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Impact toughness,crack initiation and propagation mechanism of Ti6422 alloy with multi-level lamellar microstructure
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作者 Jie Shen Zhihao Zhang Jianxin Xie 《International Journal of Minerals,Metallurgy and Materials》 2026年第2期595-609,共15页
The influence of different solution and aging conditions on the microstructure,impact toughness,and crack initiation and propagation mechanisms of the novel α+β titanium alloy Ti6422 was systematically investigated.... The influence of different solution and aging conditions on the microstructure,impact toughness,and crack initiation and propagation mechanisms of the novel α+β titanium alloy Ti6422 was systematically investigated.By adjusting the furnace cooling time after solution treatment and the aging temperature,Ti6422 alloy samples were developed with a multi-level lamellar microstructure,in-cluding microscaleαcolonies and α_(p) lamellae,as well as nanoscale α_(s) phases.Extending the furnace cooling time after solution treatment at 920℃ for 1 h from 240 to 540 min,followed by aging at 600℃ for 6 h,increased the α_(p) lamella content,reduced the α_(s) phase content,expanded theαcolonies and α_(p) lamellae size,and improved the impact toughness from 22.7 to 53.8 J/cm^(2).Additionally,under the same solution treatment,raising the aging temperature from 500 to 700℃ resulted in a decrease in the α_(s) phase content and a growth in the thickness of the α_(p) lamella and α_(s) phase.The impact toughness increased significantly with these changes.Samples with high α_(p) lamellae content or large α_(s) phase size exhibited high crack initiation and propagation energies.Impact deformation caused severe kinking of the α_(p) lamellae in crack initiation and propagation areas,leading to a uniform and high-density kernel average misorientation(KAM)distribu-tion,enhancing plastic deformation coordination and uniformity.Moreover,the multidirectional arrangement of coarserαcolonies and α_(p) lamellae continuously deflect the crack propagation direction,inhibiting crack propagation. 展开更多
关键词 novel titanium alloy multi-level lamellar microstructure impact toughness crack initiation and propagation
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A Multi-Level Semantic Constraint Approach for Highway Tunnel Scene Twin Modeling 被引量:2
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作者 LI Yufei XIE Yakun +3 位作者 CHEN Mingzhen ZHAO Yaoji TU Jiaxing HU Ya 《Journal of Geodesy and Geoinformation Science》 2025年第2期37-56,共20页
As a key node of modern transportation network,the informationization management of road tunnels is crucial to ensure the operation safety and traffic efficiency.However,the existing tunnel vehicle modeling methods ge... As a key node of modern transportation network,the informationization management of road tunnels is crucial to ensure the operation safety and traffic efficiency.However,the existing tunnel vehicle modeling methods generally have problems such as insufficient 3D scene description capability and low dynamic update efficiency,which are difficult to meet the demand of real-time accurate management.For this reason,this paper proposes a vehicle twin modeling method for road tunnels.This approach starts from the actual management