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A Modified Multi-data Fusion Method Based on D-S Theory 被引量:1
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作者 姚景顺 杨世兴 《Defence Technology(防务技术)》 SCIE EI CAS 2008年第4期278-280,共3页
The D-S evidential reasoning algorithm is invalid when the evidence is completely contradicted. Therefore,a modified algorithm is proposed based on the elemental correlation and the influence of elemental weights in t... The D-S evidential reasoning algorithm is invalid when the evidence is completely contradicted. Therefore,a modified algorithm is proposed based on the elemental correlation and the influence of elemental weights in the evidence. The modified algorithm is more powerful ability to rectify errors and less computational complexity in the circumstance of multi-evidence fusion processing than those of the D-S evidential reasoning algorithm. 展开更多
关键词 信息处理 D-S推理 计算机 证据
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BDMFuse:Multi-scale network fusion for infrared and visible images based on base and detail features
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作者 SI Hai-Ping ZHAO Wen-Rui +4 位作者 LI Ting-Ting LI Fei-Tao Fernando Bacao SUN Chang-Xia LI Yan-Ling 《红外与毫米波学报》 北大核心 2025年第2期289-298,共10页
The fusion of infrared and visible images should emphasize the salient targets in the infrared image while preserving the textural details of the visible images.To meet these requirements,an autoencoder-based method f... The fusion of infrared and visible images should emphasize the salient targets in the infrared image while preserving the textural details of the visible images.To meet these requirements,an autoencoder-based method for infrared and visible image fusion is proposed.The encoder designed according to the optimization objective consists of a base encoder and a detail encoder,which is used to extract low-frequency and high-frequency information from the image.This extraction may lead to some information not being captured,so a compensation encoder is proposed to supplement the missing information.Multi-scale decomposition is also employed to extract image features more comprehensively.The decoder combines low-frequency,high-frequency and supplementary information to obtain multi-scale features.Subsequently,the attention strategy and fusion module are introduced to perform multi-scale fusion for image reconstruction.Experimental results on three datasets show that the fused images generated by this network effectively retain salient targets while being more consistent with human visual perception. 展开更多
关键词 infrared image visible image image fusion encoder-decoder multi-scale features
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FDiff-Fusion:基于模糊逻辑驱动的医学图像扩散融合网络分割模型
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作者 耿胜 丁卫平 +3 位作者 鞠恒荣 黄嘉爽 姜舒 王海鹏 《计算机科学》 北大核心 2025年第6期274-285,共12页
医学图像分割在临床诊疗和病理分析中具有重要的应用价值。近年来,去噪扩散模型在图像分割建模方面取得了显著成功,其能够更好地捕获图像中的复杂结构和细节信息。然而,利用去噪扩散模型进行医学图像分割的方法大多忽略了分割目标的边... 医学图像分割在临床诊疗和病理分析中具有重要的应用价值。近年来,去噪扩散模型在图像分割建模方面取得了显著成功,其能够更好地捕获图像中的复杂结构和细节信息。然而,利用去噪扩散模型进行医学图像分割的方法大多忽略了分割目标的边界不确定和区域模糊因素,从而造成了最终分割结果的不稳定性和不准确性。为了解决这一问题,提出了一种基于模糊逻辑驱动的医学图像扩散融合网络分割模型(FDiff-Fusion)。该模型通过将去噪扩散模型集成到经典U-Net网络中,有效地从输入医学图像中提取丰富的语义信息。由于医学图像的分割目标边界不确定性和区域模糊化现象普遍存在,因此在U-Net网络的跳跃路径上设计了一种模糊学习模块。该模块为输入的编码特征设置多个模糊隶属度函数,以描述特征点之间的相似程度,并对模糊隶属度函数应用模糊规则处理,从而增强了模型对不确定边界和模糊区域的建模能力。此外,为了提高模型分割结果的准确性和鲁棒性,在测试阶段引入了基于迭代注意力特征融合的方法。该方法将局部上下文信息添加到注意力模块中的全局上下文信息中,以融合每个去噪时间步的预测结果。实验结果显示,与现有的先进分割网络相比,FDiff-Fusion在BRATS 2020脑肿瘤数据集上获得的平均Dice分数和HD95距离分别为84.16%和2.473mm,在BTCV腹部多器官数据集上获得的平均Dice分数和HD95距离分别为83.82%和7.98mm,表现出良好的分割性能。 展开更多
关键词 去噪扩散模型 U-Net网络 医学图像分割 模糊学习 迭代注意力特征融合
