• Title/Summary/Keyword: DGPS 위치보정국

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A Method of the DGPS System error correction for an improved position accuracy (위치 정확도 향상을 위한 DGPS 시스템 오차 보정 방법)

  • Sung, Kyunghun;Park, Seungsang;Go, Junghwan
    • Proceedings of the Korea Information Processing Society Conference
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    • 2015.10a
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    • pp.266-268
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    • 2015
  • 본 논문은 기존 DGPS 시스템에서의 한계인 기지국이 획득하는 보정 정보의 낮은 신뢰성을 보안하기 위해 가상 이동국을 적용한 새로운 DGPS 시스템을 제안한다. 가상 이동국은 기지국으로부터 보정 정보를 인가 받아 가상 이동국 보정 위치 정보를 획득하며, 획득된 가상 이동국 보정 위치 정보와 기저장된 가상 이동국 측정 위치 정보를 비교하여 보정 정보의 신뢰성을 판별한다. 기지국은 이동국으로 보정정보를 전송하기 전에 가상 이동국으로부터 신뢰성 판별 결과인 판별 신호를 인가 받아 이동국으로 신뢰성 높은 보정 정보만을 전송할 수 있도록 한다.

Analysis of PRC regeneration algorithm performance in dynamic environment by using Multi-DGPS Signal (다중 DGPS 신호를 이용한 동적 환경에서의 PRC 재생성 알고리즘 성능분석)

  • Song Bok-Sub;Oh Kyung-Ryoon;Kim Jeong-Ho
    • The KIPS Transactions:PartA
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    • v.13A no.4 s.101
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    • pp.335-342
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    • 2006
  • As PRC linear interpolation algorithm is applied after analysed and verified in this paper, the unknown location of a user can be identified by using PRC information of multi-DGPS reference station. The PRC information of each GPS satellite is not varying rapidly, which makes it possible to assume that PRC information of each GPS satellite varies linearly. So, the PRC regeneration algorithm with linear interpolation can be applied to improve the accuracy of finding a user's location by using the various PRC information obtained from multi-DGPS reference station. The desirable PRC is made by the linear combination with the known position of multi-DGPS reference station and PRC values of a satellite using signals from multi-DGPS reference station. The RTK-GPS result was used as the reference. To test the performance of the linearly interpolated PRC regeneration algorithm, multi-channel DGPS beacon receiver was built to get a user's position more exactly by using PRC data of maritime DGPS reference station in RTCM format. At the end of this paper, the result of the quantitative analysis of the developed navigation algorithm performance is presented.

Elevation Mask와 CNR Mask가 GPS 보정정보에 미치는 영향 분석

  • Kim, Yeong-Gi;Jang, Won-Seok;Seo, Gi-Yeol
    • Proceedings of the Korean Institute of Navigation and Port Research Conference
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    • 2012.06a
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    • pp.76-77
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    • 2012
  • GPS 보정정보를 방송하는 우리나라의 DGPS 기준국에서는 IALA의 권고와 같이 $5^{\circ}{\sim}10^{\circ}$의 Elevation Mask를 사용한다. Elevation Mask는 GPS 수신기의 안테나를 기준으로 일정 앙각 이하의 고도에 위치한 위성의 신호를 여과하는 방법으로, 잡음이 많아 정확도가 낮은 위성신호를 측위에 사용하지 않기 위한 방법이다. 또한, CNR Mask는 신호대 잡음비가 작은 신호를 직접 제거하여 측위정확도를 향상시키는 방법이다. GPS 보정정보를 생산하는 DGPS 기준국에서 이들 Mask를 사용하는 것은 보정정보의 생산량에 영향을 미치고, 사용자 측위정확도에 각각 영향을 미친다. 본 연구에서는 Elevation Mask와 CNR Mask의 변화에 따른 잡음의 변화와 이를 기반으로 생성된 보정정보를 적용한 사용자 측위정확도의 변화를 살펴봄으로써, DGPS 기준국에서의 Elevation Mask와 CNR Mask 사용이 보정정보 사용자에게 어떤 영향을 미치는지를 살펴보고자 한다.

