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标准动车CR400BF转向架中心销生产工艺研究
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作者 张月 胡野 +2 位作者 杨昊明 郝晓鹏 马丽雅 《铸造》 2026年第3期306-311,共6页
以标准动车CR400BF转向架中心销为研究对象,针对传统锻造工艺存在材料利用率低、加工周期长、生产成本偏高的问题,在分析其结构特征与铸造难点的基础上,采用覆膜砂壳型铸造工艺替代了原有树脂砂铸造工艺,并运用SOLID CAST软件,通过数值... 以标准动车CR400BF转向架中心销为研究对象,针对传统锻造工艺存在材料利用率低、加工周期长、生产成本偏高的问题,在分析其结构特征与铸造难点的基础上,采用覆膜砂壳型铸造工艺替代了原有树脂砂铸造工艺,并运用SOLID CAST软件,通过数值模拟验证了优化后的铸造工艺设计。铸件试制结果表明,采用新工艺后,成功解决了铸件厚大断面缩松缺陷难题,铸件成品率由65%提升至76%,铸件表面质量显著改善,质量等级一级区达到ASTM E186-2020与ASTM E446-2020标准中Ⅰ级要求,其他区域达到ASTM E186与ASTM E446标准中Ⅱ级要求,最终生产出满足客户技术要求的产品。相较于原铸造工艺,该工艺有效降低了铸造及机加工综合成本,同时大幅提升了生产效率。 展开更多
关键词 标准动车CR400bf 转向架 中心销 铸造工艺 数值模拟 出品率
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A method for enhancing the performance of infrared filters based on ratemodulated deposition of germanium films
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作者 LIU Bao-Jian LI Da-Qi +7 位作者 DUAN Wei-Bo YU De-Ming CAI Qing-Yuan YU Tian-Yan JIANG Lin YANG Yu-Ting ZHUANG Qiu-Hui ZHENG Yu-Xiang 《红外与毫米波学报》 北大核心 2026年第1期157-165,共9页
This study systematically investigated the influence of deposition rate on the structure,broadband opti⁃cal properties(1.0-13.0μm),and stress characteristics of Germanium(Ge)films.Additionally,a method for enhancing ... This study systematically investigated the influence of deposition rate on the structure,broadband opti⁃cal properties(1.0-13.0μm),and stress characteristics of Germanium(Ge)films.Additionally,a method for enhancing the performance of infrared filters based on rate-modulated deposition of Ge films was proposed.The optical absorption of Ge films in the short-wave infrared(SWIR)and long-wave infrared(LWIR)bands can be effectively reduced by modulating the deposition rate.As the deposition rate increases,the Ge films maintain an amorphous structure.The optical constants of the films in the 1.0-2.5μm and 2.5-13.0μm bands were precisely determined using the Cody-Lorentz model and the classical Lorentz oscillator model,respectively.Notably,high⁃er deposition rates result in a gradual increase in the refractive index.The extinction coefficient increases with the deposition rate in the SWIR region,attributed to the widening of the Urbach tail,while it decreases in the LWIR region due to the reduced absorption caused by the Ge-O stretching mode.Additionally,the films exhibit a tensile stress that decreases with increasing deposition rate.Finally,the effectiveness of the proposed fabrication method for an infrared filter with Ge films deposited at an optimized rate was demonstrated through practical examples.This work provides theoretical and technical support for the application of Ge films in high-performance infrared filters. 展开更多
关键词 optical coatings germanium film optical absorption infrared filter
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Cavity ring-down spectroscopy CO gas sensor integrating principal component analysis with savitzky-golay filtering
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作者 GUO Zi-long SHI Cheng-rui +4 位作者 DONG Yuan-yuan ZHANG Lei SUN Xiao-yuan SUN Jing-jing ZHOU Sheng 《中国光学(中英文)》 北大核心 2026年第1期179-189,共11页
