• 제목/요약/키워드: Range Calibration Error

검색결과 185건 처리시간 0.027초

해저고정 소나표적의 위치교정기법과 오차해석 (A Calibration Technique and its Error Analysis for the Position of Seabed Sonar Target)

  • 이상국;이용곤
    • 한국군사과학기술학회지
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    • 제6권3호
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    • pp.15-21
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    • 2003
  • This paper contains a precise calibration technique for the position of seabed acoustic target and theoretical error analysis of calibration results. The target is deployed on seabed as a standalone transponder. The purpose of target is performing accuracy test for active sonar as well as position calibration itself. For the position calibration, relative range between target and test vessel should be measured using target's transponder function. The relative range data combined with vessel position can be converted into a estimated position of target by the application of nonlinear LSE method. The error analysis of position calibration was divided into two stages. One is for relative range estimator and the other for target position estimator. Numerical simulations for position calibration showed good matching between results and developed CRLB.

2차원 격자 오차 데이터 기반의 선형 보정 함수들을 이용한 적외선 레인지 파인더 PBS-03JN의 보정 (alibration of Infra-red Range Finder PBS-03JN Using Piecewise Linear Function Based on 2-D Grid Error)

  • 김진백;김병국
    • 제어로봇시스템학회논문지
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    • 제17권9호
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    • pp.922-931
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    • 2011
  • An efficient calibration algorithm for mobile robot localization using infrared range finder is proposed. A calibration is important to guarantee the performance of other algorithms which use sensor data because it is pre-process. We experimentally found that the infrared range finder PBS-03JN has error characteristics depending on both distance and scan angle. After obtaining 2-D grid error characteristic data on distance and scan angle, we proposed a simple and efficient calibration algorithm with a 2-D piecewise linear function set. The performance of our proposed calibration algorithm is verified by experiments and simulation.

광범위 비오차를 갖는 계산형 전압변성기의 개발 (Development of a Calculable Potential Transformer with Wide Ratio Error)

  • 권성원;정재갑;이상화;김명수
    • 전기학회논문지
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    • 제57권6호
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    • pp.1017-1021
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    • 2008
  • A calculable potential transformer(PT) with nominal ratio error in wide range of -10% to +10% has been developed on basis of theoretical calculation of ratio error by the number of windings. The developed PT can be used to evaluate the linearity and accuracy of the PT comparator by comparing both the theoretical and experimental values of the PT which have exactly same ratio errors in nominal and calculated values. The PT has been applied for calibration and correction of the PT comparator up to wide ratio error range of -10% to +10%. This portable PT is very convenient to carry to the power industry for the on-site calibration of the PT comparator.

신경회로망을 이용한 카메라 교정과 2차원 거리 측정에 관한 연구 (Neural Network Based Camera Calibration and 2-D Range Finding)

  • 정우태;고국원;조형석
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 1994년도 추계학술대회 논문집
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    • pp.510-514
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    • 1994
  • This paper deals with an application of neural network to camera calibration with wide angle lens and 2-D range finding. Wide angle lens has an advantage of having wide view angles for mobile environment recognition ans robot eye in hand system. But, it has severe radial distortion. Multilayer neural network is used for the calibration of the camera considering lens distortion, and is trained it by error back-propagation method. MLP can map between camera image plane and plane the made by structured light. In experiments, Calibration of camers was executed with calibration chart which was printed by using laser printer with 300 d.p.i. resolution. High distortion lens, COSMICAR 4.2mm, was used to see whether the neural network could effectively calibrate camera distortion. 2-D range of several objects well be measured with laser range finding system composed of camera, frame grabber and laser structured light. The performance of 3-D range finding system was evaluated through experiments and analysis of the results.

