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Research on P2P Traffic Monitoring System based on DPI Technology
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作者 Zhiqiang Ma 《International Journal of Technology Management》 2014年第9期85-87,共3页
This paper focuses on the key technologies of P2P technology and network traffic monitoring, which focuses on AC automaton and bypass interference control technology, and on based of it, we design a new P2P traffic mo... This paper focuses on the key technologies of P2P technology and network traffic monitoring, which focuses on AC automaton and bypass interference control technology, and on based of it, we design a new P2P traffic monitoring system. The system uses DPI and DFI recognition technology, as well as straight loss and bypass interference control technology, basically meet the recognition and control of P2P traffic. Finally, the test results show that this system recognition accuracy of P2P traffic is high, good control effect, function and performance meet the design requirements. 展开更多
关键词 monitoring system network traffic traffic monitoring P2P traffic monitoring
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Two States CBR Modeling of Data Source in Dynamic Traffic Monitoring Sensor Networks 被引量:1
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作者 罗俊 蒋铃鸽 +2 位作者 何晨 冯宸 郑春雷 《Journal of Shanghai Jiaotong university(Science)》 EI 2007年第5期618-622,共5页
Real traffic information was analyzed in the statistical characteristics and approximated as a Gaussian time series. A data source model, called two states constant bit rate (TSCBR), was proposed in dynamic traffic mo... Real traffic information was analyzed in the statistical characteristics and approximated as a Gaussian time series. A data source model, called two states constant bit rate (TSCBR), was proposed in dynamic traffic monitoring sensor networks. Analysis of autocorrelation of the models shows that the proposed TSCBR model matches with the statistical characteristics of real data source closely. To further verify the validity of the TSCBR data source model, the performance metrics of power consumption and network lifetime was studied in the evaluation of sensor media access control (SMAC) algorithm. The simulation results show that compared with traditional data source models, TSCBR model can significantly improve accuracy of the algorithm evaluation. 展开更多
关键词 wireless sensor network (WSN) traffic monitoring data source model AUTOCORRELATION
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Real-time vehicle tracking for traffic monitoring systems 被引量:1
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作者 胡硕 Zhang Xuguang Wu Na 《High Technology Letters》 EI CAS 2016年第3期248-255,共8页
A real-time vehicle tracking method is proposed for trattlC monitoring system at roau mte^cc- tions, and the vehicle tracking module consists of an initialization stage and a tracking stage. Li- cense plate location b... A real-time vehicle tracking method is proposed for trattlC monitoring system at roau mte^cc- tions, and the vehicle tracking module consists of an initialization stage and a tracking stage. Li- cense plate location based on edge density and color analysis is used to detect the license plate re- gion for tracking initialization. In the tracking stage, covariance matching is employed to track the license plate. Genetic algorithm is used to reduce the computational cost. Real-time image tracking of multi-lane vehicles is achieved. In the experiment, test videos are recorded in advance by record- ers of actual E-police systems erage false detection rate and at several different city intersections. In the tracking module, the av- missed plates rate are 1.19%, and 1.72%, respectively. 展开更多
关键词 traffic monitoring system covariance matching genetic algorithms vehicle tracking
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Trip Purposes of Automobile Users Inference Using Multi-day Traffic Monitoring Data
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作者 Wen Zheng Wenquan Li +2 位作者 Qian Chen Yan Zheng Chenhao Zhang 《Journal of Harbin Institute of Technology(New Series)》 CAS 2023年第5期1-11,共11页