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Intensive processing optimization of Zn-Cu fabricated by laser powder-bed fusion
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作者 YAN Yi-cheng ZHU Jiang-qi +9 位作者 YAN Yuan-ming LIU Yang LIU Ya-jun SHI Chun-bao LIU Yong LIU Min QIU Hao HUANG Qian-li YAN Xing-chen ZHANG Xiang-yu 《Journal of Central South University》 2025年第4期1194-1210,共17页
Laser powder-bed fusion(LPBF)of Zn-0.8Cu(wt.%)alloys exhibits significant advantages in the customization of biodegradable bone implants.However,the formability of LPBFed Zn alloy is not sufficient due to the spheroid... Laser powder-bed fusion(LPBF)of Zn-0.8Cu(wt.%)alloys exhibits significant advantages in the customization of biodegradable bone implants.However,the formability of LPBFed Zn alloy is not sufficient due to the spheroidization during the interaction of powder and laser beam,of which the mechanism is still not well understood.In this study,the evolution of morphology and grain structure of the LPBFed Zn-Cu alloy was investigated based on single-track deposition experiments.As the scanning speed increases,the grain structure of a single track of Zn-Cu alloy gradually refines,but the formability deteriorates,leading to the defect’s formation in the subsequent fabrication.The Zn-Cu alloys fabricated by optimum processing parameters exhibit a tensile strength of 157.13 MPa,yield strength of 106.48 MPa and elongation of 14.7%.This work provides a comprehensive understanding of the processing optimization of Zn-Cu alloy,achieving LPBFed Zn-Cu alloy with high density and excellent mechanical properties. 展开更多
关键词 laser powder-bed fusion Zn alloys single track processing parameters mechanical properties
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Three-dimensional finite-time optimal cooperative guidance with integrated information fusion observer
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作者 Yiao Zhan Linwei Wang Di Zhou 《Defence Technology(防务技术)》 2025年第4期12-28,共17页
Intercepting high-maneuverability hypersonic targets in near-space environments poses significant challenges due to their extreme speeds and evasive capabilities.To address these challenges,this study presents an inte... Intercepting high-maneuverability hypersonic targets in near-space environments poses significant challenges due to their extreme speeds and evasive capabilities.To address these challenges,this study presents an integrated approach that combines a Three-Dimensional Finite-Time Optimal Cooperative Guidance Law(FTOC)with an Information Fusion Anti-saturation Predefined-time Observer(IFAPO).The proposed FTOC guidance law employs a nonlinear,non-quadratic finite-time optimal control strategy designed for rapid convergence within the limited timeframes of near-space interceptions,avoiding the need for remaining flight time estimation or linear decoupling inherent in traditional methods.To complement the guidance strategy,the IFAPO leverages multi-source information fusion theory and incorporates anti-saturation mechanisms to enhance target maneuver estimation.This method ensures accurate and real-time prediction of target acceleration while maintaining predefined convergence performance,even under complex interception conditions.By integrating the FTOC guidance law and IFAPO,the approach optimizes cooperative missile positioning,improves interception success rates,and minimizes fuel consumption,addressing practical constraints in military applications.Simulation results and comparative analyses confirm the effectiveness of the integrated approach,demonstrating its capability to achieve cooperative interception of highly maneuvering targets with enhanced efficiency and reduced economic costs,aligning with realistic combat scenarios. 展开更多
