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Fault Diagnosis of Vehicle Transmission System Based on Rough Set Theory
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作者 李晓雷 张振华 +1 位作者 吴晓兵 田春姝 《Journal of Beijing Institute of Technology》 EI CAS 2001年第2期204-208,共5页
Rough set theory is used to treat the data of vehicle transmission system faults. The minimum fault feature vector can be obtained by calculating the importance and dependency of each attribute. Real time diagnosis, ... Rough set theory is used to treat the data of vehicle transmission system faults. The minimum fault feature vector can be obtained by calculating the importance and dependency of each attribute. Real time diagnosis, as a result, can be actualized. Ultimate decision making can be done by analyzing the consistency of decision information. The result shows that rough set theory is useful and possesses its unique merits in this field. 展开更多
关键词 rough set fault diagnosis VEHICLE transmission system
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Gear Fault Diagnosis Based on Rough Set and Support Vector Machine 被引量:3
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作者 TIAN Huifang SUN Shanxia School of Mechanical and Electrical Engineering,Wuhan University of Technology,Wuhan 430070,China, 《武汉理工大学学报》 CAS CSCD 北大核心 2006年第S3期1046-1051,共6页
By introducing Rough Set Theory and the principle of Support vector machine,a gear fault diagnosis method based on them is proposed.Firstly,diagnostic decision-making is reduced based on rough set theory,and the noise... By introducing Rough Set Theory and the principle of Support vector machine,a gear fault diagnosis method based on them is proposed.Firstly,diagnostic decision-making is reduced based on rough set theory,and the noise and redundancy in the sample are removed,then,according to the chosen reduction,a support vector machine multi-classifier is designed for gear fault diagnosis.Therefore,SVM’training data can be reduced and running speed can quicken.Test shows its accuracy and effi- ciency of gear fault diagnosis. 展开更多
关键词 rough set support VECTOR machine fault diagnosis multi-classifier
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FAULT DIAGNOSIS BASED ON INTEGRATION OF CLUSTER ANALYSIS, ROUGH SET METHOD AND FUZZY NEURAL NETWORK 被引量:3
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作者 FengZhipeng SongXigeng ChuFulei 《Chinese Journal of Mechanical Engineering》 SCIE EI CAS CSCD 2004年第3期349-352,共4页
In order to increase the efficiency and decrease the cost of machinerydiagnosis, a hybrid system of computational intelligence methods is presented. Firstly, thecontinuous attributes in diagnosis decision system are d... In order to increase the efficiency and decrease the cost of machinerydiagnosis, a hybrid system of computational intelligence methods is presented. Firstly, thecontinuous attributes in diagnosis decision system are discretized with the self-organizing map(SOM) neural network. Then, dynamic reducts are computed based on rough set method, and the keyconditions for diagnosis are found according to the maximum cluster ratio. Lastly, according to theoptimal reduct, the adaptive neuro-fuzzy inference system (ANFIS) is designed for faultidentification. The diagnosis of a diesel verifies the feasibility of engineering applications. 展开更多
关键词 fault diagnosis Self-erganizing map rough sets Adaptive neuro-fuzzyinference system
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Power transformer fault diagnosis model based on rough set theory with fuzzy representation 被引量:1
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作者 李明华 董明 严璋 《Journal of Pharmaceutical Analysis》 SCIE CAS 2007年第1期9-13,55,共6页