Determining trip purpose is an important link to explore travel rules. In this paper,we takea utomobile users in urban areas as the research object,combine unsupervised learning and supervised learningm ethods to anal... Determining trip purpose is an important link to explore travel rules. In this paper,we takea utomobile users in urban areas as the research object,combine unsupervised learning and supervised learningm ethods to analyze their travel characteristics,and focus on the classification and prediction of automobileu sers’trip purposes. However,previous studies on trip purposes mainly focused on questionnaires and GPSd ata,which cannot well reflect the characteristics of automobile travel. In order to avoid the multi-dayb ehavior variability and unobservable heterogeneity of individual characteristics ignored in traditional traffic questionnaires,traffic monitoring data from the Northern District of Qingdao are used,and the K-meansc lustering method is applied to estimate the trip purposes of automobile users. Then,Adaptive Boosting(AdaBoost)and Random Forest(RF)methods are used to classify and predict trip purposes. Finally,ther esult shows:(1)the purpose of automobile users can be mainly divided into four clusters,which includeC ommuting trips,Flexible life demand travel in daytime,Evening entertainment and leisure shopping,andT axi-based trips for the first three types of purposes,respectively;(2)the Random Forest method performss ignificantly better than AdaBoost in trip purpose prediction for higher accuracy;(3)the average predictiona ccuracy of Random Forest under hyper-parameters optimization reaches96.25%,which proves the feasibilitya nd rationality of the above clustering results. 展开更多
关键词 trip purpose automobile users traffic monitoring data K-means clustering ADABOOST random forest
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ICT Devices: Vital Tools for Enhancing Road Traffic Monitoring
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作者 Emmanuel Nwabueze Ekwonwune Nwachukwu Catherine Ada Ngozi Osuagwu Oliver Eberechi 《Communications and Network》 2018年第3期43-50,共8页
Road Traffic monitoring involves the collection of data describing the characteristic of vehicles and their movement through road networks. Such data may be used for one of these purposes such as law enforcement, cong... Road Traffic monitoring involves the collection of data describing the characteristic of vehicles and their movement through road networks. Such data may be used for one of these purposes such as law enforcement, congestion and incident detection and increasing road capacity. Transportation is a requirement for every nation regardless of its economy, political stability, population size and technological development. Movement of goods and people from one place to another is crucial to maintain strong economic and political ties between the various components of any given nation among nations. However, there are different modes of transportation and the most paramount one to human beings is road transportation. Due to increase in the modes of transportation, road users encounter different problems such as road blockage and incidents. Therefore there is need to monitor users incidents and to know the causes. Road traffic monitoring can be done manually or using ICT devices. This paper focuses on how the use of ICT devices can enhance road traffic monitoring. It traces the brief history of transportation;it equally discussed road traffic and safety, tools for monitoring road traffic, Intelligent Transportation Systems (ITS) use for traffic monitoring and their benefits. The result shows that the use of ICT devices in road traffic monitoring should be a Millennium Goal for all developed and developing countries because of its numerous advantages in the reduction of the intensity of traffic and other road incidents. 展开更多
关键词 TRANSPORTATION traffic monitorING DEVICES Camera SURVEILLANCE
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An Improved Histogram Equalization Method in the Traffic Monitoring Image Processing Field
