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Fuzzy norm method for evaluating random vibration of airborne platform from limited PSD data 被引量:7
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作者 Wang Zhongyu Wang Yanqing +1 位作者 Wang Qian Zhang Jianjun 《Chinese Journal of Aeronautics》 SCIE EI CAS CSCD 2014年第6期1442-1450,共9页
For random vibration of airborne platform, the accurate evaluation is a key indicator to ensure normal operation of airborne equipment in flight. However, only limited power spectral density(PSD) data can be obtaine... For random vibration of airborne platform, the accurate evaluation is a key indicator to ensure normal operation of airborne equipment in flight. However, only limited power spectral density(PSD) data can be obtained at the stage of flight test. Thus, those conventional evaluation methods cannot be employed when the distribution characteristics and priori information are unknown. In this paper, the fuzzy norm method(FNM) is proposed which combines the advantages of fuzzy theory and norm theory. The proposed method can deeply dig system information from limited data, which probability distribution is not taken into account. Firstly, the FNM is employed to evaluate variable interval and expanded uncertainty from limited PSD data, and the performance of FNM is demonstrated by confidence level, reliability and computing accuracy of expanded uncertainty. In addition, the optimal fuzzy parameters are discussed to meet the requirements of aviation standards and metrological practice. Finally, computer simulation is used to prove the adaptability of FNM. Compared with statistical methods, FNM has superiority for evaluating expanded uncertainty from limited data. The results show that the reliability of calculation and evaluation is superior to 95%. 展开更多
关键词 Expanded uncertainty Fuzzy norm method Limited PSD data Random vibration Reliability Variable interval
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Data Driven Vibration Control:A Review 被引量:1
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作者 Weiyi Yang Shuai Li Xin Luo 《IEEE/CAA Journal of Automatica Sinica》 SCIE EI CSCD 2024年第9期1898-1917,共20页
With the ongoing advancements in sensor networks and data acquisition technologies across various systems like manufacturing,aviation,and healthcare,the data driven vibration control(DDVC)has attracted broad interests... With the ongoing advancements in sensor networks and data acquisition technologies across various systems like manufacturing,aviation,and healthcare,the data driven vibration control(DDVC)has attracted broad interests from both the industrial and academic communities.Input shaping(IS),as a simple and effective feedforward method,is greatly demanded in DDVC methods.It convolves the desired input command with impulse sequence without requiring parametric dynamics and the closed-loop system structure,thereby suppressing the residual vibration separately.Based on a thorough investigation into the state-of-the-art DDVC methods,this survey has made the following efforts:1)Introducing the IS theory and typical input shapers;2)Categorizing recent progress of DDVC methods;3)Summarizing commonly adopted metrics for DDVC;and 4)Discussing the engineering applications and future trends of DDVC.By doing so,this study provides a systematic and comprehensive overview of existing DDVC methods from designing to optimizing perspectives,aiming at promoting future research regarding this emerging and vital issue. 展开更多
关键词 data driven vibration control(DDVC) data science designing method feedforward control industrial robot input shaping optimizing method residual vibration
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Frequency-informed transformer for real-time water pipeline leak detection
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作者 Fengnian Liu Ding Wang +1 位作者 Junya Tang Lei Wang 《Autonomous Intelligent Systems》 2025年第1期241-250,共10页
Water pipeline leaks pose significant risks to urban infrastructure,leading to water wastage and potential structural damage.Existing leak detection methods often face challenges,such as heavily relying on the manual ... Water pipeline leaks pose significant risks to urban infrastructure,leading to water wastage and potential structural damage.Existing leak detection methods often face challenges,such as heavily relying on the manual selection of frequency bands or complex feature extraction,which can be both labour-intensive and less effective.To address these limitations,this paper introduces a Frequency-Informed Transformer model,which integrates the Fast Fourier Transform and self-attention mechanisms to enhance water pipe leak detection accuracy.Experimental results show that FiT achieves 99.9%accuracy in leak detection and 98.7%in leak type classification,surpassing other models in both accuracy and processing speed,with an efficient response time of 0.25 seconds.By significantly simplifying key features and frequency band selection and improving accuracy and response time,the proposed method offers a potential solution for real-time water leak detection,enabling timely interventions and more effective pipeline safety management. 展开更多
关键词 Frequency-Informed Transformer Water Pipeline Leak Detection Leak Classification vibration Sensor data Analysis
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