An Improved and Adaptive Approach in ANFIS to Predict Knee Diseases

R. Kaur, Kamaldeep Kaur, A. Khamparia, Divya Anand
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引用次数: 7

Abstract

Artificial intelligence is emerging as a persuasive tool in the field of medical science. This research work also primarily focuses on the development of a tool to automate the diagnosis of inflammatory diseases of the knee joint. The tool will also assist the physicians and medical practitioners for diagnosis. The diseases considered for this research under inflammatory category are osteoarthritis, rheumatoid arthritis and osteonecrosis. A five-layer adaptive neuro-fuzzy (ANFIS) architecture was used to model the system. The ANFIS system works by mapping input parameters to the input membership functions, input membership functions are mapped to the rules generated by the ANFIS model which are further mapped to the output membership function. A comparative performance analysis of fuzzy system and ANFIS system is also done and results generated shows that the ANFIS system outperformed fuzzy system in terms of testing accuracy, sensitivity and specificity.
一种改进的自适应ANFIS预测膝关节疾病的方法
人工智能正在成为医学领域的一个有说服力的工具。这项研究工作也主要集中在开发一种工具来自动诊断膝关节炎症性疾病。该工具还将协助医生和医疗从业人员进行诊断。本研究在炎症类别下考虑的疾病是骨关节炎、类风湿关节炎和骨坏死。采用五层自适应神经模糊(ANFIS)架构对系统进行建模。ANFIS系统的工作原理是将输入参数映射到输入隶属函数,将输入隶属函数映射到ANFIS模型生成的规则上,再将规则映射到输出隶属函数上。对模糊系统和ANFIS系统进行了性能对比分析,结果表明,ANFIS系统在检测精度、灵敏度和特异性方面都优于模糊系统。
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