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作者 Jia Shi Kejian Yang 《Journal of Computer and Communications》 2015年第11期25-32,共8页
To process the traffic monitoring image, a local Histogram Equalization method based on fuzzy mathematics was proposed in this paper. In this paper, firstly, we define a function to measure the similarity degree of tw... To process the traffic monitoring image, a local Histogram Equalization method based on fuzzy mathematics was proposed in this paper. In this paper, firstly, we define a function to measure the similarity degree of two images. Then, a suitable Gaussian fuzzy distribution function was chose to generate a 3 × 3 matrix of influential factors. In order to reduce the artificial boundaries, we combined the 3 × 3 influential matrix with a 3 × 3 smooth filter matrix to get the final smooth-influ- ence matrix. Finally, the smooth-influence matrix was used to process the center block image. The simulation results demonstrated that the proposed method can reduce time consumption while improving the image contrast and can get satisfactory results. 展开更多
关键词 IMAGE Process HISTOGRAM EQUALIZATION Fuzzy MATHEMATICS traffic monitoring IMAGE
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A Scalable Architecture for Network Traffic Monitoring and Analysis Using Free Open Source Software
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作者 Olatunde ABIONA Temitope ALADESANMI +5 位作者 Clement ONIME Adeniran OLUWARANTI Ayodeji OLUWATOPE Olakanmi ADEWARA Tricha ANJALI Lawrence KEHINDE 《International Journal of Communications, Network and System Sciences》 2009年第6期528-539,共12页
The lack of current network dynamics studies that evaluate the effects of new application and protocol deployment or long-term studies that observe the effect of incremental changes on the Internet, and the change in ... The lack of current network dynamics studies that evaluate the effects of new application and protocol deployment or long-term studies that observe the effect of incremental changes on the Internet, and the change in the overall stability of the Internet under various conditions and threats has made network monitoring challenging. A good understanding of the nature and type of network traffic is the key to solving congestion problems. In this paper we describe the architecture and implementation of a scalable network traffic moni-toring and analysis system. The gigabit interface on the monitoring system was configured to capture network traffic and the Multi Router Traffic Grapher (MRTG) and Webalizer produces graphical and detailed traffic analysis. This system is in use at the Obafemi Awolowo University, IleIfe, Nigeria;we describe how this system can be replicated in another environment. 展开更多
关键词 SCALABLE Network monitoring traffic ANALYSIS Web LOG ANALYSIS OPEN Source
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An Intelligent Traffic Monitoring System in Congested Regions with Prioritization for Emergency Vehicle Using UAV Networks
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作者 V.D Ambeth Kumar Venkatesan Ramachandran +3 位作者 Mamoon Rashid Abdul Rehman Javed Shayla Islam Abdullah Al Hejaili 《Tsinghua Science and Technology》 2025年第4期1387-1400,共14页
Unmanned Aerial Vehicles(UAVs)are enabled to be fast and flexible in managing traffic compared to the conventional methods.However,in emergencies,this system takes more time to identify and clear the traffic because o... Unmanned Aerial Vehicles(UAVs)are enabled to be fast and flexible in managing traffic compared to the conventional methods.However,in emergencies,this system takes more time to identify and clear the traffic because of fixed time control.To overcome this problem,an automated intelligent traffic monitoring and controlling system is designed using YOLO V3 neural architecture and implemented to detect the emergency vehicles from video stream data from UAVs using deep Convolution Neural Network(CNN)along with rerouting algorithm to provide the safest alternate route from current position to destination,in a heavy traffic environment.The real-time visual data collected through UAV video cameras are trained using machine learning algorithms to produce statistical profiles that are used continuously as updated inputs to the existing traffic simulation models for improving predictions.The proposed automated system performs exemplary in recognizing emergency vehicles and diverting them to an alternate route for quick transportation in various scenarios. 展开更多
