• 제목/요약/키워드: vehicle height sensor

검색결과 24건 처리시간 0.027초

차량높이 계측을 통한 차종분류 향상 방안 연구 (Improvement of Vehicle Classification Method using Vehicle Height Measurement)

  • 오주삼;장경찬;김민성
    • 한국도로학회논문집
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    • 제12권4호
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    • pp.47-51
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    • 2010
  • 도로를 주행하는 차량들을 구분하는 차종자료는 도로 및 포장의 설계와 관리 등 여러 분야에서 기초자료로 활용되고 있다. 본 연구에서는 차종구분에 차량높이라는 분류기준을 적용하기 위해 주행하는 차량의 높이를 계측할 수 있는 방법을 고안하고 현장에 장비를 설치한 후 실험을 통해서 차량길이와 차량최고높이 자료를 획득하였다. 차량높이 측정과 동시에 동영상을 촬영하여 국토해양부 12종 차종분류에 의거하여 차종분류 기준값을 작성하였다. 영상을 통해 작성된 차종자료 기준값과 측정된 차량길이와 차량높이를 토대로 판별함수를 이용한 차종분류값을 서로 비교한 결과 88.6%의 차종정확도를 확인하였다. 이를 통해 차량높이라는 분류기준을 적용하여 차종분류에 활용할 수 있는 방안을 제시하였다.

자율주행을 위한 센서 데이터 융합 기반의 맵 생성 (Map Building Based on Sensor Fusion for Autonomous Vehicle)

  • 강민성;허수정;박익현;박용완
    • 한국자동차공학회논문집
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    • 제22권6호
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    • pp.14-22
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    • 2014
  • An autonomous vehicle requires a technology of generating maps by recognizing surrounding environment. The recognition of the vehicle's environment can be achieved by using distance information from a 2D laser scanner and color information from a camera. Such sensor information is used to generate 2D or 3D maps. A 2D map is used mostly for generating routs, because it contains information only about a section. In contrast, a 3D map involves height values also, and therefore can be used not only for generating routs but also for finding out vehicle accessible space. Nevertheless, an autonomous vehicle using 3D maps has difficulty in recognizing environment in real time. Accordingly, this paper proposes the technology for generating 2D maps that guarantee real-time recognition. The proposed technology uses only the color information obtained by removing height values from 3D maps generated based on the fusion of 2D laser scanner and camera data.

고안전 차량의 통합섀시 제어를 위한 지능형 현가시스템 변위 센서 개발 (Development of a intelligent suspension displacement sensor for unified chassis control of advanced safety vehicle)

  • 윤득선;이창석;백승환;강태호;부광석
    • 센서학회지
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    • 제18권5호
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    • pp.393-401
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    • 2009
  • This paper describes development of a new displacement sensor for intelligent suspension system in which the damping force has been controlled by MR fluid. Most of the current vehicle height sensors have been installed at external place of the damper and connected to that by mechanical linkages so far. The developed sensor has a new mechanism which detects movement of the sensor rod same as connecting rod in the suspension damper by using a GMR Sensor and converts it to the relative displacement from an initial position.

차량 형상자료를 이용한 2축 차량의 차종분류 방안 (Vehicle Classification Scheme of Two-Axle Unit Vehicle Based on the Laser Measurement of Height Profiles)

  • 오주삼;장경찬;김민성
    • 한국ITS학회 논문지
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    • 제10권5호
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    • pp.47-52
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    • 2011
  • 본 연구는 차량 제원이 유사한 2축 차량의 차종분류에 있어서 정확도를 높이고자 차량 외형의 높이 프로파일을 이용한 차종분류 방안을 제시했다. 차종별 교통량 자료 생성은 도로를 주행하는 차량을 대상으로 AVC장비에서 계측되는 차량 제원들인 축수, 축간거리, 차량길이, 오버행 등을 활용하여 12종 분류 체계에 의해서 분류되고 있다. 그러나 차량 축이 2개인 2축 차량(1~4종 차량)의 경우 승용차(1종)의 다양화, 대형화로 인하여 화물수송용 차량(3종, 4종)의 제원과 유사해짐에 따라 기존 차량분류인자(축수, 축간거리, 차량길이 등)에 의한 차종분류 시 분류 오류가 발생할 수 있다. 이에 본 연구는 이러한 분류상의 한계를 극복하고자 차량 외관의 높이 프로파일 값을 통하여 주행차량의 형태를 파악하고 이를 이용한 차종분류 방법을 제시하였다. 그리고 현장실험을 통하여 제안된 방법의 정확도를 검증하였다.