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Signal Coverages of DGPS Beacon Stations in Korea (우리나라 DGPS 보정국의 위치보정신호의 이용범위)

  • Ahn, Jang-Young;Choi, Chan-Moon
    • Journal of the Korean Society of Fisheries and Ocean Technology
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    • v.40 no.1
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    • pp.47-53
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    • 2004
  • For the purpose of comparison between the designed coverage and actual coverage of Korean DGPS (Differential Global Position System) beacon stations, we have received the ship‘s positions with states and IDs of their stations on the navigation route of Jeju-Tianjin by automatic selection mode of DGPS receiver and on them of Jeju-Inchun and Jeju-Vladibostok by manual mode. Also in case that some obstructions were on propagation routes from DGPS beacon stations to receiving positions, a restriction on available ranges of DGPS beacon signals was investigated. The results obtained are as follows : 1. The coverage of Korean DGPS beacon stations was designed 100NM (Nautical mails) at 40.0dB(over ${\mu}$V/m). But the actual coverages of them according to their stations and propagation routes were 0.3-3.6 times as wide as designed coverage. 2. In case that the propagation route of beacon signals from DGPS beacon stations was on the sea, the propagation distance of north direction from the stations was longer than south direction. 3. The coverages of Echongdo and Ulungdo stations were 366NM on the yellow sea and 342.3NM on the east sea of Korea respectively, and were widest than any other stations. 4. The coverage of Marado station on the south and yellow seas of Korea was very unstable because of the Halla mountain on the propagation route. Maximum receiving range to be measured by automatic selection mode of DGPS receiver was 145NM on the route of Jeju-Tianjin on June 22-July 1, 2002. Minimum receiving range to be not measured by manual selection mode was 28.7NM on the route of Jeju-Inchun on June 26-28, 2003

A Study on DGPS Framework and Performance Evaluation for High-Accurate Localization based on GPS/AGPS (GPS/AGPS 기반의 고정밀 측위가 가능한 DGPS 프레임워크 및 성능평가에 관한 연구)

  • Seo, Ho-Seok;Jung, Se-Hoon;Oh, Min-Joo;Park, Dong-Gook;Sim, Chun-Bo
    • The Journal of the Korea institute of electronic communication sciences
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    • v.9 no.8
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    • pp.927-938
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    • 2014
  • A number of crime and disease relief situation show a clear increasing trend in domestic and overseas country. In particular, we desperately need a fast location information sharing with high accuracy for dealing with this situation efficiently. In this paper, we propose a DGPS framework and performance evaluation based on Web service enable increase location accuracy using low-cost GPS or AGPS. The framework consists of mobile station to realize the final service by receiving the correction values that are created in the base station closest to the current position from DGPS server, base station system to transmit the correct values to DPGS server by installing at base point and DGPS framework working at DGPS server. Our framework is fundamentally designed to respond based on XML to service request. In addition, for performance evaluation, we make use of 3 sites of Level 2 city base-station among the base stations being operated in Suncheon-si. Through performance evaluation, we show that our framework outperforms about 10%~15% in terms of error improvement rate, compared with the existing schemes. And we have the advantage that various services can be expanded owing to receiving the correction values through mobile device such as, smart phone, smart pad, net-book by using XML based Web services.

Analysis of Radio Interference for Korean NDGPS Reference Station using Medium Frequency Band (중파대역을 사용하는 국내 NDGPS 기준국의 전파 간섭 분석)

  • Kim, Young-Wan;Jee, Seok-Keun
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.16 no.7
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    • pp.1344-1349
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    • 2012
  • The Korean DGPS station transmits the 200 bps GPS enhancement signal using the MSK modulation in frequency range of 283.5 kHz to 325 kHz. The land-based stations of 6 sites provide the service area of 80 km with the output power of 500 W. The ocean-based stations of 11 sites provide the output power of 300 W, which provide the DGPS service to 185 kM. Some places are serviced from two or three DGPS stations. The interferences among the DGPS stations using the high power can be occurred. Also, the performances of the user terminasl in dual service area can be degraded. In this paper, the protection ratios for the DGPS service are defined. Using the MF wave propagation model, the interferences among the DGPS stations and the adjacent wireless ground stations are analyzed. Also, the performances of DGPS user terminals are analyzed in the viewpoint of interference.