关键词 traffic monitoring CONGESTION emergency vehicles alternate route and prioritization
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Toward Intrusion Detection of Industrial Cyber-Physical System: A Hybrid Approach Based on System State and Network Traffic Abnormality Monitoring
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作者 Junbin He Wuxia Zhang +2 位作者 Xianyi Liu Jinping Liu Guangyi Yang 《Computers, Materials & Continua》 2025年第7期1227-1252,共26页
The integration of cloud computing into traditional industrial control systems is accelerating the evolution of Industrial Cyber-Physical System(ICPS),enhancing intelligence and autonomy.However,this transition also e... The integration of cloud computing into traditional industrial control systems is accelerating the evolution of Industrial Cyber-Physical System(ICPS),enhancing intelligence and autonomy.However,this transition also expands the attack surface,introducing critical security vulnerabilities.To address these challenges,this article proposes a hybrid intrusion detection scheme for securing ICPSs that combines system state anomaly and network traffic anomaly detection.Specifically,an improved variation-Bayesian-based noise covariance-adaptive nonlinear Kalman filtering(IVB-NCA-NLKF)method is developed to model nonlinear system dynamics,enabling optimal state estimation in multi-sensor ICPS environments.Intrusions within the physical sensing system are identified by analyzing residual discrepancies between predicted and observed system states.Simultaneously,an adaptive network traffic anomaly detection mechanism is introduced,leveraging learned traffic patterns to detect node-and network-level anomalies through pattern matching.Extensive experiments on a simulated network control system demonstrate that the proposed framework achieves higher detection accuracy(92.14%)with a reduced false alarm rate(0.81%).Moreover,it not only detects known attacks and vulnerabilities but also uncovers stealthy attacks that induce system state deviations,providing a robust and comprehensive security solution for the safety protection of ICPS. 展开更多
关键词 Industrial cyber-physical systems network intrusion detection adaptive Kalman filter abnormal state monitoring network traffic abnormality monitoring
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The integration of En route flow optimization,complex network clustering,and rule-based approach to airspace sub-sectorization for enhanced air traffic monitoring 被引量:2
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作者 Aitichya Chandra Sayan Hazra Ashish Verma 《Journal of the Air Transport Research Society》 2024年第2期108-123,共16页
This study proposes the use of a novel integrated framework for 2D en route airspace sub-sectorization.The integrated framework combines the multi-commodity flow optimization approach,complex network cluster-ing appro... This study proposes the use of a novel integrated framework for 2D en route airspace sub-sectorization.The integrated framework combines the multi-commodity flow optimization approach,complex network cluster-ing approach,and Minimum Bounding Geometry(MBG)-coupled Rule-based Approach for boundary design.A decomposition-based discrete particle swarm optimization(DPSO)is used to solve the clustering problem.The output of the flow optimization is used as a guiding standard for the DPSO.Experimentations were performed using the Indian airspace sector to validate the framework and DPSO was run for different maximum number of generations(maxgen).The findings reveal that the multi-commodity flow approach captures system-wide flow operations.Clustering results corresponding to maxgen=100 and maxgen=150 perform best in terms of equitable and balanced distribution of cluster size and traffic load.The MBG-coupled Rule-based Approach leads to com-pact and convex sub-sector boundary design.Major implications of this research include dynamic adaptability of the integrated framework,increased sensitivity of sector design to network evolution,and a computationally tractable framework.The higher controllability of the proposed framework also offers an increased acceptance among practitioners. 展开更多