The Savitzky-Golay(SG)filter,which employs polynomial least-squares approximations to smooth data and estimate derivatives,is widely used for processing noisy data.However,noise suppression by the SG filter is recogni... The Savitzky-Golay(SG)filter,which employs polynomial least-squares approximations to smooth data and estimate derivatives,is widely used for processing noisy data.However,noise suppression by the SG filter is recognized to be limited at data boundaries and high frequencies,which can significantly reduce the signal-to-noise ratio(SNR).To solve this problem,a novel method synergistically integrating Principal Component Analysis(PCA)with SG filtering is proposed in this paper.This approach avoids the is-sue of excessive smoothing associated with larger window sizes.The proposed PCA-SG filtering algorithm was applied to a CO gas sensing system based on Cavity Ring-Down Spectroscopy(CRDS).The perform-ance of the PCA-SG filtering algorithm is demonstrated through comparison with Moving Average Filtering(MAF),Wavelet Transformation(WT),Kalman Filtering(KF),and the SG filter.The results demonstrate that the proposed algorithm exhibits superior noise reduction capabilities compared to the other algorithms evaluated.The SNR of the ring-down signal was improved from 11.8612 dB to 29.0913 dB,and the stand-ard deviation of the extracted ring-down time constant was reduced from 0.037μs to 0.018μs.These results confirm that the proposed PCA-SG filtering algorithm effectively improves the smoothness of the ring-down curve data,demonstrating its feasibility. 展开更多
关键词 cavity ring-down spectroscopy CO gas sensor principal component analysis Savitzky-Golay filter
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Performance analysis of state of charge and state of health prediction using Kalman filter techniques with battery parameter variation
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作者 Ranagani Madhavi Indragandhi Vairavasundaram 《Global Energy Interconnection》 2026年第1期143-158,共16页
Accurate estimation of the State of Charge(SOC),State of Health(SOH),and Terminal Resistance(TR)is crucial for the effective operation of Battery Management Systems(BMS)in lithium-ion batteries.This study conducts a c... Accurate estimation of the State of Charge(SOC),State of Health(SOH),and Terminal Resistance(TR)is crucial for the effective operation of Battery Management Systems(BMS)in lithium-ion batteries.This study conducts a comprehensive comparative analysis of four Kalman filter variants Extended Kalman Filter(EKF),Extended Kalman-Bucy Filter(EKBF),Unscented Kalman Filter(UKF),and Unscented Kalman-Bucy Filter(UKBF)under varying battery parameter conditions.These include temperature fluctuation,self-discharge,current direction,cell capacity,process noise,and measurement noise.Our findings reveal significant variations in the performance of SOC and SOH predictions across filters,emphasizing that UKF demonstrates superior robustness to noise,while EKF performs better under accurate system dynamics.The study underscores the need for adaptive filtering strategies that can dynamically adjust to evolving battery parameters,thereby enhancing BMS reliability and extending battery lifespan. 展开更多
关键词 State of chargeState of health Extended Kalman filter Extended Kalman Bucy filter Unscented Kalman filter Unscented Kalman Bucy filter
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Miniaturized bandpass filter with a wide upper stopband using isomeric resonators in a cavity
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作者 Chengyang ZHANG Ying XUE +1 位作者 Qingyuan LU Jianxin CHEN 《ENGINEERING Information Technology & Electronic Engineering》 2026年第1期81-86,共6页
1 Introduction Recently,the increasing demand for advanced telecommunication systems has spurred extensive research into bandpass filters(BPFs),with particular emphasis on miniaturization,reduction of insertion loss(I... 1 Introduction Recently,the increasing demand for advanced telecommunication systems has spurred extensive research into bandpass filters(BPFs),with particular emphasis on miniaturization,reduction of insertion loss(IL),and enhancement of upper stopband rejection(Huang et al.,2021;Snyder et al.,2021;Lin et al.,2023;Zeng et al.,2023). 展开更多