needs,and supports multi-level dynamic modeling from vehicle type,size to color by constructing a vehicle model library that can be flexibly invoked;at the same time,semantic constraint rules with geometric layout,behavioral attributes,and spatial relationships are designed to ensure that the virtual model matches with the real model with a high degree of similarity;ultimately,the prototype system is constructed and the case region is selected for the case study,and the dynamic vehicle status in the tunnel is realized by integrating real-time monitoring data with semantic constraints for precise virtual-real mapping.Finally,the prototype system is constructed and case experiments are conducted in selected case areas,which are combined with real-time monitoring data to realize dynamic updating and three-dimensional visualization of vehicle states in tunnels.The experiments show that the proposed method can run smoothly with an average rendering efficiency of 17.70 ms while guaranteeing the modeling accuracy(composite similarity of 0.867),which significantly improves the real-time and intuitive tunnel management.The research results provide reliable technical support for intelligent operation and emergency response of road tunnels,and offer new ideas for digital twin modeling of complex scenes. 展开更多
关键词 highway tunnel twin modeling multi-level semantic constraints tunnel vehicles multidimensional modeling
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Research on Multi-Level Automatic Filling Optimization Design Method for Layered Cross-Sectional Layout of Umbilical 被引量:1
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作者 YIN Xu FAN Zhi-rui +4 位作者 CAO Dong-hui LIU Yu-jie LI Meng-shu YAN Jun YANG Zhi-xun 《China Ocean Engineering》 2025年第5期891-903,共13页
The umbilical,a key component in offshore energy extraction,plays a vital role in ensuring the stable operation of the entire production system.The extensive variety of cross-sectional components creates highly comple... The umbilical,a key component in offshore energy extraction,plays a vital role in ensuring the stable operation of the entire production system.The extensive variety of cross-sectional components creates highly complex layout combinations.Furthermore,due to constraints in component quantity and geometry within the cross-sectional layout,filler bodies must be incorporated to maintain cross-section performance.Conventional design approaches based on manual experience suffer from inefficiency,high variability,and difficulties in quantification.This paper presents a multi-level automatic filling optimization design method for umbilical cross-sectional layouts to address these limitations.Initially,the research establishes a multi-objective optimization model that considers compactness,balance,and wear resistance of the cross-section,employing an enhanced genetic algorithm to achieve a near-optimal layout.Subsequently,the study implements an image processing-based vacancy detection technique to accurately identify cross-sectional gaps.To manage the variability and diversity of these vacant regions,the research introduces a multi-level filling method that strategically selects and places filler bodies of varying dimensions,overcoming the constraints of uniform-size fillers.Additionally,the method incorporates a