关键词 Air traffic monitoring En route flow optimization Airspace sectorization Complex network clustering Multi-objective optimization
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Waterbomb-origami inspired triboelectric nanogenerator for smart pavement-integrated traffic monitoring 被引量:6
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作者 Yafeng Pang Xingyi Zhu +3 位作者 Ying Yu Shuainian Liu Yu Chen Yi Feng 《Nano Research》 SCIE EI CSCD 2022年第6期5450-5460,共11页
With a rapid development of intelligent transportation systems(ITSs),traffic monitoring has gained increasing attention.Here,we present a new kind of waterbomb-origami-inspired triboelectric nanogenerator(WO-TENG)as a... With a rapid development of intelligent transportation systems(ITSs),traffic monitoring has gained increasing attention.Here,we present a new kind of waterbomb-origami-inspired triboelectric nanogenerator(WO-TENG)as a traffic monitoring system to integrate smart pavement with lightweight,cost-effective,excellent deformability,flexibility,and self-rebounding properties.The electrical performance is significantly improved by more than 67%compared with current origami-based TENG,and multi tribo-pairs have great synchronicity.The fully-packaged self-driven WO-TENG is further developed to integrate smart pavement,which can successfully decouple the influence of vehicle speed and weight on the sensing accuracy.This phenomenon demonstrates the feasibility and stability of the WO-TENG for traffic monitoring.Independently of the voltage amplitude and time interval electrical wave,vehicle speed,number of vehicles,and types of vehicles can be further evaluated accurately.This work can not only address the challenge of traditional traffic monitoring system,but also promote the development of TENG based self-powered sensors in ITSs. 展开更多
关键词 waterbomb-origami triboelectric nanogenerator smart pavement traffic monitoring
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Network traffic classification:Techniques,datasets,and challenges 被引量:9
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作者 Ahmad Azab Mahmoud Khasawneh +2 位作者 Saed Alrabaee Kim-Kwang Raymond Choo Maysa Sarsour 《Digital Communications and Networks》 SCIE CSCD 2024年第3期676-692,共17页
In network traffic classification,it is important to understand the correlation between network traffic and its causal application,protocol,or service group,for example,in facilitating lawful interception,ensuring the... In network traffic classification,it is important to understand the correlation between network traffic and its causal application,protocol,or service group,for example,in facilitating lawful interception,ensuring the quality of service,preventing application choke points,and facilitating malicious behavior identification.In this paper,we review existing network classification techniques,such as port-based identification and those based on deep packet inspection,statistical features in conjunction with machine learning,and deep learning algorithms.We also explain the implementations,advantages,and limitations associated with these techniques.Our review also extends to publicly available datasets used in the literature.Finally,we discuss existing and emerging challenges,as well as future research directions. 展开更多
关键词 Network classification Machine learning Deep learning Deep packet inspection traffic monitoring
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Study on Monitoring and Analysis of TSP Caused by Road Traffic in Binzhou City
