• 제목/요약/키워드: Internet traffic engineering

검색결과 692건 처리시간 0.033초

속도 정보를 기반으로 한 차량 경로 제공 시스템에 대한 연구 (Service Path Guidance System is based on speed Information)

  • 김태민;김진호;이종수
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2007년도 심포지엄 논문집 정보 및 제어부문
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    • pp.361-362
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    • 2007
  • This paper presents the Traffic information system that based on an embedded WinCE board which has GPS and HSDPA. This system is able to overcome the limit of area using the Internet service which other systems can't provide. When the embedded board receives data about the geometric and vehicle speed information, it transmits to the server via HSDPA/the Internet. The server receives and processes it for the path services. And also we present the path guidance algorithm which is based on the speed information. These algorithm responses to the dynamical traffic condition through updating traffic information. Especially, we suggest a Traffic Status Variable in each branch which represents each road's traffic status. This Traffic Status Variable contains speed, road grade; we separate the road three groups as speed limitation; and past speed data - for example, week day rush hour of each road. In addition, the data of cross about left-turn or right-turn can update. Those elements is consisted Traffic Status Variable.

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On the Supplementary Study on DSM-Based Interface Requirements through Analysis of the Operation Scenario of the Urban Subway Logistics System

  • Hwang, Sunwoo;Kim, Joouk;Park, Jaemin;Lee, Sangmin;Kim, Youngmin
    • International Journal of Internet, Broadcasting and Communication
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    • 제14권1호
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    • pp.152-161
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    • 2022
  • Recently, it is recognized as a high-cost and inefficient logistics system that increases traffic congestion and environmental problems due to an increase in traffic volume due to the activation of the online market. In order to solve inefficient problems such as unavoidable traffic congestion and environmental problems caused by the increase in traffic volume, it is necessary to develop a freight transport system technology using the existing urban railway infrastructure and freight-only urban railway. The urban subway logistics system is a logistics system that requires a combination of various technologies to solve the nationwide demand for urban logistics and road traffic problems. This paper recognized the existing traffic congestion and environmental pollution of road traffic as problems, and supplemented the contact point requirements presented above by identifying the sub-systems constituting the target system and supplementary points for each part-level contact point. In this study, as a complex system operated for one purpose by grafting various technologies, a plan is required to secure the reliability and safety of operation from various viewpoints. The results of this study can contribute to the initial configuration and basic data to solve the interface bottleneck of the urban subway logistics system to be promoted in the future.

ATM에서 IP 수용방안 (IP Implementation on ATM)

  • 강선무;전병천;이유경
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 1999년도 하계종합학술대회 논문집
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    • pp.162-167
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    • 1999
  • ATM technology is well developed. Small-scale access node and edge switches are introduced in the network. Large scale ATM core switches are prepared for backbone application. Currently, Internet traffic is increasing so rapidly and we need to consider effective way of accommodating the volume of traffic. In the other hand, QoS and traffic engineering concept is required in the Internet services. Here, in this paper, two technologies are explained and suggested for integration of networks for future ATM based IP network.

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Lyapunov-based Fuzzy Queue Scheduling for Internet Routers

  • Cho, Hyun-Cheol;Fadali, M. Sami;Lee, Jin-Woo;Lee, Young-Jin;Lee, Kwon-Soon
    • International Journal of Control, Automation, and Systems
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    • 제5권3호
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    • pp.317-323
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    • 2007
  • Quality of Service (QoS) in the Internet depends on queuing and sophisticated scheduling in routers. In this paper, we address the issue of managing traffic flows with different priorities. In our reference model, incoming packets are first classified based on their priority, placed into different queues with different capacities, and then multiplexed onto one router link. The fuzzy nature of the information on Internet traffic makes this problem particularly suited to fuzzy methodologies. We propose a new solution that employs a fuzzy inference system to dynamically and efficiently schedule these priority queues. The fuzzy rules are derived to minimize the selected Lyapunov function. Simulation experiments show that the proposed fuzzy scheduling algorithm outperforms the popular Weighted Round Robin (WRR) queue scheduling mechanism.