关键词 Anti-saturation predefined-time observer Nonlinear finite-time optimal control Three-dimensional guidance Information fusion
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High-temperature stability and mechanical property optimization of laser powder bed fusion 316L steel after controlled annealing
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作者 LI Wen-qi MENG Li-xin +3 位作者 ZHANG Qian-fen LU Hui-hu NIU Xiao-feng HOU Hua 《Journal of Central South University》 2025年第4期1179-1193,共15页
The research demonstrated that laser powder bed fusion(LPBF)coupled with controlled annealing at 1200°C,could significantly increase the proportion of coincidence site lattice(CSL)grain boundary,thereby achieving... The research demonstrated that laser powder bed fusion(LPBF)coupled with controlled annealing at 1200°C,could significantly increase the proportion of coincidence site lattice(CSL)grain boundary,thereby achieving an outstanding synergy of enhanced strength and exceptional ductility.The plastic deformation behavior,strain hardening behavior,and fracture behavior of LPBF 316L steel annealing at 1200℃for 20 h were studied through quasi-in-situ tensile process.It was found that LPBF 316L steel formed a certain proportion of deformation twins during the tensile process,and the formation of twins changed the crystal orientation,thus promoting further slip and crystal deformation.The synergistic effect of slip and twin promoted higher plasticity.LPBF process coupled with controlled annealing at 1200°C for 20 h leads to a ultimate tensile strength of 613 MPa and total elongation of 73.8%. 展开更多
关键词 laser powder bed fusion heat treatment microstructural evolution mechanical behavior plastic deformation behavior
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Incoherence parameter estimation and multiband fusion based on the novel structure-enhanced spatial spectrum algorithm
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作者 JIANG Libing ZHENG Shuyu +2 位作者 YANG Qingwei ZHANG Xiaokuan WANG Zhuang 《Journal of Systems Engineering and Electronics》 2025年第4期867-879,共13页
In order to obtain better inverse synthetic aperture radar(ISAR)image,a novel structure-enhanced spatial spectrum is proposed for estimating the incoherence parameters and fusing multiband.The proposed method takes fu... In order to obtain better inverse synthetic aperture radar(ISAR)image,a novel structure-enhanced spatial spectrum is proposed for estimating the incoherence parameters and fusing multiband.The proposed method takes full advantage of the original electromagnetic scattering data and its conjugated form by combining them with the novel covariance matrices.To analyse the superiority of the modified algorithm,the mathematical expression of equivalent signal to noise ratio(SNR)is derived,which can validate our proposed algorithm theoretically.In addition,compared with the conventional matrix pencil(MP)algorithm and the conventional root-multiple signal classification(Root-MUSIC)algorithm,the proposed algorithm has better parameter estimation performance and more accurate multiband fusion results at the same SNR situations.Validity and effectiveness of the proposed algorithm is demonstrated by simulation data and real radar data. 展开更多
关键词 multiband fusion incoherence parameter estimation matrix pencil(MP) root-multiple signal classification(Root-MUSIC) covariance matrix.
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基于SS-FusionNet的苍术与关苍术分类方法
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作者 郭鹏飞 王飞云 +5 位作者 陈月锋 韩亚芬 赵明杰 吕程序 赵博 姜含露 《农业工程》 2025年第9期27-35,共9页