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作者 Cao Qing Xu Lanjuan 《Meteorological and Environmental Research》 CAS 2016年第4期26-28,共3页
Wind speed,temperature,relative humidity and TSP concentration at three intersections in Binzhou City were monitored,and the relationships of TSP concentration with wind speed,temperature,relative humidity and traffic... Wind speed,temperature,relative humidity and TSP concentration at three intersections in Binzhou City were monitored,and the relationships of TSP concentration with wind speed,temperature,relative humidity and traffic flow at the three intersections in Binzhou City were analyzed by using SPSS.The results show that traffic flow was the main factor affecting TSP concentration of road traffic in Binzhou City. 展开更多
关键词 ROAD traffic monitoring TOTAL suspended PARTICULATES Binzhou CITY China
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On-line Popularity Monitoring Method Based on Bloom Filters and Hash tables for Differentiated Traffic 被引量:4
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作者 ZHANG Guo ZHANG Jianhui +1 位作者 WANG Binqiang ZHANG Zhen 《China Communications》 SCIE CSCD 2016年第S1期72-86,共15页
Towards line speed and accurateness on-line content popularity monitoring on Content Centric Networking(CCN) routers, we propose a three-stage scheme based on Bloom filters and hash tables for differentiated traffic. ... Towards line speed and accurateness on-line content popularity monitoring on Content Centric Networking(CCN) routers, we propose a three-stage scheme based on Bloom filters and hash tables for differentiated traffic. At the first stage, we decide whether to deliver the content to the next stage depending on traffic types. The second stage consisting of Standard Bloom filters(SBF) and Counting Bloom filters(CBF) identifies the popular content. Meanwhile, a scalable sliding time window based monitoring scheme for different traffic types is proposed to implement frequent and real-time updates by the change of popularities. Hash tables according with sliding window are used to record the popularity at the third stage. Simulation results reveal that this method reaches a 40 Gbps processing speed at lower error probability with less memory, and it is more sensitive to the change of popularity. Additionally, the architecture which can be implemented in CCN router is flexible and scalable. 展开更多
关键词 CCN line speed traffic type BLOOM filters HASH tables POPULARITY monitoring
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城市道路通勤车辆行驶轨迹的改进型隐马尔可夫预测方法
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作者 佘翊妮 裴植 +1 位作者 刘晴辉 董红召 《浙江工业大学学报》 北大核心 2025年第4期437-443,共7页
预测城市道路中群体车辆行驶轨迹是治安监控以及交通出行路线规划的基础。提出了基于改进型隐马尔可夫模型预测群体车辆行驶轨迹的方法,首先通过分析海量城市智能交通卡口数据,提取并分析获取群体通勤车辆的历史卡口和车道信息,并以此... 预测城市道路中群体车辆行驶轨迹是治安监控以及交通出行路线规划的基础。提出了基于改进型隐马尔可夫模型预测群体车辆行驶轨迹的方法,首先通过分析海量城市智能交通卡口数据,提取并分析获取群体通勤车辆的历史卡口和车道信息,并以此信息为基础,构建车辆历史行驶轨迹、车辆行驶状态转移矩阵和车道信息观测矩阵;然后建立改进型隐马尔科夫模型(Improved hidden Markov models,IHMM),得到城市道路群体通勤车辆行驶轨迹;最后以某类群体通勤车辆的历史交通数据为例对方法进行验证实验,通过多种方法的对比分析,证明采用IHMM方法的车辆行驶轨迹预测精度和算法效率更高。 展开更多
关键词 车辆行驶轨迹 交通卡口数据 改进型隐马尔可夫模型 通勤车辆
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基于智能交通监控系统的交通违法行为影响因素分析
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作者 王辛岩 梁海琼 +3 位作者 陈佳杭 李世中 李丙章 张平 《西藏科技》 2025年第7期63-69,共7页
随着城市化进程加快,交通违法行为对道路交通安全与效率的影响日益显著。为揭示交通违法行为的影响因素及其作用机制,文章基于智能交通监控系统采集的拉萨市城关区2023年6月交通违法数据,结合气象、交通流量、时间及道路属性等多源异构... 随着城市化进程加快,交通违法行为对道路交通安全与效率的影响日益显著。为揭示交通违法行为的影响因素及其作用机制,文章基于智能交通监控系统采集的拉萨市城关区2023年6月交通违法数据,结合气象、交通流量、时间及道路属性等多源异构数据,通过随机森林(RF)、XGBoost、C5.0决策树及多层感知器(MLP)等机器学习模型,探究时间、空间、交通流量及天气四类环境因素对交通违法行为的影响机制。研究结果表明,随机森林模型在预测性能上显著优于其他模型,准确率达93.17%,且在ROC(AUC=0.99)与PR曲线(AP=0.989)评估中表现最优。基于SHAP的特征贡献分析显示,交通流量、道路类型及时间因素是影响违法行为的关键变量,不同违法类型(闯红灯、违反指示标线等)的影响机制存在显著差异:本研究量化了环境因素对交通违法行为的差异化作用,为优化执法资源配置及制定精准化交通管理策略提供了数据支撑与理论依据。 展开更多
关键词 智能交通监控系统 交通违法行为 多源数据 机器学习模型 环境因素
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高速公路单车道车流非极大值抑制监测仿真
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作者 武晓博 伍朝辉 《计算机仿真》 2025年第8期192-196,共5页