关键词 bandpass filters bpfs advanced telecommunication systems upper stopband rejection isomeric resonators cavity filters enhancement upper stopband rejection huang miniaturized bandpass filters insertion loss
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An Improved High-Degree Cubature Particle Filter and its Application in Bearing-only Tracking
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作者 Yanqi Niu Dandan Zhu Yaan Li 《哈尔滨工程大学学报(英文版)》 2026年第1期300-311,共12页
In this study,a fifth-degree cubature particle filter(5CPF)is proposed to address the limited estimation accuracy in traditional particle filter algorithms for bearings-only tracking(BOT).This algorithm calculates the... In this study,a fifth-degree cubature particle filter(5CPF)is proposed to address the limited estimation accuracy in traditional particle filter algorithms for bearings-only tracking(BOT).This algorithm calculates the recommended density function by introducing a fifth-degree cubature Kalman filter algorithm to guide particle sampling,which effectively alleviates the problem of particle degradation and significantly improves the estimation accuracy of the filter.However,the 5CPF algorithm exhibits high computational complexity,particularly in scenarios with a large number of particles.Therefore,we propose the extended Kalman filter(EKF)-5CPF algorithm,which employs an EKF to replace the time update step for each particle in the 5CPF.This enhances the algorithm’s real-time capability while maintaining the high precision advantage of the 5CPF algorithm.In addition,we construct bearing-only dual-station and single-motion station target tracking systems,and the filtering performances of 5CPF and EKF-5CPF algorithms under different conditions are analyzed.The results show that both the 5CPF algorithm and EKF-5CPF have strong robustness and can adapt to different noise environments.Furthermore,both algorithms significantly outperform traditional nonlinear filtering algorithms in terms of convergence speed,tracking accuracy,and overall stability. 展开更多
关键词 Nonlinear filtering Fifth-degree cubature particle filter EKF-5CPF Bearings-only target motion analysis
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Trans-reflective color filters with brilliant colors by integrating organic dyes with photonic crystals
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作者 Shi Li Yong Qi +4 位作者 Wenbin Niu Suli Wu Bingtao Tang Wei Ma Shufen Zhang 《Smart Molecules》 2026年第1期106-117,共12页
Color filters are essential components for optical modulation.However,conventional filters are restricted to operating exclusively in either reflective or transmissive mode.Furthermore,they suffer from limited UV and ... Color filters are essential components for optical modulation.However,conventional filters are restricted to operating exclusively in either reflective or transmissive mode.Furthermore,they suffer from limited UV and thermal stability,low color purity,and exhibit identical coloration on both surfaces.Herein,we propose a novel design strategy for trans-reflective color filters by integrating the absorptive properties of dye-doped polysulfone(PSU)with the diffractive capabilities of photonic crystals.This composite filter achieved broad-spectrum transmission with deep color outputs—yellow(0.410,0.510),magenta(0.446,0.231),and cyan(0.201,0.425)—closely aligned with standard color space coordinates.By tuning the refractive index of CeO_(2)@SiO_(2)nanoparticles to match dye-based PSU matrix,the transmittance of filters exceeded 70%.Moreover,dye-mediated absorption reduces the scattering light,thereby enhancing reflection color purity(full width at half maxima(FWHM)=25 nm)and producing vibrant blue,green,and red hues.The incorporation of UV-absorbing CeO_(2)@SiO_(2)nanoparticles effectively mitigated dye photodegradation,yielding exceptional UV stability(ΔT<2%under prolonged UV exposure).The filters also exhibited outstanding thermal stability(ΔT<1%after 30 min heat treatment at 230°C).This work establishes a robust materials design framework for multifunctional optical filters,advancing the development of highfidelity dual-mode color systems for next-generation display technologies. 展开更多
