• 제목/요약/키워드: Map Matching

검색결과 530건 처리시간 0.028초

위상학적 공간 인식을 위한 효과적인 초음파 격자 지도 매칭 기법 개발 (Effective Sonar Grid map Matching for Topological Place Recognition)

  • 최진우;최민용;정완균
    • 로봇학회논문지
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    • 제6권3호
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    • pp.247-254
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    • 2011
  • This paper presents a method of sonar grid map matching for topological place recognition. The proposed method provides an effective rotation invariant grid map matching method. A template grid map is firstly extracted for reliable grid map matching by filtering noisy data in local grid map. Using the template grid map, the rotation invariant grid map matching is performed by Ring Projection Transformation. The rotation invariant grid map matching selects candidate locations which are regarded as representative point for each node. Then, the topological place recognition is achieved by calculating matching probability based on the candidate location. The matching probability is acquired by using both rotation invariant grid map matching and the matching of distance and angle vectors. The proposed method can provide a successful matching even under rotation changes between grid maps. Moreover, the matching probability gives a reliable result for topological place recognition. The performance of the proposed method is verified by experimental results in a real home environment.

보정벡터를 이용한 맵 매칭의 성능 향상 (Performance Improvement of Map Matching Using Compensation Vectors)

  • 안도랑;이동욱
    • 대한전기학회논문지:시스템및제어부문D
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    • 제54권2호
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    • pp.97-103
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    • 2005
  • Most car navigation systems(CNS) estimate the vehicle's location using global positioning system(GPS) or dead reckoning(DR) system. However, the estimated location has undesirable errors because of various noise sources such as unpredictable GPS noises. As a result, the measured position is not lying on the road, although the vehicle is known to be restricted on the road network. The purpose of map matching is to locate the vehicle's position on the road network where the vehicle is most likely to be positioned. In this paper, we analyze some general map matching algorithms first. Then, we propose a map matching method using compensation vectors to improve the performance of map matching. The proposed method calculates a compensation vector from the discrepancy between a measured position and an estimated position. The compensation vector and a newly measured position are to be used to determine the next estimation. To show the performance improvement of the map matching using compensation vectors, the real time map matching experiments are performed. The real road experiments demonstrate the effectiveness and applicability of the proposed map matching.

모바일 장치용 MEMS 기반 보행항법시스템을 위한 맵매칭 알고리즘 (Map-Matching Algorithm for MEMS-Based Pedestrian Dead Reckoning System in the Mobile Device)

  • 신승혁;김현욱;박찬국;최상언
    • 제어로봇시스템학회논문지
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    • 제14권11호
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    • pp.1189-1195
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    • 2008
  • We introduce a MEMS-based pedestrian dead reckoning (PDR) system. A walking navigation algorithm for pedestrians is presented and map-matching algorithm for the navigation system based on dead reckoning (DR) is proposed. The PDR is equipped on the human body and provides the position information of pedestrians. And this is able to be used in ubiquitous sensor network (USN), U-hearth monitoring system, virtual reality (VR) and etc. The PDR detects a step using a novel technique and simultaneously estimates step length. Also an azimuth of the pedestrian is calculated using a fluxgate which is the one of magnetometers. Map-matching algorithm can be formulated to integrate the positioning data with the digital road network data. Map-matching algorithm not only enables the physical location to be identified from navigation system but also improves the positioning accuracy. However most of map-matching algorithms which are developed previously are for the car navigation system (CNS). Therefore they are not appropriate to implement to pedestrian navigation system based on DR system. In this paper, we propose walking navigation system and map-matching algorithm for PDR.

차량 항법을 위한 지도 정합법 개발 (Development of a Map Matching Method for Land Vehicles Navigation)

  • 성태경;표종선
    • 전자공학회논문지SC
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    • 제42권4호
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    • pp.1-10
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    • 2005
  • 본 논문에서는 다중 가설 기법을 이용한 차량 항법용 지도 정합법을 제안하였다. 다중가설기법을 지도 정합에 도입하기 위하여 GPS/DR 센서 출력 부근의 도로에 대하여 의사 측정치를 정의하였으며, 이를 이용하여 단일 표적문제로 다중 가설 기법을 유도하였다. 가설에 대한 확률식을 유도할 때 GPS/DR 센서 출력뿐만 아니라 디지털 지도의 위상정보가 포함되도록 하였다. 또한 지도 정합 성능의 향상을 위하여 디지털 지도의 바이어스 오차를 보상하기 위한 바이어스 칼만 필터를 제안하였다. 주행 실험결과 제안한 지도 정합법은 도로 밀집지역, 입체도로지역 등 지도 정합이 어려운 지역에서도 우수한 성능을 보였다.

실외 이동로봇의 고도지도 기반의 전역 위치추정을 위한 Hausdorff 거리 정합 기법 (Hausdorff Distance Matching for Elevation Map-based Global Localization of an Outdoor Mobile Robot)

  • 지용훈;송재복;백주현;유재관
    • 제어로봇시스템학회논문지
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    • 제17권9호
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    • pp.916-921
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    • 2011
  • Mobile robot localization is the task of estimating the robot pose in a given environment. This research deals with outdoor localization based on an elevation map. Since outdoor environments are large and contain many complex objects, it is difficult to robustly estimate the robot pose. This paper proposes a Hausdorff distance-based map matching method. The Hausdorff distance is exploited to measure the similarity between extracted features obtained from the robot and elevation map. The experiments and simulations show that the proposed Hausdorff distance-based map matching is useful for robust outdoor localization using an elevation map. Also, it can be easily applied to other probabilistic approaches such as a Markov localization method.