Combinatorial Auction-Based Two-Stage Matching Mechanism for Mobile Data Offloading

  • Wang, Gang;Yang, Zhao;Yuan, Cangzhou;Liu, Peizhen
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제11권6호
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    • pp.2811-2830
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    • 2017
  • In this paper, we study the problem of mobile data offloading for a network that contains multiple mobile network operators (MNOs), multiple WiFi or femtocell access points (APs) and multiple mobile users (MUs). MNOs offload their subscribed MUs' data traffic by leasing the unused Internet connection bandwidth of third party APs. We propose a combinatorial auction-based two-stage matching mechanism comprised of MU-AP matching and AP-MNO matching. The MU-AP matching is designed to match the MUs to APs in order to maximize the total offloading data traffic and achieve better MU satisfaction. Conversely, for AP-MNO matching, MNOs compete for APs' service using the Nash bargaining solution (NBS) and the Vickrey auction theories and, in turn, APs will receive monetary compensation. We demonstrated that the proposed mechanism converges to a distributed stable matching result. Numerical results demonstrate that the proposed algorithm well capture the tradeoff among the total data traffic, social welfare and the QoS of MUs compared to other schemes. Moreover, the proposed mechanism can considerably offload the total data traffic and improve the network social welfare with less computation complexity and communication overhead.

Implementation of Search Engine to Minimize Traffic Using Blockchain-Based Web Usage History Management System

  • Yu, Sunghyun;Yeom, Cheolmin;Won, Yoojae
    • Journal of Information Processing Systems
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    • 제17권5호
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    • pp.989-1003
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    • 2021
  • With the recent increase in the types of services provided by Internet companies, collection of various types of data has become a necessity. Data collectors corresponding to web services profit by collecting users' data indiscriminately and providing it to the associated services. However, the data provider remains unaware of the manner in which the data are collected and used. Furthermore, the data collector of a web service consumes web resources by generating a large amount of web traffic. This traffic can damage servers by causing service outages. In this study, we propose a website search engine that employs a system that controls user information using blockchains and builds its database based on the recorded information. The system is divided into three parts: a collection section that uses proxy, a management section that uses blockchains, and a search engine that uses a built-in database. This structure allows data sovereigns to manage their data more transparently. Search engines that use blockchains do not use internet bots, and instead use the data generated by user behavior. This avoids generation of traffic from internet bots and can, thereby, contribute to creating a better web ecosystem.

MPLS 망에서의 신속한 LSP 복구를 위한 MPLS OAM 기능 연구 (A Study on MPLS OAM Functions for Fast LSP Restoration on MPLS Network)

  • 신해준;임은혁;장재준;김영탁
    • 한국통신학회논문지
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    • 제27권7C호
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    • pp.677-684
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    • 2002
  • 현재의 인터넷은 폭발적으로 증가하는 다양한 멀티미디어 트래픽의 QoS 제공을 위한 트래픽 엔지니어링 기능을 갖고 있지 않다. 이러한 기능적인 단점들은 현격한 서비스 품질의 저하와 대량의 멀티미디어 서비스와 실시간 서비스 제공을 더욱 어렵게 한다. 이러한 문제를 해결하기 위한 다양한 기술이 개발되고 있다. 현재 IETF(Internet Engineering Task Force)에서 제안한 MPLS(Multi-Protocol Label Switching)기술이 이러한 문제를 해결할 차세대 인터넷의 백본 기술로 가장 유력할 것으로 예상된다$^{[1][2]}$ . MPLS와 같은 고속통신망에서 발생하는 장애는 대량의 데이터 손실과 서비스의 품질을 저하시키게 된다. 그러므로 이러한 장애에 대한 신속한 통신망의 자동복구 기능 및 OAM(Operation, Administration and Maintenance)기능은 필수적이라 할 수 있다. MPLS 통신망은 2계층에 독립적이기에 이에 적용할 장애검출, 장애보고 같은 OAM 기능 또한 다른 계층의 OAM 기능과 독립적으로 동작해야 한다. 본 논문에서는 OPNET 네트워크 시뮬레이터를 기반으로 MPLS 통신망에서의 성능측정과 장애의 검출보고, 장애의 위치 파악을 위한 MPLS OAM의 실험적인 결과를 나타내었다.

수동적 인터넷 측정을 위한 샘플링 기법 비교: 사례 연구를 통한 검증 (Comparison of Sampling Techniques for Passive Internet Measurement: An Inspection using An Empirical Study)