关键词 DYES photonic crystals stability trans-reflective color filters
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嘉思特TTZ502鞍座:45%宽域甜区与BF呼吸发泡,开启舒适骑行新境界
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作者 嘉思特 《中国自行车》 2026年第2期114-115,共2页
在骑行装备的创新之路上,嘉思特(JUSTEK)始终致力于为骑行爱好者带来更卓越的体验。近期,嘉思特全新推出TTZ502新工艺BF发泡鞍座,这款凝聚了前沿技术与人体工学设计的产品,将重新定义您的骑行舒适度与运动表现。
关键词 舒适度 TTZ502鞍座 人体工学设计 bf发泡
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基于FCBF-IPSO的旋转机械故障诊断方法
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作者 尹海涛 赵荣珍 +1 位作者 马驰 邓林峰 《振动.测试与诊断》 北大核心 2026年第1期99-106,218,219,共10页
针对旋转机械高维故障数据集存在着冗余特征导致分类困难和故障识别率偏低的问题,提出一种将快速相关过滤(fast correlation-based filter,简称FCBF)算法和改进粒子群优化(improved particle swarm optimization,简称IPSO)算法相结合的... 针对旋转机械高维故障数据集存在着冗余特征导致分类困难和故障识别率偏低的问题,提出一种将快速相关过滤(fast correlation-based filter,简称FCBF)算法和改进粒子群优化(improved particle swarm optimization,简称IPSO)算法相结合的故障敏感特征选择方法。首先,利用FCBF算法和数据集值域状况初步筛选特征,剔除与类别信息不相关的特征和冗余特征;其次,使用IPSO算法对筛选后的特征子集进行二次筛选,进一步剔除其中的冗余特征,得到有利于分类运算的低维敏感特征子集;最后,通过转子故障模拟数据集进行了实验验证。结果表明:该方法可有效剔除故障数据集中的不相关特征和冗余特征,利用IPSO算法对支持向量机(support vector machine,简称SVM)参数C和σ进行的优化,达到了显著提高分类器辨识精度和运行效率的效果。本研究方法为降低旋转机械故障数据资源的规模提供了一种敏感特征筛选策略,并丰富了特征选择的基础理论。 展开更多
关键词 故障诊断 特征选择 快速相关过滤算法 粒子群优化算法
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HCF-MFGB:Hybrid Collaborative Filtering Based on Matrix Factorization and Gradient Boosting
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作者 Salahudin Robo Triyanna Widiyaningtyas Wahyu Sakti Gunawan Irianto 《Computers, Materials & Continua》 2026年第2期1630-1648,共19页
Recommendation systems are an integral and indispensable part of every digital platform,as they can suggest content or items to users based on their respective needs.Collaborative filtering is a technique often used i... Recommendation systems are an integral and indispensable part of every digital platform,as they can suggest content or items to users based on their respective needs.Collaborative filtering is a technique often used in various studies,which produces recommendations by analyzing similarities between users and items based on their behavior.Although often used,traditional collaborative filtering techniques still face the main challenge of sparsity.Sparsity problems occur when the data in the system is sparse,meaning that only a portion of users provide feedback on some items,resulting in inaccurate recommendations generated by the system.To overcome this problem,we developed aHybrid Collaborative Filtering model based onMatrix Factorization andGradient Boosting(HCF-MFGB),a new hybrid approach.Our proposed model integrates SVD++,the XGBoost ensemble learning algorithm,and utilizes user demographic data and meta items.We utilize information,both explicitly and implicitly,to learn user preference patterns using SVD++.The XGBoost algorithm is used to create hundreds of decision trees incrementally,thereby improving model accuracy.Meanwhile,user demographic and meta-item data are clustered using the K-Means Clustering algorithm to capture similarities in user and item characteristics.This combination is designed to improve rating prediction accuracy by reducing reliance on minimal explicit rating data,while addressing