• Title/Summary/Keyword: V2x Communications

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IoT Equipment Implementation for OBD Car Diagnostic Information (OBD 차량 진단 정보를 위한 IoT 장치 구현)

  • Lee, Seong-Hee;Lee, Seong-Hyung;Lee, Sang-Moon;Hwang, Seung-Hoon
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.41 no.12
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    • pp.1851-1857
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    • 2016
  • Existing devices are capable of communicating the OBD information only inside or close to the vehicle without supporting the data transmission to a external server. In this paper, we describe the implementation of IoT device, which can communicate the OBD information to the external server.

3GPP2 $UMB^{TM}$ 기술 개요 및 표준화 현황

  • Kim, Sang-Guk;Gwon, Sun-Il;Lee, Byeong-Gwan
    • Information and Communications Magazine
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    • v.24 no.12
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    • pp.65-73
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    • 2007
  • 2007년8월 v2.0을 출간하면서 표준화가 완료된 Ultra Mobile Broadband(UMB) 기술은 진보된 안테나 기술과 함께, CDMA, TDM, Layer-superposed OFDM(LS-OFDM), OFDM, OFDMA의 장점들을 하나의 Air Interface로 통합하였으며, 효율적인 자원 관리 기법을 통해 더 많은 VoIP 사용자들을 수용할 수 있게 해준다. 4x4 안테나를 사용시 20MHz의 주파수 대역에 순방향 288 Mbps, 역방향 75 Mbps의 최대 전송률을 제공하며, 양방향에 대한 평균 Network 지연시간은 약 16.8 ms을 지원하고, 10 MHz 주파수 대역에 1000명 이상의 VoIP 사용자를 지원할 수 있다. 본 고에서는 UMB의 표준화 과정 및 현황 그리고 물리 계층과 MAC 계층의 요소 기술들에 대해 고찰한다.

셀룰러 차량사물통신(Vehicle-to-everything, V2X)을 위한 5G 통신 기술

  • Jeon, Yosep;Kim, Jeong-Yeon;Choe, Ji-Uk;Lee, Nam-Yun
    • Information and Communications Magazine
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    • v.34 no.6
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    • pp.27-33
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    • 2017
  • 차량사물통신은 차량이 다양한 대상과 유무선 망을 이용해 정보를 주고 받는 기술을 의미한다. 차량사물통신을 이용하면 실시간으로 변화하는 교통 상황에 대해 개별 차량의 안정성을 크게 향상시킬 수 있다. 차량사물통신을 실현하기 위해서는 고도화 된 통신 기술들이 집약적으로 활용되어야 하며, 이러한 차량사물통신은 차세대 통신 시스템에서 각광받는 주요 기술이다. 본고는 차량사물통신을 위한 통신 기술 중 특별히 5G 통신에 관련된 세부 기술들을 소개한다. 먼저 차량사물통신을 위한 무선 통신에서 요구되는 기술적인 어려움에 대해 논의하고, 이를 바탕으로 차량사물통신에 대한 5G 통신 기술의 필요성에 관해 논의한다. 다음으로 차량사물통신을 위한 5G 통신의 세부기술들을 소개하고, 각 기술에 대한 기술적인 과제와 적용 시나리오에 대해 알아본다.

Performance Evaluation of V2X Communication System Under a High-Speed Driving (고속 주행 환경에서의 V2X 통신 성능 측정 시스템)

  • Kang, Bo-young;Bae, Jeongkyu;Seo, Woo-Chang;Park, Jong Woo;Yang, EunJu;Seo, Dae-Wha
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.42 no.5
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    • pp.1069-1076
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    • 2017
  • C-ITS(Cooperative-Intelligent Transportation System) provides services that require strict real-time such as forward collision warning, road safety service and emergency stop. WAVE(Wireless Access in Vehicular Environments), a core technology of C-ITS, is a technology designed for high-speed driving. However, in order to provide stable communication service by applying to real road environment, various performance tests of real vehicular environment are required. In the real road environment, WAVE communication performance is influenced by the surrounding environment such as moving vehicle, road shape and topography. Especially, when the vehicle is moving at high speed, the traveling position according to the speed of the vehicle, The surrounding environment changes rapidly. Such changes are factors affecting the communication performance, therefore a system and methods for analyzing them are needed. In this paper, we propose the configuration and test method of an effective performance evaluation system under high-speed driving and describe the results of analyzing the communication performance based on the data measured through the actual vehicle test.

Implementation of Road Weather Information System Supporting Intelligent Transportation Systems Based on USN (센서 네트워크 기반의 지능형 교통 시스템 지원을 위한 RWIS 구현)

  • Park, Hyun-Moon;Park, Soo-Huyn;Park, Woo-Chool;Seo, Hae-Moon
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.35 no.3B
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    • pp.485-492
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    • 2010
  • Intelligent Transport System(ITS) has been studied in various systems, such as road environment information offering, vehicle short-range wireless/wire communication, vehicle collision preventing and pedestrian safety offering systems. Related to this, the USN technology based on the sensing accuracy for motorists and pedestrians safety, the information reliability, the maintenance and convenience for Sensor Network is highlighted. This study uses various sensors to construct USN to the road, and connect it to the developed RSU so it collects the real-time road environment information and offers it to OBU and Traffic Control Surveillance Center with Road Weather Information System. RSU collects roadside information for driver's safety and analyzes it to offer IP and beacon service according to the service priority to OBU & upper layer terminal. In the upper layer terminal it is developed the IP based Settop Box application program to offer the urban traffic information & road environment, and environment sensor error, etc. Finally, RWIS develops the real-time collection of roadside information to complement the driver's safety to the intelligent traffic system, and presents various service modes with technology convergence.