  • 김정현;원유집;안수한
    • 대한전자공학회논문지TC
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    • 제45권6호
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    • pp.34-51
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    • 2008
  • 인터넷이 일상생활에서 중요한 위치를 차지함에 따라 인터넷에서 발생되는 트래픽의 특성을 밝히는 것은 매우 중요한 연구과제로 주목을 받고 있다. 그러나 인터넷 트래픽은 대용량이므로 쉽게 다룰 수 없다. 이러한 문제는 인터넷 트래픽 측정 연구에 가장 큰 장애다 많은 연구자들은 다양한 샘플링 기법을 통해 트래픽을 다를 수 있는 양으로 샘플링하여 분석하고 있다. 본 연구에서는 기존의 인터넷 측정 연구에서 사용된 샘플링 기법을 비교 분석하고, 가장 효과적인 샘플링 방안을 제시하고자 한다. 연구에 비교 사용된 샘플링 기법은 규칙적 샘플링, 단순 랜덤 샘플링, 층화 샘플링이며, 샘플링 단위는 1/10, 1/100, 1/1000을 사용하였다. 분석한 항목은 트래픽 크기 분석, 엔트로피 분석, 패킷 크기 분석이다. 단순 랜덤 샘플링은 무난한 결과를 보였고, (간격을 패킷 개수로 설정한) 규칙적 샘플링은 대상과 샘플링 강도에 상관없이 고른 결과를 보였다. 한편, 간격을 시간으로 설정한 규칙적 샘플링은 매우 좋지 않을 결과를 나타내었다. 전송층 프로토콜을 기준으로 층화 샘플링 수행할 경우 더욱 좋은 결과를 얻을 수 있었다. 연구 결과를 통해 샘플링 기법이 시간에 따른 트래픽의 흐름을 얼마나 잘 유지하는가가 샘플링 성능을 좌우함을 알 수 있었다. 또한 엔트로피 분석은 샘플링에 강하고, 이상 트래픽 탐지에 매우 적절함이 확인되었다. 그러나 병목 현상에 의한 트래픽 크기 감소는 잘못된 엔트로피 분석 결과를 유발할 수 있음을 발견하였다. 마지막으로, 패킷 크기 분포는 패킷 샘플링 방식이나 강도에 영향을 받지 않음을 발견하였다.

Multivariate Congestion Prediction using Stacked LSTM Autoencoder based Bidirectional LSTM Model

  • Vijayalakshmi, B;Thanga, Ramya S;Ramar, K
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제17권1호
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    • pp.216-238
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    • 2023
  • In intelligent transportation systems, traffic management is an important task. The accurate forecasting of traffic characteristics like flow, congestion, and density is still active research because of the non-linear nature and uncertainty of the spatiotemporal data. Inclement weather, such as rain and snow, and other special events such as holidays, accidents, and road closures have a significant impact on driving and the average speed of vehicles on the road, which lowers traffic capacity and causes congestion in a widespread manner. This work designs a model for multivariate short-term traffic congestion prediction using SLSTM_AE-BiLSTM. The proposed design consists of a Bidirectional Long Short Term Memory(BiLSTM) network to predict traffic flow value and a Convolutional Neural network (CNN) model for detecting the congestion status. This model uses spatial static temporal dynamic data. The stacked Long Short Term Memory Autoencoder (SLSTM AE) is used to encode the weather features into a reduced and more informative feature space. BiLSTM model is used to capture the features from the past and present traffic data simultaneously and also to identify the long-term dependencies. It uses the traffic data and encoded weather data to perform the traffic flow prediction. The CNN model is used to predict the recurring congestion status based on the predicted traffic flow value at a particular urban traffic network. In this work, a publicly available Caltrans PEMS dataset with traffic parameters is used. The proposed model generates the congestion prediction with an accuracy rate of 92.74% which is slightly better when compared with other deep learning models for congestion prediction.

Hybrid CSA optimization with seasonal RVR in traffic flow forecasting

  • Shen, Zhangguo;Wang, Wanliang;Shen, Qing;Li, Zechao
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제11권10호
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    • pp.4887-4907
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    • 2017
  • Accurate traffic flow forecasting is critical to the development and implementation of city intelligent transportation systems. Therefore, it is one of the most important components in the research of urban traffic scheduling. However, traffic flow forecasting involves a rather complex nonlinear data pattern, particularly during workday peak periods, and a lot of research has shown that traffic flow data reveals a seasonal trend. This paper proposes a new traffic flow forecasting model that combines seasonal relevance vector regression with the hybrid chaotic simulated annealing method (SRVRCSA). Additionally, a numerical example of traffic flow data from The Transportation Data Research Laboratory is used to elucidate the forecasting performance of the proposed SRVRCSA model. The forecasting results indicate that the proposed model yields more accurate forecasting results than the seasonal auto regressive integrated moving average (SARIMA), the double seasonal Holt-Winters exponential smoothing (DSHWES), and the relevance vector regression with hybrid Chaotic Simulated Annealing method (RVRCSA) models. The forecasting performance of RVRCSA with different kernel functions is also studied.