• Title/Summary/Keyword: GPS/MEMS IMU

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Design of Indoor Space Guidance System Using LiDAR and Camera on iPhone (iPhone의 LiDAR와 Camera를 이용한 실내 공간 안내를 위한 시스템 설계)

  • Junseok Jang;Kwangjae Sung
    • Journal of the Semiconductor & Display Technology
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    • v.23 no.1
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    • pp.71-78
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    • 2024
  • In indoor environments, since global positioning system (GPS) signals can be blocked by obstacles, such as building structure. the performance of GPS-based positioning methods can be degraded because of the loss of GPS signals. To solve this problem, various localization schemes using inertial measurement unit (IMU) sensors, such as gyroscope, accelerometer, and magnetometer, have been proposed to enhance the positioning accuracy in indoor environments. IMU-based positioning methods can estimate the location of the user by calculating the velocity and heading angle of the user without the help of GPS. However, low-cost MEMS IMUs may lead to drift error and large bias. In addition, positioning errors in IMU-based positioning approaches can be caused by the irrelevant motion of the pedestrian. In this study, we propose an enhanced indoor positioning method that provides more reliable localization results by using the camera, light detection and right (LiDAR), and ARKit framework on the iPhone. Through reliable positioning results and augmented reality (AR) experiences, our indoor positioning system can provide indoor space guidance services.

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An Efficient Attitude Reference System Design Using Velocity Differential Vectors under Weak Acceleration Dynamics

  • Lee, Byungjin;Yun, Sukchang;Lee, Hyung-Keun;Lee, Young Jae;Sung, Sangkyung
    • International Journal of Aeronautical and Space Sciences
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    • v.17 no.2
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    • pp.222-231
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    • 2016
  • This paper proposes a new method achieving computationally efficient attitude reference system for low cost strapdown sensors and microprocessor platform. The main idea in this method is to define and compare velocity differential vectors, geometrically computed from INS and GPS data with different update rate, for generating attitude error measurements which is further used for filter construction. A quaternion based Kalman filter configuration is applied for the attitude estimation with the adapted measurement model of differential vector comparison. Linearized model for Extended Kalman Filter and low pass filtered characteristics of measurement greatly extend the affordability of the proposed algorithm to the field of simple low cost embedded systems. For performance verification, experiment are done employing a practical low cost MEMS IMU and GPS receiver specification. Performance comparison with a high grade navigation system demonstrated good estimation result.

Performance Improvement of Azimuth Estimation in Low Cost MEMS IMU based INS/GPS Integrated Navigation System (저가형 MEMS 관성측정장치 기반 INS/GPS 통합 항법 장치에서 방위각 추정 성능 향상)

  • Chun, Se-Bum;Heo, Moon-Beom
    • Journal of Advanced Navigation Technology
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    • v.16 no.5
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    • pp.738-743
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    • 2012
  • Kalman filter is generally used in INS/GPS integrated navigation filter. However, the INS with low performance inertia sensor can not find accurate azimuth in initial alignment stage because sensor noise level is too large compare to Earth rotation rate, therefore the performance and stability of Kalman filter can not be guaranteed. In this paper, the extended Kalman filter and particle filter combined filter structure which can be overcome large initial azimuth error is proposed.

Vehicle localization in GPS signal unavailability area using weakly coupled IMU and GPS (관성 센서와 GPS 약결합을 통한 GPS 음영지역에서 차량 위치 추정)

  • Kim, Do-Yoon;Park, Hyun-Keun
    • Proceedings of the KIEE Conference
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    • 2011.07a
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    • pp.1942-1943
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    • 2011
  • 차량의 무인화에 대한 관심이 증대하면서 자율 주행 문제의 중요성이 부각되고 있다. 현재 전역적인 차량 위치는 GPS에 도움을 받고 있지만 도심 고층 빌딩 밀집 지역에서 GPS 신호가 불안해지는 멀티 패스 페이딩 현상에 대한 대안 및 터널을 통과할 때 GPS 신호가 단절되는 구간에 대한 대안이 필요하다. 본 연구에서는 MEMS 기반의 관성 센서를 제작하고 이를 이용하여 차량의 주행 모드를 자동으로 판별한 뒤 각 상황에 알맞은 칼만 필터를 설계하여 차량 위치를 파악하는 알고리즘을 제안한다. 제안한 알고리즘은 실제 임베디드 시스템에 이식되어 10Hz로 동작함을 확인하였고 GPS 음영 지역에서 3분 이내에는 GPS 오차 범위 내에서 차량 위치를 파악할 수 있음을 실험을 통해 확인하였다.

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Dynamic Position of Vehicles using AHRS IMU Sense (AHRS IMU 센서를 이용한 이동체의 동적 위치 결정)

  • Back Ki-Suk;Lee Jong-Chool;Hong Soon-Hyun;Cha Sung-Yeoul
    • Proceedings of the Korean Society of Surveying, Geodesy, Photogrammetry, and Cartography Conference
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    • 2006.04a
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    • pp.77-81
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    • 2006
  • GPS cannot determine random errors such as multipath and signal cutoff caused by surrounding environment that determines the visibility of satellites and the speed of data creation and transmission is lower than the speed of vehicles, it is difficult to determine accurate dynamic positions. Thus this study purposed to implement a method of deciding the accurate dynamic position of vehicles by combining AHRS (Attitude Heading Reference System) IMU (Initial Measurement Unit) based on low-priced MEMS (Micro Electro Mechanical System) in order to provide the information of attitude, position and speed at a high transmission rate without external help. This study conducted an initialization test to decide dynamic position using AHRS IMU sensor, and derived attitude correction angles of vehicles against time through regression analysis. The roll angle was $y=(A{\times}10^{-6})x^2 -(B{\times}10^{-5})x+Cr{\times}10^{-2}$ and the pitch angle was $y=(A{\times}10^{-6})x^2-(B{\times}10^{-7})x+C{\times}10^{-2}$, each of which was derived from second-degree polynomial regression analysis. It was also found that the heading angle was stabilized with variation less than $1^{\circ}$ after 60 seconds.

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Improvement of Relative Positioning Accuracy by Searching GPS Common Satellite between the Vehicles (차량 간 GPS 공통 가시위성 검색을 통한 상대위치 추정 정확도 향상에 대한 연구)

  • Han, Young-Min;Lee, Sung-Yong;Kim, Youn-Sil;Song, June-Sol;No, Hee-Kwon;Kee, Chang-Don
    • Journal of Advanced Navigation Technology
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    • v.16 no.6
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    • pp.927-934
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    • 2012
  • In this paper, we present relative positioning algorithm for moving land vehicle using GPS, MEMS IMU and B-CDMA module. This algorithm does not calculate precise absolute position but calculates relative position directly, so additional infrastructure and I2V communication device are not required. Proposed algorithm has several steps. Firstly, unbiased relative position is calculated using pseudorange difference between two vehicles. Simultaneously, the algorithm estimates position of each vehicle using GPS/INS integration. Secondly, proposed algorithm performs filtering and finally estimates relative position and relative velocity. Using proposed algorithm, we can obtain more precise relative position for moving land vehicles with short time interval as IMU sensor has. The simulation is performed to evaluate this algorithm and the several field tests are performed with real time program and miniature vehicles for verifying performance of proposed algorithm.