내비게이션 지도 건물 갱신을 위한 도로명주소 지도와의 연계 방법에 대한 연구 (Study on method of linking with navigation map and new address map for updating navigation Map buildings)

  • 김기락;허용;유기윤
    • 한국측량학회:학술대회논문집
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    • 한국측량학회 2010년 춘계학술발표회 논문집
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    • pp.23-25
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    • 2010
  • In this paper, we studied linking method for updating navigation map with new address map. This method is hierarchical as we chose candidate using attribute data for geometry matching. Limiting a matching range, we conducted a experiment ICP with geometry matching. As a result, for linking method it's quite satisfied but for updating method, we decided that we have to do more precise method for updating.

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GPU-Based Optimization of Self-Organizing Map Feature Matching for Real-Time Stereo Vision

  • Sharma, Kajal;Saifullah, Saifullah;Moon, Inkyu
    • Journal of information and communication convergence engineering
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    • 제12권2호
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    • pp.128-134
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    • 2014
  • In this paper, we present a graphics processing unit (GPU)-based matching technique for the purpose of fast feature matching between different images. The scale invariant feature transform algorithm developed by Lowe for various feature matching applications, such as stereo vision and object recognition, is computationally intensive. To address this problem, we propose a matching technique optimized for GPUs to perform computations in less time. We optimize GPUs for fast computation of keypoints to make our system quick and efficient. The proposed method uses a self-organizing map feature matching technique to perform efficient matching between the different images. The experiments are performed on various image sets to examine the performance of the system under varying conditions, such as image rotation, scaling, and blurring. The experimental results show that the proposed algorithm outperforms the existing feature matching methods, resulting in fast feature matching due to the optimization of the GPU.

증강현실에서 3D이미지 구현을 위한 스테레오 정합 연구 (The Study of Stereo Matching for 3D Image Implementation in Augmented Reality)

  • 이용환;김영섭;박인호
    • 반도체디스플레이기술학회지
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    • 제15권4호
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    • pp.103-106
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    • 2016
  • 3D technology is main factor in Augmented Reality. Depth map is essential to make cubic effect using 2d image. There are a lot of ways to construct Depth map. Among them, stereo matching is mainly used. This paper presents how to generate depth map using stereo matching. For stereo matching, existing Dynamic programming method is used. To make accurate stereo matching, High-Boost Filter is applied to preprocessing method. As a result, when depth map is generated, accuracy based on Ground Truth soared.

데이터 누적을 이용한 반사도 지역 지도 생성과 반사도 지도 기반 정밀 차량 위치 추정 (Intensity Local Map Generation Using Data Accumulation and Precise Vehicle Localization Based on Intensity Map)

  • 김규원;이병현;임준혁;지규인
    • 제어로봇시스템학회논문지
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    • 제22권12호
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    • pp.1046-1052
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    • 2016
  • For the safe driving of autonomous vehicles, accurate position estimation is required. Generally, position error must be less than 1m because of lane keeping. However, GPS positioning error is more than 1m. Therefore, we must correct this error and a map matching algorithm is generally used. Especially, road marking intensity map have been used in many studies. In previous work, 3D LIDAR with many vertical layers was used to generate a local intensity map. Because it can be obtained sufficient longitudinal information for map matching. However, it is expensive and sufficient road marking information cannot be obtained in rush hour situations. In this paper, we propose a localization algorithm using an accumulated intensity local map. An accumulated intensity local map can be generated with sufficient longitudinal information using 3D LIDAR with a few vertical layers. Using this algorithm, we can also obtain sufficient intensity information in rush hour situations. Thus, it is possible to increase the reliability of the map matching and get accurate position estimation result. In the experimental result, the lateral RMS position error is about 0.12m and the longitudinal RMS error is about 0.19m.

Google Map을 이용한 GCP 칩의 품질 분석 (Quality Analysis of GCP Chip Using Google Map)

  • 박형준;손종환;신정일;권기억;김태정
    • 대한원격탐사학회지
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    • 제35권6_1호
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    • pp.907-917
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    • 2019
  • 최근 국토 모니터링, 지형 분석 등 많은 분야에서 고해상도 위성영상의 수요가 증가와 함께 기하보정의 필요성이 증가하고 있다. 자동 정밀 기하보정 방법으로 GCP(Ground Control Point) 칩과 위성영상간의 정합을 통해 지상기준점을 자동으로 추출하는 방법이 있다. 자동 정밀 기하보정은 GCP 칩과 위성영상의 정합 성공률이 중요하다. 따라서 제작된 GCP 칩의 정합 성능 평가가 중요하다. GCP 칩의 정합 성능 평가를 위해 국토관측 위성용으로 구축된 총 3,812점의 GCP 칩을 실험 자료로 사용했다. KOMPSAT-3A 영상과 Google Map의 GCP칩 정합 결과를 분석한 결과 유사한 결과를 얻을 수 있었다. 따라서 Google Map 위성영상으로 고해상도 위성영상을 충분히 대체할 수 있다고 판단했다. 또한 GCP 칩의 정합 성능 검증에 필요한 시간을 줄이기 위해 자동화된 방법으로 Google Map의 중심점과 오차 반경을 이용한 방법을 제시했다. 실험 결과 최적의 오차 반경은 17 pixel(약 8.5 m)로 설정하는 것이 가장 좋은 분류 정확도를 보였다. Google Map 위성영상과 자동화된 검증 방법으로 남한 전역에 구축된 GCP 칩 3,812개의 정합 성능 평가를 진행했으며 남한에 구축된 GCP 칩은 약 94%의 정합 성공률을 보였다. 이후 정합에 실패한 GCP 칩을 분석하여 주요 정합 실패원인을 분석하였다. 분석 결과 남한 전역에 구축된 GCP 칩 중 재제작이 필요한 GCP 칩을 제외한 나머지 GCP 칩은 국토위성영상 자동 기하보정에 충분히 사용할 수 있다.