Objective Due to the incompleteness and complexity of fault diagnosis for power transformers,a comprehensive rough-fuzzy scheme for solving fault diagnosis problems is presented.Fuzzy set theory is used both for repre... Objective Due to the incompleteness and complexity of fault diagnosis for power transformers,a comprehensive rough-fuzzy scheme for solving fault diagnosis problems is presented.Fuzzy set theory is used both for representation of incipient faults' indications and producing a fuzzy granulation of the feature space.Rough set theory is used to obtain dependency rules that model indicative regions in the granulated feature space.The fuzzy membership functions corresponding to the indicative regions,modelled by rules,are stored as cases.Results Diagnostic conclusions are made using a similarity measure based on these membership functions.Each case involves only a reduced number of relevant features making this scheme suitable for fault diagnosis.Conclusion Superiority of this method in terms of classification accuracy and case generation is demonstrated. 展开更多
关键词 rough set decision table fuzzy logic fault diagnosis
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Condition Monitoring and Fault Diagnosis Based on Rough Set Theory 被引量:1
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作者 Li Xiong Li Shengli Xu Zongchang 《仪器仪表学报》 EI CAS CSCD 北大核心 2005年第z1期781-783,共3页
In order to raise the efficiency,automatization and intelligentization of condition monitoring and fault diagnosis for complex equipment systems,rough set theory is used to the field. A feature reduction algorithm bas... In order to raise the efficiency,automatization and intelligentization of condition monitoring and fault diagnosis for complex equipment systems,rough set theory is used to the field. A feature reduction algorithm based on rough set theory is adopted to extract condition information in monitoring and diagnosis for an engine,so that the technology condition monitoring parameters are optimized. The decision tables for each fault source are built and the diagnosis rules rooting in rough set reduction is applied to carry through intelligent fault diagnosis. The cases studied show that rough set method in condition monitoring and fault diagnosis can lighten the work burden in feature selection and afford advantages for autonomic learning and decision during diagnosis. 展开更多
关键词 CONDITION monitoring fault diagnosis rough set theory ENGINE
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Rough Set Theory Based Approach for Fault Diagnosis Rule Extraction of Distribution System 被引量:3
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作者 ZHOU Yong-yong ZHOU Quan +4 位作者 LIU Jia-bin LIU Yu-ming REN Hai-jun SUN Cai-xin LIU Xu 《高电压技术》 EI CAS CSCD 北大核心 2008年第12期2713-2718,共6页
As the first step of service restoration of distribution system,rapid fault diagnosis is a significant task for reducing power outage time,decreasing outage loss,and subsequently improving service reliability and safe... As the first step of service restoration of distribution system,rapid fault diagnosis is a significant task for reducing power outage time,decreasing outage loss,and subsequently improving service reliability and safety.This paper analyzes a fault diagnosis approach by using rough set theory in which how to reduce decision table of data set is a main calculation intensive task.Aiming at this reduction problem,a heuristic reduction algorithm based on attribution length and frequency is proposed.At the same time,the corresponding value reduction method is proposed in order to fulfill the reduction and diagnosis rules extraction.Meanwhile,a Euclid matching method is introduced to solve confliction problems among the extracted rules when some information is lacking.Principal of the whole algorithm is clear and diagnostic rules distilled from the reduction are concise.Moreover,it needs less calculation towards specific discernibility matrix,and thus avoids the corresponding NP hard problem.The whole process is realized by MATLAB programming.A simulation example shows that the method has a fast calculation speed,and the extracted rules can reflect the characteristic of fault with a concise form.The rule database,formed by different reduction of decision table,can diagnose single fault and multi-faults efficiently,and give satisfied results even when the existed information is incomplete.The proposed method has good error-tolerate capability and the potential for on-line fault diagnosis. 展开更多