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저유속 영역에서 대구경 전자기유량계의 오차특성 연구 (A Study on Error Characteristics of Large Size Electromagnetic Flowmeter in the Range of Low Velocity)

  • 이동근;박종호
    • 대한기계학회논문집B
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    • 제32권3호
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    • pp.235-240
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    • 2008
  • The large size electromagnetic flowmeter was tested to investigate the variation of its error characteristics in the range of low velocity under 0.6 m/s using flowmeter calibration system. For the two case of valve opening rate 100 % and 50 %, these tests were undertaken three times each for twelve velocity condition from $0.05\;^m/s\;to\;0.6\;^m/s$ with increment of $0.05\;^m/s$. It is shown that error characteristic of electromagnetic flowmeter was stabilized within ${\pm}0.4%$ of rate both higher than $0.25^m/s$ of velocity condition and 50 % of valve opening position. But, measurement deviation of flowmeter for ${\Phi}400mm\;and\;{\Phi}600mm$ was out of expected deviation range. It is necessary to correction with calibration. In conclusion, error characteristic of electromagnetic flowmeter wasn't changed proportion to its size.

Development of the Algorithm for Optimizing Wavelength Selection in Multiple Linear Regression

  • Hoeil Chung
    • Near Infrared Analysis
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    • 제1권1호
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    • pp.1-7
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    • 2000
  • A convenient algorithm for optimizing wavelength selection in multiple linear regression (MLR) has been developed. MOP (MLP Optimization Program) has been developed to test all possible MLR calibration models in a given spectral range and finally find an optimal MLR model with external validation capability. MOP generates all calibration models from all possible combinations of wavelength, and simultaneously calculates SEC (Standard Error of Calibration) and SEV (Standard Error of Validation) by predicting samples in a validation data set. Finally, with determined SEC and SEV, it calculates another parameter called SAD (Sum of SEC, SEV, and Absolute Difference between SEC and SEV: sum(SEC+SEV+Abs(SEC-SEV)). SAD is an useful parameter to find an optimal calibration model without over-fitting by simultaneously evaluating SEC, SEV, and difference of error between calibration and validation. The calibration model corresponding to the smallest SAD value is chosen as an optimum because the errors in both calibration and validation are minimal as well as similar in scale. To evaluate the capability of MOP, the determination of benzene content in unleaded gasoline has been examined. MOP successfully found the optimal calibration model and showed the better calibration and independent prediction performance compared to conventional MLR calibration.

An Improved Fast Camera Calibration Method for Mobile Terminals

  • Guan, Fang-li;Xu, Ai-jun;Jiang, Guang-yu
    • Journal of Information Processing Systems
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    • 제15권5호
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    • pp.1082-1095
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    • 2019
  • Camera calibration is an important part of machine vision and close-range photogrammetry. Since current calibration methods fail to obtain ideal internal and external camera parameters with limited computing resources on mobile terminals efficiently, this paper proposes an improved fast camera calibration method for mobile terminals. Based on traditional camera calibration method, the new method introduces two-order radial distortion and tangential distortion models to establish the camera model with nonlinear distortion items. Meanwhile, the nonlinear least square L-M algorithm is used to optimize parameters iteration, the new method can quickly obtain high-precise internal and external camera parameters. The experimental results show that the new method improves the efficiency and precision of camera calibration. Terminals simulation experiment on PC indicates that the time consuming of parameter iteration reduced from 0.220 seconds to 0.063 seconds (0.234 seconds on mobile terminals) and the average reprojection error reduced from 0.25 pixel to 0.15 pixel. Therefore, the new method is an ideal mobile terminals camera calibration method which can expand the application range of 3D reconstruction and close-range photogrammetry technology on mobile terminals.