苍术与关苍术在外观、成分等方面高度相似,传统基于形态或化学指标的鉴别方法在小样本或无损检测的条件下分类精度较低。提出一种基于融合光谱和图像信息的深度学习分类网络SS-FusionNet,用于高光谱成像和小样本情况下对苍术与关苍术饮... 苍术与关苍术在外观、成分等方面高度相似,传统基于形态或化学指标的鉴别方法在小样本或无损检测的条件下分类精度较低。提出一种基于融合光谱和图像信息的深度学习分类网络SS-FusionNet,用于高光谱成像和小样本情况下对苍术与关苍术饮片进行高精度分类。通过高光谱成像系统采集苍术与关苍术饮片数据;利用无标签的高光谱数据对自编码器进行预训练,实现编码器模块对数据中的图像特征进行提取;将光谱特征与图像特征进行深度融合,结合上采样卷积模块进行分类。试验结果表明,在小样本条件下,SS-FusionNet分类精度达到92.7%,比支持向量机85.2%的分类精度提高7.5个百分点;比卷积神经网络86.6%的分类精度提高6.1个百分点。该研究为中药品种深度鉴别研究提供了新的思路和方法。 展开更多
关键词 高光谱图像 苍术 关苍术 图谱融合 自编码器 小样本分类 分类网络
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HDMapFusion:用于自动驾驶的多模态融合高清地图生成(特邀)
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作者 刘洋宏 付杨悠然 董性平 《计算机工程》 北大核心 2025年第10期18-26,共9页
高清环境语义地图的生成是自动驾驶系统实现环境感知与决策规划不可或缺的关键技术。针对当前自动驾驶领域相机与激光雷达在感知任务中存在的模态差异问题,提出一种创新的多模态融合范式HDMapFusion,通过特征级融合策略显著提升了语义... 高清环境语义地图的生成是自动驾驶系统实现环境感知与决策规划不可或缺的关键技术。针对当前自动驾驶领域相机与激光雷达在感知任务中存在的模态差异问题,提出一种创新的多模态融合范式HDMapFusion,通过特征级融合策略显著提升了语义地图的生成精度。与传统直接融合原始传感器数据的方法不同,HDMapFusion创新性地将相机图像特征和激光雷达点云特征统一转换为鸟瞰视图(BEV)空间表示,在统一的几何坐标系下实现了多模态信息的物理可解释性融合。具体而言:HDMapFusion首先通过深度学习网络分别提取相机图像的视觉特征和激光雷达的三维(3D)结构特征;然后利用可微分的视角变换模块将前视图像特征转换为BEV空间表示,同时将激光雷达点云特征通过体素化处理投影到相同的BEV空间,在此基础上设计一个基于注意力机制的特征融合模块,自适应地加权整合两种模态;最后通过语义解码器生成包含车道线、人行横道、道路边界线等要素的高精度语义地图。在nuScenes自动驾驶数据集上的实验结果表明,HDMapFusion在高清地图生成精度方面显著优于现有基准方法。这些实验结果验证了HDMapFusion的有效性和优越性,为自动驾驶环境感知中的多模态融合问题提供了新的解决思路。 展开更多
关键词 高清地图生成 多模态融合 鸟瞰视图表示 自动驾驶 深度估计
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An improved particle filter indoor fusion positioning approach based on Wi-Fi/PDR/geomagnetic field 被引量:2
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作者 Tianfa Wang Litao Han +5 位作者 Qiaoli Kong Zeyu Li Changsong Li Jingwei Han Qi Bai Yanfei Chen 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2024年第2期443-458,共16页
The existing indoor fusion positioning methods based on Pedestrian Dead Reckoning(PDR)and geomagnetic technology have the problems of large initial position error,low sensor accuracy,and geomagnetic mismatch.In this s... The existing indoor fusion positioning methods based on Pedestrian Dead Reckoning(PDR)and geomagnetic technology have the problems of large initial position error,low sensor accuracy,and geomagnetic mismatch.In this study,a novel indoor fusion positioning approach based on the improved particle filter algorithm by geomagnetic iterative matching is proposed,where Wi-Fi,PDR,and geomagnetic signals are integrated to improve indoor positioning performances.One important contribution is that geomagnetic iterative matching is firstly proposed based on the particle filter algorithm.During the positioning process,an iterative window and a constraint window are introduced to limit the particle generation range and the geomagnetic matching range respectively.The position is corrected several times based on geomagnetic iterative matching in the location correction stage when the pedestrian movement is detected,which made up for the shortage of only one time of geomagnetic correction in the existing particle filter algorithm.In addition,this study also proposes a real-time step detection algorithm based on multi-threshold constraints to judge whether pedestrians are moving,which satisfies the real-time requirement of our fusion positioning approach.Through experimental verification,the average positioning accuracy of the proposed approach reaches 1.59 m,which improves 33.2%compared with the existing particle filter fusion positioning algorithms. 展开更多
关键词 fusion positioning Particle filter Geomagnetic iterative matching Iterative window Constraint window
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Effect of process parameters on microstructure and mechanical properties of a nickel-aluminum-bronze alloy fabricated by laser powder bed fusion 被引量:1