关键词 粗糙集理论 配电网 故障诊断 提取方法 规则匹配
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Fault Diagnosis of a Rotary Machine Based on Information Entropy and Rough Set 被引量:3
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作者 LI Jian-lan HUANG Shu-hong 《International Journal of Plant Engineering and Management》 2007年第4期199-206,共8页
There exists some discord or contradiction of information during the process of fault diagnosis for rotary machine. But the traditional methods used in fault diagnosis can not dispose of the information. A model of fa... There exists some discord or contradiction of information during the process of fault diagnosis for rotary machine. But the traditional methods used in fault diagnosis can not dispose of the information. A model of fault diagnosis for a rotary machine based on information entropy theory and rough set theory is presented in this paper. The model has clear mathematical definition and can dispose both complete unification information and complete inconsistent information of vibration faults. By using the model, decision rules of six typical vibration faults of a steam turbine and electric generating set are deduced from experiment samples. Finally, the decision rules are validated by selected samples and good identification results are acquired. 展开更多
关键词 fault diagnosis rough set information entropy decision rule SAMPLE rotary machine
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Rough set and radial basis function neural network based insulation data mining fault diagnosis for power transformer
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作者 董立新 肖登明 刘奕路 《Journal of Harbin Institute of Technology(New Series)》 EI CAS 2007年第2期263-268,共6页
Rough set (RS) and radial basis function neural network (RBFNN) based insulation data mining fault diagnosis for power transformer is proposed. On the one hand rough set is used as front of RBFNN to simplify the input... Rough set (RS) and radial basis function neural network (RBFNN) based insulation data mining fault diagnosis for power transformer is proposed. On the one hand rough set is used as front of RBFNN to simplify the input of RBFNN and mine the rules. The mined rules whose “confidence” and “support” is higher than requirement are used to offer fault diagnosis service for power transformer directly. On the other hand the mining samples corresponding to the mined rule, whose “confidence and support” is lower than requirement, are used to be training samples set of RBFNN and these samples are clustered by rough set. The center of each clustering set is used to be center of radial basis function, i.e., as the hidden layer neuron. The RBFNN is structured with above base, which is used to diagnose the case that can not be diagnosed by mined simplified valuable rules based on rough set. The advantages and effectiveness of this method are verified by testing. 展开更多
关键词 rough set (RS) radial basis function neural network (RBFNN) data mining fault diagnosis
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Fault Diagnosis Approach of Local Ventilation System in Coal Mines Based on Multidisciplinary Technology 被引量:18
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作者 GONG Xiao-yan XUE He +1 位作者 TAO Xin-li HU Ning 《Journal of China University of Mining and Technology》 EI 2006年第3期317-320,共4页