New Vehicle Verification Scheme for Blind Spot Area Based on Imaging Sensor System

  • Hong, Gwang-Soo;Lee, Jong-Hyeok;Lee, Young-Woon;Kim, Byung-Gyu
    • Journal of Multimedia Information System
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    • 제4권1호
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    • pp.9-18
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    • 2017
  • Ubiquitous computing is a novel paradigm that is rapidly gaining in the scenario of wireless communications and telecommunications for realizing smart world. As rapid development of sensor technology, smart sensor system becomes more popular in automobile or vehicle. In this study, a new vehicle detection mechanism in real-time for blind spot area is proposed based on imaging sensors. To determine the position of other vehicles on the road is important for operation of driver assistance systems (DASs) to increase driving safety. As the result, blind spot detection of vehicles is addressed using an automobile detection algorithm for blind spots. The proposed vehicle verification utilizes the height and angle of a rear-looking vehicle mounted camera. Candidate vehicle information is extracted using adaptive shadow detection based on brightness values of an image of a vehicle area. The vehicle is verified using a training set with Haar-like features of candidate vehicles. Using these processes, moving vehicles can be detected in blind spots. The detection ratio of true vehicles was 91.1% in blind spots based on various experimental results.

높이 자동제어가 가능한 차량 장착형 지뢰탐지장치에 대한 연구 (A Study on Mine Detection System with Automatic Height Control)

  • 강신천;정호영;정대연;성기열;김도종;김지웅
    • 한국군사과학기술학회지
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    • 제20권4호
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    • pp.558-565
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    • 2017
  • The vehicle-mounted mine detection system with large detection sensor modules can search wide areas with a fast detection speed. To mount the heavy mine detectors on a manned or unmanned vehicle, it is necessary to design the detector driving mechanism and control system based on the considerations driven from the characteristic analysis and the operation requirements of the detection system. Furthermore, while operating the mine detector mounted on a mobile vehicle, it is significant to keep the height from the ground to sensors within a certain distance in order to get a qualified detection performance. As the mine detection sensor, we used ground penetrating radar widely used to geotechnical exploration, mine detection and etc. In this paper, we introduce a driving mechanism through analyzing the characteristics of the vehicle-mounted mine detection system. We also suggest a method to automatically control the distance between the ground and GPR by utilizing the GPR output values, used to detect mines at the same time.

AMR센서를 이용한 옥외용 AGV 주행센서 시스템에 관한 연구 (A Study on Navigation Sensor System for Outdoor AGV Using AMR Sensors)

  • 김성호;박경섭
    • 제어로봇시스템학회논문지
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    • 제9권2호
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    • pp.140-144
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    • 2003
  • A navigation sensor system for outdoor AGV(Automatic Guided Vehicle) using AMR(Anisotropic Magnetoresitive) sensors is described. We derive a formula of the position of AMR sensor using the measured magnetic field intensity due to permanent magnet with constant distance. The system consists of sensor board. sensor control board and position processing board. The sensor board measures magnetic field intensity, the sensor control board controls the measurement of six sensors sequentially, and the position processing board computes the accurate position of the permanent magnet using Least Square Method. We arranged six sensors at intervals of 30cm and measured the position of the permanent magnet moving at intervals of 30cm. Experimental results showed that we can get standard deviation of 2mm and error of &\pm&4.5mm at a height of 20cm from the permanent magnet.

Tightly-Coupled GPS/INS/Ultrasonic-Speedometer/Barometer Integrated Positioning for GPS-Denied Environments

  • Choi, Bu-Sung;Yoo, Won-Jae;Kim, Lawoo;Lee, Yu-Dam;Lee, Hyung-Keun
    • Journal of Positioning, Navigation, and Timing
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    • 제9권4호
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    • pp.387-395
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    • 2020
  • Accuracy of an integrated Global Positioning System (GPS) / Inertial Navigation System (INS) relies heavily on the visibility of GPS satellites. Especially, its accuracy is dramatically degraded in urban canyon due to signal obstructions due to large structures. In this paper, we propose a new integrated positioning system that effectively combines INS, GPS, ultrasonic sensor, and barometer in GPS-denied environments. In the proposed system, the ultrasonic sensor provides velocity information along the forward direction of moving vehicle. The barometer output provides height information compensated for the pressure variation due to fast vehicle movements. To evaluate the performance of the proposed system, an experiment was carried out by mounting the proposed system on a test car. By the experiment result, it was confirmed that the proposed system bears good potential to maintain positioning accuracy in harsh urban environments.

