Application of the Certainty Factor and Forward Chaining Methods to a Goat Disease Expert System

D. Susanto, A. Fadlil, A. Yudhana
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引用次数: 2

Abstract

Goats are livestock that is financially very attractive to rural Indonesian. Efforts to solve problems related to goat farming are necessary. One of them is maintaining the health of the cattle by knowing how to cope with disease-stricken goats. Goat productivity will decrease if the treatment of the disease is sub-optimal. Goat diseases are very diverse, ranging from mild to severe. Breeders themselves can traditionally treat several diseases without the involvement of veterinarians or experts. However, a larger number of diseases need treatment with the help of experts. Expert systems are a potential solution to help farmers. It will automatically suggest decisions or conclusions in solving a problem. This study observes an expert system built using the Certainty Factor combined with Forward-Chaining. By combining the two methods, the information generated may discover the type of disease and suggest its management effectively with a high degree of certainty. The system can expectedly become a reference for goat breeders to consult about their goat livestock diseases. The knowledge base of the system uses 21 types of symptoms, eight types of diseases, and their solutions. The user does not need to input the belief value and the disbelief value that is usually input in the expert system. By involving the admin as a knowledge base processor, the correctness of the conveyed information maintains.
确定性因子和前向链方法在山羊疾病专家系统中的应用
山羊是一种在经济上对印尼农村地区非常有吸引力的牲畜。努力解决与山羊养殖有关的问题是必要的。其中之一就是通过了解如何对付生病的山羊来保持牛群的健康。如果疾病的治疗不够理想,山羊的产量将会下降。山羊的疾病种类繁多,从轻微到严重不等。传统上,饲养员自己可以在没有兽医或专家参与的情况下治疗几种疾病。然而,更多的疾病需要在专家的帮助下治疗。专家系统是帮助农民的潜在解决方案。它会自动提出解决问题的决定或结论。本研究采用确定性因子与前向链相结合的方法建立了一个专家系统。通过结合这两种方法,所产生的信息可以发现疾病的类型,并以高度的确定性有效地建议其管理。该系统可为山羊养殖者提供山羊家畜疾病咨询的参考。该系统的知识库使用了21种症状、8种疾病及其解决方案。用户不需要输入通常在专家系统中输入的信念值和不相信值。通过将管理员作为知识库处理器参与进来,可以维护所传递信息的正确性。
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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