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Fuzzy detection for ultrasonic flaw inspectionof highly scattering materials 被引量:6
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作者 LIU Zhenqing and WEI Moan (Institute of Acocustics, Tongji University Shanghai 200092) 《Chinese Journal of Acoustics》 1997年第4期332-338,共7页
Fuzzy logic detection has been applied to the signal enhancement of ultrasonic flaw echoes from the structure noise due to nonflaw related scattering of ultrasound in highly scattering materials. Cross-correlation, ph... Fuzzy logic detection has been applied to the signal enhancement of ultrasonic flaw echoes from the structure noise due to nonflaw related scattering of ultrasound in highly scattering materials. Cross-correlation, phase difference and fractal dimension are used as signal characteristics in fuzzy logic detection. Experimental results show that this new method has better performance than the commonly used correlation detection. 展开更多
关键词 fuzzy detection for ultrasonic flaw inspectionof highly scattering materials WANG
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Anomaly Detection of Complex Networks Based on Intuitionistic Fuzzy Set Ensemble 被引量:1
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作者 王进法 刘晓 +1 位作者 赵海 陈星池 《Chinese Physics Letters》 SCIE CAS CSCD 2018年第5期156-160,共5页
Ensemble learning for anomaly detection of data structured into a complex network has been barely studied due to the inconsistent performance of complex network characteristics and the lack of inherent objective funct... Ensemble learning for anomaly detection of data structured into a complex network has been barely studied due to the inconsistent performance of complex network characteristics and the lack of inherent objective function. We propose the intuitionistic fuzzy set(IFS)-based anomaly detection, a new two-phase ensemble method for anomaly detection based on IFS, and apply it to the abnormal behavior detection problem in temporal complex networks.Firstly, it constructs the IFS of a single network characteristic, which quantifies the degree of membership,non-membership and hesitation of each network characteristic to the defined linguistic variables so that makes the unuseful or noise characteristics become part of the detection. To build an objective intuitionistic fuzzy relationship, we propose a Gaussian distribution-based membership function which gives a variable hesitation degree. Then, for the fuzzification of multiple network characteristics, the intuitionistic fuzzy weighted geometric operator is adopted to fuse multiple IFSs and to avoid the inconsistence of multiple characteristics. Finally, the score function and precision function are used to sort the fused IFS. Finally, we carry out extensive experiments on several complex network datasets for anomaly detection, and the results demonstrate the superiority of our method to state-of-the-art approaches, validating the effectiveness of our method. 展开更多
关键词 NET IFS Anomaly detection of Complex Networks Based on Intuitionistic fuzzy Set Ensemble
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