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作者 HAN Chang-jun ZOU Yu-jin +7 位作者 HU Gao-ling DONG Zhi LI Kai HUANG Jin-miao LI Bo-yuan ZHOU Kun YANG Yong-qiang WANG Di 《Journal of Central South University》 SCIE EI CAS CSCD 2024年第8期2944-2960,共17页
This work investigated the effect of process parameters on densification,microstructure,and mechanical properties of a nickel-aluminum-bronze(NAB)alloy fabricated by laser powder bed fusion(LPBF)additive manufacturing... This work investigated the effect of process parameters on densification,microstructure,and mechanical properties of a nickel-aluminum-bronze(NAB)alloy fabricated by laser powder bed fusion(LPBF)additive manufacturing.The LPBF-printed NAB alloy samples with relative densities of over 98.5%were obtained under the volumetric energy density range of 200−250 J/mm^(3).The microstructure of the NAB alloy printed in both horizontal and vertical planes primarily consisted ofβ'martensitic phase and bandedαphase.In particular,a coarser-columnar grain structure and stronger crystallographic texture were achieved in the vertical plane,where the maximum texture intensity was 30.56 times greater than that of random textures at the(100)plane.Increasing the volumetric energy density resulted in a decrease in the columnar grain size,while increasing the amount ofαphase.Notably,β_(1)'martensitic structures with nanotwins and nanoscaleκ-phase precipitates were identified in the microstructure of LPBF-printed NAB samples with a volumetric energy density of 250 J/mm^(3).Furthermore,under optimal process parameters with a laser power of 350 W and scanning speed of 800 mm/s,significant improvements were observed in the microhardness(HV 386)and ultimate tensile strength(671 MPa),which was attributed to an increase in refined acicular martensite. 展开更多
关键词 copper alloy nickel-aluminum-bronze alloy laser powder bed fusion additive manufacturing
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A multi-source information fusion layer counting method for penetration fuze based on TCN-LSTM 被引量:1
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作者 Yili Wang Changsheng Li Xiaofeng Wang 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2024年第3期463-474,共12页
When employing penetration ammunition to strike multi-story buildings,the detection methods using acceleration sensors suffer from signal aliasing,while magnetic detection methods are susceptible to interference from ... When employing penetration ammunition to strike multi-story buildings,the detection methods using acceleration sensors suffer from signal aliasing,while magnetic detection methods are susceptible to interference from ferromagnetic materials,thereby posing challenges in accurately determining the number of layers.To address this issue,this research proposes a layer counting method for penetration fuze that incorporates multi-source information fusion,utilizing both the temporal convolutional network(TCN)and the long short-term memory(LSTM)recurrent network.By leveraging the strengths of these two network structures,the method extracts temporal and high-dimensional features from the multi-source physical field during the penetration process,establishing a relationship between the multi-source physical field and the distance between the fuze and the target plate.A simulation model is developed to simulate the overload and magnetic field of a projectile penetrating multiple layers of target plates,capturing the multi-source physical field signals and their patterns during the penetration process.The analysis reveals that the proposed multi-source fusion layer counting method reduces errors by 60% and 50% compared to single overload layer counting and single magnetic anomaly signal layer counting,respectively.The model's predictive performance is evaluated under various operating conditions,including different ratios of added noise to random sample positions,penetration speeds,and spacing between target plates.The maximum errors in fuze penetration time predicted by the three modes are 0.08 ms,0.12 ms,and 0.16 ms,respectively,confirming the robustness of the proposed model.Moreover,the model's predictions indicate that the fitting degree for large interlayer spacings is superior to that for small interlayer spacings due to the influence of stress waves. 展开更多