In order to reduce the probability of fault occurrence of local ventilation system in coal mine and prevent gas from exceeding the standard limit, an approach incorporating the reliability analysis, rough set theory, ... In order to reduce the probability of fault occurrence of local ventilation system in coal mine and prevent gas from exceeding the standard limit, an approach incorporating the reliability analysis, rough set theory, genetic algorithm (GA), and intelligent decision support system (IDSS) was used to establish and develop a fault diagnosis system of local ventilation in coal mine. Fault tree model was established and its reliability analysis was performed. The algorithms and software of key fault symptom and fault diagnosis rule acquiring were also analyzed and developed. Finally, a prototype system was developed and demonstrated by a mine instance. The research results indicate that the proposed approach in this paper can accurately and quickly find the fault reason in a local ventilation system of coal mines and can reduce difficulty of the fault diagnosis of the local ventilation system, which is significant to decrease gas exploding accidents in coal mines. 展开更多
关键词 fault diagnosis local ventilation rough set theory genetic algorithm IDSS
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FAULT DIAGNOSIS OF ROTATING MACHINERY USING KNOWLEDGE-BASED FUZZY NEURAL NETWORK 被引量:2
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作者 李如强 陈进 伍星 《Applied Mathematics and Mechanics(English Edition)》 SCIE EI 2006年第1期99-108,共10页
A novel knowledge-based fuzzy neural network (KBFNN) for fault diagnosis is presented. Crude rules were extracted and the corresponding dependent factors and antecedent coverage factors were calculated firstly from ... A novel knowledge-based fuzzy neural network (KBFNN) for fault diagnosis is presented. Crude rules were extracted and the corresponding dependent factors and antecedent coverage factors were calculated firstly from the diagnostic sample based on rough sets theory. Then the number of rules was used to construct partially the structure of a fuzzy neural network and those factors were implemented as initial weights, with fuzzy output parameters being optimized by genetic algorithm. Such fuzzy neural network was called KBFNN. This KBFNN was utilized to identify typical faults of rotating machinery. Diagnostic results show that it has those merits of shorter training time and higher right diagnostic level compared to general fuzzy neural networks. 展开更多
关键词 rotating machinery fault diagnosis rough sets theory fuzzy sets theory generic algorithm knowledge-based fuzzy neural network
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基于Rough set理论的无线传感器网络节点故障诊断 被引量:23
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作者 雷霖 代传龙 王厚军 《北京邮电大学学报》 EI CAS CSCD 北大核心 2007年第4期69-73,共5页
提出了一种无线传感器网络(WSN)节点故障诊断的新方法,首先基于粗糙集理论中改进的可辨识矩阵算法得到故障诊断决策的属性约简;然后通过属性匹配的故障分类算法,建立一套WSN节点故障诊断方法,对WSN节点的各个模块分别进行具体的故障诊... 提出了一种无线传感器网络(WSN)节点故障诊断的新方法,首先基于粗糙集理论中改进的可辨识矩阵算法得到故障诊断决策的属性约简;然后通过属性匹配的故障分类算法,建立一套WSN节点故障诊断方法,对WSN节点的各个模块分别进行具体的故障诊断和定位.仿真实验表明,该方法在WSN节点故障诊断时通信代价小、能量消耗低、诊断准确率高,因而具有在能量有限的WSN节点中应用的可能性. 展开更多
关键词 故障诊断 无线传感器网络 粗糙集理论 可辨识矩阵 属性约简
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基于Rough Set理论的摩擦学诊断知识获取系统 被引量:4
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作者 王金涛 景敏卿 谢友柏 《润滑与密封》 CAS CSCD 北大核心 2002年第5期80-83,共4页
摩擦学系统诊断知识的获取本质上是一个模式分类和识别的问题。本文结合摩擦学系统和RoughSet理论的特点 ,提出了一种基于RoughSet理论的摩擦学诊断知识获取方法。这种方法能够用于模糊和不确定知识的获取和处理。并给出了具体的示例 。
关键词 rough set理论 摩擦学 知识获取 故障诊断
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基于Roughset知识获取的故障数据表聚类离散化方法研究 被引量:5
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作者 赵荣珍 张优云 《机械工程学报》 EI CAS CSCD 北大核心 2005年第1期145-150,共6页
为了从故障诊断实例的数据资源中知识获取,对具有连续属性值的故障实例数据表转化为Rough set(RS)理论离散数据类型的决策表的正确映射进行了研究。将改进的k-means聚类算法用于故障实例数据表的离散映射方案设计。在设置故障实例的导... 为了从故障诊断实例的数据资源中知识获取,对具有连续属性值的故障实例数据表转化为Rough set(RS)理论离散数据类型的决策表的正确映射进行了研究。将改进的k-means聚类算法用于故障实例数据表的离散映射方案设计。在设置故障实例的导师决策类别数为聚类数k对论域划分的基础上,提出了根据均值聚类中心排序序号构造离散映射符号集、相对均值聚类中心由相似测度确定连续属性值映射编码的离散化方案。实例表明,该方法反映了转子振动故障特征的一般规律,断点设置具有动态自适应和抗干扰特性。获得的决策规则可用于构造和扩充故障诊断知识库。 展开更多
关键词 故障诊断 rough set 聚类分析 属性离散化 知识获取
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基于Rough Set的油液故障诊断系统的知识发现 被引量:3
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作者 王金涛 吕晓军 谢友柏 《摩擦学学报》 EI CAS CSCD 北大核心 2003年第6期529-532,共4页