车流量变化受到多种因素的影响,并在空间和通道上存在复杂的交互关系,会导致特征提取过程过度关注局部特征,致使特征权重失衡,影响车流量预测效果。为提升道路通行效率,研究提出基于D-Link Net与形态学的高速公路单车道车流量监测方法... 车流量变化受到多种因素的影响,并在空间和通道上存在复杂的交互关系,会导致特征提取过程过度关注局部特征,致使特征权重失衡,影响车流量预测效果。为提升道路通行效率,研究提出基于D-Link Net与形态学的高速公路单车道车流量监测方法。首先,构建包含编码区、中心区和解码区的D-LinkNet结构,并在中心区中加入通道域和空间域双注意力。在通道域自动调整不同特征通道的权重,在空间域捕捉图像中的空间位置关系,更全面地获取单车道信息的全局特征。经由解码区输出道路特征提取结果后,通过形态学处理获得图像感兴趣区域。最后,利用改进YOLOv5模型的识别框并识别图像中车辆信息,并引入非极大值抑制剔除重复的识别框。将识别到的车辆信息绘制为车流量热力图,由此实现车流量监测。实验结果表明,上述方法 PR曲线更理想、AP值更高,且每秒检测到的帧数更多,说明上述方法有效实现了设计预期。 展开更多
关键词 高速公路单车道 车流量监测 形态学 非极大值抑制 通道域 空间域
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Remote Sensing Imagery for Multi-Stage Vehicle Detection and Classification via YOLOv9 and Deep Learner
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作者 Naif Al Mudawi Muhammad Hanzla +4 位作者 Abdulwahab Alazeb Mohammed Alshehri Haifa F.Alhasson Dina Abdulaziz AlHammadi Ahmad Jalal 《Computers, Materials & Continua》 2025年第9期4491-4509,共19页
Unmanned Aerial Vehicles(UAVs)are increasingly employed in traffic surveillance,urban planning,and infrastructure monitoring due to their cost-effectiveness,flexibility,and high-resolution imaging.However,vehicle dete... Unmanned Aerial Vehicles(UAVs)are increasingly employed in traffic surveillance,urban planning,and infrastructure monitoring due to their cost-effectiveness,flexibility,and high-resolution imaging.However,vehicle detection and classification in aerial imagery remain challenging due to scale variations from fluctuating UAV altitudes,frequent occlusions in dense traffic,and environmental noise,such as shadows and lighting inconsistencies.Traditional methods,including sliding-window searches and shallow learning techniques,struggle with computational inefficiency and robustness under dynamic conditions.To address these limitations,this study proposes a six-stage hierarchical framework integrating radiometric calibration,deep learning,and classical feature engineering.The workflow begins with radiometric calibration to normalize pixel intensities and mitigate sensor noise,followed by Conditional Random Field(CRF)segmentation to isolate vehicles.YOLOv9,equipped with a bi-directional feature pyramid network(BiFPN),ensures precise multi-scale object detection.Hybrid feature extraction employs Maximally Stable Extremal Regions(MSER)for stable contour detection,Binary Robust Independent Elementary Features(BRIEF)for texture encoding,and Affine-SIFT(ASIFT)for viewpoint invariance.Quadratic Discriminant Analysis(QDA)enhances feature discrimination,while a Probabilistic Neural Network(PNN)performs Bayesian probability-based classification.Tested on the Roundabout Aerial Imagery(15,474 images,985K instances)and AU-AIR(32,823 instances,7 classes)datasets,the model achieves state-of-the-art accuracy of 95.54%and 94.14%,respectively.Its superior performance in detecting small-scale vehicles and resolving occlusions highlights its potential for intelligent traffic systems.Future work will extend testing to nighttime and adverse weather conditions while optimizing real-time UAV inference. 展开更多
关键词 Feature extraction traffic analysis unmanned aerial vehicles(UAV) you only look once version 9(YOLOv9) machine learning remote sensing for traffic monitoring computer vision
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基于WSN技术的道路交通智能监测系统
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作者 张华 易丹 江跃龙 《计算机时代》 2025年第1期46-52,共7页
为满足道路交通管理需求,研究设计了基于WSN(无线传感器网络)技术的道路交通智能监测系统。硬件包括雷达测速传感器、车辆检测传感器和ZigBee通讯子系统,构建了带唯一标识符的WSN网络,实现数据传输监测。实验显示,该系统在误警率和响应... 为满足道路交通管理需求,研究设计了基于WSN(无线传感器网络)技术的道路交通智能监测系统。硬件包括雷达测速传感器、车辆检测传感器和ZigBee通讯子系统,构建了带唯一标识符的WSN网络,实现数据传输监测。实验显示,该系统在误警率和响应时间上优于传统方法,提升了监测精度和实时性,验证了其在实际应用中的性能。 展开更多
关键词 WSN技术 道路交通 智能监测 TK8620无线终端芯片 MSP430F149微控制器 WSN组网逻辑 传输监测
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传感器网络在智慧城市构建中的应用探索
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作者 张昊 《西部现代职业教育研究》 2025年第2期36-40,共5页
智慧城市建设是城市迈向未来的必然选择,传感器网络是智慧城市建设中不可或缺的基础设备,涵盖城市的环境监测、交通管理以及公共安全等众多领域方面。系统分析了传感器的关键技术及其在智慧城市构建中的最新应用,提出了面对现在发展中... 智慧城市建设是城市迈向未来的必然选择,传感器网络是智慧城市建设中不可或缺的基础设备,涵盖城市的环境监测、交通管理以及公共安全等众多领域方面。系统分析了传感器的关键技术及其在智慧城市构建中的最新应用,提出了面对现在发展中的技术挑战及解决的方法与策略。 展开更多
关键词 传感器网络 智慧城市 环境监测 交通管理 公共安全
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