关键词 Penetration fuze Temporal convolutional network(TCN) Long short-term memory(LSTM) Layer counting Multi-source fusion
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Belief exponential divergence for D-S evidence theory and its application in multi-source information fusion 被引量:2
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作者 DUAN Xiaobo FAN Qiucen +1 位作者 BI Wenhao ZHANG An 《Journal of Systems Engineering and Electronics》 CSCD 2024年第6期1454-1468,共15页
Dempster-Shafer evidence theory is broadly employed in the research of multi-source information fusion.Nevertheless,when fusing highly conflicting evidence it may pro-duce counterintuitive outcomes.To address this iss... Dempster-Shafer evidence theory is broadly employed in the research of multi-source information fusion.Nevertheless,when fusing highly conflicting evidence it may pro-duce counterintuitive outcomes.To address this issue,a fusion approach based on a newly defined belief exponential diver-gence and Deng entropy is proposed.First,a belief exponential divergence is proposed as the conflict measurement between evidences.Then,the credibility of each evidence is calculated.Afterwards,the Deng entropy is used to calculate information volume to determine the uncertainty of evidence.Then,the weight of evidence is calculated by integrating the credibility and uncertainty of each evidence.Ultimately,initial evidences are amended and fused using Dempster’s rule of combination.The effectiveness of this approach in addressing the fusion of three typical conflict paradoxes is demonstrated by arithmetic exam-ples.Additionally,the proposed approach is applied to aerial tar-get recognition and iris dataset-based classification to validate its efficacy.Results indicate that the proposed approach can enhance the accuracy of target recognition and effectively address the issue of fusing conflicting evidences. 展开更多
关键词 Dempster-Shafer(D-S)evidence theory multi-source information fusion conflict measurement belief expo-nential divergence(BED) target recognition
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BEV感知学习在自动驾驶中的应用综述 被引量:3
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作者 黄德启 黄海峰 +1 位作者 黄德意 刘振航 《计算机工程与应用》 北大核心 2025年第6期1-21,共21页
自动驾驶感知模块中作为采集输入的传感器种类不断发展,要使多模态数据统一地表征出来变得愈加困难。BEV感知学习在自动驾驶感知任务模块中可以使多模态数据统一融合到一个特征空间,相比于其他感知学习模型拥有更好的发展潜力。从研究... 自动驾驶感知模块中作为采集输入的传感器种类不断发展,要使多模态数据统一地表征出来变得愈加困难。BEV感知学习在自动驾驶感知任务模块中可以使多模态数据统一融合到一个特征空间,相比于其他感知学习模型拥有更好的发展潜力。从研究意义、空间部署、准备工作、算法发展及评价指标五个方面总结了BEV感知模型具有良好发展潜力的原因。BEV感知模型从框架角度概括为四个系列:Lift-Splat-Lss系列、IPM逆透视转换、MLP视图转换及Transformer视图转换;从输入数据概括为两类:第一类是纯图像特征的输入包括单目摄像头输入和多摄像头输入,第二类在融合数据输入中不仅是简单的点云数据和图像特征的数据融合,还包括了以点云数据为引导或监督的知识蒸馏融合和以引导切片方式去划分高度段的融合。概述了多目标追踪、地图分割、车道线检测及3D目标检测四种自动驾驶任务在BEV感知模型当中的应用,并总结了目前BEV感知学习四个系列框架的缺点。 展开更多
关键词 BEV感知学习 视图转换 多模态数据融合 多目标追踪 地图分割 车道线检测及3D目标检测
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融合多源因素回归和ARIMA-LSTM的露天矿地表形变趋势分析 被引量:3
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作者 李如仁 李梦晨 +1 位作者 葛永权 刘明霞 《金属矿山》 北大核心 2025年第1期186-197,共12页