sparsity issues in movie recommendation systems.The results of experiments on the MovieLens 100K,MovieLens 1M,and CiaoDVD datasets show significant improvements,outperforming various other baselinemodels in terms of RMSE and MAE.On theMovieLens 100K dataset,the HCF-MFGB model obtained an RMSE value of 0.853 and an MAE value of 0.674.On theMovieLens 1M dataset,the HCF-MFGB model obtained an RMSE value of 0.763 and an MAE value of 0.61.On the CiaoDCD dataset,the HCF-MFGB model achieved an RMSE value of 0.718 and an MAE value of 0.495.These results confirm a significant improvement in movie recommendation accuracy with the proposed approach. 展开更多
关键词 Recommendation systems hybrid collaborative filtering SVD++ XGBoost K-Means clustering user demographics meta item
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Adaptive Intelligent Control of a Lumped EvaporatorModel Using Wavelet-Based Neural PID with IIR Filtering
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作者 M.A.Vega Navarrete P.J.Argumedo Teuffer +2 位作者 C.M.RodríguezRomán L.E.Marrón Ramírez E.A.IslasNarvaez 《Frontiers in Heat and Mass Transfer》 2026年第1期354-374,共21页
This article presents an adaptive intelligent control strategy applied to a lumped-parameter evaporator model,i.e.,a simplified dynamic representation treating the evaporator as a single thermal node with uniform temp... This article presents an adaptive intelligent control strategy applied to a lumped-parameter evaporator model,i.e.,a simplified dynamic representation treating the evaporator as a single thermal node with uniform temperature distribution,suitable for control design due to its balance between physical fidelity and computational simplicity.The controller uses a wavelet-based neural proportional,integral,derivative(PID)controller with IIR filtering(infinite impulse response).The dynamic model captures the essential heat and mass transfer phenomena through a nonlinear energy balance,where the cooling capacity“Qevap”is expressed as a non-linear function of the compressor frequency and the temperature difference,specifically,Q_(evap)=k_(1)u(T_(in)−T_(e))with u as compressor frequency,Te evaporator temperature,and Tin inlet fluid temperature.The operating conditions of the system,in general terms,focus on the following variables,the overall thermal capacity is 1000 J/K,typical for small-capacity heat exchangers,The mass flow is 0.05 kg/s,typical for secondary liquid cooling circuits,the overall loss coefficient of 50 W/K that corresponds to small evaporators with partial insulation,the temperatures(inlet)of 10℃and the temperature of environment of 25℃,thermal load of 200 W that corresponds to a small-scaled air conditioning applications.To handle system nonlinearities and improve control performance,aMorlet wavelet-based neural network(Wavenet)is used to dynamically adjust the PID gains online.An IIR filter is incorporated to smooth the adaptive gains,improving stability and reducing oscillations.In contrast to prior wavelet-or neural-adaptive PID controllers in HVAC applications,which typically adjust gains without explicit filtering or not tailored to evaporator dynamics,this work introduces the first PID–Wavenet scheme augmented with an IIR-based stabilization layer,specifically designed to address the combined challenges of nonlinear evaporator behavior,gain oscillation,and real-time implementability.The proposed controller(PID-Wavenet+IIR)is implemented and validated inMATLAB/Simulink,demonstrating superior performance compared to a conventional PID tuned using Simulink’s auto-tuning function.Key results include a reduction in settling time from 13.3 to 8.2 s,a reduction in overshoot from 3.5%to 0.8%,a reduction in