hierarchical strategy that subdivides the complex cross-section into multiple layers,enabling layer-by-layer optimization and filling.This approach reduces manufac-turing equipment requirements while ensuring practical production process feasibility.The methodology is validated through a specific umbilical case study.The results demonstrate improvements in compactness,balance,and wear resistance compared with the initial cross-section,offering novel insights and valuable references for filler design in umbilical cross-sections. 展开更多
关键词 UMBILICAL cross-sectional layout multi-level filling layered layout optimization design
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MLRT-UNet:An Efficient Multi-Level Relation Transformer Based U-Net for Thyroid Nodule Segmentation
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作者 Kaku Haribabu Prasath R Praveen Joe IR 《Computer Modeling in Engineering & Sciences》 2025年第4期413-448,共36页
Thyroid nodules,a common disorder in the endocrine system,require accurate segmentation in ultrasound images for effective diagnosis and treatment.However,achieving precise segmentation remains a challenge due to vari... Thyroid nodules,a common disorder in the endocrine system,require accurate segmentation in ultrasound images for effective diagnosis and treatment.However,achieving precise segmentation remains a challenge due to various factors,including scattering noise,low contrast,and limited resolution in ultrasound images.Although existing segmentation models have made progress,they still suffer from several limitations,such as high error rates,low generalizability,overfitting,limited feature learning capability,etc.To address these challenges,this paper proposes a Multi-level Relation Transformer-based U-Net(MLRT-UNet)to improve thyroid nodule segmentation.The MLRTUNet leverages a novel Relation Transformer,which processes images at multiple scales,overcoming the limitations of traditional encoding methods.This transformer integrates both local and global features effectively through selfattention and cross-attention units,capturing intricate relationships within the data.The approach also introduces a Co-operative Transformer Fusion(CTF)module to combine multi-scale features from different encoding layers,enhancing the model’s ability to capture complex patterns in the data.Furthermore,the Relation Transformer block enhances long-distance dependencies during the decoding process,improving segmentation accuracy.Experimental results showthat the MLRT-UNet achieves high segmentation accuracy,reaching 98.2% on the Digital Database Thyroid Image(DDT)dataset,97.8% on the Thyroid Nodule 3493(TG3K)dataset,and 98.2% on the Thyroid Nodule3K(TN3K)dataset.These findings demonstrate that the proposed method significantly enhances the accuracy of thyroid nodule segmentation,addressing the limitations of existing models. 展开更多
关键词 Thyroid nodules endocrine system multi-level relation transformer U-Net self-attention external attention co-operative transformer fusion thyroid nodules segmentation
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Multi-relation spatiotemporal graph residual network model with multi-level feature attention:A novel approach for landslide displacement prediction