露天矿山大规模开采引发的地表形变严重威胁了周边基础设施的稳固性及附近民众生命财产安全,形变演化趋势的精准预测对于保障矿山安全运营具有重要意义。针对当前形变监测技术的时空采样率低、成本高,以及数据处理过程中影响因子筛选困... 露天矿山大规模开采引发的地表形变严重威胁了周边基础设施的稳固性及附近民众生命财产安全,形变演化趋势的精准预测对于保障矿山安全运营具有重要意义。针对当前形变监测技术的时空采样率低、成本高,以及数据处理过程中影响因子筛选困难、趋势预测精度欠佳等问题,以辽宁省鞍山市露天矿集中分布区为工程背景,提出了一种融合自回归差分移动平均(Autoregressive Integrated Moving Average,ARIMA)模型—长短期记忆网络(Long Short-Term Memory,LSTM)模型的多源因素融合回归的露天矿地表形变演化趋势分析方法。首先,利用短基线子集干涉测量(Small Baseline Subset Interferometric Synthetic Aperture Radar,SBAS-InSAR)技术开展2020年1月—2022年4月期间研究区地表形变的长时序监测,获取该时段内地表形变时空分布特征。然后,耦合因子分析及灰色关联分析法提取形变主影响因子,基于皮尔逊相关系数(Pearson)验证影响因子的筛选效果,同时考虑地表相邻点位形变的联动效应,构建了多源异构数据融合回归序列。在此基础上,引入自回归差分移动平均(ARIMA)模型改进的长短期记忆网络(LSTM)模型开展形变趋势预测,并采用平均绝对误差(Mean Absolute Error,MAE)、标准误差(Root Mean Square Error,RMSE)以及平均百分比误差(Mean Absolute Percentage Error,MAPE)评估所提方法的预测性能。结果表明:监测期内东鞍山矿东部、大孤山矿中部以及鞍千矿东部沉降相对严重,年均沉降速率最高达166.41 mm/a。耦合因子分析及灰色关联度法提取的影响因子合理可靠,融合高程、地形起伏度及累积降雨量等因子的形变序列更贴合矿区地表真实形变过程。与ARIMA-LSTM模型相比,基于多源因素融合回归模型的预测误差MAE、RMSE、MAPE分别降低了48.0%、16.7%和25.5%,预测精度有所改善且能够有效反映形变累积的整体趋势。 展开更多
关键词 露天矿 形变监测 多源数据融合 形变趋势预测 SBAS-InSAR ARIMA-LSTM
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Disparity estimation for multi-scale multi-sensor fusion
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作者 SUN Guoliang PEI Shanshan +2 位作者 LONG Qian ZHENG Sifa YANG Rui 《Journal of Systems Engineering and Electronics》 SCIE CSCD 2024年第2期259-274,共16页
The perception module of advanced driver assistance systems plays a vital role.Perception schemes often use a single sensor for data processing and environmental perception or adopt the information processing results ... The perception module of advanced driver assistance systems plays a vital role.Perception schemes often use a single sensor for data processing and environmental perception or adopt the information processing results of various sensors for the fusion of the detection layer.This paper proposes a multi-scale and multi-sensor data fusion strategy in the front end of perception and accomplishes a multi-sensor function disparity map generation scheme.A binocular stereo vision sensor composed of two cameras and a light deterction and ranging(LiDAR)sensor is used to jointly perceive the environment,and a multi-scale fusion scheme is employed to improve the accuracy of the disparity map.This solution not only has the advantages of dense perception of binocular stereo vision sensors but also considers the perception accuracy of LiDAR sensors.Experiments demonstrate that the multi-scale multi-sensor scheme proposed in this paper significantly improves disparity map estimation. 展开更多
关键词 stereo vision light deterction and ranging(LiDAR) multi-sensor fusion multi-scale fusion disparity map
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面向动态混合数据的多粒度增量特征选择算法 被引量:3
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作者 王锋 姚珍 梁吉业 《软件学报》 北大核心 2025年第3期1186-1201,共16页
在大数据时代,样本规模以及维数的动态更新和变化极大地增加了计算负担,在这些动态数据中,大多的数据样本并不以单一的数据取值形式存在,而是同时包含符号型数据和数值型数据的混合型数据.为此,学者们提出了许多关于混合数据的特征选择... 在大数据时代,样本规模以及维数的动态更新和变化极大地增加了计算负担,在这些动态数据中,大多的数据样本并不以单一的数据取值形式存在,而是同时包含符号型数据和数值型数据的混合型数据.为此,学者们提出了许多关于混合数据的特征选择算法,但现有的算法大多只适用静态数据或者小规模的增量数据,无法处理大规模动态变化的数据,尤其是数据分布不断变化的大规模增量数据集.针对这一局限性,通过分析动态数据中粒空间以及粒结构的变化和更新,基于信息融合机制,提出了一种面向动态混合数据的多粒度增量特征选择算法.该算法重点讨论了动态混合数据中的粒空间构建机制、多数据粒结构的动态更新机制以及面向数据分布变化信息融合机制.最后,通过与其他算法在UCI数据集上的实验结果进行对比,进一步验证了所提算法的可行性和高效性. 展开更多
关键词 动态混合数据 数据分布变化 多粒度计算 信息融合
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基于多数据融合的水电机组劣化趋势概率区间预测 被引量:1
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作者 王淑青 翟宇胜 +2 位作者 胡文庆 盛世龙 刘东 《水电能源科学》 北大核心 2025年第2期201-205,共5页
传统的基于单一测点的预测模型无法全面反映水电机组的健康状态,这导致难以实现机组劣化状态的准确评估。对此,提出了一种基于多测点数据融合与概率区间预测的水电机组劣化趋势预测模型。首先,选取机组不同测点在各工况下健康运行的数... 传统的基于单一测点的预测模型无法全面反映水电机组的健康状态,这导致难以实现机组劣化状态的准确评估。对此,提出了一种基于多测点数据融合与概率区间预测的水电机组劣化趋势预测模型。首先,选取机组不同测点在各工况下健康运行的数据构成数据集,采用期望最大化—高斯混合模型(EM-GMM)拟合机组健康运行状态下的各监测量的概率密度分布;然后,计算待估样本在给定机组健康状态分布下的负对数似然概率,以作为劣化度指标;其次,采用熵权法计算各测点劣化度指标的权重,通过加权得到综合劣化度指标;最后,为确保预测结果的可靠性,利用多目标遗传算法(MOGA)优化高斯过程回归(GPR)模型代替传统的点预测模型,并使用不同的预测模型进行对比和评估,证明本文提出的模型具有更高的预测精度。 展开更多