steady-state error from 0.12℃ to 0.02℃and a 13%reduction in energy overall consumption.The controller also exhibits greater robustness and adaptability under varying thermal loads.This explicit integration of wavelet-driven adaptation with IIR-filtered gain shaping constitutes the main methodological contribution and novelty of the work.These findings validate the effectiveness of the wavelet-based adaptive approach for advanced thermal management in refrigeration and HVAC systems,with potential applications in controlling variable-speed compressors,liquid chillers,and compact cooling units. 展开更多
关键词 Evaporator modeling heat transfer systems adaptive control PID-Wavenet IIR filtering dynamic cooling optimization
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Synthesis and Design of Generalized Strongly Coupled Resonator Quartet Combline Filters with Redundant Resonance
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作者 Xiong Zhi’ang Fan Jiyuan +3 位作者 Zhao Ping Zhou Jinzhu Shen Nan Wu Qingqiang 《ZTE Communications》 2026年第1期88-96,共9页
This article proposes a generalized strongly coupled resonator quartet(GSCRQ)filter along with its synthesis approach.By introducing out-of-band reflection zeros(RZs),the proposed GSCRQ can generate a transmission zer... This article proposes a generalized strongly coupled resonator quartet(GSCRQ)filter along with its synthesis approach.By introducing out-of-band reflection zeros(RZs),the proposed GSCRQ can generate a transmission zero on each side of the passband without negative couplings.The coupling coefficients in this coupling structure change with the positions of the out-of-band RZs.Thus,the GSCRQ configuration admits flexible design solutions.For GSCRQ coaxial combline filters,all couplings can be implemented as inductive couplings,simplifying the design and manufacturing process.In this article,a 6-2 filter in the GSCRQ configuration is synthesized and designed.The simulated results of the designed filter agree very well with the theoretical characteristics. 展开更多
关键词 filter synthesis generalized strongly coupled resonator quartets(GSCRQ) out-of-band reflection zero transmission zero
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基于RBF神经网络的单相三电平APF终端滑模控制
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作者 杨瑞康 葛高飞 +2 位作者 张作轩 赵军波 马辉 《控制理论与应用》 北大核心 2026年第1期61-68,共8页
传统电流电压双闭环策略中,滑模控制器对于系统模型参数具有较强的依赖性,导致有源电力滤波器的电流内环控制器存在鲁棒性下降、动态响应迟缓等问题.为此,本文提出一种基于径向基函数(RBF)神经网络的双闭环滑模控制策略,以提高补偿电流... 传统电流电压双闭环策略中,滑模控制器对于系统模型参数具有较强的依赖性,导致有源电力滤波器的电流内环控制器存在鲁棒性下降、动态响应迟缓等问题.为此,本文提出一种基于径向基函数(RBF)神经网络的双闭环滑模控制策略,以提高补偿电流动态响应速度和鲁棒性.该控制策略内环采用RBF神经网络全局快速终端滑模控制器;外环采用线性滑模控制器. RBF神经网络通过在线逼近未知项以降低对模型的依赖性,全局快速终端滑模控制器用于提高系统收敛性.实验结果表明,所提控制策略能够使单相三电平有源电力滤波器在稳态和动态工况下,均展现出更优越的电流跟踪性能与更强的鲁棒性. 展开更多
关键词 有源电力滤波器 滑模控制 Rbf神经网络 三电平变换器
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Representation Then Augmentation:Wide Graph Clustering Network With Multi-Order Filter Fusion and Double-Level Contrastive Learning
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作者 Youqing Wang Tianxiang Zhao +3 位作者 Mingliang Cui Junbin Gao Li Liang Jipeng Guo 《IEEE/CAA Journal of Automatica Sinica》 2026年第2期421-435,共15页