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作者 Ziqian Wang Xiangwei Fang +3 位作者 Wengang Zhang Xuanming Ding Luqi Wang Chao Chen 《Journal of Rock Mechanics and Geotechnical Engineering》 2025年第7期4211-4226,共16页
Accurate prediction of landslide displacement is crucial for effective early warning of landslide disasters.While most existing prediction methods focus on time-series forecasting for individual monitoring points,ther... Accurate prediction of landslide displacement is crucial for effective early warning of landslide disasters.While most existing prediction methods focus on time-series forecasting for individual monitoring points,there is limited research on the spatiotemporal characteristics of landslide deformation.This paper proposes a novel Multi-Relation Spatiotemporal Graph Residual Network with Multi-Level Feature Attention(MFA-MRSTGRN)that effectively improves the prediction performance of landslide displacement through spatiotemporal fusion.This model integrates internal seepage factors as data feature enhancements with external triggering factors,allowing for accurate capture of the complex spatiotemporal characteristics of landslide displacement and the construction of a multi-source heterogeneous dataset.The MFA-MRSTGRN model incorporates dynamic graph theory and four key modules:multilevel feature attention,temporal-residual decomposition,spatial multi-relational graph convolution,and spatiotemporal fusion prediction.This comprehensive approach enables the efficient analyses of multi-source heterogeneous datasets,facilitating adaptive exploration of the evolving multi-relational,multi-dimensional spatiotemporal complexities in landslides.When applying this model to predict the displacement of the Liangshuijing landslide,we demonstrate that the MFA-MRSTGRN model surpasses traditional models,such as random forest(RF),long short-term memory(LSTM),and spatial temporal graph convolutional networks(ST-GCN)models in terms of various evaluation metrics including mean absolute error(MAE=1.27 mm),root mean square error(RMSE=1.49 mm),mean absolute percentage error(MAPE=0.026),and R-squared(R^(2)=0.88).Furthermore,feature ablation experiments indicate that incorporating internal seepage factors improves the predictive performance of landslide displacement models.This research provides an advanced and reliable method for landslide displacement prediction. 展开更多
关键词 Landslide displacement prediction Spatiotemporal fusion Dynamic graph Data feature enhancement multi-level feature attention
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A robust method for large-scale route optimization on lunar surface utilizing a multi-level map model
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作者 Yutong JIA Shengnan ZHANG +5 位作者 Bin LIU Kaichang DI Bin XIE Jing NAN Chenxu ZHAO Gang WAN 《Chinese Journal of Aeronautics》 2025年第3期134-150,共17页
As we look ahead to future lunar exploration missions, such as crewed lunar exploration and establishing lunar scientific research stations, the lunar rovers will need to cover vast distances. These distances could ra... As we look ahead to future lunar exploration missions, such as crewed lunar exploration and establishing lunar scientific research stations, the lunar rovers will need to cover vast distances. These distances could range from kilometers to tens of kilometers, and even hundreds and thousands