실외 자기유도 무인운반차를 위한 자기 위치측정 장치 개발 (Development of Magnet Position Device for Outdoor Magnet Guidance Vehicle)

  • 조현학;김성신
    • 한국지능시스템학회논문지
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    • 제24권3호
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    • pp.259-264
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    • 2014
  • 본 연구는 자기 홀 센서의 특성으로 인해 실내 환경에서만 이용이 되었던 자기/자기-자이로유도 타입의 무인운반차를 실외 환경에서도 적용이 가능하도록 실외 주행용 자기 위치측정 장치를 설계 및 제작하는 것이다. 현재 이용되고 있는 자기 위치측정 장치는 측정 높이가 30mm로 바닥 환경이 고르고 평평한 실내 환경에 적합한 구조이다. 하지만 바닥 환경이 울퉁불퉁하거나 불균형적인 실외환경에 이용되는 무인운반차에는 부적합하다. 그 이유는 무인운반차 서스펜션이 부착되게 되고, 이 때 자기 위치측정 장치의 부착높이가 30mm 이하로 무인운반차에 가해진 충격으로 인해 장치와 바닥과의 충돌이 발생하게 되면 장치가 파손되기 때문이다. 따라서 실외 자기유도 무인운반차에 적용하기 위해서는 100mm 이상의 측정 높이를 가지는 자기 위치측정 장치가 필요하다. 현재 자기위치측정 장치의 성능 향상 및 개발에 관련된 다양한 연구들이 진행되었지만, 다양한 자기 홀 센서를 분석하여 본 논문에서는 자기위치측정 장치를 설계 및 제작하였고, 자기 홀 센서의 특성 정보를 이용한 특성 함수를 이용해 자성체의 위치를 검출하였다. 실험을 위하여 알루미늄을 이용한 실험 장비를 제작하였으며, 제안된 자기 위치측정 장치를 이용하여 실험한 결과 위치측정 정밀도 오차는 10mm 이하이고, 측정 높이는 평균 150mm 로 실외 자기유도 무인운반차에 적합한 것을 확인하였다.

Analysis of Plant Height, Crop Cover, and Biomass of Forage Maize Grown on Reclaimed Land Using Unmanned Aerial Vehicle Technology

  • Dongho, Lee;Seunghwan, Go;Jonghwa, Park
    • 대한원격탐사학회지
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    • 제39권1호
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    • pp.47-63
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    • 2023
  • Unmanned aerial vehicle (UAV) and sensor technologies are rapidly developing and being usefully utilized for spatial information-based agricultural management and smart agriculture. Until now, there have been many difficulties in obtaining production information in a timely manner for large-scale agriculture on reclaimed land. However, smart agriculture that utilizes sensors, information technology, and UAV technology and can efficiently manage a large amount of farmland with a small number of people is expected to become more common in the near future. In this study, we evaluated the productivity of forage maize grown on reclaimed land using UAV and sensor-based technologies. This study compared the plant height, vegetation cover ratio, fresh biomass, and dry biomass of maize grown on general farmland and reclaimed land in South Korea. A biomass model was constructed based on plant height, cover ratio, and volume-based biomass using UAV-based images and Farm-Map, and related estimates were obtained. The fresh biomass was estimated with a very precise model (R2 =0.97, root mean square error [RMSE]=3.18 t/ha, normalized RMSE [nRMSE]=8.08%). The estimated dry biomass had a coefficient of determination of 0.86, an RMSE of 1.51 t/ha, and an nRMSE of 12.61%. The average plant height distribution for each field lot was about 0.91 m for reclaimed land and about 1.89 m for general farmland, which was analyzed to be a difference of about 48%. The average proportion of the maize fraction in each field lot was approximately 65% in reclaimed land and 94% in general farmland, showing a difference of about 29%. The average fresh biomass of each reclaimed land field lot was 10 t/ha, which was about 36% lower than that of general farmland (28.1 t/ha). The average dry biomass in each field lot was about 4.22 t/ha in reclaimed land and about 8 t/ha in general farmland, with the reclaimed land having approximately 53% of the dry biomass of the general farmland. Based on these results, UAV and sensor-based images confirmed that it is possible to accurately analyze agricultural information and crop growth conditions in a large area. It is expected that the technology and methods used in this study will be useful for implementing field-smart agriculture in large reclaimed areas.