关键词 水电机组 多数据融合 EM-GMM健康模型 劣化度指标 熵权法 概率区间预测模型
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Review on uncertainty analysis and information fusion diagnosis of aircraft control system
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作者 ZHOU Keyi LU Ningyun +1 位作者 JIANG Bin MENG Xianfeng 《Journal of Systems Engineering and Electronics》 SCIE CSCD 2024年第5期1245-1263,共19页
In the aircraft control system,sensor networks are used to sample the attitude and environmental data.As a result of the external and internal factors(e.g.,environmental and task complexity,inaccurate sensing and comp... In the aircraft control system,sensor networks are used to sample the attitude and environmental data.As a result of the external and internal factors(e.g.,environmental and task complexity,inaccurate sensing and complex structure),the aircraft control system contains several uncertainties,such as imprecision,incompleteness,redundancy and randomness.The information fusion technology is usually used to solve the uncertainty issue,thus improving the sampled data reliability,which can further effectively increase the performance of the fault diagnosis decision-making in the aircraft control system.In this work,we first analyze the uncertainties in the aircraft control system,and also compare different uncertainty quantitative methods.Since the information fusion can eliminate the effects of the uncertainties,it is widely used in the fault diagnosis.Thus,this paper summarizes the recent work in this aera.Furthermore,we analyze the application of information fusion methods in the fault diagnosis of the aircraft control system.Finally,this work identifies existing problems in the use of information fusion for diagnosis and outlines future trends. 展开更多
关键词 aircraft control system sensor networks information fusion fault diagnosis UNCERTAINTY
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Anti-swarm UAV radar system based on detection data fusion
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作者 WANG Pengfei HU Jinfeng +2 位作者 HU Wen WANG Weiguang DONG Hao 《Journal of Systems Engineering and Electronics》 SCIE CSCD 2024年第5期1167-1176,共10页
There is a growing body of research on the swarm unmanned aerial vehicle(UAV)in recent years,which has the characteristics of small,low speed,and low height as radar target.To confront the swarm UAV,the design of anti... There is a growing body of research on the swarm unmanned aerial vehicle(UAV)in recent years,which has the characteristics of small,low speed,and low height as radar target.To confront the swarm UAV,the design of anti-UAV radar system based on multiple input multiple output(MIMO)is put forward,which can elevate the performance of resolution,angle accuracy,high data rate,and tracking flexibility for swarm UAV detection.Target resolution and detection are the core problem in detecting the swarm UAV.The distinct advantage of MIMO system in angular accuracy measurement is demonstrated by comparing MIMO radar with phased array radar.Since MIMO radar has better performance in resolution,swarm UAV detection still has difficulty in target detection.This paper proposes a multi-mode data fusion algorithm based on deep neural networks to improve the detection effect.Subsequently,signal processing and data processing based on the detection fusion algorithm above are designed,forming a high resolution detection loop.Several simulations are designed to illustrate the feasibility of the designed system and the proposed algorithm. 展开更多
关键词 SWARM RADAR high resolution deep neural network fusion algorithm
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