数: 0

Abstract

Indonesia is a country that has many natural resources, especially mammals. The Papua and West Papua regions are large provinces with abundant natural resources and tremendous livestock potential. The availability of natural resources in the form of live cattle provides a great opportunity to develop animal husbandry in West Papua province. This research was conducted to create a new expert system with a knowledge base to solve the problems that occur and be useful for the community, especially cattle breeders. The current problem is the delay and lack of medical personnel in diagnosing cattle diseases, the distance that must be traveled, which is still very difficult to travel, and the lack of understanding of farmers in early handling when implications indicate animals. So, the Certainty Factor Method and Bayes Theorem with Forward-Chaining search are used to handle current problems. From the results of manual calculations, Certainty Factor Forward Chaining search is a method that has an uncertainty value of 99.84% for 3-day fever compared to Bayes Theorem Forward Chaining search with a value of 50% for worms, 50% for 3-day fever and 50% for nail rot, if applied then Certainty Factor Forward Chaining search is the most appropriate. Likewise, updating the knowledge base must be done from time to time. So that in the future, it can be compared with other methods and Android-based to facilitate current breeders.
前向连锁法、确定性因子和贝叶斯定理在牛病中的应用
印度尼西亚是一个自然资源丰富的国家,尤其是哺乳动物。巴布亚和西巴布亚地区是自然资源丰富、畜牧业潜力巨大的大省。以活牛形式存在的自然资源为西巴布亚省发展畜牧业提供了巨大机遇。开展这项研究的目的是创建一个带有知识库的新专家系统,以解决出现的问题,并为社区,尤其是养牛业者提供帮助。目前的问题是,在诊断牛病时,医务人员的延误和缺乏,必须长途跋涉,而这仍然是非常困难的,以及农民在早期处理时缺乏了解,当影响表明动物。因此,使用确定性因子法和贝叶斯定理与前向链式搜索来处理当前的问题。从人工计算的结果来看,确定因子前向链式搜索法对 3 天热的不确定值为 99.84%,而贝叶斯定理前向链式搜索法对蠕虫的不确定值为 50%,对 3 天热的不确定值为 50%,对甲腐病的不确定值为 50%,如果采用确定因子前向链式搜索法,那么确定因子前向链式搜索法是最合适的。同样,必须不时更新知识库。这样,将来就可以与其他方法和基于 Android 的方法进行比较,以方便当前的育种者。
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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来源期刊
International Journal on Advanced Science, Engineering and Information Technology
International Journal on Advanced Science, Engineering and Information Technology Agricultural and Biological Sciences-Agricultural and Biological Sciences (all)
CiteScore
1.40
自引率
0.00%
发文量
272
期刊介绍: International Journal on Advanced Science, Engineering and Information Technology (IJASEIT) is an international peer-reviewed journal dedicated to interchange for the results of high quality research in all aspect of science, engineering and information technology. The journal publishes state-of-art papers in fundamental theory, experiments and simulation, as well as applications, with a systematic proposed method, sufficient review on previous works, expanded discussion and concise conclusion. As our commitment to the advancement of science and technology, the IJASEIT follows the open access policy that allows the published articles freely available online without any subscription. The journal scopes include (but not limited to) the followings: -Science: Bioscience & Biotechnology. Chemistry & Food Technology, Environmental, Health Science, Mathematics & Statistics, Applied Physics -Engineering: Architecture, Chemical & Process, Civil & structural, Electrical, Electronic & Systems, Geological & Mining Engineering, Mechanical & Materials -Information Science & Technology: Artificial Intelligence, Computer Science, E-Learning & Multimedia, Information System, Internet & Mobile Computing
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