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模糊关联方法在齿轮箱故障诊断中的应用 被引量:5
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作者 赵艳丽 刘奇志 白士红 《沈阳航空工业学院学报》 2003年第2期21-22,共2页
模糊关联度故障识别方法是运用灰色系统理论与模糊数学隶属函数相结合 ,克服了故障诊断的模式向量中参数量纲不同、数量级差异的缺点 ,综合了灰色系统理论和模糊理论的优点 ,使故障诊断识别的多参数法更加完善。但此种方法的关键是隶属... 模糊关联度故障识别方法是运用灰色系统理论与模糊数学隶属函数相结合 ,克服了故障诊断的模式向量中参数量纲不同、数量级差异的缺点 ,综合了灰色系统理论和模糊理论的优点 ,使故障诊断识别的多参数法更加完善。但此种方法的关键是隶属函数建立的可靠性 。 展开更多
关键词 模糊关联方法 齿轮箱 故障诊断 故障识别 隶属函数
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自适应模糊多级中值滤波器 被引量:2
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作者 屈志毅 刘丽梅 +1 位作者 陈建华 陈连敏 《兰州大学学报(自然科学版)》 CAS CSCD 北大核心 2001年第4期51-54,共4页
结合模糊关联存储方法 (FAM) ,提出了修改后的多级中值滤波器——自适应模糊多级中值滤波器 (AFMMF) ,该滤波器克服了传统多级中值滤波器 (ML MF)的一些缺点 .实验结果显示 ,在处理“短线”噪声的过程中 ,AFMMF能更好地保留边缘 ,取得... 结合模糊关联存储方法 (FAM) ,提出了修改后的多级中值滤波器——自适应模糊多级中值滤波器 (AFMMF) ,该滤波器克服了传统多级中值滤波器 (ML MF)的一些缺点 .实验结果显示 ,在处理“短线”噪声的过程中 ,AFMMF能更好地保留边缘 ,取得了更好的效果 . 展开更多
关键词 模糊关联存储方法 图像处理 线性滤波 自适应模糊多级中值滤波器 模糊控制
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基于熵和隶属度函数的高维多目标优化问题求解 被引量:9
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作者 刘超 贺利军 朱光宇 《计算机工程》 CAS CSCD 北大核心 2016年第6期185-190,195,共7页
为求解高维多目标优化问题,提出一种新的适应度分配策略,即模糊关联熵方法(FREM)。结合模糊信息熵理论和隶属度函数给出FREM,采用隶属度函数将Pareto解和理想解映射为模糊集,运用模糊信息熵理论处理Pareto解模糊集与理想解模糊集之间的... 为求解高维多目标优化问题,提出一种新的适应度分配策略,即模糊关联熵方法(FREM)。结合模糊信息熵理论和隶属度函数给出FREM,采用隶属度函数将Pareto解和理想解映射为模糊集,运用模糊信息熵理论处理Pareto解模糊集与理想解模糊集之间的内在关系,并进行适应度分配。以模糊关联熵系数引导群体智能算法进化。在DTLZ测试函数集上的实验结果表明,FREM能够解决高维多目标优化问题,避免子目标数量增加对算法的影响,并得到比随机权重法和NSGA-II更好的优化效果。 展开更多
关键词 高维多目标优化 模糊关联方法 适应度分配策略 隶属度函数 信息熵理论
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Soil Quality Assessment Using Weighted Fuzzy Association Rules 被引量:12
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作者 XUE Yue-Ju LIU Shu-Guang +1 位作者 HU Yue-Ming YANG Jing-Feng 《Pedosphere》 SCIE CAS CSCD 2010年第3期334-341,共8页
Fuzzy association rules (FARs) can be powerful in assessing regional soil quality, a critical step prior to land planning and utilization; however, traditional FARs mined from soil quality database, ignoring the impor... Fuzzy association rules (FARs) can be powerful in assessing regional soil quality, a critical step prior to land planning and utilization; however, traditional FARs mined from soil quality database, ignoring the importance variability of the rules, can be redundant and far from optimal. In this study, we developed a method applying different weights to traditional FARs to improve accuracy of soil quality assessment. After the FARs for soil quality assessment were mined, redundant rules were eliminated according to whether the rules were significant or not in reducing the complexity of the soil quality assessment models and in improving the comprehensibility of FARs. The global weights, each representing the importance of a FAR in soil quality assessment, were then introduced and refined using a gradient descent optimization method. This method was applied to the assessment of soil resources conditions in Guangdong Province, China. The new approach had an accuracy of 87%, when 15 rules were mined, as compared with 76% from the traditional approach. The accuracy increased to 96% when 32 rules were mined, in contrast to 88% from the traditional approach. These results demonstrated an improved comprehensibility of FARs and a high accuracy of the proposed method. 展开更多
关键词 ACCURACY COMPREHENSIBILITY global weights
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Incremental learning of the triangular membership functions based on single-pass FCM and CHC genetic model 被引量:1
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作者 霍纬纲 Qu Feng Zhang Yuxiang 《High Technology Letters》 EI CAS 2017年第1期7-15,共9页
In order to improve the efficiency of learning the triangular membership functions( TMFs) for mining fuzzy association rule( FAR) in dynamic database,a single-pass fuzzy c means( SPFCM)algorithm is combined with the r... In order to improve the efficiency of learning the triangular membership functions( TMFs) for mining fuzzy association rule( FAR) in dynamic database,a single-pass fuzzy c means( SPFCM)algorithm is combined with the real-coded CHC genetic model to incrementally learn the TMFs. The cluster centers resulting from SPFCM are regarded as the midpoint of TMFs. The population of CHC is generated randomly according to the cluster center and constraint conditions among TMFs. Then a new population for incremental learning is composed of the excellent chromosomes stored in the first genetic process and the chromosomes generated based on the cluster center adjusted by SPFCM. The experiments on real datasets show that the number of generations converging to the solution of the proposed approach is less than that of the existing batch learning approach. The quality of TMFs generated by the approach is comparable to that of the batch learning approach. Compared with the existing incremental learning strategy,the proposed approach is superior in terms of the quality of TMFs and time cost. 展开更多
关键词 incremental learning triangular membership function TMFs) fuzzy associationrule (FAR) real-coded CHC
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