of kilometers. Therefore, it is crucial to develop effective long-range path planning for lunar rovers to meet the demands of lunar patrol exploration. This paper presents a hierarchical map model path planning method that utilizes the existing high-resolution images, digital elevation models and mineral abundance maps. The objective is to address the issue of the construction of lunar rover travel costs in the absence of large-scale, high-resolution digital elevation models. This method models the reference and semantic layers using the middle- and low-resolution remote sensing data. The multi-scale obstacles on the lunar surface are extracted by combining the deep learning algorithm on the high-resolution image, and the obstacle avoidance layer is modeled. A two-stage exploratory path planning decision is employed for long-distance driving path planning on a global–local scale. The proposed method analyzes the long-distance accessibility of various areas of scientific significance, such as Rima Bode. A high-precision digital elevation model is created using stereo images to validate the method. Based on the findings, it can be observed that the entire route spans a distance of 930.32 km. The route demonstrates an impressive ability to avoid meter-level impact craters and linear structures while maintaining an average slope of less than 8°. This paper explores scientific research by traversing at least seven basalt units, uncovering the secrets of lunar volcanic activities, and establishing ‘golden spike’ reference points for lunar stratigraphy. The final result of path planning can serve as a valuable reference for the design, mission demonstration, and subsequent project implementation of the new manned lunar rover. 展开更多
关键词 Crewed lunar exploration Long-range path planningi multi-level map Deep learning Volcanic activities
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Multi-level distribution alignment-based domain adaptation for segmentation of 3D neuronal soma images
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作者 Li Ma Xuantai Xu Xiaoquan Yang 《Journal of Innovative Optical Health Sciences》 2025年第6期69-85,共17页
Deep learning networks are increasingly exploited in the field of neuronal soma segmentation.However,annotating dataset is also an expensive and time-consuming task.Unsupervised domain adaptation is an effective metho... Deep learning networks are increasingly exploited in the field of neuronal soma segmentation.However,annotating dataset is also an expensive and time-consuming task.Unsupervised domain adaptation is an effective method to mitigate the problem,which is able to learn an adaptive segmentation model by transferring knowledge from a rich-labeled source domain.In this paper,we propose a multi-level distribution alignment-based unsupervised domain adaptation network(MDA-Net)for segmentation of 3D neuronal soma images.Distribution alignment is performed in both feature space and output space.In the feature space,features from different scales are adaptively fused to enhance the feature extraction capability for small target somata and con-strained to be domain invariant by adversarial adaptation strategy.In the output space,local discrepancy maps that can reveal the spatial structures of somata are constructed on the predicted segmentation results.Then