Deep graph contrastive clustering has attracted widespread attentions due to its self-supervised representation learning paradigm and superior clustering performance.Although,two challenges emerge and result in high c... Deep graph contrastive clustering has attracted widespread attentions due to its self-supervised representation learning paradigm and superior clustering performance.Although,two challenges emerge and result in high computational costs.Most existing contrastive methods adopt the data augmentation and then representation learning strategy,where representation learning with trainable graph convolution is coupled with complex and fixed data augmentation,inevitably limiting the efficiency and flexibility.The similarity metric between positive-negative sample pairs is complex and contrastive objective is partial,limiting the discriminability of representation learning.To solve these challenges,a novel wide graph clustering network(WGCN)adhering to representation and then augmentation framework is proposed,which mainly consists of multiorder filter fusion(MFF)and double-level contrastive learning(DCL)modules.Specifically,the MFF module integrates multiorder low-pass filters to extract smooth and multi-scale topological features,utilizing self-attention fusion to reduce redundancy and obtain comprehensive embedding representation.Further,the DCL module constructs two augmented views by the parallel parameter-unshared Siamese encoders rather than complex augmentations on graph.To achieve simple yet effective self-supervised learning,representation self-supervision and structural consistency oriented double-level contrastive loss is designed,where representation self-supervision maximizes the agreement between pairwise augmented embedding representations and structural consistency promotes the mutual information correlation between appending neighborhoods with similar semantics.Extensive experiments on six benchmark datasets demonstrate the superiority of the proposed WGCN,especially highlighting its time-saving characteristic.The code could be available in the https://github.com/Tianxiang Zhao0474/WGCN. 展开更多
关键词 Deep graph clustering(DGC) double-level contrastive learning(DCL) multi-order low-pass filter self-supervised representation learning structural consistency
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ODBF:基于操作型衰落Bloom Filter的P2P网络弱状态路由算法 被引量:3
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作者 朱桂明 郭得科 金士尧 《计算机学报》 EI CSCD 北大核心 2012年第5期910-917,共8页
在P2P网络中,基于衰落Bloom Filter的弱状态路由算法试图将每条查询消息沿着成员资格信息量最强的方向传递,并最终以较低的传输代价和传输时延确保较高的查准率.研究发现衰落Bloom Filter在传递过程中存在严重的多径叠加和噪音问题,这... 在P2P网络中,基于衰落Bloom Filter的弱状态路由算法试图将每条查询消息沿着成员资格信息量最强的方向传递,并最终以较低的传输代价和传输时延确保较高的查准率.研究发现衰落Bloom Filter在传递过程中存在严重的多径叠加和噪音问题,这直接导致查询消息以很高的概率沿着错误的方向传播,甚至会退化为泛洪路由算法.为解决这一挑战性难题,文中提出了基于操作型衰落Bloom Filter的弱状态路由算法ODBF(Operative Deca-ying Bloom Filter).ODBF通过分别保存对象的衰落Bloom Filter及源节点等信息,使得ODBF能够有效解决基于衰落Bloom Filter的路由信息在P2P网络中的多径叠加和信息回流问题,有效抑制噪音的影响,进而使得基于弱状态的路由能够以很高的概率沿着正确方向进行. 展开更多
关键词 对等计算 弱状态路由 衰落Bloom filter 噪音
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BFPC:一种新型的基于Bloom Filter的报文分类算法 被引量:1
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作者 孙志刚 白建东 陈一骄 《计算机工程与科学》 CSCD 北大核心 2009年第4期4-6,10,共4页
Bloom Filter是一种支持高速数据查询的数据结构,已被广泛应用到各个领域,包括路由查找、串匹配[1]等。本文将重点研究Bloom Filter在报文分类领域中的应用,提出一种新型的报文分类算法——BFPC,阐述BFPC算法的基本思想,并通过实例对该... Bloom Filter是一种支持高速数据查询的数据结构,已被广泛应用到各个领域,包括路由查找、串匹配[1]等。本文将重点研究Bloom Filter在报文分类领域中的应用,提出一种新型的报文分类算法——BFPC,阐述BFPC算法的基本思想,并通过实例对该算法进行了描述。最后,对BFPC算法与其他报文分类算法进行了性能比较。 展开更多
关键词 BLOOM filter 假阳性 报文分类 bfPC
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基于FCBF和AdaBoost算法的OFDM雷达信号识别
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作者 郭建 陈红 《电子技术应用》 2026年第1期107-110,共4页
为了识别复杂新体制的正交频分复用(OFDM)雷达信号,构造了一种基于相关性的快速滤波自适应提升(Fast Correlation-Based Filter Adaptive Boosting, FCBF-AdaBoost)联合算法,并结合了频域分析法的雷达信号识别方法。通过对频域幅值属性... 为了识别复杂新体制的正交频分复用(OFDM)雷达信号,构造了一种基于相关性的快速滤波自适应提升(Fast Correlation-Based Filter Adaptive Boosting, FCBF-AdaBoost)联合算法,并结合了频域分析法的雷达信号识别方法。通过对频域幅值属性集进行离散化预处理后,该联合算法首先对输入的频域数据中冗余和不相关的幅值数据进行筛选并剔除,构成降维后的频域子集,再通过一种基于弱分类器集成的算法进行数据特征学习,最终通过大量雷达数据进行训练模型,实现对雷达信号的分类。理论分析验证了该算法的可行性,通过仿真实验看出,在各信噪比下,所提出的算法对OFDM雷达信号识别的准确率随着信噪比的增加明显提高,可达到94%以上。 展开更多
关键词 OFDM雷达信号识别 FCbf 弱分类器 ADABOOST 频域分析法