结合RoughSet理论和摩擦学系统的特点,讨论了油液故障诊断系统的不协调性.在包含度方法的基础上,将普通二元关系进行推广,提出了一种不协调油液故障诊断系统知识发现模型,给出具体的运算方法,并通过试验实例验证了该模型的有效性.结果表... 结合RoughSet理论和摩擦学系统的特点,讨论了油液故障诊断系统的不协调性.在包含度方法的基础上,将普通二元关系进行推广,提出了一种不协调油液故障诊断系统知识发现模型,给出具体的运算方法,并通过试验实例验证了该模型的有效性.结果表明,该模型在最大分布约简的基础上进行油液诊断知识获取,能够很好地完成不确定性问题的推理,并且可以推导出具有最大可信度的油液诊断知识规则. 展开更多
关键词 油液分析 故障诊断 rough set理论 知识发现
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获取知识的一种新方法——粗糙集(Rough Set) 被引量:8
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作者 董彩凤 王天宇 《热能动力工程》 CAS CSCD 北大核心 2002年第4期402-404,共3页
旋转机械故障诊断的一个困难问题是诊断规则的获取。提出获取知识的一种方法———粗糙集 (RS) ,RS能自动地从旋转机械的大量信息中有效地获取诊断知识 ,并能减少误诊与漏诊现象。
关键词 故障诊断 旋转机械 粗糙集 故障诊断
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基于Rough Set理论的典型振动故障诊断 被引量:2
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作者 李建兰 黄树红 张燕平 《动力工程》 EI CAS CSCD 北大核心 2008年第1期76-79,共4页
在分析旋转机械振动特点和Rough Set理论的基础上,针对传统的频谱分析方法对质量不平衡、动静碰摩、支座松动等3种典型故障识别效率低的缺点,提出了一个基于Rough Set的振动故障诊断模型.该模型根据故障和能量的映射关系,分别在时域、... 在分析旋转机械振动特点和Rough Set理论的基础上,针对传统的频谱分析方法对质量不平衡、动静碰摩、支座松动等3种典型故障识别效率低的缺点,提出了一个基于Rough Set的振动故障诊断模型.该模型根据故障和能量的映射关系,分别在时域、频域、时-频域中定义4种信息熵作为条件属性,推导了3种典型振动的决策规则,实现了对振动信号中不一致信息的处理.通过汽轮发电机组振动实验对上述方法进行了验证.结果表明,该模型能够很好地识别这3种典型故障. 展开更多
关键词 能源与动力工程 汽轮发电机组 振动 故障诊断 rough set理论 信息熵
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基于Rough Sets-C4.5的故障征兆提取与判别 被引量:1
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作者 王庆 巴德纯 孟祥志 《东北大学学报(自然科学版)》 EI CAS CSCD 北大核心 2006年第10期1138-1141,共4页
针对原始信息系统往往存在大量重复样本和冗余属性,从而影响实际故障诊断的精度和速度这一问题,介绍了一种基于粗糙集和决策树C4.5算法相融合的故障诊断模型,用于设备的精确和快速故障诊断.利用粗糙集具有较强的处理不确定和不完备信息... 针对原始信息系统往往存在大量重复样本和冗余属性,从而影响实际故障诊断的精度和速度这一问题,介绍了一种基于粗糙集和决策树C4.5算法相融合的故障诊断模型,用于设备的精确和快速故障诊断.利用粗糙集具有较强的处理不确定和不完备信息的能力,对原始样本集进行离散化及约简处理;同时,利用决策树C4.5算法对约简后的决策表进行快速学习并形成树状故障分类器.以实例介绍了利用该模型进行故障诊断的完整过程. 展开更多
关键词 粗糙集 属性 约简 决策树 故障诊断
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基于Rough Set和禁忌神经网络的传感器节点故障诊断 被引量:3
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作者 陈作聪 《计算机测量与控制》 北大核心 2013年第5期1143-1146,共4页
针对传感器节点通常位于无人看守甚至危险恶劣的环境中因而容易出现各类故障,提出了一种基于粗糙集(Rough set,RS)和禁忌神经网络的故障诊断方法;首先,采用自组织网对属性值进行离散化,然后采用粗糙集的可辨识矩阵对属性进行约简以降低... 针对传感器节点通常位于无人看守甚至危险恶劣的环境中因而容易出现各类故障,提出了一种基于粗糙集(Rough set,RS)和禁忌神经网络的故障诊断方法;首先,采用自组织网对属性值进行离散化,然后采用粗糙集的可辨识矩阵对属性进行约简以降低输入数据的维数,最后,通过禁忌算法对神经网络进行优化形成最终的故障诊断模型并将测试数据输入禁忌神经网络进行故障诊断;仿真实验表明,文中方法能较为精确地对传感器节点的各类故障进行诊断,具有较高的诊断精度,在迭代次数为300时,诊断误差值仅为0.01%,具有很强的可行性。 展开更多
关键词 传感器节点 粗糙集 禁忌算法 神经网络 故障诊断
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Knowledge Access Based on the Rough Set Theory
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作者 HAN Yan-ling YANG Bing-ru CAO Shou-qi 《International Journal of Plant Engineering and Management》 2005年第3期177-182,共6页
During the procedure of fault diagnosis for large-scale complicated equipment, the existence of redundant and fuzzy information results in the difficulty of knowledge access. Aiming at this characteristic, this paper ... During the procedure of fault diagnosis for large-scale complicated equipment, the existence of redundant and fuzzy information results in the difficulty of knowledge access. Aiming at this characteristic, this paper brought forth the Rough Set (RS) theory to the field of fault diagnosis. By means of the RS theory which is predominant in the way of dealing with fuzzy and uncertain information, knowledge access about fault diagnosis was realized. The foundation ideology of the RS theory was exhausted in detail, an amended RS algorithm was proposed, and the process model of knowledge access based on the amended RS algorithm was researched. Finally, we verified the correctness and the practicability of this method during the procedure of knowledge access. 展开更多
关键词 rough set knowledge access feature reduction fault diagnosis
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Rough集理论在故障诊断专家系统中的应用研究 被引量:8
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作者 陈久军 盛颂恩 陈燕飞 《机电工程》 CAS 2002年第3期49-51,共3页
在传统故障诊断专家系统的基础上 ,引入Rough集理论 ,提出了基于Rough集的故障诊断专家系统模型 。
关键词 rough集理论 故障诊断 专家系统 专家系统 人工系统 神经网络
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