thedistribution alignment is performed on the local discrepancies maps across domains to obtain a superior discrepancy map in the target domain,achieving refined segmentation performance of neuronal somata.Additionally,after a period of distribution align-ment procedure,a portion of target samples with high confident pseudo-labels are selected as training data,which assist in learning a more adaptive segmentation network.We verified the superiority of the proposed algorithm by comparing several domain adaptation networks on two 3D mouse brain neuronal somata datasets and one macaque brain neuronal soma dataset. 展开更多
关键词 Unsupervised domain adaptation multi-level distribution alignment pseudo-labels 3D neuronal soma images
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基于3D LiDAR传感器的多级关联目标跟踪算法
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作者 胡功林 唐向阳 《传感器与微系统》 北大核心 2026年第2期150-155,共6页
针对自动驾驶系统中多目标跟踪(MOT)技术的性能提升需求,提出了一种基于3D激光雷达(LiDAR)传感器的新型3D MOT方法。该方法通过融合短期与长期关联的多级关联机制增强目标匹配鲁棒性:短期关联利用连续帧间目标运动的连续性,长期关联则... 针对自动驾驶系统中多目标跟踪(MOT)技术的性能提升需求,提出了一种基于3D激光雷达(LiDAR)传感器的新型3D MOT方法。该方法通过融合短期与长期关联的多级关联机制增强目标匹配鲁棒性:短期关联利用连续帧间目标运动的连续性,长期关联则评估检测与轨迹的一致性,并引入图卷积网络(GCN)量化匹配程度,同时通过维护非活动轨迹池减少长时遮挡导致的ID切换。在KITTI数据集上的实验表明,所提方法实现了75.65%的高阶跟踪精度(HOTA)指标,较3D MOT的基准方法(AB3DMOT)提升5.66%,且ID切换次数(IDS)减少74次,验证了其在复杂道路环境中具有更高的跟踪准确性与稳定性。 展开更多
关键词 3D激光雷达 目标跟踪 多级关联 图卷积网络
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一种基于材料S-N曲线参数及应力相互作用的疲劳累积损伤模型
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作者 张禄 晋杰 《机械设计》 北大核心 2026年第1期167-175,共9页
为了有效且准确地预测疲劳损伤,尤其是高周疲劳寿命和低周疲劳寿命相结合的预测问题,提出了一种基于材料S-N曲线参数及应力相互作用的疲劳累积损伤模型。新模型仅需材料S-N曲线公式S=KN^(-b)中的参数b,K和前后应力之比。结合前人的二级... 为了有效且准确地预测疲劳损伤,尤其是高周疲劳寿命和低周疲劳寿命相结合的预测问题,提出了一种基于材料S-N曲线参数及应力相互作用的疲劳累积损伤模型。新模型仅需材料S-N曲线公式S=KN^(-b)中的参数b,K和前后应力之比。结合前人的二级和三级应力试验数据,分别计算并对比了与Miner模型、Manson-Halford模型及其改进模型和新模型的疲劳损伤预测结果。结果表明:新模型的疲劳损伤预测精度整体较优,具有一定的鲁棒性。 展开更多
关键词 疲劳损伤 疲劳寿命 多级应力 S-N曲线参数 应力相互作用
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高强土工布加筋多级陡边坡结构性能现场试验研究
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作者 杨广庆 苏鹏辉 +3 位作者 李婷 徐鹏 周诗广 王永 《铁道学报》 北大核心 2026年第1期151-159,共9页
针对黄土地区湿陷性强、地质灾害频发及现有加筋边坡设计规范保守等问题,依托山西某多级加筋土高陡边坡填方工程,开展高强土工布加筋多级陡边坡结构性能现场试验研究。通过施工期及工后监测,系统分析垂直应力分布、包裹体背部侧向土压... 针对黄土地区湿陷性强、地质灾害频发及现有加筋边坡设计规范保守等问题,依托山西某多级加筋土高陡边坡填方工程,开展高强土工布加筋多级陡边坡结构性能现场试验研究。通过施工期及工后监测,系统分析垂直应力分布、包裹体背部侧向土压力变化、土工布应变、含水率及坡体变形规律。结果表明:包裹式多级加筋土陡边坡整体处于稳定状态,其内部垂直应力沿筋材长度方向呈现非线性变化特征,且应力峰值位置位于筋材尾部附近;包裹体背部侧向土压力在填筑过程中逐渐趋于稳定,且分级平台处存在突变;土工布最大拉伸应变为0.62%,远低于材料极限;包裹体背部含水率和坡体平台处变形受季节气候影响,最大水平位移为5.69 cm(占坡高0.219%),最大竖向沉降为2.16 cm(占坡高0.083%),均符合规范限值。研究表明高强土工布加筋技术可有效抑制坡体变形,降低工程成本,可为黄土地区类似工程提供重要参考。 展开更多
关键词 黄土地区 高强土工布 多级加筋土陡边坡 现场试验 结构性能
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高比例分布式资源接入的主配微电网多级协同潮流优化计算研究综述
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作者 高红均 王云龙 +3 位作者 王仁浚 许潇 刘俊勇 罗龙波 《高电压技术》 北大核心 2026年第1期30-46,共17页
在“双碳”目标的背景下,高比例分布式资源的广泛接入对主配微电网的潮流优化计算带来了新的挑战。潮流优化计算包含潮流优化与潮流计算2部分,是实现主配微多级协同高效调控运行的重要工具,分布式资源广泛接入下主配微电网的“规模化”... 在“双碳”目标的背景下,高比例分布式资源的广泛接入对主配微电网的潮流优化计算带来了新的挑战。潮流优化计算包含潮流优化与潮流计算2部分,是实现主配微多级协同高效调控运行的重要工具,分布式资源广泛接入下主配微电网的“规模化”、“多元化”、“双向互动”与“异构”特性增加了潮流优化计算的复杂程度,传统集中一体化潮流优化计算方法难以适用于分布式资源占比不断提高的主配微电网。为此,对面向分布式资源占比不断提高主配微电网的潮流优化计算方法研究进行系统综述。首先,分析了高比例分布式资源接入下的主配微特性及其对主配微潮流优化计算的影响;其次,总结分析了当前主配微潮流优化与潮流计算方法的特征;然后,介绍了主配微潮流优化与计算的应用;最后,对分布式资源占比不断提高趋势下的主配微潮流优化计算研究方向进行了展望。 展开更多
关键词 高比例分布式资源 主配微电网 潮流优化 潮流计算 多级协同