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BF型与QJ型瓦斯继电器重瓦斯动作特性比较研究
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作者 张智 万书亭 +5 位作者 马金阳 张春辉 易万爽 龙小波 田思宇 何士贤 《电工电能新技术》 北大核心 2025年第11期109-119,共11页
瓦斯继电器是油浸式变压器重要的非电量保护装置,本文采用实验与仿真方法,深入研究了BF型双浮球瓦斯继电器与QJ型瓦斯继电器重瓦斯动作特性及其差异。首先对两种瓦斯继电器结构和受力进行了对比分析,然后研制瓦斯继电器重瓦斯动作特性... 瓦斯继电器是油浸式变压器重要的非电量保护装置,本文采用实验与仿真方法,深入研究了BF型双浮球瓦斯继电器与QJ型瓦斯继电器重瓦斯动作特性及其差异。首先对两种瓦斯继电器结构和受力进行了对比分析,然后研制瓦斯继电器重瓦斯动作特性实验平台,分别测试分析了在不同故障程度激励下的重瓦斯动作流速、动作压强和重瓦斯动作信号。最后以实验测试流速曲线为边界条件,对两种瓦斯继电器内部流场和挡板动作特性进行数值仿真。研究结果表明:BF型的磁铁-挡板结构相比于QJ型的弹簧-挡板结构,从挡板转动到干簧管磁接点闭合时间更短,有更高的灵敏度,重瓦斯动作对应流速较为稳定,且挡板旋转角速度、角加速度在重瓦斯动作时的峰值更大,具有更高的速动性。 展开更多
关键词 油浸式变压器 bf型瓦斯继电器 QJ型瓦斯继电器 重瓦斯动作特性
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一种基于改进RBF神经网络的组合导航方法
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作者 文家燕 张锱强 +2 位作者 李克强 宾仕博 何逸波 《航天控制》 2025年第2期40-48,共9页
针对车辆在隧道、城市路段和峡谷等复杂环境中全球导航定位系统(GNSS)信号中断导致组合导航定位精度下降的问题,提出一种基于改进径向基函数神经网络(RBF)辅助容积卡尔曼滤波(CKF)的组合导航定位方法。首先,通过核主成分分析(KPCA)结合K... 针对车辆在隧道、城市路段和峡谷等复杂环境中全球导航定位系统(GNSS)信号中断导致组合导航定位精度下降的问题,提出一种基于改进径向基函数神经网络(RBF)辅助容积卡尔曼滤波(CKF)的组合导航定位方法。首先,通过核主成分分析(KPCA)结合K-means++聚类模型对组合导航融合数据进行预处理,使其分布具有代表性;其次,利用正交最小二乘法(OLS)确定RBF神经网络隐含层神经元的数量及中心值,并采用信赖域约束高斯-牛顿(TR-CGN)算法优化其参数;最后,在GNSS信号失锁时,利用训练好的改进RBF神经网络辅助非线性CKF滤波进行误差补偿。实验结果表明,该方法在不增加硬件成本的情况下,平均定位误差较自动驾驶协同定位系统降低了17.87%;与KPCA-RBF辅助的平均定位误差相比降低了54.37%,可见,所提方法有效增强了组合导航定位系统在复杂环境下的适应性和鲁棒性。 展开更多
关键词 组合导航 改进Rbf OLS算法 TR-CGN算法 容积卡尔曼滤波
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CRBFT:A Byzantine Fault-Tolerant Consensus Protocol Based on Collaborative Filtering Recommendation for Blockchains
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作者 Xiangyu Wu Xuehui Du +3 位作者 Qiantao Yang Aodi Liu Na Wang Wenjuan Wang 《Computers, Materials & Continua》 SCIE EI 2024年第7期1491-1519,共29页
Blockchain has been widely used in finance,the Internet of Things(IoT),supply chains,and other scenarios as a revolutionary technology.Consensus protocol plays a vital role in blockchain,which helps all participants t... Blockchain has been widely used in finance,the Internet of Things(IoT),supply chains,and other scenarios as a revolutionary technology.Consensus protocol plays a vital role in blockchain,which helps all participants to maintain the storage state consistently.However,with the improvement of network environment complexity and system scale,blockchain development is limited by the performance,security,and scalability of the consensus protocol.To address this problem,this paper introduces the collaborative filtering mechanism commonly used in the recommendation system into the Practical Byzantine Fault Tolerance(PBFT)and proposes a Byzantine fault-tolerant(BFT)consensus protocol based on collaborative filtering recommendation(CRBFT).Specifically,an improved collaborative filtering recommendation method is designed to use the similarity between a node’s recommendation opinions and those of the recommender as a basis for determining whether to adopt the recommendation opinions.This can amplify the recommendation voice of good nodes,weaken the impact of cunningmalicious nodes on the trust value calculation,andmake the calculated resultsmore accurate.In addition,the nodes are given voting power according to their trust value,and a weight randomelection algorithm is designed and implemented to reduce the risk of attack.The experimental results show that CRBFT can effectively eliminate various malicious nodes and improve the performance of blockchain systems in complex network environments,and the feasibility of CRBFT is also proven by theoretical analysis. 展开更多
关键词 Blockchain CONSENSUS byzantine fault-tolerant collaborative filtering TRUST
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