Edge to Edge Model and Delay Performance Evaluation for Autonomous Driving (자율 주행을 위한 Edge to Edge 모델 및 지연 성능 평가)

  • Cho, Moon Ki;Bae, Kyoung Yul
    • Journal of Intelligence and Information Systems
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    • v.27 no.1
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    • pp.191-207
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    • 2021
  • Up to this day, mobile communications have evolved rapidly over the decades, mainly focusing on speed-up to meet the growing data demands of 2G to 5G. And with the start of the 5G era, efforts are being made to provide such various services to customers, as IoT, V2X, robots, artificial intelligence, augmented virtual reality, and smart cities, which are expected to change the environment of our lives and industries as a whole. In a bid to provide those services, on top of high speed data, reduced latency and reliability are critical for real-time services. Thus, 5G has paved the way for service delivery through maximum speed of 20Gbps, a delay of 1ms, and a connecting device of 106/㎢ In particular, in intelligent traffic control systems and services using various vehicle-based Vehicle to X (V2X), such as traffic control, in addition to high-speed data speed, reduction of delay and reliability for real-time services are very important. 5G communication uses high frequencies of 3.5Ghz and 28Ghz. These high-frequency waves can go with high-speed thanks to their straightness while their short wavelength and small diffraction angle limit their reach to distance and prevent them from penetrating walls, causing restrictions on their use indoors. Therefore, under existing networks it's difficult to overcome these constraints. The underlying centralized SDN also has a limited capability in offering delay-sensitive services because communication with many nodes creates overload in its processing. Basically, SDN, which means a structure that separates signals from the control plane from packets in the data plane, requires control of the delay-related tree structure available in the event of an emergency during autonomous driving. In these scenarios, the network architecture that handles in-vehicle information is a major variable of delay. Since SDNs in general centralized structures are difficult to meet the desired delay level, studies on the optimal size of SDNs for information processing should be conducted. Thus, SDNs need to be separated on a certain scale and construct a new type of network, which can efficiently respond to dynamically changing traffic and provide high-quality, flexible services. Moreover, the structure of these networks is closely related to ultra-low latency, high confidence, and hyper-connectivity and should be based on a new form of split SDN rather than an existing centralized SDN structure, even in the case of the worst condition. And in these SDN structural networks, where automobiles pass through small 5G cells very quickly, the information change cycle, round trip delay (RTD), and the data processing time of SDN are highly correlated with the delay. Of these, RDT is not a significant factor because it has sufficient speed and less than 1 ms of delay, but the information change cycle and data processing time of SDN are factors that greatly affect the delay. Especially, in an emergency of self-driving environment linked to an ITS(Intelligent Traffic System) that requires low latency and high reliability, information should be transmitted and processed very quickly. That is a case in point where delay plays a very sensitive role. In this paper, we study the SDN architecture in emergencies during autonomous driving and conduct analysis through simulation of the correlation with the cell layer in which the vehicle should request relevant information according to the information flow. For simulation: As the Data Rate of 5G is high enough, we can assume the information for neighbor vehicle support to the car without errors. Furthermore, we assumed 5G small cells within 50 ~ 250 m in cell radius, and the maximum speed of the vehicle was considered as a 30km ~ 200 km/hour in order to examine the network architecture to minimize the delay.

Smart Camera Technology to Support High Speed Video Processing in Vehicular Network (차량 네트워크에서 고속 영상처리 기반 스마트 카메라 기술)

  • Son, Sanghyun;Kim, Taewook;Jeon, Yongsu;Baek, Yunju
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.40 no.1
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    • pp.152-164
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    • 2015
  • A rapid development of semiconductors, sensors and mobile network technologies has enable that the embedded device includes high sensitivity sensors, wireless communication modules and a video processing module for vehicular environment, and many researchers have been actively studying the smart car technology combined on the high performance embedded devices. The vehicle is increased as the development of society, and the risk of accidents is increasing gradually. Thus, the advanced driver assistance system providing the vehicular status and the surrounding environment of the vehicle to the driver using various sensor data is actively studied. In this paper, we design and implement the smart vehicular camera device providing the V2X communication and gathering environment information. And we studied the method to create the metadata from a received video data and sensor data using video analysis algorithm. In addition, we invent S-ROI, D-ROI methods that set a region of interest in a video frame to improve calculation performance. We performed the performance evaluation for two ROI methods. As the result, we confirmed the video processing speed that S-ROI is 3.0 times and D-ROI is 4.8 times better than a full frame analysis.