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政策模糊性的地方层级拆解逻辑——对T市乡村振兴推进的实证研究
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作者 吴淼 张津 《华中科技大学学报(社会科学版)》 北大核心 2026年第1期145-156,共12页
政策落实的关键在于层级政府对政策的有效拆解,但已有研究未关注地方层级政府如何接力拆解政策的模糊性。为此,将政策执行视为一个“地方化”的政策转化过程,构建“执行结构—政策学习”的分析框架,通过对一个市、县、乡三级政府执行乡... 政策落实的关键在于层级政府对政策的有效拆解,但已有研究未关注地方层级政府如何接力拆解政策的模糊性。为此,将政策执行视为一个“地方化”的政策转化过程,构建“执行结构—政策学习”的分析框架,通过对一个市、县、乡三级政府执行乡村振兴政策的经验分析,揭示政策执行的动态过程与复杂机制。研究发现,地方层级政府是政策落实的关键主体,各级政府可以根据地方实情对政策的目标与工具进行拆解,从而化解政策的模糊性。因行政层级差异,市、县、乡的政策拆解重点各有不同,但决策的“有限分权”控制了各级政府的拆解范围,保障上下级政府间政策传递的一致性;政策学习保障了政策目标的纵向贯通;政策执行共同体的制度安排将市、县、乡的执行责任捆绑在一起,同时实现分层运作与共同对上级政府负责。 展开更多
关键词 模糊性政策 多层级政府 政策执行 层级拆解
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融合全局和局部特征的多阶段渐进图像去雨网络
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作者 刘丛 王晓艺 《小型微型计算机系统》 北大核心 2026年第1期133-141,共9页
针对雨纹大小的多样性,设计了一个融合全局和局部特征的多阶段渐进图像去雨网络MSPGLN(Multi-stage Progressive Global-Local Network for Image Deraining)旨在实现高效的图像去雨任务.首先,提出了一个多级渐进网络结构,其分为两个阶... 针对雨纹大小的多样性,设计了一个融合全局和局部特征的多阶段渐进图像去雨网络MSPGLN(Multi-stage Progressive Global-Local Network for Image Deraining)旨在实现高效的图像去雨任务.首先,提出了一个多级渐进网络结构,其分为两个阶段,能够逐渐去除不同特征的雨纹.在第1阶段中,使用较大的感受野来关注较大的的雨纹结构,将原本较小或中等的雨纹被完全去除,而原本较大的雨纹可能仍有残留;在第2阶段中,使用较小的感受野聚焦较小的雨纹结构,以进一步提高去雨图像的清晰度和视觉效果.其次,设计了多尺度补丁模块来捕捉雨纹的不规则几何特征和位置信息,表达更灵活和可变的感受野大小.同时,依据降雨区域之间存在局部相关的特点,构建了一种双分支结构分别提取并融合全局和局部信息.此外,提出了一种多头代理注意力模块,通过捕获多个不同的特征来获取更丰富的信息.大量的实验结果表明,该图像去雨网络模块以低成本取得了先进的效果. 展开更多
关键词 图像去雨 多级渐进网络结构 全局和局部特征 多头代理注意力模块
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双路径编码与自适应感受野驱动的医学图像分割
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作者 彭晏飞 孙伟强 《中国图象图形学报》 北大核心 2026年第1期320-334,共15页
目的受限于局部感受野,卷积神经网络难以有效建模长程依赖。现有研究尝试将Transformer模块引入编码器、解码器或跳跃连接以增强全局信息建模能力,但此类局部式嵌入仍不足以捕获器官在尺度与形态高度可变情况下所呈现的复杂依赖关系。此... 目的受限于局部感受野,卷积神经网络难以有效建模长程依赖。现有研究尝试将Transformer模块引入编码器、解码器或跳跃连接以增强全局信息建模能力,但此类局部式嵌入仍不足以捕获器官在尺度与形态高度可变情况下所呈现的复杂依赖关系。此外,传统卷积在训练后趋于静态,难以适应器官的几何形变,从而在一定程度上限制了模型对动态形变结构的表征能力。方法针对上述问题,提出一种端到端的医学图像分割框架,通过双路径编码与自适应感受野机制的协同设计,增强模型对全局—局部特征融合能力。具体而言,首先,设计了双路径编码结构,在多个网络层级融合卷积神经网络与Transformer特征,实现局部细节与全局上下文的渐进式融合;其次,构建编码器多层次融合机制,通过跨尺度信息交互整合浅层纹理与深层语义特征,增强模型对目标结构的多分辨率解析能力;最后,提出自适应感受野机制,基于像素级语义差距动态调整卷积核感知范围,突破静态卷积在形变组织表征中的瓶颈。结果实验在两个公开数据集上与最新的方法进行比较,在Synapse数据集中,本文方法较次优模型在DSC(Dice similarity coefficient)和HD95(95%Hausdorff distance)评价指标上分别提升0.54%和0.44;在ACDC(auto⁃mated cardiac diagnosis challenge)数据集上的DSC值提高0.34%;消融实验进一步验证了双路径编码与自适应感受野机制的协同有效性。结论本文方法通过深度融合卷积神经网络局部感知与Transformer全局建模的各自优势,结合自适应感受野机制,有效解决了当前医学图像分割模型中全局—局部特征融合不足及卷积核参数静态固化的问题,实现了SOTA(state-of-the-art)级别的分割精度,为复杂医学图像分割任务提供了新的方案。代码已开源:https://github.com/Swq308/DPAR-Net。 展开更多
关键词 卷积神经网络(CNN) TRANSFORMER 双路径编码 自适应感受野 多层次融合
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本研一体化的多层次进阶式自动控制元件综合创新性实验教学平台设计与实践研究
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作者 王惠军 刘虎 陈刚 《高教学刊》 2026年第6期80-84,共5页
基于科教融合并围绕自动控制元件实验教学创新性能力培养需求,设计搭建部件级、单元级和系统级3个层次的进阶式综合创新性实验教学平台,针对不同层次合理设计实验教学内容,引导学生自己发现问题、解决问题,将学生从工程实践能力锻炼和... 基于科教融合并围绕自动控制元件实验教学创新性能力培养需求,设计搭建部件级、单元级和系统级3个层次的进阶式综合创新性实验教学平台,针对不同层次合理设计实验教学内容,引导学生自己发现问题、解决问题,将学生从工程实践能力锻炼和理论知识拓展提升到科研兴趣培育和创新能力培养,进而实现学科的科研强势转化为人才培养的优势。 展开更多
关键词 本研一体 多层次 进阶式 自动控制元件 实验教学
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潜在危险行为分析下多层面护理对精神分裂症患者的影响
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作者 黄颖 胡晓雨 +1 位作者 王学娟 高一雯 《中外医学研究》 2026年第6期147-149,共3页