Method of Differential Corrections Using GPS/Galileo Pseudorange Measurement for DGNSS RSIM (DGNSS RSIM을 위한 GPS/Galileo 의사거리 보정기법)

  • Seo, Ki-Yeol;Kim, Young-Ki;Jang, Won-Seok;Park, Sang-Hyun
    • Journal of Navigation and Port Research
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    • v.38 no.4
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    • pp.373-378
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    • 2014
  • In order to prepare for recapitalization of differential GNSS (DGNSS) reference station and integrity monitor (RSIM) due to GNSS diversification, this paper focuses on differential correction algorithm using GPS/Galileo pesudorange. The technical standards on operation and broadcast of DGNSS RSIM are described as operation of differential GPS (DGPS) RSIM for conversion of DGNSS RSIM. Usually, in order to get the differential corrections of GNSS pesudorange, the system must know the real positions of satellites and user. Therefore, for calculating the position of Galileo satellites correctly, using the equation for calculating the SV position in Galileo ICD (Interface Control Document), it estimates the SV position based on Ephemeris data obtained from user receiver, and calculates the clock offset of satellite and user receiver, system time offset between GPS and Galileo, then determines the pseudorange corrections of GPS/Galileo. Based on a platform for performance verification connected with GPS/Galileo integrated signal simulator, it compared the PRC (pseudorange correction) errors of GPS and Galileo, analyzed the position errors of DGPS, DGalileo, and DGPS/DGalileo respectively. The proposed method was evaluated according to PRC errors and position accuracy at the simulation platform. When using the DGPS/DGalileo corrections, this paper could confirm that the results met the performance requirements of the RTCM.

A Study on the DGPS Radiobeacon Propagation Measurement of Domestic Ferry Lines (우리나라 선박 항로구간의 DGPS 전파 특성에 관한 연구)

  • Jeon, Joong-Sung;Lee, Seo-Jeong
    • Journal of Advanced Marine Engineering and Technology
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    • v.35 no.4
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    • pp.491-499
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    • 2011
  • Starting with maritime DGPS base stations of Palmido, Ochongdo which have been operated since 1999, truly our nation has become the most powerful country possessed with total of 17 DGNSS base stations in the field of DGNSS operation infrastructure. This paper examines into the country's DGNSS services as measuring the service range of the maritime DGPS base stations in the domestic ferry lines which sections are from Jeju to Incheon, from Busan to Jeju, from Jeju to Nokdong, the propagation characteristics of the radio waves of 300 kHz bands on sea and land path. As a result of identifying the service range of the DGPS in the sea routes of the southern sea and the western sea, the measured results of the DGPS signals are confirmed more than 100 NM(recommended service range). It can be possible to practical use the position information, which is safe navigation and various marine traffic management systems. It will be useful an expansion of maritime DGPS reference station in the near future.

THE IMPROVEMENT OF POSITION ACCURACY USING INVERTED DGPS (NVERTED DGPS를 이용한 위치 정밀도 향상)

  • 이상혁;최규홍;박종욱;박필호
    • Journal of Astronomy and Space Sciences
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    • v.18 no.1
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    • pp.63-70
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    • 2001
  • IDGPS(Inverted Differential Global Positioning System) is one of technique improving the accuracy of GPS positioning and is mostly used for tracking an automatic vehicle. In the IDGPS, the user send it’s GPS position and related satellite information to dispatcher, and the corrections are made at the dispatcher to get corrected user position. IDGPS suffered correction degradation as the baseline become large. This problem is resolved using NIDGPS(Network IDGPS). As the experimental results are demonstrated, the improvement of position accuracy using IDGPS and NIDGPS is verified.

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Predict DGPS Algorithm using Machine Learning (기계학습을 통한 예측 DGPS 항법 알고리즘)

  • Kim, HongPyo;Jang, JinHyeok;Koo, SangHoon;Ahn, Jongsun;Heo, Moon-Beom;Sung, Sangkyung;Lee, Young Jae
    • Journal of Advanced Navigation Technology
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    • v.22 no.6
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    • pp.602-609
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    • 2018
  • Differential GPS (DGPS) is known as a positioning method using pseudo range correction (PRC) which is communicating between a refence receiver and moving receivers. In real world, a moving receiver loses communication with the reference receiver, resulting in loss of PRC real-time communication. In this paper, we assume that the transmission of the pseudo range correction isinterrupted in the middle of real-time positioning situations, in which calibration information is received in the DGPS method. Under the disconnected communication, we propose 'predict DGPS' that real-time virtual PRC model which is modeled by a machine learning algorithm with previously acquired PRC data from a reference receiver. To verify predict DGPS method, we compared and analyzed positioning solutions acquired from real PRC and the virtual PRC. In addition, we show that positioning using the DGPS prediction method on a real road can provide an improved positioning solution assuming a scenario in which PRC communication was cut off.