인터벤션에서 Calibration Mode에 대한 오차율 비교 (Comparison on the Error Rates of Calibration Modes in Intervention)

  • 공창기;류영환
    • 한국방사선학회논문지
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    • 제14권5호
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    • pp.619-626
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    • 2020
  • 이 연구의 목적은 경피적 혈관내 풍선 확장술이나 스텐트 삽입술에서 Balloon이나 Stent의 직경 및 길이를 예측 할 때 사용되는 정량적인 평가 도구인 Calibration Mode중 Catheter Calibration Mode, Auto Calibration Mode 그리고 Segment Calibration Mode에서의 오차율에 대해 알아보고자 하였다. Calibration의 정량적인 평가를 위해 정교하게 제작된 직경 × 길이(2 mm × 80 mm) Copper Wire와 5, 10, 15, 30, 40 mm의 Metal Ball을 이용하여 실험하였고, 아크릴 팬텀은 25 mm, 50 mm, 75mm, 100 mm, 125 mm, 150mm, 175 mm, 200 mm로 하여 각각의 높이에서 혈관조영 촬영장치로 Subtraction 영상을 획득하여 장비 회사에서 제공하는 소프트웨어인 Stenosis Analysis Tools을 이용하여 측정하였다. Catheter Calibration Mode에서의 오차율을 평가하기 위한 방법으로 Copper Wire를 각각의 아크릴 팬텀위에 올려놓고 촬영하였으며, Copper Wire 직경 2 mm를 Catheter의 직경으로 Setting하였고, 길이 8 mm Copper Wire의 길이를 Multi-segments로 측정하여 분석한 결과 1.13 ~ 5.63%의 오차율이 나타났다. Auto Calibration Mode에서의 오차율을 평가하기 위한 방법으로 각각의 아크릴 팬텀을 높이에서 아크릴 높이에 대한 수치를 입력하고, 8 mm Copper Wire의 길이를 Multi-segments 측정하여 분석한 결과 0 ~ 0.26%의 오차율이 나타났다. Segment Calibration Mode에서의 오차율을 평가하기 위한 방법으로 테이블 바닥에 있는 각각의 Metal Ball을 각각 Calibration하고, 각각의 아크릴 팬텀 위에 올려 있는 8 mm Copper Wire의 길이를 측정하여 아크릴 팬텀 높이 변화에 대한 8 mm Copper Wire 길이를 Mutli-segments 측정하여 분석한 결과 1.05 ~ 19.04%의 오차율이 나타났다. 그리고 Auto Calibration Mode에서 OID 변화에 대한 실험은 아크릴 팬텀의 높이는 100mm로 고정하고 OID만 450 mm ~ 600 mm로 변화를 하였을때 오차율은 0.13 ~ 0.38%로 나타났다. 결론적으로 소프트웨어에서 제공하는 정량적인 혈관의 치수평가를 하기 위한 이들 Calibration Mode 중 Auto Calibration Mode에서 높이 값을 입력하는 것이 오차율이 가장 적은 Calibration 방법임을 확인하였으며, Metal ball이나 기타 다른 물체를 이용하여 Calibration을 하기 위해서는 시술부위와 동등한 높이에 놓고 Calibration을 하는 방법이 오차율을 가장 줄일 수 있는 방법으로 사료된다.

시스템 초기화(Calibration)에 따른 항공레이저측량의 정확도 평가 (The Evaluation of Accuracy for Airborne Laser Surveying via LiDAR System Calibration)

  • 이대희;위광재;김승용;김갑진;이재원
    • 한국측량학회:학술대회논문집
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    • 한국측량학회 2004년도 춘계학술발표회논문집
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    • pp.15-26
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    • 2004
  • The calibration for systematic error in LiDAR is crucial for the accuracy of airborne laser scanning. The main error is the misalignment of platforms between INS(Inertial Navigation System) and Laser scanner For planimetrical calibration of LiDAR, the building is good feature which has great changes in height and continuous flat area in the top. The planimetry error(pitch, roll) is corrected by adjustment of height which is calculated from comparing ground control points(GCP) of building to laser scanning data. We can know scale correction of laser range by the comparison of LiDAR data and GCP is arranged at the end of scan angle where maximize the height error. The area for scale calibration have to be large flat and have almost same elevation. At 1000m for average flying height, The Accuracy of laser scanning data using LiDAR is within 110cm in height and ${\pm}$50cm in planmetry so we can use laser scanning data for generating 3D terrain surface, expecically digital surface model(DSM) which is difficult to measure by aerial photogrammetry in forest, coast, urban area of high buildings

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