目的:观察潜在危险行为分析下多层面护理对精神分裂症患者的影响。方法:选取2022年9月—2024年4月靖江市第二人民医院收治的90例精神分裂症患者作为研究对象,按照不同护理方法分组,对照组(45例)采用常规护理,观察组(45例)则联用潜在危... 目的:观察潜在危险行为分析下多层面护理对精神分裂症患者的影响。方法:选取2022年9月—2024年4月靖江市第二人民医院收治的90例精神分裂症患者作为研究对象,按照不同护理方法分组,对照组(45例)采用常规护理,观察组(45例)则联用潜在危险行为分析下多层面护理。比较两组社会功能、负性情绪及危险行为发生率。结果:观察组危险行为发生率低于对照组,差异有统计学意义(P<0.05)。观察组个人和社会功能量表(PSP)和社会功能评定(SSPI)评分高于对照组,汉密尔顿焦虑量表(HAMA)、汉密尔顿抑郁量表(HAMD)评分低于对照组,差异有统计学意义(P<0.05)。结论:潜在危险行为分析下多层面护理能够促进精神分裂症患者社会功能提升,减少攻击行为,并缓解负性情绪,协助改善临床症状。 展开更多
关键词 潜在危险行为分析下多层面护理 精神分裂症 社会功能 攻击行为 负性情绪
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成渝双城经济圈建设下“万达开”旅游协同发展的政策支持与实践路径
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作者 刘江 李京朋 《四川旅游学院学报》 2026年第1期48-61,共14页
文章以“万达开”区域(万州、达州、开州)为研究对象,探讨其旅游协同发展的理论基础、现状问题及实现路径。首先,基于区域协调均衡发展理论,分析“万达开”区域在文旅资源布局、产业协同、基础设施互联互通、公共服务共享等方面面临的挑... 文章以“万达开”区域(万州、达州、开州)为研究对象,探讨其旅游协同发展的理论基础、现状问题及实现路径。首先,基于区域协调均衡发展理论,分析“万达开”区域在文旅资源布局、产业协同、基础设施互联互通、公共服务共享等方面面临的挑战,包括区域发展不均衡、产品同质化严重、协同机制不完善等问题。其次,提出构建区域文旅协同发展体制机制的原则与结构。从品牌统一建设、产品错位开发、智慧平台打造与生态优先治理等维度,系统阐述“万达开”区域深化文旅协同发展的策略路径。研究旨在为成渝地区双城经济圈北翼构建国家级文旅协同发展示范区提供理论支撑与实践参考。 展开更多
关键词 万达开 文旅协同发展 品牌建设 多级治理
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自由贸易试验区视阈下政府支持水平、财富水平对城市创新能力的影响
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作者 燕楠 许娜瑞 《科技与经济》 2026年第1期66-70,共5页
2013年至今,我国已设立22个自由贸易试验区,其推动我国社会经济和外贸实现高质量发展,并显著影响所在城市的创新能力。基于2012—2023年具有代表性的222个城市的面板数据,采用多时点双重差分的方法,在双固定模型下检验了自由贸易试验区... 2013年至今,我国已设立22个自由贸易试验区,其推动我国社会经济和外贸实现高质量发展,并显著影响所在城市的创新能力。基于2012—2023年具有代表性的222个城市的面板数据,采用多时点双重差分的方法,在双固定模型下检验了自由贸易试验区视阈下政府支持水平和财富水平二者对城市创新能力的影响。研究表明,政府支持水平和财富水平对自由贸易试验区所在城市创新能力具有正向的中介作用影响。未来我国应扩大自由贸易试验区的设立范围,积极发挥政府在自由贸易试验区建设中的职能,提高城市的财富水平,推动社会共同富裕的实现,进一步推动经济高质量发展,实现强国富民的中国式现代化目标。 展开更多
关键词 自由贸易试验区 城市创新 政府支持水平 财富水平 多时点双重差分
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无蜂窝通感一体化中多级融合定位机制研究
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作者 裴荣康 王洁 +2 位作者 李佳珉 王东明 朱鹏程 《电信科学》 北大核心 2026年第1期22-34,共13页
随着6G移动通信技术的发展,通信与感知一体化(integrated sensing and communication,ISAC)成为未来无线网络的重要方向。在大规模分布式场景中,高精度定位仍面临计算和通信开销过大、参数不可靠等挑战。为此,提出一种多级融合的ISAC定... 随着6G移动通信技术的发展,通信与感知一体化(integrated sensing and communication,ISAC)成为未来无线网络的重要方向。在大规模分布式场景中,高精度定位仍面临计算和通信开销过大、参数不可靠等挑战。为此,提出一种多级融合的ISAC定位架构:在接入点(access point,AP)级对感知信号进行预处理,并将结果上传至边缘分布式单元(edge distributed unit,EDU);EDU级利用神经网络将信噪比映射为时延参数的权重,并结合几何精度因子(geometric dilution of precision,GDOP)策略进行加权最小二乘局部定位;中央处理单元(central processing unit,CPU)级则在全局视角下对EDU上传的可靠参数进行二次动态筛选与最终定位。仿真结果表明,该架构能显著降低整体区域内的定位误差,通信和计算开销均优于集中式方案,具有良好的系统可扩展性。 展开更多
关键词 多级融合架构 通信与感知一体化 几何精度因子 神经网络 无蜂窝
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地级市尺度下中国物流企业空间格局演化特征及影响因素
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作者 戢晓峰 李子歆 +2 位作者 曹瑞 李武 陈方 《干旱区地理》 北大核心 2026年第1期176-185,共10页
物流企业在区域经济中发挥着至关重要的作用,其分布情况直接影响区域经济的资源配置和市场竞争力,研究地级市物流企业空间格局演化特征及影响因素,有助于揭示物流企业集聚的形成机制。基于2006—2023年中国地级市物流企业地理位置数据,... 物流企业在区域经济中发挥着至关重要的作用,其分布情况直接影响区域经济的资源配置和市场竞争力,研究地级市物流企业空间格局演化特征及影响因素,有助于揭示物流企业集聚的形成机制。基于2006—2023年中国地级市物流企业地理位置数据,运用核密度分析、标准差椭圆、平均最近邻、空间自相关等空间分析方法,获取地级市尺度下物流企业时空格局及演化特征,并使用多尺度地理加权回归模型分析影响物流企业空间格局的因素及其空间分异特征。结果表明:(1)中国物流企业空间分布始终保持集聚特征,其空间格局经历了“一核带动、多点集聚”转变为“多核”,再逐渐转变为“双核”的演化过程,且存在廊道扩散和邻近扩散效应。(2)物流企业发展存在显著的正向溢出效应,发展较快的城市能够带动周边城市的发展。欠发达城市受发达城市的“虹吸效应”影响,处于“虹吸潮”的低洼地带具有显著的负向溢出效应。(3)第三产业就业人数和进出口总额为物流企业空间格局的主要影响因素。其中,进出口总额、外资企业数量为全局影响因素;第三产业就业人数和人均GDP为局部影响因素。 展开更多
关键词 物流企业 空间演化 影响因素 多尺度地理加权回归 地级市 产业集聚
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